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231
A
Team
PROGRAMMING
800
[ "brute force", "greedy" ]
null
null
One day three best friends Petya, Vasya and Tonya decided to form a team and take part in programming contests. Participants are usually offered several problems during programming contests. Long before the start the friends decided that they will implement a problem if at least two of them are sure about the solution. Otherwise, the friends won't write the problem's solution. This contest offers *n* problems to the participants. For each problem we know, which friend is sure about the solution. Help the friends find the number of problems for which they will write a solution.
The first input line contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of problems in the contest. Then *n* lines contain three integers each, each integer is either 0 or 1. If the first number in the line equals 1, then Petya is sure about the problem's solution, otherwise he isn't sure. The second number shows Vasya's view on the solution, the third number shows Tonya's view. The numbers on the lines are separated by spaces.
Print a single integer — the number of problems the friends will implement on the contest.
[ "3\n1 1 0\n1 1 1\n1 0 0\n", "2\n1 0 0\n0 1 1\n" ]
[ "2\n", "1\n" ]
In the first sample Petya and Vasya are sure that they know how to solve the first problem and all three of them know how to solve the second problem. That means that they will write solutions for these problems. Only Petya is sure about the solution for the third problem, but that isn't enough, so the friends won't take it. In the second sample the friends will only implement the second problem, as Vasya and Tonya are sure about the solution.
500
[ { "input": "3\n1 1 0\n1 1 1\n1 0 0", "output": "2" }, { "input": "2\n1 0 0\n0 1 1", "output": "1" }, { "input": "1\n1 0 0", "output": "0" }, { "input": "2\n1 0 0\n1 1 1", "output": "1" }, { "input": "5\n1 0 0\n0 1 0\n1 1 1\n0 0 1\n0 0 0", "output": "1" }, { "input": "10\n0 1 0\n0 1 0\n1 1 0\n1 0 0\n0 0 1\n0 1 1\n1 1 1\n1 1 0\n0 0 0\n0 0 0", "output": "4" }, { "input": "15\n0 1 0\n1 0 0\n1 1 0\n1 1 1\n0 1 0\n0 0 1\n1 0 1\n1 0 1\n1 0 1\n0 0 0\n1 1 1\n1 1 0\n0 1 1\n1 1 0\n1 1 1", "output": "10" }, { "input": "50\n0 0 0\n0 1 1\n1 1 1\n0 1 0\n1 0 1\n1 1 1\n0 0 1\n1 0 0\n1 1 0\n1 0 1\n0 1 0\n0 0 1\n1 1 0\n0 1 0\n1 1 0\n0 0 0\n1 1 1\n1 0 1\n0 0 1\n1 1 0\n1 1 1\n0 1 1\n1 1 0\n0 0 0\n0 0 0\n1 1 1\n0 0 0\n1 1 1\n0 1 1\n0 0 1\n0 0 0\n0 0 0\n1 1 0\n1 1 0\n1 0 1\n1 0 0\n1 0 1\n1 0 1\n0 1 1\n1 1 0\n1 1 0\n0 1 0\n1 0 1\n0 0 0\n0 0 0\n0 0 0\n0 0 1\n1 1 1\n0 1 1\n1 0 1", "output": "29" }, { "input": "1\n1 1 1", "output": "1" }, { "input": "8\n0 0 0\n0 0 1\n0 0 0\n0 1 1\n1 0 0\n1 0 1\n1 1 0\n1 1 1", "output": "4" }, { "input": "16\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1", "output": "16" } ]
1,699,460,933
2,147,483,647
Python 3
OK
TESTS
21
92
0
def do(_): return sum(int(x) for x in input().split()) > 1 n = range(int(input())) ans = sum(map(do, n)) print(ans)
Title: Team Time Limit: None seconds Memory Limit: None megabytes Problem Description: One day three best friends Petya, Vasya and Tonya decided to form a team and take part in programming contests. Participants are usually offered several problems during programming contests. Long before the start the friends decided that they will implement a problem if at least two of them are sure about the solution. Otherwise, the friends won't write the problem's solution. This contest offers *n* problems to the participants. For each problem we know, which friend is sure about the solution. Help the friends find the number of problems for which they will write a solution. Input Specification: The first input line contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of problems in the contest. Then *n* lines contain three integers each, each integer is either 0 or 1. If the first number in the line equals 1, then Petya is sure about the problem's solution, otherwise he isn't sure. The second number shows Vasya's view on the solution, the third number shows Tonya's view. The numbers on the lines are separated by spaces. Output Specification: Print a single integer — the number of problems the friends will implement on the contest. Demo Input: ['3\n1 1 0\n1 1 1\n1 0 0\n', '2\n1 0 0\n0 1 1\n'] Demo Output: ['2\n', '1\n'] Note: In the first sample Petya and Vasya are sure that they know how to solve the first problem and all three of them know how to solve the second problem. That means that they will write solutions for these problems. Only Petya is sure about the solution for the third problem, but that isn't enough, so the friends won't take it. In the second sample the friends will only implement the second problem, as Vasya and Tonya are sure about the solution.
```python def do(_): return sum(int(x) for x in input().split()) > 1 n = range(int(input())) ans = sum(map(do, n)) print(ans) ```
3
965
C
Greedy Arkady
PROGRAMMING
2,000
[ "math" ]
null
null
$k$ people want to split $n$ candies between them. Each candy should be given to exactly one of them or be thrown away. The people are numbered from $1$ to $k$, and Arkady is the first of them. To split the candies, Arkady will choose an integer $x$ and then give the first $x$ candies to himself, the next $x$ candies to the second person, the next $x$ candies to the third person and so on in a cycle. The leftover (the remainder that is not divisible by $x$) will be thrown away. Arkady can't choose $x$ greater than $M$ as it is considered greedy. Also, he can't choose such a small $x$ that some person will receive candies more than $D$ times, as it is considered a slow splitting. Please find what is the maximum number of candies Arkady can receive by choosing some valid $x$.
The only line contains four integers $n$, $k$, $M$ and $D$ ($2 \le n \le 10^{18}$, $2 \le k \le n$, $1 \le M \le n$, $1 \le D \le \min{(n, 1000)}$, $M \cdot D \cdot k \ge n$) — the number of candies, the number of people, the maximum number of candies given to a person at once, the maximum number of times a person can receive candies.
Print a single integer — the maximum possible number of candies Arkady can give to himself. Note that it is always possible to choose some valid $x$.
[ "20 4 5 2\n", "30 9 4 1\n" ]
[ "8\n", "4\n" ]
In the first example Arkady should choose $x = 4$. He will give $4$ candies to himself, $4$ candies to the second person, $4$ candies to the third person, then $4$ candies to the fourth person and then again $4$ candies to himself. No person is given candies more than $2$ times, and Arkady receives $8$ candies in total. Note that if Arkady chooses $x = 5$, he will receive only $5$ candies, and if he chooses $x = 3$, he will receive only $3 + 3 = 6$ candies as well as the second person, the third and the fourth persons will receive $3$ candies, and $2$ candies will be thrown away. He can't choose $x = 1$ nor $x = 2$ because in these cases he will receive candies more than $2$ times. In the second example Arkady has to choose $x = 4$, because any smaller value leads to him receiving candies more than $1$ time.
1,500
[ { "input": "20 4 5 2", "output": "8" }, { "input": "30 9 4 1", "output": "4" }, { "input": "2 2 1 1", "output": "1" }, { "input": "42 20 5 29", "output": "5" }, { "input": "1000000000000000000 135 1000000000000000 1000", "output": "8325624421831635" }, { "input": "100 33 100 100", "output": "100" }, { "input": "1000000000 1000000000 1000000000 1000", "output": "1000000000" }, { "input": "1000000000 32428 1000000000 1000", "output": "1000000000" }, { "input": "1000000000 324934 1000 1000", "output": "4000" }, { "input": "1000000000000000000 32400093004 10000000 1000", "output": "40000000" }, { "input": "885 2 160 842", "output": "504" }, { "input": "216 137 202 208", "output": "202" }, { "input": "72 66 28 9", "output": "28" }, { "input": "294 4 13 8", "output": "80" }, { "input": "9 2 2 3", "output": "4" }, { "input": "31 3 2 8", "output": "10" }, { "input": "104 2 5 11", "output": "50" }, { "input": "1000000000000000000 1000000000000000000 1000 1000", "output": "1000" }, { "input": "1000000000000000000 100000000000000000 1 1000", "output": "10" }, { "input": "23925738098196565 23925738098196565 23925738098196565 1000", "output": "23925738098196565" }, { "input": "576460752303423488 576460752303423488 351082447248993993 1000", "output": "351082447248993993" }, { "input": "962768465676381898 72057594037927936 586039918340257175 256", "output": "586039918340257175" }, { "input": "1000000000000000000 1000000000000000000 10 1000", "output": "10" }, { "input": "23925738098196565 23925738098196565 1 1000", "output": "1" }, { "input": "1000000000000000000 1000000000000000000 1 1000", "output": "1" } ]
1,531,108,116
7,116
Python 3
WRONG_ANSWER
TESTS
0
93
0
import sys n, k, M, D = map(int, sys.stdin.readline().strip().split()) #n = 10000 #k = 11 #D = 1000 #for x in range(1, 100): # R = n // x # A = (R + k - 1) // k # if A > D: # continue # print(x, A, A * x) R = n // M A = (R + k - 1) // k best = A * M if A + 1 <= D: R2 = k * A + 1 x2 = n // R2 print(R2, x2) best2 = x2 * (A + 1) if best > best2: print(best) else: print(best2)
Title: Greedy Arkady Time Limit: None seconds Memory Limit: None megabytes Problem Description: $k$ people want to split $n$ candies between them. Each candy should be given to exactly one of them or be thrown away. The people are numbered from $1$ to $k$, and Arkady is the first of them. To split the candies, Arkady will choose an integer $x$ and then give the first $x$ candies to himself, the next $x$ candies to the second person, the next $x$ candies to the third person and so on in a cycle. The leftover (the remainder that is not divisible by $x$) will be thrown away. Arkady can't choose $x$ greater than $M$ as it is considered greedy. Also, he can't choose such a small $x$ that some person will receive candies more than $D$ times, as it is considered a slow splitting. Please find what is the maximum number of candies Arkady can receive by choosing some valid $x$. Input Specification: The only line contains four integers $n$, $k$, $M$ and $D$ ($2 \le n \le 10^{18}$, $2 \le k \le n$, $1 \le M \le n$, $1 \le D \le \min{(n, 1000)}$, $M \cdot D \cdot k \ge n$) — the number of candies, the number of people, the maximum number of candies given to a person at once, the maximum number of times a person can receive candies. Output Specification: Print a single integer — the maximum possible number of candies Arkady can give to himself. Note that it is always possible to choose some valid $x$. Demo Input: ['20 4 5 2\n', '30 9 4 1\n'] Demo Output: ['8\n', '4\n'] Note: In the first example Arkady should choose $x = 4$. He will give $4$ candies to himself, $4$ candies to the second person, $4$ candies to the third person, then $4$ candies to the fourth person and then again $4$ candies to himself. No person is given candies more than $2$ times, and Arkady receives $8$ candies in total. Note that if Arkady chooses $x = 5$, he will receive only $5$ candies, and if he chooses $x = 3$, he will receive only $3 + 3 = 6$ candies as well as the second person, the third and the fourth persons will receive $3$ candies, and $2$ candies will be thrown away. He can't choose $x = 1$ nor $x = 2$ because in these cases he will receive candies more than $2$ times. In the second example Arkady has to choose $x = 4$, because any smaller value leads to him receiving candies more than $1$ time.
```python import sys n, k, M, D = map(int, sys.stdin.readline().strip().split()) #n = 10000 #k = 11 #D = 1000 #for x in range(1, 100): # R = n // x # A = (R + k - 1) // k # if A > D: # continue # print(x, A, A * x) R = n // M A = (R + k - 1) // k best = A * M if A + 1 <= D: R2 = k * A + 1 x2 = n // R2 print(R2, x2) best2 = x2 * (A + 1) if best > best2: print(best) else: print(best2) ```
0
755
A
PolandBall and Hypothesis
PROGRAMMING
800
[ "brute force", "graphs", "math", "number theory" ]
null
null
PolandBall is a young, clever Ball. He is interested in prime numbers. He has stated a following hypothesis: "There exists such a positive integer *n* that for each positive integer *m* number *n*·*m*<=+<=1 is a prime number". Unfortunately, PolandBall is not experienced yet and doesn't know that his hypothesis is incorrect. Could you prove it wrong? Write a program that finds a counterexample for any *n*.
The only number in the input is *n* (1<=≤<=*n*<=≤<=1000) — number from the PolandBall's hypothesis.
Output such *m* that *n*·*m*<=+<=1 is not a prime number. Your answer will be considered correct if you output any suitable *m* such that 1<=≤<=*m*<=≤<=103. It is guaranteed the the answer exists.
[ "3\n", "4\n" ]
[ "1", "2" ]
A prime number (or a prime) is a natural number greater than 1 that has no positive divisors other than 1 and itself. For the first sample testcase, 3·1 + 1 = 4. We can output 1. In the second sample testcase, 4·1 + 1 = 5. We cannot output 1 because 5 is prime. However, *m* = 2 is okay since 4·2 + 1 = 9, which is not a prime number.
500
[ { "input": "3", "output": "1" }, { "input": "4", "output": "2" }, { "input": "10", "output": "2" }, { "input": "153", "output": "1" }, { "input": "1000", "output": "1" }, { "input": "1", "output": "3" }, { "input": "2", "output": "4" }, { "input": "5", "output": "1" }, { "input": "6", "output": "4" }, { "input": "7", "output": "1" }, { "input": "8", "output": "1" }, { "input": "9", "output": "1" }, { "input": "11", "output": "1" }, { "input": "998", "output": "1" }, { "input": "996", "output": "3" }, { "input": "36", "output": "4" }, { "input": "210", "output": "4" }, { "input": "270", "output": "4" }, { "input": "306", "output": "4" }, { "input": "330", "output": "5" }, { "input": "336", "output": "4" }, { "input": "600", "output": "4" }, { "input": "726", "output": "4" }, { "input": "988", "output": "1" }, { "input": "12", "output": "2" }, { "input": "987", "output": "1" }, { "input": "13", "output": "1" }, { "input": "986", "output": "1" }, { "input": "14", "output": "1" }, { "input": "985", "output": "1" }, { "input": "15", "output": "1" }, { "input": "984", "output": "1" }, { "input": "16", "output": "2" }, { "input": "983", "output": "1" }, { "input": "17", "output": "1" }, { "input": "982", "output": "2" }, { "input": "18", "output": "3" }, { "input": "981", "output": "1" }, { "input": "19", "output": "1" }, { "input": "980", "output": "1" }, { "input": "20", "output": "1" }, { "input": "979", "output": "1" }, { "input": "21", "output": "1" }, { "input": "978", "output": "1" }, { "input": "22", "output": "2" }, { "input": "977", "output": "1" }, { "input": "23", "output": "1" }, { "input": "976", "output": "2" }, { "input": "24", "output": "1" }, { "input": "975", "output": "1" }, { "input": "25", "output": "1" }, { "input": "2", "output": "4" }, { "input": "6", "output": "4" }, { "input": "996", "output": "3" }, { "input": "8", "output": "1" }, { "input": "998", "output": "1" }, { "input": "330", "output": "5" }, { "input": "18", "output": "3" }, { "input": "12", "output": "2" }, { "input": "24", "output": "1" }, { "input": "999", "output": "1" }, { "input": "726", "output": "4" }, { "input": "876", "output": "3" } ]
1,598,587,564
2,147,483,647
Python 3
OK
TESTS
63
93
0
n=int(input()) print(n-2 if n>2 else n+2)
Title: PolandBall and Hypothesis Time Limit: None seconds Memory Limit: None megabytes Problem Description: PolandBall is a young, clever Ball. He is interested in prime numbers. He has stated a following hypothesis: "There exists such a positive integer *n* that for each positive integer *m* number *n*·*m*<=+<=1 is a prime number". Unfortunately, PolandBall is not experienced yet and doesn't know that his hypothesis is incorrect. Could you prove it wrong? Write a program that finds a counterexample for any *n*. Input Specification: The only number in the input is *n* (1<=≤<=*n*<=≤<=1000) — number from the PolandBall's hypothesis. Output Specification: Output such *m* that *n*·*m*<=+<=1 is not a prime number. Your answer will be considered correct if you output any suitable *m* such that 1<=≤<=*m*<=≤<=103. It is guaranteed the the answer exists. Demo Input: ['3\n', '4\n'] Demo Output: ['1', '2'] Note: A prime number (or a prime) is a natural number greater than 1 that has no positive divisors other than 1 and itself. For the first sample testcase, 3·1 + 1 = 4. We can output 1. In the second sample testcase, 4·1 + 1 = 5. We cannot output 1 because 5 is prime. However, *m* = 2 is okay since 4·2 + 1 = 9, which is not a prime number.
```python n=int(input()) print(n-2 if n>2 else n+2) ```
3
208
A
Dubstep
PROGRAMMING
900
[ "strings" ]
null
null
Vasya works as a DJ in the best Berland nightclub, and he often uses dubstep music in his performance. Recently, he has decided to take a couple of old songs and make dubstep remixes from them. Let's assume that a song consists of some number of words. To make the dubstep remix of this song, Vasya inserts a certain number of words "WUB" before the first word of the song (the number may be zero), after the last word (the number may be zero), and between words (at least one between any pair of neighbouring words), and then the boy glues together all the words, including "WUB", in one string and plays the song at the club. For example, a song with words "I AM X" can transform into a dubstep remix as "WUBWUBIWUBAMWUBWUBX" and cannot transform into "WUBWUBIAMWUBX". Recently, Petya has heard Vasya's new dubstep track, but since he isn't into modern music, he decided to find out what was the initial song that Vasya remixed. Help Petya restore the original song.
The input consists of a single non-empty string, consisting only of uppercase English letters, the string's length doesn't exceed 200 characters. It is guaranteed that before Vasya remixed the song, no word contained substring "WUB" in it; Vasya didn't change the word order. It is also guaranteed that initially the song had at least one word.
Print the words of the initial song that Vasya used to make a dubsteb remix. Separate the words with a space.
[ "WUBWUBABCWUB\n", "WUBWEWUBAREWUBWUBTHEWUBCHAMPIONSWUBMYWUBFRIENDWUB\n" ]
[ "ABC ", "WE ARE THE CHAMPIONS MY FRIEND " ]
In the first sample: "WUBWUBABCWUB" = "WUB" + "WUB" + "ABC" + "WUB". That means that the song originally consisted of a single word "ABC", and all words "WUB" were added by Vasya. In the second sample Vasya added a single word "WUB" between all neighbouring words, in the beginning and in the end, except for words "ARE" and "THE" — between them Vasya added two "WUB".
500
[ { "input": "WUBWUBABCWUB", "output": "ABC " }, { "input": "WUBWEWUBAREWUBWUBTHEWUBCHAMPIONSWUBMYWUBFRIENDWUB", "output": "WE ARE THE CHAMPIONS MY FRIEND " }, { "input": "WUBWUBWUBSR", "output": "SR " }, { "input": "RWUBWUBWUBLWUB", "output": "R L " }, { "input": "ZJWUBWUBWUBJWUBWUBWUBL", "output": "ZJ J L " }, { "input": "CWUBBWUBWUBWUBEWUBWUBWUBQWUBWUBWUB", "output": "C B E Q " }, { "input": "WUBJKDWUBWUBWBIRAQKFWUBWUBYEWUBWUBWUBWVWUBWUB", "output": "JKD WBIRAQKF YE WV " }, { "input": "WUBKSDHEMIXUJWUBWUBRWUBWUBWUBSWUBWUBWUBHWUBWUBWUB", "output": "KSDHEMIXUJ R S H " }, { "input": "OGWUBWUBWUBXWUBWUBWUBIWUBWUBWUBKOWUBWUB", "output": "OG X I KO " }, { "input": "QWUBQQWUBWUBWUBIWUBWUBWWWUBWUBWUBJOPJPBRH", "output": "Q QQ I WW JOPJPBRH " }, { "input": "VSRNVEATZTLGQRFEGBFPWUBWUBWUBAJWUBWUBWUBPQCHNWUBCWUB", "output": "VSRNVEATZTLGQRFEGBFP AJ PQCHN C " }, { "input": "WUBWUBEWUBWUBWUBIQMJNIQWUBWUBWUBGZZBQZAUHYPWUBWUBWUBPMRWUBWUBWUBDCV", "output": "E IQMJNIQ GZZBQZAUHYP PMR DCV " }, { "input": "WUBWUBWUBFVWUBWUBWUBBPSWUBWUBWUBRXNETCJWUBWUBWUBJDMBHWUBWUBWUBBWUBWUBVWUBWUBB", "output": "FV BPS RXNETCJ JDMBH B V B " }, { "input": "WUBWUBWUBFBQWUBWUBWUBIDFSYWUBWUBWUBCTWDMWUBWUBWUBSXOWUBWUBWUBQIWUBWUBWUBL", "output": "FBQ IDFSY CTWDM SXO QI L " }, { "input": "IWUBWUBQLHDWUBYIIKZDFQWUBWUBWUBCXWUBWUBUWUBWUBWUBKWUBWUBWUBNL", "output": "I QLHD YIIKZDFQ CX U K NL " }, { "input": "KWUBUPDYXGOKUWUBWUBWUBAGOAHWUBIZDWUBWUBWUBIYWUBWUBWUBVWUBWUBWUBPWUBWUBWUBE", "output": "K UPDYXGOKU AGOAH IZD IY V P E " }, { "input": "WUBWUBOWUBWUBWUBIPVCQAFWYWUBWUBWUBQWUBWUBWUBXHDKCPYKCTWWYWUBWUBWUBVWUBWUBWUBFZWUBWUB", "output": "O IPVCQAFWY Q XHDKCPYKCTWWY V FZ " }, { "input": "PAMJGYWUBWUBWUBXGPQMWUBWUBWUBTKGSXUYWUBWUBWUBEWUBWUBWUBNWUBWUBWUBHWUBWUBWUBEWUBWUB", "output": "PAMJGY XGPQM TKGSXUY E N H E " }, { "input": "WUBYYRTSMNWUWUBWUBWUBCWUBWUBWUBCWUBWUBWUBFSYUINDWOBVWUBWUBWUBFWUBWUBWUBAUWUBWUBWUBVWUBWUBWUBJB", "output": "YYRTSMNWU C C FSYUINDWOBV F AU V JB " }, { "input": "WUBWUBYGPYEYBNRTFKOQCWUBWUBWUBUYGRTQEGWLFYWUBWUBWUBFVWUBHPWUBWUBWUBXZQWUBWUBWUBZDWUBWUBWUBM", "output": "YGPYEYBNRTFKOQC UYGRTQEGWLFY FV HP XZQ ZD M " }, { "input": "WUBZVMJWUBWUBWUBFOIMJQWKNZUBOFOFYCCWUBWUBWUBAUWWUBRDRADWUBWUBWUBCHQVWUBWUBWUBKFTWUBWUBWUBW", "output": "ZVMJ FOIMJQWKNZUBOFOFYCC AUW RDRAD CHQV KFT W " }, { "input": "WUBWUBZBKOKHQLGKRVIMZQMQNRWUBWUBWUBDACWUBWUBNZHFJMPEYKRVSWUBWUBWUBPPHGAVVPRZWUBWUBWUBQWUBWUBAWUBG", "output": "ZBKOKHQLGKRVIMZQMQNR DAC NZHFJMPEYKRVS PPHGAVVPRZ Q A G " }, { "input": "WUBWUBJWUBWUBWUBNFLWUBWUBWUBGECAWUBYFKBYJWTGBYHVSSNTINKWSINWSMAWUBWUBWUBFWUBWUBWUBOVWUBWUBLPWUBWUBWUBN", "output": "J NFL GECA YFKBYJWTGBYHVSSNTINKWSINWSMA F OV LP N " }, { "input": "WUBWUBLCWUBWUBWUBZGEQUEATJVIXETVTWUBWUBWUBEXMGWUBWUBWUBRSWUBWUBWUBVWUBWUBWUBTAWUBWUBWUBCWUBWUBWUBQG", "output": "LC ZGEQUEATJVIXETVT EXMG RS V TA C QG " }, { "input": "WUBMPWUBWUBWUBORWUBWUBDLGKWUBWUBWUBVVZQCAAKVJTIKWUBWUBWUBTJLUBZJCILQDIFVZWUBWUBYXWUBWUBWUBQWUBWUBWUBLWUB", "output": "MP OR DLGK VVZQCAAKVJTIK TJLUBZJCILQDIFVZ YX Q L " }, { "input": "WUBNXOLIBKEGXNWUBWUBWUBUWUBGITCNMDQFUAOVLWUBWUBWUBAIJDJZJHFMPVTPOXHPWUBWUBWUBISCIOWUBWUBWUBGWUBWUBWUBUWUB", "output": "NXOLIBKEGXN U GITCNMDQFUAOVL AIJDJZJHFMPVTPOXHP ISCIO G U " }, { "input": "WUBWUBNMMWCZOLYPNBELIYVDNHJUNINWUBWUBWUBDXLHYOWUBWUBWUBOJXUWUBWUBWUBRFHTGJCEFHCGWARGWUBWUBWUBJKWUBWUBSJWUBWUB", "output": "NMMWCZOLYPNBELIYVDNHJUNIN DXLHYO OJXU RFHTGJCEFHCGWARG JK SJ " }, { "input": "SGWLYSAUJOJBNOXNWUBWUBWUBBOSSFWKXPDPDCQEWUBWUBWUBDIRZINODWUBWUBWUBWWUBWUBWUBPPHWUBWUBWUBRWUBWUBWUBQWUBWUBWUBJWUB", "output": "SGWLYSAUJOJBNOXN BOSSFWKXPDPDCQE DIRZINOD W PPH R Q J " }, { "input": "TOWUBWUBWUBGBTBNWUBWUBWUBJVIOJBIZFUUYHUAIEBQLQXPQKZJMPTCWBKPOSAWUBWUBWUBSWUBWUBWUBTOLVXWUBWUBWUBNHWUBWUBWUBO", "output": "TO GBTBN JVIOJBIZFUUYHUAIEBQLQXPQKZJMPTCWBKPOSA S TOLVX NH O " }, { "input": "WUBWUBWSPLAYSZSAUDSWUBWUBWUBUWUBWUBWUBKRWUBWUBWUBRSOKQMZFIYZQUWUBWUBWUBELSHUWUBWUBWUBUKHWUBWUBWUBQXEUHQWUBWUBWUBBWUBWUBWUBR", "output": "WSPLAYSZSAUDS U KR RSOKQMZFIYZQU ELSHU UKH QXEUHQ B R " }, { "input": "WUBXEMWWVUHLSUUGRWUBWUBWUBAWUBXEGILZUNKWUBWUBWUBJDHHKSWUBWUBWUBDTSUYSJHWUBWUBWUBPXFWUBMOHNJWUBWUBWUBZFXVMDWUBWUBWUBZMWUBWUB", "output": "XEMWWVUHLSUUGR A XEGILZUNK JDHHKS DTSUYSJH PXF MOHNJ ZFXVMD ZM " }, { "input": "BMBWUBWUBWUBOQKWUBWUBWUBPITCIHXHCKLRQRUGXJWUBWUBWUBVWUBWUBWUBJCWUBWUBWUBQJPWUBWUBWUBBWUBWUBWUBBMYGIZOOXWUBWUBWUBTAGWUBWUBHWUB", "output": "BMB OQK PITCIHXHCKLRQRUGXJ V JC QJP B BMYGIZOOX TAG H " }, { "input": "CBZNWUBWUBWUBNHWUBWUBWUBYQSYWUBWUBWUBMWUBWUBWUBXRHBTMWUBWUBWUBPCRCWUBWUBWUBTZUYLYOWUBWUBWUBCYGCWUBWUBWUBCLJWUBWUBWUBSWUBWUBWUB", "output": "CBZN NH YQSY M XRHBTM PCRC TZUYLYO CYGC CLJ S " }, { "input": "DPDWUBWUBWUBEUQKWPUHLTLNXHAEKGWUBRRFYCAYZFJDCJLXBAWUBWUBWUBHJWUBOJWUBWUBWUBNHBJEYFWUBWUBWUBRWUBWUBWUBSWUBWWUBWUBWUBXDWUBWUBWUBJWUB", "output": "DPD EUQKWPUHLTLNXHAEKG RRFYCAYZFJDCJLXBA HJ OJ NHBJEYF R S W XD J " }, { "input": "WUBWUBWUBISERPQITVIYERSCNWUBWUBWUBQWUBWUBWUBDGSDIPWUBWUBWUBCAHKDZWEXBIBJVVSKKVQJWUBWUBWUBKIWUBWUBWUBCWUBWUBWUBAWUBWUBWUBPWUBWUBWUBHWUBWUBWUBF", "output": "ISERPQITVIYERSCN Q DGSDIP CAHKDZWEXBIBJVVSKKVQJ KI C A P H F " }, { "input": "WUBWUBWUBIWUBWUBLIKNQVWUBWUBWUBPWUBWUBWUBHWUBWUBWUBMWUBWUBWUBDPRSWUBWUBWUBBSAGYLQEENWXXVWUBWUBWUBXMHOWUBWUBWUBUWUBWUBWUBYRYWUBWUBWUBCWUBWUBWUBY", "output": "I LIKNQV P H M DPRS BSAGYLQEENWXXV XMHO U YRY C Y " }, { "input": "WUBWUBWUBMWUBWUBWUBQWUBWUBWUBITCFEYEWUBWUBWUBHEUWGNDFNZGWKLJWUBWUBWUBMZPWUBWUBWUBUWUBWUBWUBBWUBWUBWUBDTJWUBHZVIWUBWUBWUBPWUBFNHHWUBWUBWUBVTOWUB", "output": "M Q ITCFEYE HEUWGNDFNZGWKLJ MZP U B DTJ HZVI P FNHH VTO " }, { "input": "WUBWUBNDNRFHYJAAUULLHRRDEDHYFSRXJWUBWUBWUBMUJVDTIRSGYZAVWKRGIFWUBWUBWUBHMZWUBWUBWUBVAIWUBWUBWUBDDKJXPZRGWUBWUBWUBSGXWUBWUBWUBIFKWUBWUBWUBUWUBWUBWUBW", "output": "NDNRFHYJAAUULLHRRDEDHYFSRXJ MUJVDTIRSGYZAVWKRGIF HMZ VAI DDKJXPZRG SGX IFK U W " }, { "input": "WUBOJMWRSLAXXHQRTPMJNCMPGWUBWUBWUBNYGMZIXNLAKSQYWDWUBWUBWUBXNIWUBWUBWUBFWUBWUBWUBXMBWUBWUBWUBIWUBWUBWUBINWUBWUBWUBWDWUBWUBWUBDDWUBWUBWUBD", "output": "OJMWRSLAXXHQRTPMJNCMPG NYGMZIXNLAKSQYWD XNI F XMB I IN WD DD D " }, { "input": "WUBWUBWUBREHMWUBWUBWUBXWUBWUBWUBQASNWUBWUBWUBNLSMHLCMTICWUBWUBWUBVAWUBWUBWUBHNWUBWUBWUBNWUBWUBWUBUEXLSFOEULBWUBWUBWUBXWUBWUBWUBJWUBWUBWUBQWUBWUBWUBAWUBWUB", "output": "REHM X QASN NLSMHLCMTIC VA HN N UEXLSFOEULB X J Q A " }, { "input": "WUBWUBWUBSTEZTZEFFIWUBWUBWUBSWUBWUBWUBCWUBFWUBHRJPVWUBWUBWUBDYJUWUBWUBWUBPWYDKCWUBWUBWUBCWUBWUBWUBUUEOGCVHHBWUBWUBWUBEXLWUBWUBWUBVCYWUBWUBWUBMWUBWUBWUBYWUB", "output": "STEZTZEFFI S C F HRJPV DYJU PWYDKC C UUEOGCVHHB EXL VCY M Y " }, { "input": "WPPNMSQOQIWUBWUBWUBPNQXWUBWUBWUBHWUBWUBWUBNFLWUBWUBWUBGWSGAHVJFNUWUBWUBWUBFWUBWUBWUBWCMLRICFSCQQQTNBWUBWUBWUBSWUBWUBWUBKGWUBWUBWUBCWUBWUBWUBBMWUBWUBWUBRWUBWUB", "output": "WPPNMSQOQI PNQX H NFL GWSGAHVJFNU F WCMLRICFSCQQQTNB S KG C BM R " }, { "input": "YZJOOYITZRARKVFYWUBWUBRZQGWUBWUBWUBUOQWUBWUBWUBIWUBWUBWUBNKVDTBOLETKZISTWUBWUBWUBWLWUBQQFMMGSONZMAWUBZWUBWUBWUBQZUXGCWUBWUBWUBIRZWUBWUBWUBLTTVTLCWUBWUBWUBY", "output": "YZJOOYITZRARKVFY RZQG UOQ I NKVDTBOLETKZIST WL QQFMMGSONZMA Z QZUXGC IRZ LTTVTLC Y " }, { "input": "WUBCAXNCKFBVZLGCBWCOAWVWOFKZVQYLVTWUBWUBWUBNLGWUBWUBWUBAMGDZBDHZMRMQMDLIRMIWUBWUBWUBGAJSHTBSWUBWUBWUBCXWUBWUBWUBYWUBZLXAWWUBWUBWUBOHWUBWUBWUBZWUBWUBWUBGBWUBWUBWUBE", "output": "CAXNCKFBVZLGCBWCOAWVWOFKZVQYLVT NLG AMGDZBDHZMRMQMDLIRMI GAJSHTBS CX Y ZLXAW OH Z GB E " }, { "input": "WUBWUBCHXSOWTSQWUBWUBWUBCYUZBPBWUBWUBWUBSGWUBWUBWKWORLRRLQYUUFDNWUBWUBWUBYYGOJNEVEMWUBWUBWUBRWUBWUBWUBQWUBWUBWUBIHCKWUBWUBWUBKTWUBWUBWUBRGSNTGGWUBWUBWUBXCXWUBWUBWUBS", "output": "CHXSOWTSQ CYUZBPB SG WKWORLRRLQYUUFDN YYGOJNEVEM R Q IHCK KT RGSNTGG XCX S " }, { "input": "WUBWUBWUBHJHMSBURXTHXWSCHNAIJOWBHLZGJZDHEDSPWBWACCGQWUBWUBWUBXTZKGIITWUBWUBWUBAWUBWUBWUBVNCXPUBCQWUBWUBWUBIDPNAWUBWUBWUBOWUBWUBWUBYGFWUBWUBWUBMQOWUBWUBWUBKWUBWUBWUBAZVWUBWUBWUBEP", "output": "HJHMSBURXTHXWSCHNAIJOWBHLZGJZDHEDSPWBWACCGQ XTZKGIIT A VNCXPUBCQ IDPNA O YGF MQO K AZV EP " }, { "input": "WUBKYDZOYWZSNGMKJSWAXFDFLTHDHEOGTDBNZMSMKZTVWUBWUBWUBLRMIIWUBWUBWUBGWUBWUBWUBADPSWUBWUBWUBANBWUBWUBPCWUBWUBWUBPWUBWUBWUBGPVNLSWIRFORYGAABUXMWUBWUBWUBOWUBWUBWUBNWUBWUBWUBYWUBWUB", "output": "KYDZOYWZSNGMKJSWAXFDFLTHDHEOGTDBNZMSMKZTV LRMII G ADPS ANB PC P GPVNLSWIRFORYGAABUXM O N Y " }, { "input": "REWUBWUBWUBJDWUBWUBWUBNWUBWUBWUBTWWUBWUBWUBWZDOCKKWUBWUBWUBLDPOVBFRCFWUBWUBAKZIBQKEUAZEEWUBWUBWUBLQYPNPFWUBYEWUBWUBWUBFWUBWUBWUBBPWUBWUBWUBAWWUBWUBWUBQWUBWUBWUBBRWUBWUBWUBXJL", "output": "RE JD N TW WZDOCKK LDPOVBFRCF AKZIBQKEUAZEE LQYPNPF YE F BP AW Q BR XJL " }, { "input": "CUFGJDXGMWUBWUBWUBOMWUBWUBWUBSIEWUBWUBWUBJJWKNOWUBWUBWUBYBHVNRNORGYWUBWUBWUBOAGCAWUBWUBWUBSBLBKTPFKPBIWUBWUBWUBJBWUBWUBWUBRMFCJPGWUBWUBWUBDWUBWUBWUBOJOWUBWUBWUBZPWUBWUBWUBMWUBRWUBWUBWUBFXWWUBWUBWUBO", "output": "CUFGJDXGM OM SIE JJWKNO YBHVNRNORGY OAGCA SBLBKTPFKPBI JB RMFCJPG D OJO ZP M R FXW O " }, { "input": "WUBJZGAEXFMFEWMAKGQLUWUBWUBWUBICYTPQWGENELVYWANKUOJYWUBWUBWUBGWUBWUBWUBHYCJVLPHTUPNEGKCDGQWUBWUBWUBOFWUBWUBWUBCPGSOGZBRPRPVJJEWUBWUBWUBDQBCWUBWUBWUBHWUBWUBWUBMHOHYBMATWUBWUBWUBVWUBWUBWUBSWUBWUBWUBKOWU", "output": "JZGAEXFMFEWMAKGQLU ICYTPQWGENELVYWANKUOJY G HYCJVLPHTUPNEGKCDGQ OF CPGSOGZBRPRPVJJE DQBC H MHOHYBMAT V S KOWU " }, { "input": "A", "output": "A " }, { "input": "WUBA", "output": "A " }, { "input": "WUBWUBA", "output": "A " }, { "input": "AWUBWUBWUB", "output": "A " }, { "input": "AWUBBWUBCWUBD", "output": "A B C D " }, { "input": "WUBWWUBWUBWUBUWUBWUBBWUB", "output": "W U B " }, { "input": "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA", "output": "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA " }, { "input": "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAWUBAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA", "output": "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA " }, { "input": "WUWUBBWWUBUB", "output": "WU BW UB " }, { "input": "WUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUABWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUBWUB", "output": "WUAB " }, { "input": "ZWUB", "output": "Z " }, { "input": "WU", "output": "WU " }, { "input": "UB", "output": "UB " }, { "input": "U", "output": "U " }, { "input": "WUBW", "output": "W " }, { "input": "WUBWU", "output": "WU " }, { "input": "WUWUB", "output": "WU " }, { "input": "UBWUB", "output": "UB " }, { "input": "WUWUBUBWUBUWUB", "output": "WU UB U " }, { "input": "WUBWWUBAWUB", "output": "W A " }, { "input": "WUUUUU", "output": "WUUUUU " } ]
1,691,667,967
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
1
92
0
a = input() a = a.replace("WUB"," ") b = a.replace(" ","") print(b)
Title: Dubstep Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasya works as a DJ in the best Berland nightclub, and he often uses dubstep music in his performance. Recently, he has decided to take a couple of old songs and make dubstep remixes from them. Let's assume that a song consists of some number of words. To make the dubstep remix of this song, Vasya inserts a certain number of words "WUB" before the first word of the song (the number may be zero), after the last word (the number may be zero), and between words (at least one between any pair of neighbouring words), and then the boy glues together all the words, including "WUB", in one string and plays the song at the club. For example, a song with words "I AM X" can transform into a dubstep remix as "WUBWUBIWUBAMWUBWUBX" and cannot transform into "WUBWUBIAMWUBX". Recently, Petya has heard Vasya's new dubstep track, but since he isn't into modern music, he decided to find out what was the initial song that Vasya remixed. Help Petya restore the original song. Input Specification: The input consists of a single non-empty string, consisting only of uppercase English letters, the string's length doesn't exceed 200 characters. It is guaranteed that before Vasya remixed the song, no word contained substring "WUB" in it; Vasya didn't change the word order. It is also guaranteed that initially the song had at least one word. Output Specification: Print the words of the initial song that Vasya used to make a dubsteb remix. Separate the words with a space. Demo Input: ['WUBWUBABCWUB\n', 'WUBWEWUBAREWUBWUBTHEWUBCHAMPIONSWUBMYWUBFRIENDWUB\n'] Demo Output: ['ABC ', 'WE ARE THE CHAMPIONS MY FRIEND '] Note: In the first sample: "WUBWUBABCWUB" = "WUB" + "WUB" + "ABC" + "WUB". That means that the song originally consisted of a single word "ABC", and all words "WUB" were added by Vasya. In the second sample Vasya added a single word "WUB" between all neighbouring words, in the beginning and in the end, except for words "ARE" and "THE" — between them Vasya added two "WUB".
```python a = input() a = a.replace("WUB"," ") b = a.replace(" ","") print(b) ```
0
766
A
Mahmoud and Longest Uncommon Subsequence
PROGRAMMING
1,000
[ "constructive algorithms", "strings" ]
null
null
While Mahmoud and Ehab were practicing for IOI, they found a problem which name was Longest common subsequence. They solved it, and then Ehab challenged Mahmoud with another problem. Given two strings *a* and *b*, find the length of their longest uncommon subsequence, which is the longest string that is a subsequence of one of them and not a subsequence of the other. A subsequence of some string is a sequence of characters that appears in the same order in the string, The appearances don't have to be consecutive, for example, strings "ac", "bc", "abc" and "a" are subsequences of string "abc" while strings "abbc" and "acb" are not. The empty string is a subsequence of any string. Any string is a subsequence of itself.
The first line contains string *a*, and the second line — string *b*. Both of these strings are non-empty and consist of lowercase letters of English alphabet. The length of each string is not bigger than 105 characters.
If there's no uncommon subsequence, print "-1". Otherwise print the length of the longest uncommon subsequence of *a* and *b*.
[ "abcd\ndefgh\n", "a\na\n" ]
[ "5\n", "-1\n" ]
In the first example: you can choose "defgh" from string *b* as it is the longest subsequence of string *b* that doesn't appear as a subsequence of string *a*.
500
[ { "input": "abcd\ndefgh", "output": "5" }, { "input": "a\na", "output": "-1" }, { "input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaacccccccccccccccccccccccccccccccccccccccccccccccccc\naaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaadddddddddddddddddddddddddddddddddddddddddddddddddd", "output": "100" }, { "input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\nbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbb", "output": "199" }, { "input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\nbbbbbbbbbbbbbbbbbbb", "output": "99" }, { "input": "abcde\nfghij", "output": "5" }, { "input": "abcde\nabcdf", "output": "5" }, { "input": "abcde\nbbcde", "output": "5" }, { "input": "abcde\neabcd", "output": "5" }, { "input": "abcdefgh\nabdcefgh", "output": "8" }, { "input": "mmmmm\nmnmmm", "output": "5" }, { "input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\naaaaaaaaaaaaaaaaaabaaaaaaaaaaaaaaa", "output": "34" }, { "input": "abcdefghijklmnopqrstuvwxyz\nzabcdefghijklmnopqrstuvwxy", "output": "26" }, { "input": "a\nab", "output": "2" }, { "input": "b\nab", "output": "2" }, { "input": "ab\nb", "output": "2" }, { "input": "ab\nc", "output": "2" }, { "input": "aaaaaa\naaaaaa", "output": "-1" }, { "input": "abacaba\nabacaba", "output": "-1" }, { "input": "aabb\nbbaa", "output": "4" }, { "input": "ab\nba", "output": "2" }, { "input": "abcd\nabc", "output": "4" }, { "input": "abaa\nabaa", "output": "-1" }, { "input": "ab\nab", "output": "-1" }, { "input": "ab\nabcd", "output": "4" }, { "input": "abc\nabcd", "output": "4" }, { "input": "mo\nmomo", "output": "4" }, { "input": "koooooooooooooooo\nloooooooooooooooo", "output": "17" }, { "input": "aaa\naa", "output": "3" }, { "input": "abc\nabc", "output": "-1" }, { "input": "abcd\nabcd", "output": "-1" }, { "input": "abc\ncba", "output": "3" }, { "input": "ahc\nahc", "output": "-1" }, { "input": "abc\nbac", "output": "3" }, { "input": "aa\naaa", "output": "3" }, { "input": "aaa\naaa", "output": "-1" }, { "input": "abc\nacb", "output": "3" }, { "input": "abc\nab", "output": "3" }, { "input": "abb\nabb", "output": "-1" }, { "input": "abc\ncab", "output": "3" }, { "input": "aaaaaa\naaaaa", "output": "6" }, { "input": "aa\naab", "output": "3" }, { "input": "len\nlena", "output": "4" }, { "input": "aaaaa\naa", "output": "5" }, { "input": "aaa\naaaa", "output": "4" }, { "input": "bcd\nabcd", "output": "4" }, { "input": "aaabbc\naaaccc", "output": "6" }, { "input": "abcd\nzycd", "output": "4" }, { "input": "baa\nzaa", "output": "3" }, { "input": "asdf\nadfs", "output": "4" }, { "input": "abcdefgh\nabcdefgh", "output": "-1" }, { "input": "aba\naab", "output": "3" }, { "input": "aba\naba", "output": "-1" }, { "input": "abcccc\naccccc", "output": "6" }, { "input": "acb\nabc", "output": "3" }, { "input": "a\naa", "output": "2" }, { "input": "abababab\nab", "output": "8" }, { "input": "ababab\nab", "output": "6" } ]
1,679,391,831
2,147,483,647
Python 3
OK
TESTS
73
61
1,945,600
a=list(input()) b=list(input()) a1=sorted(a);b1=sorted(b);la=0;lb=0 la=len(a) lb=len(b) m= max(la, lb) if a==b: print(-1) elif m in [0,1]: print(-1) else: print(m)
Title: Mahmoud and Longest Uncommon Subsequence Time Limit: None seconds Memory Limit: None megabytes Problem Description: While Mahmoud and Ehab were practicing for IOI, they found a problem which name was Longest common subsequence. They solved it, and then Ehab challenged Mahmoud with another problem. Given two strings *a* and *b*, find the length of their longest uncommon subsequence, which is the longest string that is a subsequence of one of them and not a subsequence of the other. A subsequence of some string is a sequence of characters that appears in the same order in the string, The appearances don't have to be consecutive, for example, strings "ac", "bc", "abc" and "a" are subsequences of string "abc" while strings "abbc" and "acb" are not. The empty string is a subsequence of any string. Any string is a subsequence of itself. Input Specification: The first line contains string *a*, and the second line — string *b*. Both of these strings are non-empty and consist of lowercase letters of English alphabet. The length of each string is not bigger than 105 characters. Output Specification: If there's no uncommon subsequence, print "-1". Otherwise print the length of the longest uncommon subsequence of *a* and *b*. Demo Input: ['abcd\ndefgh\n', 'a\na\n'] Demo Output: ['5\n', '-1\n'] Note: In the first example: you can choose "defgh" from string *b* as it is the longest subsequence of string *b* that doesn't appear as a subsequence of string *a*.
```python a=list(input()) b=list(input()) a1=sorted(a);b1=sorted(b);la=0;lb=0 la=len(a) lb=len(b) m= max(la, lb) if a==b: print(-1) elif m in [0,1]: print(-1) else: print(m) ```
3
701
B
Cells Not Under Attack
PROGRAMMING
1,200
[ "data structures", "math" ]
null
null
Vasya has the square chessboard of size *n*<=×<=*n* and *m* rooks. Initially the chessboard is empty. Vasya will consequently put the rooks on the board one after another. The cell of the field is under rook's attack, if there is at least one rook located in the same row or in the same column with this cell. If there is a rook located in the cell, this cell is also under attack. You are given the positions of the board where Vasya will put rooks. For each rook you have to determine the number of cells which are not under attack after Vasya puts it on the board.
The first line of the input contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*m*<=≤<=*min*(100<=000,<=*n*2)) — the size of the board and the number of rooks. Each of the next *m* lines contains integers *x**i* and *y**i* (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*) — the number of the row and the number of the column where Vasya will put the *i*-th rook. Vasya puts rooks on the board in the order they appear in the input. It is guaranteed that any cell will contain no more than one rook.
Print *m* integer, the *i*-th of them should be equal to the number of cells that are not under attack after first *i* rooks are put.
[ "3 3\n1 1\n3 1\n2 2\n", "5 2\n1 5\n5 1\n", "100000 1\n300 400\n" ]
[ "4 2 0 \n", "16 9 \n", "9999800001 \n" ]
On the picture below show the state of the board after put each of the three rooks. The cells which painted with grey color is not under the attack.
750
[ { "input": "3 3\n1 1\n3 1\n2 2", "output": "4 2 0 " }, { "input": "5 2\n1 5\n5 1", "output": "16 9 " }, { "input": "100000 1\n300 400", "output": "9999800001 " }, { "input": "10 4\n2 8\n1 8\n9 8\n6 9", "output": "81 72 63 48 " }, { "input": "30 30\n3 13\n27 23\n18 24\n18 19\n14 20\n7 10\n27 13\n20 27\n11 1\n21 10\n2 9\n28 12\n29 19\n28 27\n27 29\n30 12\n27 2\n4 5\n8 19\n21 2\n24 27\n14 22\n20 3\n18 3\n23 9\n28 6\n15 12\n2 2\n16 27\n1 14", "output": "841 784 729 702 650 600 600 552 506 484 441 400 380 380 361 342 324 289 272 272 255 240 225 225 210 196 182 182 168 143 " }, { "input": "70 31\n22 39\n33 43\n50 27\n70 9\n20 67\n61 24\n60 4\n60 28\n4 25\n30 29\n46 47\n51 48\n37 5\n14 29\n45 44\n68 35\n52 21\n7 37\n18 43\n44 22\n26 12\n39 37\n51 55\n50 23\n51 16\n16 49\n22 62\n35 45\n56 2\n20 51\n3 37", "output": "4761 4624 4489 4356 4225 4096 3969 3906 3782 3660 3540 3422 3306 3249 3136 3025 2916 2809 2756 2652 2550 2499 2450 2401 2352 2256 2208 2115 2024 1978 1935 " }, { "input": "330 17\n259 262\n146 20\n235 69\n84 74\n131 267\n153 101\n32 232\n214 212\n239 157\n121 156\n10 45\n266 78\n52 258\n109 279\n193 276\n239 142\n321 89", "output": "108241 107584 106929 106276 105625 104976 104329 103684 103041 102400 101761 101124 100489 99856 99225 98910 98282 " }, { "input": "500 43\n176 85\n460 171\n233 260\n73 397\n474 35\n290 422\n309 318\n280 415\n485 169\n106 22\n355 129\n180 301\n205 347\n197 93\n263 318\n336 382\n314 350\n476 214\n367 277\n333 166\n500 376\n236 17\n94 73\n116 204\n166 50\n168 218\n144 369\n340 91\n274 360\n171 360\n41 251\n262 478\n27 163\n151 491\n208 415\n448 386\n293 486\n371 479\n330 435\n220 374\n163 316\n155 158\n26 126", "output": "249001 248004 247009 246016 245025 244036 243049 242064 241081 240100 239121 238144 237169 236196 235710 234740 233772 232806 231842 230880 229920 228962 228006 227052 226100 225150 224202 223256 222312 221840 220899 219960 219023 218088 217620 216688 215758 214830 213904 212980 212058 211138 210220 " }, { "input": "99999 1\n54016 16192", "output": "9999600004 " }, { "input": "99991 9\n80814 65974\n12100 98787\n9390 76191\n5628 47659\n80075 25361\n75330 1630\n38758 99962\n33848 40352\n43732 52281", "output": "9998000100 9997800121 9997600144 9997400169 9997200196 9997000225 9996800256 9996600289 9996400324 " }, { "input": "1 1\n1 1", "output": "0 " } ]
1,626,091,734
2,147,483,647
PyPy 3
OK
TESTS
40
1,559
33,587,200
rows = set() columns = set() n, m = map(int, input().split()) n_rows = 0 n_columns = 0 ans = n*n for i in range(m): x, y = map(int, input().split()) if x not in rows: rows.add(x) n_rows += 1 if y not in columns: columns.add(y) n_columns += 1 print(ans - n*(n_rows + n_columns) + n_rows*n_columns)
Title: Cells Not Under Attack Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasya has the square chessboard of size *n*<=×<=*n* and *m* rooks. Initially the chessboard is empty. Vasya will consequently put the rooks on the board one after another. The cell of the field is under rook's attack, if there is at least one rook located in the same row or in the same column with this cell. If there is a rook located in the cell, this cell is also under attack. You are given the positions of the board where Vasya will put rooks. For each rook you have to determine the number of cells which are not under attack after Vasya puts it on the board. Input Specification: The first line of the input contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*m*<=≤<=*min*(100<=000,<=*n*2)) — the size of the board and the number of rooks. Each of the next *m* lines contains integers *x**i* and *y**i* (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*) — the number of the row and the number of the column where Vasya will put the *i*-th rook. Vasya puts rooks on the board in the order they appear in the input. It is guaranteed that any cell will contain no more than one rook. Output Specification: Print *m* integer, the *i*-th of them should be equal to the number of cells that are not under attack after first *i* rooks are put. Demo Input: ['3 3\n1 1\n3 1\n2 2\n', '5 2\n1 5\n5 1\n', '100000 1\n300 400\n'] Demo Output: ['4 2 0 \n', '16 9 \n', '9999800001 \n'] Note: On the picture below show the state of the board after put each of the three rooks. The cells which painted with grey color is not under the attack.
```python rows = set() columns = set() n, m = map(int, input().split()) n_rows = 0 n_columns = 0 ans = n*n for i in range(m): x, y = map(int, input().split()) if x not in rows: rows.add(x) n_rows += 1 if y not in columns: columns.add(y) n_columns += 1 print(ans - n*(n_rows + n_columns) + n_rows*n_columns) ```
3
777
A
Shell Game
PROGRAMMING
1,000
[ "constructive algorithms", "implementation", "math" ]
null
null
Bomboslav likes to look out of the window in his room and watch lads outside playing famous shell game. The game is played by two persons: operator and player. Operator takes three similar opaque shells and places a ball beneath one of them. Then he shuffles the shells by swapping some pairs and the player has to guess the current position of the ball. Bomboslav noticed that guys are not very inventive, so the operator always swaps the left shell with the middle one during odd moves (first, third, fifth, etc.) and always swaps the middle shell with the right one during even moves (second, fourth, etc.). Let's number shells from 0 to 2 from left to right. Thus the left shell is assigned number 0, the middle shell is 1 and the right shell is 2. Bomboslav has missed the moment when the ball was placed beneath the shell, but he knows that exactly *n* movements were made by the operator and the ball was under shell *x* at the end. Now he wonders, what was the initial position of the ball?
The first line of the input contains an integer *n* (1<=≤<=*n*<=≤<=2·109) — the number of movements made by the operator. The second line contains a single integer *x* (0<=≤<=*x*<=≤<=2) — the index of the shell where the ball was found after *n* movements.
Print one integer from 0 to 2 — the index of the shell where the ball was initially placed.
[ "4\n2\n", "1\n1\n" ]
[ "1\n", "0\n" ]
In the first sample, the ball was initially placed beneath the middle shell and the operator completed four movements. 1. During the first move operator swapped the left shell and the middle shell. The ball is now under the left shell. 1. During the second move operator swapped the middle shell and the right one. The ball is still under the left shell. 1. During the third move operator swapped the left shell and the middle shell again. The ball is again in the middle. 1. Finally, the operators swapped the middle shell and the right shell. The ball is now beneath the right shell.
500
[ { "input": "4\n2", "output": "1" }, { "input": "1\n1", "output": "0" }, { "input": "2\n2", "output": "0" }, { "input": "3\n1", "output": "1" }, { "input": "3\n2", "output": "0" }, { "input": "3\n0", "output": "2" }, { "input": "2000000000\n0", "output": "1" }, { "input": "2\n0", "output": "1" }, { "input": "2\n1", "output": "2" }, { "input": "4\n0", "output": "2" }, { "input": "4\n1", "output": "0" }, { "input": "5\n0", "output": "0" }, { "input": "5\n1", "output": "2" }, { "input": "5\n2", "output": "1" }, { "input": "6\n0", "output": "0" }, { "input": "6\n1", "output": "1" }, { "input": "6\n2", "output": "2" }, { "input": "7\n0", "output": "1" }, { "input": "7\n1", "output": "0" }, { "input": "7\n2", "output": "2" }, { "input": "100000\n0", "output": "2" }, { "input": "100000\n1", "output": "0" }, { "input": "100000\n2", "output": "1" }, { "input": "99999\n1", "output": "1" }, { "input": "99998\n1", "output": "2" }, { "input": "99997\n1", "output": "0" }, { "input": "99996\n1", "output": "1" }, { "input": "99995\n1", "output": "2" }, { "input": "1999999995\n0", "output": "2" }, { "input": "1999999995\n1", "output": "1" }, { "input": "1999999995\n2", "output": "0" }, { "input": "1999999996\n0", "output": "2" }, { "input": "1999999996\n1", "output": "0" }, { "input": "1999999996\n2", "output": "1" }, { "input": "1999999997\n0", "output": "0" }, { "input": "1999999997\n1", "output": "2" }, { "input": "1999999997\n2", "output": "1" }, { "input": "1999999998\n0", "output": "0" }, { "input": "1999999998\n1", "output": "1" }, { "input": "1999999998\n2", "output": "2" }, { "input": "1999999999\n0", "output": "1" }, { "input": "1999999999\n1", "output": "0" }, { "input": "1999999999\n2", "output": "2" }, { "input": "2000000000\n1", "output": "2" }, { "input": "2000000000\n2", "output": "0" }, { "input": "1234567890\n0", "output": "0" }, { "input": "1234567890\n1", "output": "1" }, { "input": "1234567890\n2", "output": "2" }, { "input": "123456789\n0", "output": "2" }, { "input": "123456789\n1", "output": "1" }, { "input": "123456789\n2", "output": "0" }, { "input": "123456790\n0", "output": "2" }, { "input": "12\n2", "output": "2" }, { "input": "32\n1", "output": "2" }, { "input": "20\n2", "output": "0" }, { "input": "10\n1", "output": "0" }, { "input": "1\n0", "output": "1" }, { "input": "76994383\n1", "output": "0" }, { "input": "25\n2", "output": "2" }, { "input": "1\n2", "output": "2" }, { "input": "12\n0", "output": "0" }, { "input": "150\n2", "output": "2" }, { "input": "15\n0", "output": "2" }, { "input": "21\n2", "output": "0" }, { "input": "18\n2", "output": "2" }, { "input": "8\n2", "output": "0" }, { "input": "10\n0", "output": "2" }, { "input": "16\n0", "output": "2" } ]
1,488,055,838
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
6
46
4,608,000
n=int(input("")) x=int(input("")) nums=[0,1,2,2,1] if nums[n]==x: print(0) elif nums[(n-2)%5]==x: print(1) else: print(2)
Title: Shell Game Time Limit: None seconds Memory Limit: None megabytes Problem Description: Bomboslav likes to look out of the window in his room and watch lads outside playing famous shell game. The game is played by two persons: operator and player. Operator takes three similar opaque shells and places a ball beneath one of them. Then he shuffles the shells by swapping some pairs and the player has to guess the current position of the ball. Bomboslav noticed that guys are not very inventive, so the operator always swaps the left shell with the middle one during odd moves (first, third, fifth, etc.) and always swaps the middle shell with the right one during even moves (second, fourth, etc.). Let's number shells from 0 to 2 from left to right. Thus the left shell is assigned number 0, the middle shell is 1 and the right shell is 2. Bomboslav has missed the moment when the ball was placed beneath the shell, but he knows that exactly *n* movements were made by the operator and the ball was under shell *x* at the end. Now he wonders, what was the initial position of the ball? Input Specification: The first line of the input contains an integer *n* (1<=≤<=*n*<=≤<=2·109) — the number of movements made by the operator. The second line contains a single integer *x* (0<=≤<=*x*<=≤<=2) — the index of the shell where the ball was found after *n* movements. Output Specification: Print one integer from 0 to 2 — the index of the shell where the ball was initially placed. Demo Input: ['4\n2\n', '1\n1\n'] Demo Output: ['1\n', '0\n'] Note: In the first sample, the ball was initially placed beneath the middle shell and the operator completed four movements. 1. During the first move operator swapped the left shell and the middle shell. The ball is now under the left shell. 1. During the second move operator swapped the middle shell and the right one. The ball is still under the left shell. 1. During the third move operator swapped the left shell and the middle shell again. The ball is again in the middle. 1. Finally, the operators swapped the middle shell and the right shell. The ball is now beneath the right shell.
```python n=int(input("")) x=int(input("")) nums=[0,1,2,2,1] if nums[n]==x: print(0) elif nums[(n-2)%5]==x: print(1) else: print(2) ```
-1
248
A
Cupboards
PROGRAMMING
800
[ "implementation" ]
null
null
One foggy Stockholm morning, Karlsson decided to snack on some jam in his friend Lillebror Svantenson's house. Fortunately for Karlsson, there wasn't anybody in his friend's house. Karlsson was not going to be hungry any longer, so he decided to get some food in the house. Karlsson's gaze immediately fell on *n* wooden cupboards, standing in the kitchen. He immediately realized that these cupboards have hidden jam stocks. Karlsson began to fly greedily around the kitchen, opening and closing the cupboards' doors, grab and empty all the jars of jam that he could find. And now all jars of jam are empty, Karlsson has had enough and does not want to leave traces of his stay, so as not to let down his friend. Each of the cupboards has two doors: the left one and the right one. Karlsson remembers that when he rushed to the kitchen, all the cupboards' left doors were in the same position (open or closed), similarly, all the cupboards' right doors were in the same position (open or closed). Karlsson wants the doors to meet this condition as well by the time the family returns. Karlsson does not remember the position of all the left doors, also, he cannot remember the position of all the right doors. Therefore, it does not matter to him in what position will be all left or right doors. It is important to leave all the left doors in the same position, and all the right doors in the same position. For example, all the left doors may be closed, and all the right ones may be open. Karlsson needs one second to open or close a door of a cupboard. He understands that he has very little time before the family returns, so he wants to know the minimum number of seconds *t*, in which he is able to bring all the cupboard doors in the required position. Your task is to write a program that will determine the required number of seconds *t*.
The first input line contains a single integer *n* — the number of cupboards in the kitchen (2<=≤<=*n*<=≤<=104). Then follow *n* lines, each containing two integers *l**i* and *r**i* (0<=≤<=*l**i*,<=*r**i*<=≤<=1). Number *l**i* equals one, if the left door of the *i*-th cupboard is opened, otherwise number *l**i* equals zero. Similarly, number *r**i* equals one, if the right door of the *i*-th cupboard is opened, otherwise number *r**i* equals zero. The numbers in the lines are separated by single spaces.
In the only output line print a single integer *t* — the minimum number of seconds Karlsson needs to change the doors of all cupboards to the position he needs.
[ "5\n0 1\n1 0\n0 1\n1 1\n0 1\n" ]
[ "3\n" ]
none
500
[ { "input": "5\n0 1\n1 0\n0 1\n1 1\n0 1", "output": "3" }, { "input": "2\n0 0\n0 0", "output": "0" }, { "input": "3\n0 1\n1 1\n1 1", "output": "1" }, { "input": "8\n0 1\n1 0\n0 1\n1 1\n0 1\n1 0\n0 1\n1 0", "output": "7" }, { "input": "8\n1 0\n1 0\n1 0\n0 1\n0 1\n1 1\n1 1\n0 1", "output": "6" }, { "input": "15\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "5\n1 0\n1 0\n1 0\n0 1\n0 1", "output": "4" } ]
1,544,596,901
2,147,483,647
PyPy 3
OK
TESTS
57
498
2,662,400
n = int(input()) c = []; d = [] for I in range (n): a, b = map(int, input ().split ()) c.append(a) d.append(b) print(min(c.count(1), c.count(0)) + min (d.count(1), d.count(0)))
Title: Cupboards Time Limit: None seconds Memory Limit: None megabytes Problem Description: One foggy Stockholm morning, Karlsson decided to snack on some jam in his friend Lillebror Svantenson's house. Fortunately for Karlsson, there wasn't anybody in his friend's house. Karlsson was not going to be hungry any longer, so he decided to get some food in the house. Karlsson's gaze immediately fell on *n* wooden cupboards, standing in the kitchen. He immediately realized that these cupboards have hidden jam stocks. Karlsson began to fly greedily around the kitchen, opening and closing the cupboards' doors, grab and empty all the jars of jam that he could find. And now all jars of jam are empty, Karlsson has had enough and does not want to leave traces of his stay, so as not to let down his friend. Each of the cupboards has two doors: the left one and the right one. Karlsson remembers that when he rushed to the kitchen, all the cupboards' left doors were in the same position (open or closed), similarly, all the cupboards' right doors were in the same position (open or closed). Karlsson wants the doors to meet this condition as well by the time the family returns. Karlsson does not remember the position of all the left doors, also, he cannot remember the position of all the right doors. Therefore, it does not matter to him in what position will be all left or right doors. It is important to leave all the left doors in the same position, and all the right doors in the same position. For example, all the left doors may be closed, and all the right ones may be open. Karlsson needs one second to open or close a door of a cupboard. He understands that he has very little time before the family returns, so he wants to know the minimum number of seconds *t*, in which he is able to bring all the cupboard doors in the required position. Your task is to write a program that will determine the required number of seconds *t*. Input Specification: The first input line contains a single integer *n* — the number of cupboards in the kitchen (2<=≤<=*n*<=≤<=104). Then follow *n* lines, each containing two integers *l**i* and *r**i* (0<=≤<=*l**i*,<=*r**i*<=≤<=1). Number *l**i* equals one, if the left door of the *i*-th cupboard is opened, otherwise number *l**i* equals zero. Similarly, number *r**i* equals one, if the right door of the *i*-th cupboard is opened, otherwise number *r**i* equals zero. The numbers in the lines are separated by single spaces. Output Specification: In the only output line print a single integer *t* — the minimum number of seconds Karlsson needs to change the doors of all cupboards to the position he needs. Demo Input: ['5\n0 1\n1 0\n0 1\n1 1\n0 1\n'] Demo Output: ['3\n'] Note: none
```python n = int(input()) c = []; d = [] for I in range (n): a, b = map(int, input ().split ()) c.append(a) d.append(b) print(min(c.count(1), c.count(0)) + min (d.count(1), d.count(0))) ```
3
168
A
Wizards and Demonstration
PROGRAMMING
900
[ "implementation", "math" ]
null
null
Some country is populated by wizards. They want to organize a demonstration. There are *n* people living in the city, *x* of them are the wizards who will surely go to the demonstration. Other city people (*n*<=-<=*x* people) do not support the wizards and aren't going to go to the demonstration. We know that the city administration will react only to the demonstration involving at least *y* percent of the city people. Having considered the matter, the wizards decided to create clone puppets which can substitute the city people on the demonstration. So all in all, the demonstration will involve only the wizards and their puppets. The city administration cannot tell the difference between a puppet and a person, so, as they calculate the percentage, the administration will consider the city to be consisting of only *n* people and not containing any clone puppets. Help the wizards and find the minimum number of clones to create to that the demonstration had no less than *y* percent of the city people.
The first line contains three space-separated integers, *n*, *x*, *y* (1<=≤<=*n*,<=*x*,<=*y*<=≤<=104,<=*x*<=≤<=*n*) — the number of citizens in the city, the number of wizards and the percentage the administration needs, correspondingly. Please note that *y* can exceed 100 percent, that is, the administration wants to see on a demonstration more people that actually live in the city (<=&gt;<=*n*).
Print a single integer — the answer to the problem, the minimum number of clones to create, so that the demonstration involved no less than *y* percent of *n* (the real total city population).
[ "10 1 14\n", "20 10 50\n", "1000 352 146\n" ]
[ "1\n", "0\n", "1108\n" ]
In the first sample it is necessary that at least 14% of 10 people came to the demonstration. As the number of people should be integer, then at least two people should come. There is only one wizard living in the city and he is going to come. That isn't enough, so he needs to create one clone. In the second sample 10 people should come to the demonstration. The city has 10 wizards. They will all come to the demonstration, so nobody has to create any clones.
500
[ { "input": "10 1 14", "output": "1" }, { "input": "20 10 50", "output": "0" }, { "input": "1000 352 146", "output": "1108" }, { "input": "68 65 20", "output": "0" }, { "input": "78 28 27", "output": "0" }, { "input": "78 73 58", "output": "0" }, { "input": "70 38 66", "output": "9" }, { "input": "54 4 38", "output": "17" }, { "input": "3 1 69", "output": "2" }, { "input": "11 9 60", "output": "0" }, { "input": "71 49 65", "output": "0" }, { "input": "78 55 96", "output": "20" }, { "input": "2765 768 9020", "output": "248635" }, { "input": "3478 1728 9727", "output": "336578" }, { "input": "9678 6173 5658", "output": "541409" }, { "input": "1138 570 6666", "output": "75290" }, { "input": "7754 204 9038", "output": "700603" }, { "input": "8403 7401 4769", "output": "393339" }, { "input": "4909 2111 8860", "output": "432827" }, { "input": "6571 6449 8965", "output": "582642" }, { "input": "9178 2255 7996", "output": "731618" }, { "input": "6151 6148 3746", "output": "224269" }, { "input": "8890 5449 8734", "output": "771004" }, { "input": "7879 2590 2818", "output": "219441" }, { "input": "8484 6400 547", "output": "40008" }, { "input": "7835 6710 1639", "output": "121706" }, { "input": "2379 1436 9663", "output": "228447" }, { "input": "6487 5670 8", "output": "0" }, { "input": "4470 2543 6", "output": "0" }, { "input": "7261 5328 10", "output": "0" }, { "input": "3871 3795 7", "output": "0" }, { "input": "9620 6557 6", "output": "0" }, { "input": "4890 1112 5", "output": "0" }, { "input": "1 1 1", "output": "0" }, { "input": "1 1 10000", "output": "99" }, { "input": "10000 1 1", "output": "99" }, { "input": "10000 1 10000", "output": "999999" }, { "input": "10000 10000 1", "output": "0" }, { "input": "10000 10000 10000", "output": "990000" }, { "input": "67 1 3", "output": "2" }, { "input": "7878 4534 9159", "output": "717013" }, { "input": "1 1 1", "output": "0" }, { "input": "3271 5 50", "output": "1631" } ]
1,679,727,588
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
3
124
0
from math import * n,x,y=map(int,input().split()) print(ceil((n*y/100)-x))
Title: Wizards and Demonstration Time Limit: None seconds Memory Limit: None megabytes Problem Description: Some country is populated by wizards. They want to organize a demonstration. There are *n* people living in the city, *x* of them are the wizards who will surely go to the demonstration. Other city people (*n*<=-<=*x* people) do not support the wizards and aren't going to go to the demonstration. We know that the city administration will react only to the demonstration involving at least *y* percent of the city people. Having considered the matter, the wizards decided to create clone puppets which can substitute the city people on the demonstration. So all in all, the demonstration will involve only the wizards and their puppets. The city administration cannot tell the difference between a puppet and a person, so, as they calculate the percentage, the administration will consider the city to be consisting of only *n* people and not containing any clone puppets. Help the wizards and find the minimum number of clones to create to that the demonstration had no less than *y* percent of the city people. Input Specification: The first line contains three space-separated integers, *n*, *x*, *y* (1<=≤<=*n*,<=*x*,<=*y*<=≤<=104,<=*x*<=≤<=*n*) — the number of citizens in the city, the number of wizards and the percentage the administration needs, correspondingly. Please note that *y* can exceed 100 percent, that is, the administration wants to see on a demonstration more people that actually live in the city (<=&gt;<=*n*). Output Specification: Print a single integer — the answer to the problem, the minimum number of clones to create, so that the demonstration involved no less than *y* percent of *n* (the real total city population). Demo Input: ['10 1 14\n', '20 10 50\n', '1000 352 146\n'] Demo Output: ['1\n', '0\n', '1108\n'] Note: In the first sample it is necessary that at least 14% of 10 people came to the demonstration. As the number of people should be integer, then at least two people should come. There is only one wizard living in the city and he is going to come. That isn't enough, so he needs to create one clone. In the second sample 10 people should come to the demonstration. The city has 10 wizards. They will all come to the demonstration, so nobody has to create any clones.
```python from math import * n,x,y=map(int,input().split()) print(ceil((n*y/100)-x)) ```
0
616
A
Comparing Two Long Integers
PROGRAMMING
900
[ "implementation", "strings" ]
null
null
You are given two very long integers *a*,<=*b* (leading zeroes are allowed). You should check what number *a* or *b* is greater or determine that they are equal. The input size is very large so don't use the reading of symbols one by one. Instead of that use the reading of a whole line or token. As input/output can reach huge size it is recommended to use fast input/output methods: for example, prefer to use scanf/printf instead of cin/cout in C++, prefer to use BufferedReader/PrintWriter instead of Scanner/System.out in Java. Don't use the function input() in Python2 instead of it use the function raw_input().
The first line contains a non-negative integer *a*. The second line contains a non-negative integer *b*. The numbers *a*,<=*b* may contain leading zeroes. Each of them contains no more than 106 digits.
Print the symbol "&lt;" if *a*<=&lt;<=*b* and the symbol "&gt;" if *a*<=&gt;<=*b*. If the numbers are equal print the symbol "=".
[ "9\n10\n", "11\n10\n", "00012345\n12345\n", "0123\n9\n", "0123\n111\n" ]
[ "&lt;\n", "&gt;\n", "=\n", "&gt;\n", "&gt;\n" ]
none
0
[ { "input": "9\n10", "output": "<" }, { "input": "11\n10", "output": ">" }, { "input": "00012345\n12345", "output": "=" }, { "input": "0123\n9", "output": ">" }, { "input": "0123\n111", "output": ">" }, { "input": "9\n9", "output": "=" }, { "input": "0\n0000", "output": "=" }, { "input": "1213121\n1213121", "output": "=" }, { "input": "8631749422082281871941140403034638286979613893271246118706788645620907151504874585597378422393911017\n1460175633701201615285047975806206470993708143873675499262156511814213451040881275819636625899967479", "output": ">" }, { "input": "6421902501252475186372406731932548506197390793597574544727433297197476846519276598727359617092494798\n8", "output": ">" }, { "input": "9\n3549746075165939381145061479392284958612916596558639332310874529760172204736013341477640605383578772", "output": "<" }, { "input": "11111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111\n11111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111", "output": "=" }, { "input": "0000000001\n2", "output": "<" }, { "input": "1000000000000000000000000000000000\n1000000000000000000000000000000001", "output": "<" }, { "input": "123456123456123456123456123456123456123456123456123456123456123456\n123456123456123456123456123456123456123456123456123456123456123456123456123456", "output": "<" }, { "input": "1111111111111111111111111111111111111111\n2222222222222222222222222222222222222222", "output": "<" }, { "input": "123456789999999\n123456789999999", "output": "=" }, { "input": "111111111111111111111111111111\n222222222222222222222222222222", "output": "<" }, { "input": "1111111111111111111111111111111111111111111111111111111111111111111111\n1111111111111111111111111111111111111111111111111111111111111111111111", "output": "=" }, { "input": "587345873489573457357834\n47957438573458347574375348", "output": "<" }, { "input": "1111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111\n33333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333", "output": "<" }, { "input": "11111111111111111111111111111111111\n44444444444444444444444444444444444", "output": "<" }, { "input": "11111111111111111111111111111111111\n22222222222222222222222222222222222", "output": "<" }, { "input": "9999999999999999999999999999999999999999999999999999999999999999999\n99999999999999999999999999999999999999999999999999999999999999999999999999999999999999", "output": "<" }, { "input": "1\n2", "output": "<" }, { "input": "9\n0", "output": ">" }, { "input": "222222222222222222222222222222222222222222222222222222222\n22222222222222222222222222222222222222222222222222222222222", "output": "<" }, { "input": "66646464222222222222222222222222222222222222222222222222222222222222222\n111111111111111111111111111111111111111111111111111111111111111111111111111111111111", "output": "<" }, { "input": "222222222222222222222222222222222222222222222222222\n111111111111111111111111111111111111111111111111111111111111111", "output": "<" }, { "input": "11111111111111111111111111111111111111\n44444444444444444444444444444444444444", "output": "<" }, { "input": "01\n2", "output": "<" }, { "input": "00\n01", "output": "<" }, { "input": "99999999999999999999999999999999999999999999999\n99999999999999999999999999999999999999999999999", "output": "=" }, { "input": "43278947323248843213443272432\n793439250984509434324323453435435", "output": "<" }, { "input": "0\n1", "output": "<" }, { "input": "010\n011", "output": "<" }, { "input": "999999999999999999999999999999999999999999999999\n999999999999999999999999999999999999999999999999", "output": "=" }, { "input": "0001001\n0001010", "output": "<" }, { "input": "1111111111111111111111111111111111111111111111111111111111111\n1111111111111111111111111111111111111111111111111111111111111", "output": "=" }, { "input": "00000\n00", "output": "=" }, { "input": "999999999999999999999999999\n999999999999999999999999999", "output": "=" }, { "input": "999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999\n999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999", "output": "=" }, { "input": "001\n000000000010", "output": "<" }, { "input": "01\n10", "output": "<" }, { "input": "555555555555555555555555555555555555555555555555555555555555\n555555555555555555555555555555555555555555555555555555555555", "output": "=" }, { "input": "5555555555555555555555555555555555555555555555555\n5555555555555555555555555555555555555555555555555", "output": "=" }, { "input": "01\n02", "output": "<" }, { "input": "001111\n0001111", "output": "=" }, { "input": "55555555555555555555555555555555555555555555555555\n55555555555555555555555555555555555555555555555555", "output": "=" }, { "input": "1029301293019283091283091283091280391283\n1029301293019283091283091283091280391283", "output": "=" }, { "input": "001\n2", "output": "<" }, { "input": "000000000\n000000000", "output": "=" }, { "input": "000000\n10", "output": "<" }, { "input": "000000000000000\n001", "output": "<" }, { "input": "0000001\n2", "output": "<" }, { "input": "0000\n123", "output": "<" }, { "input": "951\n960", "output": "<" }, { "input": "002\n0001", "output": ">" }, { "input": "0000001\n01", "output": "=" }, { "input": "99999999999999999999999999999999999999999999999999999999999999\n99999999999999999999999999999999999999999999999999999999999999", "output": "=" }, { "input": "12345678901234567890123456789012345678901234567890123456789012\n12345678901234567890123456789012345678901234567890123456789012", "output": "=" }, { "input": "02\n01", "output": ">" }, { "input": "00000111111\n00000110111", "output": ">" }, { "input": "0123\n123", "output": "=" }, { "input": "123771237912798378912\n91239712798379812897389123123123123", "output": "<" }, { "input": "00001\n002", "output": "<" }, { "input": "0000000000000000000000000000000000000000000000000000000000000\n000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000", "output": "=" }, { "input": "000000001\n00002", "output": "<" }, { "input": "00002\n00003", "output": "<" }, { "input": "000123456\n123457", "output": "<" }, { "input": "01\n00", "output": ">" }, { "input": "00\n0", "output": "=" }, { "input": "10\n11", "output": "<" }, { "input": "0011\n12", "output": "<" }, { "input": "00\n1", "output": "<" }, { "input": "0\n0", "output": "=" }, { "input": "00\n10", "output": "<" }, { "input": "011\n10", "output": ">" }, { "input": "00011111111111111111111111111111111111000000000000000000000000000000000000000000000000000210000000000000000000000000000000000000000011000\n11111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111112091", "output": "<" }, { "input": "0000001\n00", "output": ">" }, { "input": "01\n1", "output": "=" }, { "input": "010\n001", "output": ">" }, { "input": "100\n111", "output": "<" }, { "input": "1\n0", "output": ">" }, { "input": "000000\n000000000000000000000", "output": "=" }, { "input": "010101\n010101", "output": "=" }, { "input": "00000000000000000001111111111111111111111111111111111111111111111111111111\n11111111111111111111111", "output": ">" }, { "input": "0000000\n0", "output": "=" }, { "input": "187923712738712879387912839182381\n871279397127389781927389718923789178923897123", "output": "<" }, { "input": "0010\n030", "output": "<" } ]
1,639,484,326
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
0
77
0
a = input() b = input() i = 0 while a[i] == '0' and i < len(a)-1: i += 1 a = a[i:] i = 0 while b[i] == '0' and i < len(b)-1: i += 1 b = b[i:] if len(a) == len(b): ans_found = False for i in range(len(a)): if a[i] < b[i]: ans_found = True print('<') break if a[i] > b[i]: ans_found = True print('>') break if not ans_found: print('=') else: print('=')
Title: Comparing Two Long Integers Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two very long integers *a*,<=*b* (leading zeroes are allowed). You should check what number *a* or *b* is greater or determine that they are equal. The input size is very large so don't use the reading of symbols one by one. Instead of that use the reading of a whole line or token. As input/output can reach huge size it is recommended to use fast input/output methods: for example, prefer to use scanf/printf instead of cin/cout in C++, prefer to use BufferedReader/PrintWriter instead of Scanner/System.out in Java. Don't use the function input() in Python2 instead of it use the function raw_input(). Input Specification: The first line contains a non-negative integer *a*. The second line contains a non-negative integer *b*. The numbers *a*,<=*b* may contain leading zeroes. Each of them contains no more than 106 digits. Output Specification: Print the symbol "&lt;" if *a*<=&lt;<=*b* and the symbol "&gt;" if *a*<=&gt;<=*b*. If the numbers are equal print the symbol "=". Demo Input: ['9\n10\n', '11\n10\n', '00012345\n12345\n', '0123\n9\n', '0123\n111\n'] Demo Output: ['&lt;\n', '&gt;\n', '=\n', '&gt;\n', '&gt;\n'] Note: none
```python a = input() b = input() i = 0 while a[i] == '0' and i < len(a)-1: i += 1 a = a[i:] i = 0 while b[i] == '0' and i < len(b)-1: i += 1 b = b[i:] if len(a) == len(b): ans_found = False for i in range(len(a)): if a[i] < b[i]: ans_found = True print('<') break if a[i] > b[i]: ans_found = True print('>') break if not ans_found: print('=') else: print('=') ```
0
435
A
Queue on Bus Stop
PROGRAMMING
1,000
[ "implementation" ]
null
null
It's that time of the year when the Russians flood their countryside summer cottages (dachas) and the bus stop has a lot of people. People rarely go to the dacha on their own, it's usually a group, so the people stand in queue by groups. The bus stop queue has *n* groups of people. The *i*-th group from the beginning has *a**i* people. Every 30 minutes an empty bus arrives at the bus stop, it can carry at most *m* people. Naturally, the people from the first group enter the bus first. Then go the people from the second group and so on. Note that the order of groups in the queue never changes. Moreover, if some group cannot fit all of its members into the current bus, it waits for the next bus together with other groups standing after it in the queue. Your task is to determine how many buses is needed to transport all *n* groups to the dacha countryside.
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100). The next line contains *n* integers: *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*m*).
Print a single integer — the number of buses that is needed to transport all *n* groups to the dacha countryside.
[ "4 3\n2 3 2 1\n", "3 4\n1 2 1\n" ]
[ "3\n", "1\n" ]
none
500
[ { "input": "4 3\n2 3 2 1", "output": "3" }, { "input": "3 4\n1 2 1", "output": "1" }, { "input": "1 5\n4", "output": "1" }, { "input": "5 1\n1 1 1 1 1", "output": "5" }, { "input": "6 4\n1 3 2 3 4 1", "output": "5" }, { "input": "6 8\n6 1 1 1 4 5", "output": "3" }, { "input": "10 10\n1 10 1 10 1 1 7 8 6 7", "output": "8" }, { "input": "100 100\n85 50 17 89 65 89 5 20 86 26 16 21 85 14 44 31 87 31 6 2 48 67 8 80 79 1 48 36 97 1 5 30 79 50 78 12 2 55 76 100 54 40 26 81 97 96 68 56 87 14 51 17 54 37 52 33 69 62 38 63 74 15 62 78 9 19 67 2 60 58 93 60 18 96 55 48 34 7 79 82 32 58 90 67 20 50 27 15 7 89 98 10 11 15 99 49 4 51 77 52", "output": "63" }, { "input": "10 1\n1 1 1 1 1 1 1 1 1 1", "output": "10" }, { "input": "10 2\n2 2 1 1 1 1 1 2 1 2", "output": "8" }, { "input": "10 3\n1 3 1 1 3 2 2 2 3 3", "output": "9" }, { "input": "10 4\n2 1 1 1 3 4 4 4 1 2", "output": "6" }, { "input": "10 5\n2 2 3 4 4 1 5 3 1 2", "output": "7" }, { "input": "100 3\n1 2 3 2 1 2 2 3 1 3 3 2 2 1 1 2 2 1 1 1 1 2 3 3 2 1 1 2 2 2 3 3 3 2 1 3 1 3 3 2 3 1 2 2 2 3 2 1 1 3 3 3 3 2 1 1 2 3 2 2 3 2 3 2 2 3 2 2 2 2 3 3 3 1 3 3 1 1 2 3 2 2 2 2 3 3 3 2 1 2 3 1 1 2 3 3 1 3 3 2", "output": "83" }, { "input": "100 7\n4 7 4 7 7 4 7 3 5 6 3 5 4 3 7 2 7 2 4 1 6 3 3 7 4 4 5 4 3 6 4 3 2 2 1 4 4 1 7 3 7 7 1 3 1 5 4 1 5 3 5 2 2 1 5 5 1 5 2 7 5 5 1 5 5 4 6 5 1 3 5 6 7 4 1 3 3 4 3 2 7 6 5 7 2 7 1 1 2 2 3 1 3 7 1 3 2 1 1 7", "output": "71" }, { "input": "100 10\n3 4 8 10 8 6 4 3 7 7 6 2 3 1 3 10 1 7 9 3 5 5 2 6 2 9 1 7 4 2 4 1 6 1 7 10 2 5 3 7 6 4 6 2 8 8 8 6 6 10 3 7 4 3 4 1 7 9 3 6 3 6 1 4 9 3 8 1 10 1 4 10 7 7 9 5 3 8 10 2 1 10 8 7 10 8 5 3 1 2 1 10 6 1 5 3 3 5 7 2", "output": "64" }, { "input": "100 15\n3 12 8 3 11 14 12 14 1 11 13 3 5 13 4 14 2 11 7 8 12 9 15 7 15 1 4 11 6 12 1 3 8 13 1 8 14 4 3 14 1 3 1 6 10 15 13 11 12 1 14 13 11 14 11 3 12 7 3 15 14 4 5 6 5 14 7 14 6 2 6 12 6 13 13 1 9 13 15 11 6 3 15 11 9 4 15 8 15 12 1 15 10 10 4 1 15 1 4 1", "output": "71" }, { "input": "100 30\n7 14 22 16 11 13 7 29 20 19 22 6 12 16 1 8 27 21 22 3 15 27 20 12 4 19 1 26 26 22 25 17 29 25 16 29 29 28 16 26 25 14 16 20 5 21 5 15 19 13 17 21 17 19 23 13 1 25 6 30 16 19 12 10 28 8 15 13 14 24 19 30 12 19 22 1 3 14 16 3 20 26 15 19 9 10 19 27 2 16 10 22 15 13 19 3 24 9 8 13", "output": "71" }, { "input": "100 40\n39 19 13 36 11 21 32 12 1 2 39 26 32 39 24 1 4 19 10 4 16 39 32 34 13 24 30 35 3 10 8 18 13 12 39 27 31 40 37 20 17 17 37 5 10 12 22 17 7 1 31 13 11 10 2 6 22 16 2 4 9 27 6 35 22 16 22 30 33 2 26 20 35 19 40 37 19 17 21 28 37 28 40 4 5 4 35 19 26 36 19 12 21 20 21 30 9 16 9 32", "output": "65" }, { "input": "100 50\n2 46 4 6 38 19 15 34 10 35 37 30 3 25 5 45 40 45 33 31 6 20 10 44 11 9 2 14 35 5 9 23 20 2 48 22 25 35 38 31 24 33 35 16 4 30 27 10 12 22 6 24 12 30 23 21 14 12 32 21 7 12 25 43 18 34 34 28 47 13 28 43 18 39 44 42 35 26 35 14 8 29 32 20 29 3 20 6 20 9 9 27 8 42 10 37 42 27 8 1", "output": "60" }, { "input": "100 60\n34 21 39 17 48 46 23 56 46 52 50 39 55 48 54 38 32 38 24 26 44 12 28 9 25 26 10 52 42 60 41 3 16 60 44 29 27 55 19 19 19 57 45 59 29 35 5 14 50 47 57 48 16 7 12 36 58 31 37 58 30 50 19 11 10 41 59 57 49 41 33 9 12 11 53 50 60 51 21 9 44 23 1 16 4 15 17 57 15 17 46 50 18 52 43 24 47 50 19 18", "output": "74" }, { "input": "100 90\n74 65 49 41 3 79 61 83 50 40 13 57 90 14 62 77 36 10 3 5 5 40 50 75 32 26 3 71 79 54 88 50 46 20 42 59 30 36 83 86 60 62 82 68 62 80 18 65 28 28 81 74 62 33 61 35 33 83 90 72 6 6 51 4 22 20 29 10 8 3 84 69 12 17 24 16 12 64 80 74 68 59 1 59 15 59 37 58 79 83 51 56 81 14 37 45 19 31 61 90", "output": "67" }, { "input": "100 99\n69 46 76 47 71 9 66 46 78 17 96 83 56 96 29 3 43 48 79 23 93 61 19 9 29 72 15 84 93 46 71 87 11 43 96 44 54 75 3 66 2 95 46 32 69 52 79 38 57 53 37 60 71 82 28 31 84 58 89 40 62 74 22 50 45 38 99 67 24 28 28 12 69 88 33 10 31 71 46 7 42 81 54 81 96 44 8 1 20 24 28 19 54 35 69 32 71 13 66 15", "output": "68" }, { "input": "90 100\n25 52 88 89 36 17 57 64 66 11 89 61 54 92 48 51 18 42 44 92 6 14 67 100 16 21 17 88 85 73 33 11 94 84 56 72 4 80 90 78 96 5 62 70 54 70 94 80 10 91 100 89 98 87 69 74 88 63 53 79 38 94 89 52 21 82 67 79 100 81 2 40 30 69 34 15 12 33 87 52 95 18 51 30 15 39 30 99 46 84", "output": "67" }, { "input": "5 100\n14 67 15 28 21", "output": "2" }, { "input": "10 100\n2 17 53 94 95 57 36 47 68 48", "output": "7" }, { "input": "1 100\n18", "output": "1" }, { "input": "100 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "100" }, { "input": "30 100\n56 7 99 83 2 65 35 53 99 36 42 57 13 37 68 52 87 11 50 23 86 24 32 39 97 6 64 1 18 86", "output": "18" }, { "input": "60 100\n18 75 43 88 45 43 20 59 59 79 62 39 53 21 28 46 54 53 97 81 18 15 2 95 84 9 36 70 30 76 17 19 83 40 45 32 31 70 23 14 44 35 79 84 97 96 99 60 3 73 64 83 6 12 67 86 70 89 18 61", "output": "40" }, { "input": "1 73\n24", "output": "1" }, { "input": "4 4\n1 4 4 4", "output": "4" }, { "input": "2 6\n1 4", "output": "1" }, { "input": "2 5\n5 5", "output": "2" } ]
1,542,881,439
2,147,483,647
Python 3
OK
TESTS
34
124
0
import math a = list(map(int,input().split())) people = list(map(int,input().split())) total_group = a[0] seat_bus = a[1] max_bus = total_group * seat_bus check = 0 loop = math.ceil(total_group) ##sums = sum(people) skip = False rem = 0 temp = people[0] prev = 0 cookies = 0 for i in range(0,loop-1): if temp + people[i+1] <= seat_bus: skip = False if people[i] + people[i+1] <= seat_bus and skip == False: temp = people[i] + people[i+1] people[i+1] = temp cookies +=1 else: cookies = 0 check+=1 last = people[-1] if last <= seat_bus and skip == False: check+=1 print(check)
Title: Queue on Bus Stop Time Limit: None seconds Memory Limit: None megabytes Problem Description: It's that time of the year when the Russians flood their countryside summer cottages (dachas) and the bus stop has a lot of people. People rarely go to the dacha on their own, it's usually a group, so the people stand in queue by groups. The bus stop queue has *n* groups of people. The *i*-th group from the beginning has *a**i* people. Every 30 minutes an empty bus arrives at the bus stop, it can carry at most *m* people. Naturally, the people from the first group enter the bus first. Then go the people from the second group and so on. Note that the order of groups in the queue never changes. Moreover, if some group cannot fit all of its members into the current bus, it waits for the next bus together with other groups standing after it in the queue. Your task is to determine how many buses is needed to transport all *n* groups to the dacha countryside. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100). The next line contains *n* integers: *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*m*). Output Specification: Print a single integer — the number of buses that is needed to transport all *n* groups to the dacha countryside. Demo Input: ['4 3\n2 3 2 1\n', '3 4\n1 2 1\n'] Demo Output: ['3\n', '1\n'] Note: none
```python import math a = list(map(int,input().split())) people = list(map(int,input().split())) total_group = a[0] seat_bus = a[1] max_bus = total_group * seat_bus check = 0 loop = math.ceil(total_group) ##sums = sum(people) skip = False rem = 0 temp = people[0] prev = 0 cookies = 0 for i in range(0,loop-1): if temp + people[i+1] <= seat_bus: skip = False if people[i] + people[i+1] <= seat_bus and skip == False: temp = people[i] + people[i+1] people[i+1] = temp cookies +=1 else: cookies = 0 check+=1 last = people[-1] if last <= seat_bus and skip == False: check+=1 print(check) ```
3
32
B
Borze
PROGRAMMING
800
[ "expression parsing", "implementation" ]
B. Borze
2
256
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as «.», 1 as «-.» and 2 as «--». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
Output the decoded ternary number. It can have leading zeroes.
[ ".-.--\n", "--.\n", "-..-.--\n" ]
[ "012", "20", "1012" ]
none
1,000
[ { "input": ".-.--", "output": "012" }, { "input": "--.", "output": "20" }, { "input": "-..-.--", "output": "1012" }, { "input": "---..", "output": "210" }, { "input": "..--.---..", "output": "0020210" }, { "input": "-.....----.", "output": "10000220" }, { "input": ".", "output": "0" }, { "input": "-.", "output": "1" }, { "input": "--", "output": "2" }, { "input": "..", "output": "00" }, { "input": "--.", "output": "20" }, { "input": ".--.", "output": "020" }, { "input": ".-.-..", "output": "0110" }, { "input": "----.-.", "output": "2201" }, { "input": "-..--.-.", "output": "10201" }, { "input": "..--..--.", "output": "0020020" }, { "input": "-.-.---.--..-..-.-.-..-..-.--.", "output": "112120010111010120" }, { "input": "---.-.-.------..-..-..-..-.-..-.--.-.-..-.-.-----..-.-.", "output": "21112220010101011012011011221011" }, { "input": "-.-..--.-.-.-.-.-..-.-.-.---------.--.---..--...--.-----.-.-.-...--.-.-.---.------.--..-.--.-----.-...-..------", "output": "11020111110111222212021020002022111100201121222020012022110010222" }, { "input": "-.-..-.--.---..---.-..---.-...-.-.----..-.---.-.---..-.--.---.-.-------.---.--....----.-.---.---.---.----.-----..---.-.-.-.-----.--.-------.-..", "output": "110120210211021100112200121121012021122212120000220121212122022102111122120222110" }, { "input": ".-..-.-.---.-----.--.---...-.--.-.-....-..", "output": "01011212212021001201100010" }, { "input": ".------.-.---..--...-..-..-.-.-.--.--.-..-.--...-.-.---.-.-.------..--..-.---..----.-..-.--.---.-.----.-.---...-.-.-.-----.-.-.---.---.-.....-.-...-----.-...-.---.-..-.-----.--...---.-.-..-.--.-.---..", "output": "022201210200010101112020101200011211122200200121022010120211220121001112211121211000011002211001211012212000211101201210" }, { "input": ".-.--.---.-----.-.-----.-.-..-----..-..----..--.-.--.----..---.---..-.-.-----..-------.----..----.-..---...-----..-..-----...-..-.-.-----....---..---..-.-----...-.--...--.-.---.-.-.-.-.-...---..----.", "output": "01202122112211102210102200201202200212101122102221220022010210022101022100101122100021021012210012000201211111100210220" }, { "input": "..-.-.-.---.-.-.-..-.-..-.-.---.-------.---..-----.---....-.---.--.--.-.---.---------.-..---.-.-.--..---.---.-.---.-.-..-.-..-.-.-.----.--.-....--------.-.---..----.------.-.-.--.--.-----.-----.----", "output": "0011121111011011212221210221210001212020121222211021112002121121110110111220201000222201210220222011202022122122" }, { "input": "-..-------.------.-..--.-.-..--.-.-..-----..-.-.-..-..-..--.---..-----..---..-..--.-..-.-.---...-.....-------.---.-----.-...-.-...-.-.---.---.-----.--.--...-.--..-.-..-...-.-.-.-.---..---.-..-.-.-.-..", "output": "102221222010201102011022101110101020210221021010201011210010000222121221100110011212122120200012001101001111210211011110" }, { "input": ".-.----.-.--..-.-.-.-..----..-.-...--.-.---.---.-------..-.--..-......--.------.--.----.--...-.--.--..-----..-.....--.--.-.-.------..--------.----------..-.---.----.---.-..--..-.....-..------.--.", "output": "012201200111102200110020121212221012001000002022202022020001202002210100002020112220022220222220012122021102001000010222020" }, { "input": "------.-----.-....--.-.----.-.---.-.-..---.-.---.-----..-...-.-.---..-.-.-..-.-.-...-.-.-.----..--.------.----.-..-.--...-.-------...-.-..-.-.--.--.---..--..--------.--.-.-.---.-.-.-...----.--..-.--..", "output": "222022110002012201211102112122101001121011101110011122002022202201012000122210011011202021020022220201121111002202001200" }, { "input": "-.---...----...--.--...-.--.----", "output": "121002200020200012022" }, { "input": "--.--.--.---.--.-.---.-.-..-..--.-..---.-.....-..---.-----.--...-.-.-------.-.--.-.----.-..-.------.", "output": "202020212012111010201021100001021221200011222112012201012220" } ]
1,632,066,868
2,147,483,647
Python 3
OK
TESTS
30
124
6,963,200
def solve(): s = input() + ' ' ans = '' n = len(s) - 1 i = 0 while(i != n): if(s[i] == '.'): ans += '0' i += 1 continue if(s[i] == '-' and s[i + 1] == '.'): ans += '1' i += 2 continue else: ans += '2' i += 2 return ans print(solve())
Title: Borze Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as «.», 1 as «-.» and 2 as «--». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet. Input Specification: The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes). Output Specification: Output the decoded ternary number. It can have leading zeroes. Demo Input: ['.-.--\n', '--.\n', '-..-.--\n'] Demo Output: ['012', '20', '1012'] Note: none
```python def solve(): s = input() + ' ' ans = '' n = len(s) - 1 i = 0 while(i != n): if(s[i] == '.'): ans += '0' i += 1 continue if(s[i] == '-' and s[i + 1] == '.'): ans += '1' i += 2 continue else: ans += '2' i += 2 return ans print(solve()) ```
3.95603
9
C
Hexadecimal's Numbers
PROGRAMMING
1,200
[ "brute force", "implementation", "math" ]
C. Hexadecimal's Numbers
1
64
One beautiful July morning a terrible thing happened in Mainframe: a mean virus Megabyte somehow got access to the memory of his not less mean sister Hexadecimal. He loaded there a huge amount of *n* different natural numbers from 1 to *n* to obtain total control over her energy. But his plan failed. The reason for this was very simple: Hexadecimal didn't perceive any information, apart from numbers written in binary format. This means that if a number in a decimal representation contained characters apart from 0 and 1, it was not stored in the memory. Now Megabyte wants to know, how many numbers were loaded successfully.
Input data contains the only number *n* (1<=≤<=*n*<=≤<=109).
Output the only number — answer to the problem.
[ "10\n" ]
[ "2" ]
For *n* = 10 the answer includes numbers 1 and 10.
0
[ { "input": "10", "output": "2" }, { "input": "20", "output": "3" }, { "input": "72", "output": "3" }, { "input": "99", "output": "3" }, { "input": "100", "output": "4" }, { "input": "101", "output": "5" }, { "input": "102", "output": "5" }, { "input": "111", "output": "7" }, { "input": "112", "output": "7" }, { "input": "745", "output": "7" }, { "input": "23536", "output": "31" }, { "input": "1", "output": "1" }, { "input": "1010011", "output": "83" }, { "input": "312410141", "output": "511" }, { "input": "1000000000", "output": "512" }, { "input": "999999999", "output": "511" }, { "input": "111111111", "output": "511" }, { "input": "101010101", "output": "341" }, { "input": "121212121", "output": "511" }, { "input": "106341103", "output": "383" }, { "input": "901556123", "output": "511" }, { "input": "832513432", "output": "511" }, { "input": "3", "output": "1" }, { "input": "732875234", "output": "511" }, { "input": "7", "output": "1" }, { "input": "9", "output": "1" }, { "input": "2", "output": "1" }, { "input": "11", "output": "3" }, { "input": "12", "output": "3" }, { "input": "13", "output": "3" }, { "input": "101020101", "output": "351" }, { "input": "111100100", "output": "484" }, { "input": "110110101", "output": "437" }, { "input": "100111001", "output": "313" }, { "input": "100100", "output": "36" }, { "input": "110100102", "output": "421" } ]
1,435,254,531
2,147,483,647
Python 3
OK
TESTS
36
156
307,200
from itertools import combinations n = int(input()) a = '101010101010101010' b = [] for i in range(1,11): s = list(set(combinations(a,i))) for j in range(len(s)): s[j] = int(''.join(s[j])) b.extend(s) b = sorted(set(b)) m = len(b) #print(b) #print(m) for i in range(m): if(b[i] > n): print(i-1) exit() print(n)
Title: Hexadecimal's Numbers Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: One beautiful July morning a terrible thing happened in Mainframe: a mean virus Megabyte somehow got access to the memory of his not less mean sister Hexadecimal. He loaded there a huge amount of *n* different natural numbers from 1 to *n* to obtain total control over her energy. But his plan failed. The reason for this was very simple: Hexadecimal didn't perceive any information, apart from numbers written in binary format. This means that if a number in a decimal representation contained characters apart from 0 and 1, it was not stored in the memory. Now Megabyte wants to know, how many numbers were loaded successfully. Input Specification: Input data contains the only number *n* (1<=≤<=*n*<=≤<=109). Output Specification: Output the only number — answer to the problem. Demo Input: ['10\n'] Demo Output: ['2'] Note: For *n* = 10 the answer includes numbers 1 and 10.
```python from itertools import combinations n = int(input()) a = '101010101010101010' b = [] for i in range(1,11): s = list(set(combinations(a,i))) for j in range(len(s)): s[j] = int(''.join(s[j])) b.extend(s) b = sorted(set(b)) m = len(b) #print(b) #print(m) for i in range(m): if(b[i] > n): print(i-1) exit() print(n) ```
3.919711
908
B
New Year and Buggy Bot
PROGRAMMING
1,200
[ "brute force", "implementation" ]
null
null
Bob programmed a robot to navigate through a 2d maze. The maze has some obstacles. Empty cells are denoted by the character '.', where obstacles are denoted by '#'. There is a single robot in the maze. Its start position is denoted with the character 'S'. This position has no obstacle in it. There is also a single exit in the maze. Its position is denoted with the character 'E'. This position has no obstacle in it. The robot can only move up, left, right, or down. When Bob programmed the robot, he wrote down a string of digits consisting of the digits 0 to 3, inclusive. He intended for each digit to correspond to a distinct direction, and the robot would follow the directions in order to reach the exit. Unfortunately, he forgot to actually assign the directions to digits. The robot will choose some random mapping of digits to distinct directions. The robot will map distinct digits to distinct directions. The robot will then follow the instructions according to the given string in order and chosen mapping. If an instruction would lead the robot to go off the edge of the maze or hit an obstacle, the robot will crash and break down. If the robot reaches the exit at any point, then the robot will stop following any further instructions. Bob is having trouble debugging his robot, so he would like to determine the number of mappings of digits to directions that would lead the robot to the exit.
The first line of input will contain two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50), denoting the dimensions of the maze. The next *n* lines will contain exactly *m* characters each, denoting the maze. Each character of the maze will be '.', '#', 'S', or 'E'. There will be exactly one 'S' and exactly one 'E' in the maze. The last line will contain a single string *s* (1<=≤<=|*s*|<=≤<=100) — the instructions given to the robot. Each character of *s* is a digit from 0 to 3.
Print a single integer, the number of mappings of digits to directions that will lead the robot to the exit.
[ "5 6\n.....#\nS....#\n.#....\n.#....\n...E..\n333300012\n", "6 6\n......\n......\n..SE..\n......\n......\n......\n01232123212302123021\n", "5 3\n...\n.S.\n###\n.E.\n...\n3\n" ]
[ "1\n", "14\n", "0\n" ]
For the first sample, the only valid mapping is <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/87a55361bde12e4223a96f0e1d83b94428f26f02.png" style="max-width: 100.0%;max-height: 100.0%;"/>, where *D* is down, *L* is left, *U* is up, *R* is right.
750
[ { "input": "5 6\n.....#\nS....#\n.#....\n.#....\n...E..\n333300012", "output": "1" }, { "input": "6 6\n......\n......\n..SE..\n......\n......\n......\n01232123212302123021", "output": "14" }, { "input": "5 3\n...\n.S.\n###\n.E.\n...\n3", "output": "0" }, { "input": "10 10\n.#......#.\n#.........\n#.........\n....#.#..E\n.......#..\n....##....\n....S.....\n....#.....\n.........#\n...##...#.\n23323332313123221123020122221313323310313122323233", "output": "0" }, { "input": "8 9\n.........\n.........\n.........\n.E.#.....\n.........\n.........\n...#.S...\n.........\n10001100111000010121100000110110110100000100000100", "output": "2" }, { "input": "15 13\n.............\n.............\n.............\n.........#...\n..#..........\n.............\n..........E..\n.............\n.............\n.#...........\n.....#.......\n..........#..\n..........S..\n.............\n.........#...\n32222221111222312132110100022020202131222103103330", "output": "2" }, { "input": "5 5\n.....\n.....\n..SE.\n.....\n.....\n012330213120031231022103231013201032301223011230102320130231321012030321213002133201130201322031", "output": "24" }, { "input": "2 2\nS.\n.E\n23", "output": "4" }, { "input": "2 2\nS.\n.E\n03", "output": "4" }, { "input": "2 2\nSE\n..\n22", "output": "6" }, { "input": "2 2\nS.\nE.\n11", "output": "6" }, { "input": "2 2\n#E\nS.\n01", "output": "2" }, { "input": "10 10\n####S.####\n#####.####\n#####.####\n#####.####\n#####..###\n######.###\n######.###\n######.E##\n##########\n##########\n0111101110", "output": "2" }, { "input": "10 10\n#####..E##\n#####.S.##\n#####...##\n##########\n##########\n##########\n##########\n##########\n##########\n##########\n20", "output": "4" }, { "input": "10 10\n#####ES.##\n######.###\n##########\n##########\n##########\n##########\n##########\n##########\n##########\n##########\n3", "output": "6" }, { "input": "2 10\nS........E\n..........\n33333333333333333", "output": "6" }, { "input": "2 2\n..\nSE\n0", "output": "6" }, { "input": "2 2\nSE\n##\n0", "output": "6" }, { "input": "2 2\nS.\nE.\n012", "output": "8" }, { "input": "2 3\nS.E\n###\n1222", "output": "0" }, { "input": "2 5\nS...E\n.....\n133330", "output": "1" }, { "input": "5 5\n.....\n.....\n.S.E.\n.....\n.....\n001111", "output": "6" }, { "input": "3 5\n....S\n....#\n....E\n0112", "output": "1" }, { "input": "2 2\nSE\n..\n123", "output": "8" }, { "input": "2 10\n........ES\n..........\n123", "output": "8" }, { "input": "2 2\nS.\n.E\n2311", "output": "4" }, { "input": "2 2\nS.\n.E\n0012", "output": "0" }, { "input": "2 7\nS.....E\n#######\n01111111", "output": "0" }, { "input": "2 2\nS.\n.E\n1123", "output": "0" }, { "input": "2 3\nS.E\n...\n0111", "output": "0" }, { "input": "2 50\n.................................................E\nS.................................................\n0000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000", "output": "0" }, { "input": "5 2\n..\n..\n..\n..\nSE\n0", "output": "6" }, { "input": "3 3\nE..\n.S.\n...\n001123110023221103", "output": "0" }, { "input": "2 2\nS#\nE#\n012", "output": "6" }, { "input": "2 2\nES\n..\n011", "output": "6" }, { "input": "2 2\nSE\n..\n011", "output": "6" }, { "input": "2 2\nS.\nE.\n102", "output": "8" }, { "input": "3 2\nE#\n##\nS#\n0112", "output": "0" } ]
1,514,749,052
2,147,483,647
Python 3
OK
TESTS
46
62
5,529,600
m, n = map(int, input().split()) arr = [] num = 0 for i in range(m): a = input() if 'S' in a: xs = a.index('S') ys = i if 'E' in a: xe = a.index('E') ye = i arr.append(a) direct = [[1, 0], [-1, 0], [0, 1], [0, -1]] nums = [int(i) for i in input()] for i in direct: di = direct.index(i) direct1 = direct[:di] + direct[di+1:] for j in direct1: dj = direct1.index(j) direct2 = direct1[:dj] + direct1[dj+1:] for k in direct2: dk = direct2.index(k) direct3 = direct2[:dk] + direct2[dk+1:] l = direct3[0] numDict = {0:i, 1:j, 2:l, 3:k} # Здесь основной код x1, y1 = xs, ys for z in nums: p = numDict[z] x1, y1 = x1 + p[0], y1 + p[1] if -1 < x1 < n and -1 < y1 < m: a = arr[y1][x1] if a == 'E': num += 1 break elif a == '#': break else: break # print(arr) print(num)
Title: New Year and Buggy Bot Time Limit: None seconds Memory Limit: None megabytes Problem Description: Bob programmed a robot to navigate through a 2d maze. The maze has some obstacles. Empty cells are denoted by the character '.', where obstacles are denoted by '#'. There is a single robot in the maze. Its start position is denoted with the character 'S'. This position has no obstacle in it. There is also a single exit in the maze. Its position is denoted with the character 'E'. This position has no obstacle in it. The robot can only move up, left, right, or down. When Bob programmed the robot, he wrote down a string of digits consisting of the digits 0 to 3, inclusive. He intended for each digit to correspond to a distinct direction, and the robot would follow the directions in order to reach the exit. Unfortunately, he forgot to actually assign the directions to digits. The robot will choose some random mapping of digits to distinct directions. The robot will map distinct digits to distinct directions. The robot will then follow the instructions according to the given string in order and chosen mapping. If an instruction would lead the robot to go off the edge of the maze or hit an obstacle, the robot will crash and break down. If the robot reaches the exit at any point, then the robot will stop following any further instructions. Bob is having trouble debugging his robot, so he would like to determine the number of mappings of digits to directions that would lead the robot to the exit. Input Specification: The first line of input will contain two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50), denoting the dimensions of the maze. The next *n* lines will contain exactly *m* characters each, denoting the maze. Each character of the maze will be '.', '#', 'S', or 'E'. There will be exactly one 'S' and exactly one 'E' in the maze. The last line will contain a single string *s* (1<=≤<=|*s*|<=≤<=100) — the instructions given to the robot. Each character of *s* is a digit from 0 to 3. Output Specification: Print a single integer, the number of mappings of digits to directions that will lead the robot to the exit. Demo Input: ['5 6\n.....#\nS....#\n.#....\n.#....\n...E..\n333300012\n', '6 6\n......\n......\n..SE..\n......\n......\n......\n01232123212302123021\n', '5 3\n...\n.S.\n###\n.E.\n...\n3\n'] Demo Output: ['1\n', '14\n', '0\n'] Note: For the first sample, the only valid mapping is <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/87a55361bde12e4223a96f0e1d83b94428f26f02.png" style="max-width: 100.0%;max-height: 100.0%;"/>, where *D* is down, *L* is left, *U* is up, *R* is right.
```python m, n = map(int, input().split()) arr = [] num = 0 for i in range(m): a = input() if 'S' in a: xs = a.index('S') ys = i if 'E' in a: xe = a.index('E') ye = i arr.append(a) direct = [[1, 0], [-1, 0], [0, 1], [0, -1]] nums = [int(i) for i in input()] for i in direct: di = direct.index(i) direct1 = direct[:di] + direct[di+1:] for j in direct1: dj = direct1.index(j) direct2 = direct1[:dj] + direct1[dj+1:] for k in direct2: dk = direct2.index(k) direct3 = direct2[:dk] + direct2[dk+1:] l = direct3[0] numDict = {0:i, 1:j, 2:l, 3:k} # Здесь основной код x1, y1 = xs, ys for z in nums: p = numDict[z] x1, y1 = x1 + p[0], y1 + p[1] if -1 < x1 < n and -1 < y1 < m: a = arr[y1][x1] if a == 'E': num += 1 break elif a == '#': break else: break # print(arr) print(num) ```
3
149
A
Business trip
PROGRAMMING
900
[ "greedy", "implementation", "sortings" ]
null
null
What joy! Petya's parents went on a business trip for the whole year and the playful kid is left all by himself. Petya got absolutely happy. He jumped on the bed and threw pillows all day long, until... Today Petya opened the cupboard and found a scary note there. His parents had left him with duties: he should water their favourite flower all year, each day, in the morning, in the afternoon and in the evening. "Wait a second!" — thought Petya. He know for a fact that if he fulfills the parents' task in the *i*-th (1<=≤<=*i*<=≤<=12) month of the year, then the flower will grow by *a**i* centimeters, and if he doesn't water the flower in the *i*-th month, then the flower won't grow this month. Petya also knows that try as he might, his parents won't believe that he has been watering the flower if it grows strictly less than by *k* centimeters. Help Petya choose the minimum number of months when he will water the flower, given that the flower should grow no less than by *k* centimeters.
The first line contains exactly one integer *k* (0<=≤<=*k*<=≤<=100). The next line contains twelve space-separated integers: the *i*-th (1<=≤<=*i*<=≤<=12) number in the line represents *a**i* (0<=≤<=*a**i*<=≤<=100).
Print the only integer — the minimum number of months when Petya has to water the flower so that the flower grows no less than by *k* centimeters. If the flower can't grow by *k* centimeters in a year, print -1.
[ "5\n1 1 1 1 2 2 3 2 2 1 1 1\n", "0\n0 0 0 0 0 0 0 1 1 2 3 0\n", "11\n1 1 4 1 1 5 1 1 4 1 1 1\n" ]
[ "2\n", "0\n", "3\n" ]
Let's consider the first sample test. There it is enough to water the flower during the seventh and the ninth month. Then the flower grows by exactly five centimeters. In the second sample Petya's parents will believe him even if the flower doesn't grow at all (*k* = 0). So, it is possible for Petya not to water the flower at all.
500
[ { "input": "5\n1 1 1 1 2 2 3 2 2 1 1 1", "output": "2" }, { "input": "0\n0 0 0 0 0 0 0 1 1 2 3 0", "output": "0" }, { "input": "11\n1 1 4 1 1 5 1 1 4 1 1 1", "output": "3" }, { "input": "15\n20 1 1 1 1 2 2 1 2 2 1 1", "output": "1" }, { "input": "7\n8 9 100 12 14 17 21 10 11 100 23 10", "output": "1" }, { "input": "52\n1 12 3 11 4 5 10 6 9 7 8 2", "output": "6" }, { "input": "50\n2 2 3 4 5 4 4 5 7 3 2 7", "output": "-1" }, { "input": "0\n55 81 28 48 99 20 67 95 6 19 10 93", "output": "0" }, { "input": "93\n85 40 93 66 92 43 61 3 64 51 90 21", "output": "1" }, { "input": "99\n36 34 22 0 0 0 52 12 0 0 33 47", "output": "2" }, { "input": "99\n28 32 31 0 10 35 11 18 0 0 32 28", "output": "3" }, { "input": "99\n19 17 0 1 18 11 29 9 29 22 0 8", "output": "4" }, { "input": "76\n2 16 11 10 12 0 20 4 4 14 11 14", "output": "5" }, { "input": "41\n2 1 7 7 4 2 4 4 9 3 10 0", "output": "6" }, { "input": "47\n8 2 2 4 3 1 9 4 2 7 7 8", "output": "7" }, { "input": "58\n6 11 7 0 5 6 3 9 4 9 5 1", "output": "8" }, { "input": "32\n5 2 4 1 5 0 5 1 4 3 0 3", "output": "9" }, { "input": "31\n6 1 0 4 4 5 1 0 5 3 2 0", "output": "9" }, { "input": "35\n2 3 0 0 6 3 3 4 3 5 0 6", "output": "9" }, { "input": "41\n3 1 3 4 3 6 6 1 4 4 0 6", "output": "11" }, { "input": "97\n0 5 3 12 10 16 22 8 21 17 21 10", "output": "5" }, { "input": "100\n21 21 0 0 4 13 0 26 0 0 0 15", "output": "6" }, { "input": "100\n0 0 16 5 22 0 5 0 25 0 14 13", "output": "7" }, { "input": "97\n17 0 10 0 0 0 18 0 14 23 15 0", "output": "6" }, { "input": "100\n0 9 0 18 7 0 0 14 33 3 0 16", "output": "7" }, { "input": "95\n5 2 13 0 15 18 17 0 6 11 0 8", "output": "9" }, { "input": "94\n11 13 0 9 15 8 8 16 3 7 1 3", "output": "11" }, { "input": "96\n8 4 12 15 8 0 4 10 6 6 12 11", "output": "11" }, { "input": "100\n5 5 3 8 6 5 0 3 3 8 1 3", "output": "-1" }, { "input": "100\n1 0 0 1 1 0 1 1 1 1 2 1", "output": "-1" }, { "input": "100\n6 3 2 0 4 1 2 2 2 2 1 1", "output": "-1" }, { "input": "0\n0 0 0 0 0 0 0 0 0 0 0 0", "output": "0" }, { "input": "100\n0 0 0 0 0 0 0 0 0 0 0 0", "output": "-1" }, { "input": "0\n100 100 100 100 100 100 100 100 100 100 100 100", "output": "0" }, { "input": "100\n100 100 100 100 100 100 100 100 100 100 100 100", "output": "1" }, { "input": "12\n1 1 1 1 1 1 1 1 1 1 1 1", "output": "12" }, { "input": "13\n1 1 1 1 1 1 1 1 1 1 1 2", "output": "12" }, { "input": "15\n10 1 1 1 1 1 1 1 1 1 1 1", "output": "6" }, { "input": "1\n0 0 0 0 0 0 0 0 0 0 0 0", "output": "-1" } ]
1,639,979,627
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
60
0
k=int(input()) a=sorted(list(map(int,input().split()))) i=11 j=0 sum=0 while(sum<k): sum=sum+a[i] i-=1 j+=1 print(j)
Title: Business trip Time Limit: None seconds Memory Limit: None megabytes Problem Description: What joy! Petya's parents went on a business trip for the whole year and the playful kid is left all by himself. Petya got absolutely happy. He jumped on the bed and threw pillows all day long, until... Today Petya opened the cupboard and found a scary note there. His parents had left him with duties: he should water their favourite flower all year, each day, in the morning, in the afternoon and in the evening. "Wait a second!" — thought Petya. He know for a fact that if he fulfills the parents' task in the *i*-th (1<=≤<=*i*<=≤<=12) month of the year, then the flower will grow by *a**i* centimeters, and if he doesn't water the flower in the *i*-th month, then the flower won't grow this month. Petya also knows that try as he might, his parents won't believe that he has been watering the flower if it grows strictly less than by *k* centimeters. Help Petya choose the minimum number of months when he will water the flower, given that the flower should grow no less than by *k* centimeters. Input Specification: The first line contains exactly one integer *k* (0<=≤<=*k*<=≤<=100). The next line contains twelve space-separated integers: the *i*-th (1<=≤<=*i*<=≤<=12) number in the line represents *a**i* (0<=≤<=*a**i*<=≤<=100). Output Specification: Print the only integer — the minimum number of months when Petya has to water the flower so that the flower grows no less than by *k* centimeters. If the flower can't grow by *k* centimeters in a year, print -1. Demo Input: ['5\n1 1 1 1 2 2 3 2 2 1 1 1\n', '0\n0 0 0 0 0 0 0 1 1 2 3 0\n', '11\n1 1 4 1 1 5 1 1 4 1 1 1\n'] Demo Output: ['2\n', '0\n', '3\n'] Note: Let's consider the first sample test. There it is enough to water the flower during the seventh and the ninth month. Then the flower grows by exactly five centimeters. In the second sample Petya's parents will believe him even if the flower doesn't grow at all (*k* = 0). So, it is possible for Petya not to water the flower at all.
```python k=int(input()) a=sorted(list(map(int,input().split()))) i=11 j=0 sum=0 while(sum<k): sum=sum+a[i] i-=1 j+=1 print(j) ```
0
266
A
Stones on the Table
PROGRAMMING
800
[ "implementation" ]
null
null
There are *n* stones on the table in a row, each of them can be red, green or blue. Count the minimum number of stones to take from the table so that any two neighboring stones had different colors. Stones in a row are considered neighboring if there are no other stones between them.
The first line contains integer *n* (1<=≤<=*n*<=≤<=50) — the number of stones on the table. The next line contains string *s*, which represents the colors of the stones. We'll consider the stones in the row numbered from 1 to *n* from left to right. Then the *i*-th character *s* equals "R", if the *i*-th stone is red, "G", if it's green and "B", if it's blue.
Print a single integer — the answer to the problem.
[ "3\nRRG\n", "5\nRRRRR\n", "4\nBRBG\n" ]
[ "1\n", "4\n", "0\n" ]
none
500
[ { "input": "3\nRRG", "output": "1" }, { "input": "5\nRRRRR", "output": "4" }, { "input": "4\nBRBG", "output": "0" }, { "input": "1\nB", "output": "0" }, { "input": "2\nBG", "output": "0" }, { "input": "3\nBGB", "output": "0" }, { "input": "4\nRBBR", "output": "1" }, { "input": "5\nRGGBG", "output": "1" }, { "input": "10\nGGBRBRGGRB", "output": "2" }, { "input": "50\nGRBGGRBRGRBGGBBBBBGGGBBBBRBRGBRRBRGBBBRBBRRGBGGGRB", "output": "18" }, { "input": "15\nBRRBRGGBBRRRRGR", "output": "6" }, { "input": "20\nRRGBBRBRGRGBBGGRGRRR", "output": "6" }, { "input": "25\nBBGBGRBGGBRRBGRRBGGBBRBRB", "output": "6" }, { "input": "30\nGRGGGBGGRGBGGRGRBGBGBRRRRRRGRB", "output": "9" }, { "input": "35\nGBBGBRGBBGGRBBGBRRGGRRRRRRRBRBBRRGB", "output": "14" }, { "input": "40\nGBBRRGBGGGRGGGRRRRBRBGGBBGGGBGBBBBBRGGGG", "output": "20" }, { "input": "45\nGGGBBRBBRRGRBBGGBGRBRGGBRBRGBRRGBGRRBGRGRBRRG", "output": "11" }, { "input": "50\nRBGGBGGRBGRBBBGBBGRBBBGGGRBBBGBBBGRGGBGGBRBGBGRRGG", "output": "17" }, { "input": "50\nGGGBBRGGGGGRRGGRBGGRGBBRBRRBGRGBBBGBRBGRGBBGRGGBRB", "output": "16" }, { "input": "50\nGBGRGRRBRRRRRGGBBGBRRRBBBRBBBRRGRBBRGBRBGGRGRBBGGG", "output": "19" }, { "input": "10\nGRRBRBRBGR", "output": "1" }, { "input": "10\nBRBGBGRRBR", "output": "1" }, { "input": "20\nGBGBGGRRRRGRBBGRGRGR", "output": "5" }, { "input": "20\nRRGGRBBGBBRBGRRBRRBG", "output": "6" }, { "input": "30\nBGBRGBBBGRGBBRGBGRBBBRGGRRGRRB", "output": "8" }, { "input": "30\nBBBBGGBRBGBBGBGBGBGGGRGRRGGBBB", "output": "11" }, { "input": "40\nGBRRGRBGBRRGBRGGGBRGBGBRGBBRRGRGGBBGBGBB", "output": "9" }, { "input": "40\nBRGRGGRGGRBBRRRBRBBGGGRRGBGBBGRBBRGBRRGG", "output": "13" }, { "input": "50\nRBGBGGRRGGRGGBGBGRRBGGBGBRRBBGBBGBBBGBBRBBRBRBRGRG", "output": "13" }, { "input": "50\nRBRRGBGRRRBGRRBGRRGRBBRBBRRBRGGBRBRRBGGRBGGBRBRGRB", "output": "12" }, { "input": "2\nBB", "output": "1" }, { "input": "50\nRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR", "output": "49" }, { "input": "50\nRRRRRRRRGRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR", "output": "47" }, { "input": "50\nRRRRRRRRRRRRGGRRRRRRRRRBRRRRRRRRRRRRRRBBRRRRRRRRRR", "output": "43" } ]
1,696,310,194
2,147,483,647
PyPy 3-64
OK
TESTS
34
92
0
#Coder_1_neel a=int(input()) c=input() c=c+"0" cou=0 for i in range(a): if c[i]==c[i+1]: cou+=1 print(cou)
Title: Stones on the Table Time Limit: None seconds Memory Limit: None megabytes Problem Description: There are *n* stones on the table in a row, each of them can be red, green or blue. Count the minimum number of stones to take from the table so that any two neighboring stones had different colors. Stones in a row are considered neighboring if there are no other stones between them. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=50) — the number of stones on the table. The next line contains string *s*, which represents the colors of the stones. We'll consider the stones in the row numbered from 1 to *n* from left to right. Then the *i*-th character *s* equals "R", if the *i*-th stone is red, "G", if it's green and "B", if it's blue. Output Specification: Print a single integer — the answer to the problem. Demo Input: ['3\nRRG\n', '5\nRRRRR\n', '4\nBRBG\n'] Demo Output: ['1\n', '4\n', '0\n'] Note: none
```python #Coder_1_neel a=int(input()) c=input() c=c+"0" cou=0 for i in range(a): if c[i]==c[i+1]: cou+=1 print(cou) ```
3
381
A
Sereja and Dima
PROGRAMMING
800
[ "greedy", "implementation", "two pointers" ]
null
null
Sereja and Dima play a game. The rules of the game are very simple. The players have *n* cards in a row. Each card contains a number, all numbers on the cards are distinct. The players take turns, Sereja moves first. During his turn a player can take one card: either the leftmost card in a row, or the rightmost one. The game ends when there is no more cards. The player who has the maximum sum of numbers on his cards by the end of the game, wins. Sereja and Dima are being greedy. Each of them chooses the card with the larger number during his move. Inna is a friend of Sereja and Dima. She knows which strategy the guys are using, so she wants to determine the final score, given the initial state of the game. Help her.
The first line contains integer *n* (1<=≤<=*n*<=≤<=1000) — the number of cards on the table. The second line contains space-separated numbers on the cards from left to right. The numbers on the cards are distinct integers from 1 to 1000.
On a single line, print two integers. The first number is the number of Sereja's points at the end of the game, the second number is the number of Dima's points at the end of the game.
[ "4\n4 1 2 10\n", "7\n1 2 3 4 5 6 7\n" ]
[ "12 5\n", "16 12\n" ]
In the first sample Sereja will take cards with numbers 10 and 2, so Sereja's sum is 12. Dima will take cards with numbers 4 and 1, so Dima's sum is 5.
500
[ { "input": "4\n4 1 2 10", "output": "12 5" }, { "input": "7\n1 2 3 4 5 6 7", "output": "16 12" }, { "input": "42\n15 29 37 22 16 5 26 31 6 32 19 3 45 36 33 14 25 20 48 7 42 11 24 28 9 18 8 21 47 17 38 40 44 4 35 1 43 39 41 27 12 13", "output": "613 418" }, { "input": "43\n32 1 15 48 38 26 25 14 20 44 11 30 3 42 49 19 18 46 5 45 10 23 34 9 29 41 2 52 6 17 35 4 50 22 33 51 7 28 47 13 39 37 24", "output": "644 500" }, { "input": "1\n3", "output": "3 0" }, { "input": "45\n553 40 94 225 415 471 126 190 647 394 515 303 189 159 308 6 139 132 326 78 455 75 85 295 135 613 360 614 351 228 578 259 258 591 444 29 33 463 561 174 368 183 140 168 646", "output": "6848 6568" }, { "input": "44\n849 373 112 307 479 608 856 769 526 82 168 143 573 762 115 501 688 36 214 450 396 496 236 309 287 786 397 43 811 141 745 846 350 270 276 677 420 459 403 722 267 54 394 727", "output": "9562 9561" }, { "input": "35\n10 15 18 1 28 16 2 33 6 22 23 4 9 25 35 8 7 26 3 20 30 14 31 19 27 32 11 5 29 24 21 34 13 17 12", "output": "315 315" }, { "input": "17\n580 376 191 496 73 44 520 357 483 149 81 178 514 300 216 598 304", "output": "3238 2222" }, { "input": "30\n334 443 223 424 168 549 189 303 429 559 516 220 459 134 344 346 316 446 209 148 487 526 69 286 102 366 518 280 392 325", "output": "5246 4864" }, { "input": "95\n122 29 188 265 292 287 183 225 222 187 155 256 64 148 173 278 218 136 290 17 31 130 2 87 57 283 255 280 68 166 174 142 102 39 116 206 288 154 26 78 296 172 184 232 77 91 277 8 249 186 94 93 207 251 257 195 101 299 193 124 293 65 58 35 24 302 220 189 252 125 27 284 247 182 141 103 198 97 234 83 281 216 85 180 267 236 109 143 149 239 79 300 191 244 71", "output": "8147 7807" }, { "input": "1\n1", "output": "1 0" } ]
1,674,467,156
2,147,483,647
PyPy 3
OK
TESTS
34
77
0
n=int(input()) list=[] count1=0 count2=0 list+=map(int,input().split()) while len(list)>0: max1=max(list[0],list[len(list)-1]) count1+=max1 list.remove(max1) if len(list)>0: max1=max(list[0],list[len(list)-1]) count2+=max1 list.remove(max1) print(count1,count2)
Title: Sereja and Dima Time Limit: None seconds Memory Limit: None megabytes Problem Description: Sereja and Dima play a game. The rules of the game are very simple. The players have *n* cards in a row. Each card contains a number, all numbers on the cards are distinct. The players take turns, Sereja moves first. During his turn a player can take one card: either the leftmost card in a row, or the rightmost one. The game ends when there is no more cards. The player who has the maximum sum of numbers on his cards by the end of the game, wins. Sereja and Dima are being greedy. Each of them chooses the card with the larger number during his move. Inna is a friend of Sereja and Dima. She knows which strategy the guys are using, so she wants to determine the final score, given the initial state of the game. Help her. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=1000) — the number of cards on the table. The second line contains space-separated numbers on the cards from left to right. The numbers on the cards are distinct integers from 1 to 1000. Output Specification: On a single line, print two integers. The first number is the number of Sereja's points at the end of the game, the second number is the number of Dima's points at the end of the game. Demo Input: ['4\n4 1 2 10\n', '7\n1 2 3 4 5 6 7\n'] Demo Output: ['12 5\n', '16 12\n'] Note: In the first sample Sereja will take cards with numbers 10 and 2, so Sereja's sum is 12. Dima will take cards with numbers 4 and 1, so Dima's sum is 5.
```python n=int(input()) list=[] count1=0 count2=0 list+=map(int,input().split()) while len(list)>0: max1=max(list[0],list[len(list)-1]) count1+=max1 list.remove(max1) if len(list)>0: max1=max(list[0],list[len(list)-1]) count2+=max1 list.remove(max1) print(count1,count2) ```
3
227
B
Effective Approach
PROGRAMMING
1,100
[ "implementation" ]
null
null
Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array. According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is. Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent. To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand. But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array. The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat.
Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier.
[ "2\n1 2\n1\n1\n", "2\n2 1\n1\n1\n", "3\n3 1 2\n3\n1 2 3\n" ]
[ "1 2\n", "2 1\n", "6 6\n" ]
In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element). In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
1,000
[ { "input": "2\n1 2\n1\n1", "output": "1 2" }, { "input": "2\n2 1\n1\n1", "output": "2 1" }, { "input": "3\n3 1 2\n3\n1 2 3", "output": "6 6" }, { "input": "9\n2 9 3 1 6 4 7 8 5\n9\n5 1 5 2 8 4 4 4 5", "output": "58 32" }, { "input": "10\n3 10 9 2 7 6 5 8 4 1\n1\n4", "output": "9 2" }, { "input": "10\n5 2 10 8 3 1 9 7 6 4\n9\n2 5 9 2 3 2 5 9 8", "output": "31 68" }, { "input": "9\n3 8 4 7 1 2 5 6 9\n3\n2 7 1", "output": "15 15" }, { "input": "9\n5 3 8 4 2 6 1 7 9\n4\n6 1 9 2", "output": "27 13" }, { "input": "4\n1 3 2 4\n4\n3 1 2 3", "output": "8 12" }, { "input": "3\n1 2 3\n8\n3 2 1 1 2 3 1 2", "output": "15 17" } ]
1,696,537,214
2,147,483,647
PyPy 3-64
RUNTIME_ERROR
TESTS
0
154
2,867,200
from sys import stdin, stdout def main(): n, v, p = map(int, stdin.readline().split()) a = list(map(int, stdin.readline().split())) b = list(map(int, stdin.readline().split())) a_dict = {a[i]: i for i in range(n)} for i in range(len(b)): bi = a_dict[b[i]] v += bi + 1 p += n - bi stdout.write(f"{v} {p}\n") if __name__ == "__main__": main()
Title: Effective Approach Time Limit: None seconds Memory Limit: None megabytes Problem Description: Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array. According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is. Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent. To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand. But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array. The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat. Output Specification: Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier. Demo Input: ['2\n1 2\n1\n1\n', '2\n2 1\n1\n1\n', '3\n3 1 2\n3\n1 2 3\n'] Demo Output: ['1 2\n', '2 1\n', '6 6\n'] Note: In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element). In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
```python from sys import stdin, stdout def main(): n, v, p = map(int, stdin.readline().split()) a = list(map(int, stdin.readline().split())) b = list(map(int, stdin.readline().split())) a_dict = {a[i]: i for i in range(n)} for i in range(len(b)): bi = a_dict[b[i]] v += bi + 1 p += n - bi stdout.write(f"{v} {p}\n") if __name__ == "__main__": main() ```
-1
908
A
New Year and Counting Cards
PROGRAMMING
800
[ "brute force", "implementation" ]
null
null
Your friend has *n* cards. You know that each card has a lowercase English letter on one side and a digit on the other. Currently, your friend has laid out the cards on a table so only one side of each card is visible. You would like to know if the following statement is true for cards that your friend owns: "If a card has a vowel on one side, then it has an even digit on the other side." More specifically, a vowel is one of 'a', 'e', 'i', 'o' or 'u', and even digit is one of '0', '2', '4', '6' or '8'. For example, if a card has 'a' on one side, and '6' on the other side, then this statement is true for it. Also, the statement is true, for example, for a card with 'b' and '4', and for a card with 'b' and '3' (since the letter is not a vowel). The statement is false, for example, for card with 'e' and '5'. You are interested if the statement is true for all cards. In particular, if no card has a vowel, the statement is true. To determine this, you can flip over some cards to reveal the other side. You would like to know what is the minimum number of cards you need to flip in the worst case in order to verify that the statement is true.
The first and only line of input will contain a string *s* (1<=≤<=|*s*|<=≤<=50), denoting the sides of the cards that you can see on the table currently. Each character of *s* is either a lowercase English letter or a digit.
Print a single integer, the minimum number of cards you must turn over to verify your claim.
[ "ee\n", "z\n", "0ay1\n" ]
[ "2\n", "0\n", "2\n" ]
In the first sample, we must turn over both cards. Note that even though both cards have the same letter, they could possibly have different numbers on the other side. In the second sample, we don't need to turn over any cards. The statement is vacuously true, since you know your friend has no cards with a vowel on them. In the third sample, we need to flip the second and fourth cards.
500
[ { "input": "ee", "output": "2" }, { "input": "z", "output": "0" }, { "input": "0ay1", "output": "2" }, { "input": "0abcdefghijklmnopqrstuvwxyz1234567896", "output": "10" }, { "input": "0a0a9e9e2i2i9o9o6u6u9z9z4x4x9b9b", "output": "18" }, { "input": "01234567890123456789012345678901234567890123456789", "output": "25" }, { "input": "qwertyuioplkjhgfdsazxcvbnmqwertyuioplkjhgfdsazxcvb", "output": "10" }, { "input": "cjw2dwmr10pku4yxohe0wglktd", "output": "4" }, { "input": "6z2tx805jie8cfybwtfqvmlveec3iak5z5u3lu62vbxyqht6", "output": "13" }, { "input": "kaq7jyialrfp4ilkni90eq8v3amcbygon7py0hb8z26fbl8ss1", "output": "13" }, { "input": "hpwn50zgbmct80k9rizjqg40nycgs0acwikjqt11nr6m61krfs", "output": "8" }, { "input": "l3rw91a4m25l8iytxyeuixsegzcbm4h41ornf3pixkrmwznrzc", "output": "14" }, { "input": "2222", "output": "0" }, { "input": "13579", "output": "5" }, { "input": "1", "output": "1" }, { "input": "0", "output": "0" }, { "input": "a", "output": "1" }, { "input": "y", "output": "0" }, { "input": "w", "output": "0" }, { "input": "oo", "output": "2" }, { "input": "oy", "output": "1" }, { "input": "yo", "output": "1" }, { "input": "yy", "output": "0" }, { "input": "a0", "output": "1" }, { "input": "a9", "output": "2" }, { "input": "y0", "output": "0" }, { "input": "y7", "output": "1" }, { "input": "0a", "output": "1" }, { "input": "3a", "output": "2" }, { "input": "06", "output": "0" }, { "input": "07", "output": "1" }, { "input": "70", "output": "1" }, { "input": "77", "output": "2" }, { "input": "13570", "output": "4" }, { "input": "0000000000011111", "output": "5" }, { "input": "1357", "output": "4" }, { "input": "uuuuuuuuuuuuuuuuuu", "output": "18" }, { "input": "gabieurat", "output": "5" } ]
1,649,522,746
2,147,483,647
Python 3
OK
TESTS
38
46
0
card_list = list(input()) minimum_flips = 0 for card in card_list: if (card.isdigit() and int(card) % 2 != 0) or (card in ['a', 'e', 'i', 'o', 'u']): minimum_flips += 1 print(minimum_flips)
Title: New Year and Counting Cards Time Limit: None seconds Memory Limit: None megabytes Problem Description: Your friend has *n* cards. You know that each card has a lowercase English letter on one side and a digit on the other. Currently, your friend has laid out the cards on a table so only one side of each card is visible. You would like to know if the following statement is true for cards that your friend owns: "If a card has a vowel on one side, then it has an even digit on the other side." More specifically, a vowel is one of 'a', 'e', 'i', 'o' or 'u', and even digit is one of '0', '2', '4', '6' or '8'. For example, if a card has 'a' on one side, and '6' on the other side, then this statement is true for it. Also, the statement is true, for example, for a card with 'b' and '4', and for a card with 'b' and '3' (since the letter is not a vowel). The statement is false, for example, for card with 'e' and '5'. You are interested if the statement is true for all cards. In particular, if no card has a vowel, the statement is true. To determine this, you can flip over some cards to reveal the other side. You would like to know what is the minimum number of cards you need to flip in the worst case in order to verify that the statement is true. Input Specification: The first and only line of input will contain a string *s* (1<=≤<=|*s*|<=≤<=50), denoting the sides of the cards that you can see on the table currently. Each character of *s* is either a lowercase English letter or a digit. Output Specification: Print a single integer, the minimum number of cards you must turn over to verify your claim. Demo Input: ['ee\n', 'z\n', '0ay1\n'] Demo Output: ['2\n', '0\n', '2\n'] Note: In the first sample, we must turn over both cards. Note that even though both cards have the same letter, they could possibly have different numbers on the other side. In the second sample, we don't need to turn over any cards. The statement is vacuously true, since you know your friend has no cards with a vowel on them. In the third sample, we need to flip the second and fourth cards.
```python card_list = list(input()) minimum_flips = 0 for card in card_list: if (card.isdigit() and int(card) % 2 != 0) or (card in ['a', 'e', 'i', 'o', 'u']): minimum_flips += 1 print(minimum_flips) ```
3
263
A
Beautiful Matrix
PROGRAMMING
800
[ "implementation" ]
null
null
You've got a 5<=×<=5 matrix, consisting of 24 zeroes and a single number one. Let's index the matrix rows by numbers from 1 to 5 from top to bottom, let's index the matrix columns by numbers from 1 to 5 from left to right. In one move, you are allowed to apply one of the two following transformations to the matrix: 1. Swap two neighboring matrix rows, that is, rows with indexes *i* and *i*<=+<=1 for some integer *i* (1<=≤<=*i*<=&lt;<=5). 1. Swap two neighboring matrix columns, that is, columns with indexes *j* and *j*<=+<=1 for some integer *j* (1<=≤<=*j*<=&lt;<=5). You think that a matrix looks beautiful, if the single number one of the matrix is located in its middle (in the cell that is on the intersection of the third row and the third column). Count the minimum number of moves needed to make the matrix beautiful.
The input consists of five lines, each line contains five integers: the *j*-th integer in the *i*-th line of the input represents the element of the matrix that is located on the intersection of the *i*-th row and the *j*-th column. It is guaranteed that the matrix consists of 24 zeroes and a single number one.
Print a single integer — the minimum number of moves needed to make the matrix beautiful.
[ "0 0 0 0 0\n0 0 0 0 1\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n", "0 0 0 0 0\n0 0 0 0 0\n0 1 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n" ]
[ "3\n", "1\n" ]
none
500
[ { "input": "0 0 0 0 0\n0 0 0 0 1\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "3" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 1 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "1" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 1 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "0" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 1", "output": "4" }, { "input": "0 1 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "3" }, { "input": "1 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "4" }, { "input": "0 0 1 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 1 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "3" }, { "input": "0 0 0 0 1\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "4" }, { "input": "0 0 0 0 0\n1 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "3" }, { "input": "0 0 0 0 0\n0 1 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 1 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "1" }, { "input": "0 0 0 0 0\n0 0 0 1 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n1 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 1 0\n0 0 0 0 0\n0 0 0 0 0", "output": "1" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 1\n0 0 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n1 0 0 0 0\n0 0 0 0 0", "output": "3" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 1 0 0 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 1 0 0\n0 0 0 0 0", "output": "1" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 1 0\n0 0 0 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 1\n0 0 0 0 0", "output": "3" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n1 0 0 0 0", "output": "4" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 1 0 0 0", "output": "3" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 1 0 0", "output": "2" }, { "input": "0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 1 0", "output": "3" } ]
1,694,886,077
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
62
0
n = 0 b = 0 d = 0 for _ in range(5): base = list(input().split(" ")) n += 1 if "1" in base: d = n a = 0 for i in base: a += 1 if i == "1": b = a break if (a > 3 ): a = a - 3 else: a = 3 - a if (b > 3 ): b = b - 3 else: b = 3 - b print(int(a+b))
Title: Beautiful Matrix Time Limit: None seconds Memory Limit: None megabytes Problem Description: You've got a 5<=×<=5 matrix, consisting of 24 zeroes and a single number one. Let's index the matrix rows by numbers from 1 to 5 from top to bottom, let's index the matrix columns by numbers from 1 to 5 from left to right. In one move, you are allowed to apply one of the two following transformations to the matrix: 1. Swap two neighboring matrix rows, that is, rows with indexes *i* and *i*<=+<=1 for some integer *i* (1<=≤<=*i*<=&lt;<=5). 1. Swap two neighboring matrix columns, that is, columns with indexes *j* and *j*<=+<=1 for some integer *j* (1<=≤<=*j*<=&lt;<=5). You think that a matrix looks beautiful, if the single number one of the matrix is located in its middle (in the cell that is on the intersection of the third row and the third column). Count the minimum number of moves needed to make the matrix beautiful. Input Specification: The input consists of five lines, each line contains five integers: the *j*-th integer in the *i*-th line of the input represents the element of the matrix that is located on the intersection of the *i*-th row and the *j*-th column. It is guaranteed that the matrix consists of 24 zeroes and a single number one. Output Specification: Print a single integer — the minimum number of moves needed to make the matrix beautiful. Demo Input: ['0 0 0 0 0\n0 0 0 0 1\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n', '0 0 0 0 0\n0 0 0 0 0\n0 1 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n'] Demo Output: ['3\n', '1\n'] Note: none
```python n = 0 b = 0 d = 0 for _ in range(5): base = list(input().split(" ")) n += 1 if "1" in base: d = n a = 0 for i in base: a += 1 if i == "1": b = a break if (a > 3 ): a = a - 3 else: a = 3 - a if (b > 3 ): b = b - 3 else: b = 3 - b print(int(a+b)) ```
0
25
A
IQ test
PROGRAMMING
1,300
[ "brute force" ]
A. IQ test
2
256
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob — to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
The first line contains integer *n* (3<=≤<=*n*<=≤<=100) — amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
[ "5\n2 4 7 8 10\n", "4\n1 2 1 1\n" ]
[ "3\n", "2\n" ]
none
0
[ { "input": "5\n2 4 7 8 10", "output": "3" }, { "input": "4\n1 2 1 1", "output": "2" }, { "input": "3\n1 2 2", "output": "1" }, { "input": "3\n100 99 100", "output": "2" }, { "input": "3\n5 3 2", "output": "3" }, { "input": "4\n43 28 1 91", "output": "2" }, { "input": "4\n75 13 94 77", "output": "3" }, { "input": "4\n97 8 27 3", "output": "2" }, { "input": "10\n95 51 12 91 85 3 1 31 25 7", "output": "3" }, { "input": "20\n88 96 66 51 14 88 2 92 18 72 18 88 20 30 4 82 90 100 24 46", "output": "4" }, { "input": "30\n20 94 56 50 10 98 52 32 14 22 24 60 4 8 98 46 34 68 82 82 98 90 50 20 78 49 52 94 64 36", "output": "26" }, { "input": "50\n79 27 77 57 37 45 27 49 65 33 57 21 71 19 75 85 65 61 23 97 85 9 23 1 9 3 99 77 77 21 79 69 15 37 15 7 93 81 13 89 91 31 45 93 15 97 55 80 85 83", "output": "48" }, { "input": "60\n46 11 73 65 3 69 3 53 43 53 97 47 55 93 31 75 35 3 9 73 23 31 3 81 91 79 61 21 15 11 11 11 81 7 83 75 39 87 83 59 89 55 93 27 49 67 67 29 1 93 11 17 9 19 35 21 63 31 31 25", "output": "1" }, { "input": "70\n28 42 42 92 64 54 22 38 38 78 62 38 4 38 14 66 4 92 66 58 94 26 4 44 41 88 48 82 44 26 74 44 48 4 16 92 34 38 26 64 94 4 30 78 50 54 12 90 8 16 80 98 28 100 74 50 36 42 92 18 76 98 8 22 2 50 58 50 64 46", "output": "25" }, { "input": "100\n43 35 79 53 13 91 91 45 65 83 57 9 42 39 85 45 71 51 61 59 31 13 63 39 25 21 79 39 91 67 21 61 97 75 93 83 29 79 59 97 11 37 63 51 39 55 91 23 21 17 47 23 35 75 49 5 69 99 5 7 41 17 25 89 15 79 21 63 53 81 43 91 59 91 69 99 85 15 91 51 49 37 65 7 89 81 21 93 61 63 97 93 45 17 13 69 57 25 75 73", "output": "13" }, { "input": "100\n50 24 68 60 70 30 52 22 18 74 68 98 20 82 4 46 26 68 100 78 84 58 74 98 38 88 68 86 64 80 82 100 20 22 98 98 52 6 94 10 48 68 2 18 38 22 22 82 44 20 66 72 36 58 64 6 36 60 4 96 76 64 12 90 10 58 64 60 74 28 90 26 24 60 40 58 2 16 76 48 58 36 82 60 24 44 4 78 28 38 8 12 40 16 38 6 66 24 31 76", "output": "99" }, { "input": "100\n47 48 94 48 14 18 94 36 96 22 12 30 94 20 48 98 40 58 2 94 8 36 98 18 98 68 2 60 76 38 18 100 8 72 100 68 2 86 92 72 58 16 48 14 6 58 72 76 6 88 80 66 20 28 74 62 86 68 90 86 2 56 34 38 56 90 4 8 76 44 32 86 12 98 38 34 54 92 70 94 10 24 82 66 90 58 62 2 32 58 100 22 58 72 2 22 68 72 42 14", "output": "1" }, { "input": "99\n38 20 68 60 84 16 28 88 60 48 80 28 4 92 70 60 46 46 20 34 12 100 76 2 40 10 8 86 6 80 50 66 12 34 14 28 26 70 46 64 34 96 10 90 98 96 56 88 50 74 70 94 2 94 24 66 68 46 22 30 6 10 64 32 88 14 98 100 64 58 50 18 50 50 8 38 8 16 54 2 60 54 62 84 92 98 4 72 66 26 14 88 99 16 10 6 88 56 22", "output": "93" }, { "input": "99\n50 83 43 89 53 47 69 1 5 37 63 87 95 15 55 95 75 89 33 53 89 75 93 75 11 85 49 29 11 97 49 67 87 11 25 37 97 73 67 49 87 43 53 97 43 29 53 33 45 91 37 73 39 49 59 5 21 43 87 35 5 63 89 57 63 47 29 99 19 85 13 13 3 13 43 19 5 9 61 51 51 57 15 89 13 97 41 13 99 79 13 27 97 95 73 33 99 27 23", "output": "1" }, { "input": "98\n61 56 44 30 58 14 20 24 88 28 46 56 96 52 58 42 94 50 46 30 46 80 72 88 68 16 6 60 26 90 10 98 76 20 56 40 30 16 96 20 88 32 62 30 74 58 36 76 60 4 24 36 42 54 24 92 28 14 2 74 86 90 14 52 34 82 40 76 8 64 2 56 10 8 78 16 70 86 70 42 70 74 22 18 76 98 88 28 62 70 36 72 20 68 34 48 80 98", "output": "1" }, { "input": "98\n66 26 46 42 78 32 76 42 26 82 8 12 4 10 24 26 64 44 100 46 94 64 30 18 88 28 8 66 30 82 82 28 74 52 62 80 80 60 94 86 64 32 44 88 92 20 12 74 94 28 34 58 4 22 16 10 94 76 82 58 40 66 22 6 30 32 92 54 16 76 74 98 18 48 48 30 92 2 16 42 84 74 30 60 64 52 50 26 16 86 58 96 79 60 20 62 82 94", "output": "93" }, { "input": "95\n9 31 27 93 17 77 75 9 9 53 89 39 51 99 5 1 11 39 27 49 91 17 27 79 81 71 37 75 35 13 93 4 99 55 85 11 23 57 5 43 5 61 15 35 23 91 3 81 99 85 43 37 39 27 5 67 7 33 75 59 13 71 51 27 15 93 51 63 91 53 43 99 25 47 17 71 81 15 53 31 59 83 41 23 73 25 91 91 13 17 25 13 55 57 29", "output": "32" }, { "input": "100\n91 89 81 45 53 1 41 3 77 93 55 97 55 97 87 27 69 95 73 41 93 21 75 35 53 56 5 51 87 59 91 67 33 3 99 45 83 17 97 47 75 97 7 89 17 99 23 23 81 25 55 97 27 35 69 5 77 35 93 19 55 59 37 21 31 37 49 41 91 53 73 69 7 37 37 39 17 71 7 97 55 17 47 23 15 73 31 39 57 37 9 5 61 41 65 57 77 79 35 47", "output": "26" }, { "input": "99\n38 56 58 98 80 54 26 90 14 16 78 92 52 74 40 30 84 14 44 80 16 90 98 68 26 24 78 72 42 16 84 40 14 44 2 52 50 2 12 96 58 66 8 80 44 52 34 34 72 98 74 4 66 74 56 21 8 38 76 40 10 22 48 32 98 34 12 62 80 68 64 82 22 78 58 74 20 22 48 56 12 38 32 72 6 16 74 24 94 84 26 38 18 24 76 78 98 94 72", "output": "56" }, { "input": "100\n44 40 6 40 56 90 98 8 36 64 76 86 98 76 36 92 6 30 98 70 24 98 96 60 24 82 88 68 86 96 34 42 58 10 40 26 56 10 88 58 70 32 24 28 14 82 52 12 62 36 70 60 52 34 74 30 78 76 10 16 42 94 66 90 70 38 52 12 58 22 98 96 14 68 24 70 4 30 84 98 8 50 14 52 66 34 100 10 28 100 56 48 38 12 38 14 91 80 70 86", "output": "97" }, { "input": "100\n96 62 64 20 90 46 56 90 68 36 30 56 70 28 16 64 94 34 6 32 34 50 94 22 90 32 40 2 72 10 88 38 28 92 20 26 56 80 4 100 100 90 16 74 74 84 8 2 30 20 80 32 16 46 92 56 42 12 96 64 64 42 64 58 50 42 74 28 2 4 36 32 70 50 54 92 70 16 45 76 28 16 18 50 48 2 62 94 4 12 52 52 4 100 70 60 82 62 98 42", "output": "79" }, { "input": "99\n14 26 34 68 90 58 50 36 8 16 18 6 2 74 54 20 36 84 32 50 52 2 26 24 3 64 20 10 54 26 66 44 28 72 4 96 78 90 96 86 68 28 94 4 12 46 100 32 22 36 84 32 44 94 76 94 4 52 12 30 74 4 34 64 58 72 44 16 70 56 54 8 14 74 8 6 58 62 98 54 14 40 80 20 36 72 28 98 20 58 40 52 90 64 22 48 54 70 52", "output": "25" }, { "input": "95\n82 86 30 78 6 46 80 66 74 72 16 24 18 52 52 38 60 36 86 26 62 28 22 46 96 26 94 84 20 46 66 88 76 32 12 86 74 18 34 88 4 48 94 6 58 6 100 82 4 24 88 32 54 98 34 48 6 76 42 88 42 28 100 4 22 2 10 66 82 54 98 20 60 66 38 98 32 47 86 58 6 100 12 46 2 42 8 84 78 28 24 70 34 28 86", "output": "78" }, { "input": "90\n40 50 8 42 76 24 58 42 26 68 20 48 54 12 34 84 14 36 32 88 6 50 96 56 20 92 48 16 40 34 96 46 20 84 30 50 20 98 8 44 96 42 8 76 70 38 84 30 40 88 84 72 2 22 52 58 16 62 100 66 80 40 50 32 14 62 88 72 22 99 76 50 84 82 8 82 98 46 26 40 2 98 18 78 30 72 70 18 34 68", "output": "70" }, { "input": "80\n81 43 87 1 55 43 53 61 27 19 43 13 89 9 33 83 75 55 97 71 91 37 95 5 21 69 81 93 95 69 31 83 55 7 97 7 79 57 8 61 27 85 49 1 15 97 63 79 29 73 41 85 5 41 31 93 67 11 63 59 15 99 91 77 43 69 23 23 81 73 19 1 67 51 1 75 99 67 3 81", "output": "39" }, { "input": "98\n13 83 61 27 35 1 85 95 97 73 95 65 73 45 5 43 27 83 91 19 11 3 85 59 9 39 69 23 45 7 51 85 5 71 5 95 1 51 75 3 43 57 3 11 33 71 21 99 47 41 87 39 71 87 31 85 91 49 83 5 49 85 47 91 55 99 33 23 31 23 23 73 29 77 55 31 25 5 81 49 91 15 15 39 87 5 9 40 69 47 29 33 11 21 49 79 51 83", "output": "88" }, { "input": "3\n100 100 1", "output": "3" } ]
1,634,006,352
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
60
0
# -*- coding: utf-8 -*- """ Created on Tue Oct 12 10:06:36 2021 @author: Boush """ n = int(input()) s = list(map(int,input().split())) check = '' for i in range(1,n-1): d = (s[i-1]+s[i+1])/2 if s[i]==d: check = check+'0' else:check = check+'1' a = int(check.find('1')) b = int(check.count('1')) print(check) print(a) print(b) print(a+b)
Title: IQ test Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob — to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness. Input Specification: The first line contains integer *n* (3<=≤<=*n*<=≤<=100) — amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness. Output Specification: Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order. Demo Input: ['5\n2 4 7 8 10\n', '4\n1 2 1 1\n'] Demo Output: ['3\n', '2\n'] Note: none
```python # -*- coding: utf-8 -*- """ Created on Tue Oct 12 10:06:36 2021 @author: Boush """ n = int(input()) s = list(map(int,input().split())) check = '' for i in range(1,n-1): d = (s[i-1]+s[i+1])/2 if s[i]==d: check = check+'0' else:check = check+'1' a = int(check.find('1')) b = int(check.count('1')) print(check) print(a) print(b) print(a+b) ```
0
893
C
Rumor
PROGRAMMING
1,300
[ "dfs and similar", "graphs", "greedy" ]
null
null
Vova promised himself that he would never play computer games... But recently Firestorm — a well-known game developing company — published their newest game, World of Farcraft, and it became really popular. Of course, Vova started playing it. Now he tries to solve a quest. The task is to come to a settlement named Overcity and spread a rumor in it. Vova knows that there are *n* characters in Overcity. Some characters are friends to each other, and they share information they got. Also Vova knows that he can bribe each character so he or she starts spreading the rumor; *i*-th character wants *c**i* gold in exchange for spreading the rumor. When a character hears the rumor, he tells it to all his friends, and they start spreading the rumor to their friends (for free), and so on. The quest is finished when all *n* characters know the rumor. What is the minimum amount of gold Vova needs to spend in order to finish the quest? Take a look at the notes if you think you haven't understood the problem completely.
The first line contains two integer numbers *n* and *m* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105) — the number of characters in Overcity and the number of pairs of friends. The second line contains *n* integer numbers *c**i* (0<=≤<=*c**i*<=≤<=109) — the amount of gold *i*-th character asks to start spreading the rumor. Then *m* lines follow, each containing a pair of numbers (*x**i*,<=*y**i*) which represent that characters *x**i* and *y**i* are friends (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*, *x**i*<=≠<=*y**i*). It is guaranteed that each pair is listed at most once.
Print one number — the minimum amount of gold Vova has to spend in order to finish the quest.
[ "5 2\n2 5 3 4 8\n1 4\n4 5\n", "10 0\n1 2 3 4 5 6 7 8 9 10\n", "10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10\n" ]
[ "10\n", "55\n", "15\n" ]
In the first example the best decision is to bribe the first character (he will spread the rumor to fourth character, and the fourth one will spread it to fifth). Also Vova has to bribe the second and the third characters, so they know the rumor. In the second example Vova has to bribe everyone. In the third example the optimal decision is to bribe the first, the third, the fifth, the seventh and the ninth characters.
0
[ { "input": "5 2\n2 5 3 4 8\n1 4\n4 5", "output": "10" }, { "input": "10 0\n1 2 3 4 5 6 7 8 9 10", "output": "55" }, { "input": "10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10", "output": "15" }, { "input": "1 0\n0", "output": "0" }, { "input": "1 0\n1000000000", "output": "1000000000" }, { "input": "2 0\n0 0", "output": "0" }, { "input": "2 0\n1000000000 0", "output": "1000000000" }, { "input": "2 0\n0 1000000000", "output": "1000000000" }, { "input": "2 0\n1000000000 1000000000", "output": "2000000000" }, { "input": "2 1\n0 0\n1 2", "output": "0" } ]
1,687,081,823
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
61
1,126,400
from typing import List, Tuple def kruskal(n: int, edges: List[Tuple[int, int, int]]) -> int: parent = [i for i in range(n)] rank = [0] * n edges.sort(key=lambda x: x[2]) res = 0 for u, v, w in edges: while u != parent[u]: u = parent[u] while v != parent[v]: v = parent[v] if u != v: res += w if rank[u] < rank[v]: u, v = v, u parent[v] = u if rank[u] == rank[v]: rank[u] += 1 return res n, m = map(int,input().split()) c = list(map(int,input().split())) edges = [] for i in range(m): u,v = map(int,input().split()) edges.append((u,v,min(c[u-1],c[v-1]))) print(kruskal(n, edges))
Title: Rumor Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vova promised himself that he would never play computer games... But recently Firestorm — a well-known game developing company — published their newest game, World of Farcraft, and it became really popular. Of course, Vova started playing it. Now he tries to solve a quest. The task is to come to a settlement named Overcity and spread a rumor in it. Vova knows that there are *n* characters in Overcity. Some characters are friends to each other, and they share information they got. Also Vova knows that he can bribe each character so he or she starts spreading the rumor; *i*-th character wants *c**i* gold in exchange for spreading the rumor. When a character hears the rumor, he tells it to all his friends, and they start spreading the rumor to their friends (for free), and so on. The quest is finished when all *n* characters know the rumor. What is the minimum amount of gold Vova needs to spend in order to finish the quest? Take a look at the notes if you think you haven't understood the problem completely. Input Specification: The first line contains two integer numbers *n* and *m* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105) — the number of characters in Overcity and the number of pairs of friends. The second line contains *n* integer numbers *c**i* (0<=≤<=*c**i*<=≤<=109) — the amount of gold *i*-th character asks to start spreading the rumor. Then *m* lines follow, each containing a pair of numbers (*x**i*,<=*y**i*) which represent that characters *x**i* and *y**i* are friends (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*, *x**i*<=≠<=*y**i*). It is guaranteed that each pair is listed at most once. Output Specification: Print one number — the minimum amount of gold Vova has to spend in order to finish the quest. Demo Input: ['5 2\n2 5 3 4 8\n1 4\n4 5\n', '10 0\n1 2 3 4 5 6 7 8 9 10\n', '10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10\n'] Demo Output: ['10\n', '55\n', '15\n'] Note: In the first example the best decision is to bribe the first character (he will spread the rumor to fourth character, and the fourth one will spread it to fifth). Also Vova has to bribe the second and the third characters, so they know the rumor. In the second example Vova has to bribe everyone. In the third example the optimal decision is to bribe the first, the third, the fifth, the seventh and the ninth characters.
```python from typing import List, Tuple def kruskal(n: int, edges: List[Tuple[int, int, int]]) -> int: parent = [i for i in range(n)] rank = [0] * n edges.sort(key=lambda x: x[2]) res = 0 for u, v, w in edges: while u != parent[u]: u = parent[u] while v != parent[v]: v = parent[v] if u != v: res += w if rank[u] < rank[v]: u, v = v, u parent[v] = u if rank[u] == rank[v]: rank[u] += 1 return res n, m = map(int,input().split()) c = list(map(int,input().split())) edges = [] for i in range(m): u,v = map(int,input().split()) edges.append((u,v,min(c[u-1],c[v-1]))) print(kruskal(n, edges)) ```
-1
415
A
Mashmokh and Lights
PROGRAMMING
900
[ "implementation" ]
null
null
Mashmokh works in a factory. At the end of each day he must turn off all of the lights. The lights on the factory are indexed from 1 to *n*. There are *n* buttons in Mashmokh's room indexed from 1 to *n* as well. If Mashmokh pushes button with index *i*, then each light with index not less than *i* that is still turned on turns off. Mashmokh is not very clever. So instead of pushing the first button he pushes some of the buttons randomly each night. He pushed *m* distinct buttons *b*1,<=*b*2,<=...,<=*b**m* (the buttons were pushed consecutively in the given order) this night. Now he wants to know for each light the index of the button that turned this light off. Please note that the index of button *b**i* is actually *b**i*, not *i*. Please, help Mashmokh, print these indices.
The first line of the input contains two space-separated integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100), the number of the factory lights and the pushed buttons respectively. The next line contains *m* distinct space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*). It is guaranteed that all lights will be turned off after pushing all buttons.
Output *n* space-separated integers where the *i*-th number is index of the button that turns the *i*-th light off.
[ "5 4\n4 3 1 2\n", "5 5\n5 4 3 2 1\n" ]
[ "1 1 3 4 4 \n", "1 2 3 4 5 \n" ]
In the first sample, after pressing button number 4, lights 4 and 5 are turned off and lights 1, 2 and 3 are still on. Then after pressing button number 3, light number 3 is turned off as well. Pressing button number 1 turns off lights number 1 and 2 as well so pressing button number 2 in the end has no effect. Thus button number 4 turned lights 4 and 5 off, button number 3 turned light 3 off and button number 1 turned light 1 and 2 off.
500
[ { "input": "5 4\n4 3 1 2", "output": "1 1 3 4 4 " }, { "input": "5 5\n5 4 3 2 1", "output": "1 2 3 4 5 " }, { "input": "16 11\n8 5 12 10 14 2 6 3 15 9 1", "output": "1 2 2 2 5 5 5 8 8 8 8 8 8 8 8 8 " }, { "input": "79 22\n76 32 48 28 33 44 58 59 1 51 77 13 15 64 49 72 74 21 61 12 60 57", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 28 28 28 28 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 32 76 76 76 76 " }, { "input": "25 19\n3 12 21 11 19 6 5 15 4 16 20 8 9 1 22 23 25 18 13", "output": "1 1 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 " }, { "input": "48 8\n42 27 40 1 18 3 19 2", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 27 27 27 27 27 27 27 27 27 27 27 27 27 27 27 42 42 42 42 42 42 42 " }, { "input": "44 19\n13 20 7 10 9 14 43 17 18 39 21 42 37 1 33 8 35 4 6", "output": "1 1 1 1 1 1 7 7 7 7 7 7 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 " }, { "input": "80 29\n79 51 28 73 65 39 10 1 59 29 7 70 64 3 35 17 24 71 74 2 6 49 66 80 13 18 60 15 12", "output": "1 1 1 1 1 1 1 1 1 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 28 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 51 79 79 " }, { "input": "31 4\n8 18 30 1", "output": "1 1 1 1 1 1 1 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 " }, { "input": "62 29\n61 55 35 13 51 56 23 6 8 26 27 40 48 11 18 12 19 50 54 14 24 21 32 17 43 33 1 2 3", "output": "1 1 1 1 1 6 6 6 6 6 6 6 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 13 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 35 55 55 55 55 55 55 61 61 " }, { "input": "5 4\n2 3 4 1", "output": "1 2 2 2 2 " }, { "input": "39 37\n2 5 17 24 19 33 35 16 20 3 1 34 10 36 15 37 14 8 28 21 13 31 30 29 7 25 32 12 6 27 22 4 11 39 18 9 26", "output": "1 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 " }, { "input": "100 100\n100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 80 79 78 77 76 75 74 73 72 71 70 69 68 67 66 65 64 63 62 61 60 59 58 57 56 55 54 53 52 51 50 49 48 47 46 45 44 43 42 41 40 39 38 37 36 35 34 33 32 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1", "output": "1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 " }, { "input": "1 1\n1", "output": "1 " }, { "input": "18 3\n18 1 11", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 18 " }, { "input": "67 20\n66 23 40 49 3 39 60 43 52 47 16 36 22 5 41 10 55 34 64 1", "output": "1 1 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 23 66 66 " }, { "input": "92 52\n9 85 44 13 27 61 8 1 28 41 6 14 70 67 39 71 56 80 34 21 5 10 40 73 63 38 90 57 37 36 82 86 65 46 7 54 81 12 45 49 83 59 64 26 62 25 60 24 91 47 53 55", "output": "1 1 1 1 1 1 1 8 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 " }, { "input": "66 36\n44 62 32 29 3 15 47 30 50 42 35 2 33 65 10 13 56 12 1 16 7 36 39 11 25 28 20 52 46 38 37 8 61 49 48 14", "output": "1 2 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 29 29 29 32 32 32 32 32 32 32 32 32 32 32 32 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 44 " }, { "input": "32 8\n27 23 1 13 18 24 17 26", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 23 23 23 23 27 27 27 27 27 27 " }, { "input": "26 13\n1 14 13 2 4 24 21 22 16 3 10 12 6", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 " }, { "input": "31 20\n10 11 20 2 4 26 31 7 13 12 28 1 30 18 21 8 3 16 15 19", "output": "1 2 2 2 2 2 2 2 2 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 " }, { "input": "86 25\n22 62 8 23 53 77 9 31 43 1 58 16 72 11 15 35 60 39 79 4 82 64 76 63 59", "output": "1 1 1 1 1 1 1 8 8 8 8 8 8 8 8 8 8 8 8 8 8 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 22 " }, { "input": "62 54\n2 5 4 47 40 61 37 31 41 16 44 42 48 32 10 6 62 38 52 49 11 20 55 22 3 36 25 21 50 8 28 14 18 39 34 54 53 19 46 27 15 23 12 24 60 17 33 57 58 1 35 29 51 7", "output": "1 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 " }, { "input": "57 19\n43 45 37 40 42 55 16 33 47 32 34 35 9 41 1 6 8 15 5", "output": "1 1 1 1 1 1 1 1 9 9 9 9 9 9 9 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 16 37 37 37 37 37 37 43 43 43 43 43 43 43 43 43 43 43 43 43 43 43 " }, { "input": "32 14\n4 7 13 1 25 22 9 27 6 28 30 2 14 21", "output": "1 1 1 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 " }, { "input": "57 12\n8 53 51 38 1 6 16 33 13 46 28 35", "output": "1 1 1 1 1 1 1 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 " }, { "input": "87 9\n57 34 78 1 52 67 56 6 54", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 34 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 57 " }, { "input": "88 42\n85 45 52 14 63 53 70 71 16 86 66 47 12 22 10 72 4 31 3 69 11 77 17 25 46 75 23 1 21 84 44 20 18 33 48 88 41 83 67 61 73 34", "output": "1 1 3 4 4 4 4 4 4 10 10 12 12 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 45 85 85 85 85 " }, { "input": "27 25\n9 21 17 5 16 3 23 7 12 4 14 11 13 1 15 19 27 8 20 10 22 25 6 18 26", "output": "1 1 3 3 5 5 5 5 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 " }, { "input": "89 28\n5 22 79 42 16 35 66 48 57 55 1 37 29 31 40 38 45 62 41 87 64 89 81 13 60 44 71 82", "output": "1 1 1 1 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 " }, { "input": "17 4\n4 3 1 2", "output": "1 1 3 4 4 4 4 4 4 4 4 4 4 4 4 4 4 " } ]
1,396,799,597
797
Python 3
OK
TESTS
31
77
0
import sys file = sys.stdin __author__ = 'RaiaN' n, m = file.readline().split(' ') n = int(n) m = int(m) ms = [int(val) for val in file.readline().split(' ')] dsb = [0]*n for val in ms: for i in range(val-1, n): if dsb[i] == 0: dsb[i] = val print(' '.join(str(x) for x in dsb))
Title: Mashmokh and Lights Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mashmokh works in a factory. At the end of each day he must turn off all of the lights. The lights on the factory are indexed from 1 to *n*. There are *n* buttons in Mashmokh's room indexed from 1 to *n* as well. If Mashmokh pushes button with index *i*, then each light with index not less than *i* that is still turned on turns off. Mashmokh is not very clever. So instead of pushing the first button he pushes some of the buttons randomly each night. He pushed *m* distinct buttons *b*1,<=*b*2,<=...,<=*b**m* (the buttons were pushed consecutively in the given order) this night. Now he wants to know for each light the index of the button that turned this light off. Please note that the index of button *b**i* is actually *b**i*, not *i*. Please, help Mashmokh, print these indices. Input Specification: The first line of the input contains two space-separated integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100), the number of the factory lights and the pushed buttons respectively. The next line contains *m* distinct space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*). It is guaranteed that all lights will be turned off after pushing all buttons. Output Specification: Output *n* space-separated integers where the *i*-th number is index of the button that turns the *i*-th light off. Demo Input: ['5 4\n4 3 1 2\n', '5 5\n5 4 3 2 1\n'] Demo Output: ['1 1 3 4 4 \n', '1 2 3 4 5 \n'] Note: In the first sample, after pressing button number 4, lights 4 and 5 are turned off and lights 1, 2 and 3 are still on. Then after pressing button number 3, light number 3 is turned off as well. Pressing button number 1 turns off lights number 1 and 2 as well so pressing button number 2 in the end has no effect. Thus button number 4 turned lights 4 and 5 off, button number 3 turned light 3 off and button number 1 turned light 1 and 2 off.
```python import sys file = sys.stdin __author__ = 'RaiaN' n, m = file.readline().split(' ') n = int(n) m = int(m) ms = [int(val) for val in file.readline().split(' ')] dsb = [0]*n for val in ms: for i in range(val-1, n): if dsb[i] == 0: dsb[i] = val print(' '.join(str(x) for x in dsb)) ```
3
729
B
Spotlights
PROGRAMMING
1,200
[ "dp", "implementation" ]
null
null
Theater stage is a rectangular field of size *n*<=×<=*m*. The director gave you the stage's plan which actors will follow. For each cell it is stated in the plan if there would be an actor in this cell or not. You are to place a spotlight on the stage in some good position. The spotlight will project light in one of the four directions (if you look at the stage from above) — left, right, up or down. Thus, the spotlight's position is a cell it is placed to and a direction it shines. A position is good if two conditions hold: - there is no actor in the cell the spotlight is placed to; - there is at least one actor in the direction the spotlight projects. Count the number of good positions for placing the spotlight. Two positions of spotlight are considered to be different if the location cells or projection direction differ.
The first line contains two positive integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000) — the number of rows and the number of columns in the plan. The next *n* lines contain *m* integers, 0 or 1 each — the description of the plan. Integer 1, means there will be an actor in the corresponding cell, while 0 means the cell will remain empty. It is guaranteed that there is at least one actor in the plan.
Print one integer — the number of good positions for placing the spotlight.
[ "2 4\n0 1 0 0\n1 0 1 0\n", "4 4\n0 0 0 0\n1 0 0 1\n0 1 1 0\n0 1 0 0\n" ]
[ "9\n", "20\n" ]
In the first example the following positions are good: 1. the (1, 1) cell and right direction; 1. the (1, 1) cell and down direction; 1. the (1, 3) cell and left direction; 1. the (1, 3) cell and down direction; 1. the (1, 4) cell and left direction; 1. the (2, 2) cell and left direction; 1. the (2, 2) cell and up direction; 1. the (2, 2) and right direction; 1. the (2, 4) cell and left direction. Therefore, there are 9 good positions in this example.
1,000
[ { "input": "2 4\n0 1 0 0\n1 0 1 0", "output": "9" }, { "input": "4 4\n0 0 0 0\n1 0 0 1\n0 1 1 0\n0 1 0 0", "output": "20" }, { "input": "1 5\n1 1 0 0 0", "output": "3" }, { "input": "2 10\n0 0 0 0 0 0 0 1 0 0\n1 0 0 0 0 0 0 0 0 0", "output": "20" }, { "input": "3 1\n1\n0\n0", "output": "2" }, { "input": "5 7\n0 0 0 0 0 0 1\n0 0 0 0 0 0 1\n0 0 0 1 0 0 0\n0 0 0 0 0 0 0\n0 0 0 0 0 0 0", "output": "25" }, { "input": "10 20\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "4" }, { "input": "5 7\n0 0 0 0 0 0 0\n0 1 1 1 1 0 1\n0 1 1 1 1 1 1\n0 0 0 0 0 0 0\n0 1 1 1 1 0 1", "output": "26" }, { "input": "10 20\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0\n0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "121" }, { "input": "1 2\n0 1", "output": "1" }, { "input": "1 2\n1 0", "output": "1" }, { "input": "1 2\n1 1", "output": "0" }, { "input": "2 1\n1\n0", "output": "1" }, { "input": "2 1\n0\n1", "output": "1" }, { "input": "2 1\n1\n1", "output": "0" }, { "input": "1 1\n1", "output": "0" }, { "input": "4 4\n1 1 1 1\n1 0 0 1\n1 0 0 1\n1 1 1 1", "output": "16" } ]
1,479,635,914
3,214
Python 3
COMPILATION_ERROR
PRETESTS
0
0
0
#include <iostream> #include <vector> using namespace std; int main() { int n, m; cin >> n >> m; vector<vector<int> > field; vector<int> left; vector<int> right; vector<int> up; vector<int> down; field.resize(n); left.resize(n, m); right.resize(n, -1); up.resize(m, n); down.resize(m, -1); for (int i = 0; i < n; i++) { field[i].resize(m); for (int j = 0; j < m; j++) { cin >> field[i][j]; if (field[i][j] == 1 and left[i] == m) left[i] = j; if (field[i][j] == 1) { right[i] = j; down[j] = i; } if (field[i][j] == 1 and up[j] == n) up[j] = i; } } int counter = 0; for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { if (field[i][j] != 1) { if (i > up[j]) counter += 1; if (i < down[j]) counter++; if (j < right[i]) counter++; if (j > left[i]) counter++; } } } cout << counter; return 0; }
Title: Spotlights Time Limit: None seconds Memory Limit: None megabytes Problem Description: Theater stage is a rectangular field of size *n*<=×<=*m*. The director gave you the stage's plan which actors will follow. For each cell it is stated in the plan if there would be an actor in this cell or not. You are to place a spotlight on the stage in some good position. The spotlight will project light in one of the four directions (if you look at the stage from above) — left, right, up or down. Thus, the spotlight's position is a cell it is placed to and a direction it shines. A position is good if two conditions hold: - there is no actor in the cell the spotlight is placed to; - there is at least one actor in the direction the spotlight projects. Count the number of good positions for placing the spotlight. Two positions of spotlight are considered to be different if the location cells or projection direction differ. Input Specification: The first line contains two positive integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000) — the number of rows and the number of columns in the plan. The next *n* lines contain *m* integers, 0 or 1 each — the description of the plan. Integer 1, means there will be an actor in the corresponding cell, while 0 means the cell will remain empty. It is guaranteed that there is at least one actor in the plan. Output Specification: Print one integer — the number of good positions for placing the spotlight. Demo Input: ['2 4\n0 1 0 0\n1 0 1 0\n', '4 4\n0 0 0 0\n1 0 0 1\n0 1 1 0\n0 1 0 0\n'] Demo Output: ['9\n', '20\n'] Note: In the first example the following positions are good: 1. the (1, 1) cell and right direction; 1. the (1, 1) cell and down direction; 1. the (1, 3) cell and left direction; 1. the (1, 3) cell and down direction; 1. the (1, 4) cell and left direction; 1. the (2, 2) cell and left direction; 1. the (2, 2) cell and up direction; 1. the (2, 2) and right direction; 1. the (2, 4) cell and left direction. Therefore, there are 9 good positions in this example.
```python #include <iostream> #include <vector> using namespace std; int main() { int n, m; cin >> n >> m; vector<vector<int> > field; vector<int> left; vector<int> right; vector<int> up; vector<int> down; field.resize(n); left.resize(n, m); right.resize(n, -1); up.resize(m, n); down.resize(m, -1); for (int i = 0; i < n; i++) { field[i].resize(m); for (int j = 0; j < m; j++) { cin >> field[i][j]; if (field[i][j] == 1 and left[i] == m) left[i] = j; if (field[i][j] == 1) { right[i] = j; down[j] = i; } if (field[i][j] == 1 and up[j] == n) up[j] = i; } } int counter = 0; for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { if (field[i][j] != 1) { if (i > up[j]) counter += 1; if (i < down[j]) counter++; if (j < right[i]) counter++; if (j > left[i]) counter++; } } } cout << counter; return 0; } ```
-1
666
A
Reberland Linguistics
PROGRAMMING
1,800
[ "dp", "implementation", "strings" ]
null
null
First-rate specialists graduate from Berland State Institute of Peace and Friendship. You are one of the most talented students in this university. The education is not easy because you need to have fundamental knowledge in different areas, which sometimes are not related to each other. For example, you should know linguistics very well. You learn a structure of Reberland language as foreign language. In this language words are constructed according to the following rules. First you need to choose the "root" of the word — some string which has more than 4 letters. Then several strings with the length 2 or 3 symbols are appended to this word. The only restriction — it is not allowed to append the same string twice in a row. All these strings are considered to be suffixes of the word (this time we use word "suffix" to describe a morpheme but not the few last characters of the string as you may used to). Here is one exercise that you have found in your task list. You are given the word *s*. Find all distinct strings with the length 2 or 3, which can be suffixes of this word according to the word constructing rules in Reberland language. Two strings are considered distinct if they have different length or there is a position in which corresponding characters do not match. Let's look at the example: the word *abacabaca* is given. This word can be obtained in the following ways: , where the root of the word is overlined, and suffixes are marked by "corners". Thus, the set of possible suffixes for this word is {*aca*,<=*ba*,<=*ca*}.
The only line contains a string *s* (5<=≤<=|*s*|<=≤<=104) consisting of lowercase English letters.
On the first line print integer *k* — a number of distinct possible suffixes. On the next *k* lines print suffixes. Print suffixes in lexicographical (alphabetical) order.
[ "abacabaca\n", "abaca\n" ]
[ "3\naca\nba\nca\n", "0\n" ]
The first test was analysed in the problem statement. In the second example the length of the string equals 5. The length of the root equals 5, so no string can be used as a suffix.
500
[ { "input": "abacabaca", "output": "3\naca\nba\nca" }, { "input": "abaca", "output": "0" }, { "input": "gzqgchv", "output": "1\nhv" }, { "input": "iosdwvzerqfi", "output": "9\ner\nerq\nfi\nqfi\nrq\nvz\nvze\nze\nzer" }, { "input": "oawtxikrpvfuzugjweki", "output": "25\neki\nfu\nfuz\ngj\ngjw\nik\nikr\njw\njwe\nki\nkr\nkrp\npv\npvf\nrp\nrpv\nug\nugj\nuz\nuzu\nvf\nvfu\nwe\nzu\nzug" }, { "input": "abcdexyzzzz", "output": "5\nxyz\nyz\nyzz\nzz\nzzz" }, { "input": "affviytdmexpwfqplpyrlniprbdphrcwlboacoqec", "output": "67\nac\naco\nbd\nbdp\nbo\nboa\nco\ncoq\ncw\ncwl\ndm\ndme\ndp\ndph\nec\nex\nexp\nfq\nfqp\nhr\nhrc\nip\nipr\nlb\nlbo\nln\nlni\nlp\nlpy\nme\nmex\nni\nnip\noa\noac\noq\nph\nphr\npl\nplp\npr\nprb\npw\npwf\npy\npyr\nqec\nqp\nqpl\nrb\nrbd\nrc\nrcw\nrl\nrln\ntd\ntdm\nwf\nwfq\nwl\nwlb\nxp\nxpw\nyr\nyrl\nyt\nytd" }, { "input": "lmnxtobrknqjvnzwadpccrlvisxyqbxxmghvl", "output": "59\nad\nadp\nbr\nbrk\nbx\nbxx\ncc\nccr\ncr\ncrl\ndp\ndpc\ngh\nhvl\nis\nisx\njv\njvn\nkn\nknq\nlv\nlvi\nmg\nmgh\nnq\nnqj\nnz\nnzw\nob\nobr\npc\npcc\nqb\nqbx\nqj\nqjv\nrk\nrkn\nrl\nrlv\nsx\nsxy\nvi\nvis\nvl\nvn\nvnz\nwa\nwad\nxm\nxmg\nxx\nxxm\nxy\nxyq\nyq\nyqb\nzw\nzwa" }, { "input": "tbdbdpkluawodlrwldjgplbiylrhuywkhafbkiuoppzsjxwbaqqiwagprqtoauowtaexrhbmctcxwpmplkyjnpwukzwqrqpv", "output": "170\nae\naex\naf\nafb\nag\nagp\naq\naqq\nau\nauo\naw\nawo\nba\nbaq\nbi\nbiy\nbk\nbki\nbm\nbmc\nct\nctc\ncx\ncxw\ndj\ndjg\ndl\ndlr\nex\nexr\nfb\nfbk\ngp\ngpl\ngpr\nha\nhaf\nhb\nhbm\nhu\nhuy\niu\niuo\niw\niwa\niy\niyl\njg\njgp\njn\njnp\njx\njxw\nkh\nkha\nki\nkiu\nkl\nklu\nky\nkyj\nkz\nkzw\nlb\nlbi\nld\nldj\nlk\nlky\nlr\nlrh\nlrw\nlu\nlua\nmc\nmct\nmp\nmpl\nnp\nnpw\noa\noau\nod\nodl\nop\nopp\now\nowt\npk\npkl\npl\nplb\nplk\npm\npmp\npp\nppz\npr\nprq\npv\npw\npwu\npz\npzs\nqi\nqiw\nqpv\nqq\nqqi\nqr\nqrq\nqt\nq..." }, { "input": "caqmjjtwmqxytcsawfufvlofqcqdwnyvywvbbhmpzqwqqxieptiaguwvqdrdftccsglgfezrzhstjcxdknftpyslyqdmkwdolwbusyrgyndqllgesktvgarpfkiglxgtcfepclqhgfbfmkymsszrtynlxbosmrvntsqwccdtahkpnelwiqn", "output": "323\nag\nagu\nah\nahk\nar\narp\naw\nawf\nbb\nbbh\nbf\nbfm\nbh\nbhm\nbo\nbos\nbu\nbus\ncc\nccd\nccs\ncd\ncdt\ncf\ncfe\ncl\nclq\ncq\ncqd\ncs\ncsa\ncsg\ncx\ncxd\ndf\ndft\ndk\ndkn\ndm\ndmk\ndo\ndol\ndq\ndql\ndr\ndrd\ndt\ndta\ndw\ndwn\nel\nelw\nep\nepc\nept\nes\nesk\nez\nezr\nfb\nfbf\nfe\nfep\nfez\nfk\nfki\nfm\nfmk\nfq\nfqc\nft\nftc\nftp\nfu\nfuf\nfv\nfvl\nga\ngar\nge\nges\ngf\ngfb\ngfe\ngl\nglg\nglx\ngt\ngtc\ngu\nguw\ngy\ngyn\nhg\nhgf\nhk\nhkp\nhm\nhmp\nhs\nhst\nia\niag\nie\niep\nig\nigl\niqn\njc\njcx\njt\njtw..." }, { "input": "prntaxhysjfcfmrjngdsitlguahtpnwgbaxptubgpwcfxqehrulbxfcjssgocqncscduvyvarvwxzvmjoatnqfsvsilubexmwugedtzavyamqjqtkxzuslielibjnvkpvyrbndehsqcaqzcrmomqqwskwcypgqoawxdutnxmeivnfpzwvxiyscbfnloqjhjacsfnkfmbhgzpujrqdbaemjsqphokkiplblbflvadcyykcqrdohfasstobwrobslaofbasylwiizrpozvhtwyxtzl", "output": "505\nac\nacs\nad\nadc\nae\naem\nah\naht\nam\namq\nao\naof\naq\naqz\nar\narv\nas\nass\nasy\nat\natn\nav\navy\naw\nawx\nax\naxp\nba\nbae\nbas\nbax\nbe\nbex\nbf\nbfl\nbfn\nbg\nbgp\nbh\nbhg\nbj\nbjn\nbl\nblb\nbn\nbnd\nbs\nbsl\nbw\nbwr\nbx\nbxf\nca\ncaq\ncb\ncbf\ncd\ncdu\ncf\ncfm\ncfx\ncj\ncjs\ncq\ncqn\ncqr\ncr\ncrm\ncs\ncsc\ncsf\ncy\ncyp\ncyy\ndb\ndba\ndc\ndcy\nde\ndeh\ndo\ndoh\nds\ndsi\ndt\ndtz\ndu\ndut\nduv\ned\nedt\neh\nehr\nehs\nei\neiv\nel\neli\nem\nemj\nex\nexm\nfa\nfas\nfb\nfba\nfc\nfcf\nfcj\nfl\nflv\nf..." }, { "input": "gvtgnjyfvnuhagulgmjlqzpvxsygmikofsnvkuplnkxeibnicygpvfvtebppadpdnrxjodxdhxqceaulbfxogwrigstsjudhkgwkhseuwngbppisuzvhzzxxbaggfngmevksbrntpprxvcczlalutdzhwmzbalkqmykmodacjrmwhwugyhwlrbnqxsznldmaxpndwmovcolowxhj", "output": "375\nac\nacj\nad\nadp\nag\nagg\nagu\nal\nalk\nalu\nau\naul\nax\naxp\nba\nbag\nbal\nbf\nbfx\nbn\nbni\nbnq\nbp\nbpp\nbr\nbrn\ncc\nccz\nce\ncea\ncj\ncjr\nco\ncol\ncy\ncyg\ncz\nczl\nda\ndac\ndh\ndhk\ndhx\ndm\ndma\ndn\ndnr\ndp\ndpd\ndw\ndwm\ndx\ndxd\ndz\ndzh\nea\neau\neb\nebp\nei\neib\neu\neuw\nev\nevk\nfn\nfng\nfs\nfsn\nfv\nfvn\nfvt\nfx\nfxo\ngb\ngbp\ngf\ngfn\ngg\nggf\ngm\ngme\ngmi\ngmj\ngp\ngpv\ngs\ngst\ngu\ngul\ngw\ngwk\ngwr\ngy\ngyh\nha\nhag\nhj\nhk\nhkg\nhs\nhse\nhw\nhwl\nhwm\nhwu\nhx\nhxq\nhz\nhzz\nib\nib..." }, { "input": "topqexoicgzjmssuxnswdhpwbsqwfhhziwqibjgeepcvouhjezlomobgireaxaceppoxfxvkwlvgwtjoiplihbpsdhczddwfvcbxqqmqtveaunshmobdlkmmfyajjlkhxnvfmibtbbqswrhcfwytrccgtnlztkddrevkfovunuxtzhhhnorecyfgmlqcwjfjtqegxagfiuqtpjpqlwiefofpatxuqxvikyynncsueynmigieototnbcwxavlbgeqao", "output": "462\nac\nace\nag\nagf\naj\najj\nao\nat\natx\nau\naun\nav\navl\nax\naxa\nbb\nbbq\nbc\nbcw\nbd\nbdl\nbg\nbge\nbgi\nbj\nbjg\nbp\nbps\nbq\nbqs\nbs\nbsq\nbt\nbtb\nbx\nbxq\ncb\ncbx\ncc\nccg\nce\ncep\ncf\ncfw\ncg\ncgt\ncgz\ncs\ncsu\ncv\ncvo\ncw\ncwj\ncwx\ncy\ncyf\ncz\nczd\ndd\nddr\nddw\ndh\ndhc\ndhp\ndl\ndlk\ndr\ndre\ndw\ndwf\nea\neau\neax\nec\necy\nee\neep\nef\nefo\neg\negx\neo\neot\nep\nepc\nepp\neq\nev\nevk\ney\neyn\nez\nezl\nfg\nfgm\nfh\nfhh\nfi\nfiu\nfj\nfjt\nfm\nfmi\nfo\nfof\nfov\nfp\nfpa\nfv\nfvc\nfw\nfwy\n..." }, { "input": "lcrjhbybgamwetyrppxmvvxiyufdkcotwhmptefkqxjhrknjdponulsynpkgszhbkeinpnjdonjfwzbsaweqwlsvuijauwezfydktfljxgclpxpknhygdqyiapvzudyyqomgnsrdhhxhsrdfrwnxdolkmwmw", "output": "276\nam\namw\nap\napv\nau\nauw\naw\nawe\nbg\nbga\nbk\nbke\nbs\nbsa\nby\nbyb\ncl\nclp\nco\ncot\ndf\ndfr\ndh\ndhh\ndk\ndkc\ndkt\ndo\ndol\ndon\ndp\ndpo\ndq\ndqy\ndy\ndyy\nef\nefk\nei\nein\neq\neqw\net\nety\nez\nezf\nfd\nfdk\nfk\nfkq\nfl\nflj\nfr\nfrw\nfw\nfwz\nfy\nfyd\nga\ngam\ngc\ngcl\ngd\ngdq\ngn\ngns\ngs\ngsz\nhb\nhbk\nhh\nhhx\nhm\nhmp\nhr\nhrk\nhs\nhsr\nhx\nhxh\nhy\nhyg\nia\niap\nij\nija\nin\ninp\niy\niyu\nja\njau\njd\njdo\njdp\njf\njfw\njh\njhr\njx\njxg\nkc\nkco\nke\nkei\nkg\nkgs\nkm\nkmw\nkn\nknh\nknj\n..." }, { "input": "hzobjysjhbebobkoror", "output": "20\nbe\nbeb\nbko\nbo\nbob\neb\nebo\nhb\nhbe\njh\njhb\nko\nkor\nob\nor\nror\nsj\nsjh\nys\nysj" }, { "input": "safgmgpzljarfswowdxqhuhypxcmiddyvehjtnlflzknznrukdsbatxoytzxkqngopeipbythhbhfkvlcdxwqrxumbtbgiosjnbeorkzsrfarqofsrcwsfpyheaszjpkjysrcxbzebkxzovdchhososo", "output": "274\nar\narf\narq\nas\nasz\nat\natx\nba\nbat\nbe\nbeo\nbg\nbgi\nbh\nbhf\nbk\nbkx\nbt\nbtb\nby\nbyt\nbz\nbze\ncd\ncdx\nch\nchh\ncm\ncmi\ncw\ncws\ncx\ncxb\ndc\ndch\ndd\nddy\nds\ndsb\ndx\ndxq\ndxw\ndy\ndyv\nea\neas\neb\nebk\neh\nehj\nei\neip\neo\neor\nfa\nfar\nfk\nfkv\nfl\nflz\nfp\nfpy\nfs\nfsr\nfsw\ngi\ngio\ngo\ngop\ngp\ngpz\nhb\nhbh\nhe\nhea\nhf\nhfk\nhh\nhhb\nhj\nhjt\nhos\nhu\nhuh\nhy\nhyp\nid\nidd\nio\nios\nip\nipb\nja\njar\njn\njnb\njp\njpk\njt\njtn\njy\njys\nkd\nkds\nkj\nkjy\nkn\nknz\nkq\nkqn\nkv\nkvl\n..." }, { "input": "glaoyryxrgsysy", "output": "10\ngs\ngsy\nrgs\nry\nryx\nsy\nxr\nysy\nyx\nyxr" }, { "input": "aaaaaxyxxxx", "output": "5\nxx\nxxx\nxyx\nyx\nyxx" }, { "input": "aaaaax", "output": "0" }, { "input": "aaaaaxx", "output": "1\nxx" }, { "input": "aaaaaaa", "output": "1\naa" }, { "input": "aaaaaxxx", "output": "2\nxx\nxxx" }, { "input": "aaaaayxx", "output": "2\nxx\nyxx" }, { "input": "aaaaaxyz", "output": "2\nxyz\nyz" }, { "input": "aaaaaxyxy", "output": "2\nxy\nyxy" }, { "input": "aaaxyyxyy", "output": "3\nxyy\nyx\nyy" }, { "input": "aaaaaxxxxxx", "output": "2\nxx\nxxx" }, { "input": "aaaaaxxxxx", "output": "2\nxx\nxxx" }, { "input": "aaaaaxyzxyxy", "output": "5\nxy\nyxy\nyzx\nzx\nzxy" }, { "input": "aaaaadddgggg", "output": "6\ndd\nddg\ndg\ndgg\ngg\nggg" }, { "input": "abcdeabzzzzzzzz", "output": "5\nab\nabz\nbz\nzz\nzzz" }, { "input": "bbbbbccaaaaaa", "output": "4\naa\naaa\nca\ncca" }, { "input": "xxxxxababc", "output": "5\nab\naba\nabc\nba\nbc" }, { "input": "dddddaabbbbbb", "output": "4\naab\nab\nbb\nbbb" }, { "input": "xxxxxababe", "output": "5\nab\naba\nabe\nba\nbe" }, { "input": "aaaaababaaaaaaaaaaaa", "output": "6\naa\naaa\nab\nba\nbaa\nbab" } ]
1,698,494,624
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
15
102,400
if __name__ == "__main__": pass s = str(input()) s = s[5:] n = len(s) arr = [] cash = [] if n == 0 or n == 1: print(0) elif n == 2: print(1) print(s) elif n == 3: print(2) print(s[1:2]) print(s) else: s = s[::-1] arr.append(s[1] + s[0]) for i in range(2, n-1): if s[i+1] + s[i] not in arr and (n-i == 3 or n-i == 5 or s[i - 1] + s[i - 2] not in cash): arr.append(s[i+1] + s[i]) elif (s[i - 1] + s[i - 2] in arr and s[i-1] + s[i-2] not in cash): cash.append(s[i-2] + s[i-1]) arr.append(s[2] + s[1] + s[0]) for i in range(2, n-2): if s[i+2] + s[i+1] + s[i] not in arr and (n-i == 3 or n-i == 5 or s[i - 1] + s[i - 2] not in cash or s[i] + s[i-1] + s[i-2] not in cash): arr.append(s[i+2] + s[i+1] + s[i]) elif (s[i] + s[i - 1] + s[i - 2] in arr and s[i] + s[i - 1] + s[i - 2] not in cash): cash.append(s[i] + s[i-1] + s[i-2]) print(len(arr)) for i in arr: print(i)
Title: Reberland Linguistics Time Limit: None seconds Memory Limit: None megabytes Problem Description: First-rate specialists graduate from Berland State Institute of Peace and Friendship. You are one of the most talented students in this university. The education is not easy because you need to have fundamental knowledge in different areas, which sometimes are not related to each other. For example, you should know linguistics very well. You learn a structure of Reberland language as foreign language. In this language words are constructed according to the following rules. First you need to choose the "root" of the word — some string which has more than 4 letters. Then several strings with the length 2 or 3 symbols are appended to this word. The only restriction — it is not allowed to append the same string twice in a row. All these strings are considered to be suffixes of the word (this time we use word "suffix" to describe a morpheme but not the few last characters of the string as you may used to). Here is one exercise that you have found in your task list. You are given the word *s*. Find all distinct strings with the length 2 or 3, which can be suffixes of this word according to the word constructing rules in Reberland language. Two strings are considered distinct if they have different length or there is a position in which corresponding characters do not match. Let's look at the example: the word *abacabaca* is given. This word can be obtained in the following ways: , where the root of the word is overlined, and suffixes are marked by "corners". Thus, the set of possible suffixes for this word is {*aca*,<=*ba*,<=*ca*}. Input Specification: The only line contains a string *s* (5<=≤<=|*s*|<=≤<=104) consisting of lowercase English letters. Output Specification: On the first line print integer *k* — a number of distinct possible suffixes. On the next *k* lines print suffixes. Print suffixes in lexicographical (alphabetical) order. Demo Input: ['abacabaca\n', 'abaca\n'] Demo Output: ['3\naca\nba\nca\n', '0\n'] Note: The first test was analysed in the problem statement. In the second example the length of the string equals 5. The length of the root equals 5, so no string can be used as a suffix.
```python if __name__ == "__main__": pass s = str(input()) s = s[5:] n = len(s) arr = [] cash = [] if n == 0 or n == 1: print(0) elif n == 2: print(1) print(s) elif n == 3: print(2) print(s[1:2]) print(s) else: s = s[::-1] arr.append(s[1] + s[0]) for i in range(2, n-1): if s[i+1] + s[i] not in arr and (n-i == 3 or n-i == 5 or s[i - 1] + s[i - 2] not in cash): arr.append(s[i+1] + s[i]) elif (s[i - 1] + s[i - 2] in arr and s[i-1] + s[i-2] not in cash): cash.append(s[i-2] + s[i-1]) arr.append(s[2] + s[1] + s[0]) for i in range(2, n-2): if s[i+2] + s[i+1] + s[i] not in arr and (n-i == 3 or n-i == 5 or s[i - 1] + s[i - 2] not in cash or s[i] + s[i-1] + s[i-2] not in cash): arr.append(s[i+2] + s[i+1] + s[i]) elif (s[i] + s[i - 1] + s[i - 2] in arr and s[i] + s[i - 1] + s[i - 2] not in cash): cash.append(s[i] + s[i-1] + s[i-2]) print(len(arr)) for i in arr: print(i) ```
0
961
B
Lecture Sleep
PROGRAMMING
1,200
[ "data structures", "dp", "implementation", "two pointers" ]
null
null
Your friend Mishka and you attend a calculus lecture. Lecture lasts *n* minutes. Lecturer tells *a**i* theorems during the *i*-th minute. Mishka is really interested in calculus, though it is so hard to stay awake for all the time of lecture. You are given an array *t* of Mishka's behavior. If Mishka is asleep during the *i*-th minute of the lecture then *t**i* will be equal to 0, otherwise it will be equal to 1. When Mishka is awake he writes down all the theorems he is being told — *a**i* during the *i*-th minute. Otherwise he writes nothing. You know some secret technique to keep Mishka awake for *k* minutes straight. However you can use it only once. You can start using it at the beginning of any minute between 1 and *n*<=-<=*k*<=+<=1. If you use it on some minute *i* then Mishka will be awake during minutes *j* such that and will write down all the theorems lecturer tells. You task is to calculate the maximum number of theorems Mishka will be able to write down if you use your technique only once to wake him up.
The first line of the input contains two integer numbers *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=105) — the duration of the lecture in minutes and the number of minutes you can keep Mishka awake. The second line of the input contains *n* integer numbers *a*1,<=*a*2,<=... *a**n* (1<=≤<=*a**i*<=≤<=104) — the number of theorems lecturer tells during the *i*-th minute. The third line of the input contains *n* integer numbers *t*1,<=*t*2,<=... *t**n* (0<=≤<=*t**i*<=≤<=1) — type of Mishka's behavior at the *i*-th minute of the lecture.
Print only one integer — the maximum number of theorems Mishka will be able to write down if you use your technique only once to wake him up.
[ "6 3\n1 3 5 2 5 4\n1 1 0 1 0 0\n" ]
[ "16\n" ]
In the sample case the better way is to use the secret technique at the beginning of the third minute. Then the number of theorems Mishka will be able to write down will be equal to 16.
0
[ { "input": "6 3\n1 3 5 2 5 4\n1 1 0 1 0 0", "output": "16" }, { "input": "5 3\n1 9999 10000 10000 10000\n0 0 0 0 0", "output": "30000" }, { "input": "3 3\n10 10 10\n1 1 0", "output": "30" }, { "input": "1 1\n423\n0", "output": "423" }, { "input": "6 6\n1 3 5 2 5 4\n1 1 0 1 0 0", "output": "20" }, { "input": "5 2\n1 2 3 4 20\n0 0 0 1 0", "output": "24" }, { "input": "3 1\n1 2 3\n0 0 1", "output": "5" }, { "input": "4 2\n4 5 6 8\n1 0 1 0", "output": "18" }, { "input": "6 3\n1 3 5 2 1 15\n1 1 0 1 0 0", "output": "22" }, { "input": "5 5\n1 2 3 4 5\n1 1 1 0 1", "output": "15" }, { "input": "3 3\n3 3 3\n1 0 1", "output": "9" }, { "input": "5 5\n500 44 3 4 50\n1 0 0 0 0", "output": "601" }, { "input": "2 2\n3 2\n1 0", "output": "5" }, { "input": "7 6\n4 9 1 7 1 8 4\n0 0 0 1 0 1 0", "output": "30" }, { "input": "4 3\n6 5 9 6\n1 1 0 1", "output": "26" }, { "input": "2 1\n3 2\n0 0", "output": "3" }, { "input": "1 1\n10\n0", "output": "10" }, { "input": "2 1\n3 2\n1 0", "output": "5" }, { "input": "4 2\n3 6 7 2\n0 0 1 1", "output": "18" }, { "input": "10 5\n3 5 9 2 5 9 3 8 8 1\n0 1 1 1 0 1 0 0 0 0", "output": "49" }, { "input": "10 4\n9 5 6 4 3 9 5 1 10 7\n0 0 0 0 0 0 1 0 0 1", "output": "36" }, { "input": "9 8\n3 3 7 7 1 9 10 7 1\n1 1 1 1 1 1 1 1 1", "output": "48" }, { "input": "2 1\n3 4\n0 0", "output": "4" }, { "input": "2 1\n3 2\n0 1", "output": "5" }, { "input": "10 1\n6 6 8 7 6 6 3 2 5 6\n0 0 1 0 0 1 0 1 1 1", "output": "34" }, { "input": "3 2\n10 10 6\n0 0 0", "output": "20" }, { "input": "6 3\n1 3 5 2 5 4\n1 1 1 1 1 1", "output": "20" }, { "input": "10 5\n1 1 1 1 1 1 1 1 10000 1\n1 1 1 1 1 1 1 1 0 1", "output": "10009" } ]
1,628,365,026
2,147,483,647
Python 3
OK
TESTS
37
171
14,438,400
#!/bin/python3 def LectureSleep(k, n, theorems, behavior): # 1 <= k <= n if k == n: print(sum(theorems)) return awakeSum = 0 for i in range(n): awakeSum += theorems[i]*behavior[i] sleepSum = 0 for i in range(k): sleepSum += theorems[i]*(1-behavior[i]) maxSleepSum = sleepSum for i in range(1, n-(k-1)): sleepSum = sleepSum - theorems[i-1]*(1-behavior[i-1]) + theorems[i+k-1]*(1-behavior[i+k-1]) if sleepSum > maxSleepSum: maxSleepSum = sleepSum print(awakeSum + maxSleepSum) n, k = input().split() arr = input().split() arr2 = input().split() arr = [int(i) for i in arr] arr2 = [int(i) for i in arr2] LectureSleep(int(k) , int(n), arr, arr2)
Title: Lecture Sleep Time Limit: None seconds Memory Limit: None megabytes Problem Description: Your friend Mishka and you attend a calculus lecture. Lecture lasts *n* minutes. Lecturer tells *a**i* theorems during the *i*-th minute. Mishka is really interested in calculus, though it is so hard to stay awake for all the time of lecture. You are given an array *t* of Mishka's behavior. If Mishka is asleep during the *i*-th minute of the lecture then *t**i* will be equal to 0, otherwise it will be equal to 1. When Mishka is awake he writes down all the theorems he is being told — *a**i* during the *i*-th minute. Otherwise he writes nothing. You know some secret technique to keep Mishka awake for *k* minutes straight. However you can use it only once. You can start using it at the beginning of any minute between 1 and *n*<=-<=*k*<=+<=1. If you use it on some minute *i* then Mishka will be awake during minutes *j* such that and will write down all the theorems lecturer tells. You task is to calculate the maximum number of theorems Mishka will be able to write down if you use your technique only once to wake him up. Input Specification: The first line of the input contains two integer numbers *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=105) — the duration of the lecture in minutes and the number of minutes you can keep Mishka awake. The second line of the input contains *n* integer numbers *a*1,<=*a*2,<=... *a**n* (1<=≤<=*a**i*<=≤<=104) — the number of theorems lecturer tells during the *i*-th minute. The third line of the input contains *n* integer numbers *t*1,<=*t*2,<=... *t**n* (0<=≤<=*t**i*<=≤<=1) — type of Mishka's behavior at the *i*-th minute of the lecture. Output Specification: Print only one integer — the maximum number of theorems Mishka will be able to write down if you use your technique only once to wake him up. Demo Input: ['6 3\n1 3 5 2 5 4\n1 1 0 1 0 0\n'] Demo Output: ['16\n'] Note: In the sample case the better way is to use the secret technique at the beginning of the third minute. Then the number of theorems Mishka will be able to write down will be equal to 16.
```python #!/bin/python3 def LectureSleep(k, n, theorems, behavior): # 1 <= k <= n if k == n: print(sum(theorems)) return awakeSum = 0 for i in range(n): awakeSum += theorems[i]*behavior[i] sleepSum = 0 for i in range(k): sleepSum += theorems[i]*(1-behavior[i]) maxSleepSum = sleepSum for i in range(1, n-(k-1)): sleepSum = sleepSum - theorems[i-1]*(1-behavior[i-1]) + theorems[i+k-1]*(1-behavior[i+k-1]) if sleepSum > maxSleepSum: maxSleepSum = sleepSum print(awakeSum + maxSleepSum) n, k = input().split() arr = input().split() arr2 = input().split() arr = [int(i) for i in arr] arr2 = [int(i) for i in arr2] LectureSleep(int(k) , int(n), arr, arr2) ```
3
1,007
B
Pave the Parallelepiped
PROGRAMMING
2,400
[ "bitmasks", "brute force", "combinatorics", "math", "number theory" ]
null
null
You are given a rectangular parallelepiped with sides of positive integer lengths $A$, $B$ and $C$. Find the number of different groups of three integers ($a$, $b$, $c$) such that $1\leq a\leq b\leq c$ and parallelepiped $A\times B\times C$ can be paved with parallelepipeds $a\times b\times c$. Note, that all small parallelepipeds have to be rotated in the same direction. For example, parallelepiped $1\times 5\times 6$ can be divided into parallelepipeds $1\times 3\times 5$, but can not be divided into parallelepipeds $1\times 2\times 3$.
The first line contains a single integer $t$ ($1 \leq t \leq 10^5$) — the number of test cases. Each of the next $t$ lines contains three integers $A$, $B$ and $C$ ($1 \leq A, B, C \leq 10^5$) — the sizes of the parallelepiped.
For each test case, print the number of different groups of three points that satisfy all given conditions.
[ "4\n1 1 1\n1 6 1\n2 2 2\n100 100 100\n" ]
[ "1\n4\n4\n165\n" ]
In the first test case, rectangular parallelepiped $(1, 1, 1)$ can be only divided into rectangular parallelepiped with sizes $(1, 1, 1)$. In the second test case, rectangular parallelepiped $(1, 6, 1)$ can be divided into rectangular parallelepipeds with sizes $(1, 1, 1)$, $(1, 1, 2)$, $(1, 1, 3)$ and $(1, 1, 6)$. In the third test case, rectangular parallelepiped $(2, 2, 2)$ can be divided into rectangular parallelepipeds with sizes $(1, 1, 1)$, $(1, 1, 2)$, $(1, 2, 2)$ and $(2, 2, 2)$.
1,000
[ { "input": "4\n1 1 1\n1 6 1\n2 2 2\n100 100 100", "output": "1\n4\n4\n165" }, { "input": "10\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1", "output": "1\n1\n1\n1\n1\n1\n1\n1\n1\n1" }, { "input": "10\n9 6 8\n5 5 2\n8 9 2\n2 7 9\n6 4 10\n1 1 8\n2 8 1\n10 6 3\n7 5 2\n9 5 4", "output": "41\n6\n21\n12\n39\n4\n7\n26\n8\n18" }, { "input": "1\n100000 100000 100000", "output": "8436" } ]
1,536,048,110
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
4
2,000
3,276,800
t = int(input()) def solve(n): res = [] for i in range(1,int(n**0.5)+1): if n % i == 0: res.append(i) res.append(n//i) return sorted(set(res)) for _ in range(t): A,B,C = map(int,input().split()) A = solve(A) B = solve(B) C = solve(C) visited = set() res = 0 for a in A: for b in B: for c in C: x,y,z = sorted([a,b,c]) if (x,y,z) not in visited: res += 1 visited.add((x,y,z)) print(res)
Title: Pave the Parallelepiped Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a rectangular parallelepiped with sides of positive integer lengths $A$, $B$ and $C$. Find the number of different groups of three integers ($a$, $b$, $c$) such that $1\leq a\leq b\leq c$ and parallelepiped $A\times B\times C$ can be paved with parallelepipeds $a\times b\times c$. Note, that all small parallelepipeds have to be rotated in the same direction. For example, parallelepiped $1\times 5\times 6$ can be divided into parallelepipeds $1\times 3\times 5$, but can not be divided into parallelepipeds $1\times 2\times 3$. Input Specification: The first line contains a single integer $t$ ($1 \leq t \leq 10^5$) — the number of test cases. Each of the next $t$ lines contains three integers $A$, $B$ and $C$ ($1 \leq A, B, C \leq 10^5$) — the sizes of the parallelepiped. Output Specification: For each test case, print the number of different groups of three points that satisfy all given conditions. Demo Input: ['4\n1 1 1\n1 6 1\n2 2 2\n100 100 100\n'] Demo Output: ['1\n4\n4\n165\n'] Note: In the first test case, rectangular parallelepiped $(1, 1, 1)$ can be only divided into rectangular parallelepiped with sizes $(1, 1, 1)$. In the second test case, rectangular parallelepiped $(1, 6, 1)$ can be divided into rectangular parallelepipeds with sizes $(1, 1, 1)$, $(1, 1, 2)$, $(1, 1, 3)$ and $(1, 1, 6)$. In the third test case, rectangular parallelepiped $(2, 2, 2)$ can be divided into rectangular parallelepipeds with sizes $(1, 1, 1)$, $(1, 1, 2)$, $(1, 2, 2)$ and $(2, 2, 2)$.
```python t = int(input()) def solve(n): res = [] for i in range(1,int(n**0.5)+1): if n % i == 0: res.append(i) res.append(n//i) return sorted(set(res)) for _ in range(t): A,B,C = map(int,input().split()) A = solve(A) B = solve(B) C = solve(C) visited = set() res = 0 for a in A: for b in B: for c in C: x,y,z = sorted([a,b,c]) if (x,y,z) not in visited: res += 1 visited.add((x,y,z)) print(res) ```
0
628
B
New Skateboard
PROGRAMMING
1,300
[ "dp" ]
null
null
Max wants to buy a new skateboard. He has calculated the amount of money that is needed to buy a new skateboard. He left a calculator on the floor and went to ask some money from his parents. Meanwhile his little brother Yusuf came and started to press the keys randomly. Unfortunately Max has forgotten the number which he had calculated. The only thing he knows is that the number is divisible by 4. You are given a string *s* consisting of digits (the number on the display of the calculator after Yusuf randomly pressed the keys). Your task is to find the number of substrings which are divisible by 4. A substring can start with a zero. A substring of a string is a nonempty sequence of consecutive characters. For example if string *s* is 124 then we have four substrings that are divisible by 4: 12, 4, 24 and 124. For the string 04 the answer is three: 0, 4, 04. As input/output can reach huge size it is recommended to use fast input/output methods: for example, prefer to use gets/scanf/printf instead of getline/cin/cout in C++, prefer to use BufferedReader/PrintWriter instead of Scanner/System.out in Java.
The only line contains string *s* (1<=≤<=|*s*|<=≤<=3·105). The string *s* contains only digits from 0 to 9.
Print integer *a* — the number of substrings of the string *s* that are divisible by 4. Note that the answer can be huge, so you should use 64-bit integer type to store it. In C++ you can use the long long integer type and in Java you can use long integer type.
[ "124\n", "04\n", "5810438174\n" ]
[ "4\n", "3\n", "9\n" ]
none
0
[ { "input": "124", "output": "4" }, { "input": "04", "output": "3" }, { "input": "5810438174", "output": "9" }, { "input": "1", "output": "0" }, { "input": "039", "output": "1" }, { "input": "97247", "output": "6" }, { "input": "5810438174", "output": "9" }, { "input": "12883340691714056185860211260984431382156326935244", "output": "424" }, { "input": "2144315253572020279108092911160072328496568665545836825277616363478721946398140227406814602154768031", "output": "1528" }, { "input": "80124649014054971081213608137817466046254652492627741860478258558206397113198232823859870363821007188476405951611069347299689170240023979048198711745011542774268179055311013054073075176122755643483380248999657649211459997766221072399103579977409770898200358240970169892326442892826731631357561876251276209119521202062222947560634301788787748428236988789594458520867663257476744168528121470923031438015546006185059454402637036376247785881323277542968298682307854655591317046086531554595892680980142608", "output": "30826" }, { "input": "123456", "output": "7" }, { "input": "4", "output": "1" }, { "input": "123", "output": "1" } ]
1,637,506,394
2,147,483,647
Python 3
OK
TESTS
22
295
4,608,000
string = input() i = 0 j = 0 n = len(string) string = list(map(int,string)) ans = 0 for i in range(n): if (string[i])%4 == 0: ans+=1 if i >=1: value = string[i-1]*10 + string[i] if value%4 == 0: ans += (i) print(ans)
Title: New Skateboard Time Limit: None seconds Memory Limit: None megabytes Problem Description: Max wants to buy a new skateboard. He has calculated the amount of money that is needed to buy a new skateboard. He left a calculator on the floor and went to ask some money from his parents. Meanwhile his little brother Yusuf came and started to press the keys randomly. Unfortunately Max has forgotten the number which he had calculated. The only thing he knows is that the number is divisible by 4. You are given a string *s* consisting of digits (the number on the display of the calculator after Yusuf randomly pressed the keys). Your task is to find the number of substrings which are divisible by 4. A substring can start with a zero. A substring of a string is a nonempty sequence of consecutive characters. For example if string *s* is 124 then we have four substrings that are divisible by 4: 12, 4, 24 and 124. For the string 04 the answer is three: 0, 4, 04. As input/output can reach huge size it is recommended to use fast input/output methods: for example, prefer to use gets/scanf/printf instead of getline/cin/cout in C++, prefer to use BufferedReader/PrintWriter instead of Scanner/System.out in Java. Input Specification: The only line contains string *s* (1<=≤<=|*s*|<=≤<=3·105). The string *s* contains only digits from 0 to 9. Output Specification: Print integer *a* — the number of substrings of the string *s* that are divisible by 4. Note that the answer can be huge, so you should use 64-bit integer type to store it. In C++ you can use the long long integer type and in Java you can use long integer type. Demo Input: ['124\n', '04\n', '5810438174\n'] Demo Output: ['4\n', '3\n', '9\n'] Note: none
```python string = input() i = 0 j = 0 n = len(string) string = list(map(int,string)) ans = 0 for i in range(n): if (string[i])%4 == 0: ans+=1 if i >=1: value = string[i-1]*10 + string[i] if value%4 == 0: ans += (i) print(ans) ```
3
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,603,374,173
2,147,483,647
PyPy 3
RUNTIME_ERROR
TESTS
0
404
2,150,400
s=input() def diff(a,b): return sum(i==j for i,j in map(a,b)) print(a.lower() if diff(a,a.lower())<=diff(a,a.upper()) else a.upper())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python s=input() def diff(a,b): return sum(i==j for i,j in map(a,b)) print(a.lower() if diff(a,a.lower())<=diff(a,a.upper()) else a.upper()) ```
-1
69
A
Young Physicist
PROGRAMMING
1,000
[ "implementation", "math" ]
A. Young Physicist
2
256
A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces.
The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100).
Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not.
[ "3\n4 1 7\n-2 4 -1\n1 -5 -3\n", "3\n3 -1 7\n-5 2 -4\n2 -1 -3\n" ]
[ "NO", "YES" ]
none
500
[ { "input": "3\n4 1 7\n-2 4 -1\n1 -5 -3", "output": "NO" }, { "input": "3\n3 -1 7\n-5 2 -4\n2 -1 -3", "output": "YES" }, { "input": "10\n21 32 -46\n43 -35 21\n42 2 -50\n22 40 20\n-27 -9 38\n-4 1 1\n-40 6 -31\n-13 -2 34\n-21 34 -12\n-32 -29 41", "output": "NO" }, { "input": "10\n25 -33 43\n-27 -42 28\n-35 -20 19\n41 -42 -1\n49 -39 -4\n-49 -22 7\n-19 29 41\n8 -27 -43\n8 34 9\n-11 -3 33", "output": "NO" }, { "input": "10\n-6 21 18\n20 -11 -8\n37 -11 41\n-5 8 33\n29 23 32\n30 -33 -11\n39 -49 -36\n28 34 -49\n22 29 -34\n-18 -6 7", "output": "NO" }, { "input": "10\n47 -2 -27\n0 26 -14\n5 -12 33\n2 18 3\n45 -30 -49\n4 -18 8\n-46 -44 -41\n-22 -10 -40\n-35 -21 26\n33 20 38", "output": "NO" }, { "input": "13\n-3 -36 -46\n-11 -50 37\n42 -11 -15\n9 42 44\n-29 -12 24\n3 9 -40\n-35 13 50\n14 43 18\n-13 8 24\n-48 -15 10\n50 9 -50\n21 0 -50\n0 0 -6", "output": "YES" }, { "input": "14\n43 23 17\n4 17 44\n5 -5 -16\n-43 -7 -6\n47 -48 12\n50 47 -45\n2 14 43\n37 -30 15\n4 -17 -11\n17 9 -45\n-50 -3 -8\n-50 0 0\n-50 0 0\n-16 0 0", "output": "YES" }, { "input": "13\n29 49 -11\n38 -11 -20\n25 1 -40\n-11 28 11\n23 -19 1\n45 -41 -17\n-3 0 -19\n-13 -33 49\n-30 0 28\n34 17 45\n-50 9 -27\n-50 0 0\n-37 0 0", "output": "YES" }, { "input": "12\n3 28 -35\n-32 -44 -17\n9 -25 -6\n-42 -22 20\n-19 15 38\n-21 38 48\n-1 -37 -28\n-10 -13 -50\n-5 21 29\n34 28 50\n50 11 -49\n34 0 0", "output": "YES" }, { "input": "37\n-64 -79 26\n-22 59 93\n-5 39 -12\n77 -9 76\n55 -86 57\n83 100 -97\n-70 94 84\n-14 46 -94\n26 72 35\n14 78 -62\n17 82 92\n-57 11 91\n23 15 92\n-80 -1 1\n12 39 18\n-23 -99 -75\n-34 50 19\n-39 84 -7\n45 -30 -39\n-60 49 37\n45 -16 -72\n33 -51 -56\n-48 28 5\n97 91 88\n45 -82 -11\n-21 -15 -90\n-53 73 -26\n-74 85 -90\n-40 23 38\n100 -13 49\n32 -100 -100\n0 -100 -70\n0 -100 0\n0 -100 0\n0 -100 0\n0 -100 0\n0 -37 0", "output": "YES" }, { "input": "4\n68 3 100\n68 21 -100\n-100 -24 0\n-36 0 0", "output": "YES" }, { "input": "33\n-1 -46 -12\n45 -16 -21\n-11 45 -21\n-60 -42 -93\n-22 -45 93\n37 96 85\n-76 26 83\n-4 9 55\n7 -52 -9\n66 8 -85\n-100 -54 11\n-29 59 74\n-24 12 2\n-56 81 85\n-92 69 -52\n-26 -97 91\n54 59 -51\n58 21 -57\n7 68 56\n-47 -20 -51\n-59 77 -13\n-85 27 91\n79 60 -56\n66 -80 5\n21 -99 42\n-31 -29 98\n66 93 76\n-49 45 61\n100 -100 -100\n100 -100 -100\n66 -75 -100\n0 0 -100\n0 0 -87", "output": "YES" }, { "input": "3\n1 2 3\n3 2 1\n0 0 0", "output": "NO" }, { "input": "2\n5 -23 12\n0 0 0", "output": "NO" }, { "input": "1\n0 0 0", "output": "YES" }, { "input": "1\n1 -2 0", "output": "NO" }, { "input": "2\n-23 77 -86\n23 -77 86", "output": "YES" }, { "input": "26\n86 7 20\n-57 -64 39\n-45 6 -93\n-44 -21 100\n-11 -49 21\n73 -71 -80\n-2 -89 56\n-65 -2 7\n5 14 84\n57 41 13\n-12 69 54\n40 -25 27\n-17 -59 0\n64 -91 -30\n-53 9 42\n-54 -8 14\n-35 82 27\n-48 -59 -80\n88 70 79\n94 57 97\n44 63 25\n84 -90 -40\n-100 100 -100\n-92 100 -100\n0 10 -100\n0 0 -82", "output": "YES" }, { "input": "42\n11 27 92\n-18 -56 -57\n1 71 81\n33 -92 30\n82 83 49\n-87 -61 -1\n-49 45 49\n73 26 15\n-22 22 -77\n29 -93 87\n-68 44 -90\n-4 -84 20\n85 67 -6\n-39 26 77\n-28 -64 20\n65 -97 24\n-72 -39 51\n35 -75 -91\n39 -44 -8\n-25 -27 -57\n91 8 -46\n-98 -94 56\n94 -60 59\n-9 -95 18\n-53 -37 98\n-8 -94 -84\n-52 55 60\n15 -14 37\n65 -43 -25\n94 12 66\n-8 -19 -83\n29 81 -78\n-58 57 33\n24 86 -84\n-53 32 -88\n-14 7 3\n89 97 -53\n-5 -28 -91\n-100 100 -6\n-84 100 0\n0 100 0\n0 70 0", "output": "YES" }, { "input": "3\n96 49 -12\n2 -66 28\n-98 17 -16", "output": "YES" }, { "input": "5\n70 -46 86\n-100 94 24\n-27 63 -63\n57 -100 -47\n0 -11 0", "output": "YES" }, { "input": "18\n-86 -28 70\n-31 -89 42\n31 -48 -55\n95 -17 -43\n24 -95 -85\n-21 -14 31\n68 -18 81\n13 31 60\n-15 28 99\n-42 15 9\n28 -61 -62\n-16 71 29\n-28 75 -48\n-77 -67 36\n-100 83 89\n100 100 -100\n57 34 -100\n0 0 -53", "output": "YES" }, { "input": "44\n52 -54 -29\n-82 -5 -94\n-54 43 43\n91 16 71\n7 80 -91\n3 15 29\n-99 -6 -77\n-3 -77 -64\n73 67 34\n25 -10 -18\n-29 91 63\n-72 86 -16\n-68 85 -81\n-3 36 44\n-74 -14 -80\n34 -96 -97\n-76 -78 -33\n-24 44 -58\n98 12 77\n95 -63 -6\n-51 3 -90\n-92 -10 72\n7 3 -68\n57 -53 71\n29 57 -48\n35 -60 10\n79 -70 -61\n-20 77 55\n-86 -15 -35\n84 -88 -18\n100 -42 77\n-20 46 8\n-41 -43 -65\n38 -98 -23\n-100 65 45\n-7 -91 -63\n46 88 -85\n48 59 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 1", "output": "YES" }, { "input": "18\n-14 -64 -91\n-8 -66 -86\n-23 92 -40\n6 -3 -53\n57 41 78\n-79 42 -22\n-88 -17 45\n4 -45 44\n83 -18 -25\n34 86 -92\n75 -30 12\n44 99 11\n-67 -13 72\n22 83 -56\n-37 71 72\n-9 -100 100\n0 -100 31\n0 -58 0", "output": "YES" }, { "input": "23\n-70 37 78\n42 84 6\n28 -94 -24\n-49 76 95\n-67 18 84\n-53 78 -5\n65 -63 -64\n-66 -64 -69\n81 -93 95\n10 52 -79\n-89 -61 -64\n-64 -47 43\n-81 -35 55\n80 82 73\n-60 -81 -18\n49 -10 -19\n-58 70 12\n-24 -15 -93\n98 -93 -54\n-28 -75 11\n100 100 -63\n100 100 0\n56 34 0", "output": "YES" }, { "input": "3\n0 2 -2\n1 -1 3\n-3 0 0", "output": "NO" } ]
1,684,693,723
2,147,483,647
PyPy 3-64
OK
TESTS
81
124
0
lines = int(input()) x, y, z = 0, 0, 0 for i in range(lines): line = list(map(int, input().split())) x, y, z = x+line[0], y+line[1], z+line[2] if x == 0 and y == 0 and z == 0: print("YES") else: print("NO")
Title: Young Physicist Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces. Input Specification: The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100). Output Specification: Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not. Demo Input: ['3\n4 1 7\n-2 4 -1\n1 -5 -3\n', '3\n3 -1 7\n-5 2 -4\n2 -1 -3\n'] Demo Output: ['NO', 'YES'] Note: none
```python lines = int(input()) x, y, z = 0, 0, 0 for i in range(lines): line = list(map(int, input().split())) x, y, z = x+line[0], y+line[1], z+line[2] if x == 0 and y == 0 and z == 0: print("YES") else: print("NO") ```
3.969
260
A
Adding Digits
PROGRAMMING
1,400
[ "implementation", "math" ]
null
null
Vasya has got two number: *a* and *b*. However, Vasya finds number *a* too short. So he decided to repeat the operation of lengthening number *a* *n* times. One operation of lengthening a number means adding exactly one digit to the number (in the decimal notation) to the right provided that the resulting number is divisible by Vasya's number *b*. If it is impossible to obtain the number which is divisible by *b*, then the lengthening operation cannot be performed. Your task is to help Vasya and print the number he can get after applying the lengthening operation to number *a* *n* times.
The first line contains three integers: *a*,<=*b*,<=*n* (1<=≤<=*a*,<=*b*,<=*n*<=≤<=105).
In a single line print the integer without leading zeros, which Vasya can get when he applies the lengthening operations to number *a* *n* times. If no such number exists, then print number -1. If there are multiple possible answers, print any of them.
[ "5 4 5\n", "12 11 1\n", "260 150 10\n" ]
[ "524848\n", "121\n", "-1\n" ]
none
500
[ { "input": "5 4 5", "output": "524848" }, { "input": "12 11 1", "output": "121" }, { "input": "260 150 10", "output": "-1" }, { "input": "78843 5684 42717", "output": "-1" }, { "input": "93248 91435 1133", "output": "-1" }, { "input": "100000 10 64479", "output": "1000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99999 21 73839", "output": "9999990000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99991 623 36438", "output": "9999150000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99999 334 94854", "output": "9999960000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99252 9827 84849", "output": "9925270000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99313 9833 10561", "output": "9931330000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "94885 55815 11417", "output": "9488550000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99492 58525 53481", "output": "9949250000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99858 28531 79193", "output": "9985850000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "99136 47208 42607", "output": "9913680000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "63270 19953 5555", "output": "-1" }, { "input": "10240 128 100000", "output": "1024000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "12 11 3", "output": "12100" }, { "input": "14 12 99998", "output": "1440000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000..." }, { "input": "1 11 3", "output": "1100" }, { "input": "3 40 1", "output": "-1" }, { "input": "150 100 10", "output": "1500000000000" }, { "input": "5 10 1", "output": "50" }, { "input": "1 15 10", "output": "15000000000" }, { "input": "3 13 2", "output": "390" } ]
1,587,565,089
2,147,483,647
Python 3
OK
TESTS
25
109
204,800
a,b,c=[int(i) for i in input().split()] a*=10 f=1 for i in range(0,10): if((a+i)%b==0): print(str(a+i)+"0"*(c-1)) f=0 break if f==1: print(-1)
Title: Adding Digits Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasya has got two number: *a* and *b*. However, Vasya finds number *a* too short. So he decided to repeat the operation of lengthening number *a* *n* times. One operation of lengthening a number means adding exactly one digit to the number (in the decimal notation) to the right provided that the resulting number is divisible by Vasya's number *b*. If it is impossible to obtain the number which is divisible by *b*, then the lengthening operation cannot be performed. Your task is to help Vasya and print the number he can get after applying the lengthening operation to number *a* *n* times. Input Specification: The first line contains three integers: *a*,<=*b*,<=*n* (1<=≤<=*a*,<=*b*,<=*n*<=≤<=105). Output Specification: In a single line print the integer without leading zeros, which Vasya can get when he applies the lengthening operations to number *a* *n* times. If no such number exists, then print number -1. If there are multiple possible answers, print any of them. Demo Input: ['5 4 5\n', '12 11 1\n', '260 150 10\n'] Demo Output: ['524848\n', '121\n', '-1\n'] Note: none
```python a,b,c=[int(i) for i in input().split()] a*=10 f=1 for i in range(0,10): if((a+i)%b==0): print(str(a+i)+"0"*(c-1)) f=0 break if f==1: print(-1) ```
3
371
C
Hamburgers
PROGRAMMING
1,600
[ "binary search", "brute force" ]
null
null
Polycarpus loves hamburgers very much. He especially adores the hamburgers he makes with his own hands. Polycarpus thinks that there are only three decent ingredients to make hamburgers from: a bread, sausage and cheese. He writes down the recipe of his favorite "Le Hamburger de Polycarpus" as a string of letters 'B' (bread), 'S' (sausage) и 'C' (cheese). The ingredients in the recipe go from bottom to top, for example, recipe "ВSCBS" represents the hamburger where the ingredients go from bottom to top as bread, sausage, cheese, bread and sausage again. Polycarpus has *n**b* pieces of bread, *n**s* pieces of sausage and *n**c* pieces of cheese in the kitchen. Besides, the shop nearby has all three ingredients, the prices are *p**b* rubles for a piece of bread, *p**s* for a piece of sausage and *p**c* for a piece of cheese. Polycarpus has *r* rubles and he is ready to shop on them. What maximum number of hamburgers can he cook? You can assume that Polycarpus cannot break or slice any of the pieces of bread, sausage or cheese. Besides, the shop has an unlimited number of pieces of each ingredient.
The first line of the input contains a non-empty string that describes the recipe of "Le Hamburger de Polycarpus". The length of the string doesn't exceed 100, the string contains only letters 'B' (uppercase English B), 'S' (uppercase English S) and 'C' (uppercase English C). The second line contains three integers *n**b*, *n**s*, *n**c* (1<=≤<=*n**b*,<=*n**s*,<=*n**c*<=≤<=100) — the number of the pieces of bread, sausage and cheese on Polycarpus' kitchen. The third line contains three integers *p**b*, *p**s*, *p**c* (1<=≤<=*p**b*,<=*p**s*,<=*p**c*<=≤<=100) — the price of one piece of bread, sausage and cheese in the shop. Finally, the fourth line contains integer *r* (1<=≤<=*r*<=≤<=1012) — the number of rubles Polycarpus has. Please, do not write the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier.
Print the maximum number of hamburgers Polycarpus can make. If he can't make any hamburger, print 0.
[ "BBBSSC\n6 4 1\n1 2 3\n4\n", "BBC\n1 10 1\n1 10 1\n21\n", "BSC\n1 1 1\n1 1 3\n1000000000000\n" ]
[ "2\n", "7\n", "200000000001\n" ]
none
1,500
[ { "input": "BBBSSC\n6 4 1\n1 2 3\n4", "output": "2" }, { "input": "BBC\n1 10 1\n1 10 1\n21", "output": "7" }, { "input": "BSC\n1 1 1\n1 1 3\n1000000000000", "output": "200000000001" }, { "input": "B\n1 1 1\n1 1 1\n381", "output": "382" }, { "input": "BSC\n3 5 6\n7 3 9\n100", "output": "10" }, { "input": "BSC\n100 1 1\n100 1 1\n100", "output": "51" }, { "input": "SBBCCSBB\n1 50 100\n31 59 21\n100000", "output": "370" }, { "input": "BBBBCCCCCCCCCCCCCCCCCCCCSSSSBBBBBBBBSS\n100 100 100\n1 1 1\n3628800", "output": "95502" }, { "input": "BBBBBBBBBBCCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n10 20 40\n100 100 100\n200", "output": "0" }, { "input": "BBBBBBBBBBCCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n10 20 40\n100 100 100\n2000", "output": "1" }, { "input": "BBBBBBBBBBCCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n10 20 40\n100 100 100\n300", "output": "0" }, { "input": "BBBBBBBBBBCCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n10 20 40\n100 100 100\n300000000", "output": "42858" }, { "input": "BBBBBBBBBBCCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n10 20 40\n100 100 100\n914159265358", "output": "130594181" }, { "input": "SSSSSSSSSSBBBBBBBBBCCCCCCCCCCCCCCCCCCCSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSBB\n31 53 97\n13 17 31\n914159265358", "output": "647421579" }, { "input": "BBBCSBSBBSSSSCCCCBBCSBBBBSSBBBCBSCCSSCSSCSBSSSCCCCBSCSSBSSSCCCBBCCCSCBCBBCCSCCCCSBBCCBBBBCCCCCCBSSCB\n91 87 17\n64 44 43\n958532915587", "output": "191668251" }, { "input": "CSSCBBCCCSBSCBBBCSBBBCBSBCSCBCSCBCBSBCBCSSBBSBBCBBBBSCSBBCCBCCBCBBSBSBCSCSBBSSBBCSSBCSCSCCSSBCBBCBSB\n56 34 48\n78 6 96\n904174875419", "output": "140968956" }, { "input": "CCSCCCSBBBSCBSCSCCSSBBBSSBBBSBBBCBCSSBCSCBBCCCBCBCBCCCSSBSBBCCCCCBBSCBSCBCBBCBBCSSBCSBSSCCSCCSCCBBBS\n33 73 67\n4 56 42\n886653164314", "output": "277425898" }, { "input": "SBCSSCBBSSBCSSBBBSSBSCBSSSCBBSBBBBCSBCSBSCBSCBSCBSBSSCCCCBSBCCBCBSCCCBSCCBSBBCBSSCCCCSBSBBBSSSBCSCBC\n94 16 85\n14 18 91\n836590091442", "output": "217522127" }, { "input": "BSCSBSCCSCSSCCCSBCSSBCBBSCCBSCCSSSSSSSSSCCSBSCCBBCBBSBSCCCCBCSBSBSSBBBBBSSBSSCBCCSSBSSSCBBCSBBSBCCCB\n67 54 8\n36 73 37\n782232051273", "output": "154164772" }, { "input": "CBBCBSBCCSCBSSCCBCSBCSBBSCBBCSCCBSCCSCSBBSSBSBSCBBSBBCSSSSBBBBSBBCBCSBBCBCSSBBCSBSCCSCSBCSCBSCCBBCSC\n71 71 52\n52 88 3\n654400055575", "output": "137826467" }, { "input": "CBBCBSBCCSCBSSCCBCSBCSBBSCBBCSCCBSCCSCSBBSBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBCBBCSC\n100 1 1\n1 17 23\n954400055575", "output": "1355681897" }, { "input": "C\n100 100 100\n1 1 1\n1000000000000", "output": "1000000000100" }, { "input": "SSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS\n100 100 100\n100 100 100\n1000000000000", "output": "100000001" }, { "input": "B\n100 100 100\n1 1 1\n1", "output": "101" }, { "input": "SC\n2 1 1\n1 1 1\n100000000000", "output": "50000000001" }, { "input": "B\n100 1 1\n1 1 1\n1000000000000", "output": "1000000000100" }, { "input": "BBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBBB\n1 1 1\n100 100 100\n1000000000000", "output": "100000000" }, { "input": "CC\n1 1 1\n100 100 100\n1", "output": "0" }, { "input": "B\n100 100 100\n1 1 1\n1000000000000", "output": "1000000000100" }, { "input": "BSC\n100 100 100\n1 1 1\n1000000000000", "output": "333333333433" }, { "input": "BSC\n100 100 100\n1 1 1\n1", "output": "100" } ]
1,691,116,899
2,147,483,647
PyPy 3-64
RUNTIME_ERROR
TESTS
0
61
2,867,200
def judge(mid): a = mid * sum_B b = mid * sum_S c = mid * sum_C need_B = max(0, a - tmpa) need_S = max(0, b - tmpb) need_C = max(0, c - tmpc) Spend = need_B * sum_a + need_S * sum_b + need_C * sum_c return Spend <= sum str_ = input() sum_B = sum_S = sum_C = 0 for x in str_: if x == 'B': sum_B += 1 elif x == 'S': sum_S += 1 elif x == 'C': sum_C += 1 tmpa, tmpb, tmpc = map(int, input().split()) sum_a, sum_b, sum_c = map(int, input().split()) sum_ = int(input()) Left, Right, ans = 0, 10**13, 0 while Left <= Right: mid = Left + (Right - Left) // 2 if judge(mid): ans = mid Left = mid + 1 else: Right = mid - 1 print(ans)
Title: Hamburgers Time Limit: None seconds Memory Limit: None megabytes Problem Description: Polycarpus loves hamburgers very much. He especially adores the hamburgers he makes with his own hands. Polycarpus thinks that there are only three decent ingredients to make hamburgers from: a bread, sausage and cheese. He writes down the recipe of his favorite "Le Hamburger de Polycarpus" as a string of letters 'B' (bread), 'S' (sausage) и 'C' (cheese). The ingredients in the recipe go from bottom to top, for example, recipe "ВSCBS" represents the hamburger where the ingredients go from bottom to top as bread, sausage, cheese, bread and sausage again. Polycarpus has *n**b* pieces of bread, *n**s* pieces of sausage and *n**c* pieces of cheese in the kitchen. Besides, the shop nearby has all three ingredients, the prices are *p**b* rubles for a piece of bread, *p**s* for a piece of sausage and *p**c* for a piece of cheese. Polycarpus has *r* rubles and he is ready to shop on them. What maximum number of hamburgers can he cook? You can assume that Polycarpus cannot break or slice any of the pieces of bread, sausage or cheese. Besides, the shop has an unlimited number of pieces of each ingredient. Input Specification: The first line of the input contains a non-empty string that describes the recipe of "Le Hamburger de Polycarpus". The length of the string doesn't exceed 100, the string contains only letters 'B' (uppercase English B), 'S' (uppercase English S) and 'C' (uppercase English C). The second line contains three integers *n**b*, *n**s*, *n**c* (1<=≤<=*n**b*,<=*n**s*,<=*n**c*<=≤<=100) — the number of the pieces of bread, sausage and cheese on Polycarpus' kitchen. The third line contains three integers *p**b*, *p**s*, *p**c* (1<=≤<=*p**b*,<=*p**s*,<=*p**c*<=≤<=100) — the price of one piece of bread, sausage and cheese in the shop. Finally, the fourth line contains integer *r* (1<=≤<=*r*<=≤<=1012) — the number of rubles Polycarpus has. Please, do not write the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier. Output Specification: Print the maximum number of hamburgers Polycarpus can make. If he can't make any hamburger, print 0. Demo Input: ['BBBSSC\n6 4 1\n1 2 3\n4\n', 'BBC\n1 10 1\n1 10 1\n21\n', 'BSC\n1 1 1\n1 1 3\n1000000000000\n'] Demo Output: ['2\n', '7\n', '200000000001\n'] Note: none
```python def judge(mid): a = mid * sum_B b = mid * sum_S c = mid * sum_C need_B = max(0, a - tmpa) need_S = max(0, b - tmpb) need_C = max(0, c - tmpc) Spend = need_B * sum_a + need_S * sum_b + need_C * sum_c return Spend <= sum str_ = input() sum_B = sum_S = sum_C = 0 for x in str_: if x == 'B': sum_B += 1 elif x == 'S': sum_S += 1 elif x == 'C': sum_C += 1 tmpa, tmpb, tmpc = map(int, input().split()) sum_a, sum_b, sum_c = map(int, input().split()) sum_ = int(input()) Left, Right, ans = 0, 10**13, 0 while Left <= Right: mid = Left + (Right - Left) // 2 if judge(mid): ans = mid Left = mid + 1 else: Right = mid - 1 print(ans) ```
-1
760
B
Frodo and pillows
PROGRAMMING
1,500
[ "binary search", "greedy" ]
null
null
*n* hobbits are planning to spend the night at Frodo's house. Frodo has *n* beds standing in a row and *m* pillows (*n*<=≤<=*m*). Each hobbit needs a bed and at least one pillow to sleep, however, everyone wants as many pillows as possible. Of course, it's not always possible to share pillows equally, but any hobbit gets hurt if he has at least two pillows less than some of his neighbors have. Frodo will sleep on the *k*-th bed in the row. What is the maximum number of pillows he can have so that every hobbit has at least one pillow, every pillow is given to some hobbit and no one is hurt?
The only line contain three integers *n*, *m* and *k* (1<=≤<=*n*<=≤<=*m*<=≤<=109, 1<=≤<=*k*<=≤<=*n*) — the number of hobbits, the number of pillows and the number of Frodo's bed.
Print single integer — the maximum number of pillows Frodo can have so that no one is hurt.
[ "4 6 2\n", "3 10 3\n", "3 6 1\n" ]
[ "2\n", "4\n", "3\n" ]
In the first example Frodo can have at most two pillows. In this case, he can give two pillows to the hobbit on the first bed, and one pillow to each of the hobbits on the third and the fourth beds. In the second example Frodo can take at most four pillows, giving three pillows to each of the others. In the third example Frodo can take three pillows, giving two pillows to the hobbit in the middle and one pillow to the hobbit on the third bed.
1,000
[ { "input": "4 6 2", "output": "2" }, { "input": "3 10 3", "output": "4" }, { "input": "3 6 1", "output": "3" }, { "input": "3 3 3", "output": "1" }, { "input": "1 1 1", "output": "1" }, { "input": "1 1000000000 1", "output": "1000000000" }, { "input": "100 1000000000 20", "output": "10000034" }, { "input": "1000 1000 994", "output": "1" }, { "input": "100000000 200000000 54345", "output": "10001" }, { "input": "1000000000 1000000000 1", "output": "1" }, { "input": "1000000000 1000000000 1000000000", "output": "1" }, { "input": "1000000000 1000000000 500000000", "output": "1" }, { "input": "1000 1000 3", "output": "1" }, { "input": "100000000 200020000 54345", "output": "10001" }, { "input": "100 108037 18", "output": "1115" }, { "input": "100000000 200020001 54345", "output": "10002" }, { "input": "200 6585 2", "output": "112" }, { "input": "30000 30593 5980", "output": "25" }, { "input": "40000 42107 10555", "output": "46" }, { "input": "50003 50921 192", "output": "31" }, { "input": "100000 113611 24910", "output": "117" }, { "input": "1000000 483447163 83104", "output": "21965" }, { "input": "10000000 10021505 600076", "output": "147" }, { "input": "100000000 102144805 2091145", "output": "1465" }, { "input": "1000000000 1000000000 481982093", "output": "1" }, { "input": "100 999973325 5", "output": "9999778" }, { "input": "200 999999109 61", "output": "5000053" }, { "input": "30000 999999384 5488", "output": "43849" }, { "input": "40000 999997662 8976", "output": "38038" }, { "input": "50003 999999649 405", "output": "44320" }, { "input": "100000 999899822 30885", "output": "31624" }, { "input": "1000000 914032367 528790", "output": "30217" }, { "input": "10000000 999617465 673112", "output": "31459" }, { "input": "100000000 993180275 362942", "output": "29887" }, { "input": "1000000000 1000000000 331431458", "output": "1" }, { "input": "100 10466 89", "output": "144" }, { "input": "200 5701 172", "output": "84" }, { "input": "30000 36932 29126", "output": "84" }, { "input": "40000 40771 22564", "output": "28" }, { "input": "50003 51705 49898", "output": "42" }, { "input": "100000 149408 74707", "output": "223" }, { "input": "1000000 194818222 998601", "output": "18389" }, { "input": "10000000 10748901 8882081", "output": "866" }, { "input": "100000000 106296029 98572386", "output": "2510" }, { "input": "1000000000 1000000000 193988157", "output": "1" }, { "input": "100 999981057 92", "output": "9999852" }, { "input": "200 999989691 199", "output": "5000046" }, { "input": "30000 999995411 24509", "output": "43846" }, { "input": "40000 999998466 30827", "output": "37930" }, { "input": "50003 999997857 48387", "output": "43163" }, { "input": "100000 999731886 98615", "output": "43371" }, { "input": "1000000 523220797 654341", "output": "22853" }, { "input": "10000000 999922591 8157724", "output": "31464" }, { "input": "100000000 999834114 93836827", "output": "29998" }, { "input": "1000000000 1000000000 912549504", "output": "1" }, { "input": "1000 97654978 234", "output": "97976" }, { "input": "1000 97654977 234", "output": "97975" }, { "input": "1000234 97653889 1", "output": "13903" }, { "input": "1000234 97653890 1", "output": "13904" }, { "input": "3450234 97656670 3000000", "output": "9707" }, { "input": "3450234 97656669 3000000", "output": "9706" }, { "input": "3 1000000000 2", "output": "333333334" }, { "input": "2 1000000000 1", "output": "500000000" }, { "input": "2 1000000000 2", "output": "500000000" }, { "input": "3 1000000000 1", "output": "333333334" }, { "input": "3 1000000000 3", "output": "333333334" }, { "input": "2 999999999 1", "output": "500000000" }, { "input": "2 999999999 2", "output": "500000000" }, { "input": "1 999999999 1", "output": "999999999" } ]
1,585,881,211
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
93
307,200
n, m , k = [int(i) for i in input().split()] def get_min_pillow(bed, h): res = (h-1) * h /2 if bed > h-1: res += bed - h + 1 elif bed < h-1: temp = h-1 - bed res -= temp * (temp + 1)/2 return res def check(h): return (get_min_pillow(k-1, h) + h + get_min_pillow(n-k, h)) <= m l = 0 r = m ans = 0 while l <= r: mid = (l + r) >> 1 if check(mid): ans = mid l = mid + 1 else: r = mid - 1 print(ans)
Title: Frodo and pillows Time Limit: None seconds Memory Limit: None megabytes Problem Description: *n* hobbits are planning to spend the night at Frodo's house. Frodo has *n* beds standing in a row and *m* pillows (*n*<=≤<=*m*). Each hobbit needs a bed and at least one pillow to sleep, however, everyone wants as many pillows as possible. Of course, it's not always possible to share pillows equally, but any hobbit gets hurt if he has at least two pillows less than some of his neighbors have. Frodo will sleep on the *k*-th bed in the row. What is the maximum number of pillows he can have so that every hobbit has at least one pillow, every pillow is given to some hobbit and no one is hurt? Input Specification: The only line contain three integers *n*, *m* and *k* (1<=≤<=*n*<=≤<=*m*<=≤<=109, 1<=≤<=*k*<=≤<=*n*) — the number of hobbits, the number of pillows and the number of Frodo's bed. Output Specification: Print single integer — the maximum number of pillows Frodo can have so that no one is hurt. Demo Input: ['4 6 2\n', '3 10 3\n', '3 6 1\n'] Demo Output: ['2\n', '4\n', '3\n'] Note: In the first example Frodo can have at most two pillows. In this case, he can give two pillows to the hobbit on the first bed, and one pillow to each of the hobbits on the third and the fourth beds. In the second example Frodo can take at most four pillows, giving three pillows to each of the others. In the third example Frodo can take three pillows, giving two pillows to the hobbit in the middle and one pillow to the hobbit on the third bed.
```python n, m , k = [int(i) for i in input().split()] def get_min_pillow(bed, h): res = (h-1) * h /2 if bed > h-1: res += bed - h + 1 elif bed < h-1: temp = h-1 - bed res -= temp * (temp + 1)/2 return res def check(h): return (get_min_pillow(k-1, h) + h + get_min_pillow(n-k, h)) <= m l = 0 r = m ans = 0 while l <= r: mid = (l + r) >> 1 if check(mid): ans = mid l = mid + 1 else: r = mid - 1 print(ans) ```
0
989
B
A Tide of Riverscape
PROGRAMMING
1,200
[ "constructive algorithms", "strings" ]
null
null
"Time," Mino thinks aloud. "What?" "Time and tide wait for no man," explains Mino. "My name, taken from the river, always reminds me of this." "And what are you recording?" "You see it, tide. Everything has its own period, and I think I've figured out this one," says Mino with confidence. Doubtfully, Kanno peeks at Mino's records. The records are expressed as a string $s$ of characters '0', '1' and '.', where '0' denotes a low tide, '1' denotes a high tide, and '.' denotes an unknown one (either high or low). You are to help Mino determine whether it's possible that after replacing each '.' independently with '0' or '1', a given integer $p$ is not a period of the resulting string. In case the answer is yes, please also show such a replacement to Mino. In this problem, a positive integer $p$ is considered a period of string $s$, if for all $1 \leq i \leq \lvert s \rvert - p$, the $i$-th and $(i + p)$-th characters of $s$ are the same. Here $\lvert s \rvert$ is the length of $s$.
The first line contains two space-separated integers $n$ and $p$ ($1 \leq p \leq n \leq 2000$) — the length of the given string and the supposed period, respectively. The second line contains a string $s$ of $n$ characters — Mino's records. $s$ only contains characters '0', '1' and '.', and contains at least one '.' character.
Output one line — if it's possible that $p$ is not a period of the resulting string, output any one of such strings; otherwise output "No" (without quotes, you can print letters in any case (upper or lower)).
[ "10 7\n1.0.1.0.1.\n", "10 6\n1.0.1.1000\n", "10 9\n1........1\n" ]
[ "1000100010\n", "1001101000\n", "No\n" ]
In the first example, $7$ is not a period of the resulting string because the $1$-st and $8$-th characters of it are different. In the second example, $6$ is not a period of the resulting string because the $4$-th and $10$-th characters of it are different. In the third example, $9$ is always a period because the only constraint that the first and last characters are the same is already satisfied. Note that there are multiple acceptable answers for the first two examples, you can print any of them.
1,000
[ { "input": "10 7\n1.0.1.0.1.", "output": "1000100010" }, { "input": "10 6\n1.0.1.1000", "output": "1001101000" }, { "input": "10 9\n1........1", "output": "No" }, { "input": "1 1\n.", "output": "No" }, { "input": "5 1\n0...1", "output": "00001" }, { "input": "17 10\n..1.100..1..0.100", "output": "00101000010000100" }, { "input": "2 1\n0.", "output": "01" }, { "input": "2 1\n..", "output": "01" }, { "input": "3 1\n.0.", "output": "001" }, { "input": "3 1\n00.", "output": "001" }, { "input": "3 2\n0..", "output": "001" }, { "input": "3 2\n0.0", "output": "No" }, { "input": "3 2\n1..", "output": "100" }, { "input": "3 2\n.1.", "output": "011" }, { "input": "3 2\n1.0", "output": "100" }, { "input": "3 3\n1..", "output": "No" }, { "input": "3 3\n.00", "output": "No" }, { "input": "5 3\n0.000", "output": "01000" }, { "input": "10 6\n10010.1001", "output": "No" }, { "input": "75 38\n00.0.1.0.0110.1.00010..100.1110..110..00.0.1.0.0110.1.00010..100.1110..110.", "output": "000001000011001000010001000111000110000000010000110010000100010001110001101" }, { "input": "128 108\n01100.110...000.0001.1.11.11.010010.01100.0.1.01.0.0011.11001.000101...1.0.0..100.0110.0110.0.0101.0.0.0001.01100.110...100.0001", "output": "01100011000000000001010110110010010001100000100100000110110010000101000100000010000110001100000101000000001001100011000010000001" }, { "input": "5 4\n.101.", "output": "01011" }, { "input": "4 2\n101.", "output": "1011" }, { "input": "5 4\n.1011", "output": "01011" }, { "input": "2 1\n..", "output": "01" }, { "input": "5 3\n00.11", "output": "00011" }, { "input": "10 8\n1111.00000", "output": "1111000000" }, { "input": "10 3\n11111111.1", "output": "1111111101" }, { "input": "3 2\n1.0", "output": "100" }, { "input": "6 4\n11..10", "output": "110010" }, { "input": "4 2\n.111", "output": "0111" }, { "input": "3 2\n01.", "output": "011" }, { "input": "5 4\n10.00", "output": "10000" }, { "input": "10 9\n1........0", "output": "1000000000" }, { "input": "2 1\n0.", "output": "01" }, { "input": "8 4\n111111..", "output": "11111100" }, { "input": "3 2\n0.1", "output": "001" }, { "input": "4 1\n111.", "output": "1110" }, { "input": "3 1\n01.", "output": "010" }, { "input": "10 7\n000....111", "output": "0000000111" } ]
1,528,728,088
3,988
Python 3
WRONG_ANSWER
PRETESTS
3
77
0
def solve(n, p, seq): if n == p: fill_all(seq) else: for i in range(n - p): if seq[i] != seq[i + p] and seq[i] != '.' and seq[i + p] != '.': fill_all(seq) break elif seq[i] == '.': seq[i] = seq[i + p] fill_all(seq) break elif seq[i + p] == '.': seq[i + p] = seq[i] fill_all(seq) break else: # no break if check_not_period(n, p, seq) is False: return 'No' return ''.join(map(str, seq)) def check_not_period(n, p, seq): for i in range(n - p): if seq[i] != seq[i + p]: print('Returning True') return True return False def fill_all(sequence): for i in range(len(sequence)): if sequence[i] == '.': sequence[i] = 1 return sequence def main(): n, p = map(int, input().strip().split()) sequence = list(input().strip()) result = solve(n, p, sequence) print(result) if __name__ == '__main__': main()
Title: A Tide of Riverscape Time Limit: None seconds Memory Limit: None megabytes Problem Description: "Time," Mino thinks aloud. "What?" "Time and tide wait for no man," explains Mino. "My name, taken from the river, always reminds me of this." "And what are you recording?" "You see it, tide. Everything has its own period, and I think I've figured out this one," says Mino with confidence. Doubtfully, Kanno peeks at Mino's records. The records are expressed as a string $s$ of characters '0', '1' and '.', where '0' denotes a low tide, '1' denotes a high tide, and '.' denotes an unknown one (either high or low). You are to help Mino determine whether it's possible that after replacing each '.' independently with '0' or '1', a given integer $p$ is not a period of the resulting string. In case the answer is yes, please also show such a replacement to Mino. In this problem, a positive integer $p$ is considered a period of string $s$, if for all $1 \leq i \leq \lvert s \rvert - p$, the $i$-th and $(i + p)$-th characters of $s$ are the same. Here $\lvert s \rvert$ is the length of $s$. Input Specification: The first line contains two space-separated integers $n$ and $p$ ($1 \leq p \leq n \leq 2000$) — the length of the given string and the supposed period, respectively. The second line contains a string $s$ of $n$ characters — Mino's records. $s$ only contains characters '0', '1' and '.', and contains at least one '.' character. Output Specification: Output one line — if it's possible that $p$ is not a period of the resulting string, output any one of such strings; otherwise output "No" (without quotes, you can print letters in any case (upper or lower)). Demo Input: ['10 7\n1.0.1.0.1.\n', '10 6\n1.0.1.1000\n', '10 9\n1........1\n'] Demo Output: ['1000100010\n', '1001101000\n', 'No\n'] Note: In the first example, $7$ is not a period of the resulting string because the $1$-st and $8$-th characters of it are different. In the second example, $6$ is not a period of the resulting string because the $4$-th and $10$-th characters of it are different. In the third example, $9$ is always a period because the only constraint that the first and last characters are the same is already satisfied. Note that there are multiple acceptable answers for the first two examples, you can print any of them.
```python def solve(n, p, seq): if n == p: fill_all(seq) else: for i in range(n - p): if seq[i] != seq[i + p] and seq[i] != '.' and seq[i + p] != '.': fill_all(seq) break elif seq[i] == '.': seq[i] = seq[i + p] fill_all(seq) break elif seq[i + p] == '.': seq[i + p] = seq[i] fill_all(seq) break else: # no break if check_not_period(n, p, seq) is False: return 'No' return ''.join(map(str, seq)) def check_not_period(n, p, seq): for i in range(n - p): if seq[i] != seq[i + p]: print('Returning True') return True return False def fill_all(sequence): for i in range(len(sequence)): if sequence[i] == '.': sequence[i] = 1 return sequence def main(): n, p = map(int, input().strip().split()) sequence = list(input().strip()) result = solve(n, p, sequence) print(result) if __name__ == '__main__': main() ```
0
451
A
Game With Sticks
PROGRAMMING
900
[ "implementation" ]
null
null
After winning gold and silver in IOI 2014, Akshat and Malvika want to have some fun. Now they are playing a game on a grid made of *n* horizontal and *m* vertical sticks. An intersection point is any point on the grid which is formed by the intersection of one horizontal stick and one vertical stick. In the grid shown below, *n*<==<=3 and *m*<==<=3. There are *n*<=+<=*m*<==<=6 sticks in total (horizontal sticks are shown in red and vertical sticks are shown in green). There are *n*·*m*<==<=9 intersection points, numbered from 1 to 9. The rules of the game are very simple. The players move in turns. Akshat won gold, so he makes the first move. During his/her move, a player must choose any remaining intersection point and remove from the grid all sticks which pass through this point. A player will lose the game if he/she cannot make a move (i.e. there are no intersection points remaining on the grid at his/her move). Assume that both players play optimally. Who will win the game?
The first line of input contains two space-separated integers, *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100).
Print a single line containing "Akshat" or "Malvika" (without the quotes), depending on the winner of the game.
[ "2 2\n", "2 3\n", "3 3\n" ]
[ "Malvika\n", "Malvika\n", "Akshat\n" ]
Explanation of the first sample: The grid has four intersection points, numbered from 1 to 4. If Akshat chooses intersection point 1, then he will remove two sticks (1 - 2 and 1 - 3). The resulting grid will look like this. Now there is only one remaining intersection point (i.e. 4). Malvika must choose it and remove both remaining sticks. After her move the grid will be empty. In the empty grid, Akshat cannot make any move, hence he will lose. Since all 4 intersection points of the grid are equivalent, Akshat will lose no matter which one he picks.
500
[ { "input": "2 2", "output": "Malvika" }, { "input": "2 3", "output": "Malvika" }, { "input": "3 3", "output": "Akshat" }, { "input": "20 68", "output": "Malvika" }, { "input": "1 1", "output": "Akshat" }, { "input": "1 2", "output": "Akshat" }, { "input": "1 3", "output": "Akshat" }, { "input": "2 1", "output": "Akshat" }, { "input": "2 2", "output": "Malvika" }, { "input": "3 1", "output": "Akshat" }, { "input": "3 2", "output": "Malvika" }, { "input": "68 42", "output": "Malvika" }, { "input": "1 35", "output": "Akshat" }, { "input": "25 70", "output": "Akshat" }, { "input": "59 79", "output": "Akshat" }, { "input": "65 63", "output": "Akshat" }, { "input": "46 6", "output": "Malvika" }, { "input": "28 82", "output": "Malvika" }, { "input": "98 98", "output": "Malvika" }, { "input": "98 99", "output": "Malvika" }, { "input": "98 100", "output": "Malvika" }, { "input": "99 98", "output": "Malvika" }, { "input": "99 99", "output": "Akshat" }, { "input": "99 100", "output": "Akshat" }, { "input": "100 98", "output": "Malvika" }, { "input": "100 99", "output": "Akshat" }, { "input": "100 100", "output": "Malvika" }, { "input": "3 4", "output": "Akshat" } ]
1,676,766,198
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
31
0
n,m=map(int,input().split()) x=n+m y=n*m if n==m and n>m and n%2==0 and m%2==0: print('Malvika') else: print('Akshat')
Title: Game With Sticks Time Limit: None seconds Memory Limit: None megabytes Problem Description: After winning gold and silver in IOI 2014, Akshat and Malvika want to have some fun. Now they are playing a game on a grid made of *n* horizontal and *m* vertical sticks. An intersection point is any point on the grid which is formed by the intersection of one horizontal stick and one vertical stick. In the grid shown below, *n*<==<=3 and *m*<==<=3. There are *n*<=+<=*m*<==<=6 sticks in total (horizontal sticks are shown in red and vertical sticks are shown in green). There are *n*·*m*<==<=9 intersection points, numbered from 1 to 9. The rules of the game are very simple. The players move in turns. Akshat won gold, so he makes the first move. During his/her move, a player must choose any remaining intersection point and remove from the grid all sticks which pass through this point. A player will lose the game if he/she cannot make a move (i.e. there are no intersection points remaining on the grid at his/her move). Assume that both players play optimally. Who will win the game? Input Specification: The first line of input contains two space-separated integers, *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100). Output Specification: Print a single line containing "Akshat" or "Malvika" (without the quotes), depending on the winner of the game. Demo Input: ['2 2\n', '2 3\n', '3 3\n'] Demo Output: ['Malvika\n', 'Malvika\n', 'Akshat\n'] Note: Explanation of the first sample: The grid has four intersection points, numbered from 1 to 4. If Akshat chooses intersection point 1, then he will remove two sticks (1 - 2 and 1 - 3). The resulting grid will look like this. Now there is only one remaining intersection point (i.e. 4). Malvika must choose it and remove both remaining sticks. After her move the grid will be empty. In the empty grid, Akshat cannot make any move, hence he will lose. Since all 4 intersection points of the grid are equivalent, Akshat will lose no matter which one he picks.
```python n,m=map(int,input().split()) x=n+m y=n*m if n==m and n>m and n%2==0 and m%2==0: print('Malvika') else: print('Akshat') ```
0
535
B
Tavas and SaDDas
PROGRAMMING
1,100
[ "bitmasks", "brute force", "combinatorics", "implementation" ]
null
null
Once again Tavas started eating coffee mix without water! Keione told him that it smells awful, but he didn't stop doing that. That's why Keione told his smart friend, SaDDas to punish him! SaDDas took Tavas' headphones and told him: "If you solve the following problem, I'll return it to you." The problem is: You are given a lucky number *n*. Lucky numbers are the positive integers whose decimal representations contain only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. If we sort all lucky numbers in increasing order, what's the 1-based index of *n*? Tavas is not as smart as SaDDas, so he asked you to do him a favor and solve this problem so he can have his headphones back.
The first and only line of input contains a lucky number *n* (1<=≤<=*n*<=≤<=109).
Print the index of *n* among all lucky numbers.
[ "4\n", "7\n", "77\n" ]
[ "1\n", "2\n", "6\n" ]
none
1,000
[ { "input": "4", "output": "1" }, { "input": "7", "output": "2" }, { "input": "77", "output": "6" }, { "input": "4", "output": "1" }, { "input": "474744", "output": "83" }, { "input": "777774", "output": "125" }, { "input": "447", "output": "8" }, { "input": "774", "output": "13" }, { "input": "4", "output": "1" }, { "input": "4447747", "output": "140" }, { "input": "7747474", "output": "233" }, { "input": "4444", "output": "15" }, { "input": "4447", "output": "16" }, { "input": "7", "output": "2" }, { "input": "4", "output": "1" }, { "input": "4447744", "output": "139" }, { "input": "77474", "output": "57" }, { "input": "7747", "output": "28" }, { "input": "444", "output": "7" }, { "input": "7", "output": "2" }, { "input": "7774477", "output": "242" }, { "input": "4477774", "output": "157" }, { "input": "7444", "output": "23" }, { "input": "7474747", "output": "212" }, { "input": "77", "output": "6" }, { "input": "774477", "output": "114" }, { "input": "7", "output": "2" }, { "input": "47", "output": "4" }, { "input": "747777", "output": "110" }, { "input": "444444444", "output": "511" }, { "input": "777777777", "output": "1022" }, { "input": "477477447", "output": "728" }, { "input": "777744747", "output": "996" } ]
1,550,741,891
2,147,483,647
Python 3
OK
TESTS
33
140
0
def binary(n): b = '' while n > 0: b = chr(n % 2 + ord('0')) + b n //= 2 return b x = '1' for c in (input()): if c == '4': x += '0' else: x += '1' res = 1 cur = 2 y = binary(cur) while x != y: cur += 1 res += 1 y = binary(cur) print(res)
Title: Tavas and SaDDas Time Limit: None seconds Memory Limit: None megabytes Problem Description: Once again Tavas started eating coffee mix without water! Keione told him that it smells awful, but he didn't stop doing that. That's why Keione told his smart friend, SaDDas to punish him! SaDDas took Tavas' headphones and told him: "If you solve the following problem, I'll return it to you." The problem is: You are given a lucky number *n*. Lucky numbers are the positive integers whose decimal representations contain only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. If we sort all lucky numbers in increasing order, what's the 1-based index of *n*? Tavas is not as smart as SaDDas, so he asked you to do him a favor and solve this problem so he can have his headphones back. Input Specification: The first and only line of input contains a lucky number *n* (1<=≤<=*n*<=≤<=109). Output Specification: Print the index of *n* among all lucky numbers. Demo Input: ['4\n', '7\n', '77\n'] Demo Output: ['1\n', '2\n', '6\n'] Note: none
```python def binary(n): b = '' while n > 0: b = chr(n % 2 + ord('0')) + b n //= 2 return b x = '1' for c in (input()): if c == '4': x += '0' else: x += '1' res = 1 cur = 2 y = binary(cur) while x != y: cur += 1 res += 1 y = binary(cur) print(res) ```
3
985
A
Chess Placing
PROGRAMMING
1,100
[ "implementation" ]
null
null
You are given a chessboard of size 1<=×<=*n*. It is guaranteed that *n* is even. The chessboard is painted like this: "BWBW...BW". Some cells of the board are occupied by the chess pieces. Each cell contains no more than one chess piece. It is known that the total number of pieces equals to . In one step you can move one of the pieces one cell to the left or to the right. You cannot move pieces beyond the borders of the board. You also cannot move pieces to the cells that are already occupied. Your task is to place all the pieces in the cells of the same color using the minimum number of moves (all the pieces must occupy only the black cells or only the white cells after all the moves are made).
The first line of the input contains one integer *n* (2<=≤<=*n*<=≤<=100, *n* is even) — the size of the chessboard. The second line of the input contains integer numbers (1<=≤<=*p**i*<=≤<=*n*) — initial positions of the pieces. It is guaranteed that all the positions are distinct.
Print one integer — the minimum number of moves you have to make to place all the pieces in the cells of the same color.
[ "6\n1 2 6\n", "10\n1 2 3 4 5\n" ]
[ "2\n", "10\n" ]
In the first example the only possible strategy is to move the piece at the position 6 to the position 5 and move the piece at the position 2 to the position 3. Notice that if you decide to place the pieces in the white cells the minimum number of moves will be 3. In the second example the possible strategy is to move <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/e1e06f6a15cce30628c7a2360c4ffa57a8ba0ebd.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 4 moves, then <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/c84dfbe0c6a917b45fc3f69467c256c4ac460eeb.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 3 moves, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/598731d81393332209d914cb0bbe97d8566c887d.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 2 moves and <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 1 move.
0
[ { "input": "6\n1 2 6", "output": "2" }, { "input": "10\n1 2 3 4 5", "output": "10" }, { "input": "2\n2", "output": "0" }, { "input": "100\n2 4 6 8 10 12 14 16 18 20 22 24 26 28 30 32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62 64 66 68 70 72 74 76 78 80 82 84 86 88 90 92 94 96 98 100", "output": "0" }, { "input": "100\n93 54 57 61 68 66 70 96 64 82 80 75 69 77 76 94 67 86 90 73 74 58 100 83 92 89 56 99 88 59 95 72 81 51 85 71 97 60 91 63 65 98 79 84 53 62 87 55 52 78", "output": "1225" }, { "input": "100\n41 13 29 11 25 15 6 23 28 50 48 17 3 9 44 24 5 19 34 22 33 32 20 16 35 37 4 10 46 2 39 40 47 49 36 42 1 30 43 21 14 7 18 45 31 8 12 26 27 38", "output": "1225" }, { "input": "96\n12 58 70 19 65 61 41 46 15 92 64 72 9 26 53 37 2 3 1 40 10 8 94 66 50 34 36 96 47 78 7 57 5 6 17 69 28 88 89 49 55 81 35 22 25 79 86 59", "output": "152" }, { "input": "10\n5 6 7 8 9", "output": "7" }, { "input": "20\n1 2 3 4 5 6 7 8 9 10", "output": "45" }, { "input": "10\n6 7 8 9 10", "output": "10" }, { "input": "10\n9 8 7 6 5", "output": "7" }, { "input": "6\n1 5 6", "output": "2" }, { "input": "12\n1 7 8 9 10 12", "output": "7" }, { "input": "6\n1 4 5", "output": "1" }, { "input": "24\n10 21 15 3 11 4 18 24 16 22 14 9", "output": "11" }, { "input": "20\n3 4 6 7 8 10 11 13 14 17", "output": "15" }, { "input": "10\n10 9 8 1 5", "output": "5" }, { "input": "100\n84 10 26 79 58 93 67 85 7 2 99 4 47 45 75 22 32 82 65 53 63 49 42 52 12 69 86 46 25 76 40 15 13 78 8 81 62 28 60 21 27 80 98 56 3 36 54 16 50 43", "output": "104" }, { "input": "10\n1 7 8 9 10", "output": "7" }, { "input": "10\n1 4 6 8 10", "output": "1" }, { "input": "80\n41 70 18 53 32 79 51 49 21 27 47 65 50 15 62 60 5 40 14 25 64 9 19 58 38 76 66 52 17 34 13 2 80 43 3 42 33 36 6 72", "output": "47" }, { "input": "50\n27 42 41 4 10 45 44 26 49 50 17 28 2 36 18 39 23 12 21 24 19 29 22 40 37", "output": "59" }, { "input": "10\n2 3 4 5 6", "output": "7" }, { "input": "6\n3 5 6", "output": "2" }, { "input": "100\n9 63 62 88 3 67 54 33 79 51 71 80 37 46 43 57 69 17 34 6 18 40 59 83 76 86 8 55 90 89 45 42 28 98 30 38 77 91 73 58 23 61 41 65 64 93 14 44 16 24", "output": "160" }, { "input": "10\n1 6 7 8 9", "output": "5" }, { "input": "6\n3 4 5", "output": "2" } ]
1,546,067,243
1,042
PyPy 3
OK
TESTS
27
139
0
n = int(input()) m = n - 1 pos = reversed(sorted(map(int,input().split()))) odd = 0;even = 0 for p in pos: even+=abs(n-p) n-=2 odd+=abs(m-p) m-=2 print (min(odd,even))
Title: Chess Placing Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a chessboard of size 1<=×<=*n*. It is guaranteed that *n* is even. The chessboard is painted like this: "BWBW...BW". Some cells of the board are occupied by the chess pieces. Each cell contains no more than one chess piece. It is known that the total number of pieces equals to . In one step you can move one of the pieces one cell to the left or to the right. You cannot move pieces beyond the borders of the board. You also cannot move pieces to the cells that are already occupied. Your task is to place all the pieces in the cells of the same color using the minimum number of moves (all the pieces must occupy only the black cells or only the white cells after all the moves are made). Input Specification: The first line of the input contains one integer *n* (2<=≤<=*n*<=≤<=100, *n* is even) — the size of the chessboard. The second line of the input contains integer numbers (1<=≤<=*p**i*<=≤<=*n*) — initial positions of the pieces. It is guaranteed that all the positions are distinct. Output Specification: Print one integer — the minimum number of moves you have to make to place all the pieces in the cells of the same color. Demo Input: ['6\n1 2 6\n', '10\n1 2 3 4 5\n'] Demo Output: ['2\n', '10\n'] Note: In the first example the only possible strategy is to move the piece at the position 6 to the position 5 and move the piece at the position 2 to the position 3. Notice that if you decide to place the pieces in the white cells the minimum number of moves will be 3. In the second example the possible strategy is to move <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/e1e06f6a15cce30628c7a2360c4ffa57a8ba0ebd.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 4 moves, then <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/c84dfbe0c6a917b45fc3f69467c256c4ac460eeb.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 3 moves, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/598731d81393332209d914cb0bbe97d8566c887d.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 2 moves and <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/> in 1 move.
```python n = int(input()) m = n - 1 pos = reversed(sorted(map(int,input().split()))) odd = 0;even = 0 for p in pos: even+=abs(n-p) n-=2 odd+=abs(m-p) m-=2 print (min(odd,even)) ```
3
719
B
Anatoly and Cockroaches
PROGRAMMING
1,400
[ "greedy" ]
null
null
Anatoly lives in the university dorm as many other students do. As you know, cockroaches are also living there together with students. Cockroaches might be of two colors: black and red. There are *n* cockroaches living in Anatoly's room. Anatoly just made all his cockroaches to form a single line. As he is a perfectionist, he would like the colors of cockroaches in the line to alternate. He has a can of black paint and a can of red paint. In one turn he can either swap any two cockroaches, or take any single cockroach and change it's color. Help Anatoly find out the minimum number of turns he needs to make the colors of cockroaches in the line alternate.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of cockroaches. The second line contains a string of length *n*, consisting of characters 'b' and 'r' that denote black cockroach and red cockroach respectively.
Print one integer — the minimum number of moves Anatoly has to perform in order to make the colors of cockroaches in the line to alternate.
[ "5\nrbbrr\n", "5\nbbbbb\n", "3\nrbr\n" ]
[ "1\n", "2\n", "0\n" ]
In the first sample, Anatoly has to swap third and fourth cockroaches. He needs 1 turn to do this. In the second sample, the optimum answer is to paint the second and the fourth cockroaches red. This requires 2 turns. In the third sample, the colors of cockroaches in the line are alternating already, thus the answer is 0.
1,000
[ { "input": "5\nrbbrr", "output": "1" }, { "input": "5\nbbbbb", "output": "2" }, { "input": "3\nrbr", "output": "0" }, { "input": "13\nrbbbrbrrbrrbb", "output": "3" }, { "input": "18\nrrrrrrrrrrrrrrrrrb", "output": "8" }, { "input": "100\nbrbbbrrrbbrbrbbrbbrbbbbrbbrrbbbrrbbbbrbrbbbbbbbbbbbbbbbbrrrrbbbbrrrbbbbbbbrbrrbrbbbbrrrbbbbrbbrbbbrb", "output": "34" }, { "input": "166\nrbbbbbbbbbbbbrbrrbbrbbbrbbbbbbbbbbrbbbbbbrbbbrbbbbbrbbbbbbbrbbbbbbbrbbrbbbbbbbbrbbbbbbbbbbbbbbrrbbbrbbbbbbbbbbbbbbrbrbbbbbbbbbbbrbbbbbbbbbbbbbbrbbbbbbbbbbbbbbbbbbbbbb", "output": "70" }, { "input": "1\nr", "output": "0" }, { "input": "1\nb", "output": "0" }, { "input": "2\nrb", "output": "0" }, { "input": "2\nbr", "output": "0" }, { "input": "2\nrr", "output": "1" }, { "input": "2\nbb", "output": "1" }, { "input": "8\nrbbrbrbr", "output": "1" }, { "input": "7\nrrbrbrb", "output": "1" } ]
1,579,853,032
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
4
140
0
n=int(input()) s=list(input()) s2=list(s[::])*1 q=[0]*n q2=[0]*n for i in range(n-1): if s[i]==s[i+1]: q[i+1]=list({'r','b'}-set(s[i+1]))[0] s[i+1]=list({'r','b'}-set(s[i+1]))[0] if s2[i]==s2[i+1]: q2[i]=list({'r','b'}-set(s2[i]))[0] s2[i]=list({'r','b'}-set(s2[i]))[0] r=q.count('r') b=q.count('b') r1,b1=q2.count('r'),q2.count('b') a1=min(b,r)+abs(b-r) a2=min(b1,r1)+abs(b1-r1) print(min(a1,a2))
Title: Anatoly and Cockroaches Time Limit: None seconds Memory Limit: None megabytes Problem Description: Anatoly lives in the university dorm as many other students do. As you know, cockroaches are also living there together with students. Cockroaches might be of two colors: black and red. There are *n* cockroaches living in Anatoly's room. Anatoly just made all his cockroaches to form a single line. As he is a perfectionist, he would like the colors of cockroaches in the line to alternate. He has a can of black paint and a can of red paint. In one turn he can either swap any two cockroaches, or take any single cockroach and change it's color. Help Anatoly find out the minimum number of turns he needs to make the colors of cockroaches in the line alternate. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of cockroaches. The second line contains a string of length *n*, consisting of characters 'b' and 'r' that denote black cockroach and red cockroach respectively. Output Specification: Print one integer — the minimum number of moves Anatoly has to perform in order to make the colors of cockroaches in the line to alternate. Demo Input: ['5\nrbbrr\n', '5\nbbbbb\n', '3\nrbr\n'] Demo Output: ['1\n', '2\n', '0\n'] Note: In the first sample, Anatoly has to swap third and fourth cockroaches. He needs 1 turn to do this. In the second sample, the optimum answer is to paint the second and the fourth cockroaches red. This requires 2 turns. In the third sample, the colors of cockroaches in the line are alternating already, thus the answer is 0.
```python n=int(input()) s=list(input()) s2=list(s[::])*1 q=[0]*n q2=[0]*n for i in range(n-1): if s[i]==s[i+1]: q[i+1]=list({'r','b'}-set(s[i+1]))[0] s[i+1]=list({'r','b'}-set(s[i+1]))[0] if s2[i]==s2[i+1]: q2[i]=list({'r','b'}-set(s2[i]))[0] s2[i]=list({'r','b'}-set(s2[i]))[0] r=q.count('r') b=q.count('b') r1,b1=q2.count('r'),q2.count('b') a1=min(b,r)+abs(b-r) a2=min(b1,r1)+abs(b1-r1) print(min(a1,a2)) ```
0
817
A
Treasure Hunt
PROGRAMMING
1,200
[ "implementation", "math", "number theory" ]
null
null
Captain Bill the Hummingbird and his crew recieved an interesting challenge offer. Some stranger gave them a map, potion of teleportation and said that only this potion might help them to reach the treasure. Bottle with potion has two values *x* and *y* written on it. These values define four moves which can be performed using the potion: - - - - Map shows that the position of Captain Bill the Hummingbird is (*x*1,<=*y*1) and the position of the treasure is (*x*2,<=*y*2). You task is to tell Captain Bill the Hummingbird whether he should accept this challenge or decline. If it is possible for Captain to reach the treasure using the potion then output "YES", otherwise "NO" (without quotes). The potion can be used infinite amount of times.
The first line contains four integer numbers *x*1,<=*y*1,<=*x*2,<=*y*2 (<=-<=105<=≤<=*x*1,<=*y*1,<=*x*2,<=*y*2<=≤<=105) — positions of Captain Bill the Hummingbird and treasure respectively. The second line contains two integer numbers *x*,<=*y* (1<=≤<=*x*,<=*y*<=≤<=105) — values on the potion bottle.
Print "YES" if it is possible for Captain to reach the treasure using the potion, otherwise print "NO" (without quotes).
[ "0 0 0 6\n2 3\n", "1 1 3 6\n1 5\n" ]
[ "YES\n", "NO\n" ]
In the first example there exists such sequence of moves: 1. <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/7c939890fb4ed35688177327dac981bfa9216c00.png" style="max-width: 100.0%;max-height: 100.0%;"/> — the first type of move 1. <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/afbfa42fbac4e0641e7466e3aac74cbbb08ed597.png" style="max-width: 100.0%;max-height: 100.0%;"/> — the third type of move
0
[ { "input": "0 0 0 6\n2 3", "output": "YES" }, { "input": "1 1 3 6\n1 5", "output": "NO" }, { "input": "5 4 6 -10\n1 1", "output": "NO" }, { "input": "6 -3 -7 -7\n1 2", "output": "NO" }, { "input": "2 -5 -8 8\n2 1", "output": "YES" }, { "input": "70 -81 -17 80\n87 23", "output": "YES" }, { "input": "41 366 218 -240\n3456 1234", "output": "NO" }, { "input": "-61972 -39646 -42371 -24854\n573 238", "output": "NO" }, { "input": "-84870 -42042 94570 98028\n8972 23345", "output": "YES" }, { "input": "-58533 -50999 -1007 -59169\n8972 23345", "output": "NO" }, { "input": "-100000 -100000 100000 100000\n100000 100000", "output": "YES" }, { "input": "-100000 -100000 100000 100000\n1 1", "output": "YES" }, { "input": "5 2 5 3\n1 1", "output": "NO" }, { "input": "5 5 5 5\n5 5", "output": "YES" }, { "input": "0 0 1000 1000\n1 1", "output": "YES" }, { "input": "0 0 0 1\n1 1", "output": "NO" }, { "input": "1 1 4 4\n2 2", "output": "NO" }, { "input": "100000 100000 99999 99999\n100000 100000", "output": "NO" }, { "input": "1 1 1 6\n1 5", "output": "NO" }, { "input": "2 9 4 0\n2 3", "output": "YES" }, { "input": "0 0 0 9\n2 3", "output": "NO" }, { "input": "14 88 14 88\n100 500", "output": "YES" }, { "input": "-1 0 3 0\n4 4", "output": "NO" }, { "input": "0 0 8 9\n2 3", "output": "NO" }, { "input": "-2 5 7 -6\n1 1", "output": "YES" }, { "input": "3 7 -8 8\n2 2", "output": "NO" }, { "input": "-4 -8 -6 -1\n1 3", "output": "NO" }, { "input": "0 8 6 2\n1 1", "output": "YES" }, { "input": "-5 -2 -8 -2\n1 1", "output": "NO" }, { "input": "1 4 -5 0\n1 1", "output": "YES" }, { "input": "8 -4 4 -7\n1 2", "output": "NO" }, { "input": "5 2 2 4\n2 2", "output": "NO" }, { "input": "2 0 -4 6\n1 2", "output": "NO" }, { "input": "-2 6 -5 -4\n1 2", "output": "YES" }, { "input": "-6 5 10 6\n2 4", "output": "NO" }, { "input": "3 -7 1 -8\n1 2", "output": "NO" }, { "input": "4 1 4 -4\n9 4", "output": "NO" }, { "input": "9 -3 -9 -3\n2 2", "output": "NO" }, { "input": "-6 -6 -10 -5\n6 7", "output": "NO" }, { "input": "-5 -2 2 2\n1 7", "output": "NO" }, { "input": "9 0 8 1\n7 10", "output": "NO" }, { "input": "-1 6 -7 -6\n6 4", "output": "YES" }, { "input": "2 2 -3 -3\n3 1", "output": "NO" }, { "input": "2 -6 7 2\n2 1", "output": "NO" }, { "input": "-6 2 -7 -7\n1 2", "output": "NO" }, { "input": "-5 -5 -1 -5\n2 2", "output": "YES" }, { "input": "0 5 3 -6\n2 2", "output": "NO" }, { "input": "0 -6 2 -1\n1 1", "output": "NO" }, { "input": "-6 6 -5 -4\n1 2", "output": "YES" }, { "input": "7 -7 1 -7\n2 2", "output": "NO" }, { "input": "99966 -99952 -99966 99923\n1 1", "output": "NO" }, { "input": "99921 99980 -99956 -99907\n3 4", "output": "NO" }, { "input": "100000 100000 -100000 -100000\n1 1", "output": "YES" }, { "input": "1 0 2 0\n5 1", "output": "NO" }, { "input": "-3 0 -8 0\n7 2", "output": "NO" }, { "input": "-9 4 -5 -1\n8 2", "output": "NO" }, { "input": "-99999 -100000 100000 100000\n1 1", "output": "NO" }, { "input": "0 0 -100 -100\n2 2", "output": "YES" }, { "input": "9 -5 -3 -2\n1 4", "output": "NO" }, { "input": "1 -10 -10 5\n7 5", "output": "NO" }, { "input": "6 -9 -1 -9\n1 9", "output": "NO" } ]
1,497,615,390
2,147,483,647
Python 3
OK
TESTS
61
62
0
x1,y1,x2,y2=map(int,input().split()) a,b=map(int,input().split()) if (x2-x1)%a==0 and (y2-y1)%b==0: if ((x2-x1)//a)%2==((y2-y1)//b)%2: print ("YES") else: print ("NO") else: print ("NO")
Title: Treasure Hunt Time Limit: None seconds Memory Limit: None megabytes Problem Description: Captain Bill the Hummingbird and his crew recieved an interesting challenge offer. Some stranger gave them a map, potion of teleportation and said that only this potion might help them to reach the treasure. Bottle with potion has two values *x* and *y* written on it. These values define four moves which can be performed using the potion: - - - - Map shows that the position of Captain Bill the Hummingbird is (*x*1,<=*y*1) and the position of the treasure is (*x*2,<=*y*2). You task is to tell Captain Bill the Hummingbird whether he should accept this challenge or decline. If it is possible for Captain to reach the treasure using the potion then output "YES", otherwise "NO" (without quotes). The potion can be used infinite amount of times. Input Specification: The first line contains four integer numbers *x*1,<=*y*1,<=*x*2,<=*y*2 (<=-<=105<=≤<=*x*1,<=*y*1,<=*x*2,<=*y*2<=≤<=105) — positions of Captain Bill the Hummingbird and treasure respectively. The second line contains two integer numbers *x*,<=*y* (1<=≤<=*x*,<=*y*<=≤<=105) — values on the potion bottle. Output Specification: Print "YES" if it is possible for Captain to reach the treasure using the potion, otherwise print "NO" (without quotes). Demo Input: ['0 0 0 6\n2 3\n', '1 1 3 6\n1 5\n'] Demo Output: ['YES\n', 'NO\n'] Note: In the first example there exists such sequence of moves: 1. <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/7c939890fb4ed35688177327dac981bfa9216c00.png" style="max-width: 100.0%;max-height: 100.0%;"/> — the first type of move 1. <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/afbfa42fbac4e0641e7466e3aac74cbbb08ed597.png" style="max-width: 100.0%;max-height: 100.0%;"/> — the third type of move
```python x1,y1,x2,y2=map(int,input().split()) a,b=map(int,input().split()) if (x2-x1)%a==0 and (y2-y1)%b==0: if ((x2-x1)//a)%2==((y2-y1)//b)%2: print ("YES") else: print ("NO") else: print ("NO") ```
3
954
A
Diagonal Walking
PROGRAMMING
800
[ "implementation" ]
null
null
Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible. In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left. Your problem is to print the minimum possible length of the sequence of moves after the replacements.
The first line of the input contains one integer *n* (1<=≤<=*n*<=≤<=100) — the length of the sequence. The second line contains the sequence consisting of *n* characters U and R.
Print the minimum possible length of the sequence of moves after all replacements are done.
[ "5\nRUURU\n", "17\nUUURRRRRUUURURUUU\n" ]
[ "3\n", "13\n" ]
In the first test the shortened sequence of moves may be DUD (its length is 3). In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
0
[ { "input": "5\nRUURU", "output": "3" }, { "input": "17\nUUURRRRRUUURURUUU", "output": "13" }, { "input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUU", "output": "100" }, { "input": "100\nRRURRUUUURURRRURRRRURRRRRRURRUURRRUUURUURURRURUURUURRUURUURRURURUUUUURUUUUUURRUUURRRURRURRRUURRUUUUR", "output": "67" }, { "input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUURUUUUUUUUUUUUUUUUUUUUU", "output": "99" }, { "input": "3\nRUR", "output": "2" }, { "input": "1\nR", "output": "1" }, { "input": "5\nRURUU", "output": "3" }, { "input": "1\nU", "output": "1" }, { "input": "2\nUR", "output": "1" }, { "input": "23\nUUUUUUUUUUUUUUUUUUUUUUU", "output": "23" } ]
1,637,771,807
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
s1 = int(input()) s2 = input() c = 0 i = 0 while i < (s1-1) : if s2[i]! = s2[i+1] : c+= 1 i = i+2 else: i = i+1 D = s1-c print(D)
Title: Diagonal Walking Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible. In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left. Your problem is to print the minimum possible length of the sequence of moves after the replacements. Input Specification: The first line of the input contains one integer *n* (1<=≤<=*n*<=≤<=100) — the length of the sequence. The second line contains the sequence consisting of *n* characters U and R. Output Specification: Print the minimum possible length of the sequence of moves after all replacements are done. Demo Input: ['5\nRUURU\n', '17\nUUURRRRRUUURURUUU\n'] Demo Output: ['3\n', '13\n'] Note: In the first test the shortened sequence of moves may be DUD (its length is 3). In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
```python s1 = int(input()) s2 = input() c = 0 i = 0 while i < (s1-1) : if s2[i]! = s2[i+1] : c+= 1 i = i+2 else: i = i+1 D = s1-c print(D) ```
-1
16
B
Burglar and Matches
PROGRAMMING
900
[ "greedy", "implementation", "sortings" ]
B. Burglar and Matches
0
64
A burglar got into a matches warehouse and wants to steal as many matches as possible. In the warehouse there are *m* containers, in the *i*-th container there are *a**i* matchboxes, and each matchbox contains *b**i* matches. All the matchboxes are of the same size. The burglar's rucksack can hold *n* matchboxes exactly. Your task is to find out the maximum amount of matches that a burglar can carry away. He has no time to rearrange matches in the matchboxes, that's why he just chooses not more than *n* matchboxes so that the total amount of matches in them is maximal.
The first line of the input contains integer *n* (1<=≤<=*n*<=≤<=2·108) and integer *m* (1<=≤<=*m*<=≤<=20). The *i*<=+<=1-th line contains a pair of numbers *a**i* and *b**i* (1<=≤<=*a**i*<=≤<=108,<=1<=≤<=*b**i*<=≤<=10). All the input numbers are integer.
Output the only number — answer to the problem.
[ "7 3\n5 10\n2 5\n3 6\n", "3 3\n1 3\n2 2\n3 1\n" ]
[ "62\n", "7\n" ]
none
0
[ { "input": "7 3\n5 10\n2 5\n3 6", "output": "62" }, { "input": "3 3\n1 3\n2 2\n3 1", "output": "7" }, { "input": "1 1\n1 2", "output": "2" }, { "input": "1 2\n1 9\n1 6", "output": "9" }, { "input": "1 10\n1 1\n1 9\n1 3\n1 9\n1 7\n1 10\n1 4\n1 7\n1 3\n1 1", "output": "10" }, { "input": "2 1\n2 1", "output": "2" }, { "input": "2 2\n2 4\n1 4", "output": "8" }, { "input": "2 3\n1 7\n1 2\n1 5", "output": "12" }, { "input": "4 1\n2 2", "output": "4" }, { "input": "4 2\n1 10\n4 4", "output": "22" }, { "input": "4 3\n1 4\n6 4\n1 7", "output": "19" }, { "input": "5 1\n10 5", "output": "25" }, { "input": "5 2\n3 9\n2 2", "output": "31" }, { "input": "5 5\n2 9\n3 1\n2 1\n1 8\n2 8", "output": "42" }, { "input": "5 10\n1 3\n1 2\n1 9\n1 10\n1 1\n1 5\n1 10\n1 2\n1 3\n1 7", "output": "41" }, { "input": "10 1\n9 4", "output": "36" }, { "input": "10 2\n14 3\n1 3", "output": "30" }, { "input": "10 7\n4 8\n1 10\n1 10\n1 2\n3 3\n1 3\n1 10", "output": "71" }, { "input": "10 10\n1 8\n2 10\n1 9\n1 1\n1 9\n1 6\n1 4\n2 5\n1 2\n1 4", "output": "70" }, { "input": "10 4\n1 5\n5 2\n1 9\n3 3", "output": "33" }, { "input": "100 5\n78 6\n29 10\n3 6\n7 3\n2 4", "output": "716" }, { "input": "1000 7\n102 10\n23 6\n79 4\n48 1\n34 10\n839 8\n38 4", "output": "8218" }, { "input": "10000 10\n336 2\n2782 5\n430 10\n1893 7\n3989 10\n2593 8\n165 6\n1029 2\n2097 4\n178 10", "output": "84715" }, { "input": "100000 3\n2975 2\n35046 4\n61979 9", "output": "703945" }, { "input": "1000000 4\n314183 9\n304213 4\n16864 5\n641358 9", "output": "8794569" }, { "input": "10000000 10\n360313 10\n416076 1\n435445 9\n940322 7\n1647581 7\n4356968 10\n3589256 2\n2967933 5\n2747504 7\n1151633 3", "output": "85022733" }, { "input": "100000000 7\n32844337 7\n11210848 7\n47655987 1\n33900472 4\n9174763 2\n32228738 10\n29947408 5", "output": "749254060" }, { "input": "200000000 10\n27953106 7\n43325979 4\n4709522 1\n10975786 4\n67786538 8\n48901838 7\n15606185 6\n2747583 1\n100000000 1\n633331 3", "output": "1332923354" }, { "input": "200000000 9\n17463897 9\n79520463 1\n162407 4\n41017993 8\n71054118 4\n9447587 2\n5298038 9\n3674560 7\n20539314 5", "output": "996523209" }, { "input": "200000000 8\n6312706 6\n2920548 2\n16843192 3\n1501141 2\n13394704 6\n10047725 10\n4547663 6\n54268518 6", "output": "630991750" }, { "input": "200000000 7\n25621043 2\n21865270 1\n28833034 1\n22185073 5\n100000000 2\n13891017 9\n61298710 8", "output": "931584598" }, { "input": "200000000 6\n7465600 6\n8453505 10\n4572014 8\n8899499 3\n86805622 10\n64439238 6", "output": "1447294907" }, { "input": "200000000 5\n44608415 6\n100000000 9\n51483223 9\n44136047 1\n52718517 1", "output": "1634907859" }, { "input": "200000000 4\n37758556 10\n100000000 6\n48268521 3\n20148178 10", "output": "1305347138" }, { "input": "200000000 3\n65170000 7\n20790088 1\n74616133 4", "output": "775444620" }, { "input": "200000000 2\n11823018 6\n100000000 9", "output": "970938108" }, { "input": "200000000 1\n100000000 6", "output": "600000000" }, { "input": "200000000 10\n12097724 9\n41745972 5\n26982098 9\n14916995 7\n21549986 7\n3786630 9\n8050858 7\n27994924 4\n18345001 5\n8435339 5", "output": "1152034197" }, { "input": "200000000 10\n55649 8\n10980981 9\n3192542 8\n94994808 4\n3626106 1\n100000000 6\n5260110 9\n4121453 2\n15125061 4\n669569 6", "output": "1095537357" }, { "input": "10 20\n1 7\n1 7\n1 8\n1 3\n1 10\n1 7\n1 7\n1 9\n1 3\n1 1\n1 2\n1 1\n1 3\n1 10\n1 9\n1 8\n1 8\n1 6\n1 7\n1 5", "output": "83" }, { "input": "10000000 20\n4594 7\n520836 8\n294766 6\n298672 4\n142253 6\n450626 1\n1920034 9\n58282 4\n1043204 1\n683045 1\n1491746 5\n58420 4\n451217 2\n129423 4\n246113 5\n190612 8\n912923 6\n473153 6\n783733 6\n282411 10", "output": "54980855" }, { "input": "200000000 20\n15450824 5\n839717 10\n260084 8\n1140850 8\n28744 6\n675318 3\n25161 2\n5487 3\n6537698 9\n100000000 5\n7646970 9\n16489 6\n24627 3\n1009409 5\n22455 1\n25488456 4\n484528 9\n32663641 3\n750968 4\n5152 6", "output": "939368573" }, { "input": "200000000 20\n16896 2\n113 3\n277 2\n299 7\n69383562 2\n3929 8\n499366 4\n771846 5\n9 4\n1278173 7\n90 2\n54 7\n72199858 10\n17214 5\n3 10\n1981618 3\n3728 2\n141 8\n2013578 9\n51829246 5", "output": "1158946383" }, { "input": "200000000 20\n983125 2\n7453215 9\n9193588 2\n11558049 7\n28666199 1\n34362244 1\n5241493 5\n15451270 4\n19945845 8\n6208681 3\n38300385 7\n6441209 8\n21046742 7\n577198 10\n3826434 8\n9764276 8\n6264675 7\n8567063 3\n3610303 4\n2908232 3", "output": "1131379312" }, { "input": "10 15\n1 6\n2 6\n3 4\n1 3\n1 2\n1 5\n1 6\n1 2\n2 9\n1 10\n1 3\n1 7\n1 8\n1 2\n2 9", "output": "79" }, { "input": "10000000 15\n111 5\n914124 3\n3 9\n177790 1\n2352 3\n32138 9\n104477 1\n1223 4\n18 6\n6655580 4\n57643 10\n94309 2\n37 1\n227002 10\n1733193 7", "output": "45116295" }, { "input": "200000000 15\n7069868 1\n5567826 8\n2310059 10\n13539782 7\n38420939 4\n29911411 8\n52256316 1\n12265839 9\n2074265 1\n24896428 9\n72470695 5\n3236301 1\n3890243 2\n65168965 8\n65724 6", "output": "1489289257" }, { "input": "200000000 15\n12044094 7\n2475138 10\n944451 7\n4854766 2\n3809145 10\n7727571 2\n43908937 6\n2745883 1\n427511 2\n100000000 5\n190914 6\n554889 3\n288798 4\n1848572 5\n893874 3", "output": "961871671" }, { "input": "200000000 15\n6334191 7\n1927941 4\n5175933 10\n468389 1\n433043 10\n6863198 5\n7480646 4\n14774279 10\n2921129 8\n18325627 7\n6973152 9\n8277324 9\n21522856 2\n2058070 1\n2444742 4", "output": "664376069" } ]
1,600,534,852
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
186
307,200
n , m = map(int , input().split()) c= {} for _ in range(m): a , b = map(int , input().split()) c[b] = a c = sorted(c.items() , key=lambda x:x[0] , reverse = True) M = 0 for i , t in c: if n <= 0: break s = min(n , t) M += s*i n = n-t print(M)
Title: Burglar and Matches Time Limit: 0 seconds Memory Limit: 64 megabytes Problem Description: A burglar got into a matches warehouse and wants to steal as many matches as possible. In the warehouse there are *m* containers, in the *i*-th container there are *a**i* matchboxes, and each matchbox contains *b**i* matches. All the matchboxes are of the same size. The burglar's rucksack can hold *n* matchboxes exactly. Your task is to find out the maximum amount of matches that a burglar can carry away. He has no time to rearrange matches in the matchboxes, that's why he just chooses not more than *n* matchboxes so that the total amount of matches in them is maximal. Input Specification: The first line of the input contains integer *n* (1<=≤<=*n*<=≤<=2·108) and integer *m* (1<=≤<=*m*<=≤<=20). The *i*<=+<=1-th line contains a pair of numbers *a**i* and *b**i* (1<=≤<=*a**i*<=≤<=108,<=1<=≤<=*b**i*<=≤<=10). All the input numbers are integer. Output Specification: Output the only number — answer to the problem. Demo Input: ['7 3\n5 10\n2 5\n3 6\n', '3 3\n1 3\n2 2\n3 1\n'] Demo Output: ['62\n', '7\n'] Note: none
```python n , m = map(int , input().split()) c= {} for _ in range(m): a , b = map(int , input().split()) c[b] = a c = sorted(c.items() , key=lambda x:x[0] , reverse = True) M = 0 for i , t in c: if n <= 0: break s = min(n , t) M += s*i n = n-t print(M) ```
0
58
B
Coins
PROGRAMMING
1,300
[ "greedy" ]
B. Coins
2
256
In Berland a money reform is being prepared. New coins are being introduced. After long economic calculations was decided that the most expensive coin should possess the denomination of exactly *n* Berland dollars. Also the following restriction has been introduced for comfort: the denomination of each coin should be divisible by the denomination of any cheaper coin. It is known that among all the possible variants the variant with the largest number of new coins will be chosen. Find this variant. Print in the order of decreasing of the coins' denominations.
The first and only line contains an integer *n* (1<=≤<=*n*<=≤<=106) which represents the denomination of the most expensive coin.
Print the denominations of all the coins in the order of decreasing. The number of coins must be the largest possible (with the given denomination *n* of the most expensive coin). Also, the denomination of every coin must be divisible by the denomination of any cheaper coin. Naturally, the denominations of all the coins should be different. If there are several solutins to that problem, print any of them.
[ "10\n", "4\n", "3\n" ]
[ "10 5 1\n", "4 2 1\n", "3 1\n" ]
none
1,000
[ { "input": "10", "output": "10 5 1" }, { "input": "4", "output": "4 2 1" }, { "input": "3", "output": "3 1" }, { "input": "2", "output": "2 1" }, { "input": "5", "output": "5 1" }, { "input": "6", "output": "6 3 1" }, { "input": "7", "output": "7 1" }, { "input": "1", "output": "1" }, { "input": "8", "output": "8 4 2 1" }, { "input": "12", "output": "12 6 3 1" }, { "input": "100", "output": "100 50 25 5 1" }, { "input": "1000", "output": "1000 500 250 125 25 5 1" }, { "input": "10000", "output": "10000 5000 2500 1250 625 125 25 5 1" }, { "input": "100000", "output": "100000 50000 25000 12500 6250 3125 625 125 25 5 1" }, { "input": "1000000", "output": "1000000 500000 250000 125000 62500 31250 15625 3125 625 125 25 5 1" }, { "input": "509149", "output": "509149 1" }, { "input": "572877", "output": "572877 190959 63653 1201 1" }, { "input": "152956", "output": "152956 76478 38239 1" }, { "input": "733035", "output": "733035 244345 48869 1" }, { "input": "313114", "output": "313114 156557 3331 1" }, { "input": "893193", "output": "893193 297731 42533 1" }, { "input": "473273", "output": "473273 2243 1" }, { "input": "537000", "output": "537000 268500 134250 67125 22375 4475 895 179 1" }, { "input": "117079", "output": "117079 6887 97 1" }, { "input": "784653", "output": "784653 261551 9019 311 1" }, { "input": "627251", "output": "627251 1" }, { "input": "9", "output": "9 3 1" }, { "input": "999999", "output": "999999 333333 111111 37037 5291 481 37 1" }, { "input": "120", "output": "120 60 30 15 5 1" }, { "input": "720", "output": "720 360 180 90 45 15 5 1" }, { "input": "648", "output": "648 324 162 81 27 9 3 1" }, { "input": "2430", "output": "2430 1215 405 135 45 15 5 1" }, { "input": "119070", "output": "119070 59535 19845 6615 2205 735 245 49 7 1" }, { "input": "15", "output": "15 5 1" }, { "input": "21", "output": "21 7 1" }, { "input": "25", "output": "25 5 1" }, { "input": "100", "output": "100 50 25 5 1" }, { "input": "524287", "output": "524287 1" }, { "input": "1000000", "output": "1000000 500000 250000 125000 62500 31250 15625 3125 625 125 25 5 1" }, { "input": "600", "output": "600 300 150 75 25 5 1" }, { "input": "1000000", "output": "1000000 500000 250000 125000 62500 31250 15625 3125 625 125 25 5 1" }, { "input": "36", "output": "36 18 9 3 1" }, { "input": "1000000", "output": "1000000 500000 250000 125000 62500 31250 15625 3125 625 125 25 5 1" }, { "input": "20", "output": "20 10 5 1" }, { "input": "999983", "output": "999983 1" }, { "input": "9", "output": "9 3 1" }, { "input": "999983", "output": "999983 1" }, { "input": "20", "output": "20 10 5 1" }, { "input": "121", "output": "121 11 1" }, { "input": "1331", "output": "1331 121 11 1" } ]
1,684,438,852
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
30
0
n = int(input()) arr = [10] for i in range(n, 0, -1): for j in range(len(arr)): if arr[j] % i != 0: break if j == len(arr) - 1: arr.append(i) arr.remove(arr[0]) print(list(arr))
Title: Coins Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: In Berland a money reform is being prepared. New coins are being introduced. After long economic calculations was decided that the most expensive coin should possess the denomination of exactly *n* Berland dollars. Also the following restriction has been introduced for comfort: the denomination of each coin should be divisible by the denomination of any cheaper coin. It is known that among all the possible variants the variant with the largest number of new coins will be chosen. Find this variant. Print in the order of decreasing of the coins' denominations. Input Specification: The first and only line contains an integer *n* (1<=≤<=*n*<=≤<=106) which represents the denomination of the most expensive coin. Output Specification: Print the denominations of all the coins in the order of decreasing. The number of coins must be the largest possible (with the given denomination *n* of the most expensive coin). Also, the denomination of every coin must be divisible by the denomination of any cheaper coin. Naturally, the denominations of all the coins should be different. If there are several solutins to that problem, print any of them. Demo Input: ['10\n', '4\n', '3\n'] Demo Output: ['10 5 1\n', '4 2 1\n', '3 1\n'] Note: none
```python n = int(input()) arr = [10] for i in range(n, 0, -1): for j in range(len(arr)): if arr[j] % i != 0: break if j == len(arr) - 1: arr.append(i) arr.remove(arr[0]) print(list(arr)) ```
0
37
A
Towers
PROGRAMMING
1,000
[ "sortings" ]
A. Towers
2
256
Little Vasya has received a young builder’s kit. The kit consists of several wooden bars, the lengths of all of them are known. The bars can be put one on the top of the other if their lengths are the same. Vasya wants to construct the minimal number of towers from the bars. Help Vasya to use the bars in the best way possible.
The first line contains an integer *N* (1<=≤<=*N*<=≤<=1000) — the number of bars at Vasya’s disposal. The second line contains *N* space-separated integers *l**i* — the lengths of the bars. All the lengths are natural numbers not exceeding 1000.
In one line output two numbers — the height of the largest tower and their total number. Remember that Vasya should use all the bars.
[ "3\n1 2 3\n", "4\n6 5 6 7\n" ]
[ "1 3\n", "2 3\n" ]
none
500
[ { "input": "3\n1 2 3", "output": "1 3" }, { "input": "4\n6 5 6 7", "output": "2 3" }, { "input": "4\n3 2 1 1", "output": "2 3" }, { "input": "4\n1 2 3 3", "output": "2 3" }, { "input": "3\n20 22 36", "output": "1 3" }, { "input": "25\n47 30 94 41 45 20 96 51 110 129 24 116 9 47 32 82 105 114 116 75 154 151 70 42 162", "output": "2 23" }, { "input": "45\n802 664 442 318 318 827 417 878 711 291 231 414 807 553 657 392 279 202 386 606 465 655 658 112 887 15 25 502 95 44 679 775 942 609 209 871 31 234 4 231 150 110 22 823 193", "output": "2 43" }, { "input": "63\n93 180 116 7 8 179 268 279 136 94 221 153 264 190 278 19 19 63 153 26 158 225 25 49 89 218 111 149 255 225 197 122 243 80 3 224 107 178 202 17 53 92 69 42 228 24 81 205 95 8 265 82 228 156 127 241 172 159 106 60 67 155 111", "output": "2 57" }, { "input": "83\n246 535 994 33 390 927 321 97 223 922 812 705 79 80 977 457 476 636 511 137 6 360 815 319 717 674 368 551 714 628 278 713 761 553 184 414 623 753 428 214 581 115 439 61 677 216 772 592 187 603 658 310 439 559 870 376 109 321 189 337 277 26 70 734 796 907 979 693 570 227 345 650 737 633 701 914 134 403 972 940 371 6 642", "output": "2 80" }, { "input": "105\n246 57 12 204 165 123 246 68 191 310 3 152 386 333 374 257 158 104 333 50 80 290 8 340 101 76 221 316 388 289 138 359 316 26 93 290 105 178 81 195 41 196 218 180 244 292 187 97 315 323 174 119 248 239 92 312 31 2 101 180 307 170 338 314 163 281 217 31 142 238 280 190 190 156 70 74 329 113 151 8 141 313 366 40 253 116 168 124 135 230 294 266 353 389 371 359 195 200 183 237 93 102 315 118 188", "output": "2 92" }, { "input": "123\n112 277 170 247 252 115 157 293 256 143 196 90 12 164 164 42 8 223 167 109 175 232 239 111 148 51 9 254 93 32 268 162 231 91 47 162 161 191 195 145 247 292 129 199 230 94 144 217 18 205 176 20 143 198 121 243 211 262 230 277 195 255 108 290 220 275 158 2 286 200 60 267 278 207 123 150 123 116 131 13 12 226 33 244 30 275 263 45 158 192 254 149 242 176 62 224 221 288 250 160 155 225 132 143 276 293 218 145 197 175 33 129 79 206 210 192 222 262 190 52 274 243 233", "output": "3 101" }, { "input": "5\n5 5 5 5 5", "output": "5 1" }, { "input": "3\n1000 1000 1000", "output": "3 1" }, { "input": "1\n1000", "output": "1 1" }, { "input": "1\n1", "output": "1 1" }, { "input": "5\n1 1000 1000 1000 1000", "output": "4 2" }, { "input": "5\n1000 1000 1000 8 7", "output": "3 3" } ]
1,685,459,933
2,147,483,647
PyPy 3-64
OK
TESTS
61
154
1,638,400
n = int(input()) a = list(map(int, input().split())) m = [] for i in range(len(a)): kol = 0 for j in range(len(a)): if a[i] == a[j]: kol += 1 m.append(kol) print(max(m), len(set(a)))
Title: Towers Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Little Vasya has received a young builder’s kit. The kit consists of several wooden bars, the lengths of all of them are known. The bars can be put one on the top of the other if their lengths are the same. Vasya wants to construct the minimal number of towers from the bars. Help Vasya to use the bars in the best way possible. Input Specification: The first line contains an integer *N* (1<=≤<=*N*<=≤<=1000) — the number of bars at Vasya’s disposal. The second line contains *N* space-separated integers *l**i* — the lengths of the bars. All the lengths are natural numbers not exceeding 1000. Output Specification: In one line output two numbers — the height of the largest tower and their total number. Remember that Vasya should use all the bars. Demo Input: ['3\n1 2 3\n', '4\n6 5 6 7\n'] Demo Output: ['1 3\n', '2 3\n'] Note: none
```python n = int(input()) a = list(map(int, input().split())) m = [] for i in range(len(a)): kol = 0 for j in range(len(a)): if a[i] == a[j]: kol += 1 m.append(kol) print(max(m), len(set(a))) ```
3.958448
711
A
Bus to Udayland
PROGRAMMING
800
[ "brute force", "implementation" ]
null
null
ZS the Coder and Chris the Baboon are travelling to Udayland! To get there, they have to get on the special IOI bus. The IOI bus has *n* rows of seats. There are 4 seats in each row, and the seats are separated into pairs by a walkway. When ZS and Chris came, some places in the bus was already occupied. ZS and Chris are good friends. They insist to get a pair of neighbouring empty seats. Two seats are considered neighbouring if they are in the same row and in the same pair. Given the configuration of the bus, can you help ZS and Chris determine where they should sit?
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of rows of seats in the bus. Then, *n* lines follow. Each line contains exactly 5 characters, the first two of them denote the first pair of seats in the row, the third character denotes the walkway (it always equals '|') and the last two of them denote the second pair of seats in the row. Each character, except the walkway, equals to 'O' or to 'X'. 'O' denotes an empty seat, 'X' denotes an occupied seat. See the sample cases for more details.
If it is possible for Chris and ZS to sit at neighbouring empty seats, print "YES" (without quotes) in the first line. In the next *n* lines print the bus configuration, where the characters in the pair of seats for Chris and ZS is changed with characters '+'. Thus the configuration should differ from the input one by exactly two charaters (they should be equal to 'O' in the input and to '+' in the output). If there is no pair of seats for Chris and ZS, print "NO" (without quotes) in a single line. If there are multiple solutions, you may print any of them.
[ "6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n", "4\nXO|OX\nXO|XX\nOX|OX\nXX|OX\n", "5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO\n" ]
[ "YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n", "NO\n", "YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO\n" ]
Note that the following is an incorrect configuration for the first sample case because the seats must be in the same pair. O+|+X XO|XX OX|OO XX|OX OO|OO OO|XX
500
[ { "input": "6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX", "output": "YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX" }, { "input": "4\nXO|OX\nXO|XX\nOX|OX\nXX|OX", "output": "NO" }, { "input": "5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO", "output": "YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO" }, { "input": "1\nXO|OX", "output": "NO" }, { "input": "1\nOO|OO", "output": "YES\n++|OO" }, { "input": "4\nXO|XX\nXX|XO\nOX|XX\nXO|XO", "output": "NO" }, { "input": "9\nOX|XO\nOX|XO\nXO|OX\nOX|OX\nXO|OX\nXX|OO\nOX|OX\nOX|XO\nOX|OX", "output": "YES\nOX|XO\nOX|XO\nXO|OX\nOX|OX\nXO|OX\nXX|++\nOX|OX\nOX|XO\nOX|OX" }, { "input": "61\nOX|XX\nOX|XX\nOX|XX\nXO|XO\nXX|XO\nXX|XX\nXX|XX\nOX|XX\nXO|XO\nOX|XO\nXO|OX\nXX|XX\nXX|XX\nOX|OX\nXX|OX\nOX|XO\nOX|XO\nXO|OX\nXO|XX\nOX|XX\nOX|XX\nXO|OX\nXO|XX\nXO|XX\nOX|XX\nXX|XX\nXX|XO\nXO|XX\nXX|XX\nXO|OX\nXX|XO\nXO|XX\nXO|XO\nXO|OX\nXX|OX\nXO|OX\nOX|XX\nXX|OX\nXX|XX\nOX|XO\nOX|XX\nXO|OX\nOX|XX\nOX|XX\nXO|XO\nXO|XX\nOX|XX\nXO|XO\nOX|XX\nXX|XX\nOX|XO\nXO|XO\nXO|XO\nOX|OX\nXX|OX\nXX|OX\nOX|XO\nOX|XX\nOX|OX\nXO|XX\nOX|XX", "output": "NO" }, { "input": "1\nOO|XX", "output": "YES\n++|XX" }, { "input": "10\nOO|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|XX", "output": "YES\n++|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|XX" }, { "input": "10\nXX|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|OO", "output": "YES\nXX|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|++" }, { "input": "5\nXX|XX\nXX|XX\nXO|OX\nOO|OX\nOX|XO", "output": "YES\nXX|XX\nXX|XX\nXO|OX\n++|OX\nOX|XO" }, { "input": "6\nOO|XX\nXO|XX\nOX|OO\nXX|OX\nOO|XX\nOX|XX", "output": "YES\n++|XX\nXO|XX\nOX|OO\nXX|OX\nOO|XX\nOX|XX" } ]
1,690,883,020
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
31
0
# LUOGU_RID: 118467538 def bus_to_udayland(n, seats): for i in range(n): if 'OO' in seats[i]: return "YES", [seat.replace('OO', '++') if seat == 'OO|OX' else seat for seat in seats] return "NO", [] n = int(input()) seats = [input() for _ in range(n)] result, modified_seats = bus_to_udayland(n, seats) print(result) for seat in modified_seats: print(seat)
Title: Bus to Udayland Time Limit: None seconds Memory Limit: None megabytes Problem Description: ZS the Coder and Chris the Baboon are travelling to Udayland! To get there, they have to get on the special IOI bus. The IOI bus has *n* rows of seats. There are 4 seats in each row, and the seats are separated into pairs by a walkway. When ZS and Chris came, some places in the bus was already occupied. ZS and Chris are good friends. They insist to get a pair of neighbouring empty seats. Two seats are considered neighbouring if they are in the same row and in the same pair. Given the configuration of the bus, can you help ZS and Chris determine where they should sit? Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of rows of seats in the bus. Then, *n* lines follow. Each line contains exactly 5 characters, the first two of them denote the first pair of seats in the row, the third character denotes the walkway (it always equals '|') and the last two of them denote the second pair of seats in the row. Each character, except the walkway, equals to 'O' or to 'X'. 'O' denotes an empty seat, 'X' denotes an occupied seat. See the sample cases for more details. Output Specification: If it is possible for Chris and ZS to sit at neighbouring empty seats, print "YES" (without quotes) in the first line. In the next *n* lines print the bus configuration, where the characters in the pair of seats for Chris and ZS is changed with characters '+'. Thus the configuration should differ from the input one by exactly two charaters (they should be equal to 'O' in the input and to '+' in the output). If there is no pair of seats for Chris and ZS, print "NO" (without quotes) in a single line. If there are multiple solutions, you may print any of them. Demo Input: ['6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n', '4\nXO|OX\nXO|XX\nOX|OX\nXX|OX\n', '5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO\n'] Demo Output: ['YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n', 'NO\n', 'YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO\n'] Note: Note that the following is an incorrect configuration for the first sample case because the seats must be in the same pair. O+|+X XO|XX OX|OO XX|OX OO|OO OO|XX
```python # LUOGU_RID: 118467538 def bus_to_udayland(n, seats): for i in range(n): if 'OO' in seats[i]: return "YES", [seat.replace('OO', '++') if seat == 'OO|OX' else seat for seat in seats] return "NO", [] n = int(input()) seats = [input() for _ in range(n)] result, modified_seats = bus_to_udayland(n, seats) print(result) for seat in modified_seats: print(seat) ```
0
58
A
Chat room
PROGRAMMING
1,000
[ "greedy", "strings" ]
A. Chat room
1
256
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
If Vasya managed to say hello, print "YES", otherwise print "NO".
[ "ahhellllloou\n", "hlelo\n" ]
[ "YES\n", "NO\n" ]
none
500
[ { "input": "ahhellllloou", "output": "YES" }, { "input": "hlelo", "output": "NO" }, { "input": "helhcludoo", "output": "YES" }, { "input": "hehwelloho", "output": "YES" }, { "input": "pnnepelqomhhheollvlo", "output": "YES" }, { "input": "tymbzjyqhymedasloqbq", "output": "NO" }, { "input": "yehluhlkwo", "output": "NO" }, { "input": "hatlevhhalrohairnolsvocafgueelrqmlqlleello", "output": "YES" }, { "input": "hhhtehdbllnhwmbyhvelqqyoulretpbfokflhlhreeflxeftelziclrwllrpflflbdtotvlqgoaoqldlroovbfsq", "output": "YES" }, { "input": "rzlvihhghnelqtwlexmvdjjrliqllolhyewgozkuovaiezgcilelqapuoeglnwmnlftxxiigzczlouooi", "output": "YES" }, { "input": "pfhhwctyqdlkrwhebfqfelhyebwllhemtrmeblgrynmvyhioesqklclocxmlffuormljszllpoo", "output": "YES" }, { "input": "lqllcolohwflhfhlnaow", "output": "NO" }, { "input": "heheeellollvoo", "output": "YES" }, { "input": "hellooo", "output": "YES" }, { "input": "o", "output": "NO" }, { "input": "hhqhzeclohlehljlhtesllylrolmomvuhcxsobtsckogdv", "output": "YES" }, { "input": "yoegfuzhqsihygnhpnukluutocvvwuldiighpogsifealtgkfzqbwtmgghmythcxflebrkctlldlkzlagovwlstsghbouk", "output": "YES" }, { "input": "uatqtgbvrnywfacwursctpagasnhydvmlinrcnqrry", "output": "NO" }, { "input": "tndtbldbllnrwmbyhvqaqqyoudrstpbfokfoclnraefuxtftmgzicorwisrpfnfpbdtatvwqgyalqtdtrjqvbfsq", "output": "NO" }, { "input": "rzlvirhgemelnzdawzpaoqtxmqucnahvqnwldklrmjiiyageraijfivigvozgwngiulttxxgzczptusoi", "output": "YES" }, { "input": "kgyelmchocojsnaqdsyeqgnllytbqietpdlgknwwumqkxrexgdcnwoldicwzwofpmuesjuxzrasscvyuqwspm", "output": "YES" }, { "input": "pnyvrcotjvgynbeldnxieghfltmexttuxzyac", "output": "NO" }, { "input": "dtwhbqoumejligbenxvzhjlhosqojetcqsynlzyhfaevbdpekgbtjrbhlltbceobcok", "output": "YES" }, { "input": "crrfpfftjwhhikwzeedrlwzblckkteseofjuxjrktcjfsylmlsvogvrcxbxtffujqshslemnixoeezivksouefeqlhhokwbqjz", "output": "YES" }, { "input": "jhfbndhyzdvhbvhmhmefqllujdflwdpjbehedlsqfdsqlyelwjtyloxwsvasrbqosblzbowlqjmyeilcvotdlaouxhdpoeloaovb", "output": "YES" }, { "input": "hwlghueoemiqtjhhpashjsouyegdlvoyzeunlroypoprnhlyiwiuxrghekaylndhrhllllwhbebezoglydcvykllotrlaqtvmlla", "output": "YES" }, { "input": "wshiaunnqnqxodholbipwhhjmyeblhgpeleblklpzwhdunmpqkbuzloetmwwxmeltkrcomulxauzlwmlklldjodozxryghsnwgcz", "output": "YES" }, { "input": "shvksednttggehroewuiptvvxtrzgidravtnjwuqrlnnkxbplctzkckinpkgjopjfoxdbojtcvsuvablcbkrzajrlhgobkcxeqti", "output": "YES" }, { "input": "hyyhddqhxhekehkwfhlnlsihzefwchzerevcjtokefplholrbvxlltdlafjxrfhleglrvlolojoqaolagtbeyogxlbgfolllslli", "output": "YES" }, { "input": "iaagrdhhelxpdegueiulflquvlzidoprzkehthkldaytrjwhyhprwjxlltinxvuilxohqgjqcvkkdcuoliekcnlilwgqlnlzouoo", "output": "YES" }, { "input": "wfluaeseldgxyvxpwuhkptdmlflnlhktwxiabsvkolsquymrmhzczzoybvlilhmvsuunggvgxzgyyffk", "output": "NO" }, { "input": "loee", "output": "NO" }, { "input": "izdipwylefqmjbuoznfglgcfvedeouflkeehxbasaqmiooppfsqlhprospqgxvzrcpwlfdddngoqvpwvggsnvvxhmjoslwjudjlo", "output": "NO" }, { "input": "pplynflbjlseflaegzqpdxswgunhnlglqhycrbcwdfhclmcrwekkzsoosmfblljeenwfjyifcvxihhhbyhmhlkvtskeglaovjnsi", "output": "YES" }, { "input": "xqjqmenkodmlhzyzmmvofdngktygbbxbzpluzcohohmalkoeuwfikblltaaigv", "output": "NO" }, { "input": "hello", "output": "YES" }, { "input": "oohell", "output": "NO" }, { "input": "hell", "output": "NO" }, { "input": "eloellohoelo", "output": "NO" }, { "input": "helllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllo", "output": "YES" } ]
1,649,997,255
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
31
0
s= input() temp= ['h','e','l','l','o'] idx=0 for i in s: if idx ==0: if i == temp[idx]: idx+=1 elif idx < len(temp): if i == temp[idx]: idx+=1 elif idx >= len(temp): print("YES") break if idx < len(temp): print("NO")
Title: Chat room Time Limit: 1 seconds Memory Limit: 256 megabytes Problem Description: Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*. Input Specification: The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters. Output Specification: If Vasya managed to say hello, print "YES", otherwise print "NO". Demo Input: ['ahhellllloou\n', 'hlelo\n'] Demo Output: ['YES\n', 'NO\n'] Note: none
```python s= input() temp= ['h','e','l','l','o'] idx=0 for i in s: if idx ==0: if i == temp[idx]: idx+=1 elif idx < len(temp): if i == temp[idx]: idx+=1 elif idx >= len(temp): print("YES") break if idx < len(temp): print("NO") ```
0
460
A
Vasya and Socks
PROGRAMMING
900
[ "brute force", "implementation", "math" ]
null
null
Vasya has *n* pairs of socks. In the morning of each day Vasya has to put on a pair of socks before he goes to school. When he comes home in the evening, Vasya takes off the used socks and throws them away. Every *m*-th day (at days with numbers *m*,<=2*m*,<=3*m*,<=...) mom buys a pair of socks to Vasya. She does it late in the evening, so that Vasya cannot put on a new pair of socks before the next day. How many consecutive days pass until Vasya runs out of socks?
The single line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100; 2<=≤<=*m*<=≤<=100), separated by a space.
Print a single integer — the answer to the problem.
[ "2 2\n", "9 3\n" ]
[ "3\n", "13\n" ]
In the first sample Vasya spends the first two days wearing the socks that he had initially. Then on day three he puts on the socks that were bought on day two. In the second sample Vasya spends the first nine days wearing the socks that he had initially. Then he spends three days wearing the socks that were bought on the third, sixth and ninth days. Than he spends another day wearing the socks that were bought on the twelfth day.
500
[ { "input": "2 2", "output": "3" }, { "input": "9 3", "output": "13" }, { "input": "1 2", "output": "1" }, { "input": "2 3", "output": "2" }, { "input": "1 99", "output": "1" }, { "input": "4 4", "output": "5" }, { "input": "10 2", "output": "19" }, { "input": "10 9", "output": "11" }, { "input": "100 100", "output": "101" }, { "input": "2 27", "output": "2" }, { "input": "99 100", "output": "99" }, { "input": "99 2", "output": "197" }, { "input": "100 3", "output": "149" }, { "input": "98 3", "output": "146" }, { "input": "4 4", "output": "5" }, { "input": "100 2", "output": "199" }, { "input": "62 4", "output": "82" }, { "input": "99 10", "output": "109" }, { "input": "100 5", "output": "124" }, { "input": "80 80", "output": "81" }, { "input": "95 16", "output": "101" }, { "input": "75 16", "output": "79" }, { "input": "99 74", "output": "100" }, { "input": "20 21", "output": "20" }, { "input": "52 96", "output": "52" }, { "input": "24 5", "output": "29" } ]
1,677,495,229
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
15
0
soks, mama = map(int,input().split()) day = 0 while soks>0: soks-=1 day+=1 if day % mama == 0: print(f'Мама пришла на {day} день') soks+=1 print(day)
Title: Vasya and Socks Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasya has *n* pairs of socks. In the morning of each day Vasya has to put on a pair of socks before he goes to school. When he comes home in the evening, Vasya takes off the used socks and throws them away. Every *m*-th day (at days with numbers *m*,<=2*m*,<=3*m*,<=...) mom buys a pair of socks to Vasya. She does it late in the evening, so that Vasya cannot put on a new pair of socks before the next day. How many consecutive days pass until Vasya runs out of socks? Input Specification: The single line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100; 2<=≤<=*m*<=≤<=100), separated by a space. Output Specification: Print a single integer — the answer to the problem. Demo Input: ['2 2\n', '9 3\n'] Demo Output: ['3\n', '13\n'] Note: In the first sample Vasya spends the first two days wearing the socks that he had initially. Then on day three he puts on the socks that were bought on day two. In the second sample Vasya spends the first nine days wearing the socks that he had initially. Then he spends three days wearing the socks that were bought on the third, sixth and ninth days. Than he spends another day wearing the socks that were bought on the twelfth day.
```python soks, mama = map(int,input().split()) day = 0 while soks>0: soks-=1 day+=1 if day % mama == 0: print(f'Мама пришла на {day} день') soks+=1 print(day) ```
0
764
A
Taymyr is calling you
PROGRAMMING
800
[ "brute force", "implementation", "math" ]
null
null
Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist. Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute.
The only string contains three integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104).
Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
[ "1 1 10\n", "1 2 5\n", "2 3 9\n" ]
[ "10\n", "2\n", "1\n" ]
Taymyr is a place in the north of Russia. In the first test the artists come each minute, as well as the calls, so we need to kill all of them. In the second test we need to kill artists which come on the second and the fourth minutes. In the third test — only the artist which comes on the sixth minute.
500
[ { "input": "1 1 10", "output": "10" }, { "input": "1 2 5", "output": "2" }, { "input": "2 3 9", "output": "1" }, { "input": "4 8 9", "output": "1" }, { "input": "7 9 2", "output": "0" }, { "input": "10000 10000 10000", "output": "1" }, { "input": "24 22 9235", "output": "34" }, { "input": "74 8 417", "output": "1" }, { "input": "972 1 203", "output": "0" }, { "input": "550 1 754", "output": "1" }, { "input": "860 1 884", "output": "1" }, { "input": "358 2 809", "output": "2" }, { "input": "33 27 216", "output": "0" }, { "input": "2940 1 9311", "output": "3" }, { "input": "4624 1 1953", "output": "0" }, { "input": "2696 2 7345", "output": "2" }, { "input": "3443 2 6701", "output": "0" }, { "input": "3 613 2275", "output": "1" }, { "input": "1 10000 10000", "output": "1" }, { "input": "10000 1 10000", "output": "1" }, { "input": "1 1 1", "output": "1" }, { "input": "1 1 10000", "output": "10000" }, { "input": "34 27 10000", "output": "10" }, { "input": "2 2 9999", "output": "4999" }, { "input": "2 2 1", "output": "0" }, { "input": "6 4 36", "output": "3" }, { "input": "33 6 3005", "output": "45" }, { "input": "5 1 20", "output": "4" }, { "input": "1 2 10", "output": "5" }, { "input": "2 1 100", "output": "50" }, { "input": "10 20 10000", "output": "500" }, { "input": "8 12 12", "output": "0" } ]
1,585,497,013
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
93
0
l=list(map(int,input().split())) if l[0]%l[1]==0:print((l[2]//l[0])) elif l[1]%l[0]==0:print((l[2]//l[1])) else:print(l[2]//(l[0]*l[1]))
Title: Taymyr is calling you Time Limit: None seconds Memory Limit: None megabytes Problem Description: Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist. Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute. Input Specification: The only string contains three integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104). Output Specification: Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls. Demo Input: ['1 1 10\n', '1 2 5\n', '2 3 9\n'] Demo Output: ['10\n', '2\n', '1\n'] Note: Taymyr is a place in the north of Russia. In the first test the artists come each minute, as well as the calls, so we need to kill all of them. In the second test we need to kill artists which come on the second and the fourth minutes. In the third test — only the artist which comes on the sixth minute.
```python l=list(map(int,input().split())) if l[0]%l[1]==0:print((l[2]//l[0])) elif l[1]%l[0]==0:print((l[2]//l[1])) else:print(l[2]//(l[0]*l[1])) ```
0
510
B
Fox And Two Dots
PROGRAMMING
1,500
[ "dfs and similar" ]
null
null
Fox Ciel is playing a mobile puzzle game called "Two Dots". The basic levels are played on a board of size *n*<=×<=*m* cells, like this: Each cell contains a dot that has some color. We will use different uppercase Latin characters to express different colors. The key of this game is to find a cycle that contain dots of same color. Consider 4 blue dots on the picture forming a circle as an example. Formally, we call a sequence of dots *d*1,<=*d*2,<=...,<=*d**k* a cycle if and only if it meets the following condition: 1. These *k* dots are different: if *i*<=≠<=*j* then *d**i* is different from *d**j*. 1. *k* is at least 4. 1. All dots belong to the same color. 1. For all 1<=≤<=*i*<=≤<=*k*<=-<=1: *d**i* and *d**i*<=+<=1 are adjacent. Also, *d**k* and *d*1 should also be adjacent. Cells *x* and *y* are called adjacent if they share an edge. Determine if there exists a cycle on the field.
The first line contains two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50): the number of rows and columns of the board. Then *n* lines follow, each line contains a string consisting of *m* characters, expressing colors of dots in each line. Each character is an uppercase Latin letter.
Output "Yes" if there exists a cycle, and "No" otherwise.
[ "3 4\nAAAA\nABCA\nAAAA\n", "3 4\nAAAA\nABCA\nAADA\n", "4 4\nYYYR\nBYBY\nBBBY\nBBBY\n", "7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB\n", "2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ\n" ]
[ "Yes\n", "No\n", "Yes\n", "Yes\n", "No\n" ]
In first sample test all 'A' form a cycle. In second sample there is no such cycle. The third sample is displayed on the picture above ('Y' = Yellow, 'B' = Blue, 'R' = Red).
1,000
[ { "input": "3 4\nAAAA\nABCA\nAAAA", "output": "Yes" }, { "input": "3 4\nAAAA\nABCA\nAADA", "output": "No" }, { "input": "4 4\nYYYR\nBYBY\nBBBY\nBBBY", "output": "Yes" }, { "input": "7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB", "output": "Yes" }, { "input": "2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ", "output": "No" }, { "input": "2 2\nAA\nAA", "output": "Yes" }, { "input": "2 2\nAA\nAB", "output": "No" }, { "input": "3 3\nAAA\nABA\nAAA", "output": "Yes" }, { "input": "3 3\nAAA\nABA\nABA", "output": "No" }, { "input": "10 10\nEGFJGJKGEI\nAKJHBGHIHF\nJBABBCFGEJ\nCJDJHJJKBD\nKHJIKKGGEK\nHHJHKHGEKF\nEKFCAJGGDK\nAFKBBFICAA\nFEDFAGHEKA\nCAAGIFHGGI", "output": "No" }, { "input": "10 10\nHIICQRHPUJ\nBCDUKHMBFK\nPFTUIDOBOE\nQQPITLRKUP\nERMUJMOSMF\nMRSICEILQB\nODIGFNCHFR\nGHIOAFLHJH\nFBLAQNGEIF\nFDLEGDUTNG", "output": "No" }, { "input": "2 50\nDADCDBCCDAACDBCAACADBCBDBACCCCDADCBACADBCCBDBCCBCC\nDADAADCABBBACCDDBABBBDCBACBCCCCDDADCDABADDDCABACDB", "output": "Yes" }, { "input": "50 2\nAA\nCD\nEE\nFC\nED\nAF\nFC\nAD\nBA\nAF\nBF\nDA\nAC\nFC\nFA\nBF\nAD\nBB\nDC\nAF\nAA\nAD\nEE\nED\nCD\nFC\nFB\nBB\nDD\nEB\nBE\nCF\nDE\nAE\nFD\nAB\nFB\nAE\nBE\nFA\nCF\nFB\nDE\nED\nAD\nFA\nBB\nBF\nDA\nEE", "output": "No" } ]
1,682,071,363
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
9
46
512,000
n, m = map(int, input().split()) # créer une liste pour stocker le terrain grid = [] for i in range(n): grid.append(input()) # initialiser les directions possibles di = [1,-1,0,0] dj = [0,0,1,-1] # initialiser une liste pour stocker les cases visitées visited = [[False]*m for i in range(n)] # fonction pour vérifier si une case est dans la grille def in_grid(x, y): return x >= 0 and x < n and y >= 0 and y < m # fonction pour vérifier si deux cases sont adjacentes et ont la même couleur def is_adjacent_same_color(x1, y1, x2, y2): return abs(x1 - x2) + abs(y1 - y2) == 1 and grid[x1][y1] == grid[x2][y2] # fonction pour effectuer une recherche en profondeur def dfs(x, y, px, py): visited[x][y] = True for k in range(4): xi = x + di[k] yj = y + dj[k] if in_grid(xi, yj) and grid[xi][yj] == grid[x][y]: if not visited[xi][yj]: dfs(xi, yj, x, y) elif not (xi == px and yj == py): print("Yes") exit() # boucle pour exécuter la recherche en profondeur for i in range(n): for j in range(m): if not visited[i][j]: dfs(i, j, i, j) # si aucune paire de cases adjacentes de même couleur n'a été trouvée, imprimer "No" print("No")
Title: Fox And Two Dots Time Limit: None seconds Memory Limit: None megabytes Problem Description: Fox Ciel is playing a mobile puzzle game called "Two Dots". The basic levels are played on a board of size *n*<=×<=*m* cells, like this: Each cell contains a dot that has some color. We will use different uppercase Latin characters to express different colors. The key of this game is to find a cycle that contain dots of same color. Consider 4 blue dots on the picture forming a circle as an example. Formally, we call a sequence of dots *d*1,<=*d*2,<=...,<=*d**k* a cycle if and only if it meets the following condition: 1. These *k* dots are different: if *i*<=≠<=*j* then *d**i* is different from *d**j*. 1. *k* is at least 4. 1. All dots belong to the same color. 1. For all 1<=≤<=*i*<=≤<=*k*<=-<=1: *d**i* and *d**i*<=+<=1 are adjacent. Also, *d**k* and *d*1 should also be adjacent. Cells *x* and *y* are called adjacent if they share an edge. Determine if there exists a cycle on the field. Input Specification: The first line contains two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50): the number of rows and columns of the board. Then *n* lines follow, each line contains a string consisting of *m* characters, expressing colors of dots in each line. Each character is an uppercase Latin letter. Output Specification: Output "Yes" if there exists a cycle, and "No" otherwise. Demo Input: ['3 4\nAAAA\nABCA\nAAAA\n', '3 4\nAAAA\nABCA\nAADA\n', '4 4\nYYYR\nBYBY\nBBBY\nBBBY\n', '7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB\n', '2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ\n'] Demo Output: ['Yes\n', 'No\n', 'Yes\n', 'Yes\n', 'No\n'] Note: In first sample test all 'A' form a cycle. In second sample there is no such cycle. The third sample is displayed on the picture above ('Y' = Yellow, 'B' = Blue, 'R' = Red).
```python n, m = map(int, input().split()) # créer une liste pour stocker le terrain grid = [] for i in range(n): grid.append(input()) # initialiser les directions possibles di = [1,-1,0,0] dj = [0,0,1,-1] # initialiser une liste pour stocker les cases visitées visited = [[False]*m for i in range(n)] # fonction pour vérifier si une case est dans la grille def in_grid(x, y): return x >= 0 and x < n and y >= 0 and y < m # fonction pour vérifier si deux cases sont adjacentes et ont la même couleur def is_adjacent_same_color(x1, y1, x2, y2): return abs(x1 - x2) + abs(y1 - y2) == 1 and grid[x1][y1] == grid[x2][y2] # fonction pour effectuer une recherche en profondeur def dfs(x, y, px, py): visited[x][y] = True for k in range(4): xi = x + di[k] yj = y + dj[k] if in_grid(xi, yj) and grid[xi][yj] == grid[x][y]: if not visited[xi][yj]: dfs(xi, yj, x, y) elif not (xi == px and yj == py): print("Yes") exit() # boucle pour exécuter la recherche en profondeur for i in range(n): for j in range(m): if not visited[i][j]: dfs(i, j, i, j) # si aucune paire de cases adjacentes de même couleur n'a été trouvée, imprimer "No" print("No") ```
-1
873
E
Awards For Contestants
PROGRAMMING
2,300
[ "brute force", "data structures", "dp" ]
null
null
Alexey recently held a programming contest for students from Berland. *n* students participated in a contest, *i*-th of them solved *a**i* problems. Now he wants to award some contestants. Alexey can award the students with diplomas of three different degrees. Each student either will receive one diploma of some degree, or won't receive any diplomas at all. Let *cnt**x* be the number of students that are awarded with diplomas of degree *x* (1<=≤<=*x*<=≤<=3). The following conditions must hold: - For each *x* (1<=≤<=*x*<=≤<=3) *cnt**x*<=&gt;<=0; - For any two degrees *x* and *y* *cnt**x*<=≤<=2·*cnt**y*. Of course, there are a lot of ways to distribute the diplomas. Let *b**i* be the degree of diploma *i*-th student will receive (or <=-<=1 if *i*-th student won't receive any diplomas). Also for any *x* such that 1<=≤<=*x*<=≤<=3 let *c**x* be the maximum number of problems solved by a student that receives a diploma of degree *x*, and *d**x* be the minimum number of problems solved by a student that receives a diploma of degree *x*. Alexey wants to distribute the diplomas in such a way that: 1. If student *i* solved more problems than student *j*, then he has to be awarded not worse than student *j* (it's impossible that student *j* receives a diploma and *i* doesn't receive any, and also it's impossible that both of them receive a diploma, but *b**j*<=&lt;<=*b**i*); 1. *d*1<=-<=*c*2 is maximum possible; 1. Among all ways that maximize the previous expression, *d*2<=-<=*c*3 is maximum possible; 1. Among all ways that correspond to the two previous conditions, *d*3<=-<=*c*<=-<=1 is maximum possible, where *c*<=-<=1 is the maximum number of problems solved by a student that doesn't receive any diploma (or 0 if each student is awarded with some diploma). Help Alexey to find a way to award the contestants!
The first line contains one integer number *n* (3<=≤<=*n*<=≤<=3000). The second line contains *n* integer numbers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=5000).
Output *n* numbers. *i*-th number must be equal to the degree of diploma *i*-th contestant will receive (or <=-<=1 if he doesn't receive any diploma). If there are multiple optimal solutions, print any of them. It is guaranteed that the answer always exists.
[ "4\n1 2 3 4\n", "6\n1 4 3 1 1 2\n" ]
[ "3 3 2 1 \n", "-1 1 2 -1 -1 3 \n" ]
none
0
[ { "input": "4\n1 2 3 4", "output": "3 3 2 1 " }, { "input": "6\n1 4 3 1 1 2", "output": "-1 1 2 -1 -1 3 " }, { "input": "100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 " }, { "input": "100\n82 51 81 14 37 17 78 92 64 15 8 86 89 8 87 77 66 10 15 12 100 25 92 47 21 78 20 63 13 49 41 36 41 79 16 87 87 69 3 76 80 60 100 49 70 59 72 8 38 71 45 97 71 14 76 54 81 4 59 46 39 29 92 3 49 22 53 99 59 52 74 31 92 43 42 23 44 9 82 47 7 40 12 9 3 55 37 85 46 22 84 52 98 41 21 77 63 17 62 91", "output": "-1 -1 -1 -1 -1 -1 -1 2 -1 -1 -1 3 3 -1 3 -1 -1 -1 -1 -1 1 -1 2 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 3 3 -1 -1 -1 -1 -1 1 -1 -1 -1 -1 -1 -1 -1 -1 1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 2 -1 -1 -1 -1 1 -1 -1 -1 -1 2 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 3 -1 -1 3 -1 1 -1 -1 -1 -1 -1 -1 2 " }, { "input": "100\n591 417 888 251 792 847 685 3 182 461 102 348 555 956 771 901 712 878 580 631 342 333 285 899 525 725 537 718 929 653 84 788 104 355 624 803 253 853 201 995 536 184 65 205 540 652 549 777 248 405 677 950 431 580 600 846 328 429 134 983 526 103 500 963 400 23 276 704 570 757 410 658 507 620 984 244 486 454 802 411 985 303 635 283 96 597 855 775 139 839 839 61 219 986 776 72 729 69 20 917", "output": "2 3 1 3 2 1 2 -1 3 3 -1 3 2 1 2 1 2 1 2 2 3 3 3 1 2 2 2 2 1 2 -1 2 -1 3 2 2 3 1 3 1 2 3 -1 3 2 2 2 2 3 3 2 1 3 2 2 1 3 3 -1 1 2 -1 2 1 3 -1 3 2 2 2 3 2 2 2 1 3 2 3 2 3 1 3 2 3 -1 2 1 2 -1 1 1 -1 3 1 2 -1 2 -1 -1 1 " }, { "input": "70\n30 19 11 23 3 21 12 30 8 21 22 13 32 19 12 30 19 25 22 25 7 14 15 16 32 29 9 18 6 26 26 26 2 11 27 30 19 22 20 23 1 2 9 7 1 28 22 27 33 12 32 3 8 19 27 5 3 29 20 28 13 1 30 29 28 14 27 30 6 4", "output": "1 2 3 2 3 2 3 1 3 2 2 3 1 2 3 1 2 1 2 1 3 3 3 3 1 1 3 2 3 1 1 1 3 3 1 1 2 2 2 2 3 3 3 3 3 1 2 1 1 3 1 3 3 2 1 3 3 1 2 1 3 3 1 1 1 3 1 1 3 3 " }, { "input": "54\n30 28 29 28 60 27 57 45 22 18 12 12 64 43 12 60 56 72 71 21 37 3 7 15 8 66 70 68 40 62 48 53 32 37 44 46 1 58 47 32 22 19 46 58 59 69 13 67 14 15 20 46 12 39", "output": "3 3 3 3 1 3 1 2 3 3 3 3 1 2 3 1 1 1 1 3 2 -1 3 3 3 1 1 1 2 1 2 1 3 2 2 2 -1 1 2 3 3 3 2 1 1 1 3 1 3 3 3 2 3 2 " }, { "input": "8\n99 88 58 84 34 109 70 11", "output": "1 1 2 1 3 1 2 3 " }, { "input": "86\n241 180 140 393 301 202 217 323 150 101 175 221 148 94 338 360 149 193 387 262 309 282 88 362 151 50 234 330 325 379 42 87 204 167 245 108 374 130 200 104 49 47 261 56 111 287 32 190 197 150 206 140 290 287 221 346 218 188 178 95 400 181 214 264 403 340 218 162 175 140 280 283 329 3 3 241 290 161 242 386 308 128 310 161 15 343", "output": "2 2 3 1 1 2 2 1 3 3 2 2 3 3 1 1 3 2 1 2 1 1 3 1 3 -1 2 1 1 1 -1 3 2 2 2 3 1 3 2 3 -1 -1 2 -1 3 1 -1 2 2 3 2 3 1 1 2 1 2 2 2 3 1 2 2 2 1 1 2 2 2 3 1 1 1 -1 -1 2 1 2 2 1 1 3 1 2 -1 1 " }, { "input": "8\n64 54 6 736 630 113 870 61", "output": "2 3 3 1 1 2 1 2 " }, { "input": "3\n100 100 100", "output": "3 2 1 " }, { "input": "3\n19 435 12", "output": "2 1 3 " }, { "input": "3\n4998 4999 5000", "output": "3 2 1 " }, { "input": "11\n5 4 7 5 2 7 8 5 7 8 8", "output": "3 3 2 3 3 2 1 3 2 1 1 " }, { "input": "8\n3 3 2 3 4 2 2 3", "output": "3 3 -1 2 1 -1 -1 2 " }, { "input": "6\n7 7 7 7 6 7", "output": "3 2 2 1 3 1 " }, { "input": "10\n1 1 1 8 8 1 1 8 8 8", "output": "-1 3 3 2 2 3 3 2 1 1 " }, { "input": "6\n401 351 548 829 698 438", "output": "3 -1 2 1 1 3 " }, { "input": "84\n362 480 551 307 4 118 376 541 494 472 75 450 192 458 450 390 447 62 239 362 301 243 248 102 85 430 231 195 316 283 128 252 569 282 205 390 461 114 390 121 3 125 23 471 88 13 8 289 143 352 523 217 342 98 116 279 327 133 199 164 89 318 76 480 199 401 32 430 281 438 460 484 433 292 433 210 137 138 172 501 253 417 120 432", "output": "-1 2 1 -1 -1 -1 -1 1 2 2 -1 3 -1 3 3 -1 3 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 1 -1 -1 -1 3 -1 -1 -1 -1 -1 -1 2 -1 -1 -1 -1 -1 -1 1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 2 -1 -1 -1 -1 -1 -1 3 2 -1 -1 -1 -1 -1 -1 -1 2 -1 -1 -1 -1 " } ]
1,512,536,235
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
10
1,000
5,734,400
import math def swap(a, i,j): tmp = a[i] a[i] = a[j] a[j] = tmp def quicksort(a,ind,l,r): if l >= r: return() mid = (l+r)//2 midval = a[mid] left = l right = r while (left <= right): while (a[left] > midval): left += 1 while (a[right] < midval): right -= 1 if (left <= right): swap(a, left, right) swap(ind, left, right) left += 1 right -= 1 if (l < right): quicksort(a,ind,l,right) if (r > left): quicksort(a,ind,left,r) def quicksortup(a,ind,l,r): # increasing if l >= r: return() mid = (l+r)//2 midval = a[mid] left = l right = r while (left <= right): while (a[left] < midval): left += 1 while (a[right] > midval): right -= 1 if (left <= right): swap(a, left, right) swap(ind, left, right) left += 1 right -= 1 if (l < right): quicksortup(a,ind,l,right) if (r > left): quicksortup(a,ind,left,r) def getmax(maxt,l,r): if l == r: return(l, maxt[0][l]) j = int(math.ceil(math.log(r-l+1,2)) - 1) pow2 = pow(2,j) if maxt[j][l] > maxt[j][r-pow2+1]: return(getmax(maxt,l,l+pow2-1)) else: return(getmax(maxt,r-pow2+1, r)) #------------- main ------------- n = int(input()) a = [int(i) for i in input().split()] ind = list(range(1,n+1)) quicksort(a,ind,0,len(a)-1) #print("sorted a: ",a) dif =[a[i-1] - a[i] for i in range(1,n)] dif.append(a[n-1]) #the last difference is a[n-1] - if everybody got diploma #print("differences: ", dif) #compute maxtree maxt = [] maxt.append(dif) maxt[0].extend([0]*n) for i in range(1, int(math.log(n,2) + 2 )): cur_layer = [max(maxt[i-1][j],maxt[i-1][j + pow(2,i-1)]) for j in range(n-1)] cur_layer.extend([0]*n) maxt.append(cur_layer) #while True: # l,r = [int(i) for i in input().split()] # print(getmax(maxt,l,r)) maxd1 = dif[0] maxd2 = dif[1] maxd3 = dif[2] nom1 = 0 nom2 = 1 nom3 = 2 for l1 in range(n-2): if dif[l1] < maxd1: continue # maxd1 = dif[l1] # nom1 = l1+1 # maxd22 = 0 for l2 in range(l1+1,n): cnt1 = l1+1 cnt2 = l2-l1 if cnt1 > 2*cnt2: continue elif cnt2 > 2*cnt1: break if dif[l1] == maxd1 and dif[l2] < maxd2: continue # maxd2 = dif[l2] # print("cnt1 = ", cnt1, ", cnt2 = ", cnt2, ", l1 = ", l1, ", l2 = ", l2) left = max(l2 + int(max(math.ceil(cnt1/2), math.ceil(cnt2/2))), l2 + 1) right = min(l2 + min(2*cnt1, 2*cnt2), n-1) # print("left, right = ",left,right) if left > n-1: break nom, tmp = getmax(maxt,left,right) if (dif[l1] > maxd1) or (dif[l2] > maxd2) or (tmp > maxd3): maxd1 = dif[l1] maxd2 = dif[l2] maxd3 = tmp nom1 = l1 nom2 = l2 nom3 = nom # print("set: nom1 = ", nom1, ", nom2 = ", nom2, ", nom3 = ", nom3) # print("set: dif1 = ", maxd1, ", dif2 = ", maxd2, ", dif3 = ", maxd3) dipl = [] for i in range(nom1+1): dipl.append(1) for i in range(nom2-nom1): dipl.append(2) for i in range(nom3-nom2): dipl.append(3) for i in range(n-nom3-1): dipl.append(-1) quicksortup(ind, dipl,0,n-1) for p in dipl: print(p, end = " ") #print("\n",nom1,nom2,nom3) #print(a)
Title: Awards For Contestants Time Limit: None seconds Memory Limit: None megabytes Problem Description: Alexey recently held a programming contest for students from Berland. *n* students participated in a contest, *i*-th of them solved *a**i* problems. Now he wants to award some contestants. Alexey can award the students with diplomas of three different degrees. Each student either will receive one diploma of some degree, or won't receive any diplomas at all. Let *cnt**x* be the number of students that are awarded with diplomas of degree *x* (1<=≤<=*x*<=≤<=3). The following conditions must hold: - For each *x* (1<=≤<=*x*<=≤<=3) *cnt**x*<=&gt;<=0; - For any two degrees *x* and *y* *cnt**x*<=≤<=2·*cnt**y*. Of course, there are a lot of ways to distribute the diplomas. Let *b**i* be the degree of diploma *i*-th student will receive (or <=-<=1 if *i*-th student won't receive any diplomas). Also for any *x* such that 1<=≤<=*x*<=≤<=3 let *c**x* be the maximum number of problems solved by a student that receives a diploma of degree *x*, and *d**x* be the minimum number of problems solved by a student that receives a diploma of degree *x*. Alexey wants to distribute the diplomas in such a way that: 1. If student *i* solved more problems than student *j*, then he has to be awarded not worse than student *j* (it's impossible that student *j* receives a diploma and *i* doesn't receive any, and also it's impossible that both of them receive a diploma, but *b**j*<=&lt;<=*b**i*); 1. *d*1<=-<=*c*2 is maximum possible; 1. Among all ways that maximize the previous expression, *d*2<=-<=*c*3 is maximum possible; 1. Among all ways that correspond to the two previous conditions, *d*3<=-<=*c*<=-<=1 is maximum possible, where *c*<=-<=1 is the maximum number of problems solved by a student that doesn't receive any diploma (or 0 if each student is awarded with some diploma). Help Alexey to find a way to award the contestants! Input Specification: The first line contains one integer number *n* (3<=≤<=*n*<=≤<=3000). The second line contains *n* integer numbers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=5000). Output Specification: Output *n* numbers. *i*-th number must be equal to the degree of diploma *i*-th contestant will receive (or <=-<=1 if he doesn't receive any diploma). If there are multiple optimal solutions, print any of them. It is guaranteed that the answer always exists. Demo Input: ['4\n1 2 3 4\n', '6\n1 4 3 1 1 2\n'] Demo Output: ['3 3 2 1 \n', '-1 1 2 -1 -1 3 \n'] Note: none
```python import math def swap(a, i,j): tmp = a[i] a[i] = a[j] a[j] = tmp def quicksort(a,ind,l,r): if l >= r: return() mid = (l+r)//2 midval = a[mid] left = l right = r while (left <= right): while (a[left] > midval): left += 1 while (a[right] < midval): right -= 1 if (left <= right): swap(a, left, right) swap(ind, left, right) left += 1 right -= 1 if (l < right): quicksort(a,ind,l,right) if (r > left): quicksort(a,ind,left,r) def quicksortup(a,ind,l,r): # increasing if l >= r: return() mid = (l+r)//2 midval = a[mid] left = l right = r while (left <= right): while (a[left] < midval): left += 1 while (a[right] > midval): right -= 1 if (left <= right): swap(a, left, right) swap(ind, left, right) left += 1 right -= 1 if (l < right): quicksortup(a,ind,l,right) if (r > left): quicksortup(a,ind,left,r) def getmax(maxt,l,r): if l == r: return(l, maxt[0][l]) j = int(math.ceil(math.log(r-l+1,2)) - 1) pow2 = pow(2,j) if maxt[j][l] > maxt[j][r-pow2+1]: return(getmax(maxt,l,l+pow2-1)) else: return(getmax(maxt,r-pow2+1, r)) #------------- main ------------- n = int(input()) a = [int(i) for i in input().split()] ind = list(range(1,n+1)) quicksort(a,ind,0,len(a)-1) #print("sorted a: ",a) dif =[a[i-1] - a[i] for i in range(1,n)] dif.append(a[n-1]) #the last difference is a[n-1] - if everybody got diploma #print("differences: ", dif) #compute maxtree maxt = [] maxt.append(dif) maxt[0].extend([0]*n) for i in range(1, int(math.log(n,2) + 2 )): cur_layer = [max(maxt[i-1][j],maxt[i-1][j + pow(2,i-1)]) for j in range(n-1)] cur_layer.extend([0]*n) maxt.append(cur_layer) #while True: # l,r = [int(i) for i in input().split()] # print(getmax(maxt,l,r)) maxd1 = dif[0] maxd2 = dif[1] maxd3 = dif[2] nom1 = 0 nom2 = 1 nom3 = 2 for l1 in range(n-2): if dif[l1] < maxd1: continue # maxd1 = dif[l1] # nom1 = l1+1 # maxd22 = 0 for l2 in range(l1+1,n): cnt1 = l1+1 cnt2 = l2-l1 if cnt1 > 2*cnt2: continue elif cnt2 > 2*cnt1: break if dif[l1] == maxd1 and dif[l2] < maxd2: continue # maxd2 = dif[l2] # print("cnt1 = ", cnt1, ", cnt2 = ", cnt2, ", l1 = ", l1, ", l2 = ", l2) left = max(l2 + int(max(math.ceil(cnt1/2), math.ceil(cnt2/2))), l2 + 1) right = min(l2 + min(2*cnt1, 2*cnt2), n-1) # print("left, right = ",left,right) if left > n-1: break nom, tmp = getmax(maxt,left,right) if (dif[l1] > maxd1) or (dif[l2] > maxd2) or (tmp > maxd3): maxd1 = dif[l1] maxd2 = dif[l2] maxd3 = tmp nom1 = l1 nom2 = l2 nom3 = nom # print("set: nom1 = ", nom1, ", nom2 = ", nom2, ", nom3 = ", nom3) # print("set: dif1 = ", maxd1, ", dif2 = ", maxd2, ", dif3 = ", maxd3) dipl = [] for i in range(nom1+1): dipl.append(1) for i in range(nom2-nom1): dipl.append(2) for i in range(nom3-nom2): dipl.append(3) for i in range(n-nom3-1): dipl.append(-1) quicksortup(ind, dipl,0,n-1) for p in dipl: print(p, end = " ") #print("\n",nom1,nom2,nom3) #print(a) ```
0
960
D
Full Binary Tree Queries
PROGRAMMING
2,100
[ "brute force", "implementation", "trees" ]
null
null
You have a full binary tree having infinite levels. Each node has an initial value. If a node has value *x*, then its left child has value 2·*x* and its right child has value 2·*x*<=+<=1. The value of the root is 1. You need to answer *Q* queries. There are 3 types of queries: 1. Cyclically shift the values of all nodes on the same level as node with value *X* by *K* units. (The values/nodes of any other level are not affected).1. Cyclically shift the nodes on the same level as node with value *X* by *K* units. (The subtrees of these nodes will move along with them).1. Print the value of every node encountered on the simple path from the node with value *X* to the root. Positive *K* implies right cyclic shift and negative *K* implies left cyclic shift. It is guaranteed that atleast one type 3 query is present.
The first line contains a single integer *Q* (1<=≤<=*Q*<=≤<=105). Then *Q* queries follow, one per line: - Queries of type 1 and 2 have the following format: *T* *X* *K* (1<=≤<=*T*<=≤<=2; 1<=≤<=*X*<=≤<=1018; 0<=≤<=|*K*|<=≤<=1018), where *T* is type of the query.- Queries of type 3 have the following format: 3 *X* (1<=≤<=*X*<=≤<=1018).
For each query of type 3, print the values of all nodes encountered in descending order.
[ "5\n3 12\n1 2 1\n3 12\n2 4 -1\n3 8\n", "5\n3 14\n1 5 -3\n3 14\n1 3 1\n3 14\n" ]
[ "12 6 3 1 \n12 6 2 1 \n8 4 2 1 \n", "14 7 3 1 \n14 6 3 1 \n14 6 2 1 \n" ]
Following are the images of the first 4 levels of the tree in the first test case: Original: After query 1 2 1: After query 2 4 -1:
2,000
[ { "input": "5\n3 12\n1 2 1\n3 12\n2 4 -1\n3 8", "output": "12 6 3 1 \n12 6 2 1 \n8 4 2 1 " }, { "input": "5\n3 14\n1 5 -3\n3 14\n1 3 1\n3 14", "output": "14 7 3 1 \n14 6 3 1 \n14 6 2 1 " }, { "input": "6\n3 1\n2 1 0\n3 10\n2 1 -4\n3 10\n2 10 -5", "output": "1 \n10 5 2 1 \n10 5 2 1 " }, { "input": "3\n3 1000000000000000000\n1 12345 13\n3 1000000000000000000", "output": "1000000000000000000 500000000000000000 250000000000000000 125000000000000000 62500000000000000 31250000000000000 15625000000000000 7812500000000000 3906250000000000 1953125000000000 976562500000000 488281250000000 244140625000000 122070312500000 61035156250000 30517578125000 15258789062500 7629394531250 3814697265625 1907348632812 953674316406 476837158203 238418579101 119209289550 59604644775 29802322387 14901161193 7450580596 3725290298 1862645149 931322574 465661287 232830643 116415321 58207660 29103830..." }, { "input": "10\n3 999\n3 822\n2 339 -75\n2 924 -56\n3 863\n3 311\n1 269 84\n2 604 9\n2 788 -98\n1 233 60", "output": "999 499 249 124 62 31 15 7 3 1 \n822 411 205 102 51 25 12 6 3 1 \n863 403 164 82 41 20 10 5 2 1 \n311 246 123 61 30 15 7 3 1 " }, { "input": "10\n2 64324170 41321444786551040\n2 58204973 -73473234074970084\n1 56906279 -33102897753191948\n1 50660486 43066512304447265\n2 5614300 55244615832513844\n3 63044213\n3 27109227\n3 65485686\n3 36441490\n1 59699160 -19214308468046677", "output": "63044213 19585619 9792809 4896404 4125156 2062578 1031289 515644 257822 128911 64455 32227 16113 8056 4028 2014 1007 503 251 125 62 31 15 7 3 1 \n27109227 13554613 6777306 2968455 1484227 742113 371056 185528 92764 46382 23191 11595 5797 2898 1449 724 362 181 90 45 22 11 5 2 1 \n65485686 20806355 10403177 5201588 2180596 1090298 545149 272574 136287 68143 34071 17035 8517 4258 2129 1064 532 266 133 66 33 16 8 4 2 1 \n36441490 23061473 11530736 5765368 2462486 1231243 615621 307810 153905 76952 38476 19238 ..." }, { "input": "2\n2 1 100000000000000000\n3 1000000000000000", "output": "1000000000000000 500000000000000 250000000000000 125000000000000 62500000000000 31250000000000 15625000000000 7812500000000 3906250000000 1953125000000 976562500000 488281250000 244140625000 122070312500 61035156250 30517578125 15258789062 7629394531 3814697265 1907348632 953674316 476837158 238418579 119209289 59604644 29802322 14901161 7450580 3725290 1862645 931322 465661 232830 116415 58207 29103 14551 7275 3637 1818 909 454 227 113 56 28 14 7 3 1 " } ]
1,523,460,525
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
61
7,065,600
def xtopos(level, x): cur = x-_2[level]+1 if a[level] < 0: tmp = abs(a[level])//_2[level] a[level] = a[level]+tmp*_2[level] while a[level] < 0: a[level] = a[level]+_2[level] a[level] = a[level]%_2[level] cur = (cur+a[level])%_2[level] if cur == 0: cur = _2[level] return cur def postox(level, x): cur = x if a[level] < 0: tmp = abs(a[level])//_2[level] a[level] = a[level]+tmp*_2[level] while a[level] < 0: a[level] = a[level]+_2[level] a[level] = a[level]%_2[level] cur = (cur-a[level]+_2[level])%_2[level] if cur == 0: cur = _2[level] return cur+_2[level]-1 a = list() _2 = list() for i in range(61): a.append(0) _2.append(1<<i) Q = int(input()) for kase in range(Q): p = list(map(int, input().split())) if p[0] == 1: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 a[level] = a[level]+p[2] elif p[0] == 2: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 for j in range(level,61): a[j] = a[j]+p[2] p[2] = p[2]<<1 else: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 pos = xtopos(level, p[1]) print(p[1], end=" ") while level > 1: level = level-1 pos = (pos+1)>>1 x = postox(level, pos) print(x, end=" ") print(1)
Title: Full Binary Tree Queries Time Limit: None seconds Memory Limit: None megabytes Problem Description: You have a full binary tree having infinite levels. Each node has an initial value. If a node has value *x*, then its left child has value 2·*x* and its right child has value 2·*x*<=+<=1. The value of the root is 1. You need to answer *Q* queries. There are 3 types of queries: 1. Cyclically shift the values of all nodes on the same level as node with value *X* by *K* units. (The values/nodes of any other level are not affected).1. Cyclically shift the nodes on the same level as node with value *X* by *K* units. (The subtrees of these nodes will move along with them).1. Print the value of every node encountered on the simple path from the node with value *X* to the root. Positive *K* implies right cyclic shift and negative *K* implies left cyclic shift. It is guaranteed that atleast one type 3 query is present. Input Specification: The first line contains a single integer *Q* (1<=≤<=*Q*<=≤<=105). Then *Q* queries follow, one per line: - Queries of type 1 and 2 have the following format: *T* *X* *K* (1<=≤<=*T*<=≤<=2; 1<=≤<=*X*<=≤<=1018; 0<=≤<=|*K*|<=≤<=1018), where *T* is type of the query.- Queries of type 3 have the following format: 3 *X* (1<=≤<=*X*<=≤<=1018). Output Specification: For each query of type 3, print the values of all nodes encountered in descending order. Demo Input: ['5\n3 12\n1 2 1\n3 12\n2 4 -1\n3 8\n', '5\n3 14\n1 5 -3\n3 14\n1 3 1\n3 14\n'] Demo Output: ['12 6 3 1 \n12 6 2 1 \n8 4 2 1 \n', '14 7 3 1 \n14 6 3 1 \n14 6 2 1 \n'] Note: Following are the images of the first 4 levels of the tree in the first test case: Original: After query 1 2 1: After query 2 4 -1:
```python def xtopos(level, x): cur = x-_2[level]+1 if a[level] < 0: tmp = abs(a[level])//_2[level] a[level] = a[level]+tmp*_2[level] while a[level] < 0: a[level] = a[level]+_2[level] a[level] = a[level]%_2[level] cur = (cur+a[level])%_2[level] if cur == 0: cur = _2[level] return cur def postox(level, x): cur = x if a[level] < 0: tmp = abs(a[level])//_2[level] a[level] = a[level]+tmp*_2[level] while a[level] < 0: a[level] = a[level]+_2[level] a[level] = a[level]%_2[level] cur = (cur-a[level]+_2[level])%_2[level] if cur == 0: cur = _2[level] return cur+_2[level]-1 a = list() _2 = list() for i in range(61): a.append(0) _2.append(1<<i) Q = int(input()) for kase in range(Q): p = list(map(int, input().split())) if p[0] == 1: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 a[level] = a[level]+p[2] elif p[0] == 2: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 for j in range(level,61): a[j] = a[j]+p[2] p[2] = p[2]<<1 else: tmp = 2 level = 0 while p[1] >= tmp: tmp = tmp<<1 level = level+1 pos = xtopos(level, p[1]) print(p[1], end=" ") while level > 1: level = level-1 pos = (pos+1)>>1 x = postox(level, pos) print(x, end=" ") print(1) ```
0
71
A
Way Too Long Words
PROGRAMMING
800
[ "strings" ]
A. Way Too Long Words
1
256
Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome. Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation. This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes. Thus, "localization" will be spelt as "l10n", and "internationalization» will be spelt as "i18n". You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
[ "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n" ]
[ "word\nl10n\ni18n\np43s\n" ]
none
500
[ { "input": "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis", "output": "word\nl10n\ni18n\np43s" }, { "input": "5\nabcdefgh\nabcdefghi\nabcdefghij\nabcdefghijk\nabcdefghijklm", "output": "abcdefgh\nabcdefghi\nabcdefghij\na9k\na11m" }, { "input": "3\nnjfngnrurunrgunrunvurn\njfvnjfdnvjdbfvsbdubruvbubvkdb\nksdnvidnviudbvibd", "output": "n20n\nj27b\nk15d" }, { "input": "1\ntcyctkktcctrcyvbyiuhihhhgyvyvyvyvjvytchjckt", "output": "t41t" }, { "input": "24\nyou\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nunofficially\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings", "output": "you\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nu10y\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings" }, { "input": "1\na", "output": "a" }, { "input": "26\na\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz", "output": "a\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz" }, { "input": "1\nabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghij", "output": "a98j" }, { "input": "10\ngyartjdxxlcl\nfzsck\nuidwu\nxbymclornemdmtj\nilppyoapitawgje\ncibzc\ndrgbeu\nhezplmsdekhhbo\nfeuzlrimbqbytdu\nkgdco", "output": "g10l\nfzsck\nuidwu\nx13j\ni13e\ncibzc\ndrgbeu\nh12o\nf13u\nkgdco" }, { "input": "20\nlkpmx\nkovxmxorlgwaomlswjxlpnbvltfv\nhykasjxqyjrmybejnmeumzha\ntuevlumpqbbhbww\nqgqsphvrmupxxc\ntrissbaf\nqfgrlinkzvzqdryckaizutd\nzzqtoaxkvwoscyx\noswytrlnhpjvvnwookx\nlpuzqgec\ngyzqfwxggtvpjhzmzmdw\nrlxjgmvdftvrmvbdwudra\nvsntnjpepnvdaxiporggmglhagv\nxlvcqkqgcrbgtgglj\nlyxwxbiszyhlsrgzeedzprbmcpduvq\nyrmqqvrkqskqukzqrwukpsifgtdc\nxpuohcsjhhuhvr\nvvlfrlxpvqejngwrbfbpmqeirxlw\nsvmasocxdvadmaxtrpakysmeaympy\nyuflqboqfdt", "output": "lkpmx\nk26v\nh22a\nt13w\nq12c\ntrissbaf\nq21d\nz13x\no17x\nlpuzqgec\ng18w\nr19a\nv25v\nx15j\nl28q\ny26c\nx12r\nv26w\ns27y\ny9t" }, { "input": "100\nm\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr", "output": "m\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr" } ]
1,691,332,052
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
15
0
word = str(input()) if len(word)> 10: print(word[0] + str(len(word[1:len(word)-1])) + word[-1])
Title: Way Too Long Words Time Limit: 1 seconds Memory Limit: 256 megabytes Problem Description: Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome. Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation. This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes. Thus, "localization" will be spelt as "l10n", and "internationalization» will be spelt as "i18n". You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters. Output Specification: Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data. Demo Input: ['4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n'] Demo Output: ['word\nl10n\ni18n\np43s\n'] Note: none
```python word = str(input()) if len(word)> 10: print(word[0] + str(len(word[1:len(word)-1])) + word[-1]) ```
0
859
B
Lazy Security Guard
PROGRAMMING
1,000
[ "brute force", "geometry", "math" ]
null
null
Your security guard friend recently got a new job at a new security company. The company requires him to patrol an area of the city encompassing exactly *N* city blocks, but they let him choose which blocks. That is, your friend must walk the perimeter of a region whose area is exactly *N* blocks. Your friend is quite lazy and would like your help to find the shortest possible route that meets the requirements. The city is laid out in a square grid pattern, and is large enough that for the sake of the problem it can be considered infinite.
Input will consist of a single integer *N* (1<=≤<=*N*<=≤<=106), the number of city blocks that must be enclosed by the route.
Print the minimum perimeter that can be achieved.
[ "4\n", "11\n", "22\n" ]
[ "8\n", "14\n", "20\n" ]
Here are some possible shapes for the examples: <img class="tex-graphics" src="https://espresso.codeforces.com/e11bef2cf82b55dd583cfc97d12b5aee5e483a65.png" style="max-width: 100.0%;max-height: 100.0%;"/>
750
[ { "input": "4", "output": "8" }, { "input": "11", "output": "14" }, { "input": "22", "output": "20" }, { "input": "3", "output": "8" }, { "input": "1024", "output": "128" }, { "input": "101", "output": "42" }, { "input": "30", "output": "22" }, { "input": "1000000", "output": "4000" }, { "input": "1", "output": "4" }, { "input": "2", "output": "6" }, { "input": "5", "output": "10" }, { "input": "6", "output": "10" }, { "input": "7", "output": "12" }, { "input": "8", "output": "12" }, { "input": "9", "output": "12" }, { "input": "10", "output": "14" }, { "input": "999000", "output": "3998" }, { "input": "999001", "output": "4000" }, { "input": "999999", "output": "4000" }, { "input": "933206", "output": "3866" }, { "input": "718351", "output": "3392" }, { "input": "607443", "output": "3118" }, { "input": "347887", "output": "2360" }, { "input": "246206", "output": "1986" }, { "input": "151375", "output": "1558" }, { "input": "12639", "output": "450" }, { "input": "3751", "output": "246" }, { "input": "3607", "output": "242" }, { "input": "124", "output": "46" }, { "input": "64", "output": "32" }, { "input": "31", "output": "24" }, { "input": "23", "output": "20" }, { "input": "15", "output": "16" }, { "input": "19", "output": "18" }, { "input": "59637", "output": "978" } ]
1,640,117,153
2,147,483,647
PyPy 3-64
OK
TESTS
35
93
0
import math n = int(input()) r = math.ceil(math.sqrt(n)) print(r*2 + math.ceil(n/r)*2)
Title: Lazy Security Guard Time Limit: None seconds Memory Limit: None megabytes Problem Description: Your security guard friend recently got a new job at a new security company. The company requires him to patrol an area of the city encompassing exactly *N* city blocks, but they let him choose which blocks. That is, your friend must walk the perimeter of a region whose area is exactly *N* blocks. Your friend is quite lazy and would like your help to find the shortest possible route that meets the requirements. The city is laid out in a square grid pattern, and is large enough that for the sake of the problem it can be considered infinite. Input Specification: Input will consist of a single integer *N* (1<=≤<=*N*<=≤<=106), the number of city blocks that must be enclosed by the route. Output Specification: Print the minimum perimeter that can be achieved. Demo Input: ['4\n', '11\n', '22\n'] Demo Output: ['8\n', '14\n', '20\n'] Note: Here are some possible shapes for the examples: <img class="tex-graphics" src="https://espresso.codeforces.com/e11bef2cf82b55dd583cfc97d12b5aee5e483a65.png" style="max-width: 100.0%;max-height: 100.0%;"/>
```python import math n = int(input()) r = math.ceil(math.sqrt(n)) print(r*2 + math.ceil(n/r)*2) ```
3
858
C
Did you mean...
PROGRAMMING
1,500
[ "dp", "greedy", "implementation" ]
null
null
Beroffice text editor has a wide range of features that help working with text. One of the features is an automatic search for typos and suggestions of how to fix them. Beroffice works only with small English letters (i.e. with 26 letters from a to z). Beroffice thinks that a word is typed with a typo if there are three or more consonants in a row in the word. The only exception is that if the block of consonants has all letters the same, then this block (even if its length is greater than three) is not considered a typo. Formally, a word is typed with a typo if there is a block of not less that three consonants in a row, and there are at least two different letters in this block. For example: - the following words have typos: "hellno", "hackcerrs" and "backtothefutttture"; - the following words don't have typos: "helllllooooo", "tobeornottobe" and "oooooo". When Beroffice editor finds a word with a typo, it inserts as little as possible number of spaces in this word (dividing it into several words) in such a way that each of the resulting words is typed without any typos. Implement this feature of Beroffice editor. Consider the following letters as the only vowels: 'a', 'e', 'i', 'o' and 'u'. All the other letters are consonants in this problem.
The only line contains a non-empty word consisting of small English letters. The length of the word is between 1 and 3000 letters.
Print the given word without any changes if there are no typos. If there is at least one typo in the word, insert the minimum number of spaces into the word so that each of the resulting words doesn't have any typos. If there are multiple solutions, print any of them.
[ "hellno\n", "abacaba\n", "asdfasdf\n" ]
[ "hell no \n", "abacaba \n", "asd fasd f \n" ]
none
1,500
[ { "input": "hellno", "output": "hell no " }, { "input": "abacaba", "output": "abacaba " }, { "input": "asdfasdf", "output": "asd fasd f " }, { "input": "ooo", "output": "ooo " }, { "input": "moyaoborona", "output": "moyaoborona " }, { "input": "jxegxxx", "output": "jxegx xx " }, { "input": "orfyaenanabckumulsboloyhljhacdgcmnooxvxrtuhcslxgslfpnfnyejbxqisxjyoyvcvuddboxkqgbogkfz", "output": "orf yaenanabc kumuls boloyh lj hacd gc mnooxv xr tuhc sl xg sl fp nf nyejb xqisx jyoyv cvudd boxk qg bogk fz " }, { "input": "zxdgmhsjotvajkwshjpvzcuwehpeyfhakhtlvuoftkgdmvpafmxcliqvrztloocziqdkexhzcbdgxaoyvte", "output": "zx dg mh sjotvajk ws hj pv zcuwehpeyf hakh tl vuoft kg dm vpafm xc liqv rz tloocziqd kexh zc bd gxaoyv te " }, { "input": "niblehmwtycadhbfuginpyafszjbucaszihijndzjtuyuaxkrovotshtsajmdcflnfdmahzbvpymiczqqleedpofcnvhieknlz", "output": "niblehm wt ycadh bfuginp yafs zj bucaszihijn dz jtuyuaxk rovots ht sajm dc fl nf dmahz bv py micz qq leedpofc nv hiekn lz " }, { "input": "pqvtgtctpkgjgxnposjqedofficoyznxlerxyqypyzpoehejtjvyafjxjppywwgeakf", "output": "pq vt gt ct pk gj gx nposj qedofficoyz nx lerx yq yp yz poehejt jv yafj xj pp yw wgeakf " }, { "input": "mvjajoyeg", "output": "mv jajoyeg " }, { "input": "dipxocwjosvdaillxolmthjhzhsxskzqslebpixpuhpgeesrkedhohisdsjsrkiktbjzlhectrfcathvewzficirqbdvzq", "output": "dipxocw josv daill xolm th jh zh sx sk zq slebpixpuhp geesr kedhohisd sj sr kikt bj zl hect rf cath vewz ficirq bd vz q " }, { "input": "ibbtvelwjirxqermucqrgmoauonisgmarjxxybllktccdykvef", "output": "ibb tvelw jirx qermucq rg moauonisg marj xx yb ll kt cc dy kvef " }, { "input": "jxevkmrwlomaaahaubvjzqtyfqhqbhpqhomxqpiuersltohinvfyeykmlooujymldjqhgqjkvqknlyj", "output": "jxevk mr wlomaaahaubv jz qt yf qh qb hp qhomx qpiuers ltohinv fyeyk mlooujy ml dj qh gq jk vq kn ly j " }, { "input": "hzxkuwqxonsulnndlhygvmallghjerwp", "output": "hz xkuwq xonsuln nd lh yg vmall gh jerw p " }, { "input": "jbvcsjdyzlzmxwcvmixunfzxidzvwzaqqdhguvelwbdosbd", "output": "jb vc sj dy zl zm xw cv mixunf zxidz vw zaqq dh guvelw bdosb d " }, { "input": "uyrsxaqmtibbxpfabprvnvbinjoxubupvfyjlqnfrfdeptipketwghr", "output": "uyr sxaqm tibb xp fabp rv nv binjoxubupv fy jl qn fr fdeptipketw gh r " }, { "input": "xfcftysljytybkkzkpqdzralahgvbkxdtheqrhfxpecdjqofnyiahggnkiuusalu", "output": "xf cf ty sl jy ty bk kz kp qd zralahg vb kx dt heqr hf xpecd jqofn yiahg gn kiuusalu " }, { "input": "a", "output": "a " }, { "input": "b", "output": "b " }, { "input": "aa", "output": "aa " }, { "input": "ab", "output": "ab " }, { "input": "ba", "output": "ba " }, { "input": "bb", "output": "bb " }, { "input": "aaa", "output": "aaa " }, { "input": "aab", "output": "aab " }, { "input": "aba", "output": "aba " }, { "input": "abb", "output": "abb " }, { "input": "baa", "output": "baa " }, { "input": "bab", "output": "bab " }, { "input": "bba", "output": "bba " }, { "input": "bbb", "output": "bbb " }, { "input": "bbc", "output": "bb c " }, { "input": "bcb", "output": "bc b " }, { "input": "cbb", "output": "cb b " }, { "input": "bababcdfabbcabcdfacbbabcdfacacabcdfacbcabcdfaccbabcdfacaaabcdfabacabcdfabcbabcdfacbaabcdfabaaabcdfabbaabcdfacababcdfabbbabcdfabcaabcdfaaababcdfabccabcdfacccabcdfaacbabcdfaabaabcdfaabcabcdfaaacabcdfaccaabcdfaabbabcdfaaaaabcdfaacaabcdfaacc", "output": "bababc dfabb cabc dfacb babc dfacacabc dfacb cabc dfacc babc dfacaaabc dfabacabc dfabc babc dfacbaabc dfabaaabc dfabbaabc dfacababc dfabbbabc dfabcaabc dfaaababc dfabc cabc dfacccabc dfaacbabc dfaabaabc dfaabcabc dfaaacabc dfaccaabc dfaabbabc dfaaaaabc dfaacaabc dfaacc " }, { "input": "bddabcdfaccdabcdfadddabcdfabbdabcdfacddabcdfacdbabcdfacbbabcdfacbcabcdfacbdabcdfadbbabcdfabdbabcdfabdcabcdfabbcabcdfabccabcdfabbbabcdfaddcabcdfaccbabcdfadbdabcdfacccabcdfadcdabcdfadcbabcdfabcbabcdfadbcabcdfacdcabcdfabcdabcdfadccabcdfaddb", "output": "bd dabc dfacc dabc dfadddabc dfabb dabc dfacd dabc dfacd babc dfacb babc dfacb cabc dfacb dabc dfadb babc dfabd babc dfabd cabc dfabb cabc dfabc cabc dfabbbabc dfadd cabc dfacc babc dfadb dabc dfacccabc dfadc dabc dfadc babc dfabc babc dfadb cabc dfacd cabc dfabc dabc dfadc cabc dfadd b " }, { "input": "helllllooooo", "output": "helllllooooo " }, { "input": "bbbzxxx", "output": "bbb zx xx " }, { "input": "ffff", "output": "ffff " }, { "input": "cdddddddddddddddddd", "output": "cd ddddddddddddddddd " }, { "input": "bbbc", "output": "bbb c " }, { "input": "lll", "output": "lll " }, { "input": "bbbbb", "output": "bbbbb " }, { "input": "llll", "output": "llll " }, { "input": "bbbbbbccc", "output": "bbbbbb ccc " }, { "input": "lllllb", "output": "lllll b " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "lllll", "output": "lllll " }, { "input": "bbbbbbbbbc", "output": "bbbbbbbbb c " }, { "input": "helllllno", "output": "helllll no " }, { "input": "nnnnnnnnnnnn", "output": "nnnnnnnnnnnn " }, { "input": "bbbbbccc", "output": "bbbbb ccc " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "nnnnnnnnnnnnnnnnnn", "output": "nnnnnnnnnnnnnnnnnn " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "hhhh", "output": "hhhh " }, { "input": "nnnnnnnnnnnnnnnnnnnnnnnnn", "output": "nnnnnnnnnnnnnnnnnnnnnnnnn " }, { "input": "zzzzzzzzzz", "output": "zzzzzzzzzz " }, { "input": "dddd", "output": "dddd " }, { "input": "heffffffgggggghhhhhh", "output": "heffffff gggggg hhhhhh " }, { "input": "bcddd", "output": "bc ddd " }, { "input": "x", "output": "x " }, { "input": "nnn", "output": "nnn " }, { "input": "xxxxxxxx", "output": "xxxxxxxx " }, { "input": "cclcc", "output": "cc lc c " }, { "input": "tttttttttttttt", "output": "tttttttttttttt " }, { "input": "xxxxxxx", "output": "xxxxxxx " }, { "input": "ccccb", "output": "cccc b " }, { "input": "bcecccc", "output": "bcecccc " }, { "input": "jjja", "output": "jjja " }, { "input": "zzz", "output": "zzz " }, { "input": "xxxxxxxxxzzzzzzzzzzzz", "output": "xxxxxxxxx zzzzzzzzzzzz " }, { "input": "alllewww", "output": "alllewww " }, { "input": "bbbbbbbbb", "output": "bbbbbbbbb " }, { "input": "jjj", "output": "jjj " }, { "input": "bbbbbbbbbbbbbbbbbbbbbbbbb", "output": "bbbbbbbbbbbbbbbbbbbbbbbbb " }, { "input": "kkkkkkkkkklllllllllllllll", "output": "kkkkkkkkkk lllllllllllllll " }, { "input": "helllllllllllo", "output": "helllllllllllo " }, { "input": "ttttsttttt", "output": "tttt st tttt " }, { "input": "tttttttsssssss", "output": "ttttttt sssssss " }, { "input": "assstttttatsfatsfdjfdhtsjdsaatttssssststsss", "output": "asss tttttats fats fd jf dh ts jd saattt sssss ts ts ss " }, { "input": "xxxxx", "output": "xxxxx " }, { "input": "bbbhbbb", "output": "bbb hb bb " }, { "input": "bbbbbbbb", "output": "bbbbbbbb " } ]
1,508,009,540
2,147,483,647
Python 3
OK
TESTS
108
62
2,150,400
def check3x(s): if (s==s[0]*len(s)) or (len(s)<3): return True return False s=input() c='' a=s k=0 for i in range(len(s)): if s[i] in 'uioea': c='' continue c+=s[i] if (not check3x(c)) and (c in a): x=i+k k+=1 a=a[:x]+' '+a[x:] c=c[-1] print(a)
Title: Did you mean... Time Limit: None seconds Memory Limit: None megabytes Problem Description: Beroffice text editor has a wide range of features that help working with text. One of the features is an automatic search for typos and suggestions of how to fix them. Beroffice works only with small English letters (i.e. with 26 letters from a to z). Beroffice thinks that a word is typed with a typo if there are three or more consonants in a row in the word. The only exception is that if the block of consonants has all letters the same, then this block (even if its length is greater than three) is not considered a typo. Formally, a word is typed with a typo if there is a block of not less that three consonants in a row, and there are at least two different letters in this block. For example: - the following words have typos: "hellno", "hackcerrs" and "backtothefutttture"; - the following words don't have typos: "helllllooooo", "tobeornottobe" and "oooooo". When Beroffice editor finds a word with a typo, it inserts as little as possible number of spaces in this word (dividing it into several words) in such a way that each of the resulting words is typed without any typos. Implement this feature of Beroffice editor. Consider the following letters as the only vowels: 'a', 'e', 'i', 'o' and 'u'. All the other letters are consonants in this problem. Input Specification: The only line contains a non-empty word consisting of small English letters. The length of the word is between 1 and 3000 letters. Output Specification: Print the given word without any changes if there are no typos. If there is at least one typo in the word, insert the minimum number of spaces into the word so that each of the resulting words doesn't have any typos. If there are multiple solutions, print any of them. Demo Input: ['hellno\n', 'abacaba\n', 'asdfasdf\n'] Demo Output: ['hell no \n', 'abacaba \n', 'asd fasd f \n'] Note: none
```python def check3x(s): if (s==s[0]*len(s)) or (len(s)<3): return True return False s=input() c='' a=s k=0 for i in range(len(s)): if s[i] in 'uioea': c='' continue c+=s[i] if (not check3x(c)) and (c in a): x=i+k k+=1 a=a[:x]+' '+a[x:] c=c[-1] print(a) ```
3
102
B
Sum of Digits
PROGRAMMING
1,000
[ "implementation" ]
B. Sum of Digits
2
265
Having watched the last Harry Potter film, little Gerald also decided to practice magic. He found in his father's magical book a spell that turns any number in the sum of its digits. At the moment Gerald learned that, he came across a number *n*. How many times can Gerald put a spell on it until the number becomes one-digit?
The first line contains the only integer *n* (0<=≤<=*n*<=≤<=10100000). It is guaranteed that *n* doesn't contain any leading zeroes.
Print the number of times a number can be replaced by the sum of its digits until it only contains one digit.
[ "0\n", "10\n", "991\n" ]
[ "0\n", "1\n", "3\n" ]
In the first sample the number already is one-digit — Herald can't cast a spell. The second test contains number 10. After one casting of a spell it becomes 1, and here the process is completed. Thus, Gerald can only cast the spell once. The third test contains number 991. As one casts a spell the following transformations take place: 991 → 19 → 10 → 1. After three transformations the number becomes one-digit.
1,000
[ { "input": "0", "output": "0" }, { "input": "10", "output": "1" }, { "input": "991", "output": "3" }, { "input": "99", "output": "2" }, { "input": "100", "output": "1" }, { "input": "123456789", "output": "2" }, { "input": "32", "output": "1" }, { "input": "86", "output": "2" }, { "input": "2", "output": "0" }, { "input": "8", "output": "0" }, { "input": "34", "output": "1" }, { "input": "13", "output": "1" }, { "input": "28", "output": "2" }, { "input": "23", "output": "1" }, { "input": "57", "output": "2" }, { "input": "29", "output": "2" }, { "input": "353869285", "output": "3" }, { "input": "549548646", "output": "2" }, { "input": "858893424", "output": "2" }, { "input": "644818852", "output": "3" }, { "input": "360322525", "output": "3" }, { "input": "122937520", "output": "2" }, { "input": "288403032", "output": "2" }, { "input": "677257481", "output": "3" }, { "input": "58059561", "output": "3" }, { "input": "211288847", "output": "2" }, { "input": "339900034079539584", "output": "2" }, { "input": "784084029310269952", "output": "3" }, { "input": "774730557264864000", "output": "3" }, { "input": "478233807148352256", "output": "3" }, { "input": "165646874056812544", "output": "3" }, { "input": "477533739511673792", "output": "3" }, { "input": "660119944377002240", "output": "3" }, { "input": "448375218506078080", "output": "3" }, { "input": "77213334785795616", "output": "3" }, { "input": "165767221702271872", "output": "3" }, { "input": "1", "output": "0" }, { "input": "5", "output": "0" }, { "input": "8", "output": "0" }, { "input": "156161456146164104103460452045416165146141414651641564105461465156445621465146514562146145465165145145614561465145614561", "output": "3" }, { "input": "9", "output": "0" } ]
1,610,799,595
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
6
2,000
307,200
n=int(input()) ct=0 while(len(str(n))!=1): digits=[] while(n!=0): r=n%10 n=n//10 digits.append(r) #print(digits) n=sum(digits) ct+=1 print(ct)
Title: Sum of Digits Time Limit: 2 seconds Memory Limit: 265 megabytes Problem Description: Having watched the last Harry Potter film, little Gerald also decided to practice magic. He found in his father's magical book a spell that turns any number in the sum of its digits. At the moment Gerald learned that, he came across a number *n*. How many times can Gerald put a spell on it until the number becomes one-digit? Input Specification: The first line contains the only integer *n* (0<=≤<=*n*<=≤<=10100000). It is guaranteed that *n* doesn't contain any leading zeroes. Output Specification: Print the number of times a number can be replaced by the sum of its digits until it only contains one digit. Demo Input: ['0\n', '10\n', '991\n'] Demo Output: ['0\n', '1\n', '3\n'] Note: In the first sample the number already is one-digit — Herald can't cast a spell. The second test contains number 10. After one casting of a spell it becomes 1, and here the process is completed. Thus, Gerald can only cast the spell once. The third test contains number 991. As one casts a spell the following transformations take place: 991 → 19 → 10 → 1. After three transformations the number becomes one-digit.
```python n=int(input()) ct=0 while(len(str(n))!=1): digits=[] while(n!=0): r=n%10 n=n//10 digits.append(r) #print(digits) n=sum(digits) ct+=1 print(ct) ```
0
558
E
A Simple Task
PROGRAMMING
2,300
[ "data structures", "sortings", "strings" ]
null
null
This task is very simple. Given a string *S* of length *n* and *q* queries each query is on the format *i* *j* *k* which means sort the substring consisting of the characters from *i* to *j* in non-decreasing order if *k*<==<=1 or in non-increasing order if *k*<==<=0. Output the final string after applying the queries.
The first line will contain two integers *n*,<=*q* (1<=≤<=*n*<=≤<=105, 0<=≤<=*q*<=≤<=50<=000), the length of the string and the number of queries respectively. Next line contains a string *S* itself. It contains only lowercase English letters. Next *q* lines will contain three integers each *i*,<=*j*,<=*k* (1<=≤<=*i*<=≤<=*j*<=≤<=*n*, ).
Output one line, the string *S* after applying the queries.
[ "10 5\nabacdabcda\n7 10 0\n5 8 1\n1 4 0\n3 6 0\n7 10 1\n", "10 1\nagjucbvdfk\n1 10 1\n" ]
[ "cbcaaaabdd", "abcdfgjkuv" ]
First sample test explanation: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/3ac4e8cc7e335675a4a2b7b4758bfb3865377cea.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/a90b5b03cf59288d8861f0142ecbdf6b12f69e5c.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/1f482a91a275b6bce07eaed85312eac0cfcc6ccf.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/33b1a4a924f4bd562551ba4e40309f180dbe22e0.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/bddc77fd5b02858eb2ff29819cd16a93dbd241e6.png" style="max-width: 100.0%;max-height: 100.0%;"/>
2,500
[ { "input": "10 5\nabacdabcda\n7 10 0\n5 8 1\n1 4 0\n3 6 0\n7 10 1", "output": "cbcaaaabdd" }, { "input": "10 1\nagjucbvdfk\n1 10 1", "output": "abcdfgjkuv" }, { "input": "10 6\nrmaahmdmuo\n1 3 1\n4 6 0\n5 6 1\n7 8 0\n8 10 0\n8 9 1", "output": "amrmahmoud" }, { "input": "10 5\nhbtngdflmj\n1 10 1\n2 9 0\n3 8 1\n4 7 0\n5 6 1", "output": "bnflhjgmdt" }, { "input": "13 0\nokaywearedone", "output": "okaywearedone" } ]
1,437,220,156
2,056
Python 3
WRONG_ANSWER
TESTS
0
46
0
n, q = map(int, input().split(" ")) s = list(input()) for a in range(0, q): i, j, k = map(int, input().split(" ")) s[i-1:j] = sorted(s[i-1:j], reverse=1-k) print(s)
Title: A Simple Task Time Limit: None seconds Memory Limit: None megabytes Problem Description: This task is very simple. Given a string *S* of length *n* and *q* queries each query is on the format *i* *j* *k* which means sort the substring consisting of the characters from *i* to *j* in non-decreasing order if *k*<==<=1 or in non-increasing order if *k*<==<=0. Output the final string after applying the queries. Input Specification: The first line will contain two integers *n*,<=*q* (1<=≤<=*n*<=≤<=105, 0<=≤<=*q*<=≤<=50<=000), the length of the string and the number of queries respectively. Next line contains a string *S* itself. It contains only lowercase English letters. Next *q* lines will contain three integers each *i*,<=*j*,<=*k* (1<=≤<=*i*<=≤<=*j*<=≤<=*n*, ). Output Specification: Output one line, the string *S* after applying the queries. Demo Input: ['10 5\nabacdabcda\n7 10 0\n5 8 1\n1 4 0\n3 6 0\n7 10 1\n', '10 1\nagjucbvdfk\n1 10 1\n'] Demo Output: ['cbcaaaabdd', 'abcdfgjkuv'] Note: First sample test explanation: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/3ac4e8cc7e335675a4a2b7b4758bfb3865377cea.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/a90b5b03cf59288d8861f0142ecbdf6b12f69e5c.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/1f482a91a275b6bce07eaed85312eac0cfcc6ccf.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/33b1a4a924f4bd562551ba4e40309f180dbe22e0.png" style="max-width: 100.0%;max-height: 100.0%;"/> <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/bddc77fd5b02858eb2ff29819cd16a93dbd241e6.png" style="max-width: 100.0%;max-height: 100.0%;"/>
```python n, q = map(int, input().split(" ")) s = list(input()) for a in range(0, q): i, j, k = map(int, input().split(" ")) s[i-1:j] = sorted(s[i-1:j], reverse=1-k) print(s) ```
0
1,010
A
Fly
PROGRAMMING
1,500
[ "binary search", "math" ]
null
null
Natasha is going to fly on a rocket to Mars and return to Earth. Also, on the way to Mars, she will land on $n - 2$ intermediate planets. Formally: we number all the planets from $1$ to $n$. $1$ is Earth, $n$ is Mars. Natasha will make exactly $n$ flights: $1 \to 2 \to \ldots n \to 1$. Flight from $x$ to $y$ consists of two phases: take-off from planet $x$ and landing to planet $y$. This way, the overall itinerary of the trip will be: the $1$-st planet $\to$ take-off from the $1$-st planet $\to$ landing to the $2$-nd planet $\to$ $2$-nd planet $\to$ take-off from the $2$-nd planet $\to$ $\ldots$ $\to$ landing to the $n$-th planet $\to$ the $n$-th planet $\to$ take-off from the $n$-th planet $\to$ landing to the $1$-st planet $\to$ the $1$-st planet. The mass of the rocket together with all the useful cargo (but without fuel) is $m$ tons. However, Natasha does not know how much fuel to load into the rocket. Unfortunately, fuel can only be loaded on Earth, so if the rocket runs out of fuel on some other planet, Natasha will not be able to return home. Fuel is needed to take-off from each planet and to land to each planet. It is known that $1$ ton of fuel can lift off $a_i$ tons of rocket from the $i$-th planet or to land $b_i$ tons of rocket onto the $i$-th planet. For example, if the weight of rocket is $9$ tons, weight of fuel is $3$ tons and take-off coefficient is $8$ ($a_i = 8$), then $1.5$ tons of fuel will be burnt (since $1.5 \cdot 8 = 9 + 3$). The new weight of fuel after take-off will be $1.5$ tons. Please note, that it is allowed to burn non-integral amount of fuel during take-off or landing, and the amount of initial fuel can be non-integral as well. Help Natasha to calculate the minimum mass of fuel to load into the rocket. Note, that the rocket must spend fuel to carry both useful cargo and the fuel itself. However, it doesn't need to carry the fuel which has already been burnt. Assume, that the rocket takes off and lands instantly.
The first line contains a single integer $n$ ($2 \le n \le 1000$) — number of planets. The second line contains the only integer $m$ ($1 \le m \le 1000$) — weight of the payload. The third line contains $n$ integers $a_1, a_2, \ldots, a_n$ ($1 \le a_i \le 1000$), where $a_i$ is the number of tons, which can be lifted off by one ton of fuel. The fourth line contains $n$ integers $b_1, b_2, \ldots, b_n$ ($1 \le b_i \le 1000$), where $b_i$ is the number of tons, which can be landed by one ton of fuel. It is guaranteed, that if Natasha can make a flight, then it takes no more than $10^9$ tons of fuel.
If Natasha can fly to Mars through $(n - 2)$ planets and return to Earth, print the minimum mass of fuel (in tons) that Natasha should take. Otherwise, print a single number $-1$. It is guaranteed, that if Natasha can make a flight, then it takes no more than $10^9$ tons of fuel. The answer will be considered correct if its absolute or relative error doesn't exceed $10^{-6}$. Formally, let your answer be $p$, and the jury's answer be $q$. Your answer is considered correct if $\frac{|p - q|}{\max{(1, |q|)}} \le 10^{-6}$.
[ "2\n12\n11 8\n7 5\n", "3\n1\n1 4 1\n2 5 3\n", "6\n2\n4 6 3 3 5 6\n2 6 3 6 5 3\n" ]
[ "10.0000000000\n", "-1\n", "85.4800000000\n" ]
Let's consider the first example. Initially, the mass of a rocket with fuel is $22$ tons. - At take-off from Earth one ton of fuel can lift off $11$ tons of cargo, so to lift off $22$ tons you need to burn $2$ tons of fuel. Remaining weight of the rocket with fuel is $20$ tons.- During landing on Mars, one ton of fuel can land $5$ tons of cargo, so for landing $20$ tons you will need to burn $4$ tons of fuel. There will be $16$ tons of the rocket with fuel remaining.- While taking off from Mars, one ton of fuel can raise $8$ tons of cargo, so to lift off $16$ tons you will need to burn $2$ tons of fuel. There will be $14$ tons of rocket with fuel after that.- During landing on Earth, one ton of fuel can land $7$ tons of cargo, so for landing $14$ tons you will need to burn $2$ tons of fuel. Remaining weight is $12$ tons, that is, a rocket without any fuel. In the second case, the rocket will not be able even to take off from Earth.
500
[ { "input": "2\n12\n11 8\n7 5", "output": "10.0000000000" }, { "input": "3\n1\n1 4 1\n2 5 3", "output": "-1" }, { "input": "6\n2\n4 6 3 3 5 6\n2 6 3 6 5 3", "output": "85.4800000000" }, { "input": "3\n3\n1 2 1\n2 2 2", "output": "-1" }, { "input": "4\n4\n2 3 2 2\n2 3 4 3", "output": "284.0000000000" }, { "input": "5\n2\n1 2 2 1 2\n4 5 1 4 1", "output": "-1" }, { "input": "7\n7\n3 2 6 2 2 2 5\n4 7 5 6 2 2 2", "output": "4697.0000000000" }, { "input": "2\n1000\n12 34\n56 78", "output": "159.2650775220" }, { "input": "8\n4\n1 1 4 1 3 1 8 1\n1 1 1 1 1 3 1 2", "output": "-1" }, { "input": "9\n2\n8 7 1 1 3 7 1 2 4\n4 1 1 8 7 7 1 1 5", "output": "-1" }, { "input": "10\n10\n9 8 8 7 2 10 2 9 2 4\n3 10 6 2 6 6 5 9 4 5", "output": "3075.7142857143" }, { "input": "20\n12\n3 9 12 13 16 18 9 9 19 7 2 5 17 14 7 7 15 16 5 7\n16 9 13 5 14 10 4 3 16 16 12 20 17 11 4 5 5 14 6 15", "output": "4670.8944493007" }, { "input": "30\n5\n25 1 28 1 27 25 24 1 28 1 12 1 29 16 1 1 1 1 27 1 24 1 1 1 1 1 1 1 30 3\n1 22 1 1 24 2 13 1 16 21 1 27 14 16 1 1 7 1 1 18 1 23 10 1 15 16 16 15 10 1", "output": "-1" }, { "input": "40\n13\n1 1 1 23 21 1 1 1 1 1 40 32 1 21 1 8 1 1 36 15 33 1 30 1 1 37 22 1 4 39 7 1 9 37 1 1 1 28 1 1\n1 34 17 1 38 20 8 14 1 18 29 3 21 21 18 14 1 11 1 1 23 1 25 1 14 1 7 31 9 20 25 1 1 1 1 8 26 12 1 1", "output": "-1" }, { "input": "50\n19\n17 7 13 42 19 25 10 25 2 36 17 40 30 48 34 43 34 20 5 15 8 7 43 35 21 40 40 19 30 11 49 7 24 23 43 30 38 49 10 8 30 11 28 50 48 25 25 20 48 24\n49 35 10 22 24 50 50 7 6 13 16 35 12 43 50 44 35 33 38 49 26 18 23 37 7 38 23 20 28 48 41 16 6 32 32 34 11 39 38 9 38 23 16 31 37 47 33 20 46 30", "output": "7832.1821424977" }, { "input": "60\n21\n11 35 1 28 39 13 19 56 13 13 21 25 1 1 23 1 52 26 53 1 1 1 30 39 1 7 1 1 3 1 1 10 1 1 37 1 1 25 1 1 1 53 1 3 48 1 6 5 4 15 1 14 25 53 25 38 27 1 1 1\n1 1 1 35 40 58 10 22 1 56 1 59 1 6 33 1 1 1 1 18 14 1 1 40 25 47 1 34 1 1 53 1 1 25 1 45 1 1 25 34 3 1 1 1 53 27 11 58 1 1 1 10 12 1 1 1 31 52 1 1", "output": "-1" }, { "input": "70\n69\n70 66 57 58 24 60 39 2 48 61 65 22 10 26 68 62 48 25 12 14 45 57 6 30 48 15 46 33 42 28 69 42 64 25 24 8 62 12 68 53 55 20 32 70 3 5 41 49 16 26 2 34 34 20 39 65 18 47 62 31 39 28 61 67 7 14 31 31 53 54\n40 33 24 20 68 20 22 39 53 56 48 38 59 45 47 46 7 69 11 58 61 40 35 38 62 66 18 36 44 48 67 24 14 27 67 63 68 30 50 6 58 7 6 35 20 58 6 12 12 23 14 2 63 27 29 22 49 16 55 40 70 27 27 70 42 38 66 55 69 47", "output": "217989.4794743629" }, { "input": "80\n21\n65 4 26 25 1 1 1 1 1 1 60 1 29 43 48 6 48 13 29 1 1 62 1 1 1 1 1 1 1 26 9 1 22 1 35 13 66 36 1 1 1 38 55 21 70 1 58 70 1 1 38 1 1 20 1 1 51 1 1 28 1 23 11 1 39 47 1 52 41 1 63 1 1 52 1 45 11 10 80 1\n1 1 25 30 1 1 55 54 1 48 10 37 22 1 74 1 78 13 1 65 32 1 1 1 1 69 5 59 1 1 65 1 40 1 31 1 1 75 54 1 60 1 1 1 1 1 1 1 11 29 36 1 72 71 52 1 1 1 37 1 1 75 43 9 53 1 62 1 29 1 40 27 59 74 41 53 19 30 1 73", "output": "-1" }, { "input": "90\n35\n1 68 16 30 24 1 1 1 35 1 1 67 1 1 1 1 33 16 37 77 83 1 77 26 1 1 68 67 70 62 1 47 1 1 1 84 1 65 1 32 83 1 1 1 28 1 71 76 84 1 1 5 1 74 10 1 1 1 38 87 13 1 7 66 81 49 1 9 1 11 1 25 1 1 1 1 7 1 1 36 61 47 51 1 1 69 40 1 37 1\n40 1 21 1 19 51 37 52 64 1 86 1 5 24 1 1 1 19 36 1 1 77 24 4 1 18 89 1 1 1 1 1 29 22 1 80 32 36 6 1 63 1 30 1 1 1 86 79 73 52 9 1 1 11 7 1 25 20 1 20 1 49 1 37 1 41 1 1 1 1 54 55 1 10 1 1 1 1 1 1 66 1 68 1 1 1 1 53 1 1", "output": "-1" }, { "input": "2\n1\n1 1\n1 1", "output": "-1" }, { "input": "2\n1\n1 1\n2 2", "output": "-1" }, { "input": "2\n1\n2 2\n1 1", "output": "-1" }, { "input": "2\n1\n2 2\n2 2", "output": "15.0000000000" }, { "input": "2\n2\n1 1\n1 1", "output": "-1" }, { "input": "2\n2\n1 1\n2 2", "output": "-1" }, { "input": "2\n2\n2 2\n1 1", "output": "-1" }, { "input": "2\n2\n2 2\n2 2", "output": "30.0000000000" }, { "input": "40\n55\n1 382 1 1 1 629 111 689 396 614 1 1 995 148 7 820 913 1 1 169 157 1 702 1 159 1 1 226 1 253 1 319 1 130 1 1 1 466 1 756\n1 23 555 1 412 1 1 373 316 234 888 1 112 818 33 443 313 1 235 1 1 610 110 535 1 445 1 386 1 1 758 1 292 1 862 1 244 428 530 1", "output": "-1" }, { "input": "49\n1\n100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100\n3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3", "output": "695580114.6380882263" }, { "input": "2\n12\n11 8\n1 1", "output": "-1" }, { "input": "3\n3\n7 11 17\n19 31 33", "output": "1.6012429470" } ]
1,533,189,914
2,147,483,647
Python 3
OK
TESTS
76
109
307,200
rd = lambda: list(map(int, input().split())) n, m = rd(), rd()[0] r = m for x in rd() + rd(): if x > 1: r *= x r /= x - 1 else: print(-1) exit() print(r - m)
Title: Fly Time Limit: None seconds Memory Limit: None megabytes Problem Description: Natasha is going to fly on a rocket to Mars and return to Earth. Also, on the way to Mars, she will land on $n - 2$ intermediate planets. Formally: we number all the planets from $1$ to $n$. $1$ is Earth, $n$ is Mars. Natasha will make exactly $n$ flights: $1 \to 2 \to \ldots n \to 1$. Flight from $x$ to $y$ consists of two phases: take-off from planet $x$ and landing to planet $y$. This way, the overall itinerary of the trip will be: the $1$-st planet $\to$ take-off from the $1$-st planet $\to$ landing to the $2$-nd planet $\to$ $2$-nd planet $\to$ take-off from the $2$-nd planet $\to$ $\ldots$ $\to$ landing to the $n$-th planet $\to$ the $n$-th planet $\to$ take-off from the $n$-th planet $\to$ landing to the $1$-st planet $\to$ the $1$-st planet. The mass of the rocket together with all the useful cargo (but without fuel) is $m$ tons. However, Natasha does not know how much fuel to load into the rocket. Unfortunately, fuel can only be loaded on Earth, so if the rocket runs out of fuel on some other planet, Natasha will not be able to return home. Fuel is needed to take-off from each planet and to land to each planet. It is known that $1$ ton of fuel can lift off $a_i$ tons of rocket from the $i$-th planet or to land $b_i$ tons of rocket onto the $i$-th planet. For example, if the weight of rocket is $9$ tons, weight of fuel is $3$ tons and take-off coefficient is $8$ ($a_i = 8$), then $1.5$ tons of fuel will be burnt (since $1.5 \cdot 8 = 9 + 3$). The new weight of fuel after take-off will be $1.5$ tons. Please note, that it is allowed to burn non-integral amount of fuel during take-off or landing, and the amount of initial fuel can be non-integral as well. Help Natasha to calculate the minimum mass of fuel to load into the rocket. Note, that the rocket must spend fuel to carry both useful cargo and the fuel itself. However, it doesn't need to carry the fuel which has already been burnt. Assume, that the rocket takes off and lands instantly. Input Specification: The first line contains a single integer $n$ ($2 \le n \le 1000$) — number of planets. The second line contains the only integer $m$ ($1 \le m \le 1000$) — weight of the payload. The third line contains $n$ integers $a_1, a_2, \ldots, a_n$ ($1 \le a_i \le 1000$), where $a_i$ is the number of tons, which can be lifted off by one ton of fuel. The fourth line contains $n$ integers $b_1, b_2, \ldots, b_n$ ($1 \le b_i \le 1000$), where $b_i$ is the number of tons, which can be landed by one ton of fuel. It is guaranteed, that if Natasha can make a flight, then it takes no more than $10^9$ tons of fuel. Output Specification: If Natasha can fly to Mars through $(n - 2)$ planets and return to Earth, print the minimum mass of fuel (in tons) that Natasha should take. Otherwise, print a single number $-1$. It is guaranteed, that if Natasha can make a flight, then it takes no more than $10^9$ tons of fuel. The answer will be considered correct if its absolute or relative error doesn't exceed $10^{-6}$. Formally, let your answer be $p$, and the jury's answer be $q$. Your answer is considered correct if $\frac{|p - q|}{\max{(1, |q|)}} \le 10^{-6}$. Demo Input: ['2\n12\n11 8\n7 5\n', '3\n1\n1 4 1\n2 5 3\n', '6\n2\n4 6 3 3 5 6\n2 6 3 6 5 3\n'] Demo Output: ['10.0000000000\n', '-1\n', '85.4800000000\n'] Note: Let's consider the first example. Initially, the mass of a rocket with fuel is $22$ tons. - At take-off from Earth one ton of fuel can lift off $11$ tons of cargo, so to lift off $22$ tons you need to burn $2$ tons of fuel. Remaining weight of the rocket with fuel is $20$ tons.- During landing on Mars, one ton of fuel can land $5$ tons of cargo, so for landing $20$ tons you will need to burn $4$ tons of fuel. There will be $16$ tons of the rocket with fuel remaining.- While taking off from Mars, one ton of fuel can raise $8$ tons of cargo, so to lift off $16$ tons you will need to burn $2$ tons of fuel. There will be $14$ tons of rocket with fuel after that.- During landing on Earth, one ton of fuel can land $7$ tons of cargo, so for landing $14$ tons you will need to burn $2$ tons of fuel. Remaining weight is $12$ tons, that is, a rocket without any fuel. In the second case, the rocket will not be able even to take off from Earth.
```python rd = lambda: list(map(int, input().split())) n, m = rd(), rd()[0] r = m for x in rd() + rd(): if x > 1: r *= x r /= x - 1 else: print(-1) exit() print(r - m) ```
3
999
B
Reversing Encryption
PROGRAMMING
900
[ "implementation" ]
null
null
A string $s$ of length $n$ can be encrypted by the following algorithm: - iterate over all divisors of $n$ in decreasing order (i.e. from $n$ to $1$), - for each divisor $d$, reverse the substring $s[1 \dots d]$ (i.e. the substring which starts at position $1$ and ends at position $d$). For example, the above algorithm applied to the string $s$="codeforces" leads to the following changes: "codeforces" $\to$ "secrofedoc" $\to$ "orcesfedoc" $\to$ "rocesfedoc" $\to$ "rocesfedoc" (obviously, the last reverse operation doesn't change the string because $d=1$). You are given the encrypted string $t$. Your task is to decrypt this string, i.e., to find a string $s$ such that the above algorithm results in string $t$. It can be proven that this string $s$ always exists and is unique.
The first line of input consists of a single integer $n$ ($1 \le n \le 100$) — the length of the string $t$. The second line of input consists of the string $t$. The length of $t$ is $n$, and it consists only of lowercase Latin letters.
Print a string $s$ such that the above algorithm results in $t$.
[ "10\nrocesfedoc\n", "16\nplmaetwoxesisiht\n", "1\nz\n" ]
[ "codeforces\n", "thisisexampletwo\n", "z\n" ]
The first example is described in the problem statement.
0
[ { "input": "10\nrocesfedoc", "output": "codeforces" }, { "input": "16\nplmaetwoxesisiht", "output": "thisisexampletwo" }, { "input": "1\nz", "output": "z" }, { "input": "2\nir", "output": "ri" }, { "input": "3\nilj", "output": "jli" }, { "input": "4\njfyy", "output": "yyjf" }, { "input": "6\nkrdych", "output": "hcyrkd" }, { "input": "60\nfnebsopcvmlaoecpzmakqigyuutueuozjxutlwwiochekmhjgwxsgfbcrpqj", "output": "jqprcbfgsxwgjhmkehcoiwwltuxjzokamzpalobnfespcvmoecqigyuutueu" }, { "input": "64\nhnlzzhrvqnldswxfsrowfhmyzbxtyoxhogudasgywxycyhzgiseerbislcncvnwy", "output": "ywnvcnclsibreesigzhycyxwygsadugofxwsdlnqzlhnzhrvsrowfhmyzbxtyoxh" }, { "input": "97\nqnqrmdhmbubaijtwsecbidqouhlecladwgwcuxbigckrfzasnbfbslukoayhcgquuacygakhxoubibxtqkpyyhzjipylujgrc", "output": "crgjulypijzhyypkqtxbibuoxhkagycauuqgchyaokulsbfbnsazfrkcgibxucwgwdalcelhuoqdibceswtjiabubmhdmrqnq" }, { "input": "100\nedykhvzcntljuuoqghptioetqnfllwekzohiuaxelgecabvsbibgqodqxvyfkbyjwtgbyhvssntinkwsinwsmalusiwnjmtcoovf", "output": "fvooctmjnwisulamswniswknitnssvhybgtwjybkfyvxqdoqgbqteoitnczvkyedhljuuoqghptnfllwekzohiuaxelgecabvsbi" }, { "input": "96\nqtbcksuvxonzbkokhqlgkrvimzqmqnrvqlihrmksldyydacbtckfphenxszcnzhfjmpeykrvshgiboivkvabhrpphgavvprz", "output": "zrpvvaghpprhbavkviobighsvrkyepmjfhznczsxnehpfkctvrnqmqzmkokbvuctqbksxonzhqlgkrviqlihrmksldyydacb" }, { "input": "90\nmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmm", "output": "mmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmm" }, { "input": "89\nwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwww", "output": "wwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwww" }, { "input": "99\nqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqq", "output": "qqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqq" }, { "input": "100\noooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo", "output": "oooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo" }, { "input": "60\nwwwwwxwwwwwwfhwwhwwwwwwawwwwwwwwwwwwwnwwwwwwwwwwwwwwwwwwwwww", "output": "wwwwwwwwwwwwwwwwwwwwwwnwwwwwwwwwwhwwwxwwwwwwwwwfhwwwwawwwwww" }, { "input": "90\ncccchccccccccccccccccccccccccccwcccccccccgcccccchccccccccccccccccccccccxccccccncccccccuccc", "output": "cccucccccccnccccccxcccccccccccccccccccccchccccccccccccccccccccccchccccccccccwcccccccccgccc" }, { "input": "97\nfwffffffffffffffffffffffffrffffffffffffffzfffffffffffffffftfcfffffffqffffffffffffffffffffffyfffff", "output": "fffffyffffffffffffffffffffffqfffffffcftffffffffffffffffzffffffffffffffrffffffffffffffffffffffffwf" }, { "input": "100\ndjjjjjjjjjjgjjjjjjjjjjjjjjsvjjjjjjjjjjmjjjjjjjjjjjjjajjjjjjajjjjjjrjjjjjjjjjjjjrjjtjjjjjjjjjjjjjojjj", "output": "jjjojjjjjjjjjjjjjtjjrjjjjjjjjjjjjrjjjjjjajjjjjjajjjjjjjjjjjjjjdjjjgjjjjjjjjjsvjjjjjjjjjjmjjjjjjjjjjj" } ]
1,624,850,637
2,147,483,647
Python 3
OK
TESTS
20
62
0
n = int(input()) str = list(input()) i = 1 while (i <= n): if (n%i == 0): str = list(reversed(str[:i:])) + str[i::] i += 1 print(''.join(str))
Title: Reversing Encryption Time Limit: None seconds Memory Limit: None megabytes Problem Description: A string $s$ of length $n$ can be encrypted by the following algorithm: - iterate over all divisors of $n$ in decreasing order (i.e. from $n$ to $1$), - for each divisor $d$, reverse the substring $s[1 \dots d]$ (i.e. the substring which starts at position $1$ and ends at position $d$). For example, the above algorithm applied to the string $s$="codeforces" leads to the following changes: "codeforces" $\to$ "secrofedoc" $\to$ "orcesfedoc" $\to$ "rocesfedoc" $\to$ "rocesfedoc" (obviously, the last reverse operation doesn't change the string because $d=1$). You are given the encrypted string $t$. Your task is to decrypt this string, i.e., to find a string $s$ such that the above algorithm results in string $t$. It can be proven that this string $s$ always exists and is unique. Input Specification: The first line of input consists of a single integer $n$ ($1 \le n \le 100$) — the length of the string $t$. The second line of input consists of the string $t$. The length of $t$ is $n$, and it consists only of lowercase Latin letters. Output Specification: Print a string $s$ such that the above algorithm results in $t$. Demo Input: ['10\nrocesfedoc\n', '16\nplmaetwoxesisiht\n', '1\nz\n'] Demo Output: ['codeforces\n', 'thisisexampletwo\n', 'z\n'] Note: The first example is described in the problem statement.
```python n = int(input()) str = list(input()) i = 1 while (i <= n): if (n%i == 0): str = list(reversed(str[:i:])) + str[i::] i += 1 print(''.join(str)) ```
3
122
A
Lucky Division
PROGRAMMING
1,000
[ "brute force", "number theory" ]
null
null
Petya loves lucky numbers. Everybody knows that lucky numbers are positive integers whose decimal representation contains only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya calls a number almost lucky if it could be evenly divided by some lucky number. Help him find out if the given number *n* is almost lucky.
The single line contains an integer *n* (1<=≤<=*n*<=≤<=1000) — the number that needs to be checked.
In the only line print "YES" (without the quotes), if number *n* is almost lucky. Otherwise, print "NO" (without the quotes).
[ "47\n", "16\n", "78\n" ]
[ "YES\n", "YES\n", "NO\n" ]
Note that all lucky numbers are almost lucky as any number is evenly divisible by itself. In the first sample 47 is a lucky number. In the second sample 16 is divisible by 4.
500
[ { "input": "47", "output": "YES" }, { "input": "16", "output": "YES" }, { "input": "78", "output": "NO" }, { "input": "48", "output": "YES" }, { "input": "100", "output": "YES" }, { "input": "107", "output": "NO" }, { "input": "77", "output": "YES" }, { "input": "477", "output": "YES" }, { "input": "480", "output": "YES" }, { "input": "1", "output": "NO" }, { "input": "3", "output": "NO" }, { "input": "4", "output": "YES" }, { "input": "49", "output": "YES" }, { "input": "56", "output": "YES" }, { "input": "124", "output": "YES" }, { "input": "1000", "output": "YES" }, { "input": "999", "output": "NO" }, { "input": "298", "output": "NO" }, { "input": "274", "output": "NO" }, { "input": "998", "output": "NO" }, { "input": "42", "output": "YES" }, { "input": "788", "output": "YES" }, { "input": "70", "output": "YES" }, { "input": "444", "output": "YES" }, { "input": "777", "output": "YES" }, { "input": "799", "output": "YES" }, { "input": "25", "output": "NO" }, { "input": "882", "output": "YES" }, { "input": "88", "output": "YES" }, { "input": "11", "output": "NO" }, { "input": "2", "output": "NO" }, { "input": "7", "output": "YES" }, { "input": "8", "output": "YES" }, { "input": "94", "output": "YES" }, { "input": "477", "output": "YES" }, { "input": "141", "output": "YES" } ]
1,688,740,396
2,147,483,647
PyPy 3-64
RUNTIME_ERROR
TESTS
0
154
2,867,200
import math n=input() a=[int(i) for i in input().split()] c1=a.count(1) c2=a.count(2) c3=a.count(3) c4=a.count(4) mn13=min(c1,c3) c1-=mn13;c3-=mn13 mn12=min(c1//2+c1%2,c2) c1-=(mn12*2);c2-=mn12 ans=c4+c3+mn13+mn12+math.ceil(c1/4)+math.ceil(c2/2) print(ans)
Title: Lucky Division Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya loves lucky numbers. Everybody knows that lucky numbers are positive integers whose decimal representation contains only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya calls a number almost lucky if it could be evenly divided by some lucky number. Help him find out if the given number *n* is almost lucky. Input Specification: The single line contains an integer *n* (1<=≤<=*n*<=≤<=1000) — the number that needs to be checked. Output Specification: In the only line print "YES" (without the quotes), if number *n* is almost lucky. Otherwise, print "NO" (without the quotes). Demo Input: ['47\n', '16\n', '78\n'] Demo Output: ['YES\n', 'YES\n', 'NO\n'] Note: Note that all lucky numbers are almost lucky as any number is evenly divisible by itself. In the first sample 47 is a lucky number. In the second sample 16 is divisible by 4.
```python import math n=input() a=[int(i) for i in input().split()] c1=a.count(1) c2=a.count(2) c3=a.count(3) c4=a.count(4) mn13=min(c1,c3) c1-=mn13;c3-=mn13 mn12=min(c1//2+c1%2,c2) c1-=(mn12*2);c2-=mn12 ans=c4+c3+mn13+mn12+math.ceil(c1/4)+math.ceil(c2/2) print(ans) ```
-1
279
B
Books
PROGRAMMING
1,400
[ "binary search", "brute force", "implementation", "two pointers" ]
null
null
When Valera has got some free time, he goes to the library to read some books. Today he's got *t* free minutes to read. That's why Valera took *n* books in the library and for each book he estimated the time he is going to need to read it. Let's number the books by integers from 1 to *n*. Valera needs *a**i* minutes to read the *i*-th book. Valera decided to choose an arbitrary book with number *i* and read the books one by one, starting from this book. In other words, he will first read book number *i*, then book number *i*<=+<=1, then book number *i*<=+<=2 and so on. He continues the process until he either runs out of the free time or finishes reading the *n*-th book. Valera reads each book up to the end, that is, he doesn't start reading the book if he doesn't have enough free time to finish reading it. Print the maximum number of books Valera can read.
The first line contains two integers *n* and *t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*t*<=≤<=109) — the number of books and the number of free minutes Valera's got. The second line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=104), where number *a**i* shows the number of minutes that the boy needs to read the *i*-th book.
Print a single integer — the maximum number of books Valera can read.
[ "4 5\n3 1 2 1\n", "3 3\n2 2 3\n" ]
[ "3\n", "1\n" ]
none
1,000
[ { "input": "4 5\n3 1 2 1", "output": "3" }, { "input": "3 3\n2 2 3", "output": "1" }, { "input": "1 3\n5", "output": "0" }, { "input": "1 10\n4", "output": "1" }, { "input": "2 10\n6 4", "output": "2" }, { "input": "6 10\n2 3 4 2 1 1", "output": "4" }, { "input": "7 13\n6 8 14 9 4 11 10", "output": "2" }, { "input": "10 15\n10 9 1 1 5 10 5 3 7 2", "output": "3" }, { "input": "20 30\n8 1 2 6 9 4 1 9 9 10 4 7 8 9 5 7 1 8 7 4", "output": "6" }, { "input": "30 60\n16 13 22 38 13 35 17 17 20 38 12 19 9 22 20 3 35 34 34 21 35 40 22 3 27 19 12 4 8 19", "output": "4" }, { "input": "100 100\n75 92 18 6 81 67 7 92 100 65 82 32 50 67 85 31 80 91 84 63 39 52 92 81 1 98 24 12 43 48 17 86 51 72 48 95 45 50 12 66 19 79 49 89 34 1 97 75 20 33 96 27 42 23 73 71 93 1 85 19 66 14 17 61 20 39 36 33 42 61 56 64 23 91 80 99 40 74 13 18 98 85 74 39 62 84 46 74 50 23 38 11 79 14 9 25 66 100 25 52", "output": "3" }, { "input": "10 1\n4418 7528 8170 1736 1317 3205 8183 4995 8039 4708", "output": "0" }, { "input": "50 2\n124 214 63 73 996 760 38 571 451 300 970 1 706 937 837 494 619 88 851 411 957 990 842 613 821 649 627 34 693 678 734 116 816 985 705 940 499 493 922 967 854 439 112 644 961 438 189 572 655 550", "output": "1" } ]
1,683,008,081
2,147,483,647
PyPy 3-64
OK
TESTS
38
248
13,721,600
n,t = list(map(int,input().split())) nums = list(map(int,input().split())) prefix_sum = [nums[0]]*n for i in range(1,n): prefix_sum[i] = prefix_sum[i-1]+nums[i] # print() prefix_sum = [0] +prefix_sum # print(prefix_sum) def binary_search(i): save = prefix_sum[i] i = i-1 j=len(nums) # print(save,i) while i+1<j: mid = (i+j)//2 # print(mid) if prefix_sum[mid+1]>save+t: j = mid else: # print(mid," ## ",j) i = mid # print(i," ###") return i ans = 0 # binary_search(0) for i in range(len(nums)): start = i end = binary_search(i) # print(start,end) ans = max(ans,end-start+1) print(ans)
Title: Books Time Limit: None seconds Memory Limit: None megabytes Problem Description: When Valera has got some free time, he goes to the library to read some books. Today he's got *t* free minutes to read. That's why Valera took *n* books in the library and for each book he estimated the time he is going to need to read it. Let's number the books by integers from 1 to *n*. Valera needs *a**i* minutes to read the *i*-th book. Valera decided to choose an arbitrary book with number *i* and read the books one by one, starting from this book. In other words, he will first read book number *i*, then book number *i*<=+<=1, then book number *i*<=+<=2 and so on. He continues the process until he either runs out of the free time or finishes reading the *n*-th book. Valera reads each book up to the end, that is, he doesn't start reading the book if he doesn't have enough free time to finish reading it. Print the maximum number of books Valera can read. Input Specification: The first line contains two integers *n* and *t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*t*<=≤<=109) — the number of books and the number of free minutes Valera's got. The second line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=104), where number *a**i* shows the number of minutes that the boy needs to read the *i*-th book. Output Specification: Print a single integer — the maximum number of books Valera can read. Demo Input: ['4 5\n3 1 2 1\n', '3 3\n2 2 3\n'] Demo Output: ['3\n', '1\n'] Note: none
```python n,t = list(map(int,input().split())) nums = list(map(int,input().split())) prefix_sum = [nums[0]]*n for i in range(1,n): prefix_sum[i] = prefix_sum[i-1]+nums[i] # print() prefix_sum = [0] +prefix_sum # print(prefix_sum) def binary_search(i): save = prefix_sum[i] i = i-1 j=len(nums) # print(save,i) while i+1<j: mid = (i+j)//2 # print(mid) if prefix_sum[mid+1]>save+t: j = mid else: # print(mid," ## ",j) i = mid # print(i," ###") return i ans = 0 # binary_search(0) for i in range(len(nums)): start = i end = binary_search(i) # print(start,end) ans = max(ans,end-start+1) print(ans) ```
3
765
A
Neverending competitions
PROGRAMMING
900
[ "implementation", "math" ]
null
null
There are literally dozens of snooker competitions held each year, and team Jinotega tries to attend them all (for some reason they prefer name "snookah")! When a competition takes place somewhere far from their hometown, Ivan, Artsem and Konstantin take a flight to the contest and back. Jinotega's best friends, team Base have found a list of their itinerary receipts with information about departure and arrival airports. Now they wonder, where is Jinotega now: at home or at some competition far away? They know that: - this list contains all Jinotega's flights in this year (in arbitrary order), - Jinotega has only flown from his hometown to a snooker contest and back, - after each competition Jinotega flies back home (though they may attend a competition in one place several times), - and finally, at the beginning of the year Jinotega was at home. Please help them to determine Jinotega's location!
In the first line of input there is a single integer *n*: the number of Jinotega's flights (1<=≤<=*n*<=≤<=100). In the second line there is a string of 3 capital Latin letters: the name of Jinotega's home airport. In the next *n* lines there is flight information, one flight per line, in form "XXX-&gt;YYY", where "XXX" is the name of departure airport "YYY" is the name of arrival airport. Exactly one of these airports is Jinotega's home airport. It is guaranteed that flights information is consistent with the knowledge of Jinotega's friends, which is described in the main part of the statement.
If Jinotega is now at home, print "home" (without quotes), otherwise print "contest".
[ "4\nSVO\nSVO-&gt;CDG\nLHR-&gt;SVO\nSVO-&gt;LHR\nCDG-&gt;SVO\n", "3\nSVO\nSVO-&gt;HKT\nHKT-&gt;SVO\nSVO-&gt;RAP\n" ]
[ "home\n", "contest\n" ]
In the first sample Jinotega might first fly from SVO to CDG and back, and then from SVO to LHR and back, so now they should be at home. In the second sample Jinotega must now be at RAP because a flight from RAP back to SVO is not on the list.
500
[ { "input": "4\nSVO\nSVO->CDG\nLHR->SVO\nSVO->LHR\nCDG->SVO", "output": "home" }, { "input": "3\nSVO\nSVO->HKT\nHKT->SVO\nSVO->RAP", "output": "contest" }, { "input": "1\nESJ\nESJ->TSJ", "output": "contest" }, { "input": "2\nXMR\nFAJ->XMR\nXMR->FAJ", "output": "home" }, { "input": "3\nZIZ\nDWJ->ZIZ\nZIZ->DWJ\nZIZ->DWJ", "output": "contest" }, { "input": "10\nPVO\nDMN->PVO\nDMN->PVO\nPVO->DMN\nDMN->PVO\nPVO->DMN\nPVO->DMN\nPVO->DMN\nDMN->PVO\nPVO->DMN\nDMN->PVO", "output": "home" }, { "input": "11\nIAU\nIAU->RUQ\nIAU->RUQ\nRUQ->IAU\nRUQ->IAU\nIAU->RUQ\nRUQ->IAU\nIAU->RUQ\nRUQ->IAU\nIAU->RUQ\nIAU->RUQ\nRUQ->IAU", "output": "contest" }, { "input": "10\nHPN\nDFI->HPN\nHPN->KAB\nHPN->DFI\nVSO->HPN\nHPN->KZX\nHPN->VSO\nKZX->HPN\nLDW->HPN\nKAB->HPN\nHPN->LDW", "output": "home" }, { "input": "11\nFGH\nFGH->BRZ\nUBK->FGH\nQRE->FGH\nFGH->KQK\nFGH->QRE\nKQK->FGH\nFGH->UBK\nBRZ->FGH\nFGH->ALX\nALX->FGH\nFGH->KQK", "output": "contest" }, { "input": "50\nPFH\nJFV->PFH\nBVP->PFH\nPFH->BVP\nPFH->JFV\nPFH->ETQ\nPFH->LQJ\nZTO->PFH\nPFH->BVP\nPFH->RXO\nPFH->ZTO\nHWL->PFH\nPFH->HIV\nPFH->AFP\nPFH->HWL\nOBB->PFH\nHIV->PFH\nPFH->LSR\nAFP->PFH\nLQJ->PFH\nHWL->PFH\nETQ->PFH\nPFH->HWL\nLSR->PFH\nWBR->PFH\nBNZ->PFH\nHQR->PFH\nZTO->PFH\nPFH->WBR\nPFH->BYJ\nRXO->PFH\nFHZ->PFH\nFHZ->PFH\nPFN->PFH\nPFH->GMB\nPFH->JFV\nJFV->PFH\nGNZ->PFH\nPFH->BNZ\nPFH->GNZ\nPFH->HQR\nBYJ->PFH\nGMB->PFH\nPFH->FHZ\nPFH->FHZ\nPFH->ZTO\nPFH->UGD\nBVP->PFH\nUGD->PFH\nPFH->PFN\nPFH->OBB", "output": "home" }, { "input": "1\nAAK\nAAK->ABA", "output": "contest" }, { "input": "1\nXYZ\nXYZ->XYR", "output": "contest" } ]
1,674,311,606
2,147,483,647
Python 3
OK
TESTS
23
46
0
number = int(input()) home = input() total_out = 0 total_in = 0 for _ in range(number): if input()[-3:] == home: total_in += 1 else: total_out += 1 print(('contest', 'home')[total_in == total_out])
Title: Neverending competitions Time Limit: None seconds Memory Limit: None megabytes Problem Description: There are literally dozens of snooker competitions held each year, and team Jinotega tries to attend them all (for some reason they prefer name "snookah")! When a competition takes place somewhere far from their hometown, Ivan, Artsem and Konstantin take a flight to the contest and back. Jinotega's best friends, team Base have found a list of their itinerary receipts with information about departure and arrival airports. Now they wonder, where is Jinotega now: at home or at some competition far away? They know that: - this list contains all Jinotega's flights in this year (in arbitrary order), - Jinotega has only flown from his hometown to a snooker contest and back, - after each competition Jinotega flies back home (though they may attend a competition in one place several times), - and finally, at the beginning of the year Jinotega was at home. Please help them to determine Jinotega's location! Input Specification: In the first line of input there is a single integer *n*: the number of Jinotega's flights (1<=≤<=*n*<=≤<=100). In the second line there is a string of 3 capital Latin letters: the name of Jinotega's home airport. In the next *n* lines there is flight information, one flight per line, in form "XXX-&gt;YYY", where "XXX" is the name of departure airport "YYY" is the name of arrival airport. Exactly one of these airports is Jinotega's home airport. It is guaranteed that flights information is consistent with the knowledge of Jinotega's friends, which is described in the main part of the statement. Output Specification: If Jinotega is now at home, print "home" (without quotes), otherwise print "contest". Demo Input: ['4\nSVO\nSVO-&gt;CDG\nLHR-&gt;SVO\nSVO-&gt;LHR\nCDG-&gt;SVO\n', '3\nSVO\nSVO-&gt;HKT\nHKT-&gt;SVO\nSVO-&gt;RAP\n'] Demo Output: ['home\n', 'contest\n'] Note: In the first sample Jinotega might first fly from SVO to CDG and back, and then from SVO to LHR and back, so now they should be at home. In the second sample Jinotega must now be at RAP because a flight from RAP back to SVO is not on the list.
```python number = int(input()) home = input() total_out = 0 total_in = 0 for _ in range(number): if input()[-3:] == home: total_in += 1 else: total_out += 1 print(('contest', 'home')[total_in == total_out]) ```
3
384
A
Coder
PROGRAMMING
800
[ "implementation" ]
null
null
Iahub likes chess very much. He even invented a new chess piece named Coder. A Coder can move (and attack) one square horizontally or vertically. More precisely, if the Coder is located at position (*x*,<=*y*), he can move to (or attack) positions (*x*<=+<=1,<=*y*), (*x*–1,<=*y*), (*x*,<=*y*<=+<=1) and (*x*,<=*y*–1). Iahub wants to know how many Coders can be placed on an *n*<=×<=*n* chessboard, so that no Coder attacks any other Coder.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=1000).
On the first line print an integer, the maximum number of Coders that can be placed on the chessboard. On each of the next *n* lines print *n* characters, describing the configuration of the Coders. For an empty cell print an '.', and for a Coder print a 'C'. If there are multiple correct answers, you can print any.
[ "2\n" ]
[ "2\nC.\n.C\n" ]
none
500
[ { "input": "2", "output": "2\nC.\n.C" }, { "input": "3", "output": "5\nC.C\n.C.\nC.C" }, { "input": "4", "output": "8\nC.C.\n.C.C\nC.C.\n.C.C" }, { "input": "10", "output": "50\nC.C.C.C.C.\n.C.C.C.C.C\nC.C.C.C.C.\n.C.C.C.C.C\nC.C.C.C.C.\n.C.C.C.C.C\nC.C.C.C.C.\n.C.C.C.C.C\nC.C.C.C.C.\n.C.C.C.C.C" }, { "input": "15", "output": "113\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C" }, { "input": "100", "output": "5000\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.\n.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.\n.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C..." }, { "input": "101", "output": "5101\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C\n.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C..." }, { "input": "500", "output": "125000\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.\n...." }, { "input": "501", "output": "125501\nC.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C.C\n..." }, { "input": "755", "output": 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1,390,272,164
2,147,483,647
Python 3
OK
TESTS
15
77
3,788,800
# -*- coding: utf-8 -*- n = int(input()) if n % 2 == 0: print(n*n // 2) print('\n'.join([('C.' if i % 2 == 0 else '.C') * (n//2) for i in range(n)])) else: p = n // 2 q = (n+1) // 2 print(p*p + q*q) print('\n'.join([('C.' * p + 'C') if i % 2 == 0 else ('.C' * p + '.') for i in range(n)]))
Title: Coder Time Limit: None seconds Memory Limit: None megabytes Problem Description: Iahub likes chess very much. He even invented a new chess piece named Coder. A Coder can move (and attack) one square horizontally or vertically. More precisely, if the Coder is located at position (*x*,<=*y*), he can move to (or attack) positions (*x*<=+<=1,<=*y*), (*x*–1,<=*y*), (*x*,<=*y*<=+<=1) and (*x*,<=*y*–1). Iahub wants to know how many Coders can be placed on an *n*<=×<=*n* chessboard, so that no Coder attacks any other Coder. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=1000). Output Specification: On the first line print an integer, the maximum number of Coders that can be placed on the chessboard. On each of the next *n* lines print *n* characters, describing the configuration of the Coders. For an empty cell print an '.', and for a Coder print a 'C'. If there are multiple correct answers, you can print any. Demo Input: ['2\n'] Demo Output: ['2\nC.\n.C\n'] Note: none
```python # -*- coding: utf-8 -*- n = int(input()) if n % 2 == 0: print(n*n // 2) print('\n'.join([('C.' if i % 2 == 0 else '.C') * (n//2) for i in range(n)])) else: p = n // 2 q = (n+1) // 2 print(p*p + q*q) print('\n'.join([('C.' * p + 'C') if i % 2 == 0 else ('.C' * p + '.') for i in range(n)])) ```
3
94
A
Restoring Password
PROGRAMMING
900
[ "implementation", "strings" ]
A. Restoring Password
2
256
Igor K. always used to trust his favorite Kashpirovsky Antivirus. That is why he didn't hesitate to download the link one of his groupmates sent him via QIP Infinium. The link was said to contain "some real funny stuff about swine influenza". The antivirus had no objections and Igor K. run the flash application he had downloaded. Immediately his QIP Infinium said: "invalid login/password". Igor K. entered the ISQ from his additional account and looked at the info of his main one. His name and surname changed to "H1N1" and "Infected" correspondingly, and the "Additional Information" field contained a strange-looking binary code 80 characters in length, consisting of zeroes and ones. "I've been hacked" — thought Igor K. and run the Internet Exploiter browser to quickly type his favourite search engine's address. Soon he learned that it really was a virus that changed ISQ users' passwords. Fortunately, he soon found out that the binary code was actually the encrypted password where each group of 10 characters stood for one decimal digit. Accordingly, the original password consisted of 8 decimal digits. Help Igor K. restore his ISQ account by the encrypted password and encryption specification.
The input data contains 11 lines. The first line represents the binary code 80 characters in length. That is the code written in Igor K.'s ISQ account's info. Next 10 lines contain pairwise distinct binary codes 10 characters in length, corresponding to numbers 0, 1, ..., 9.
Print one line containing 8 characters — The password to Igor K.'s ISQ account. It is guaranteed that the solution exists.
[ "01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110\n", "10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000\n" ]
[ "12345678\n", "30234919\n" ]
none
500
[ { "input": "01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110", "output": "12345678" }, { "input": "10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000", "output": "30234919" }, { "input": "00010101101110110101100110101100010101100010101111000101011010011010110010000011\n0101010110\n0001001101\n1001101011\n0000100011\n0010101111\n1110110101\n0001010110\n0110111000\n0000111110\n0010000011", "output": "65264629" }, { "input": "10100100010010010011011001101000100100110110011010011001101011000100110110011010\n1111110011\n1001000111\n1001000100\n1100010011\n0110011010\n0010000001\n1110101110\n0010000110\n0010010011\n1010010001", "output": "98484434" }, { "input": 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"10101110000011010110101011100000101101000110100000101101101101110101000011110010\n0110100000\n1011011011\n0011110010\n0001110110\n0010110100\n1100010010\n0001101011\n1010111000\n0011010110\n0111010100", "output": "78740192" }, { "input": "11000101011100100111010000010001000001001100101100000011000000001100000101011010\n1100010101\n1111101011\n0101011010\n0100000100\n1000110111\n1100100111\n1100101100\n0111001000\n0000110000\n0110011111", "output": "05336882" }, { "input": "11110100010000101110010110001000001011100101100010110011011011111110001100110110\n0101100010\n0100010001\n0000101110\n1100110110\n0101000101\n0011001011\n1111010001\n1000110010\n1111111000\n1010011111", "output": "62020383" }, { "input": "00011001111110000011101011010001010111100110100101000110011111011001100000001100\n0111001101\n0101011110\n0001100111\n1101011111\n1110000011\n0000001100\n0111010001\n1101100110\n1010110100\n0110100101", "output": "24819275" }, { "input": "10111110010011111001001111100101010111010011111001001110101000111110011001111101\n0011111001\n0101011101\n0100001010\n0001110010\n1001111101\n0011101010\n1111001001\n1100100001\n1001101000\n1011111001", "output": "90010504" }, { "input": "01111101111100101010001001011110111001110111110111011111011110110111111011011111\n1111110111\n0010000101\n0110000100\n0111111011\n1011100111\n1100101010\n1011011111\n1100010001\n0111110111\n0010010111", "output": "85948866" }, { "input": "01111100000111110000110010111001111100001001101010110010111010001000101001101010\n0100010101\n1011110101\n1010100100\n1010000001\n1001101010\n0101100110\n1000100010\n0111110000\n1100101110\n0110010110", "output": "77874864" }, { "input": "11100011010000000010011110010111001011111001000111000000001000000000100111100101\n0000000010\n1110001101\n0011010101\n0111100101\n1001000111\n1101001111\n0111010110\n1100101111\n0110000000\n1101101011", "output": "10374003" }, { "input": "01111011100111101110011001000110001111101000111110100100100001011111001011100010\n0110010100\n1100010001\n0111101110\n1001001000\n1010011011\n1000111110\n0010110101\n1011100010\n0101111100\n0110010001", "output": "22955387" }, { "input": "11011010001100000011000100110011010101000110011110110000001100111100001000011111\n0000100010\n1000011111\n1101101000\n0110011110\n0011110000\n1100000011\n0010001100\n0101101000\n0001001100\n1101010100", "output": "25893541" }, { "input": "01011001011111010010101111011001000011001100011101101111011011010011101011110110\n0100001100\n0101100101\n1111111011\n1111010010\n1111101100\n1100011101\n1011000011\n1101001110\n1011110110\n0110001010", "output": "13805878" }, { "input": "11110011011000111111001100111110001111111100000010111100110100110011111111001101\n1111001101\n1001101010\n1100110010\n0011001111\n0001011110\n1000110011\n1000111111\n0110001010\n1001011101\n1100000010", "output": "06369030" }, { "input": "01110011110010000011011001011000001000010110010110011001100001100110001100101000\n0000100001\n0110011000\n1010000010\n1110011101\n0111001111\n1100101000\n0010000011\n0110010000\n1100100101\n0110010110", "output": "46909115" }, { "input": "00001011001111110111111111011111111101110101110100010111010010100101100001010110\n1111110111\n0001010110\n0111011011\n0111000001\n1010010110\n0101110100\n0001000101\n0000111000\n0110100001\n0000101100", "output": "90005541" } ]
1,688,485,869
2,147,483,647
PyPy 3-64
OK
TESTS
50
124
0
s=input() ss=[input() for i in range(10)] for i in range(0,80,10): print(ss.index(s[i:i+10]),end='')
Title: Restoring Password Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Igor K. always used to trust his favorite Kashpirovsky Antivirus. That is why he didn't hesitate to download the link one of his groupmates sent him via QIP Infinium. The link was said to contain "some real funny stuff about swine influenza". The antivirus had no objections and Igor K. run the flash application he had downloaded. Immediately his QIP Infinium said: "invalid login/password". Igor K. entered the ISQ from his additional account and looked at the info of his main one. His name and surname changed to "H1N1" and "Infected" correspondingly, and the "Additional Information" field contained a strange-looking binary code 80 characters in length, consisting of zeroes and ones. "I've been hacked" — thought Igor K. and run the Internet Exploiter browser to quickly type his favourite search engine's address. Soon he learned that it really was a virus that changed ISQ users' passwords. Fortunately, he soon found out that the binary code was actually the encrypted password where each group of 10 characters stood for one decimal digit. Accordingly, the original password consisted of 8 decimal digits. Help Igor K. restore his ISQ account by the encrypted password and encryption specification. Input Specification: The input data contains 11 lines. The first line represents the binary code 80 characters in length. That is the code written in Igor K.'s ISQ account's info. Next 10 lines contain pairwise distinct binary codes 10 characters in length, corresponding to numbers 0, 1, ..., 9. Output Specification: Print one line containing 8 characters — The password to Igor K.'s ISQ account. It is guaranteed that the solution exists. Demo Input: ['01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110\n', '10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000\n'] Demo Output: ['12345678\n', '30234919\n'] Note: none
```python s=input() ss=[input() for i in range(10)] for i in range(0,80,10): print(ss.index(s[i:i+10]),end='') ```
3.969
94
A
Restoring Password
PROGRAMMING
900
[ "implementation", "strings" ]
A. Restoring Password
2
256
Igor K. always used to trust his favorite Kashpirovsky Antivirus. That is why he didn't hesitate to download the link one of his groupmates sent him via QIP Infinium. The link was said to contain "some real funny stuff about swine influenza". The antivirus had no objections and Igor K. run the flash application he had downloaded. Immediately his QIP Infinium said: "invalid login/password". Igor K. entered the ISQ from his additional account and looked at the info of his main one. His name and surname changed to "H1N1" and "Infected" correspondingly, and the "Additional Information" field contained a strange-looking binary code 80 characters in length, consisting of zeroes and ones. "I've been hacked" — thought Igor K. and run the Internet Exploiter browser to quickly type his favourite search engine's address. Soon he learned that it really was a virus that changed ISQ users' passwords. Fortunately, he soon found out that the binary code was actually the encrypted password where each group of 10 characters stood for one decimal digit. Accordingly, the original password consisted of 8 decimal digits. Help Igor K. restore his ISQ account by the encrypted password and encryption specification.
The input data contains 11 lines. The first line represents the binary code 80 characters in length. That is the code written in Igor K.'s ISQ account's info. Next 10 lines contain pairwise distinct binary codes 10 characters in length, corresponding to numbers 0, 1, ..., 9.
Print one line containing 8 characters — The password to Igor K.'s ISQ account. It is guaranteed that the solution exists.
[ "01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110\n", "10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000\n" ]
[ "12345678\n", "30234919\n" ]
none
500
[ { "input": "01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110", "output": "12345678" }, { "input": "10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000", "output": "30234919" }, { "input": "00010101101110110101100110101100010101100010101111000101011010011010110010000011\n0101010110\n0001001101\n1001101011\n0000100011\n0010101111\n1110110101\n0001010110\n0110111000\n0000111110\n0010000011", "output": "65264629" }, { "input": "10100100010010010011011001101000100100110110011010011001101011000100110110011010\n1111110011\n1001000111\n1001000100\n1100010011\n0110011010\n0010000001\n1110101110\n0010000110\n0010010011\n1010010001", "output": "98484434" }, { "input": "00101100011111010001001000000110110000000110010011001111111010110010001011000000\n0010000001\n0110010011\n0010000010\n1011001000\n0011111110\n0110001000\n1111010001\n1011000000\n0000100110\n0010110001", "output": "96071437" }, { "input": "10001110111110000001000010001010001110110000100010100010111101101101010000100010\n0000010110\n1101010111\n1000101111\n0001011110\n0011110101\n0101100100\n0110110101\n0000100010\n1000111011\n1110000001", "output": "89787267" }, { "input": "10010100011001010001010101001101010100110100111011001010111100011001000010100000\n0011100000\n1001100100\n0001100100\n0010100000\n0101010011\n0010101110\n0010101111\n0100111011\n1001010001\n1111111110", "output": "88447623" }, { "input": "01101100111000000101011011001110000001011111111000111111100001011010001001011001\n1000000101\n0101101000\n0101110101\n1101011110\n0000101100\n1111111000\n0001001101\n0110111011\n0110110011\n1001011001", "output": "80805519" }, { "input": "11100011000100010110010011101010101010011110001100011010111110011000011010110111\n1110001100\n0110101111\n0100111010\n0101000000\n1001100001\n1010101001\n0000100010\n1010110111\n1100011100\n0100010110", "output": "09250147" }, { "input": "10000110110000010100000010001000111101110110101011110111000100001101000000100010\n0000010100\n0000110001\n0110101011\n1101110001\n1000011011\n0000110100\n0011110111\n1000110010\n0000100010\n0000011011", "output": "40862358" }, { "input": "01000000010000000110100101000110110000100100000001101100001000011111111001010001\n1011000010\n1111101010\n0111110011\n0000000110\n0000001001\n0001111111\n0110010010\n0100000001\n1011001000\n1001010001", "output": "73907059" }, { "input": "01111000111110011001110101110011110000111110010001101100110110100111101011001101\n1110010001\n1001100000\n1100001000\n1010011110\n1011001101\n0111100011\n1101011100\n1110011001\n1111000011\n0010000101", "output": "57680434" }, { "input": "01001100101000100010001011110001000101001001100010010000001001001100101001011111\n1001011111\n1110010111\n0111101011\n1000100010\n0011100101\n0100000010\n0010111100\n0100010100\n1001100010\n0100110010", "output": "93678590" }, { "input": "01110111110000111011101010110110101011010100110111000011101101110101011101001000\n0110000101\n1010101101\n1101010111\n1101011100\n0100110111\n0111011111\n1100011001\n0111010101\n0000111011\n1101001000", "output": "58114879" }, { "input": "11101001111100110101110011010100110011011110100111010110110011000111000011001101\n1100011100\n1100110101\n1011101000\n0011011110\n0011001101\n0100010001\n1110100111\n1010101100\n1110110100\n0101101100", "output": "61146904" }, { "input": "10101010001011010001001001011000100101100001011011101010101110101010001010101000\n0010110101\n1010011010\n1010101000\n1011010001\n1010101011\n0010010110\n0110100010\n1010100101\n0001011011\n0110100001", "output": "23558422" }, { "input": "11110101001100010000110100001110101011011111010100110001000001001010001001101111\n0101101100\n1001101111\n1010101101\n0100101000\n1111110000\n0101010010\n1100010000\n1111010100\n1101000011\n1011111111", "output": "76827631" }, { "input": "10001100110000110111100011001101111110110011110101000011011100001101110000110111\n0011110101\n0101100011\n1000110011\n1011011001\n0111111011\n0101111011\n0000110111\n0100001110\n1000000111\n0110110111", "output": "26240666" }, { "input": "10000100010000111101100100111101111011101000001001100001000110000010010000111101\n1001001111\n0000111101\n1000010001\n0110011101\n0110101000\n1011111001\n0111101110\n1000001001\n1101011111\n0001010100", "output": "21067271" }, { "input": "01101111000110111100011011110001101111001010001100101000110001010101100100000010\n1010001100\n0011010011\n0101010110\n1111001100\n1100011000\n0100101100\n1001100101\n0110111100\n0011001101\n0100000010", "output": "77770029" }, { "input": "10100111011010001011111000000111100000010101000011000010111101010000111010011101\n1010011101\n1010111111\n0110100110\n1111000100\n1110000001\n0000101111\n0011111000\n1000110001\n0101000011\n1010001011", "output": "09448580" }, { "input": "10000111111000011111001010101010010011111001001111000010010100100011000010001100\n1101101110\n1001001111\n0000100101\n1100111010\n0010101010\n1110000110\n1100111101\n0010001100\n1110000001\n1000011111", "output": "99411277" }, { "input": "10110110111011001111101100111100111111011011011011001111110110010011100010000111\n0111010011\n0111101100\n1001101010\n0101000101\n0010000111\n0011111101\n1011001111\n1101111000\n1011011011\n1001001110", "output": "86658594" }, { "input": "01001001100101100011110110111100000110001111001000100000110111110010000000011000\n0100100110\n1000001011\n1000111110\n0000011000\n0101100011\n1101101111\n1111001000\n1011011001\n1000001101\n0010101000", "output": "04536863" }, { "input": "10010100011101000011100100001100101111000010111100000010010000001001001101011101\n1001000011\n1101000011\n1001010001\n1101011101\n1000010110\n0011111101\n0010111100\n0000100100\n1010001000\n0101000110", "output": "21066773" }, { "input": "01111111110101111111011111111111010010000001100000101000100100111001011010001001\n0111111111\n0101111111\n0100101101\n0001100000\n0011000101\n0011100101\n1101001000\n0010111110\n1010001001\n1111000111", "output": "01063858" }, { "input": "00100011111001001010001111000011101000001110100000000100101011101000001001001010\n0010001111\n1001001010\n1010011001\n0011100111\n1000111000\n0011110000\n0000100010\n0001001010\n1111110111\n1110100000", "output": "01599791" }, { "input": "11011101000100110100110011010101100011111010011010010011010010010010100110101111\n0100110100\n1001001010\n0001111101\n1101011010\n1101110100\n1100110101\n0110101111\n0110001111\n0001101000\n1010011010", "output": "40579016" }, { "input": "10000010111101110110011000111110000011100110001111100100000111000011011000001011\n0111010100\n1010110110\n1000001110\n1110000100\n0110001111\n1101110110\n1100001101\n1000001011\n0000000101\n1001000001", "output": "75424967" }, { "input": "11101100101110111110111011111010001111111111000001001001000010001111111110110010\n0101100001\n1111010011\n1110111110\n0100110100\n1110011111\n1000111111\n0010010000\n1110110010\n0011000010\n1111000001", "output": "72259657" }, { "input": "01011110100101111010011000001001100000101001110011010111101011010000110110010101\n0100111100\n0101110011\n0101111010\n0110000010\n0101001111\n1101000011\n0110010101\n0111011010\n0001101110\n1001110011", "output": "22339256" }, { "input": "01100000100101111000100001100010000110000010100100100001100000110011101001110000\n0101111000\n1001110000\n0001000101\n0110110111\n0010100100\n1000011000\n1101110110\n0110000010\n0001011010\n0011001110", "output": "70554591" }, { "input": "11110011011000001001111100110101001000010100100000110011001110011111100100100001\n1010011000\n1111001101\n0100100001\n1111010011\n0100100000\n1001111110\n1010100111\n1000100111\n1000001001\n1100110011", "output": "18124952" }, { "input": "10001001011000100101010110011101011001110010000001010110000101000100101111101010\n0101100001\n1100001100\n1111101010\n1000100101\n0010000001\n0100010010\n0010110110\n0101100111\n0000001110\n1101001110", "output": "33774052" }, { "input": "00110010000111001001001100100010010111101011011110001011111100000101000100000001\n0100000001\n1011011110\n0010111111\n0111100111\n0100111001\n0000010100\n1001011110\n0111001001\n0100010011\n0011001000", "output": "97961250" }, { "input": "01101100001000110101101100101111101110010011010111100011010100010001101000110101\n1001101001\n1000110101\n0110110000\n0111100100\n0011010111\n1110111001\n0001000110\n0000000100\n0001101001\n1011001011", "output": "21954161" }, { "input": "10101110000011010110101011100000101101000110100000101101101101110101000011110010\n0110100000\n1011011011\n0011110010\n0001110110\n0010110100\n1100010010\n0001101011\n1010111000\n0011010110\n0111010100", "output": "78740192" }, { "input": "11000101011100100111010000010001000001001100101100000011000000001100000101011010\n1100010101\n1111101011\n0101011010\n0100000100\n1000110111\n1100100111\n1100101100\n0111001000\n0000110000\n0110011111", "output": "05336882" }, { "input": "11110100010000101110010110001000001011100101100010110011011011111110001100110110\n0101100010\n0100010001\n0000101110\n1100110110\n0101000101\n0011001011\n1111010001\n1000110010\n1111111000\n1010011111", "output": "62020383" }, { "input": "00011001111110000011101011010001010111100110100101000110011111011001100000001100\n0111001101\n0101011110\n0001100111\n1101011111\n1110000011\n0000001100\n0111010001\n1101100110\n1010110100\n0110100101", "output": "24819275" }, { "input": "10111110010011111001001111100101010111010011111001001110101000111110011001111101\n0011111001\n0101011101\n0100001010\n0001110010\n1001111101\n0011101010\n1111001001\n1100100001\n1001101000\n1011111001", "output": "90010504" }, { "input": "01111101111100101010001001011110111001110111110111011111011110110111111011011111\n1111110111\n0010000101\n0110000100\n0111111011\n1011100111\n1100101010\n1011011111\n1100010001\n0111110111\n0010010111", "output": "85948866" }, { "input": "01111100000111110000110010111001111100001001101010110010111010001000101001101010\n0100010101\n1011110101\n1010100100\n1010000001\n1001101010\n0101100110\n1000100010\n0111110000\n1100101110\n0110010110", "output": "77874864" }, { "input": "11100011010000000010011110010111001011111001000111000000001000000000100111100101\n0000000010\n1110001101\n0011010101\n0111100101\n1001000111\n1101001111\n0111010110\n1100101111\n0110000000\n1101101011", "output": "10374003" }, { "input": "01111011100111101110011001000110001111101000111110100100100001011111001011100010\n0110010100\n1100010001\n0111101110\n1001001000\n1010011011\n1000111110\n0010110101\n1011100010\n0101111100\n0110010001", "output": "22955387" }, { "input": "11011010001100000011000100110011010101000110011110110000001100111100001000011111\n0000100010\n1000011111\n1101101000\n0110011110\n0011110000\n1100000011\n0010001100\n0101101000\n0001001100\n1101010100", "output": "25893541" }, { "input": "01011001011111010010101111011001000011001100011101101111011011010011101011110110\n0100001100\n0101100101\n1111111011\n1111010010\n1111101100\n1100011101\n1011000011\n1101001110\n1011110110\n0110001010", "output": "13805878" }, { "input": "11110011011000111111001100111110001111111100000010111100110100110011111111001101\n1111001101\n1001101010\n1100110010\n0011001111\n0001011110\n1000110011\n1000111111\n0110001010\n1001011101\n1100000010", "output": "06369030" }, { "input": "01110011110010000011011001011000001000010110010110011001100001100110001100101000\n0000100001\n0110011000\n1010000010\n1110011101\n0111001111\n1100101000\n0010000011\n0110010000\n1100100101\n0110010110", "output": "46909115" }, { "input": "00001011001111110111111111011111111101110101110100010111010010100101100001010110\n1111110111\n0001010110\n0111011011\n0111000001\n1010010110\n0101110100\n0001000101\n0000111000\n0110100001\n0000101100", "output": "90005541" } ]
1,587,115,126
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
216
0
pass_code = input() int_code = [] password = '' lst = [] for i in range(0,7): int_code.append(input()) for i in range(0,7): for j in range(0,10): if pass_code[i*10:(i+1)*10] == int_code[j]: password += str(j+1) print(password)
Title: Restoring Password Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Igor K. always used to trust his favorite Kashpirovsky Antivirus. That is why he didn't hesitate to download the link one of his groupmates sent him via QIP Infinium. The link was said to contain "some real funny stuff about swine influenza". The antivirus had no objections and Igor K. run the flash application he had downloaded. Immediately his QIP Infinium said: "invalid login/password". Igor K. entered the ISQ from his additional account and looked at the info of his main one. His name and surname changed to "H1N1" and "Infected" correspondingly, and the "Additional Information" field contained a strange-looking binary code 80 characters in length, consisting of zeroes and ones. "I've been hacked" — thought Igor K. and run the Internet Exploiter browser to quickly type his favourite search engine's address. Soon he learned that it really was a virus that changed ISQ users' passwords. Fortunately, he soon found out that the binary code was actually the encrypted password where each group of 10 characters stood for one decimal digit. Accordingly, the original password consisted of 8 decimal digits. Help Igor K. restore his ISQ account by the encrypted password and encryption specification. Input Specification: The input data contains 11 lines. The first line represents the binary code 80 characters in length. That is the code written in Igor K.'s ISQ account's info. Next 10 lines contain pairwise distinct binary codes 10 characters in length, corresponding to numbers 0, 1, ..., 9. Output Specification: Print one line containing 8 characters — The password to Igor K.'s ISQ account. It is guaranteed that the solution exists. Demo Input: ['01001100100101100000010110001001011001000101100110010110100001011010100101101100\n0100110000\n0100110010\n0101100000\n0101100010\n0101100100\n0101100110\n0101101000\n0101101010\n0101101100\n0101101110\n', '10101101111001000010100100011010101101110010110111011000100011011110010110001000\n1001000010\n1101111001\n1001000110\n1010110111\n0010110111\n1101001101\n1011000001\n1110010101\n1011011000\n0110001000\n'] Demo Output: ['12345678\n', '30234919\n'] Note: none
```python pass_code = input() int_code = [] password = '' lst = [] for i in range(0,7): int_code.append(input()) for i in range(0,7): for j in range(0,10): if pass_code[i*10:(i+1)*10] == int_code[j]: password += str(j+1) print(password) ```
-1
510
A
Fox And Snake
PROGRAMMING
800
[ "implementation" ]
null
null
Fox Ciel starts to learn programming. The first task is drawing a fox! However, that turns out to be too hard for a beginner, so she decides to draw a snake instead. A snake is a pattern on a *n* by *m* table. Denote *c*-th cell of *r*-th row as (*r*,<=*c*). The tail of the snake is located at (1,<=1), then it's body extends to (1,<=*m*), then goes down 2 rows to (3,<=*m*), then goes left to (3,<=1) and so on. Your task is to draw this snake for Fox Ciel: the empty cells should be represented as dot characters ('.') and the snake cells should be filled with number signs ('#'). Consider sample tests in order to understand the snake pattern.
The only line contains two integers: *n* and *m* (3<=≤<=*n*,<=*m*<=≤<=50). *n* is an odd number.
Output *n* lines. Each line should contain a string consisting of *m* characters. Do not output spaces.
[ "3 3\n", "3 4\n", "5 3\n", "9 9\n" ]
[ "###\n..#\n###\n", "####\n...#\n####\n", "###\n..#\n###\n#..\n###\n", "#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########\n" ]
none
500
[ { "input": "3 3", "output": "###\n..#\n###" }, { "input": "3 4", "output": "####\n...#\n####" }, { "input": "5 3", "output": "###\n..#\n###\n#..\n###" }, { "input": "9 9", "output": "#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########" }, { "input": "3 5", "output": "#####\n....#\n#####" }, { "input": "3 6", "output": "######\n.....#\n######" }, { "input": "7 3", "output": "###\n..#\n###\n#..\n###\n..#\n###" }, { "input": "7 4", "output": "####\n...#\n####\n#...\n####\n...#\n####" }, { "input": "49 50", "output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................." }, { "input": "43 50", "output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................." }, { "input": "43 27", "output": "###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n....................." }, { "input": "11 15", "output": "###############\n..............#\n###############\n#..............\n###############\n..............#\n###############\n#..............\n###############\n..............#\n###############" }, { "input": "11 3", "output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###" }, { "input": "19 3", "output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###" }, { "input": "23 50", "output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................." }, { "input": "49 49", "output": "#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#..." }, { "input": "33 43", "output": "###########################################\n..........................................#\n###########################################\n#..........................................\n###########################################\n..........................................#\n###########################################\n#..........................................\n###########################################\n..........................................#\n###########################################\n#.................." }, { "input": "33 44", "output": "############################################\n...........................................#\n############################################\n#...........................................\n############################################\n...........................................#\n############################################\n#...........................................\n############################################\n...........................................#\n############################################\n#......." }, { "input": "45 45", "output": "#############################################\n............................................#\n#############################################\n#............................................\n#############################################\n............................................#\n#############################################\n#............................................\n#############################################\n............................................#\n#########################################..." }, { "input": "45 49", "output": "#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#..." }, { "input": "45 3", "output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###" }, { "input": "45 4", "output": "####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####" }, { "input": "5 4", "output": "####\n...#\n####\n#...\n####" }, { "input": "5 5", "output": "#####\n....#\n#####\n#....\n#####" }, { "input": "5 6", "output": "######\n.....#\n######\n#.....\n######" }, { "input": "7 5", "output": "#####\n....#\n#####\n#....\n#####\n....#\n#####" }, { "input": "7 6", "output": "######\n.....#\n######\n#.....\n######\n.....#\n######" }, { "input": "7 7", "output": "#######\n......#\n#######\n#......\n#######\n......#\n#######" } ]
1,694,017,925
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
print('#',%,%,%'):set($.+2):
Title: Fox And Snake Time Limit: None seconds Memory Limit: None megabytes Problem Description: Fox Ciel starts to learn programming. The first task is drawing a fox! However, that turns out to be too hard for a beginner, so she decides to draw a snake instead. A snake is a pattern on a *n* by *m* table. Denote *c*-th cell of *r*-th row as (*r*,<=*c*). The tail of the snake is located at (1,<=1), then it's body extends to (1,<=*m*), then goes down 2 rows to (3,<=*m*), then goes left to (3,<=1) and so on. Your task is to draw this snake for Fox Ciel: the empty cells should be represented as dot characters ('.') and the snake cells should be filled with number signs ('#'). Consider sample tests in order to understand the snake pattern. Input Specification: The only line contains two integers: *n* and *m* (3<=≤<=*n*,<=*m*<=≤<=50). *n* is an odd number. Output Specification: Output *n* lines. Each line should contain a string consisting of *m* characters. Do not output spaces. Demo Input: ['3 3\n', '3 4\n', '5 3\n', '9 9\n'] Demo Output: ['###\n..#\n###\n', '####\n...#\n####\n', '###\n..#\n###\n#..\n###\n', '#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########\n'] Note: none
```python print('#',%,%,%'):set($.+2): ```
-1
707
A
Brain's Photos
PROGRAMMING
800
[ "implementation" ]
null
null
Small, but very brave, mouse Brain was not accepted to summer school of young villains. He was upset and decided to postpone his plans of taking over the world, but to become a photographer instead. As you may know, the coolest photos are on the film (because you can specify the hashtag #film for such). Brain took a lot of colourful pictures on colored and black-and-white film. Then he developed and translated it into a digital form. But now, color and black-and-white photos are in one folder, and to sort them, one needs to spend more than one hour! As soon as Brain is a photographer not programmer now, he asks you to help him determine for a single photo whether it is colored or black-and-white. Photo can be represented as a matrix sized *n*<=×<=*m*, and each element of the matrix stores a symbol indicating corresponding pixel color. There are only 6 colors: - 'C' (cyan)- 'M' (magenta)- 'Y' (yellow)- 'W' (white)- 'G' (grey)- 'B' (black) The photo is considered black-and-white if it has only white, black and grey pixels in it. If there are any of cyan, magenta or yellow pixels in the photo then it is considered colored.
The first line of the input contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100) — the number of photo pixel matrix rows and columns respectively. Then *n* lines describing matrix rows follow. Each of them contains *m* space-separated characters describing colors of pixels in a row. Each character in the line is one of the 'C', 'M', 'Y', 'W', 'G' or 'B'.
Print the "#Black&amp;White" (without quotes), if the photo is black-and-white and "#Color" (without quotes), if it is colored, in the only line.
[ "2 2\nC M\nY Y\n", "3 2\nW W\nW W\nB B\n", "1 1\nW\n" ]
[ "#Color", "#Black&amp;White", "#Black&amp;White" ]
none
500
[ { "input": "2 2\nC M\nY Y", "output": "#Color" }, { "input": "3 2\nW W\nW W\nB B", "output": "#Black&White" }, { "input": "1 1\nW", "output": "#Black&White" }, { "input": "2 3\nW W W\nB G Y", "output": "#Color" }, { "input": "1 1\nW", "output": "#Black&White" }, { "input": "5 5\nW G B Y M\nG B Y M C\nB Y M C W\nY M C W G\nM C W G B", "output": "#Color" }, { "input": "1 6\nC M Y W G B", "output": "#Color" }, { "input": "1 3\nW G B", "output": "#Black&White" }, { "input": "1 1\nW", "output": "#Black&White" }, { "input": "5 5\nW G B W G\nG B W G B\nB W G B W\nW G B W G\nG B W G B", "output": "#Black&White" }, { "input": "2 3\nW W W\nB G C", "output": "#Color" }, { "input": "2 3\nW W W\nB G M", "output": "#Color" }, { "input": "3 3\nC B W\nB Y M\nB B W", "output": "#Color" }, { "input": "1 3\nW C W", "output": "#Color" }, { "input": "3 3\nB W B\nB C W\nB W W", "output": "#Color" }, { "input": "1 2\nW Y", "output": "#Color" }, { "input": "1 1\nG", "output": "#Black&White" }, { "input": "1 3\nB G W", "output": "#Black&White" }, { "input": "2 2\nW W\nB C", "output": "#Color" }, { "input": "1 1\nM", "output": "#Color" }, { "input": "1 2\nW C", "output": "#Color" }, { "input": "2 3\nW W M\nW W M", "output": "#Color" }, { "input": "3 2\nW W\nW W\nB C", "output": "#Color" }, { "input": "2 3\nW W C\nW W W", "output": "#Color" }, { "input": "1 3\nG G G", "output": "#Black&White" }, { "input": "1 1\nC", "output": "#Color" }, { "input": "1 2\nC W", "output": "#Color" }, { "input": "1 3\nW W C", "output": "#Color" }, { "input": "2 2\nW B\nB G", "output": "#Black&White" }, { "input": "2 2\nB B\nY Y", "output": "#Color" }, { "input": "2 2\nG G\nC C", "output": "#Color" }, { "input": "1 2\nB C", "output": "#Color" }, { "input": "1 4\nG G G C", "output": "#Color" }, { "input": "1 1\nB", "output": "#Black&White" }, { "input": "2 1\nY\nB", "output": "#Color" } ]
1,694,443,840
2,147,483,647
Python 3
OK
TESTS
50
46
0
n,m=map(int,input().split()) key=0 for i in range(n): row=input().split() for c in row: if c=='C'or c=='Y'or c=='M': key=1 if key==1: print("#Color") else: print("#Black&White")
Title: Brain's Photos Time Limit: None seconds Memory Limit: None megabytes Problem Description: Small, but very brave, mouse Brain was not accepted to summer school of young villains. He was upset and decided to postpone his plans of taking over the world, but to become a photographer instead. As you may know, the coolest photos are on the film (because you can specify the hashtag #film for such). Brain took a lot of colourful pictures on colored and black-and-white film. Then he developed and translated it into a digital form. But now, color and black-and-white photos are in one folder, and to sort them, one needs to spend more than one hour! As soon as Brain is a photographer not programmer now, he asks you to help him determine for a single photo whether it is colored or black-and-white. Photo can be represented as a matrix sized *n*<=×<=*m*, and each element of the matrix stores a symbol indicating corresponding pixel color. There are only 6 colors: - 'C' (cyan)- 'M' (magenta)- 'Y' (yellow)- 'W' (white)- 'G' (grey)- 'B' (black) The photo is considered black-and-white if it has only white, black and grey pixels in it. If there are any of cyan, magenta or yellow pixels in the photo then it is considered colored. Input Specification: The first line of the input contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100) — the number of photo pixel matrix rows and columns respectively. Then *n* lines describing matrix rows follow. Each of them contains *m* space-separated characters describing colors of pixels in a row. Each character in the line is one of the 'C', 'M', 'Y', 'W', 'G' or 'B'. Output Specification: Print the "#Black&amp;White" (without quotes), if the photo is black-and-white and "#Color" (without quotes), if it is colored, in the only line. Demo Input: ['2 2\nC M\nY Y\n', '3 2\nW W\nW W\nB B\n', '1 1\nW\n'] Demo Output: ['#Color', '#Black&amp;White', '#Black&amp;White'] Note: none
```python n,m=map(int,input().split()) key=0 for i in range(n): row=input().split() for c in row: if c=='C'or c=='Y'or c=='M': key=1 if key==1: print("#Color") else: print("#Black&White") ```
3
893
C
Rumor
PROGRAMMING
1,300
[ "dfs and similar", "graphs", "greedy" ]
null
null
Vova promised himself that he would never play computer games... But recently Firestorm — a well-known game developing company — published their newest game, World of Farcraft, and it became really popular. Of course, Vova started playing it. Now he tries to solve a quest. The task is to come to a settlement named Overcity and spread a rumor in it. Vova knows that there are *n* characters in Overcity. Some characters are friends to each other, and they share information they got. Also Vova knows that he can bribe each character so he or she starts spreading the rumor; *i*-th character wants *c**i* gold in exchange for spreading the rumor. When a character hears the rumor, he tells it to all his friends, and they start spreading the rumor to their friends (for free), and so on. The quest is finished when all *n* characters know the rumor. What is the minimum amount of gold Vova needs to spend in order to finish the quest? Take a look at the notes if you think you haven't understood the problem completely.
The first line contains two integer numbers *n* and *m* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105) — the number of characters in Overcity and the number of pairs of friends. The second line contains *n* integer numbers *c**i* (0<=≤<=*c**i*<=≤<=109) — the amount of gold *i*-th character asks to start spreading the rumor. Then *m* lines follow, each containing a pair of numbers (*x**i*,<=*y**i*) which represent that characters *x**i* and *y**i* are friends (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*, *x**i*<=≠<=*y**i*). It is guaranteed that each pair is listed at most once.
Print one number — the minimum amount of gold Vova has to spend in order to finish the quest.
[ "5 2\n2 5 3 4 8\n1 4\n4 5\n", "10 0\n1 2 3 4 5 6 7 8 9 10\n", "10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10\n" ]
[ "10\n", "55\n", "15\n" ]
In the first example the best decision is to bribe the first character (he will spread the rumor to fourth character, and the fourth one will spread it to fifth). Also Vova has to bribe the second and the third characters, so they know the rumor. In the second example Vova has to bribe everyone. In the third example the optimal decision is to bribe the first, the third, the fifth, the seventh and the ninth characters.
0
[ { "input": "5 2\n2 5 3 4 8\n1 4\n4 5", "output": "10" }, { "input": "10 0\n1 2 3 4 5 6 7 8 9 10", "output": "55" }, { "input": "10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10", "output": "15" }, { "input": "1 0\n0", "output": "0" }, { "input": "1 0\n1000000000", "output": "1000000000" }, { "input": "2 0\n0 0", "output": "0" }, { "input": "2 0\n1000000000 0", "output": "1000000000" }, { "input": "2 0\n0 1000000000", "output": "1000000000" }, { "input": "2 0\n1000000000 1000000000", "output": "2000000000" }, { "input": "2 1\n0 0\n1 2", "output": "0" } ]
1,612,244,823
2,147,483,647
Python 3
OK
TESTS
46
624
17,510,400
# cook your dish here import sys from collections import defaultdict from collections import deque sys.setrecursionlimit(10**6) n,m=list(map(int,input().split())) c=list(map(int,input().split())) d=defaultdict(list) for i in range(m): x,y=map(int,input().split()) d[x].append(y) d[y].append(x) ans=0 visited=[0]*(n+1) for i in range(1,n+1): if visited[i]==0: q=deque() q.append(i) m=10**(9) visited[i]=1 while len(q): x=q.popleft() m=min(m,c[x-1]) for j in d[x]: if visited[j]==0: visited[j]=1 q.append(j) ans=ans+m print(ans)
Title: Rumor Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vova promised himself that he would never play computer games... But recently Firestorm — a well-known game developing company — published their newest game, World of Farcraft, and it became really popular. Of course, Vova started playing it. Now he tries to solve a quest. The task is to come to a settlement named Overcity and spread a rumor in it. Vova knows that there are *n* characters in Overcity. Some characters are friends to each other, and they share information they got. Also Vova knows that he can bribe each character so he or she starts spreading the rumor; *i*-th character wants *c**i* gold in exchange for spreading the rumor. When a character hears the rumor, he tells it to all his friends, and they start spreading the rumor to their friends (for free), and so on. The quest is finished when all *n* characters know the rumor. What is the minimum amount of gold Vova needs to spend in order to finish the quest? Take a look at the notes if you think you haven't understood the problem completely. Input Specification: The first line contains two integer numbers *n* and *m* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105) — the number of characters in Overcity and the number of pairs of friends. The second line contains *n* integer numbers *c**i* (0<=≤<=*c**i*<=≤<=109) — the amount of gold *i*-th character asks to start spreading the rumor. Then *m* lines follow, each containing a pair of numbers (*x**i*,<=*y**i*) which represent that characters *x**i* and *y**i* are friends (1<=≤<=*x**i*,<=*y**i*<=≤<=*n*, *x**i*<=≠<=*y**i*). It is guaranteed that each pair is listed at most once. Output Specification: Print one number — the minimum amount of gold Vova has to spend in order to finish the quest. Demo Input: ['5 2\n2 5 3 4 8\n1 4\n4 5\n', '10 0\n1 2 3 4 5 6 7 8 9 10\n', '10 5\n1 6 2 7 3 8 4 9 5 10\n1 2\n3 4\n5 6\n7 8\n9 10\n'] Demo Output: ['10\n', '55\n', '15\n'] Note: In the first example the best decision is to bribe the first character (he will spread the rumor to fourth character, and the fourth one will spread it to fifth). Also Vova has to bribe the second and the third characters, so they know the rumor. In the second example Vova has to bribe everyone. In the third example the optimal decision is to bribe the first, the third, the fifth, the seventh and the ninth characters.
```python # cook your dish here import sys from collections import defaultdict from collections import deque sys.setrecursionlimit(10**6) n,m=list(map(int,input().split())) c=list(map(int,input().split())) d=defaultdict(list) for i in range(m): x,y=map(int,input().split()) d[x].append(y) d[y].append(x) ans=0 visited=[0]*(n+1) for i in range(1,n+1): if visited[i]==0: q=deque() q.append(i) m=10**(9) visited[i]=1 while len(q): x=q.popleft() m=min(m,c[x-1]) for j in d[x]: if visited[j]==0: visited[j]=1 q.append(j) ans=ans+m print(ans) ```
3
350
A
TL
PROGRAMMING
1,200
[ "brute force", "greedy", "implementation" ]
null
null
Valera wanted to prepare a Codesecrof round. He's already got one problem and he wants to set a time limit (TL) on it. Valera has written *n* correct solutions. For each correct solution, he knows its running time (in seconds). Valera has also wrote *m* wrong solutions and for each wrong solution he knows its running time (in seconds). Let's suppose that Valera will set *v* seconds TL in the problem. Then we can say that a solution passes the system testing if its running time is at most *v* seconds. We can also say that a solution passes the system testing with some "extra" time if for its running time, *a* seconds, an inequality 2*a*<=≤<=*v* holds. As a result, Valera decided to set *v* seconds TL, that the following conditions are met: 1. *v* is a positive integer; 1. all correct solutions pass the system testing; 1. at least one correct solution passes the system testing with some "extra" time; 1. all wrong solutions do not pass the system testing; 1. value *v* is minimum among all TLs, for which points 1, 2, 3, 4 hold. Help Valera and find the most suitable TL or else state that such TL doesn't exist.
The first line contains two integers *n*, *m* (1<=≤<=*n*,<=*m*<=≤<=100). The second line contains *n* space-separated positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100) — the running time of each of the *n* correct solutions in seconds. The third line contains *m* space-separated positive integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=100) — the running time of each of *m* wrong solutions in seconds.
If there is a valid TL value, print it. Otherwise, print -1.
[ "3 6\n4 5 2\n8 9 6 10 7 11\n", "3 1\n3 4 5\n6\n" ]
[ "5", "-1\n" ]
none
500
[ { "input": "3 6\n4 5 2\n8 9 6 10 7 11", "output": "5" }, { "input": "3 1\n3 4 5\n6", "output": "-1" }, { "input": "2 5\n45 99\n49 41 77 83 45", "output": "-1" }, { "input": "50 50\n18 13 5 34 10 36 36 12 15 11 16 17 14 36 23 45 32 24 31 18 24 32 7 1 31 3 49 8 16 23 3 39 47 43 42 38 40 22 41 1 49 47 9 8 19 15 29 30 16 18\n91 58 86 51 94 94 73 84 98 69 74 56 52 80 88 61 53 99 88 50 55 95 65 84 87 79 51 52 69 60 74 73 93 61 73 59 64 56 95 78 86 72 79 70 93 78 54 61 71 50", "output": "49" }, { "input": "55 44\n93 17 74 15 34 16 41 80 26 54 94 94 86 93 20 44 63 72 39 43 67 4 37 49 76 94 5 51 64 74 11 47 77 97 57 30 42 72 71 26 8 14 67 64 49 57 30 23 40 4 76 78 87 78 79\n38 55 17 65 26 7 36 65 48 28 49 93 18 98 31 90 26 57 1 26 88 56 48 56 23 13 8 67 80 2 51 3 21 33 20 54 2 45 21 36 3 98 62 2", "output": "-1" }, { "input": "32 100\n30 8 4 35 18 41 18 12 33 39 39 18 39 19 33 46 45 33 34 27 14 39 40 21 38 9 42 35 27 10 14 14\n65 49 89 64 47 78 59 52 73 51 84 82 88 63 91 99 67 87 53 99 75 47 85 82 58 47 80 50 65 91 83 90 77 52 100 88 97 74 98 99 50 93 65 61 65 65 65 96 61 51 84 67 79 90 92 83 100 100 100 95 80 54 77 51 98 64 74 62 60 96 73 74 94 55 89 60 92 65 74 79 66 81 53 47 71 51 54 85 74 97 68 72 88 94 100 85 65 63 65 90", "output": "46" }, { "input": "1 50\n7\n65 52 99 78 71 19 96 72 80 15 50 94 20 35 79 95 44 41 45 53 77 50 74 66 59 96 26 84 27 48 56 84 36 78 89 81 67 34 79 74 99 47 93 92 90 96 72 28 78 66", "output": "14" }, { "input": "1 1\n4\n9", "output": "8" }, { "input": "1 1\n2\n4", "output": "-1" }, { "input": "22 56\n49 20 42 68 15 46 98 78 82 8 7 33 50 30 75 96 36 88 35 99 19 87\n15 18 81 24 35 89 25 32 23 3 48 24 52 69 18 32 23 61 48 98 50 38 5 17 70 20 38 32 49 54 68 11 51 81 46 22 19 59 29 38 45 83 18 13 91 17 84 62 25 60 97 32 23 13 83 58", "output": "-1" }, { "input": "1 1\n50\n100", "output": "-1" }, { "input": "1 1\n49\n100", "output": "98" }, { "input": "1 1\n100\n100", "output": "-1" }, { "input": "1 1\n99\n100", "output": "-1" }, { "input": "8 4\n1 2 49 99 99 95 78 98\n100 100 100 100", "output": "99" }, { "input": "68 85\n43 55 2 4 72 45 19 56 53 81 18 90 11 87 47 8 94 88 24 4 67 9 21 70 25 66 65 27 46 13 8 51 65 99 37 43 71 59 71 79 32 56 49 43 57 85 95 81 40 28 60 36 72 81 60 40 16 78 61 37 29 26 15 95 70 27 50 97\n6 6 48 72 54 31 1 50 29 64 93 9 29 93 66 63 25 90 52 1 66 13 70 30 24 87 32 90 84 72 44 13 25 45 31 16 92 60 87 40 62 7 20 63 86 78 73 88 5 36 74 100 64 34 9 5 62 29 58 48 81 46 84 56 27 1 60 14 54 88 31 93 62 7 9 69 27 48 10 5 33 10 53 66 2", "output": "-1" }, { "input": "5 100\n1 1 1 1 1\n77 53 38 29 97 33 64 17 78 100 27 12 42 44 20 24 44 68 58 57 65 90 8 24 4 6 74 68 61 43 25 69 8 62 36 85 67 48 69 30 35 41 42 12 87 66 50 92 53 76 38 67 85 7 80 78 53 76 94 8 37 50 4 100 4 71 10 48 34 47 83 42 25 81 64 72 25 51 53 75 43 98 53 77 94 38 81 15 89 91 72 76 7 36 27 41 88 18 19 75", "output": "2" }, { "input": "3 3\n2 3 4\n8 9 10", "output": "4" }, { "input": "2 1\n2 3\n15", "output": "4" }, { "input": "2 1\n2 4\n4", "output": "-1" }, { "input": "2 3\n4 5\n10 11 12", "output": "8" }, { "input": "3 1\n2 3 3\n5", "output": "4" }, { "input": "2 1\n9 10\n100", "output": "18" }, { "input": "3 3\n3 12 15\n7 8 9", "output": "-1" }, { "input": "2 2\n3 5\n7 8", "output": "6" }, { "input": "3 3\n4 5 6\n10 11 12", "output": "8" }, { "input": "3 5\n2 3 3\n6 6 6 6 2", "output": "-1" }, { "input": "3 6\n4 5 3\n8 9 7 10 7 11", "output": "6" }, { "input": "3 6\n4 5 2\n8 9 6 10 7 4", "output": "-1" }, { "input": "2 1\n4 6\n10", "output": "8" }, { "input": "1 2\n1\n3 1", "output": "-1" }, { "input": "2 1\n5 6\n20", "output": "10" }, { "input": "2 1\n1 5\n5", "output": "-1" }, { "input": "3 2\n10 20 30\n30 40", "output": "-1" }, { "input": "2 2\n5 6\n7 100", "output": "-1" }, { "input": "2 1\n2 5\n7", "output": "5" }, { "input": "1 1\n5\n20", "output": "10" }, { "input": "2 1\n10 11\n100", "output": "20" }, { "input": "1 1\n1\n10", "output": "2" }, { "input": "1 1\n10\n100", "output": "20" } ]
1,626,239,411
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
7
154
21,504,000
n,m=map(int,input().split());l=sorted(list(map(int,input().split()))) b=sorted(list(map(int,input().split())));mi=102 for i in range(n-1,-1,-1): k=0 for j in range(n): if 2*l[j]<=l[i]:k+=1;break for j in range(n): if l[i]>=l[j] :k+=1 if k==(n+1):mi=min(l[i],mi) k=1 for i in b: if mi<i:pass else:k=0;break if k and mi!=102:print(mi) else:print(-1)
Title: TL Time Limit: None seconds Memory Limit: None megabytes Problem Description: Valera wanted to prepare a Codesecrof round. He's already got one problem and he wants to set a time limit (TL) on it. Valera has written *n* correct solutions. For each correct solution, he knows its running time (in seconds). Valera has also wrote *m* wrong solutions and for each wrong solution he knows its running time (in seconds). Let's suppose that Valera will set *v* seconds TL in the problem. Then we can say that a solution passes the system testing if its running time is at most *v* seconds. We can also say that a solution passes the system testing with some "extra" time if for its running time, *a* seconds, an inequality 2*a*<=≤<=*v* holds. As a result, Valera decided to set *v* seconds TL, that the following conditions are met: 1. *v* is a positive integer; 1. all correct solutions pass the system testing; 1. at least one correct solution passes the system testing with some "extra" time; 1. all wrong solutions do not pass the system testing; 1. value *v* is minimum among all TLs, for which points 1, 2, 3, 4 hold. Help Valera and find the most suitable TL or else state that such TL doesn't exist. Input Specification: The first line contains two integers *n*, *m* (1<=≤<=*n*,<=*m*<=≤<=100). The second line contains *n* space-separated positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100) — the running time of each of the *n* correct solutions in seconds. The third line contains *m* space-separated positive integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=100) — the running time of each of *m* wrong solutions in seconds. Output Specification: If there is a valid TL value, print it. Otherwise, print -1. Demo Input: ['3 6\n4 5 2\n8 9 6 10 7 11\n', '3 1\n3 4 5\n6\n'] Demo Output: ['5', '-1\n'] Note: none
```python n,m=map(int,input().split());l=sorted(list(map(int,input().split()))) b=sorted(list(map(int,input().split())));mi=102 for i in range(n-1,-1,-1): k=0 for j in range(n): if 2*l[j]<=l[i]:k+=1;break for j in range(n): if l[i]>=l[j] :k+=1 if k==(n+1):mi=min(l[i],mi) k=1 for i in b: if mi<i:pass else:k=0;break if k and mi!=102:print(mi) else:print(-1) ```
0
115
A
Party
PROGRAMMING
900
[ "dfs and similar", "graphs", "trees" ]
null
null
A company has *n* employees numbered from 1 to *n*. Each employee either has no immediate manager or exactly one immediate manager, who is another employee with a different number. An employee *A* is said to be the superior of another employee *B* if at least one of the following is true: - Employee *A* is the immediate manager of employee *B* - Employee *B* has an immediate manager employee *C* such that employee *A* is the superior of employee *C*. The company will not have a managerial cycle. That is, there will not exist an employee who is the superior of his/her own immediate manager. Today the company is going to arrange a party. This involves dividing all *n* employees into several groups: every employee must belong to exactly one group. Furthermore, within any single group, there must not be two employees *A* and *B* such that *A* is the superior of *B*. What is the minimum number of groups that must be formed?
The first line contains integer *n* (1<=≤<=*n*<=≤<=2000) — the number of employees. The next *n* lines contain the integers *p**i* (1<=≤<=*p**i*<=≤<=*n* or *p**i*<==<=-1). Every *p**i* denotes the immediate manager for the *i*-th employee. If *p**i* is -1, that means that the *i*-th employee does not have an immediate manager. It is guaranteed, that no employee will be the immediate manager of him/herself (*p**i*<=≠<=*i*). Also, there will be no managerial cycles.
Print a single integer denoting the minimum number of groups that will be formed in the party.
[ "5\n-1\n1\n2\n1\n-1\n" ]
[ "3\n" ]
For the first example, three groups are sufficient, for example: - Employee 1 - Employees 2 and 4 - Employees 3 and 5
500
[ { "input": "5\n-1\n1\n2\n1\n-1", "output": "3" }, { "input": "4\n-1\n1\n2\n3", "output": "4" }, { "input": "12\n-1\n1\n2\n3\n-1\n5\n6\n7\n-1\n9\n10\n11", "output": "4" }, { "input": "6\n-1\n-1\n2\n3\n1\n1", "output": "3" }, { "input": "3\n-1\n1\n1", "output": "2" }, { "input": "1\n-1", "output": "1" }, { "input": "2\n2\n-1", "output": "2" }, { "input": "2\n-1\n-1", "output": "1" }, { "input": "3\n2\n-1\n1", "output": "3" }, { "input": "3\n-1\n-1\n-1", "output": "1" }, { "input": "5\n4\n5\n1\n-1\n4", "output": "3" }, { "input": "12\n-1\n1\n1\n1\n1\n1\n3\n4\n3\n3\n4\n7", "output": "4" }, { "input": "12\n-1\n-1\n1\n-1\n1\n1\n5\n11\n8\n6\n6\n4", "output": "5" }, { "input": "12\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n2\n-1\n-1\n-1", "output": "2" }, { "input": "12\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1\n-1", "output": "1" }, { "input": "12\n3\n4\n2\n8\n7\n1\n10\n12\n5\n-1\n9\n11", "output": "12" }, { "input": "12\n5\n6\n7\n1\n-1\n9\n12\n4\n8\n-1\n3\n2", "output": "11" }, { "input": "12\n-1\n9\n11\n6\n6\n-1\n6\n3\n8\n6\n1\n6", "output": "6" }, { "input": "12\n7\n8\n4\n12\n7\n9\n-1\n-1\n-1\n8\n6\n-1", "output": "3" }, { "input": "12\n-1\n10\n-1\n1\n-1\n5\n9\n12\n-1\n-1\n3\n-1", "output": "2" }, { "input": "12\n-1\n7\n9\n12\n1\n7\n-1\n-1\n8\n5\n4\n-1", "output": "3" }, { "input": "12\n11\n11\n8\n9\n1\n1\n2\n-1\n10\n3\n-1\n8", "output": "5" }, { "input": "12\n-1\n8\n9\n-1\n4\n2\n11\n1\n-1\n6\n-1\n10", "output": "6" }, { "input": "12\n7\n4\n4\n-1\n6\n7\n9\n7\n-1\n7\n4\n1", "output": "4" }, { "input": "12\n-1\n6\n10\n6\n1\n11\n5\n9\n11\n5\n1\n9", "output": "4" }, { "input": "12\n8\n6\n6\n8\n6\n-1\n6\n6\n8\n6\n8\n8", "output": "3" }, { "input": "12\n3\n8\n9\n12\n2\n8\n11\n12\n2\n9\n-1\n11", "output": "7" }, { "input": "7\n7\n6\n-1\n-1\n4\n4\n-1", "output": "3" }, { "input": "77\n53\n-1\n48\n-1\n51\n-1\n54\n43\n70\n19\n64\n31\n45\n58\n6\n61\n41\n56\n34\n-1\n54\n-1\n66\n65\n74\n16\n38\n1\n2\n61\n-1\n34\n-1\n-1\n7\n19\n57\n13\n61\n42\n-1\n34\n65\n16\n31\n61\n6\n5\n34\n15\n-1\n13\n4\n22\n74\n7\n-1\n70\n38\n61\n45\n53\n46\n22\n-1\n65\n34\n19\n43\n48\n33\n58\n36\n-1\n47\n24\n34", "output": "6" }, { "input": "5\n2\n3\n4\n5\n-1", "output": "5" } ]
1,690,890,176
2,147,483,647
Python 3
OK
TESTS
106
466
0
n = int(input()) g = [-1] * n for i in range(n): g[i] = max(-1,int(input())-1) m = 1 for i in range(n): if g[i] == -1: continue s = g[i] t = 1 while s != -1: s = g[s] t += 1 if t > m: m = t print(m)
Title: Party Time Limit: None seconds Memory Limit: None megabytes Problem Description: A company has *n* employees numbered from 1 to *n*. Each employee either has no immediate manager or exactly one immediate manager, who is another employee with a different number. An employee *A* is said to be the superior of another employee *B* if at least one of the following is true: - Employee *A* is the immediate manager of employee *B* - Employee *B* has an immediate manager employee *C* such that employee *A* is the superior of employee *C*. The company will not have a managerial cycle. That is, there will not exist an employee who is the superior of his/her own immediate manager. Today the company is going to arrange a party. This involves dividing all *n* employees into several groups: every employee must belong to exactly one group. Furthermore, within any single group, there must not be two employees *A* and *B* such that *A* is the superior of *B*. What is the minimum number of groups that must be formed? Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=2000) — the number of employees. The next *n* lines contain the integers *p**i* (1<=≤<=*p**i*<=≤<=*n* or *p**i*<==<=-1). Every *p**i* denotes the immediate manager for the *i*-th employee. If *p**i* is -1, that means that the *i*-th employee does not have an immediate manager. It is guaranteed, that no employee will be the immediate manager of him/herself (*p**i*<=≠<=*i*). Also, there will be no managerial cycles. Output Specification: Print a single integer denoting the minimum number of groups that will be formed in the party. Demo Input: ['5\n-1\n1\n2\n1\n-1\n'] Demo Output: ['3\n'] Note: For the first example, three groups are sufficient, for example: - Employee 1 - Employees 2 and 4 - Employees 3 and 5
```python n = int(input()) g = [-1] * n for i in range(n): g[i] = max(-1,int(input())-1) m = 1 for i in range(n): if g[i] == -1: continue s = g[i] t = 1 while s != -1: s = g[s] t += 1 if t > m: m = t print(m) ```
3
884
B
Japanese Crosswords Strike Back
PROGRAMMING
1,100
[ "implementation" ]
null
null
A one-dimensional Japanese crossword can be represented as a binary string of length *x*. An encoding of this crossword is an array *a* of size *n*, where *n* is the number of segments formed completely of 1's, and *a**i* is the length of *i*-th segment. No two segments touch or intersect. For example: - If *x*<==<=6 and the crossword is 111011, then its encoding is an array {3,<=2}; - If *x*<==<=8 and the crossword is 01101010, then its encoding is an array {2,<=1,<=1}; - If *x*<==<=5 and the crossword is 11111, then its encoding is an array {5}; - If *x*<==<=5 and the crossword is 00000, then its encoding is an empty array. Mishka wants to create a new one-dimensional Japanese crossword. He has already picked the length and the encoding for this crossword. And now he needs to check if there is exactly one crossword such that its length and encoding are equal to the length and encoding he picked. Help him to check it!
The first line contains two integer numbers *n* and *x* (1<=≤<=*n*<=≤<=100000, 1<=≤<=*x*<=≤<=109) — the number of elements in the encoding and the length of the crossword Mishka picked. The second line contains *n* integer numbers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=10000) — the encoding.
Print YES if there exists exaclty one crossword with chosen length and encoding. Otherwise, print NO.
[ "2 4\n1 3\n", "3 10\n3 3 2\n", "2 10\n1 3\n" ]
[ "NO\n", "YES\n", "NO\n" ]
none
0
[ { "input": "2 4\n1 3", "output": "NO" }, { "input": "3 10\n3 3 2", "output": "YES" }, { "input": "2 10\n1 3", "output": "NO" }, { "input": "1 1\n1", "output": "YES" }, { "input": "1 10\n10", "output": "YES" }, { "input": "1 10000\n10000", "output": "YES" }, { "input": "10 1\n5 78 3 87 4 9 5 8 9 1235", "output": "NO" }, { "input": "3 12\n3 3 3", "output": "NO" }, { "input": "3 9\n2 2 2", "output": "NO" }, { "input": "2 5\n1 1", "output": "NO" }, { "input": "1 2\n1", "output": "NO" }, { "input": "3 13\n3 3 3", "output": "NO" }, { "input": "3 6\n1 1 1", "output": "NO" }, { "input": "1 6\n5", "output": "NO" }, { "input": "3 11\n3 3 2", "output": "NO" }, { "input": "2 6\n1 3", "output": "NO" }, { "input": "3 10\n2 2 2", "output": "NO" }, { "input": "3 8\n2 1 1", "output": "NO" }, { "input": "1 5\n2", "output": "NO" }, { "input": "1 3\n1", "output": "NO" }, { "input": "5 5\n1 1 1 1 1", "output": "NO" }, { "input": "2 10\n4 4", "output": "NO" }, { "input": "2 8\n2 3", "output": "NO" }, { "input": "2 4\n1 1", "output": "NO" }, { "input": "3 10\n1 2 4", "output": "NO" }, { "input": "3 10\n2 1 3", "output": "NO" }, { "input": "2 6\n1 2", "output": "NO" }, { "input": "3 4\n1 1 1", "output": "NO" }, { "input": "3 11\n1 2 4", "output": "NO" }, { "input": "3 12\n3 3 2", "output": "NO" }, { "input": "4 9\n1 1 1 1", "output": "NO" }, { "input": "1 10\n9", "output": "NO" }, { "input": "1 7\n5", "output": "NO" }, { "input": "2 5\n1 2", "output": "NO" }, { "input": "3 8\n1 1 2", "output": "NO" }, { "input": "3 7\n1 1 1", "output": "NO" }, { "input": "1 10\n1", "output": "NO" }, { "input": "3 10\n2 3 4", "output": "NO" }, { "input": "3 9\n1 2 3", "output": "NO" }, { "input": "3 9\n3 3 2", "output": "NO" }, { "input": "3 6\n3 3 2", "output": "NO" }, { "input": "1 1\n3", "output": "NO" }, { "input": "1 3\n2", "output": "NO" }, { "input": "3 10\n3 3 3", "output": "NO" }, { "input": "3 5\n1 1 1", "output": "YES" }, { "input": "2 1\n100 100", "output": "NO" }, { "input": "3 3\n3 3 3", "output": "NO" }, { "input": "4 17\n3 3 9 1", "output": "NO" }, { "input": "4 1660\n1505 13 37 100", "output": "NO" }, { "input": "3 5\n3 3 2", "output": "NO" }, { "input": "4 10\n3 3 2 5", "output": "NO" }, { "input": "5 5\n5 5 5 5 5", "output": "NO" }, { "input": "1 1\n2", "output": "NO" }, { "input": "5 10\n1 2 2 4 5", "output": "NO" }, { "input": "2 1\n1 1", "output": "NO" } ]
1,660,949,876
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
5
46
0
n, x = input().split(' ') n, x = int(n), int(x) string = input() score = 0 for char in string: if (char == ' '): score += 1 else: score += int(char) if(score == x): print('YES') else: print('NO')
Title: Japanese Crosswords Strike Back Time Limit: None seconds Memory Limit: None megabytes Problem Description: A one-dimensional Japanese crossword can be represented as a binary string of length *x*. An encoding of this crossword is an array *a* of size *n*, where *n* is the number of segments formed completely of 1's, and *a**i* is the length of *i*-th segment. No two segments touch or intersect. For example: - If *x*<==<=6 and the crossword is 111011, then its encoding is an array {3,<=2}; - If *x*<==<=8 and the crossword is 01101010, then its encoding is an array {2,<=1,<=1}; - If *x*<==<=5 and the crossword is 11111, then its encoding is an array {5}; - If *x*<==<=5 and the crossword is 00000, then its encoding is an empty array. Mishka wants to create a new one-dimensional Japanese crossword. He has already picked the length and the encoding for this crossword. And now he needs to check if there is exactly one crossword such that its length and encoding are equal to the length and encoding he picked. Help him to check it! Input Specification: The first line contains two integer numbers *n* and *x* (1<=≤<=*n*<=≤<=100000, 1<=≤<=*x*<=≤<=109) — the number of elements in the encoding and the length of the crossword Mishka picked. The second line contains *n* integer numbers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=10000) — the encoding. Output Specification: Print YES if there exists exaclty one crossword with chosen length and encoding. Otherwise, print NO. Demo Input: ['2 4\n1 3\n', '3 10\n3 3 2\n', '2 10\n1 3\n'] Demo Output: ['NO\n', 'YES\n', 'NO\n'] Note: none
```python n, x = input().split(' ') n, x = int(n), int(x) string = input() score = 0 for char in string: if (char == ' '): score += 1 else: score += int(char) if(score == x): print('YES') else: print('NO') ```
0
810
A
Straight <<A>>
PROGRAMMING
900
[ "implementation", "math" ]
null
null
Noora is a student of one famous high school. It's her final year in school — she is going to study in university next year. However, she has to get an «A» graduation certificate in order to apply to a prestigious one. In school, where Noora is studying, teachers are putting down marks to the online class register, which are integers from 1 to *k*. The worst mark is 1, the best is *k*. Mark that is going to the certificate, is calculated as an average of all the marks, rounded to the closest integer. If several answers are possible, rounding up is produced. For example, 7.3 is rounded to 7, but 7.5 and 7.8784 — to 8. For instance, if Noora has marks [8,<=9], then the mark to the certificate is 9, because the average is equal to 8.5 and rounded to 9, but if the marks are [8,<=8,<=9], Noora will have graduation certificate with 8. To graduate with «A» certificate, Noora has to have mark *k*. Noora got *n* marks in register this year. However, she is afraid that her marks are not enough to get final mark *k*. Noora decided to ask for help in the internet, where hacker Leha immediately responded to her request. He is ready to hack class register for Noora and to add Noora any number of additional marks from 1 to *k*. At the same time, Leha want his hack be unseen to everyone, so he decided to add as less as possible additional marks. Please help Leha to calculate the minimal number of marks he has to add, so that final Noora's mark will become equal to *k*.
The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=100,<=1<=≤<=*k*<=≤<=100) denoting the number of marks, received by Noora and the value of highest possible mark. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*k*) denoting marks received by Noora before Leha's hack.
Print a single integer — minimal number of additional marks, that Leha has to add in order to change Noora's final mark to *k*.
[ "2 10\n8 9\n", "3 5\n4 4 4\n" ]
[ "4", "3" ]
Consider the first example testcase. Maximal mark is 10, Noora received two marks — 8 and 9, so current final mark is 9. To fix it, Leha can add marks [10, 10, 10, 10] (4 marks in total) to the registry, achieving Noora having average mark equal to <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/1b961585522f76271546da990a6228e7c666277f.png" style="max-width: 100.0%;max-height: 100.0%;"/>. Consequently, new final mark is 10. Less number of marks won't fix the situation. In the second example Leha can add [5, 5, 5] to the registry, so that making average mark equal to 4.5, which is enough to have 5 in the certificate.
500
[ { "input": "2 10\n8 9", "output": "4" }, { "input": "3 5\n4 4 4", "output": "3" }, { "input": "3 10\n10 8 9", "output": "3" }, { "input": "2 23\n21 23", "output": "2" }, { "input": "5 10\n5 10 10 9 10", "output": "7" }, { "input": "12 50\n18 10 26 22 22 23 14 21 27 18 25 12", "output": "712" }, { "input": "38 12\n2 7 10 8 5 3 5 6 3 6 5 1 9 7 7 8 3 4 4 4 5 2 3 6 6 1 6 7 4 4 8 7 4 5 3 6 6 6", "output": "482" }, { "input": "63 86\n32 31 36 29 36 26 28 38 39 32 29 26 33 38 36 38 36 28 43 48 28 33 25 39 39 27 34 25 37 28 40 26 30 31 42 32 36 44 29 36 30 35 48 40 26 34 30 33 33 46 42 24 36 38 33 51 33 41 38 29 29 32 28", "output": "6469" }, { "input": "100 38\n30 24 38 31 31 33 32 32 29 34 29 22 27 23 34 25 32 30 30 26 16 27 38 33 38 38 37 34 32 27 33 23 33 32 24 24 30 36 29 30 33 30 29 30 36 33 33 35 28 24 30 32 38 29 30 36 31 30 27 38 31 36 15 37 32 27 29 24 38 33 28 29 34 21 37 35 32 31 27 25 27 28 31 31 36 38 35 35 36 29 35 22 38 31 38 28 31 27 34 31", "output": "1340" }, { "input": "33 69\n60 69 68 69 69 60 64 60 62 59 54 47 60 62 69 69 69 58 67 69 62 69 68 53 69 69 66 66 57 58 65 69 61", "output": "329" }, { "input": "39 92\n19 17 16 19 15 30 21 25 14 17 19 19 23 16 14 15 17 19 29 15 11 25 19 14 18 20 10 16 11 15 18 20 20 17 18 16 12 17 16", "output": "5753" }, { "input": "68 29\n29 29 29 29 29 28 29 29 29 27 29 29 29 29 29 29 29 23 29 29 26 29 29 29 29 29 29 29 29 29 29 29 29 29 29 29 26 29 29 29 29 29 29 29 29 29 29 29 29 22 29 29 29 29 29 29 29 29 29 29 29 29 29 28 29 29 29 29", "output": "0" }, { "input": "75 30\n22 18 21 26 23 18 28 30 24 24 19 25 28 30 23 29 18 23 23 30 26 30 17 30 18 19 25 26 26 15 27 23 30 21 19 26 25 30 25 28 20 22 22 21 26 17 23 23 24 15 25 19 18 22 30 30 29 21 30 28 28 30 27 25 24 15 22 19 30 21 20 30 18 20 25", "output": "851" }, { "input": "78 43\n2 7 6 5 5 6 4 5 3 4 6 8 4 5 5 4 3 1 2 4 4 6 5 6 4 4 6 4 8 4 6 5 6 1 4 5 6 3 2 5 2 5 3 4 8 8 3 3 4 4 6 6 5 4 5 5 7 9 3 9 6 4 7 3 6 9 6 5 1 7 2 5 6 3 6 2 5 4", "output": "5884" }, { "input": "82 88\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 2 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 2 2 1 1 1 1 1 1 1 1 2 1 1 1 1 1 1 2 1 1 2 1 1 1 1 1 1 1 2 1 1 1 1 1 1 1 1 1 1 1 1 2 1 1 1", "output": "14170" }, { "input": "84 77\n28 26 36 38 37 44 48 34 40 22 42 35 40 37 30 31 33 35 36 55 47 36 33 47 40 38 27 38 36 33 35 31 47 33 30 38 38 47 49 24 38 37 28 43 39 36 34 33 29 38 36 43 48 38 36 34 33 34 35 31 26 33 39 37 37 37 35 52 47 30 24 46 38 26 43 46 41 50 33 40 36 41 37 30", "output": "6650" }, { "input": "94 80\n21 19 15 16 27 16 20 18 19 19 15 15 20 19 19 21 20 19 13 17 15 9 17 15 23 15 12 18 12 13 15 12 14 13 14 17 20 20 14 21 15 6 10 23 24 8 18 18 13 23 17 22 17 19 19 18 17 24 8 16 18 20 24 19 10 19 15 10 13 14 19 15 16 19 20 15 14 21 16 16 14 14 22 19 12 11 14 13 19 32 16 16 13 20", "output": "11786" }, { "input": "96 41\n13 32 27 34 28 34 30 26 21 24 29 20 25 34 25 16 27 15 22 22 34 22 25 19 23 17 17 22 26 24 23 20 21 27 19 33 13 24 22 18 30 30 27 14 26 24 20 20 22 11 19 31 19 29 18 28 30 22 17 15 28 32 17 24 17 24 24 19 26 23 22 29 18 22 23 29 19 32 26 23 22 22 24 23 27 30 24 25 21 21 33 19 35 27 34 28", "output": "3182" }, { "input": "1 26\n26", "output": "0" }, { "input": "99 39\n25 28 30 28 32 34 31 28 29 28 29 30 33 19 33 31 27 33 29 24 27 30 25 38 28 34 35 31 34 37 30 22 21 24 34 27 34 33 34 33 26 26 36 19 30 22 35 30 21 28 23 35 33 29 21 22 36 31 34 32 34 32 30 32 27 33 38 25 35 26 39 27 29 29 19 33 28 29 34 38 26 30 36 26 29 30 26 34 22 32 29 38 25 27 24 17 25 28 26", "output": "1807" }, { "input": "100 12\n7 6 6 3 5 5 9 8 7 7 4 7 12 6 9 5 6 3 4 7 9 10 7 7 5 3 9 6 9 9 6 7 4 10 4 8 8 6 9 8 6 5 7 4 10 7 5 6 8 9 3 4 8 5 4 8 6 10 5 8 7 5 9 8 5 8 5 6 9 11 4 9 5 5 11 4 6 6 7 3 8 9 6 7 10 4 7 6 9 4 8 11 5 4 10 8 5 10 11 4", "output": "946" }, { "input": "100 18\n1 2 2 2 2 2 1 1 1 2 3 1 3 1 1 4 2 4 1 2 1 2 1 3 2 1 2 1 1 1 2 1 2 2 1 1 4 3 1 1 2 1 3 3 2 1 2 2 1 1 1 1 3 1 1 2 2 1 1 1 5 1 2 1 3 2 2 1 4 2 2 1 1 1 1 1 1 1 1 2 2 1 2 1 1 1 2 1 2 2 2 1 1 3 1 1 2 1 1 2", "output": "3164" }, { "input": "100 27\n16 20 21 10 16 17 18 25 19 18 20 12 11 21 21 23 20 26 20 21 27 16 25 18 25 21 27 12 20 27 18 17 27 13 21 26 12 22 15 21 25 21 18 27 24 15 16 18 23 21 24 27 19 17 24 14 21 16 24 26 13 14 25 18 27 26 22 16 27 27 17 25 17 12 22 10 19 27 19 20 23 22 25 23 17 25 14 20 22 10 22 27 21 20 15 26 24 27 12 16", "output": "1262" }, { "input": "100 29\n20 18 23 24 14 14 16 23 22 17 18 22 21 21 19 19 14 11 18 19 16 22 25 20 14 13 21 24 18 16 18 29 17 25 12 10 18 28 11 16 17 14 15 20 17 20 18 22 10 16 16 20 18 19 29 18 25 27 17 19 24 15 24 25 16 23 19 16 16 20 19 15 12 21 20 13 21 15 15 23 16 23 17 13 17 21 13 18 17 18 18 20 16 12 19 15 27 14 11 18", "output": "2024" }, { "input": "100 30\n16 10 20 11 14 27 15 17 22 26 24 17 15 18 19 22 22 15 21 22 14 21 22 22 21 22 15 17 17 22 18 19 26 18 22 20 22 25 18 18 17 23 18 18 20 13 19 30 17 24 22 19 29 20 20 21 17 18 26 25 22 19 15 18 18 20 19 19 18 18 24 16 19 17 12 21 20 16 23 21 16 17 26 23 25 28 22 20 9 21 17 24 15 19 17 21 29 13 18 15", "output": "1984" }, { "input": "100 59\n56 58 53 59 59 48 59 54 46 59 59 58 48 59 55 59 59 50 59 56 59 59 59 59 59 59 59 57 59 53 45 53 50 59 50 55 58 54 59 56 54 59 59 59 59 48 56 59 59 57 59 59 48 43 55 57 39 59 46 55 55 52 58 57 51 59 59 59 59 53 59 43 51 54 46 59 57 43 50 59 47 58 59 59 59 55 46 56 55 59 56 47 56 56 46 51 47 48 59 55", "output": "740" }, { "input": "100 81\n6 7 6 6 7 6 6 6 3 9 4 5 4 3 4 6 6 6 1 3 9 5 2 3 8 5 6 9 6 6 6 5 4 4 7 7 3 6 11 7 6 4 8 7 12 6 4 10 2 4 9 11 7 4 7 7 8 8 6 7 9 8 4 5 8 13 6 6 6 8 6 2 5 6 7 5 4 4 4 4 2 6 4 8 3 4 7 7 6 7 7 10 5 10 6 7 4 11 8 4", "output": "14888" }, { "input": "100 100\n30 35 23 43 28 49 31 32 30 44 32 37 33 34 38 28 43 32 33 32 50 32 41 38 33 20 40 36 29 21 42 25 23 34 43 32 37 31 30 27 36 32 45 37 33 29 38 34 35 33 28 19 37 33 28 41 31 29 41 27 32 39 30 34 37 40 33 38 35 32 32 34 35 34 28 39 28 34 40 45 31 25 42 28 29 31 33 21 36 33 34 37 40 42 39 30 36 34 34 40", "output": "13118" }, { "input": "100 100\n71 87 100 85 89 98 90 90 71 65 76 75 85 100 81 100 91 80 73 89 86 78 82 89 77 92 78 90 100 81 85 89 73 100 66 60 72 88 91 73 93 76 88 81 86 78 83 77 74 93 97 94 85 78 82 78 91 91 100 78 89 76 78 82 81 78 83 88 87 83 78 98 85 97 98 89 88 75 76 86 74 81 70 76 86 84 99 100 89 94 72 84 82 88 83 89 78 99 87 76", "output": "3030" }, { "input": "100 100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "19700" }, { "input": "100 100\n100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100", "output": "0" }, { "input": "100 100\n1 1 2 1 1 1 1 1 1 1 1 1 1 2 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "19696" }, { "input": "100 100\n100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 99", "output": "0" }, { "input": "100 100\n100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 98 100 100 100 100 98 100 100 100 100 100 100 99 98 100 100 93 100 100 98 100 100 100 100 93 100 96 100 100 100 94 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 95 88 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100", "output": "0" }, { "input": "100 100\n95 100 100 100 100 100 100 100 100 100 100 100 100 100 87 100 100 100 94 100 100 100 100 100 100 100 100 100 100 100 100 99 100 100 100 100 100 100 100 100 100 100 90 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 97 100 100 100 96 100 98 100 100 100 100 100 96 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 97 100 100 100 100", "output": "2" }, { "input": "100 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "0" }, { "input": "100 2\n2 1 1 2 1 1 1 1 2 2 2 2 1 1 1 2 1 1 1 2 2 2 2 1 1 1 1 2 2 2 1 2 2 2 2 1 2 2 1 1 1 1 1 1 2 2 1 2 1 1 1 2 1 2 2 2 2 1 1 1 2 2 1 2 1 1 1 2 1 2 2 1 1 1 2 2 1 1 2 1 1 2 1 1 1 2 1 1 1 1 2 1 1 1 1 2 1 2 1 1", "output": "16" }, { "input": "3 5\n5 5 5", "output": "0" }, { "input": "7 7\n1 1 1 1 1 1 1", "output": "77" }, { "input": "1 1\n1", "output": "0" }, { "input": "100 100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "19700" }, { "input": "4 10\n10 10 10 10", "output": "0" }, { "input": "1 10\n10", "output": "0" }, { "input": "10 1\n1 1 1 1 1 1 1 1 1 1", "output": "0" }, { "input": "3 10\n10 10 10", "output": "0" }, { "input": "2 4\n3 4", "output": "0" }, { "input": "1 2\n2", "output": "0" }, { "input": "3 4\n4 4 4", "output": "0" }, { "input": "3 2\n2 2 1", "output": "0" }, { "input": "5 5\n5 5 5 5 5", "output": "0" }, { "input": "3 3\n3 3 3", "output": "0" }, { "input": "2 9\n8 9", "output": "0" }, { "input": "3 10\n9 10 10", "output": "0" }, { "input": "1 3\n3", "output": "0" }, { "input": "2 2\n1 2", "output": "0" }, { "input": "2 10\n10 10", "output": "0" }, { "input": "23 14\n7 11 13 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14 14", "output": "0" }, { "input": "2 10\n9 10", "output": "0" }, { "input": "2 2\n2 2", "output": "0" }, { "input": "10 5\n5 5 5 5 5 5 5 5 5 4", "output": "0" }, { "input": "3 5\n4 5 5", "output": "0" }, { "input": "5 4\n4 4 4 4 4", "output": "0" }, { "input": "2 10\n10 9", "output": "0" }, { "input": "4 5\n3 5 5 5", "output": "0" }, { "input": "10 5\n5 5 5 5 5 5 5 5 5 5", "output": "0" }, { "input": "3 10\n10 10 9", "output": "0" }, { "input": "5 1\n1 1 1 1 1", "output": "0" }, { "input": "2 1\n1 1", "output": "0" }, { "input": "4 10\n9 10 10 10", "output": "0" }, { "input": "5 2\n2 2 2 2 2", "output": "0" }, { "input": "2 5\n4 5", "output": "0" }, { "input": "5 10\n10 10 10 10 10", "output": "0" }, { "input": "2 6\n6 6", "output": "0" }, { "input": "2 9\n9 9", "output": "0" }, { "input": "3 10\n10 9 10", "output": "0" }, { "input": "4 40\n39 40 40 40", "output": "0" }, { "input": "3 4\n3 4 4", "output": "0" }, { "input": "9 9\n9 9 9 9 9 9 9 9 9", "output": "0" }, { "input": "1 4\n4", "output": "0" }, { "input": "4 7\n1 1 1 1", "output": "44" }, { "input": "1 5\n5", "output": "0" }, { "input": "3 1\n1 1 1", "output": "0" }, { "input": "1 100\n100", "output": "0" }, { "input": "2 7\n3 5", "output": "10" }, { "input": "3 6\n6 6 6", "output": "0" }, { "input": "4 2\n1 2 2 2", "output": "0" }, { "input": "4 5\n4 5 5 5", "output": "0" }, { "input": "5 5\n1 1 1 1 1", "output": "35" }, { "input": "66 2\n1 2 2 2 2 1 1 2 1 2 2 2 2 2 2 1 2 1 2 1 2 1 2 1 2 1 1 1 1 2 2 1 2 2 1 1 2 1 2 2 1 1 1 2 1 2 1 2 1 2 1 2 2 2 2 1 2 2 1 2 1 1 1 2 2 1", "output": "0" }, { "input": "2 2\n2 1", "output": "0" }, { "input": "5 5\n5 5 5 4 5", "output": "0" }, { "input": "3 7\n1 1 1", "output": "33" }, { "input": "2 5\n5 5", "output": "0" }, { "input": "1 7\n1", "output": "11" }, { "input": "6 7\n1 1 1 1 1 1", "output": "66" }, { "input": "99 97\n15 80 78 69 12 84 36 51 89 77 88 10 1 19 67 85 6 36 8 70 14 45 88 97 22 13 75 57 83 27 13 97 9 90 68 51 76 37 5 2 16 92 11 48 13 77 35 19 15 74 22 29 21 12 28 42 56 5 32 41 62 75 71 71 68 72 24 77 11 28 78 27 53 88 74 66 1 42 18 16 18 39 75 38 81 5 13 39 40 75 13 36 53 83 9 54 57 63 64", "output": "10077" }, { "input": "8 7\n1 1 1 1 1 1 1 1", "output": "88" }, { "input": "3 2\n2 2 2", "output": "0" }, { "input": "6 5\n5 5 5 5 5 5", "output": "0" }, { "input": "10 5\n5 5 5 5 5 5 5 4 1 1", "output": "8" }, { "input": "1 5\n1", "output": "7" }, { "input": "10 10\n10 10 10 10 10 10 10 10 10 10", "output": "0" }, { "input": "2 3\n2 3", "output": "0" }, { "input": "1 9\n9", "output": "0" }, { "input": "74 2\n2 2 2 2 1 2 2 1 1 1 2 2 1 2 2 2 2 1 2 1 1 1 2 1 1 2 2 1 2 1 1 2 1 1 2 2 2 2 2 2 2 2 1 2 2 2 1 2 2 1 1 2 1 1 1 1 1 1 2 2 2 1 1 1 1 1 2 2 2 2 2 2 1 2", "output": "0" }, { "input": "5 5\n5 5 5 5 4", "output": "0" } ]
1,566,394,278
258
PyPy 3
OK
TESTS
106
155
1,228,800
# Contest: Codeforces Round #415 (Div. 2) (https://codeforces.com/contest/810) # Problem: A: Straight <<A>> (https://codeforces.com/contest/810/problem/A) def rint(): return int(input()) def rints(): return list(map(int, input().split())) n, k = rints() a = rints() sa = sum(a) for i in range(20000): if (sa + i * k) / (n + i) >= k - 0.5: print(i) break
Title: Straight <<A>> Time Limit: None seconds Memory Limit: None megabytes Problem Description: Noora is a student of one famous high school. It's her final year in school — she is going to study in university next year. However, she has to get an «A» graduation certificate in order to apply to a prestigious one. In school, where Noora is studying, teachers are putting down marks to the online class register, which are integers from 1 to *k*. The worst mark is 1, the best is *k*. Mark that is going to the certificate, is calculated as an average of all the marks, rounded to the closest integer. If several answers are possible, rounding up is produced. For example, 7.3 is rounded to 7, but 7.5 and 7.8784 — to 8. For instance, if Noora has marks [8,<=9], then the mark to the certificate is 9, because the average is equal to 8.5 and rounded to 9, but if the marks are [8,<=8,<=9], Noora will have graduation certificate with 8. To graduate with «A» certificate, Noora has to have mark *k*. Noora got *n* marks in register this year. However, she is afraid that her marks are not enough to get final mark *k*. Noora decided to ask for help in the internet, where hacker Leha immediately responded to her request. He is ready to hack class register for Noora and to add Noora any number of additional marks from 1 to *k*. At the same time, Leha want his hack be unseen to everyone, so he decided to add as less as possible additional marks. Please help Leha to calculate the minimal number of marks he has to add, so that final Noora's mark will become equal to *k*. Input Specification: The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=100,<=1<=≤<=*k*<=≤<=100) denoting the number of marks, received by Noora and the value of highest possible mark. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*k*) denoting marks received by Noora before Leha's hack. Output Specification: Print a single integer — minimal number of additional marks, that Leha has to add in order to change Noora's final mark to *k*. Demo Input: ['2 10\n8 9\n', '3 5\n4 4 4\n'] Demo Output: ['4', '3'] Note: Consider the first example testcase. Maximal mark is 10, Noora received two marks — 8 and 9, so current final mark is 9. To fix it, Leha can add marks [10, 10, 10, 10] (4 marks in total) to the registry, achieving Noora having average mark equal to <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/1b961585522f76271546da990a6228e7c666277f.png" style="max-width: 100.0%;max-height: 100.0%;"/>. Consequently, new final mark is 10. Less number of marks won't fix the situation. In the second example Leha can add [5, 5, 5] to the registry, so that making average mark equal to 4.5, which is enough to have 5 in the certificate.
```python # Contest: Codeforces Round #415 (Div. 2) (https://codeforces.com/contest/810) # Problem: A: Straight <<A>> (https://codeforces.com/contest/810/problem/A) def rint(): return int(input()) def rints(): return list(map(int, input().split())) n, k = rints() a = rints() sa = sum(a) for i in range(20000): if (sa + i * k) / (n + i) >= k - 0.5: print(i) break ```
3
27
A
Next Test
PROGRAMMING
1,200
[ "implementation", "sortings" ]
A. Next Test
2
256
«Polygon» is a system which allows to create programming tasks in a simple and professional way. When you add a test to the problem, the corresponding form asks you for the test index. As in most cases it is clear which index the next test will have, the system suggests the default value of the index. It is calculated as the smallest positive integer which is not used as an index for some previously added test. You are to implement this feature. Create a program which determines the default index of the next test, given the indexes of the previously added tests.
The first line contains one integer *n* (1<=≤<=*n*<=≤<=3000) — the amount of previously added tests. The second line contains *n* distinct integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=3000) — indexes of these tests.
Output the required default value for the next test index.
[ "3\n1 7 2\n" ]
[ "3\n" ]
none
500
[ { "input": "1\n1", "output": "2" }, { "input": "2\n2 1", "output": "3" }, { "input": "3\n3 4 1", "output": "2" }, { "input": "4\n6 4 3 5", "output": "1" }, { "input": "5\n3 2 1 7 4", "output": "5" }, { "input": "6\n4 1 2 5 3 7", "output": "6" }, { "input": "7\n3 2 1 6 5 7 4", "output": "8" }, { "input": "8\n2 8 3 7 6 9 1 5", "output": "4" }, { "input": "9\n10 5 9 3 8 7 1 2 4", "output": "6" }, { "input": "10\n7 2 3 8 9 6 5 4 1 10", "output": "11" }, { "input": "1\n1", "output": "2" }, { "input": "2\n1 2", "output": "3" }, { "input": "3\n2 4 1", "output": "3" }, { "input": "4\n4 2 3 1", "output": "5" }, { "input": "5\n3 1 4 2 5", "output": "6" }, { "input": "6\n1 3 6 7 2 4", "output": "5" }, { "input": "7\n1 5 4 7 2 3 6", "output": "8" }, { "input": "8\n12 1 6 5 2 8 3 4", "output": "7" }, { "input": "9\n3 2 7 5 6 4 1 9 10", "output": "8" }, { "input": "10\n1 7 13 6 5 10 3 8 2 4", "output": "9" }, { "input": "1\n2", "output": "1" }, { "input": "1\n3", "output": "1" }, { "input": "1\n3000", "output": "1" }, { "input": "2\n2 3", "output": "1" }, { "input": "2\n3000 1", "output": "2" } ]
1,590,756,193
2,147,483,647
PyPy 3
RUNTIME_ERROR
TESTS
0
372
2,252,800
import heapq n = int(input()) arr = [int(x) for x in input().split()] heap = [] # heap = heapq.heapify(arr) arr.sort() i = 0 while i < n-1: if arr[i+1] - arr[i] > 1: ans = arr[i]+1 i+=1 if i == n-1: print(ans) else: print(arr[n-1]+1)
Title: Next Test Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: «Polygon» is a system which allows to create programming tasks in a simple and professional way. When you add a test to the problem, the corresponding form asks you for the test index. As in most cases it is clear which index the next test will have, the system suggests the default value of the index. It is calculated as the smallest positive integer which is not used as an index for some previously added test. You are to implement this feature. Create a program which determines the default index of the next test, given the indexes of the previously added tests. Input Specification: The first line contains one integer *n* (1<=≤<=*n*<=≤<=3000) — the amount of previously added tests. The second line contains *n* distinct integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=3000) — indexes of these tests. Output Specification: Output the required default value for the next test index. Demo Input: ['3\n1 7 2\n'] Demo Output: ['3\n'] Note: none
```python import heapq n = int(input()) arr = [int(x) for x in input().split()] heap = [] # heap = heapq.heapify(arr) arr.sort() i = 0 while i < n-1: if arr[i+1] - arr[i] > 1: ans = arr[i]+1 i+=1 if i == n-1: print(ans) else: print(arr[n-1]+1) ```
-1
505
A
Mr. Kitayuta's Gift
PROGRAMMING
1,100
[ "brute force", "implementation", "strings" ]
null
null
Mr. Kitayuta has kindly given you a string *s* consisting of lowercase English letters. You are asked to insert exactly one lowercase English letter into *s* to make it a palindrome. A palindrome is a string that reads the same forward and backward. For example, "noon", "testset" and "a" are all palindromes, while "test" and "kitayuta" are not. You can choose any lowercase English letter, and insert it to any position of *s*, possibly to the beginning or the end of *s*. You have to insert a letter even if the given string is already a palindrome. If it is possible to insert one lowercase English letter into *s* so that the resulting string will be a palindrome, print the string after the insertion. Otherwise, print "NA" (without quotes, case-sensitive). In case there is more than one palindrome that can be obtained, you are allowed to print any of them.
The only line of the input contains a string *s* (1<=≤<=|*s*|<=≤<=10). Each character in *s* is a lowercase English letter.
If it is possible to turn *s* into a palindrome by inserting one lowercase English letter, print the resulting string in a single line. Otherwise, print "NA" (without quotes, case-sensitive). In case there is more than one solution, any of them will be accepted.
[ "revive\n", "ee\n", "kitayuta\n" ]
[ "reviver\n", "eye", "NA\n" ]
For the first sample, insert 'r' to the end of "revive" to obtain a palindrome "reviver". For the second sample, there is more than one solution. For example, "eve" will also be accepted. For the third sample, it is not possible to turn "kitayuta" into a palindrome by just inserting one letter.
500
[ { "input": "revive", "output": "reviver" }, { "input": "ee", "output": "eee" }, { "input": "kitayuta", "output": "NA" }, { "input": "evima", "output": "NA" }, { "input": "a", "output": "aa" }, { "input": "yutampo", "output": "NA" }, { "input": "fft", "output": "tfft" }, { "input": "shuseki", "output": "NA" }, { "input": "lsdijfjisl", "output": "lsdijfjidsl" }, { "input": "ewcdcwerp", "output": "NA" }, { "input": "noon", "output": "nooon" }, { "input": "add", "output": "adda" }, { "input": "iq", "output": "qiq" }, { "input": "hogloid", "output": "NA" }, { "input": "yosupo", "output": "NA" }, { "input": "stat", "output": "stats" }, { "input": "level", "output": "levvel" }, { "input": "iwiwi", "output": "iwiiwi" }, { "input": "racecar", "output": "raceecar" }, { "input": "dog", "output": "NA" }, { "input": "squirrel", "output": "NA" }, { "input": "slime", "output": "NA" }, { "input": "palindrome", "output": "NA" }, { "input": "nqwcvcwqn", "output": "nqwcvvcwqn" }, { "input": "lsdijfjisl", "output": "lsdijfjidsl" }, { "input": "jewiiwefj", "output": "jfewiiwefj" }, { "input": "vnwmvvmonv", "output": "NA" }, { "input": "zennyuu", "output": "NA" }, { "input": "mrtoudai", "output": "NA" }, { "input": "z", "output": "zz" }, { "input": "babccba", "output": "babccbab" }, { "input": "battaba", "output": "abattaba" }, { "input": "bbb", "output": "bbbb" }, { "input": "zaa", "output": "zaaz" }, { "input": "abbabab", "output": "NA" }, { "input": "racecar", "output": "raceecar" }, { "input": "zzz", "output": "zzzz" }, { "input": "eviver", "output": "reviver" }, { "input": "aaaaa", "output": "aaaaaa" }, { "input": "eee", "output": "eeee" } ]
1,578,571,360
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
6
124
0
s = list(input()) l = len(s) le = s[:l//2] ri = s[l//2:] if l&1: if le == ri[1:][::-1]: print("".join(le+ri[:1]*2+ri[1:])) else: print("NA") else: if le[0] != ri[l//2-1]: ri = ri[1:] ri.append(le[0]) if le == ri[::-1]: print("".join(le+s[l//2:l//2+1]+ri)) else: print("NA") elif le == ri[::-1]: print("".join(le+["z"]+ri)) else: print("NA")
Title: Mr. Kitayuta's Gift Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mr. Kitayuta has kindly given you a string *s* consisting of lowercase English letters. You are asked to insert exactly one lowercase English letter into *s* to make it a palindrome. A palindrome is a string that reads the same forward and backward. For example, "noon", "testset" and "a" are all palindromes, while "test" and "kitayuta" are not. You can choose any lowercase English letter, and insert it to any position of *s*, possibly to the beginning or the end of *s*. You have to insert a letter even if the given string is already a palindrome. If it is possible to insert one lowercase English letter into *s* so that the resulting string will be a palindrome, print the string after the insertion. Otherwise, print "NA" (without quotes, case-sensitive). In case there is more than one palindrome that can be obtained, you are allowed to print any of them. Input Specification: The only line of the input contains a string *s* (1<=≤<=|*s*|<=≤<=10). Each character in *s* is a lowercase English letter. Output Specification: If it is possible to turn *s* into a palindrome by inserting one lowercase English letter, print the resulting string in a single line. Otherwise, print "NA" (without quotes, case-sensitive). In case there is more than one solution, any of them will be accepted. Demo Input: ['revive\n', 'ee\n', 'kitayuta\n'] Demo Output: ['reviver\n', 'eye', 'NA\n'] Note: For the first sample, insert 'r' to the end of "revive" to obtain a palindrome "reviver". For the second sample, there is more than one solution. For example, "eve" will also be accepted. For the third sample, it is not possible to turn "kitayuta" into a palindrome by just inserting one letter.
```python s = list(input()) l = len(s) le = s[:l//2] ri = s[l//2:] if l&1: if le == ri[1:][::-1]: print("".join(le+ri[:1]*2+ri[1:])) else: print("NA") else: if le[0] != ri[l//2-1]: ri = ri[1:] ri.append(le[0]) if le == ri[::-1]: print("".join(le+s[l//2:l//2+1]+ri)) else: print("NA") elif le == ri[::-1]: print("".join(le+["z"]+ri)) else: print("NA") ```
0
952
A
Quirky Quantifiers
PROGRAMMING
800
[ "math" ]
null
null
The input contains a single integer *a* (10<=≤<=*a*<=≤<=999). Output 0 or 1.
The input contains a single integer *a* (10<=≤<=*a*<=≤<=999).
Output 0 or 1.
[ "13\n", "927\n", "48\n" ]
[ "1\n", "1\n", "0\n" ]
none
0
[ { "input": "13", "output": "1" }, { "input": "927", "output": "1" }, { "input": "48", "output": "0" }, { "input": "10", "output": "0" }, { "input": "999", "output": "1" }, { "input": "142", "output": "0" }, { "input": "309", "output": "1" }, { "input": "572", "output": "0" }, { "input": "835", "output": "1" }, { "input": "990", "output": "0" }, { "input": "168", "output": "0" }, { "input": "431", "output": "1" }, { "input": "694", "output": "0" }, { "input": "957", "output": "1" }, { "input": "932", "output": "0" } ]
1,633,877,477
2,147,483,647
Python 3
OK
TESTS
15
77
6,758,400
print([1,0][(int(input()))%2==0])
Title: Quirky Quantifiers Time Limit: None seconds Memory Limit: None megabytes Problem Description: The input contains a single integer *a* (10<=≤<=*a*<=≤<=999). Output 0 or 1. Input Specification: The input contains a single integer *a* (10<=≤<=*a*<=≤<=999). Output Specification: Output 0 or 1. Demo Input: ['13\n', '927\n', '48\n'] Demo Output: ['1\n', '1\n', '0\n'] Note: none
```python print([1,0][(int(input()))%2==0]) ```
3
656
A
Da Vinci Powers
PROGRAMMING
1,900
[ "*special" ]
null
null
The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output a single integer.
The input contains a single integer *a* (0<=≤<=*a*<=≤<=35).
Output a single integer.
[ "3\n", "10\n" ]
[ "8\n", "1024\n" ]
none
0
[ { "input": "3", "output": "8" }, { "input": "10", "output": "1024" }, { "input": "35", "output": "33940307968" }, { "input": "0", "output": "1" }, { "input": "1", "output": "2" }, { "input": "2", "output": "4" }, { "input": "4", "output": "16" }, { "input": "5", "output": "32" }, { "input": "6", "output": "64" }, { "input": "7", "output": "128" }, { "input": "8", "output": "256" }, { "input": "9", "output": "512" }, { "input": "11", "output": "2048" }, { "input": "12", "output": "4096" }, { "input": "13", "output": "8092" }, { "input": "14", "output": "16184" }, { "input": "15", "output": "32368" }, { "input": "16", "output": "64736" }, { "input": "17", "output": "129472" }, { "input": "18", "output": "258944" }, { "input": "19", "output": "517888" }, { "input": "20", "output": "1035776" }, { "input": "21", "output": "2071552" }, { "input": "22", "output": "4143104" }, { "input": "23", "output": "8286208" }, { "input": "24", "output": "16572416" }, { "input": "25", "output": "33144832" }, { "input": "26", "output": "66289664" }, { "input": "27", "output": "132579328" }, { "input": "28", "output": "265158656" }, { "input": "29", "output": "530317312" }, { "input": "30", "output": "1060634624" }, { "input": "31", "output": "2121269248" }, { "input": "32", "output": "4242538496" }, { "input": "33", "output": "8485076992" }, { "input": "34", "output": "16970153984" } ]
1,680,182,028
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
46
0
print(1 << int(input())) ######################################### ## ## ## Implemented by brownfox2k6 ## ## ## #########################################
Title: Da Vinci Powers Time Limit: None seconds Memory Limit: None megabytes Problem Description: The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output a single integer. Input Specification: The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output Specification: Output a single integer. Demo Input: ['3\n', '10\n'] Demo Output: ['8\n', '1024\n'] Note: none
```python print(1 << int(input())) ######################################### ## ## ## Implemented by brownfox2k6 ## ## ## ######################################### ```
0
133
A
HQ9+
PROGRAMMING
900
[ "implementation" ]
null
null
HQ9+ is a joke programming language which has only four one-character instructions: - "H" prints "Hello, World!",- "Q" prints the source code of the program itself,- "9" prints the lyrics of "99 Bottles of Beer" song, - "+" increments the value stored in the internal accumulator. Instructions "H" and "Q" are case-sensitive and must be uppercase. The characters of the program which are not instructions are ignored. You are given a program written in HQ9+. You have to figure out whether executing this program will produce any output.
The input will consist of a single line *p* which will give a program in HQ9+. String *p* will contain between 1 and 100 characters, inclusive. ASCII-code of each character of *p* will be between 33 (exclamation mark) and 126 (tilde), inclusive.
Output "YES", if executing the program will produce any output, and "NO" otherwise.
[ "Hi!\n", "Codeforces\n" ]
[ "YES\n", "NO\n" ]
In the first case the program contains only one instruction — "H", which prints "Hello, World!". In the second case none of the program characters are language instructions.
500
[ { "input": "Hi!", "output": "YES" }, { "input": "Codeforces", "output": "NO" }, { "input": "a+b=c", "output": "NO" }, { "input": "hq-lowercase", "output": "NO" }, { "input": "Q", "output": "YES" }, { "input": "9", "output": "YES" }, { "input": "H", "output": "YES" }, { "input": "+", "output": "NO" }, { "input": "~", "output": "NO" }, { "input": "dEHsbM'gS[\\brZ_dpjXw8f?L[4E\"s4Zc9*(,j:>p$}m7HD[_9nOWQ\\uvq2mHWR", "output": "YES" }, { "input": "tt6l=RHOfStm.;Qd$-}zDes*E,.F7qn5-b%HC", "output": "YES" }, { "input": "@F%K2=%RyL/", "output": "NO" }, { "input": "juq)k(FT.^G=G\\zcqnO\"uJIE1_]KFH9S=1c\"mJ;F9F)%>&.WOdp09+k`Yc6}\"6xw,Aos:M\\_^^:xBb[CcsHm?J", "output": "YES" }, { "input": "6G_\"Fq#<AWyHG=Rci1t%#Jc#x<Fpg'N@t%F=``YO7\\Zd;6PkMe<#91YgzTC)", "output": "YES" }, { "input": "Fvg_~wC>SO4lF}*c`Q;mII9E{4.QodbqN]C", "output": "YES" }, { "input": "p-UXsbd&f", "output": "NO" }, { "input": "<]D7NMA)yZe=`?RbP5lsa.l_Mg^V:\"-0x+$3c,q&L%18Ku<HcA\\s!^OQblk^x{35S'>yz8cKgVHWZ]kV0>_", "output": "YES" }, { "input": "f.20)8b+.R}Gy!DbHU3v(.(=Q^`z[_BaQ}eO=C1IK;b2GkD\\{\\Bf\"!#qh]", "output": "YES" }, { "input": "}do5RU<(w<q[\"-NR)IAH_HyiD{", "output": "YES" }, { "input": "Iy^.,Aw*,5+f;l@Q;jLK'G5H-r1Pfmx?ei~`CjMmUe{K:lS9cu4ay8rqRh-W?Gqv!e-j*U)!Mzn{E8B6%~aSZ~iQ_QwlC9_cX(o8", "output": "YES" }, { "input": "sKLje,:q>-D,;NvQ3,qN3-N&tPx0nL/,>Ca|z\"k2S{NF7btLa3_TyXG4XZ:`(t&\"'^M|@qObZxv", "output": "YES" }, { "input": "%z:c@1ZsQ@\\6U/NQ+M9R>,$bwG`U1+C\\18^:S},;kw!&4r|z`", "output": "YES" }, { "input": "OKBB5z7ud81[Tn@P\"nDUd,>@", "output": "NO" }, { "input": "y{0;neX]w0IenPvPx0iXp+X|IzLZZaRzBJ>q~LhMhD$x-^GDwl;,a'<bAqH8QrFwbK@oi?I'W.bZ]MlIQ/x(0YzbTH^l.)]0Bv", "output": "YES" }, { "input": "EL|xIP5_+Caon1hPpQ0[8+r@LX4;b?gMy>;/WH)pf@Ur*TiXu*e}b-*%acUA~A?>MDz#!\\Uh", "output": "YES" }, { "input": "UbkW=UVb>;z6)p@Phr;^Dn.|5O{_i||:Rv|KJ_ay~V(S&Jp", "output": "NO" }, { "input": "!3YPv@2JQ44@)R2O_4`GO", "output": "YES" }, { "input": "Kba/Q,SL~FMd)3hOWU'Jum{9\"$Ld4:GW}D]%tr@G{hpG:PV5-c'VIZ~m/6|3I?_4*1luKnOp`%p|0H{[|Y1A~4-ZdX,Rw2[\\", "output": "YES" }, { "input": "NRN*=v>;oU7[acMIJn*n^bWm!cm3#E7Efr>{g-8bl\"DN4~_=f?[T;~Fq#&)aXq%</GcTJD^e$@Extm[e\"C)q_L", "output": "NO" }, { "input": "y#<fv{_=$MP!{D%I\\1OqjaqKh[pqE$KvYL<9@*V'j8uH0/gQdA'G;&y4Cv6&", "output": "YES" }, { "input": "+SE_Pg<?7Fh,z&uITQut2a-mk8X8La`c2A}", "output": "YES" }, { "input": "Uh3>ER](J", "output": "NO" }, { "input": "!:!{~=9*\\P;Z6F?HC5GadFz)>k*=u|+\"Cm]ICTmB!`L{&oS/z6b~#Snbp/^\\Q>XWU-vY+/dP.7S=-#&whS@,", "output": "YES" }, { "input": "KimtYBZp+ISeO(uH;UldoE6eAcp|9u?SzGZd6j-e}[}u#e[Cx8.qgY]$2!", "output": "YES" }, { "input": "[:[SN-{r>[l+OggH3v3g{EPC*@YBATT@", "output": "YES" }, { "input": "'jdL(vX", "output": "NO" }, { "input": "Q;R+aay]cL?Zh*uG\"YcmO*@Dts*Gjp}D~M7Z96+<4?9I3aH~0qNdO(RmyRy=ci,s8qD_kwj;QHFzD|5,5", "output": "YES" }, { "input": "{Q@#<LU_v^qdh%gGxz*pu)Y\"]k-l-N30WAxvp2IE3:jD0Wi4H/xWPH&s", "output": "YES" }, { "input": "~@Gb(S&N$mBuBUMAky-z^{5VwLNTzYg|ZUZncL@ahS?K*As<$iNUARM3r43J'jJB)$ujfPAq\"G<S9flGyakZg!2Z.-NJ|2{F>]", "output": "YES" }, { "input": "Jp5Aa>aP6fZ!\\6%A}<S}j{O4`C6y$8|i3IW,WHy&\"ioE&7zP\"'xHAY;:x%@SnS]Mr{R|})gU", "output": "YES" }, { "input": "ZA#:U)$RI^sE\\vuAt]x\"2zipI!}YEu2<j$:H0_9/~eB?#->", "output": "YES" }, { "input": "&ppw0._:\\p-PuWM@l}%%=", "output": "NO" }, { "input": "P(^pix\"=oiEZu8?@d@J(I`Xp5TN^T3\\Z7P5\"ZrvZ{2Fwz3g-8`U!)(1$a<g+9Q|COhDoH;HwFY02Pa|ZGp$/WZBR=>6Jg!yr", "output": "YES" }, { "input": "`WfODc\\?#ax~1xu@[ao+o_rN|L7%v,p,nDv>3+6cy.]q3)+A6b!q*Hc+#.t4f~vhUa~$^q", "output": "YES" }, { "input": ",)TH9N}'6t2+0Yg?S#6/{_.,!)9d}h'wG|sY&'Ul4D0l0", "output": "YES" }, { "input": "VXB&r9Z)IlKOJ:??KDA", "output": "YES" }, { "input": "\")1cL>{o\\dcYJzu?CefyN^bGRviOH&P7rJS3PT4:0V3F)%\\}L=AJouYsj_>j2|7^1NWu*%NbOP>ngv-ls<;b-4Sd3Na0R", "output": "YES" }, { "input": "2Y}\\A)>row{~c[g>:'.|ZC8%UTQ/jcdhK%6O)QRC.kd@%y}LJYk=V{G5pQK/yKJ%{G3C", "output": "YES" }, { "input": "O.&=qt(`z(", "output": "NO" }, { "input": "_^r6fyIc/~~;>l%9?aVEi7-{=,[<aMiB'-scSg$$|\"jAzY0N>QkHHGBZj2c\"=fhRlWd5;5K|GgU?7h]!;wl@", "output": "YES" }, { "input": "+/`sAd&eB29E=Nu87${.u6GY@$^a$,}s^!p!F}B-z8<<wORb<S7;HM1a,gp", "output": "YES" }, { "input": "U_ilyOGMT+QiW/M8/D(1=6a7)_FA,h4`8", "output": "YES" }, { "input": "!0WKT:$O", "output": "NO" }, { "input": "1EE*I%EQz6$~pPu7|(r7nyPQt4uGU@]~H'4uII?b1_Wn)K?ZRHrr0z&Kr;}aO3<mN=3:{}QgPxI|Ncm4#)", "output": "YES" }, { "input": "[u3\"$+!:/.<Dp1M7tH}:zxjt],^kv}qP;y12\"`^'/u*h%AFmPJ>e1#Yly", "output": "YES" }, { "input": "'F!_]tB<A&UO+p?7liE>(x&RFgG2~\\(", "output": "NO" }, { "input": "Qv)X8", "output": "YES" }, { "input": "aGv7,J@&g1(}E3g6[LuDZwZl2<v7IwQA%\"R(?ouBD>_=y\"3Kf%^>vON<a^T\\G^ootgE@whWmZo=[ex|F", "output": "YES" }, { "input": "e{}2vQ+/r@p0}cLKNe4MCk", "output": "YES" }, { "input": "mzbmweyydiadtlcouegmdbyfwurpwbpuvhifnuapwyndmhtqvkgkbhtytszotwflegsjzzszfwtzfpnscguemwrczqxycivdqnkH", "output": "YES" }, { "input": "Qzbmweyydiadtlcouegmdbyfwurpwbpuvhifnuapwyndmhtqvkgkbhtytszotwflegsjzzszfwtzfpnscguemwrczqxycivdqnky", "output": "YES" }, { "input": "mzbmweyydiadtlcouegmdbyfwurpwb9uvhifnuapwyndmhtqvkgkbhtytszotwflegsjzzszfwtzfpnscguemwrczqxycivdqnky", "output": "YES" }, { "input": "1H1", "output": "YES" }, { "input": "+Q", "output": "YES" }, { "input": "1ab", "output": "NO" }, { "input": "!", "output": "NO" }, { "input": "0+", "output": "NO" }, { "input": "+H", "output": "YES" }, { "input": "cH", "output": "YES" }, { "input": "+8", "output": "NO" }, { "input": "8+", "output": "NO" }, { "input": "++++++++++++++++++++++++++", "output": "NO" }, { "input": "(+)", "output": "NO" }, { "input": "H+", "output": "YES" }, { "input": "a!", "output": "NO" }, { "input": "++++++++++++++", "output": "NO" }, { "input": "+++++++++++++++++++++++++++++++++++++++++++++++++++++++++", "output": "NO" }, { "input": "8", "output": "NO" }, { "input": "3", "output": "NO" }, { "input": "HQ9", "output": "YES" }, { "input": "+++H", "output": "YES" }, { "input": "++++++++++", "output": "NO" }, { "input": "HHHHHHH", "output": "YES" }, { "input": "abacabaH", "output": "YES" }, { "input": "+G", "output": "NO" } ]
1,699,344,813
2,147,483,647
Python 3
OK
TESTS
85
92
0
word = (input()) aranan = ["H", "Q", "9"] lastrng = len(word) con = 0 for i in range(0,lastrng): if word[i] in aranan: con = 1 break else: con = 0 if con == 1: print("YES") else: print("NO")
Title: HQ9+ Time Limit: None seconds Memory Limit: None megabytes Problem Description: HQ9+ is a joke programming language which has only four one-character instructions: - "H" prints "Hello, World!",- "Q" prints the source code of the program itself,- "9" prints the lyrics of "99 Bottles of Beer" song, - "+" increments the value stored in the internal accumulator. Instructions "H" and "Q" are case-sensitive and must be uppercase. The characters of the program which are not instructions are ignored. You are given a program written in HQ9+. You have to figure out whether executing this program will produce any output. Input Specification: The input will consist of a single line *p* which will give a program in HQ9+. String *p* will contain between 1 and 100 characters, inclusive. ASCII-code of each character of *p* will be between 33 (exclamation mark) and 126 (tilde), inclusive. Output Specification: Output "YES", if executing the program will produce any output, and "NO" otherwise. Demo Input: ['Hi!\n', 'Codeforces\n'] Demo Output: ['YES\n', 'NO\n'] Note: In the first case the program contains only one instruction — "H", which prints "Hello, World!". In the second case none of the program characters are language instructions.
```python word = (input()) aranan = ["H", "Q", "9"] lastrng = len(word) con = 0 for i in range(0,lastrng): if word[i] in aranan: con = 1 break else: con = 0 if con == 1: print("YES") else: print("NO") ```
3
651
A
Joysticks
PROGRAMMING
1,100
[ "dp", "greedy", "implementation", "math" ]
null
null
Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger). Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops. Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent.
The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively.
Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged.
[ "3 5\n", "4 4\n" ]
[ "6\n", "5\n" ]
In the first sample game lasts for 6 minute by using the following algorithm: - at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%. After that the first joystick is completely discharged and the game is stopped.
500
[ { "input": "3 5", "output": "6" }, { "input": "4 4", "output": "5" }, { "input": "100 100", "output": "197" }, { "input": "1 100", "output": "98" }, { "input": "100 1", "output": "98" }, { "input": "1 4", "output": "2" }, { "input": "1 1", "output": "0" }, { "input": "8 8", "output": "13" }, { "input": "7 2", "output": "7" }, { "input": "24 15", "output": "36" }, { "input": "19 30", "output": "47" }, { "input": "15 31", "output": "44" }, { "input": "14 15", "output": "27" }, { "input": "58 33", "output": "89" }, { "input": "15 25", "output": "38" }, { "input": "59 45", "output": "102" }, { "input": "3 73", "output": "74" }, { "input": "48 1", "output": "47" }, { "input": "100 25", "output": "122" }, { "input": "40 49", "output": "86" }, { "input": "85 73", "output": "155" }, { "input": "29 1", "output": "28" }, { "input": "74 25", "output": "97" }, { "input": "24 57", "output": "78" }, { "input": "23 12", "output": "33" }, { "input": "2 99", "output": "99" }, { "input": "98 2", "output": "97" }, { "input": "2 97", "output": "97" }, { "input": "30 54", "output": "81" }, { "input": "32 53", "output": "82" }, { "input": "32 54", "output": "84" }, { "input": "1 2", "output": "1" }, { "input": "2 1", "output": "1" }, { "input": "2 2", "output": "1" }, { "input": "1 3", "output": "2" }, { "input": "3 1", "output": "2" }, { "input": "1 4", "output": "2" }, { "input": "2 3", "output": "3" }, { "input": "3 2", "output": "3" } ]
1,592,081,510
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
93
0
pwr = [int(x) for x in input().split()] pwr.sort() mins = 0 # move towards x=y line while pwr[1] - pwr[0] > 1: pwr[0] += 1 pwr[1] -= 2 mins += 1 # move in 2-minute steps diagonally while sum(pwr) > 4: pwr[0] -= 1 pwr[1] -= 1 mins += 2 # add last minute or two if pwr[0] == 2: mins += 1 else: mins += 2 print(mins)
Title: Joysticks Time Limit: None seconds Memory Limit: None megabytes Problem Description: Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger). Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops. Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent. Input Specification: The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively. Output Specification: Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged. Demo Input: ['3 5\n', '4 4\n'] Demo Output: ['6\n', '5\n'] Note: In the first sample game lasts for 6 minute by using the following algorithm: - at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%. After that the first joystick is completely discharged and the game is stopped.
```python pwr = [int(x) for x in input().split()] pwr.sort() mins = 0 # move towards x=y line while pwr[1] - pwr[0] > 1: pwr[0] += 1 pwr[1] -= 2 mins += 1 # move in 2-minute steps diagonally while sum(pwr) > 4: pwr[0] -= 1 pwr[1] -= 1 mins += 2 # add last minute or two if pwr[0] == 2: mins += 1 else: mins += 2 print(mins) ```
0
688
A
Opponents
PROGRAMMING
800
[ "implementation" ]
null
null
Arya has *n* opponents in the school. Each day he will fight with all opponents who are present this day. His opponents have some fighting plan that guarantees they will win, but implementing this plan requires presence of them all. That means if one day at least one of Arya's opponents is absent at the school, then Arya will beat all present opponents. Otherwise, if all opponents are present, then they will beat Arya. For each opponent Arya knows his schedule — whether or not he is going to present on each particular day. Tell him the maximum number of consecutive days that he will beat all present opponents. Note, that if some day there are no opponents present, Arya still considers he beats all the present opponents.
The first line of the input contains two integers *n* and *d* (1<=≤<=*n*,<=*d*<=≤<=100) — the number of opponents and the number of days, respectively. The *i*-th of the following *d* lines contains a string of length *n* consisting of characters '0' and '1'. The *j*-th character of this string is '0' if the *j*-th opponent is going to be absent on the *i*-th day.
Print the only integer — the maximum number of consecutive days that Arya will beat all present opponents.
[ "2 2\n10\n00\n", "4 1\n0100\n", "4 5\n1101\n1111\n0110\n1011\n1111\n" ]
[ "2\n", "1\n", "2\n" ]
In the first and the second samples, Arya will beat all present opponents each of the *d* days. In the third sample, Arya will beat his opponents on days 1, 3 and 4 and his opponents will beat him on days 2 and 5. Thus, the maximum number of consecutive winning days is 2, which happens on days 3 and 4.
500
[ { "input": "2 2\n10\n00", "output": "2" }, { "input": "4 1\n0100", "output": "1" }, { "input": "4 5\n1101\n1111\n0110\n1011\n1111", "output": "2" }, { "input": "3 2\n110\n110", "output": "2" }, { "input": "10 6\n1111111111\n0100110101\n1111111111\n0000011010\n1111111111\n1111111111", "output": "1" }, { "input": "10 10\n1111111111\n0001001000\n1111111111\n1111111111\n1111111111\n1000000100\n1111111111\n0000011100\n1111111111\n1111111111", "output": "1" }, { "input": "10 10\n0000100011\n0100001111\n1111111111\n1100011111\n1111111111\n1000111000\n1111000010\n0111001001\n1101010110\n1111111111", "output": "4" }, { "input": "10 10\n1100110010\n0000000001\n1011100111\n1111111111\n1111111111\n1111111111\n1100010110\n1111111111\n1001001010\n1111111111", "output": "3" }, { "input": "10 7\n0000111001\n1111111111\n0110110001\n1111111111\n1111111111\n1000111100\n0110000111", "output": "2" }, { "input": "5 10\n00110\n11000\n10010\n00010\n11110\n01101\n11111\n10001\n11111\n01001", "output": "6" }, { "input": "5 9\n11111\n11101\n11111\n11111\n01010\n01010\n00000\n11111\n00111", "output": "3" }, { "input": "5 10\n11111\n00010\n11010\n11111\n11111\n00100\n11111\n11111\n01000\n11111", "output": "2" }, { "input": "5 9\n11111\n11111\n11111\n11111\n11100\n11111\n11111\n11111\n00000", "output": "1" }, { "input": "5 8\n11111\n10110\n01001\n11111\n01100\n10010\n11111\n11111", "output": "2" }, { "input": "1 1\n1", "output": "0" }, { "input": "100 1\n0011001100100010000011001100000001011101110110010001110001101100110011111101001011011001000010001111", "output": "1" }, { "input": "100 1\n1011011100000101000111110000110111010101110010010011110010001110100011001110110101111100100110000000", "output": "1" }, { "input": "100 1\n1110000011110101010111111100011001100000101101010110100101110000011100110110110101011100110110010011", "output": "1" }, { "input": "100 1\n1111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111", "output": "0" }, { "input": "1 100\n1\n0\n0\n0\n1\n1\n0\n0\n0\n0\n1\n1\n0\n1\n1\n0\n0\n1\n1\n1\n0\n0\n1\n1\n1\n1\n1\n0\n1\n0\n0\n0\n1\n1\n0\n1\n0\n1\n0\n0\n0\n1\n0\n1\n0\n0\n0\n1\n1\n1\n0\n1\n1\n1\n0\n1\n0\n1\n1\n1\n1\n0\n0\n0\n0\n0\n0\n1\n1\n0\n1\n1\n1\n1\n1\n0\n1\n1\n1\n1\n1\n0\n1\n0\n0\n1\n0\n0\n1\n0\n0\n1\n0\n1\n1\n1\n0\n1\n0\n0", "output": "6" }, { "input": "1 100\n0\n0\n0\n0\n1\n0\n0\n0\n0\n1\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n1\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0", "output": "49" }, { "input": "1 100\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1", "output": "0" }, { "input": "1 100\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0\n0", "output": "100" }, { "input": "2 2\n11\n10", "output": "1" }, { "input": "1 1\n0", "output": "1" } ]
1,673,291,525
2,147,483,647
Python 3
OK
TESTS
56
62
0
n,d = map(int,input().split()) schedule = [] for i in range(d): schedule.append(list(input())) longest_streak = 0 streak_counter = 0 for day in schedule: if '0' in day: streak_counter += 1 if streak_counter > longest_streak: longest_streak = streak_counter else: streak_counter = 0 print(longest_streak)
Title: Opponents Time Limit: None seconds Memory Limit: None megabytes Problem Description: Arya has *n* opponents in the school. Each day he will fight with all opponents who are present this day. His opponents have some fighting plan that guarantees they will win, but implementing this plan requires presence of them all. That means if one day at least one of Arya's opponents is absent at the school, then Arya will beat all present opponents. Otherwise, if all opponents are present, then they will beat Arya. For each opponent Arya knows his schedule — whether or not he is going to present on each particular day. Tell him the maximum number of consecutive days that he will beat all present opponents. Note, that if some day there are no opponents present, Arya still considers he beats all the present opponents. Input Specification: The first line of the input contains two integers *n* and *d* (1<=≤<=*n*,<=*d*<=≤<=100) — the number of opponents and the number of days, respectively. The *i*-th of the following *d* lines contains a string of length *n* consisting of characters '0' and '1'. The *j*-th character of this string is '0' if the *j*-th opponent is going to be absent on the *i*-th day. Output Specification: Print the only integer — the maximum number of consecutive days that Arya will beat all present opponents. Demo Input: ['2 2\n10\n00\n', '4 1\n0100\n', '4 5\n1101\n1111\n0110\n1011\n1111\n'] Demo Output: ['2\n', '1\n', '2\n'] Note: In the first and the second samples, Arya will beat all present opponents each of the *d* days. In the third sample, Arya will beat his opponents on days 1, 3 and 4 and his opponents will beat him on days 2 and 5. Thus, the maximum number of consecutive winning days is 2, which happens on days 3 and 4.
```python n,d = map(int,input().split()) schedule = [] for i in range(d): schedule.append(list(input())) longest_streak = 0 streak_counter = 0 for day in schedule: if '0' in day: streak_counter += 1 if streak_counter > longest_streak: longest_streak = streak_counter else: streak_counter = 0 print(longest_streak) ```
3
0
none
none
none
0
[ "none" ]
null
null
Beroffice text editor has a wide range of features that help working with text. One of the features is an automatic search for typos and suggestions of how to fix them. Beroffice works only with small English letters (i.e. with 26 letters from a to z). Beroffice thinks that a word is typed with a typo if there are three or more consonants in a row in the word. The only exception is that if the block of consonants has all letters the same, then this block (even if its length is greater than three) is not considered a typo. Formally, a word is typed with a typo if there is a block of not less that three consonants in a row, and there are at least two different letters in this block. For example: - the following words have typos: "hellno", "hackcerrs" and "backtothefutttture"; - the following words don't have typos: "helllllooooo", "tobeornottobe" and "oooooo". When Beroffice editor finds a word with a typo, it inserts as little as possible number of spaces in this word (dividing it into several words) in such a way that each of the resulting words is typed without any typos. Implement this feature of Beroffice editor. Consider the following letters as the only vowels: 'a', 'e', 'i', 'o' and 'u'. All the other letters are consonants in this problem.
The only line contains a non-empty word consisting of small English letters. The length of the word is between 1 and 3000 letters.
Print the given word without any changes if there are no typos. If there is at least one typo in the word, insert the minimum number of spaces into the word so that each of the resulting words doesn't have any typos. If there are multiple solutions, print any of them.
[ "hellno\n", "abacaba\n", "asdfasdf\n" ]
[ "hell no \n", "abacaba \n", "asd fasd f \n" ]
none
0
[ { "input": "hellno", "output": "hell no " }, { "input": "abacaba", "output": "abacaba " }, { "input": "asdfasdf", "output": "asd fasd f " }, { "input": "ooo", "output": "ooo " }, { "input": "moyaoborona", "output": "moyaoborona " }, { "input": "jxegxxx", "output": "jxegx xx " }, { "input": "orfyaenanabckumulsboloyhljhacdgcmnooxvxrtuhcslxgslfpnfnyejbxqisxjyoyvcvuddboxkqgbogkfz", "output": "orf yaenanabc kumuls boloyh lj hacd gc mnooxv xr tuhc sl xg sl fp nf nyejb xqisx jyoyv cvudd boxk qg bogk fz " }, { "input": "zxdgmhsjotvajkwshjpvzcuwehpeyfhakhtlvuoftkgdmvpafmxcliqvrztloocziqdkexhzcbdgxaoyvte", "output": "zx dg mh sjotvajk ws hj pv zcuwehpeyf hakh tl vuoft kg dm vpafm xc liqv rz tloocziqd kexh zc bd gxaoyv te " }, { "input": "niblehmwtycadhbfuginpyafszjbucaszihijndzjtuyuaxkrovotshtsajmdcflnfdmahzbvpymiczqqleedpofcnvhieknlz", "output": "niblehm wt ycadh bfuginp yafs zj bucaszihijn dz jtuyuaxk rovots ht sajm dc fl nf dmahz bv py micz qq leedpofc nv hiekn lz " }, { "input": "pqvtgtctpkgjgxnposjqedofficoyznxlerxyqypyzpoehejtjvyafjxjppywwgeakf", "output": "pq vt gt ct pk gj gx nposj qedofficoyz nx lerx yq yp yz poehejt jv yafj xj pp yw wgeakf " }, { "input": "mvjajoyeg", "output": "mv jajoyeg " }, { "input": "dipxocwjosvdaillxolmthjhzhsxskzqslebpixpuhpgeesrkedhohisdsjsrkiktbjzlhectrfcathvewzficirqbdvzq", "output": "dipxocw josv daill xolm th jh zh sx sk zq slebpixpuhp geesr kedhohisd sj sr kikt bj zl hect rf cath vewz ficirq bd vz q " }, { "input": "ibbtvelwjirxqermucqrgmoauonisgmarjxxybllktccdykvef", "output": "ibb tvelw jirx qermucq rg moauonisg marj xx yb ll kt cc dy kvef " }, { "input": "jxevkmrwlomaaahaubvjzqtyfqhqbhpqhomxqpiuersltohinvfyeykmlooujymldjqhgqjkvqknlyj", "output": "jxevk mr wlomaaahaubv jz qt yf qh qb hp qhomx qpiuers ltohinv fyeyk mlooujy ml dj qh gq jk vq kn ly j " }, { "input": "hzxkuwqxonsulnndlhygvmallghjerwp", "output": "hz xkuwq xonsuln nd lh yg vmall gh jerw p " }, { "input": "jbvcsjdyzlzmxwcvmixunfzxidzvwzaqqdhguvelwbdosbd", "output": "jb vc sj dy zl zm xw cv mixunf zxidz vw zaqq dh guvelw bdosb d " }, { "input": "uyrsxaqmtibbxpfabprvnvbinjoxubupvfyjlqnfrfdeptipketwghr", "output": "uyr sxaqm tibb xp fabp rv nv binjoxubupv fy jl qn fr fdeptipketw gh r " }, { "input": "xfcftysljytybkkzkpqdzralahgvbkxdtheqrhfxpecdjqofnyiahggnkiuusalu", "output": "xf cf ty sl jy ty bk kz kp qd zralahg vb kx dt heqr hf xpecd jqofn yiahg gn kiuusalu " }, { "input": "a", "output": "a " }, { "input": "b", "output": "b " }, { "input": "aa", "output": "aa " }, { "input": "ab", "output": "ab " }, { "input": "ba", "output": "ba " }, { "input": "bb", "output": "bb " }, { "input": "aaa", "output": "aaa " }, { "input": "aab", "output": "aab " }, { "input": "aba", "output": "aba " }, { "input": "abb", "output": "abb " }, { "input": "baa", "output": "baa " }, { "input": "bab", "output": "bab " }, { "input": "bba", "output": "bba " }, { "input": "bbb", "output": "bbb " }, { "input": "bbc", "output": "bb c " }, { "input": "bcb", "output": "bc b " }, { "input": "cbb", "output": "cb b " }, { "input": "bababcdfabbcabcdfacbbabcdfacacabcdfacbcabcdfaccbabcdfacaaabcdfabacabcdfabcbabcdfacbaabcdfabaaabcdfabbaabcdfacababcdfabbbabcdfabcaabcdfaaababcdfabccabcdfacccabcdfaacbabcdfaabaabcdfaabcabcdfaaacabcdfaccaabcdfaabbabcdfaaaaabcdfaacaabcdfaacc", "output": "bababc dfabb cabc dfacb babc dfacacabc dfacb cabc dfacc babc dfacaaabc dfabacabc dfabc babc dfacbaabc dfabaaabc dfabbaabc dfacababc dfabbbabc dfabcaabc dfaaababc dfabc cabc dfacccabc dfaacbabc dfaabaabc dfaabcabc dfaaacabc dfaccaabc dfaabbabc dfaaaaabc dfaacaabc dfaacc " }, { "input": "bddabcdfaccdabcdfadddabcdfabbdabcdfacddabcdfacdbabcdfacbbabcdfacbcabcdfacbdabcdfadbbabcdfabdbabcdfabdcabcdfabbcabcdfabccabcdfabbbabcdfaddcabcdfaccbabcdfadbdabcdfacccabcdfadcdabcdfadcbabcdfabcbabcdfadbcabcdfacdcabcdfabcdabcdfadccabcdfaddb", "output": "bd dabc dfacc dabc dfadddabc dfabb dabc dfacd dabc dfacd babc dfacb babc dfacb cabc dfacb dabc dfadb babc dfabd babc dfabd cabc dfabb cabc dfabc cabc dfabbbabc dfadd cabc dfacc babc dfadb dabc dfacccabc dfadc dabc dfadc babc dfabc babc dfadb cabc dfacd cabc dfabc dabc dfadc cabc dfadd b " }, { "input": "helllllooooo", "output": "helllllooooo " }, { "input": "bbbzxxx", "output": "bbb zx xx " }, { "input": "ffff", "output": "ffff " }, { "input": "cdddddddddddddddddd", "output": "cd ddddddddddddddddd " }, { "input": "bbbc", "output": "bbb c " }, { "input": "lll", "output": "lll " }, { "input": "bbbbb", "output": "bbbbb " }, { "input": "llll", "output": "llll " }, { "input": "bbbbbbccc", "output": "bbbbbb ccc " }, { "input": "lllllb", "output": "lllll b " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "lllll", "output": "lllll " }, { "input": "bbbbbbbbbc", "output": "bbbbbbbbb c " }, { "input": "helllllno", "output": "helllll no " }, { "input": "nnnnnnnnnnnn", "output": "nnnnnnnnnnnn " }, { "input": "bbbbbccc", "output": "bbbbb ccc " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "nnnnnnnnnnnnnnnnnn", "output": "nnnnnnnnnnnnnnnnnn " }, { "input": "zzzzzzzzzzzzzzzzzzzzzzz", "output": "zzzzzzzzzzzzzzzzzzzzzzz " }, { "input": "hhhh", "output": "hhhh " }, { "input": "nnnnnnnnnnnnnnnnnnnnnnnnn", "output": "nnnnnnnnnnnnnnnnnnnnnnnnn " }, { "input": "zzzzzzzzzz", "output": "zzzzzzzzzz " }, { "input": "dddd", "output": "dddd " }, { "input": "heffffffgggggghhhhhh", "output": "heffffff gggggg hhhhhh " }, { "input": "bcddd", "output": "bc ddd " }, { "input": "x", "output": "x " }, { "input": "nnn", "output": "nnn " }, { "input": "xxxxxxxx", "output": "xxxxxxxx " }, { "input": "cclcc", "output": "cc lc c " }, { "input": "tttttttttttttt", "output": "tttttttttttttt " }, { "input": "xxxxxxx", "output": "xxxxxxx " }, { "input": "ccccb", "output": "cccc b " }, { "input": "bcecccc", "output": "bcecccc " }, { "input": "jjja", "output": "jjja " }, { "input": "zzz", "output": "zzz " }, { "input": "xxxxxxxxxzzzzzzzzzzzz", "output": "xxxxxxxxx zzzzzzzzzzzz " }, { "input": "alllewww", "output": "alllewww " }, { "input": "bbbbbbbbb", "output": "bbbbbbbbb " }, { "input": "jjj", "output": "jjj " }, { "input": "bbbbbbbbbbbbbbbbbbbbbbbbb", "output": "bbbbbbbbbbbbbbbbbbbbbbbbb " }, { "input": "kkkkkkkkkklllllllllllllll", "output": "kkkkkkkkkk lllllllllllllll " }, { "input": "helllllllllllo", "output": "helllllllllllo " }, { "input": "ttttsttttt", "output": "tttt st tttt " }, { "input": "tttttttsssssss", "output": "ttttttt sssssss " }, { "input": "assstttttatsfatsfdjfdhtsjdsaatttssssststsss", "output": "asss tttttats fats fd jf dh ts jd saattt sssss ts ts ss " }, { "input": "xxxxx", "output": "xxxxx " }, { "input": "bbbhbbb", "output": "bbb hb bb " }, { "input": "bbbbbbbb", "output": "bbbbbbbb " } ]
1,506,941,870
4,970
Python 3
WRONG_ANSWER
TESTS
6
61
0
if __name__ == "__main__": string = input().lower() vowels = set("aeiou") space_indices = [] current_consonant_set = set() num_consonants = 0 for index, char in enumerate(string): if char in vowels: num_consonants = 0 current_consonant_set = set() else: current_consonant_set.add(char) num_consonants += 1 if num_consonants >= 3 and len(current_consonant_set) > 1: space_indices.append(index) num_consonants = 0 current_consonant_set = set() i = 0 for index, char in enumerate(string): if i == len(space_indices): print(string[index:]) break if space_indices[i] == index: print(" ", end="") i += 1 print(char, end="")
Title: none Time Limit: None seconds Memory Limit: None megabytes Problem Description: Beroffice text editor has a wide range of features that help working with text. One of the features is an automatic search for typos and suggestions of how to fix them. Beroffice works only with small English letters (i.e. with 26 letters from a to z). Beroffice thinks that a word is typed with a typo if there are three or more consonants in a row in the word. The only exception is that if the block of consonants has all letters the same, then this block (even if its length is greater than three) is not considered a typo. Formally, a word is typed with a typo if there is a block of not less that three consonants in a row, and there are at least two different letters in this block. For example: - the following words have typos: "hellno", "hackcerrs" and "backtothefutttture"; - the following words don't have typos: "helllllooooo", "tobeornottobe" and "oooooo". When Beroffice editor finds a word with a typo, it inserts as little as possible number of spaces in this word (dividing it into several words) in such a way that each of the resulting words is typed without any typos. Implement this feature of Beroffice editor. Consider the following letters as the only vowels: 'a', 'e', 'i', 'o' and 'u'. All the other letters are consonants in this problem. Input Specification: The only line contains a non-empty word consisting of small English letters. The length of the word is between 1 and 3000 letters. Output Specification: Print the given word without any changes if there are no typos. If there is at least one typo in the word, insert the minimum number of spaces into the word so that each of the resulting words doesn't have any typos. If there are multiple solutions, print any of them. Demo Input: ['hellno\n', 'abacaba\n', 'asdfasdf\n'] Demo Output: ['hell no \n', 'abacaba \n', 'asd fasd f \n'] Note: none
```python if __name__ == "__main__": string = input().lower() vowels = set("aeiou") space_indices = [] current_consonant_set = set() num_consonants = 0 for index, char in enumerate(string): if char in vowels: num_consonants = 0 current_consonant_set = set() else: current_consonant_set.add(char) num_consonants += 1 if num_consonants >= 3 and len(current_consonant_set) > 1: space_indices.append(index) num_consonants = 0 current_consonant_set = set() i = 0 for index, char in enumerate(string): if i == len(space_indices): print(string[index:]) break if space_indices[i] == index: print(" ", end="") i += 1 print(char, end="") ```
0
620
B
Grandfather Dovlet’s calculator
PROGRAMMING
1,000
[ "implementation" ]
null
null
Once Max found an electronic calculator from his grandfather Dovlet's chest. He noticed that the numbers were written with seven-segment indicators ([https://en.wikipedia.org/wiki/Seven-segment_display](https://en.wikipedia.org/wiki/Seven-segment_display)). Max starts to type all the values from *a* to *b*. After typing each number Max resets the calculator. Find the total number of segments printed on the calculator. For example if *a*<==<=1 and *b*<==<=3 then at first the calculator will print 2 segments, then — 5 segments and at last it will print 5 segments. So the total number of printed segments is 12.
The only line contains two integers *a*,<=*b* (1<=≤<=*a*<=≤<=*b*<=≤<=106) — the first and the last number typed by Max.
Print the only integer *a* — the total number of printed segments.
[ "1 3\n", "10 15\n" ]
[ "12\n", "39\n" ]
none
0
[ { "input": "1 3", "output": "12" }, { "input": "10 15", "output": "39" }, { "input": "1 100", "output": "928" }, { "input": "100 10000", "output": "188446" }, { "input": "213 221442", "output": "5645356" }, { "input": "1 1000000", "output": "28733372" }, { "input": "1000000 1000000", "output": "38" }, { "input": "222145 353252", "output": "3860750" }, { "input": "2 1000000", "output": "28733370" }, { "input": "1 999999", "output": "28733334" }, { "input": "192 200", "output": "122" } ]
1,643,783,006
2,147,483,647
PyPy 3
OK
TESTS
11
155
1,433,600
a, b = map(int, input().split()) memo = {0: 6, 1: 2, 2: 5, 3: 5, 4: 4, 5: 5, 6: 6, 7: 3, 8: 7, 9: 6} s = 0 for i in range(a, b + 1): tmp = i while tmp: s += memo[tmp % 10] tmp //= 10 print(s)
Title: Grandfather Dovlet’s calculator Time Limit: None seconds Memory Limit: None megabytes Problem Description: Once Max found an electronic calculator from his grandfather Dovlet's chest. He noticed that the numbers were written with seven-segment indicators ([https://en.wikipedia.org/wiki/Seven-segment_display](https://en.wikipedia.org/wiki/Seven-segment_display)). Max starts to type all the values from *a* to *b*. After typing each number Max resets the calculator. Find the total number of segments printed on the calculator. For example if *a*<==<=1 and *b*<==<=3 then at first the calculator will print 2 segments, then — 5 segments and at last it will print 5 segments. So the total number of printed segments is 12. Input Specification: The only line contains two integers *a*,<=*b* (1<=≤<=*a*<=≤<=*b*<=≤<=106) — the first and the last number typed by Max. Output Specification: Print the only integer *a* — the total number of printed segments. Demo Input: ['1 3\n', '10 15\n'] Demo Output: ['12\n', '39\n'] Note: none
```python a, b = map(int, input().split()) memo = {0: 6, 1: 2, 2: 5, 3: 5, 4: 4, 5: 5, 6: 6, 7: 3, 8: 7, 9: 6} s = 0 for i in range(a, b + 1): tmp = i while tmp: s += memo[tmp % 10] tmp //= 10 print(s) ```
3
231
A
Team
PROGRAMMING
800
[ "brute force", "greedy" ]
null
null
One day three best friends Petya, Vasya and Tonya decided to form a team and take part in programming contests. Participants are usually offered several problems during programming contests. Long before the start the friends decided that they will implement a problem if at least two of them are sure about the solution. Otherwise, the friends won't write the problem's solution. This contest offers *n* problems to the participants. For each problem we know, which friend is sure about the solution. Help the friends find the number of problems for which they will write a solution.
The first input line contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of problems in the contest. Then *n* lines contain three integers each, each integer is either 0 or 1. If the first number in the line equals 1, then Petya is sure about the problem's solution, otherwise he isn't sure. The second number shows Vasya's view on the solution, the third number shows Tonya's view. The numbers on the lines are separated by spaces.
Print a single integer — the number of problems the friends will implement on the contest.
[ "3\n1 1 0\n1 1 1\n1 0 0\n", "2\n1 0 0\n0 1 1\n" ]
[ "2\n", "1\n" ]
In the first sample Petya and Vasya are sure that they know how to solve the first problem and all three of them know how to solve the second problem. That means that they will write solutions for these problems. Only Petya is sure about the solution for the third problem, but that isn't enough, so the friends won't take it. In the second sample the friends will only implement the second problem, as Vasya and Tonya are sure about the solution.
500
[ { "input": "3\n1 1 0\n1 1 1\n1 0 0", "output": "2" }, { "input": "2\n1 0 0\n0 1 1", "output": "1" }, { "input": "1\n1 0 0", "output": "0" }, { "input": "2\n1 0 0\n1 1 1", "output": "1" }, { "input": "5\n1 0 0\n0 1 0\n1 1 1\n0 0 1\n0 0 0", "output": "1" }, { "input": "10\n0 1 0\n0 1 0\n1 1 0\n1 0 0\n0 0 1\n0 1 1\n1 1 1\n1 1 0\n0 0 0\n0 0 0", "output": "4" }, { "input": "15\n0 1 0\n1 0 0\n1 1 0\n1 1 1\n0 1 0\n0 0 1\n1 0 1\n1 0 1\n1 0 1\n0 0 0\n1 1 1\n1 1 0\n0 1 1\n1 1 0\n1 1 1", "output": "10" }, { "input": "50\n0 0 0\n0 1 1\n1 1 1\n0 1 0\n1 0 1\n1 1 1\n0 0 1\n1 0 0\n1 1 0\n1 0 1\n0 1 0\n0 0 1\n1 1 0\n0 1 0\n1 1 0\n0 0 0\n1 1 1\n1 0 1\n0 0 1\n1 1 0\n1 1 1\n0 1 1\n1 1 0\n0 0 0\n0 0 0\n1 1 1\n0 0 0\n1 1 1\n0 1 1\n0 0 1\n0 0 0\n0 0 0\n1 1 0\n1 1 0\n1 0 1\n1 0 0\n1 0 1\n1 0 1\n0 1 1\n1 1 0\n1 1 0\n0 1 0\n1 0 1\n0 0 0\n0 0 0\n0 0 0\n0 0 1\n1 1 1\n0 1 1\n1 0 1", "output": "29" }, { "input": "1\n1 1 1", "output": "1" }, { "input": "8\n0 0 0\n0 0 1\n0 0 0\n0 1 1\n1 0 0\n1 0 1\n1 1 0\n1 1 1", "output": "4" }, { "input": "16\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1\n1 1 1", "output": "16" } ]
1,699,367,434
2,147,483,647
Python 3
OK
TESTS
21
62
0
t = int(input()) cnt = 0 for i in range(t): x, y, z = input().split(" ") if int(x) + int(y) + int(z) >= 2: cnt += 1 print(cnt)
Title: Team Time Limit: None seconds Memory Limit: None megabytes Problem Description: One day three best friends Petya, Vasya and Tonya decided to form a team and take part in programming contests. Participants are usually offered several problems during programming contests. Long before the start the friends decided that they will implement a problem if at least two of them are sure about the solution. Otherwise, the friends won't write the problem's solution. This contest offers *n* problems to the participants. For each problem we know, which friend is sure about the solution. Help the friends find the number of problems for which they will write a solution. Input Specification: The first input line contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of problems in the contest. Then *n* lines contain three integers each, each integer is either 0 or 1. If the first number in the line equals 1, then Petya is sure about the problem's solution, otherwise he isn't sure. The second number shows Vasya's view on the solution, the third number shows Tonya's view. The numbers on the lines are separated by spaces. Output Specification: Print a single integer — the number of problems the friends will implement on the contest. Demo Input: ['3\n1 1 0\n1 1 1\n1 0 0\n', '2\n1 0 0\n0 1 1\n'] Demo Output: ['2\n', '1\n'] Note: In the first sample Petya and Vasya are sure that they know how to solve the first problem and all three of them know how to solve the second problem. That means that they will write solutions for these problems. Only Petya is sure about the solution for the third problem, but that isn't enough, so the friends won't take it. In the second sample the friends will only implement the second problem, as Vasya and Tonya are sure about the solution.
```python t = int(input()) cnt = 0 for i in range(t): x, y, z = input().split(" ") if int(x) + int(y) + int(z) >= 2: cnt += 1 print(cnt) ```
3
282
A
Bit++
PROGRAMMING
800
[ "implementation" ]
null
null
The classic programming language of Bitland is Bit++. This language is so peculiar and complicated. The language is that peculiar as it has exactly one variable, called *x*. Also, there are two operations: - Operation ++ increases the value of variable *x* by 1. - Operation -- decreases the value of variable *x* by 1. A statement in language Bit++ is a sequence, consisting of exactly one operation and one variable *x*. The statement is written without spaces, that is, it can only contain characters "+", "-", "X". Executing a statement means applying the operation it contains. A programme in Bit++ is a sequence of statements, each of them needs to be executed. Executing a programme means executing all the statements it contains. You're given a programme in language Bit++. The initial value of *x* is 0. Execute the programme and find its final value (the value of the variable when this programme is executed).
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=150) — the number of statements in the programme. Next *n* lines contain a statement each. Each statement contains exactly one operation (++ or --) and exactly one variable *x* (denoted as letter «X»). Thus, there are no empty statements. The operation and the variable can be written in any order.
Print a single integer — the final value of *x*.
[ "1\n++X\n", "2\nX++\n--X\n" ]
[ "1\n", "0\n" ]
none
500
[ { "input": "1\n++X", "output": "1" }, { "input": "2\nX++\n--X", "output": "0" }, { "input": "3\n++X\n++X\n++X", "output": "3" }, { "input": "2\n--X\n--X", "output": "-2" }, { "input": "5\n++X\n--X\n++X\n--X\n--X", "output": "-1" }, { "input": "28\nX--\n++X\nX++\nX++\nX++\n--X\n--X\nX++\nX--\n++X\nX++\n--X\nX--\nX++\nX--\n++X\n++X\nX++\nX++\nX++\nX++\n--X\n++X\n--X\n--X\n--X\n--X\nX++", "output": "4" }, { "input": "94\nX++\nX++\n++X\n++X\nX--\n--X\nX++\n--X\nX++\n++X\nX++\n++X\n--X\n--X\n++X\nX++\n--X\nX--\nX--\n--X\nX--\nX--\n--X\n++X\n--X\nX--\nX--\nX++\n++X\n--X\nX--\n++X\n--X\n--X\nX--\nX--\nX++\nX++\nX--\nX++\nX--\nX--\nX--\n--X\nX--\nX--\nX--\nX++\n++X\nX--\n++X\nX++\n--X\n--X\n--X\n--X\n++X\nX--\n--X\n--X\n++X\nX--\nX--\nX++\n++X\nX++\n++X\n--X\n--X\nX--\n++X\nX--\nX--\n++X\n++X\n++X\n++X\nX++\n++X\n--X\nX++\n--X\n--X\n++X\n--X\nX++\n++X\nX++\n--X\nX--\nX--\n--X\n++X\nX++", "output": "-10" }, { "input": "56\n--X\nX--\n--X\n--X\nX--\nX--\n--X\nX++\n++X\n--X\nX++\nX--\n--X\n++X\n--X\nX--\nX--\n++X\nX--\nX--\n--X\n++X\n--X\n++X\n--X\nX++\n++X\nX++\n--X\n++X\nX++\nX++\n--X\nX++\nX--\n--X\nX--\n--X\nX++\n++X\n--X\n++X\nX++\nX--\n--X\n--X\n++X\nX--\nX--\n--X\nX--\n--X\nX++\n--X\n++X\n--X", "output": "-14" }, { "input": "59\nX--\n--X\nX++\n++X\nX--\n--X\n--X\n++X\n++X\n++X\n++X\nX++\n++X\n++X\nX++\n--X\nX--\nX++\n++X\n--X\nX++\n--X\n++X\nX++\n--X\n--X\nX++\nX++\n--X\nX++\nX++\nX++\nX--\nX--\n--X\nX++\nX--\nX--\n++X\nX--\nX++\n--X\nX++\nX--\nX--\nX--\nX--\n++X\n--X\nX++\nX++\nX--\nX++\n++X\nX--\nX++\nX--\nX--\n++X", "output": "3" }, { "input": "87\n--X\n++X\n--X\nX++\n--X\nX--\n--X\n++X\nX--\n++X\n--X\n--X\nX++\n--X\nX--\nX++\n++X\n--X\n++X\n++X\n--X\n++X\n--X\nX--\n++X\n++X\nX--\nX++\nX++\n--X\n--X\n++X\nX--\n--X\n++X\n--X\nX++\n--X\n--X\nX--\n++X\n++X\n--X\nX--\nX--\nX--\nX--\nX--\nX++\n--X\n++X\n--X\nX++\n++X\nX++\n++X\n--X\nX++\n++X\nX--\n--X\nX++\n++X\nX++\nX++\n--X\n--X\n++X\n--X\nX++\nX++\n++X\nX++\nX++\nX++\nX++\n--X\n--X\n--X\n--X\n--X\n--X\n--X\nX--\n--X\n++X\n++X", "output": "-5" }, { "input": "101\nX++\nX++\nX++\n++X\n--X\nX--\nX++\nX--\nX--\n--X\n--X\n++X\nX++\n++X\n++X\nX--\n--X\n++X\nX++\nX--\n++X\n--X\n--X\n--X\n++X\n--X\n++X\nX++\nX++\n++X\n--X\nX++\nX--\nX++\n++X\n++X\nX--\nX--\nX--\nX++\nX++\nX--\nX--\nX++\n++X\n++X\n++X\n--X\n--X\n++X\nX--\nX--\n--X\n++X\nX--\n++X\nX++\n++X\nX--\nX--\n--X\n++X\n--X\n++X\n++X\n--X\nX++\n++X\nX--\n++X\nX--\n++X\nX++\nX--\n++X\nX++\n--X\nX++\nX++\n++X\n--X\n++X\n--X\nX++\n--X\nX--\n--X\n++X\n++X\n++X\n--X\nX--\nX--\nX--\nX--\n--X\n--X\n--X\n++X\n--X\n--X", "output": "1" }, { "input": "63\n--X\nX--\n++X\n--X\n++X\nX++\n--X\n--X\nX++\n--X\n--X\nX++\nX--\nX--\n--X\n++X\nX--\nX--\nX++\n++X\nX++\nX++\n--X\n--X\n++X\nX--\nX--\nX--\n++X\nX++\nX--\n--X\nX--\n++X\n++X\nX++\n++X\nX++\nX++\n--X\nX--\n++X\nX--\n--X\nX--\nX--\nX--\n++X\n++X\n++X\n++X\nX++\nX++\n++X\n--X\n--X\n++X\n++X\n++X\nX--\n++X\n++X\nX--", "output": "1" }, { "input": "45\n--X\n++X\nX--\n++X\n++X\nX++\n--X\n--X\n--X\n--X\n--X\n--X\n--X\nX++\n++X\nX--\n++X\n++X\nX--\nX++\nX--\n--X\nX--\n++X\n++X\n--X\n--X\nX--\nX--\n--X\n++X\nX--\n--X\n++X\n++X\n--X\n--X\nX--\n++X\n++X\nX++\nX++\n++X\n++X\nX++", "output": "-3" }, { "input": "21\n++X\nX++\n--X\nX--\nX++\n++X\n--X\nX--\nX++\nX--\nX--\nX--\nX++\n++X\nX++\n++X\n--X\nX--\n--X\nX++\n++X", "output": "1" }, { "input": "100\n--X\n++X\nX++\n++X\nX--\n++X\nX--\nX++\n--X\nX++\nX--\nX--\nX--\n++X\nX--\nX++\nX++\n++X\nX++\nX++\nX++\nX++\n++X\nX++\n++X\nX--\n--X\n++X\nX--\n--X\n++X\n++X\nX--\nX++\nX++\nX++\n++X\n--X\n++X\nX++\nX--\n++X\n++X\n--X\n++X\nX--\nX--\nX--\nX++\nX--\nX--\nX++\nX++\n--X\nX++\nX++\n--X\nX--\n--X\n++X\n--X\n++X\n++X\nX--\n--X\n++X\n++X\n--X\n--X\n++X\nX++\nX--\nX++\nX--\nX++\nX++\n--X\nX--\nX--\n++X\nX--\n--X\n--X\nX++\n--X\n--X\nX--\nX--\n++X\n++X\nX--\n++X\nX++\n--X\n++X\n++X\nX++\n--X\n--X\nX++", "output": "8" }, { "input": "17\nX++\nX++\n++X\n--X\n--X\n++X\n++X\n--X\nX--\nX++\nX--\n--X\n--X\nX--\n++X\nX--\nX++", "output": "-1" }, { "input": "77\n++X\nX++\n--X\nX--\n--X\n--X\nX--\nX++\nX--\nX++\nX--\n++X\n--X\n--X\n--X\n--X\n++X\nX--\nX++\nX--\n--X\nX--\n--X\nX--\n++X\n--X\n++X\n++X\nX++\nX++\nX--\n--X\nX--\nX--\nX++\n--X\n--X\n++X\nX--\nX--\n++X\nX++\nX--\n++X\n--X\nX++\nX--\n++X\n++X\n++X\nX--\nX--\nX--\n--X\n++X\n++X\n++X\nX++\n--X\n--X\n++X\n--X\nX--\nX++\n++X\nX++\n++X\nX--\nX++\nX++\n--X\nX++\nX++\nX++\n--X\nX++\nX--", "output": "-5" }, { "input": "21\nX--\n++X\n--X\nX--\n++X\nX--\n++X\nX--\n--X\n++X\nX++\n++X\nX++\n++X\nX--\n--X\nX++\nX++\nX--\n++X\nX--", "output": "1" }, { "input": "1\nX--", "output": "-1" } ]
1,697,550,555
2,147,483,647
Python 3
OK
TESTS
36
46
0
num = int(input()) x = 0 for i in range(num): s = input() if s[1] == "+": x += 1 else: x -= 1 print(x)
Title: Bit++ Time Limit: None seconds Memory Limit: None megabytes Problem Description: The classic programming language of Bitland is Bit++. This language is so peculiar and complicated. The language is that peculiar as it has exactly one variable, called *x*. Also, there are two operations: - Operation ++ increases the value of variable *x* by 1. - Operation -- decreases the value of variable *x* by 1. A statement in language Bit++ is a sequence, consisting of exactly one operation and one variable *x*. The statement is written without spaces, that is, it can only contain characters "+", "-", "X". Executing a statement means applying the operation it contains. A programme in Bit++ is a sequence of statements, each of them needs to be executed. Executing a programme means executing all the statements it contains. You're given a programme in language Bit++. The initial value of *x* is 0. Execute the programme and find its final value (the value of the variable when this programme is executed). Input Specification: The first line contains a single integer *n* (1<=≤<=*n*<=≤<=150) — the number of statements in the programme. Next *n* lines contain a statement each. Each statement contains exactly one operation (++ or --) and exactly one variable *x* (denoted as letter «X»). Thus, there are no empty statements. The operation and the variable can be written in any order. Output Specification: Print a single integer — the final value of *x*. Demo Input: ['1\n++X\n', '2\nX++\n--X\n'] Demo Output: ['1\n', '0\n'] Note: none
```python num = int(input()) x = 0 for i in range(num): s = input() if s[1] == "+": x += 1 else: x -= 1 print(x) ```
3
136
A
Presents
PROGRAMMING
800
[ "implementation" ]
null
null
Little Petya very much likes gifts. Recently he has received a new laptop as a New Year gift from his mother. He immediately decided to give it to somebody else as what can be more pleasant than giving somebody gifts. And on this occasion he organized a New Year party at his place and invited *n* his friends there. If there's one thing Petya likes more that receiving gifts, that's watching others giving gifts to somebody else. Thus, he safely hid the laptop until the next New Year and made up his mind to watch his friends exchanging gifts while he does not participate in the process. He numbered all his friends with integers from 1 to *n*. Petya remembered that a friend number *i* gave a gift to a friend number *p**i*. He also remembered that each of his friends received exactly one gift. Now Petya wants to know for each friend *i* the number of a friend who has given him a gift.
The first line contains one integer *n* (1<=≤<=*n*<=≤<=100) — the quantity of friends Petya invited to the party. The second line contains *n* space-separated integers: the *i*-th number is *p**i* — the number of a friend who gave a gift to friend number *i*. It is guaranteed that each friend received exactly one gift. It is possible that some friends do not share Petya's ideas of giving gifts to somebody else. Those friends gave the gifts to themselves.
Print *n* space-separated integers: the *i*-th number should equal the number of the friend who gave a gift to friend number *i*.
[ "4\n2 3 4 1\n", "3\n1 3 2\n", "2\n1 2\n" ]
[ "4 1 2 3\n", "1 3 2\n", "1 2\n" ]
none
500
[ { "input": "4\n2 3 4 1", "output": "4 1 2 3" }, { "input": "3\n1 3 2", "output": "1 3 2" }, { "input": "2\n1 2", "output": "1 2" }, { "input": "1\n1", "output": "1" }, { "input": "10\n1 3 2 6 4 5 7 9 8 10", "output": "1 3 2 5 6 4 7 9 8 10" }, { "input": "5\n5 4 3 2 1", "output": "5 4 3 2 1" }, { "input": "20\n2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19" }, { "input": "21\n3 2 1 6 5 4 9 8 7 12 11 10 15 14 13 18 17 16 21 20 19", "output": "3 2 1 6 5 4 9 8 7 12 11 10 15 14 13 18 17 16 21 20 19" }, { "input": "10\n3 4 5 6 7 8 9 10 1 2", "output": "9 10 1 2 3 4 5 6 7 8" }, { "input": "8\n1 5 3 7 2 6 4 8", "output": "1 5 3 7 2 6 4 8" }, { "input": "50\n49 22 4 2 20 46 7 32 5 19 48 24 26 15 45 21 44 11 50 43 39 17 31 1 42 34 3 27 36 25 12 30 13 33 28 35 18 6 8 37 38 14 10 9 29 16 40 23 41 47", "output": "24 4 27 3 9 38 7 39 44 43 18 31 33 42 14 46 22 37 10 5 16 2 48 12 30 13 28 35 45 32 23 8 34 26 36 29 40 41 21 47 49 25 20 17 15 6 50 11 1 19" }, { "input": "34\n13 20 33 30 15 11 27 4 8 2 29 25 24 7 3 22 18 10 26 16 5 1 32 9 34 6 12 14 28 19 31 21 23 17", "output": "22 10 15 8 21 26 14 9 24 18 6 27 1 28 5 20 34 17 30 2 32 16 33 13 12 19 7 29 11 4 31 23 3 25" }, { "input": "92\n23 1 6 4 84 54 44 76 63 34 61 20 48 13 28 78 26 46 90 72 24 55 91 89 53 38 82 5 79 92 29 32 15 64 11 88 60 70 7 66 18 59 8 57 19 16 42 21 80 71 62 27 75 86 36 9 83 73 74 50 43 31 56 30 17 33 40 81 49 12 10 41 22 77 25 68 51 2 47 3 58 69 87 67 39 37 35 65 14 45 52 85", "output": "2 78 80 4 28 3 39 43 56 71 35 70 14 89 33 46 65 41 45 12 48 73 1 21 75 17 52 15 31 64 62 32 66 10 87 55 86 26 85 67 72 47 61 7 90 18 79 13 69 60 77 91 25 6 22 63 44 81 42 37 11 51 9 34 88 40 84 76 82 38 50 20 58 59 53 8 74 16 29 49 68 27 57 5 92 54 83 36 24 19 23 30" }, { "input": "49\n30 24 33 48 7 3 17 2 8 35 10 39 23 40 46 32 18 21 26 22 1 16 47 45 41 28 31 6 12 43 27 11 13 37 19 15 44 5 29 42 4 38 20 34 14 9 25 36 49", "output": "21 8 6 41 38 28 5 9 46 11 32 29 33 45 36 22 7 17 35 43 18 20 13 2 47 19 31 26 39 1 27 16 3 44 10 48 34 42 12 14 25 40 30 37 24 15 23 4 49" }, { "input": "12\n3 8 7 4 6 5 2 1 11 9 10 12", "output": "8 7 1 4 6 5 3 2 10 11 9 12" }, { "input": "78\n16 56 36 78 21 14 9 77 26 57 70 61 41 47 18 44 5 31 50 74 65 52 6 39 22 62 67 69 43 7 64 29 24 40 48 51 73 54 72 12 19 34 4 25 55 33 17 35 23 53 10 8 27 32 42 68 20 63 3 2 1 71 58 46 13 30 49 11 37 66 38 60 28 75 15 59 45 76", "output": "61 60 59 43 17 23 30 52 7 51 68 40 65 6 75 1 47 15 41 57 5 25 49 33 44 9 53 73 32 66 18 54 46 42 48 3 69 71 24 34 13 55 29 16 77 64 14 35 67 19 36 22 50 38 45 2 10 63 76 72 12 26 58 31 21 70 27 56 28 11 62 39 37 20 74 78 8 4" }, { "input": "64\n64 57 40 3 15 8 62 18 33 59 51 19 22 13 4 37 47 45 50 35 63 11 58 42 46 21 7 2 41 48 32 23 28 38 17 12 24 27 49 31 60 6 30 25 61 52 26 54 9 14 29 20 44 39 55 10 34 16 5 56 1 36 53 43", "output": "61 28 4 15 59 42 27 6 49 56 22 36 14 50 5 58 35 8 12 52 26 13 32 37 44 47 38 33 51 43 40 31 9 57 20 62 16 34 54 3 29 24 64 53 18 25 17 30 39 19 11 46 63 48 55 60 2 23 10 41 45 7 21 1" }, { "input": "49\n38 20 49 32 14 41 39 45 25 48 40 19 26 43 34 12 10 3 35 42 5 7 46 47 4 2 13 22 16 24 33 15 11 18 29 31 23 9 44 36 6 17 37 1 30 28 8 21 27", "output": "44 26 18 25 21 41 22 47 38 17 33 16 27 5 32 29 42 34 12 2 48 28 37 30 9 13 49 46 35 45 36 4 31 15 19 40 43 1 7 11 6 20 14 39 8 23 24 10 3" }, { "input": "78\n17 50 30 48 33 12 42 4 18 53 76 67 38 3 20 72 51 55 60 63 46 10 57 45 54 32 24 62 8 11 35 44 65 74 58 28 2 6 56 52 39 23 47 49 61 1 66 41 15 77 7 27 78 13 14 34 5 31 37 21 40 16 29 69 59 43 64 36 70 19 25 73 71 75 9 68 26 22", "output": "46 37 14 8 57 38 51 29 75 22 30 6 54 55 49 62 1 9 70 15 60 78 42 27 71 77 52 36 63 3 58 26 5 56 31 68 59 13 41 61 48 7 66 32 24 21 43 4 44 2 17 40 10 25 18 39 23 35 65 19 45 28 20 67 33 47 12 76 64 69 73 16 72 34 74 11 50 53" }, { "input": "29\n14 21 27 1 4 18 10 17 20 23 2 24 7 9 28 22 8 25 12 15 11 6 16 29 3 26 19 5 13", "output": "4 11 25 5 28 22 13 17 14 7 21 19 29 1 20 23 8 6 27 9 2 16 10 12 18 26 3 15 24" }, { "input": "82\n6 1 10 75 28 66 61 81 78 63 17 19 58 34 49 12 67 50 41 44 3 15 59 38 51 72 36 11 46 29 18 64 27 23 13 53 56 68 2 25 47 40 69 54 42 5 60 55 4 16 24 79 57 20 7 73 32 80 76 52 82 37 26 31 65 8 39 62 33 71 30 9 77 43 48 74 70 22 14 45 35 21", "output": "2 39 21 49 46 1 55 66 72 3 28 16 35 79 22 50 11 31 12 54 82 78 34 51 40 63 33 5 30 71 64 57 69 14 81 27 62 24 67 42 19 45 74 20 80 29 41 75 15 18 25 60 36 44 48 37 53 13 23 47 7 68 10 32 65 6 17 38 43 77 70 26 56 76 4 59 73 9 52 58 8 61" }, { "input": "82\n74 18 15 69 71 77 19 26 80 20 66 7 30 82 22 48 21 44 52 65 64 61 35 49 12 8 53 81 54 16 11 9 40 46 13 1 29 58 5 41 55 4 78 60 6 51 56 2 38 36 34 62 63 25 17 67 45 14 32 37 75 79 10 47 27 39 31 68 59 24 50 43 72 70 42 28 76 23 57 3 73 33", "output": "36 48 80 42 39 45 12 26 32 63 31 25 35 58 3 30 55 2 7 10 17 15 78 70 54 8 65 76 37 13 67 59 82 51 23 50 60 49 66 33 40 75 72 18 57 34 64 16 24 71 46 19 27 29 41 47 79 38 69 44 22 52 53 21 20 11 56 68 4 74 5 73 81 1 61 77 6 43 62 9 28 14" }, { "input": "45\n2 32 34 13 3 15 16 33 22 12 31 38 42 14 27 7 36 8 4 19 45 41 5 35 10 11 39 20 29 44 17 9 6 40 37 28 25 21 1 30 24 18 43 26 23", "output": "39 1 5 19 23 33 16 18 32 25 26 10 4 14 6 7 31 42 20 28 38 9 45 41 37 44 15 36 29 40 11 2 8 3 24 17 35 12 27 34 22 13 43 30 21" }, { "input": "45\n4 32 33 39 43 21 22 35 45 7 14 5 16 9 42 31 24 36 17 29 41 25 37 34 27 20 11 44 3 13 19 2 1 10 26 30 38 18 6 8 15 23 40 28 12", "output": "33 32 29 1 12 39 10 40 14 34 27 45 30 11 41 13 19 38 31 26 6 7 42 17 22 35 25 44 20 36 16 2 3 24 8 18 23 37 4 43 21 15 5 28 9" }, { "input": "74\n48 72 40 67 17 4 27 53 11 32 25 9 74 2 41 24 56 22 14 21 33 5 18 55 20 7 29 36 69 13 52 19 38 30 68 59 66 34 63 6 47 45 54 44 62 12 50 71 16 10 8 64 57 73 46 26 49 42 3 23 35 1 61 39 70 60 65 43 15 28 37 51 58 31", "output": "62 14 59 6 22 40 26 51 12 50 9 46 30 19 69 49 5 23 32 25 20 18 60 16 11 56 7 70 27 34 74 10 21 38 61 28 71 33 64 3 15 58 68 44 42 55 41 1 57 47 72 31 8 43 24 17 53 73 36 66 63 45 39 52 67 37 4 35 29 65 48 2 54 13" }, { "input": "47\n9 26 27 10 6 34 28 42 39 22 45 21 11 43 14 47 38 15 40 32 46 1 36 29 17 25 2 23 31 5 24 4 7 8 12 19 16 44 37 20 18 33 30 13 35 41 3", "output": "22 27 47 32 30 5 33 34 1 4 13 35 44 15 18 37 25 41 36 40 12 10 28 31 26 2 3 7 24 43 29 20 42 6 45 23 39 17 9 19 46 8 14 38 11 21 16" }, { "input": "49\n14 38 6 29 9 49 36 43 47 3 44 20 34 15 7 11 1 28 12 40 16 37 31 10 42 41 33 21 18 30 5 27 17 35 25 26 45 19 2 13 23 32 4 22 46 48 24 39 8", "output": "17 39 10 43 31 3 15 49 5 24 16 19 40 1 14 21 33 29 38 12 28 44 41 47 35 36 32 18 4 30 23 42 27 13 34 7 22 2 48 20 26 25 8 11 37 45 9 46 6" }, { "input": "100\n78 56 31 91 90 95 16 65 58 77 37 89 33 61 10 76 62 47 35 67 69 7 63 83 22 25 49 8 12 30 39 44 57 64 48 42 32 11 70 43 55 50 99 24 85 73 45 14 54 21 98 84 74 2 26 18 9 36 80 53 75 46 66 86 59 93 87 68 94 13 72 28 79 88 92 29 52 82 34 97 19 38 1 41 27 4 40 5 96 100 51 6 20 23 81 15 17 3 60 71", "output": "83 54 98 86 88 92 22 28 57 15 38 29 70 48 96 7 97 56 81 93 50 25 94 44 26 55 85 72 76 30 3 37 13 79 19 58 11 82 31 87 84 36 40 32 47 62 18 35 27 42 91 77 60 49 41 2 33 9 65 99 14 17 23 34 8 63 20 68 21 39 100 71 46 53 61 16 10 1 73 59 95 78 24 52 45 64 67 74 12 5 4 75 66 69 6 89 80 51 43 90" }, { "input": "22\n12 8 11 2 16 7 13 6 22 21 20 10 4 14 18 1 5 15 3 19 17 9", "output": "16 4 19 13 17 8 6 2 22 12 3 1 7 14 18 5 21 15 20 11 10 9" }, { "input": "72\n16 11 49 51 3 27 60 55 23 40 66 7 53 70 13 5 15 32 18 72 33 30 8 31 46 12 28 67 25 38 50 22 69 34 71 52 58 39 24 35 42 9 41 26 62 1 63 65 36 64 68 61 37 14 45 47 6 57 54 20 17 2 56 59 29 10 4 48 21 43 19 44", "output": "46 62 5 67 16 57 12 23 42 66 2 26 15 54 17 1 61 19 71 60 69 32 9 39 29 44 6 27 65 22 24 18 21 34 40 49 53 30 38 10 43 41 70 72 55 25 56 68 3 31 4 36 13 59 8 63 58 37 64 7 52 45 47 50 48 11 28 51 33 14 35 20" }, { "input": "63\n21 56 11 10 62 24 20 42 28 52 38 2 37 43 48 22 7 8 40 14 13 46 53 1 23 4 60 63 51 36 25 12 39 32 49 16 58 44 31 61 33 50 55 54 45 6 47 41 9 57 30 29 26 18 19 27 15 34 3 35 59 5 17", "output": "24 12 59 26 62 46 17 18 49 4 3 32 21 20 57 36 63 54 55 7 1 16 25 6 31 53 56 9 52 51 39 34 41 58 60 30 13 11 33 19 48 8 14 38 45 22 47 15 35 42 29 10 23 44 43 2 50 37 61 27 40 5 28" }, { "input": "18\n2 16 8 4 18 12 3 6 5 9 10 15 11 17 14 13 1 7", "output": "17 1 7 4 9 8 18 3 10 11 13 6 16 15 12 2 14 5" }, { "input": "47\n6 9 10 41 25 3 4 37 20 1 36 22 29 27 11 24 43 31 12 17 34 42 38 39 13 2 7 21 18 5 15 35 44 26 33 46 19 40 30 14 28 23 47 32 45 8 16", "output": "10 26 6 7 30 1 27 46 2 3 15 19 25 40 31 47 20 29 37 9 28 12 42 16 5 34 14 41 13 39 18 44 35 21 32 11 8 23 24 38 4 22 17 33 45 36 43" }, { "input": "96\n41 91 48 88 29 57 1 19 44 43 37 5 10 75 25 63 30 78 76 53 8 92 18 70 39 17 49 60 9 16 3 34 86 59 23 79 55 45 72 51 28 33 96 40 26 54 6 32 89 61 85 74 7 82 52 31 64 66 94 95 11 22 2 73 35 13 42 71 14 47 84 69 50 67 58 12 77 46 38 68 15 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43 38 8 68 77 72 46 36 37 2 64 75 76 98 10 84 48 85 97 73 18 54 47 34 94 17 30 80 99 11 69 51 62 20 23 44 29 81 65 22 26 56 14 89 21 53 91 40 52 5 58 60 24 15 7 63 95 27 50 88 31 70 19 1 67 57 96 61 74 86 49 32 78 35 6 41 83 33 71 45 79 90 39 87 55 59 66 25 12" }, { "input": "99\n50 94 2 18 69 90 59 83 75 68 77 97 39 78 25 7 16 9 49 4 42 89 44 48 17 96 61 70 3 10 5 81 56 57 88 6 98 1 46 67 92 37 11 30 85 41 8 36 51 29 20 71 19 79 74 93 43 34 55 40 38 21 64 63 32 24 72 14 12 86 82 15 65 23 66 22 28 53 13 26 95 99 91 52 76 27 60 45 47 33 73 84 31 35 54 80 58 62 87", "output": "38 3 29 20 31 36 16 47 18 30 43 69 79 68 72 17 25 4 53 51 62 76 74 66 15 80 86 77 50 44 93 65 90 58 94 48 42 61 13 60 46 21 57 23 88 39 89 24 19 1 49 84 78 95 59 33 34 97 7 87 27 98 64 63 73 75 40 10 5 28 52 67 91 55 9 85 11 14 54 96 32 71 8 92 45 70 99 35 22 6 83 41 56 2 81 26 12 37 82" }, { "input": "99\n19 93 14 34 39 37 33 15 52 88 7 43 69 27 9 77 94 31 48 22 63 70 79 17 50 6 81 8 76 58 23 74 86 11 57 62 41 87 75 51 12 18 68 56 95 3 80 83 84 29 24 61 71 78 59 96 20 85 90 28 45 36 38 97 1 49 40 98 44 67 13 73 72 91 47 10 30 54 35 42 4 2 92 26 64 60 53 21 5 82 46 32 55 66 16 89 99 65 25", "output": "65 82 46 81 89 26 11 28 15 76 34 41 71 3 8 95 24 42 1 57 88 20 31 51 99 84 14 60 50 77 18 92 7 4 79 62 6 63 5 67 37 80 12 69 61 91 75 19 66 25 40 9 87 78 93 44 35 30 55 86 52 36 21 85 98 94 70 43 13 22 53 73 72 32 39 29 16 54 23 47 27 90 48 49 58 33 38 10 96 59 74 83 2 17 45 56 64 68 97" }, { "input": "99\n86 25 50 51 62 39 41 67 44 20 45 14 80 88 66 7 36 59 13 84 78 58 96 75 2 43 48 47 69 12 19 98 22 38 28 55 11 76 68 46 53 70 85 34 16 33 91 30 8 40 74 60 94 82 87 32 37 4 5 10 89 73 90 29 35 26 23 57 27 65 24 3 9 83 77 72 6 31 15 92 93 79 64 18 63 42 56 1 52 97 17 81 71 21 49 99 54 95 61", "output": "88 25 72 58 59 77 16 49 73 60 37 30 19 12 79 45 91 84 31 10 94 33 67 71 2 66 69 35 64 48 78 56 46 44 65 17 57 34 6 50 7 86 26 9 11 40 28 27 95 3 4 89 41 97 36 87 68 22 18 52 99 5 85 83 70 15 8 39 29 42 93 76 62 51 24 38 75 21 82 13 92 54 74 20 43 1 55 14 61 63 47 80 81 53 98 23 90 32 96" }, { "input": "100\n66 44 99 15 43 79 28 33 88 90 49 68 82 38 9 74 4 58 29 81 31 94 10 42 89 21 63 40 62 61 18 6 84 72 48 25 67 69 71 85 98 34 83 70 65 78 91 77 93 41 23 24 87 11 55 12 59 73 36 97 7 14 26 39 30 27 45 20 50 17 53 2 57 47 95 56 75 19 37 96 16 35 8 3 76 60 13 86 5 32 64 80 46 51 54 100 1 22 52 92", "output": "97 72 84 17 89 32 61 83 15 23 54 56 87 62 4 81 70 31 78 68 26 98 51 52 36 63 66 7 19 65 21 90 8 42 82 59 79 14 64 28 50 24 5 2 67 93 74 35 11 69 94 99 71 95 55 76 73 18 57 86 30 29 27 91 45 1 37 12 38 44 39 34 58 16 77 85 48 46 6 92 20 13 43 33 40 88 53 9 25 10 47 100 49 22 75 80 60 41 3 96" }, { "input": "99\n3 73 32 37 25 15 93 63 85 8 91 78 80 5 39 48 46 7 83 70 23 96 9 29 77 53 30 20 56 50 13 45 21 76 87 99 65 31 16 18 14 72 51 28 43 2 81 34 38 40 66 54 74 26 71 4 61 17 58 24 22 33 49 36 42 11 12 55 60 27 62 90 79 92 94 68 1 52 84 41 86 35 69 75 47 10 64 88 97 98 67 19 89 95 59 82 57 44 6", "output": "77 46 1 56 14 99 18 10 23 86 66 67 31 41 6 39 58 40 92 28 33 61 21 60 5 54 70 44 24 27 38 3 62 48 82 64 4 49 15 50 80 65 45 98 32 17 85 16 63 30 43 78 26 52 68 29 97 59 95 69 57 71 8 87 37 51 91 76 83 20 55 42 2 53 84 34 25 12 73 13 47 96 19 79 9 81 35 88 93 72 11 74 7 75 94 22 89 90 36" }, { "input": "100\n100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 80 79 78 77 76 75 74 73 72 71 70 69 68 67 66 65 64 63 62 61 60 59 58 57 56 55 54 53 52 51 50 49 48 47 46 45 44 43 42 41 40 39 38 37 36 35 34 33 32 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1", "output": "100 99 98 97 96 95 94 93 92 91 90 89 88 87 86 85 84 83 82 81 80 79 78 77 76 75 74 73 72 71 70 69 68 67 66 65 64 63 62 61 60 59 58 57 56 55 54 53 52 51 50 49 48 47 46 45 44 43 42 41 40 39 38 37 36 35 34 33 32 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1" } ]
1,695,905,738
2,147,483,647
Python 3
OK
TESTS
101
92
0
a,n,m=int(input()),0,0 x=list(map(int,input().split())) for j in range(1,len(x)+1): m=0 for i in x: m+=1 if i==j and j!=len(x): print(m,end=" ") break elif i==j and j==len(x): print(m) break
Title: Presents Time Limit: None seconds Memory Limit: None megabytes Problem Description: Little Petya very much likes gifts. Recently he has received a new laptop as a New Year gift from his mother. He immediately decided to give it to somebody else as what can be more pleasant than giving somebody gifts. And on this occasion he organized a New Year party at his place and invited *n* his friends there. If there's one thing Petya likes more that receiving gifts, that's watching others giving gifts to somebody else. Thus, he safely hid the laptop until the next New Year and made up his mind to watch his friends exchanging gifts while he does not participate in the process. He numbered all his friends with integers from 1 to *n*. Petya remembered that a friend number *i* gave a gift to a friend number *p**i*. He also remembered that each of his friends received exactly one gift. Now Petya wants to know for each friend *i* the number of a friend who has given him a gift. Input Specification: The first line contains one integer *n* (1<=≤<=*n*<=≤<=100) — the quantity of friends Petya invited to the party. The second line contains *n* space-separated integers: the *i*-th number is *p**i* — the number of a friend who gave a gift to friend number *i*. It is guaranteed that each friend received exactly one gift. It is possible that some friends do not share Petya's ideas of giving gifts to somebody else. Those friends gave the gifts to themselves. Output Specification: Print *n* space-separated integers: the *i*-th number should equal the number of the friend who gave a gift to friend number *i*. Demo Input: ['4\n2 3 4 1\n', '3\n1 3 2\n', '2\n1 2\n'] Demo Output: ['4 1 2 3\n', '1 3 2\n', '1 2\n'] Note: none
```python a,n,m=int(input()),0,0 x=list(map(int,input().split())) for j in range(1,len(x)+1): m=0 for i in x: m+=1 if i==j and j!=len(x): print(m,end=" ") break elif i==j and j==len(x): print(m) break ```
3
920
F
SUM and REPLACE
PROGRAMMING
2,000
[ "brute force", "data structures", "dsu", "number theory" ]
null
null
Let *D*(*x*) be the number of positive divisors of a positive integer *x*. For example, *D*(2)<==<=2 (2 is divisible by 1 and 2), *D*(6)<==<=4 (6 is divisible by 1, 2, 3 and 6). You are given an array *a* of *n* integers. You have to process two types of queries: 1. REPLACE *l* *r* — for every replace *a**i* with *D*(*a**i*); 1. SUM *l* *r* — calculate . Print the answer for each SUM query.
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=3·105) — the number of elements in the array and the number of queries to process, respectively. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=106) — the elements of the array. Then *m* lines follow, each containing 3 integers *t**i*, *l**i*, *r**i* denoting *i*-th query. If *t**i*<==<=1, then *i*-th query is REPLACE *l**i* *r**i*, otherwise it's SUM *l**i* *r**i* (1<=≤<=*t**i*<=≤<=2, 1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). There is at least one SUM query.
For each SUM query print the answer to it.
[ "7 6\n6 4 1 10 3 2 4\n2 1 7\n2 4 5\n1 3 5\n2 4 4\n1 5 7\n2 1 7\n" ]
[ "30\n13\n4\n22\n" ]
none
0
[ { "input": "7 6\n6 4 1 10 3 2 4\n2 1 7\n2 4 5\n1 3 5\n2 4 4\n1 5 7\n2 1 7", "output": "30\n13\n4\n22" }, { "input": "4 2\n1 1 1 3\n1 1 4\n2 1 4", "output": "5" }, { "input": "10 2\n1 1 1 1 1 1 1 1 1 9\n1 1 10\n2 1 10", "output": "12" }, { "input": "4 2\n1 1 3 1\n1 1 4\n2 1 4", "output": "5" }, { "input": "5 3\n1 1 1 1 3\n2 1 5\n1 1 5\n2 1 5", "output": "7\n6" }, { "input": "7 10\n1 1 1 1 1 1 1\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n1 1 7\n2 1 7", "output": "7" } ]
1,517,588,165
6,065
PyPy 3
COMPILATION_ERROR
TESTS
0
0
0
#include <iostream> #include <set> #include <vector> #include <fstream> #include <algorithm> #include <map> #include <iterator> #include <unordered_map> #include <stdio.h> #include <string> #include <iomanip> using namespace std; typedef long long ll; #define int long long const int sze = 1 << 19, MV = 1e6 + 10; int tree[sze << 1], tree_max[sze << 1]; int repl[MV]; int get(int l, int r, int lb, int rb, int ind) { if (l == lb && r == rb) return tree[ind]; int m = (lb + rb) >> 1; int first = 0, second = 0; if (l <= m) first = get(l, min(m, r), lb, m, ind << 1); if (r > m) second = get(max(l, m + 1), r, m + 1, rb, ind << 1 | 1); return first + second; } void update(int l, int r, int lb, int rb, int ind) { if (tree_max[ind] <= 2) return; if (lb == rb) { tree[ind] = repl[tree[ind]]; tree_max[ind] = tree[ind]; return; } int m = (lb + rb) >> 1; if (l <= m) update(l, min(m, r), lb, m, ind << 1); if (r > m) update(max(l, m + 1), r, m + 1, rb, ind << 1 | 1); tree[ind] = tree[ind << 1] + tree[ind << 1 | 1]; tree_max[ind] = max(tree[ind << 1], tree[ind << 1 | 1]); } int used[MV]; signed main() { int n, m; scanf("%lld%lld", &n, &m); vector<int> values(n); for (int i = 2; i * i < MV; ++i) { if (used[i]) continue; for (int j = i * i; j < MV; j += i) used[j] = i; } repl[1] = 1; for (int i = 2; i < MV; ++i) { if (!used[i]) repl[i] = 2; else { int x = i; int power = 0; while (x%used[i] == 0) { power++; x /= used[i]; } repl[i] = repl[x] * (power + 1); } } for (int i = 0; i < n; ++i) { scanf("%lld", &tree[i + sze]); tree_max[sze + i] = tree[sze + i]; } for (int i = sze - 1; i; --i) { tree[i] = tree[i << 1] + tree[i << 1 | 1]; tree_max[i] = max(tree_max[i << 1], tree_max[i << 1 | 1]); } for (int i = 0; i < m; ++i) { int t, l, r; cin >> t >> l >> r; if (t == 1) update(l, r, 1, sze, 1); else printf("%lld\n", get(l, r, 1, sze, 1)); } return 0; }
Title: SUM and REPLACE Time Limit: None seconds Memory Limit: None megabytes Problem Description: Let *D*(*x*) be the number of positive divisors of a positive integer *x*. For example, *D*(2)<==<=2 (2 is divisible by 1 and 2), *D*(6)<==<=4 (6 is divisible by 1, 2, 3 and 6). You are given an array *a* of *n* integers. You have to process two types of queries: 1. REPLACE *l* *r* — for every replace *a**i* with *D*(*a**i*); 1. SUM *l* *r* — calculate . Print the answer for each SUM query. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=3·105) — the number of elements in the array and the number of queries to process, respectively. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=106) — the elements of the array. Then *m* lines follow, each containing 3 integers *t**i*, *l**i*, *r**i* denoting *i*-th query. If *t**i*<==<=1, then *i*-th query is REPLACE *l**i* *r**i*, otherwise it's SUM *l**i* *r**i* (1<=≤<=*t**i*<=≤<=2, 1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). There is at least one SUM query. Output Specification: For each SUM query print the answer to it. Demo Input: ['7 6\n6 4 1 10 3 2 4\n2 1 7\n2 4 5\n1 3 5\n2 4 4\n1 5 7\n2 1 7\n'] Demo Output: ['30\n13\n4\n22\n'] Note: none
```python #include <iostream> #include <set> #include <vector> #include <fstream> #include <algorithm> #include <map> #include <iterator> #include <unordered_map> #include <stdio.h> #include <string> #include <iomanip> using namespace std; typedef long long ll; #define int long long const int sze = 1 << 19, MV = 1e6 + 10; int tree[sze << 1], tree_max[sze << 1]; int repl[MV]; int get(int l, int r, int lb, int rb, int ind) { if (l == lb && r == rb) return tree[ind]; int m = (lb + rb) >> 1; int first = 0, second = 0; if (l <= m) first = get(l, min(m, r), lb, m, ind << 1); if (r > m) second = get(max(l, m + 1), r, m + 1, rb, ind << 1 | 1); return first + second; } void update(int l, int r, int lb, int rb, int ind) { if (tree_max[ind] <= 2) return; if (lb == rb) { tree[ind] = repl[tree[ind]]; tree_max[ind] = tree[ind]; return; } int m = (lb + rb) >> 1; if (l <= m) update(l, min(m, r), lb, m, ind << 1); if (r > m) update(max(l, m + 1), r, m + 1, rb, ind << 1 | 1); tree[ind] = tree[ind << 1] + tree[ind << 1 | 1]; tree_max[ind] = max(tree[ind << 1], tree[ind << 1 | 1]); } int used[MV]; signed main() { int n, m; scanf("%lld%lld", &n, &m); vector<int> values(n); for (int i = 2; i * i < MV; ++i) { if (used[i]) continue; for (int j = i * i; j < MV; j += i) used[j] = i; } repl[1] = 1; for (int i = 2; i < MV; ++i) { if (!used[i]) repl[i] = 2; else { int x = i; int power = 0; while (x%used[i] == 0) { power++; x /= used[i]; } repl[i] = repl[x] * (power + 1); } } for (int i = 0; i < n; ++i) { scanf("%lld", &tree[i + sze]); tree_max[sze + i] = tree[sze + i]; } for (int i = sze - 1; i; --i) { tree[i] = tree[i << 1] + tree[i << 1 | 1]; tree_max[i] = max(tree_max[i << 1], tree_max[i << 1 | 1]); } for (int i = 0; i < m; ++i) { int t, l, r; cin >> t >> l >> r; if (t == 1) update(l, r, 1, sze, 1); else printf("%lld\n", get(l, r, 1, sze, 1)); } return 0; } ```
-1
508
A
Pasha and Pixels
PROGRAMMING
1,100
[ "brute force" ]
null
null
Pasha loves his phone and also putting his hair up... But the hair is now irrelevant. Pasha has installed a new game to his phone. The goal of the game is following. There is a rectangular field consisting of *n* row with *m* pixels in each row. Initially, all the pixels are colored white. In one move, Pasha can choose any pixel and color it black. In particular, he can choose the pixel that is already black, then after the boy's move the pixel does not change, that is, it remains black. Pasha loses the game when a 2<=×<=2 square consisting of black pixels is formed. Pasha has made a plan of *k* moves, according to which he will paint pixels. Each turn in his plan is represented as a pair of numbers *i* and *j*, denoting respectively the row and the column of the pixel to be colored on the current move. Determine whether Pasha loses if he acts in accordance with his plan, and if he does, on what move the 2<=×<=2 square consisting of black pixels is formed.
The first line of the input contains three integers *n*,<=*m*,<=*k* (1<=≤<=*n*,<=*m*<=≤<=1000, 1<=≤<=*k*<=≤<=105) — the number of rows, the number of columns and the number of moves that Pasha is going to perform. The next *k* lines contain Pasha's moves in the order he makes them. Each line contains two integers *i* and *j* (1<=≤<=*i*<=≤<=*n*, 1<=≤<=*j*<=≤<=*m*), representing the row number and column number of the pixel that was painted during a move.
If Pasha loses, print the number of the move when the 2<=×<=2 square consisting of black pixels is formed. If Pasha doesn't lose, that is, no 2<=×<=2 square consisting of black pixels is formed during the given *k* moves, print 0.
[ "2 2 4\n1 1\n1 2\n2 1\n2 2\n", "2 3 6\n2 3\n2 2\n1 3\n2 2\n1 2\n1 1\n", "5 3 7\n2 3\n1 2\n1 1\n4 1\n3 1\n5 3\n3 2\n" ]
[ "4\n", "5\n", "0\n" ]
none
500
[ { "input": "2 2 4\n1 1\n1 2\n2 1\n2 2", "output": "4" }, { "input": "2 3 6\n2 3\n2 2\n1 3\n2 2\n1 2\n1 1", "output": "5" }, { "input": "5 3 7\n2 3\n1 2\n1 1\n4 1\n3 1\n5 3\n3 2", "output": "0" }, { "input": "3 3 11\n2 1\n3 1\n1 1\n1 3\n1 2\n2 3\n3 3\n3 2\n2 2\n1 3\n3 3", "output": "9" }, { "input": "2 2 5\n1 1\n2 1\n2 1\n1 2\n2 2", "output": "5" }, { "input": "518 518 10\n37 97\n47 278\n17 467\n158 66\n483 351\n83 123\n285 219\n513 187\n380 75\n304 352", "output": "0" }, { "input": "1 1 5\n1 1\n1 1\n1 1\n1 1\n1 1", "output": "0" }, { "input": "1 5 5\n1 1\n1 2\n1 3\n1 4\n1 5", "output": "0" }, { "input": "5 1 5\n1 1\n2 1\n3 1\n4 1\n5 1", "output": "0" }, { "input": "1 1 1\n1 1", "output": "0" }, { "input": "10 10 4\n5 9\n6 9\n6 10\n5 10", "output": "4" }, { "input": "1000 1000 4\n999 999\n999 1000\n1000 999\n1000 1000", "output": "4" }, { "input": "2 3 5\n2 3\n1 3\n1 2\n1 1\n2 2", "output": "5" }, { "input": "1000 1000 4\n1000 1000\n999 999\n1000 999\n999 1000", "output": "4" } ]
1,663,833,656
2,147,483,647
Python 3
OK
TESTS
52
468
4,403,200
x,y,k=map(int,input().split()) p,s=[[0]*(2+x) for i in range(y+2)],0 for i in range(k): px,py=map(int,input().split()) p[py][px]=1 if all([p[py+1][px],p[py+1][px+1],p[py][px+1]]): s=1 elif all([p[py-1][px],p[py-1][px+1],p[py][px+1]]): s=1 elif all([p[py+1][px],p[py+1][px-1],p[py][px-1]]): s=1 elif all([p[py-1][px],p[py-1][px-1],p[py][px-1]]): s=1 if s==1: print(i+1) break else: print(0)
Title: Pasha and Pixels Time Limit: None seconds Memory Limit: None megabytes Problem Description: Pasha loves his phone and also putting his hair up... But the hair is now irrelevant. Pasha has installed a new game to his phone. The goal of the game is following. There is a rectangular field consisting of *n* row with *m* pixels in each row. Initially, all the pixels are colored white. In one move, Pasha can choose any pixel and color it black. In particular, he can choose the pixel that is already black, then after the boy's move the pixel does not change, that is, it remains black. Pasha loses the game when a 2<=×<=2 square consisting of black pixels is formed. Pasha has made a plan of *k* moves, according to which he will paint pixels. Each turn in his plan is represented as a pair of numbers *i* and *j*, denoting respectively the row and the column of the pixel to be colored on the current move. Determine whether Pasha loses if he acts in accordance with his plan, and if he does, on what move the 2<=×<=2 square consisting of black pixels is formed. Input Specification: The first line of the input contains three integers *n*,<=*m*,<=*k* (1<=≤<=*n*,<=*m*<=≤<=1000, 1<=≤<=*k*<=≤<=105) — the number of rows, the number of columns and the number of moves that Pasha is going to perform. The next *k* lines contain Pasha's moves in the order he makes them. Each line contains two integers *i* and *j* (1<=≤<=*i*<=≤<=*n*, 1<=≤<=*j*<=≤<=*m*), representing the row number and column number of the pixel that was painted during a move. Output Specification: If Pasha loses, print the number of the move when the 2<=×<=2 square consisting of black pixels is formed. If Pasha doesn't lose, that is, no 2<=×<=2 square consisting of black pixels is formed during the given *k* moves, print 0. Demo Input: ['2 2 4\n1 1\n1 2\n2 1\n2 2\n', '2 3 6\n2 3\n2 2\n1 3\n2 2\n1 2\n1 1\n', '5 3 7\n2 3\n1 2\n1 1\n4 1\n3 1\n5 3\n3 2\n'] Demo Output: ['4\n', '5\n', '0\n'] Note: none
```python x,y,k=map(int,input().split()) p,s=[[0]*(2+x) for i in range(y+2)],0 for i in range(k): px,py=map(int,input().split()) p[py][px]=1 if all([p[py+1][px],p[py+1][px+1],p[py][px+1]]): s=1 elif all([p[py-1][px],p[py-1][px+1],p[py][px+1]]): s=1 elif all([p[py+1][px],p[py+1][px-1],p[py][px-1]]): s=1 elif all([p[py-1][px],p[py-1][px-1],p[py][px-1]]): s=1 if s==1: print(i+1) break else: print(0) ```
3
189
A
Cut Ribbon
PROGRAMMING
1,300
[ "brute force", "dp" ]
null
null
Polycarpus has a ribbon, its length is *n*. He wants to cut the ribbon in a way that fulfils the following two conditions: - After the cutting each ribbon piece should have length *a*, *b* or *c*. - After the cutting the number of ribbon pieces should be maximum. Help Polycarpus and find the number of ribbon pieces after the required cutting.
The first line contains four space-separated integers *n*, *a*, *b* and *c* (1<=≤<=*n*,<=*a*,<=*b*,<=*c*<=≤<=4000) — the length of the original ribbon and the acceptable lengths of the ribbon pieces after the cutting, correspondingly. The numbers *a*, *b* and *c* can coincide.
Print a single number — the maximum possible number of ribbon pieces. It is guaranteed that at least one correct ribbon cutting exists.
[ "5 5 3 2\n", "7 5 5 2\n" ]
[ "2\n", "2\n" ]
In the first example Polycarpus can cut the ribbon in such way: the first piece has length 2, the second piece has length 3. In the second example Polycarpus can cut the ribbon in such way: the first piece has length 5, the second piece has length 2.
500
[ { "input": "5 5 3 2", "output": "2" }, { "input": "7 5 5 2", "output": "2" }, { "input": "4 4 4 4", "output": "1" }, { "input": "1 1 1 1", "output": "1" }, { "input": "4000 1 2 3", "output": "4000" }, { "input": "4000 3 4 5", "output": "1333" }, { "input": "10 3 4 5", "output": "3" }, { "input": "100 23 15 50", "output": "2" }, { "input": "3119 3515 1021 7", "output": "11" }, { "input": "918 102 1327 1733", "output": "9" }, { "input": "3164 42 430 1309", "output": "15" }, { "input": "3043 317 1141 2438", "output": "7" }, { "input": "26 1 772 2683", "output": "26" }, { "input": "370 2 1 15", "output": "370" }, { "input": "734 12 6 2", "output": "367" }, { "input": "418 18 14 17", "output": "29" }, { "input": "18 16 28 9", "output": "2" }, { "input": "14 6 2 17", "output": "7" }, { "input": "29 27 18 2", "output": "2" }, { "input": "29 12 7 10", "output": "3" }, { "input": "27 23 4 3", "output": "9" }, { "input": "5 14 5 2", "output": "1" }, { "input": "5 17 26 5", "output": "1" }, { "input": "9 1 10 3", "output": "9" }, { "input": "2 19 15 1", "output": "2" }, { "input": "4 6 4 9", "output": "1" }, { "input": "10 6 2 9", "output": "5" }, { "input": "2 2 9 6", "output": "1" }, { "input": "6 2 4 1", "output": "6" }, { "input": "27 24 5 27", "output": "1" }, { "input": "2683 83 26 2709", "output": "101" }, { "input": "728 412 789 158", "output": "3" }, { "input": "3964 4 2916 176", "output": "991" }, { "input": "3399 2035 2 3334", "output": "683" }, { "input": "3455 244 3301 3", "output": "991" }, { "input": "595 2263 3625 1", "output": "595" }, { "input": "4000 1 1 1", "output": "4000" }, { "input": "3999 2 2 3999", "output": "1" }, { "input": "25 6 8 11", "output": "3" }, { "input": "4000 500 1000 2000", "output": "8" }, { "input": "53 10 11 23", "output": "5" }, { "input": "100 100 1 1", "output": "100" }, { "input": "17 3 4 10", "output": "5" }, { "input": "413 101 102 105", "output": "4" }, { "input": "490 4 49 50", "output": "111" }, { "input": "3999 2 3 3", "output": "1999" }, { "input": "8 3 8 4", "output": "2" }, { "input": "5 1 3 3", "output": "5" }, { "input": "100 3 17 22", "output": "27" }, { "input": "4000 2 3 4", "output": "2000" }, { "input": "4000 3 3 5", "output": "1332" }, { "input": "13 4 6 7", "output": "2" }, { "input": "4000 5 2 2", "output": "2000" }, { "input": "3999 2 2 3", "output": "1999" }, { "input": "4000 33 7 3333", "output": "564" }, { "input": "60 33 20 9", "output": "4" }, { "input": "100 9 11 99", "output": "10" }, { "input": "2009 6 8 9", "output": "334" } ]
1,691,351,065
2,147,483,647
PyPy 3-64
OK
TESTS
58
93
2,560,000
# https://codeforces.com/problemset/problem/189/A # A. Cut Ribbon n, a, b, c = map(int, input().split(" ")) ans = 0 for i in range(n+1): for j in range(n+1 - i): k = n - i - j if i%a == 0 and j%b == 0 and k%c == 0: s = i/a + j/b + k/c if s > ans: ans = s print(int(ans))
Title: Cut Ribbon Time Limit: None seconds Memory Limit: None megabytes Problem Description: Polycarpus has a ribbon, its length is *n*. He wants to cut the ribbon in a way that fulfils the following two conditions: - After the cutting each ribbon piece should have length *a*, *b* or *c*. - After the cutting the number of ribbon pieces should be maximum. Help Polycarpus and find the number of ribbon pieces after the required cutting. Input Specification: The first line contains four space-separated integers *n*, *a*, *b* and *c* (1<=≤<=*n*,<=*a*,<=*b*,<=*c*<=≤<=4000) — the length of the original ribbon and the acceptable lengths of the ribbon pieces after the cutting, correspondingly. The numbers *a*, *b* and *c* can coincide. Output Specification: Print a single number — the maximum possible number of ribbon pieces. It is guaranteed that at least one correct ribbon cutting exists. Demo Input: ['5 5 3 2\n', '7 5 5 2\n'] Demo Output: ['2\n', '2\n'] Note: In the first example Polycarpus can cut the ribbon in such way: the first piece has length 2, the second piece has length 3. In the second example Polycarpus can cut the ribbon in such way: the first piece has length 5, the second piece has length 2.
```python # https://codeforces.com/problemset/problem/189/A # A. Cut Ribbon n, a, b, c = map(int, input().split(" ")) ans = 0 for i in range(n+1): for j in range(n+1 - i): k = n - i - j if i%a == 0 and j%b == 0 and k%c == 0: s = i/a + j/b + k/c if s > ans: ans = s print(int(ans)) ```
3
69
A
Young Physicist
PROGRAMMING
1,000
[ "implementation", "math" ]
A. Young Physicist
2
256
A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces.
The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100).
Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not.
[ "3\n4 1 7\n-2 4 -1\n1 -5 -3\n", "3\n3 -1 7\n-5 2 -4\n2 -1 -3\n" ]
[ "NO", "YES" ]
none
500
[ { "input": "3\n4 1 7\n-2 4 -1\n1 -5 -3", "output": "NO" }, { "input": "3\n3 -1 7\n-5 2 -4\n2 -1 -3", "output": "YES" }, { "input": "10\n21 32 -46\n43 -35 21\n42 2 -50\n22 40 20\n-27 -9 38\n-4 1 1\n-40 6 -31\n-13 -2 34\n-21 34 -12\n-32 -29 41", "output": "NO" }, { "input": "10\n25 -33 43\n-27 -42 28\n-35 -20 19\n41 -42 -1\n49 -39 -4\n-49 -22 7\n-19 29 41\n8 -27 -43\n8 34 9\n-11 -3 33", "output": "NO" }, { "input": "10\n-6 21 18\n20 -11 -8\n37 -11 41\n-5 8 33\n29 23 32\n30 -33 -11\n39 -49 -36\n28 34 -49\n22 29 -34\n-18 -6 7", "output": "NO" }, { "input": "10\n47 -2 -27\n0 26 -14\n5 -12 33\n2 18 3\n45 -30 -49\n4 -18 8\n-46 -44 -41\n-22 -10 -40\n-35 -21 26\n33 20 38", "output": "NO" }, { "input": "13\n-3 -36 -46\n-11 -50 37\n42 -11 -15\n9 42 44\n-29 -12 24\n3 9 -40\n-35 13 50\n14 43 18\n-13 8 24\n-48 -15 10\n50 9 -50\n21 0 -50\n0 0 -6", "output": "YES" }, { "input": "14\n43 23 17\n4 17 44\n5 -5 -16\n-43 -7 -6\n47 -48 12\n50 47 -45\n2 14 43\n37 -30 15\n4 -17 -11\n17 9 -45\n-50 -3 -8\n-50 0 0\n-50 0 0\n-16 0 0", "output": "YES" }, { "input": "13\n29 49 -11\n38 -11 -20\n25 1 -40\n-11 28 11\n23 -19 1\n45 -41 -17\n-3 0 -19\n-13 -33 49\n-30 0 28\n34 17 45\n-50 9 -27\n-50 0 0\n-37 0 0", "output": "YES" }, { "input": "12\n3 28 -35\n-32 -44 -17\n9 -25 -6\n-42 -22 20\n-19 15 38\n-21 38 48\n-1 -37 -28\n-10 -13 -50\n-5 21 29\n34 28 50\n50 11 -49\n34 0 0", "output": "YES" }, { "input": "37\n-64 -79 26\n-22 59 93\n-5 39 -12\n77 -9 76\n55 -86 57\n83 100 -97\n-70 94 84\n-14 46 -94\n26 72 35\n14 78 -62\n17 82 92\n-57 11 91\n23 15 92\n-80 -1 1\n12 39 18\n-23 -99 -75\n-34 50 19\n-39 84 -7\n45 -30 -39\n-60 49 37\n45 -16 -72\n33 -51 -56\n-48 28 5\n97 91 88\n45 -82 -11\n-21 -15 -90\n-53 73 -26\n-74 85 -90\n-40 23 38\n100 -13 49\n32 -100 -100\n0 -100 -70\n0 -100 0\n0 -100 0\n0 -100 0\n0 -100 0\n0 -37 0", "output": "YES" }, { "input": "4\n68 3 100\n68 21 -100\n-100 -24 0\n-36 0 0", "output": "YES" }, { "input": "33\n-1 -46 -12\n45 -16 -21\n-11 45 -21\n-60 -42 -93\n-22 -45 93\n37 96 85\n-76 26 83\n-4 9 55\n7 -52 -9\n66 8 -85\n-100 -54 11\n-29 59 74\n-24 12 2\n-56 81 85\n-92 69 -52\n-26 -97 91\n54 59 -51\n58 21 -57\n7 68 56\n-47 -20 -51\n-59 77 -13\n-85 27 91\n79 60 -56\n66 -80 5\n21 -99 42\n-31 -29 98\n66 93 76\n-49 45 61\n100 -100 -100\n100 -100 -100\n66 -75 -100\n0 0 -100\n0 0 -87", "output": "YES" }, { "input": "3\n1 2 3\n3 2 1\n0 0 0", "output": "NO" }, { "input": "2\n5 -23 12\n0 0 0", "output": "NO" }, { "input": "1\n0 0 0", "output": "YES" }, { "input": "1\n1 -2 0", "output": "NO" }, { "input": "2\n-23 77 -86\n23 -77 86", "output": "YES" }, { "input": "26\n86 7 20\n-57 -64 39\n-45 6 -93\n-44 -21 100\n-11 -49 21\n73 -71 -80\n-2 -89 56\n-65 -2 7\n5 14 84\n57 41 13\n-12 69 54\n40 -25 27\n-17 -59 0\n64 -91 -30\n-53 9 42\n-54 -8 14\n-35 82 27\n-48 -59 -80\n88 70 79\n94 57 97\n44 63 25\n84 -90 -40\n-100 100 -100\n-92 100 -100\n0 10 -100\n0 0 -82", "output": "YES" }, { "input": "42\n11 27 92\n-18 -56 -57\n1 71 81\n33 -92 30\n82 83 49\n-87 -61 -1\n-49 45 49\n73 26 15\n-22 22 -77\n29 -93 87\n-68 44 -90\n-4 -84 20\n85 67 -6\n-39 26 77\n-28 -64 20\n65 -97 24\n-72 -39 51\n35 -75 -91\n39 -44 -8\n-25 -27 -57\n91 8 -46\n-98 -94 56\n94 -60 59\n-9 -95 18\n-53 -37 98\n-8 -94 -84\n-52 55 60\n15 -14 37\n65 -43 -25\n94 12 66\n-8 -19 -83\n29 81 -78\n-58 57 33\n24 86 -84\n-53 32 -88\n-14 7 3\n89 97 -53\n-5 -28 -91\n-100 100 -6\n-84 100 0\n0 100 0\n0 70 0", "output": "YES" }, { "input": "3\n96 49 -12\n2 -66 28\n-98 17 -16", "output": "YES" }, { "input": "5\n70 -46 86\n-100 94 24\n-27 63 -63\n57 -100 -47\n0 -11 0", "output": "YES" }, { "input": "18\n-86 -28 70\n-31 -89 42\n31 -48 -55\n95 -17 -43\n24 -95 -85\n-21 -14 31\n68 -18 81\n13 31 60\n-15 28 99\n-42 15 9\n28 -61 -62\n-16 71 29\n-28 75 -48\n-77 -67 36\n-100 83 89\n100 100 -100\n57 34 -100\n0 0 -53", "output": "YES" }, { "input": "44\n52 -54 -29\n-82 -5 -94\n-54 43 43\n91 16 71\n7 80 -91\n3 15 29\n-99 -6 -77\n-3 -77 -64\n73 67 34\n25 -10 -18\n-29 91 63\n-72 86 -16\n-68 85 -81\n-3 36 44\n-74 -14 -80\n34 -96 -97\n-76 -78 -33\n-24 44 -58\n98 12 77\n95 -63 -6\n-51 3 -90\n-92 -10 72\n7 3 -68\n57 -53 71\n29 57 -48\n35 -60 10\n79 -70 -61\n-20 77 55\n-86 -15 -35\n84 -88 -18\n100 -42 77\n-20 46 8\n-41 -43 -65\n38 -98 -23\n-100 65 45\n-7 -91 -63\n46 88 -85\n48 59 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 1", "output": "YES" }, { "input": "18\n-14 -64 -91\n-8 -66 -86\n-23 92 -40\n6 -3 -53\n57 41 78\n-79 42 -22\n-88 -17 45\n4 -45 44\n83 -18 -25\n34 86 -92\n75 -30 12\n44 99 11\n-67 -13 72\n22 83 -56\n-37 71 72\n-9 -100 100\n0 -100 31\n0 -58 0", "output": "YES" }, { "input": "23\n-70 37 78\n42 84 6\n28 -94 -24\n-49 76 95\n-67 18 84\n-53 78 -5\n65 -63 -64\n-66 -64 -69\n81 -93 95\n10 52 -79\n-89 -61 -64\n-64 -47 43\n-81 -35 55\n80 82 73\n-60 -81 -18\n49 -10 -19\n-58 70 12\n-24 -15 -93\n98 -93 -54\n-28 -75 11\n100 100 -63\n100 100 0\n56 34 0", "output": "YES" }, { "input": "3\n0 2 -2\n1 -1 3\n-3 0 0", "output": "NO" } ]
1,632,077,138
2,147,483,647
Python 3
OK
TESTS
81
154
6,963,200
s=int(input()) m=0 n=0 o=0 for i in range(s): l=input() x,y,z=map(int,l.split(' ')) m=m+x n=n+y o=o+z if m==0 and n==0 and o==0: print('YES') else: print('NO')
Title: Young Physicist Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces. Input Specification: The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100). Output Specification: Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not. Demo Input: ['3\n4 1 7\n-2 4 -1\n1 -5 -3\n', '3\n3 -1 7\n-5 2 -4\n2 -1 -3\n'] Demo Output: ['NO', 'YES'] Note: none
```python s=int(input()) m=0 n=0 o=0 for i in range(s): l=input() x,y,z=map(int,l.split(' ')) m=m+x n=n+y o=o+z if m==0 and n==0 and o==0: print('YES') else: print('NO') ```
3.94853
55
D
Beautiful numbers
PROGRAMMING
2,500
[ "dp", "number theory" ]
D. Beautiful numbers
4
256
Volodya is an odd boy and his taste is strange as well. It seems to him that a positive integer number is beautiful if and only if it is divisible by each of its nonzero digits. We will not argue with this and just count the quantity of beautiful numbers in given ranges.
The first line of the input contains the number of cases *t* (1<=≤<=*t*<=≤<=10). Each of the next *t* lines contains two natural numbers *l**i* and *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=9<=·1018). Please, do not use %lld specificator to read or write 64-bit integers in C++. It is preffered to use cin (also you may use %I64d).
Output should contain *t* numbers — answers to the queries, one number per line — quantities of beautiful numbers in given intervals (from *l**i* to *r**i*, inclusively).
[ "1\n1 9\n", "1\n12 15\n" ]
[ "9\n", "2\n" ]
none
2,000
[ { "input": "1\n1 9", "output": "9" }, { "input": "1\n12 15", "output": "2" }, { "input": "1\n25 53", "output": "7" }, { "input": "1\n1 1000", "output": "138" }, { "input": "1\n1 100000", "output": "4578" }, { "input": "2\n234 59843\n46 3243", "output": "3378\n381" }, { "input": "4\n55 55\n1234 2348\n620 620\n4 1000", "output": "1\n135\n0\n135" }, { "input": "1\n1 9000000000000000000", "output": "15957349671845566" }, { "input": "5\n5397562498 1230483490253448\n39218765 5293867493184739\n99 999999999999\n546234 2394748365397856\n67 801834", "output": "3974776165902\n15977172601197\n5429986145\n7654830993719\n26117" }, { "input": "3\n1 1\n9000000000000000000 9000000000000000000\n8999999999999999999 8999999999999999999", "output": "1\n1\n0" }, { "input": "9\n357816591093473912 478906145736655650\n154072099530098530 297675544560923083\n853274171983555776 877332810632329118\n258601077826366175 856890041027686262\n151084241340128367 868279055062218946\n360302714872207562 400114081267420149\n15181634044326791 602401427137909762\n85295343866069509 372373854804747278\n61825864286248332 820583114541565140", "output": "262303539156695\n312897266661597\n38778726789519\n1139862940345127\n1402615778591617\n79118901111096\n1245376292216844\n659738283968181\n1512151848646298" }, { "input": "7\n104609317611013150 341289880328203892\n97241912027543222 314418300699926877\n53441135299739439 389735416311904624\n275391517859532788 467960038909170238\n304318532879803217 768089672739846481\n319824835697587963 736305171087865698\n409387390360731466 545771099640557323", "output": "549953639217759\n500330757015166\n752572674468163\n436944574287103\n888035593458099\n815512909354668\n274130616468780" }, { "input": "9\n445541835776354804 558734188486271358\n73682036065176542 366947184576839560\n308564620247881013 586289290590337947\n191966067909858814 427579642915908767\n96549472115040860 524715559221512354\n255020036710938147 654502276995773879\n80176357776022017 657344223781591909\n16719475415528318 443326279724654990\n338052544981592129 686095491515876947", "output": "201308654973933\n671018900952294\n557260640825456\n540245067535034\n951590675251248\n821822247331406\n1236063703297355\n975752055142342\n695221153195519" }, { "input": "8\n423727899203401096 465066089007515233\n592099166919122847 693326943315408193\n231531173552972562 531446476635170028\n716633579315369700 812280907158531602\n418627020920440527 499027876613131004\n163898261665251882 822784355862669948\n435839418352342371 467127616759016838\n485096651053655121 650414421921269042", "output": "95861671721858\n223094952917814\n644166606425537\n120467904177516\n171364758258616\n1283490622790032\n70087190765465\n307069761298908" }, { "input": "10\n317170715064111090 793355628628194180\n739156054415396992 777408930205278114\n190203742284298612 871433095584843953\n299464632866349604 887366147454183925\n604292320992752545 686849525965889579\n671343144075216807 887426356575285220\n29419076620738966 587651333431204877\n623639325649517323 649463206025796889\n433988870372201677 826343090001917979\n59211672688034983 185391377687885100", "output": "882906430841196\n42022148935039\n1331583561781769\n1112192163424357\n187737287429964\n340983354590699\n1187362489423650\n65177281203879\n681151115425128\n281120105826732" }, { "input": "10\n284628591358250298 646259693733499061\n124314877444536921 158360653417589331\n294802485707819594 348409229744008981\n600000720865727637 612539571868349067\n43148541126130378 706710122330555006\n623654284391810432 864058024613618266\n96275043624390708 878551347136533260\n101314040620664356 877345387577542422\n330459790968153544 396766608075635018\n437750508922390426 606265056174456186", "output": "747510034316095\n79156178606166\n135124732730027\n34085557037263\n1399630254414422\n411736949395029\n1554771181008711\n1542736445406160\n140533045281525\n291140888308231" }, { "input": "2\n699477065952458657 872009205627849715\n125384274193311446 322714849067940236", "output": "264558248920386\n447564169675211" }, { "input": "5\n287022480899155515 575607276198133575\n269577246853440756 493029962385944199\n33867048981266469 753806197266881614\n122720683292361468 585860767594869710\n158415500607290576 291208960498755656", "output": "592269002835278\n490392318097910\n1479332749456685\n973971824970712\n293817273058831" }, { "input": "7\n256594007991864539 522344824090301945\n244974983299956912 369564779245483014\n389003124143900342 870218470015550418\n195460950995683388 651270783906429493\n346224221518880818 866785151789106062\n253038155332981304 335508507616974071\n90600597989420506 233249608331610512", "output": "569988591376813\n279165427586805\n878614839734539\n963922382771989\n955701376330903\n185737826200532\n335147883567859" }, { "input": "4\n1316690822130409 43473794526140271\n31324963681870844 400596320533679208\n145052817797209833 830063350205257021\n158658407621553147 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8999999999387372213\n406034921 8999999999018438724\n546125539 8999999999879368044", "output": "15957349662041057\n15957349668957044\n15957349662212605\n15957349663840013" }, { "input": "4\n840893847 8999999999654562383\n139840441 8999999999921619811\n311512855 8999999999801704512\n25959825 8999999999551930487", "output": "15957349660688006\n15957349669232504\n15957349666299121\n15957349669765189" }, { "input": "7\n89870013 8999999999917755425\n802311555 8999999999055366008\n847333505 8999999999726653552\n132149035 8999999999144498325\n943135535 8999999999038849200\n820468253 8999999999630582637\n369473186 8999999999168524327", "output": "15957349670087446\n15957349658761550\n15957349660810956\n15957349666520206\n15957349657360988\n15957349660817284\n15957349663250037" }, { "input": "5\n508307251 8999999999718177123\n521516981 8999999999464659141\n290241176 8999999999356325428\n615193857 8999999999597603944\n207549445 8999999999906844873", "output": "15957349663733007\n15957349662832928\n15957349665236045\n15957349662359742\n15957349668276315" }, { "input": "2\n27550482 8999999999973770612\n120156054 8999999999028557489", "output": "15957349671150714\n15957349666232530" }, { "input": "1\n271055852 8999999999909378243", "output": "15957349667254063" }, { "input": "8\n787842267 8999999999359738007\n133322301 8999999999943290774\n417668696 8999999999749402497\n46587622 8999999999589402579\n718959740 8999999999109688815\n529442028 8999999999809940983\n943175645 8999999999567139418\n865545527 8999999999260702769", "output": "15957349660173586\n15957349669437416\n15957349664824777\n15957349669455115\n15957349659354335\n15957349663684224\n15957349659508226\n15957349658965833" }, { "input": "10\n1883143 8999999999664400380\n373522758 8999999999528614034\n49945668 8999999999257821295\n659209563 8999999999455232186\n74336065 8999999999709871509\n97315679 8999999999108629997\n112069256 8999999999626576439\n12161303 8999999999432219862\n756831002 8999999999681371635\n230283719 8999999999550291145", "output": "15957349670641976\n15957349664736116\n15957349668207957\n15957349661419878\n15957349669602216\n15957349667015648\n15957349668768809\n15957349669676588\n15957349661437380\n15957349666718051" } ]
1,559,638,949
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
2
186
0
def BF(x): temp=x count=0 while(x>0): r=x%10 if((temp%r)==0): count+=1 x=x//10 if(count==len(str(temp))): return True n=int(input()) for i in range(0,n): l,r=map(int,input().split()) count=0 for i in range(l,r+1): if(BF(i)): count+=1 print(count)
Title: Beautiful numbers Time Limit: 4 seconds Memory Limit: 256 megabytes Problem Description: Volodya is an odd boy and his taste is strange as well. It seems to him that a positive integer number is beautiful if and only if it is divisible by each of its nonzero digits. We will not argue with this and just count the quantity of beautiful numbers in given ranges. Input Specification: The first line of the input contains the number of cases *t* (1<=≤<=*t*<=≤<=10). Each of the next *t* lines contains two natural numbers *l**i* and *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=9<=·1018). Please, do not use %lld specificator to read or write 64-bit integers in C++. It is preffered to use cin (also you may use %I64d). Output Specification: Output should contain *t* numbers — answers to the queries, one number per line — quantities of beautiful numbers in given intervals (from *l**i* to *r**i*, inclusively). Demo Input: ['1\n1 9\n', '1\n12 15\n'] Demo Output: ['9\n', '2\n'] Note: none
```python def BF(x): temp=x count=0 while(x>0): r=x%10 if((temp%r)==0): count+=1 x=x//10 if(count==len(str(temp))): return True n=int(input()) for i in range(0,n): l,r=map(int,input().split()) count=0 for i in range(l,r+1): if(BF(i)): count+=1 print(count) ```
-1
586
B
Laurenty and Shop
PROGRAMMING
1,300
[ "implementation" ]
null
null
A little boy Laurenty has been playing his favourite game Nota for quite a while and is now very hungry. The boy wants to make sausage and cheese sandwiches, but first, he needs to buy a sausage and some cheese. The town where Laurenty lives in is not large. The houses in it are located in two rows, *n* houses in each row. Laurenty lives in the very last house of the second row. The only shop in town is placed in the first house of the first row. The first and second rows are separated with the main avenue of the city. The adjacent houses of one row are separated by streets. Each crosswalk of a street or an avenue has some traffic lights. In order to cross the street, you need to press a button on the traffic light, wait for a while for the green light and cross the street. Different traffic lights can have different waiting time. The traffic light on the crosswalk from the *j*-th house of the *i*-th row to the (*j*<=+<=1)-th house of the same row has waiting time equal to *a**ij* (1<=≤<=*i*<=≤<=2,<=1<=≤<=*j*<=≤<=*n*<=-<=1). For the traffic light on the crossing from the *j*-th house of one row to the *j*-th house of another row the waiting time equals *b**j* (1<=≤<=*j*<=≤<=*n*). The city doesn't have any other crossings. The boy wants to get to the store, buy the products and go back. The main avenue of the city is wide enough, so the boy wants to cross it exactly once on the way to the store and exactly once on the way back home. The boy would get bored if he had to walk the same way again, so he wants the way home to be different from the way to the store in at least one crossing. Help Laurenty determine the minimum total time he needs to wait at the crossroads.
The first line of the input contains integer *n* (2<=≤<=*n*<=≤<=50) — the number of houses in each row. Each of the next two lines contains *n*<=-<=1 space-separated integer — values *a**ij* (1<=≤<=*a**ij*<=≤<=100). The last line contains *n* space-separated integers *b**j* (1<=≤<=*b**j*<=≤<=100).
Print a single integer — the least total time Laurenty needs to wait at the crossroads, given that he crosses the avenue only once both on his way to the store and on his way back home.
[ "4\n1 2 3\n3 2 1\n3 2 2 3\n", "3\n1 2\n3 3\n2 1 3\n", "2\n1\n1\n1 1\n" ]
[ "12\n", "11\n", "4\n" ]
The first sample is shown on the figure above. In the second sample, Laurenty's path can look as follows: - Laurenty crosses the avenue, the waiting time is 3; - Laurenty uses the second crossing in the first row, the waiting time is 2; - Laurenty uses the first crossing in the first row, the waiting time is 1; - Laurenty uses the first crossing in the first row, the waiting time is 1; - Laurenty crosses the avenue, the waiting time is 1; - Laurenty uses the second crossing in the second row, the waiting time is 3. In the last sample Laurenty visits all the crossings, so the answer is 4.
1,000
[ { "input": "4\n1 2 3\n3 2 1\n3 2 2 3", "output": "12" }, { "input": "3\n1 2\n3 3\n2 1 3", "output": "11" }, { "input": "2\n1\n1\n1 1", "output": "4" }, { "input": "2\n1\n1\n2 1", "output": "5" }, { "input": "3\n1 100\n1 1\n100 100 100", "output": "204" }, { "input": "4\n5 6 7\n8 9 10\n1 8 8 1", "output": "47" }, { "input": "4\n1 2 3\n2 2 3\n2 3 4 3", "output": "18" }, { "input": "48\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "96" }, { "input": "48\n2 1 1 2 1 1 1 1 2 2 2 1 2 2 2 1 1 2 1 2 1 2 2 2 2 1 1 2 2 1 1 2 2 1 1 1 2 2 2 2 1 2 1 1 1 1 1\n1 1 1 1 1 1 2 1 2 1 1 2 2 1 2 2 2 1 2 2 2 2 1 1 1 2 1 1 2 2 1 2 2 1 2 2 1 2 2 1 1 2 2 1 1 2 2\n2 1 1 2 1 2 2 2 2 2 1 2 2 2 1 2 2 2 1 1 1 2 1 1 2 1 1 2 2 2 1 2 2 2 2 1 2 2 2 1 2 2 2 2 2 1 2 1", "output": "143" }, { "input": "48\n7 3 1 5 3 8 5 6 4 6 8 7 7 6 9 6 4 1 10 3 2 7 6 9 4 9 1 10 6 10 9 1 5 7 8 8 1 1 3 2 2 10 3 7 8 4 7\n4 9 9 4 2 6 2 4 3 9 2 9 7 3 10 1 5 2 2 10 2 1 6 2 10 5 4 6 10 2 5 10 3 1 8 1 2 6 5 2 3 5 8 1 1 8 4\n4 6 4 3 10 4 8 9 1 10 4 2 2 10 4 7 4 5 4 1 10 6 10 8 4 9 4 10 8 5 3 2 10 10 1 10 10 10 6 10 1 7 6 10 5 8 6 4", "output": "435" }, { "input": "48\n47 3 47 2 29 33 39 16 27 34 31 9 2 40 16 28 15 8 37 9 25 36 14 5 24 48 49 26 43 47 46 23 31 27 30 44 34 12 41 21 2 9 27 49 42 27 9\n6 46 24 12 19 6 39 50 37 30 39 44 14 9 39 47 13 13 1 28 36 22 15 28 43 22 2 19 36 48 34 45 44 9 24 28 41 20 39 8 19 23 25 36 37 16 21\n1 35 9 12 25 39 4 27 26 20 15 4 28 30 21 46 34 30 39 22 6 2 31 2 27 44 3 16 47 12 8 32 37 37 47 8 40 2 2 4 33 38 20 25 3 43 45 45", "output": "2404" }, { "input": "48\n25 48 43 29 32 6 22 4 33 17 25 2 50 19 39 45 38 8 5 3 23 14 24 31 35 11 20 37 10 13 14 43 18 6 42 44 14 37 29 28 2 20 12 3 30 11 24\n46 14 32 22 21 37 6 42 26 20 10 45 18 20 2 36 41 44 17 17 10 21 45 23 26 41 6 45 16 4 16 48 2 6 26 8 15 1 48 30 20 27 39 24 49 27 36\n10 29 17 21 21 13 27 43 27 3 33 20 22 39 37 21 9 41 7 23 30 17 31 4 45 49 9 43 41 42 38 30 5 49 45 30 43 3 2 43 29 35 11 47 12 12 15 43", "output": "2243" }, { "input": "48\n3 42 46 11 44 25 1 42 38 49 14 42 44 10 4 12 2 20 27 44 14 50 33 10 42 27 41 48 26 42 40 18 9 42 1 2 47 8 20 39 45 42 47 8 19 41 32\n36 32 45 48 26 26 38 38 10 7 31 50 23 23 15 17 18 25 24 44 29 12 29 30 16 14 18 20 50 10 3 1 10 7 32 35 43 36 20 40 16 26 12 8 20 38 5\n19 15 33 18 13 29 50 17 28 48 2 36 13 2 12 43 47 6 17 40 8 28 27 15 14 9 10 37 47 25 10 19 11 11 32 3 45 9 11 33 18 35 43 14 13 27 31 34", "output": "2202" }, { "input": "48\n26 55 85 65 66 16 31 85 42 78 14 83 42 52 22 32 73 68 30 92 82 18 43 40 43 36 87 77 64 61 46 79 88 86 92 16 28 47 89 34 58 47 76 24 100 27 80\n78 15 79 90 84 28 98 65 60 65 5 65 89 9 72 9 52 52 85 77 66 9 78 76 4 76 3 26 77 91 58 76 76 17 50 83 64 83 40 1 6 61 37 20 55 7 82\n61 19 9 30 98 19 6 4 36 32 54 99 18 46 28 24 12 1 21 15 38 23 39 82 66 92 95 88 65 97 98 4 22 62 96 79 1 8 85 82 38 71 50 82 4 81 58 57", "output": "4754" }, { "input": "48\n54 99 43 46 23 80 6 77 2 60 54 26 32 93 45 41 92 23 49 33 31 100 52 19 4 61 4 38 89 27 72 58 79 22 5 20 58 14 30 49 55 69 65 79 97 15 92\n22 41 46 100 36 13 14 61 94 56 26 12 93 12 77 48 34 83 38 66 86 100 16 25 90 91 15 2 12 48 45 25 84 68 98 14 88 22 16 65 53 11 56 54 68 10 39\n74 17 18 74 36 43 75 82 41 15 73 65 17 9 45 95 88 66 93 78 70 88 88 39 35 60 100 70 63 27 75 10 78 78 90 2 57 14 97 29 88 72 45 99 55 46 24 6", "output": "4262" }, { "input": "48\n82 39 88 16 77 57 94 61 57 42 93 70 26 26 60 58 14 85 67 85 83 78 57 3 61 69 25 91 97 97 94 24 66 55 10 24 88 85 68 60 52 80 46 33 85 98 3\n58 59 5 18 92 6 46 57 36 47 51 67 5 24 94 83 7 15 3 42 13 98 50 78 76 6 19 77 42 8 28 78 88 22 54 40 12 56 76 37 95 53 74 92 88 22 100\n83 8 34 25 78 60 48 57 42 10 91 35 8 72 69 71 75 31 65 28 2 45 30 87 91 16 1 55 64 56 55 99 46 93 89 24 6 15 97 72 39 73 24 24 14 15 86 47", "output": "4664" }, { "input": "48\n2 92 42 94 30 34 65 53 13 24 37 14 17 63 83 79 37 31 93 26 28 60 67 74 22 77 42 52 17 67 20 95 54 91 15 36 18 60 6 62 45 94 31 92 78 82 15\n2 73 72 31 32 92 67 49 75 30 72 22 13 31 3 22 89 50 69 27 33 89 84 26 59 33 34 48 72 64 15 35 4 65 10 70 36 91 48 4 46 2 93 26 1 29 69\n92 2 42 76 12 84 29 19 43 93 10 97 3 31 86 42 51 96 29 87 26 10 79 40 64 79 7 49 66 90 27 93 7 5 83 38 50 21 6 11 85 77 14 41 69 83 52 95", "output": "4018" }, { "input": "48\n30 36 96 71 92 99 48 41 72 3 77 61 7 97 98 96 51 93 11 67 76 45 84 57 79 85 63 13 34 38 39 77 53 23 27 32 39 35 43 81 42 13 16 46 75 66 22\n46 91 30 49 88 81 95 45 9 13 93 69 17 42 20 57 79 73 34 16 57 88 18 83 57 44 46 24 2 20 2 80 12 20 66 97 59 34 12 68 92 56 16 64 17 32 34\n97 100 50 24 58 100 99 93 45 88 24 66 93 98 10 17 38 72 98 46 50 83 21 100 32 35 4 34 60 20 7 95 59 12 73 60 2 27 10 55 35 74 9 58 32 48 18 36", "output": "4492" }, { "input": "49\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "98" }, { "input": "49\n1 1 1 1 1 2 1 1 2 1 1 1 1 1 1 1 1 2 2 2 2 1 2 2 1 1 2 1 2 1 1 1 1 1 2 2 2 1 2 1 2 2 2 2 2 2 1 2\n2 2 2 1 1 2 1 1 2 2 1 2 2 1 1 2 2 1 1 1 1 2 2 1 1 1 2 1 2 1 1 1 2 1 1 2 2 2 2 2 2 2 2 2 2 2 1 1\n2 2 1 2 2 1 1 1 2 2 1 2 1 2 1 2 1 2 2 1 1 2 2 1 1 2 2 1 2 2 2 2 1 2 2 1 1 1 2 1 2 2 2 1 2 2 1 1 1", "output": "136" }, { "input": "49\n5 1 1 2 6 1 10 9 5 5 1 3 6 7 2 3 4 5 7 10 6 7 1 1 5 10 7 5 5 8 6 3 6 5 8 10 4 8 2 1 6 7 3 3 2 6 1 9\n9 7 2 1 10 9 9 4 10 5 9 8 1 7 7 4 6 5 6 4 3 3 3 10 7 8 9 3 6 6 1 8 8 6 7 7 2 5 4 9 5 10 8 5 8 8 4 2\n9 10 9 9 7 3 10 5 7 8 2 6 3 1 7 3 1 3 6 4 4 5 10 2 7 9 7 10 1 2 6 2 2 8 9 9 10 10 8 10 9 7 8 9 3 8 8 3 7", "output": "476" }, { "input": "49\n9 3 7 10 7 8 5 1 10 7 10 2 2 8 7 2 7 9 6 9 7 1 10 2 2 7 8 6 1 8 2 6 3 8 3 6 3 9 4 2 9 1 4 10 1 3 5 9\n7 6 9 7 3 8 5 8 7 6 8 2 2 10 6 2 3 10 1 2 4 7 8 7 2 9 8 7 8 3 6 6 9 8 8 1 5 2 3 2 4 9 6 7 9 3 1 3\n8 1 1 3 10 7 1 2 4 10 10 9 8 1 6 8 3 4 8 7 4 2 10 2 2 4 1 10 3 6 8 3 4 10 1 4 3 4 8 7 1 4 9 3 3 6 2 4 2", "output": "523" }, { "input": "49\n37 26 4 44 25 50 32 7 34 46 49 12 7 41 26 30 17 1 27 50 35 48 42 29 30 21 17 26 16 36 13 22 49 17 38 21 11 9 5 36 44 47 17 36 13 28 29 15\n29 42 5 42 1 43 22 15 34 35 42 13 41 40 2 35 35 35 30 4 35 6 13 19 10 25 4 8 50 14 36 33 45 43 7 1 42 44 10 30 12 48 30 4 28 33 31 43\n27 36 12 11 35 41 36 14 5 39 30 39 46 3 46 10 46 47 2 21 12 43 1 2 26 14 24 19 8 29 16 45 7 19 2 50 49 46 20 45 39 2 35 43 46 4 41 20 20", "output": "2472" }, { "input": "49\n11 20 15 26 29 19 7 45 43 28 39 9 47 24 49 1 32 13 45 49 38 26 5 12 41 37 38 33 32 3 39 4 36 3 35 29 45 30 42 43 49 11 10 49 1 16 45 1\n47 9 19 36 32 18 14 49 25 10 47 26 45 49 41 13 9 50 15 31 34 32 7 9 25 37 29 46 2 1 39 48 50 49 33 25 23 12 24 30 11 16 10 20 35 48 40 42\n43 37 4 35 12 8 37 9 19 5 28 2 21 25 26 24 6 6 34 36 12 50 19 8 32 41 18 49 34 26 22 11 5 37 4 2 15 43 13 42 22 23 40 8 16 49 48 31 29", "output": "2542" }, { "input": "49\n35 14 11 50 36 42 45 37 49 10 28 49 45 4 14 10 4 13 17 44 28 12 15 41 48 49 5 44 49 23 7 21 36 35 48 30 21 5 26 50 42 30 37 3 2 49 2 45\n19 18 36 37 30 42 10 34 16 27 2 34 6 16 27 45 44 15 50 5 25 20 6 41 48 2 50 30 8 38 46 2 50 5 17 48 16 30 45 23 11 35 44 29 39 13 49 28\n1 39 4 2 36 32 38 42 42 25 19 11 37 50 9 35 28 10 7 47 3 6 42 26 29 27 16 29 11 24 37 26 42 9 11 11 16 36 9 39 17 44 49 26 32 47 1 29 37", "output": "2612" }, { "input": "49\n75 32 47 38 45 100 90 67 82 21 4 16 61 69 49 86 95 13 79 70 92 98 92 48 64 1 95 47 90 31 41 12 89 98 22 95 62 54 94 57 43 1 72 8 12 71 98 41\n40 31 71 13 20 32 48 81 17 13 68 6 48 50 44 17 37 8 76 100 57 65 91 15 51 33 83 64 44 66 22 20 44 69 18 32 50 91 43 25 95 42 28 20 16 68 69 70\n52 51 67 93 7 99 59 90 53 66 35 25 8 89 80 64 49 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1 57 55 25 94", "output": "4541" }, { "input": "49\n51 65 96 71 14 18 24 31 56 68 27 51 40 81 98 29 55 84 41 4 41 43 28 90 39 38 55 22 35 46 8 31 66 95 48 3 55 79 6 85 30 49 19 75 90 22 29 65\n90 23 25 64 88 1 40 96 77 76 25 22 66 81 53 54 27 92 26 67 46 71 41 74 100 60 5 55 21 31 77 60 95 38 5 8 59 99 50 65 40 10 29 66 38 63 9 53\n84 100 94 58 22 14 58 63 4 60 19 2 73 7 23 58 61 52 67 74 48 3 65 65 1 82 38 84 95 13 1 27 27 44 58 64 48 8 80 86 77 10 35 28 59 98 62 36 53", "output": "4447" }, { "input": "49\n75 14 49 48 71 87 8 23 20 50 75 95 30 14 25 50 77 38 59 57 82 21 45 69 100 46 80 83 56 16 34 9 57 32 57 7 89 50 44 96 31 71 12 34 86 10 40 1\n4 82 38 4 73 33 32 30 68 1 80 35 77 98 89 28 62 54 7 95 37 5 94 61 24 76 80 89 65 18 30 64 50 90 40 27 94 59 22 11 94 28 67 82 49 28 14 47\n92 48 28 74 4 88 59 58 23 21 18 73 90 78 7 23 26 14 3 31 90 56 22 20 98 68 36 18 71 3 57 35 21 66 2 70 56 51 18 99 60 27 98 97 29 51 69 38 12", "output": "4688" }, { "input": "50\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "100" }, { "input": "50\n19 43 43 6 20 8 25 17 19 22 27 30 50 1 16 18 6 48 28 26 15 12 38 6 11 13 4 9 24 47 38 11 27 15 3 7 17 40 32 25 38 21 7 20 23 19 44 13 25\n40 21 42 10 13 34 13 8 39 13 29 43 7 4 22 47 50 45 10 1 43 5 44 11 46 40 24 44 27 9 26 18 24 34 25 49 19 39 24 36 32 6 2 25 33 35 44 6 41\n37 48 32 4 4 41 5 5 30 15 48 11 6 29 5 45 40 13 16 34 19 10 44 24 42 27 3 11 29 8 13 12 25 43 14 36 2 1 48 4 24 42 5 4 22 19 25 21 8 41", "output": "2189" }, { "input": "50\n47 38 39 30 32 23 9 5 28 4 17 20 36 31 35 39 29 6 46 20 14 40 47 35 18 21 13 23 40 18 14 32 18 1 16 12 43 11 19 40 31 32 38 16 12 48 9 7 39\n3 35 43 7 33 30 43 49 14 19 37 46 13 39 4 32 16 30 30 42 27 4 39 34 7 7 9 4 10 12 34 15 34 14 49 38 45 3 21 36 47 44 15 29 48 44 35 15 42\n29 14 5 20 5 28 19 21 17 24 14 29 40 40 15 4 26 28 15 37 38 15 38 10 36 11 29 1 43 23 11 27 23 49 23 29 49 47 39 22 33 11 17 45 33 34 34 41 36 32", "output": "2553" }, { "input": "50\n30 98 29 67 86 51 9 45 25 85 75 2 91 37 7 29 14 92 46 14 8 4 98 40 62 90 10 41 77 95 16 74 11 4 86 64 66 21 33 99 74 1 29 31 66 20 91 14 15\n28 41 39 21 17 86 46 45 41 52 62 9 93 44 26 18 97 81 57 97 68 65 2 58 30 54 96 68 20 18 78 56 84 43 92 33 66 60 25 97 8 71 55 79 58 33 47 59 63\n90 82 54 3 42 44 43 71 16 93 91 64 43 51 30 3 87 22 60 83 13 24 64 3 9 73 64 24 29 60 63 49 61 63 9 34 85 83 23 80 17 63 53 100 70 20 19 92 66 63", "output": "4675" }, { "input": "50\n55 51 83 45 43 16 84 33 80 71 23 46 82 74 34 46 28 43 68 59 60 90 8 23 19 99 32 98 85 61 42 56 6 40 95 72 100 92 71 18 67 24 6 89 55 8 3 50 41\n90 59 91 11 45 78 81 35 58 7 70 12 98 79 8 53 54 66 80 88 6 17 88 73 45 29 26 24 7 71 82 2 44 74 16 76 38 28 72 43 34 5 72 90 23 43 41 76 14\n24 94 31 77 43 27 62 25 7 52 8 39 26 16 94 58 11 83 9 39 77 92 62 96 3 3 36 22 94 71 53 71 13 69 18 77 32 80 14 1 76 23 19 45 77 23 73 66 44 58", "output": "4620" }, { "input": "50\n83 91 33 26 97 92 67 25 36 49 62 89 72 7 45 56 54 5 86 100 1 68 17 6 80 11 53 55 9 28 60 26 1 72 7 68 22 67 9 24 68 34 99 44 52 91 14 94 55\n53 81 43 92 66 74 19 18 79 58 83 23 15 14 90 85 16 50 4 87 32 66 74 88 57 96 60 84 94 16 98 53 92 4 36 11 10 96 18 96 57 43 84 94 84 52 35 84 62\n66 14 4 51 44 22 80 94 2 15 32 6 6 81 66 21 43 43 55 88 46 47 63 82 8 36 24 20 54 87 48 94 53 75 18 16 70 77 9 22 31 92 85 93 80 30 32 36 23 45", "output": "4859" }, { "input": "50\n3 35 86 4 51 65 51 9 95 31 6 29 66 36 68 77 73 59 4 49 49 50 34 86 37 27 74 16 22 98 91 93 93 9 8 80 52 38 46 35 60 49 84 2 40 79 26 38 74\n16 99 87 89 98 66 53 5 100 9 87 27 24 53 63 8 81 31 28 86 66 15 61 3 69 76 90 32 77 69 6 7 44 30 60 46 70 68 61 46 76 81 5 5 45 61 29 92 9\n4 31 74 17 49 5 95 56 100 82 49 82 89 46 38 79 67 4 4 40 7 11 65 67 2 66 100 14 10 3 46 8 5 81 30 55 24 81 96 39 90 61 47 42 91 36 87 6 6 44", "output": "4472" }, { "input": "50\n31 80 40 85 12 38 30 97 51 18 45 81 56 82 91 94 95 13 26 93 98 35 44 69 98 39 83 77 38 68 13 71 80 41 21 80 81 17 88 46 61 67 65 49 29 55 37 74 88\n71 8 42 74 14 70 100 96 25 56 95 38 41 88 45 43 46 16 55 77 100 68 51 30 73 51 25 88 64 26 22 50 4 57 88 85 45 32 11 96 94 19 9 12 10 66 24 8 60\n46 55 55 95 50 96 13 26 91 41 74 53 65 10 11 30 99 77 46 93 71 67 70 44 100 96 73 8 74 14 32 30 62 87 31 3 71 78 82 60 41 26 17 87 98 39 45 80 84 39", "output": "4804" }, { "input": "50\n55 24 86 55 70 15 9 89 6 96 85 20 47 11 6 11 18 75 44 34 50 13 53 40 59 48 4 30 54 34 31 46 75 73 26 85 15 92 21 56 58 81 54 3 26 42 53 18 6\n37 22 90 56 39 67 34 83 46 11 7 49 58 27 23 74 100 1 83 76 38 17 41 45 84 26 51 48 47 75 26 4 60 87 7 20 13 3 58 45 13 57 22 23 79 75 18 17 7\n80 71 24 69 51 91 35 92 90 100 90 28 52 71 67 89 31 42 92 53 40 26 75 38 98 30 53 6 34 30 31 52 6 92 43 46 17 75 73 74 4 95 79 35 5 46 4 58 63 26", "output": "3834" } ]
1,573,580,937
2,147,483,647
Python 3
OK
TESTS
40
124
0
n=int(input()) a=[0] + list(map(int,input().split())) b= list(map(int,input().split())) + [0] arr=list(map(int,input().split())) for i in range(1,n): a[i]+=a[i-1] b[-i-1]+=b[-i] # for i in range(1,n): # # a[i]+=a[i-1] # b[-i-1]+=b[-i] # print(a) # print(b) # print(arr) m=10**12 for i in range(n): for j in range(i+1,n): m=min(a[i] + b[i] + arr[i] + a[j] + b[j] + arr[j],m) print(m)
Title: Laurenty and Shop Time Limit: None seconds Memory Limit: None megabytes Problem Description: A little boy Laurenty has been playing his favourite game Nota for quite a while and is now very hungry. The boy wants to make sausage and cheese sandwiches, but first, he needs to buy a sausage and some cheese. The town where Laurenty lives in is not large. The houses in it are located in two rows, *n* houses in each row. Laurenty lives in the very last house of the second row. The only shop in town is placed in the first house of the first row. The first and second rows are separated with the main avenue of the city. The adjacent houses of one row are separated by streets. Each crosswalk of a street or an avenue has some traffic lights. In order to cross the street, you need to press a button on the traffic light, wait for a while for the green light and cross the street. Different traffic lights can have different waiting time. The traffic light on the crosswalk from the *j*-th house of the *i*-th row to the (*j*<=+<=1)-th house of the same row has waiting time equal to *a**ij* (1<=≤<=*i*<=≤<=2,<=1<=≤<=*j*<=≤<=*n*<=-<=1). For the traffic light on the crossing from the *j*-th house of one row to the *j*-th house of another row the waiting time equals *b**j* (1<=≤<=*j*<=≤<=*n*). The city doesn't have any other crossings. The boy wants to get to the store, buy the products and go back. The main avenue of the city is wide enough, so the boy wants to cross it exactly once on the way to the store and exactly once on the way back home. The boy would get bored if he had to walk the same way again, so he wants the way home to be different from the way to the store in at least one crossing. Help Laurenty determine the minimum total time he needs to wait at the crossroads. Input Specification: The first line of the input contains integer *n* (2<=≤<=*n*<=≤<=50) — the number of houses in each row. Each of the next two lines contains *n*<=-<=1 space-separated integer — values *a**ij* (1<=≤<=*a**ij*<=≤<=100). The last line contains *n* space-separated integers *b**j* (1<=≤<=*b**j*<=≤<=100). Output Specification: Print a single integer — the least total time Laurenty needs to wait at the crossroads, given that he crosses the avenue only once both on his way to the store and on his way back home. Demo Input: ['4\n1 2 3\n3 2 1\n3 2 2 3\n', '3\n1 2\n3 3\n2 1 3\n', '2\n1\n1\n1 1\n'] Demo Output: ['12\n', '11\n', '4\n'] Note: The first sample is shown on the figure above. In the second sample, Laurenty's path can look as follows: - Laurenty crosses the avenue, the waiting time is 3; - Laurenty uses the second crossing in the first row, the waiting time is 2; - Laurenty uses the first crossing in the first row, the waiting time is 1; - Laurenty uses the first crossing in the first row, the waiting time is 1; - Laurenty crosses the avenue, the waiting time is 1; - Laurenty uses the second crossing in the second row, the waiting time is 3. In the last sample Laurenty visits all the crossings, so the answer is 4.
```python n=int(input()) a=[0] + list(map(int,input().split())) b= list(map(int,input().split())) + [0] arr=list(map(int,input().split())) for i in range(1,n): a[i]+=a[i-1] b[-i-1]+=b[-i] # for i in range(1,n): # # a[i]+=a[i-1] # b[-i-1]+=b[-i] # print(a) # print(b) # print(arr) m=10**12 for i in range(n): for j in range(i+1,n): m=min(a[i] + b[i] + arr[i] + a[j] + b[j] + arr[j],m) print(m) ```
3
139
A
Petr and Book
PROGRAMMING
1,000
[ "implementation" ]
null
null
One Sunday Petr went to a bookshop and bought a new book on sports programming. The book had exactly *n* pages. Petr decided to start reading it starting from the next day, that is, from Monday. Petr's got a very tight schedule and for each day of the week he knows how many pages he will be able to read on that day. Some days are so busy that Petr will have no time to read whatsoever. However, we know that he will be able to read at least one page a week. Assuming that Petr will not skip days and will read as much as he can every day, determine on which day of the week he will read the last page of the book.
The first input line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of pages in the book. The second line contains seven non-negative space-separated integers that do not exceed 1000 — those integers represent how many pages Petr can read on Monday, Tuesday, Wednesday, Thursday, Friday, Saturday and Sunday correspondingly. It is guaranteed that at least one of those numbers is larger than zero.
Print a single number — the number of the day of the week, when Petr will finish reading the book. The days of the week are numbered starting with one in the natural order: Monday, Tuesday, Wednesday, Thursday, Friday, Saturday, Sunday.
[ "100\n15 20 20 15 10 30 45\n", "2\n1 0 0 0 0 0 0\n" ]
[ "6\n", "1\n" ]
Note to the first sample: By the end of Monday and therefore, by the beginning of Tuesday Petr has 85 pages left. He has 65 pages left by Wednesday, 45 by Thursday, 30 by Friday, 20 by Saturday and on Saturday Petr finishes reading the book (and he also has time to read 10 pages of something else). Note to the second sample: On Monday of the first week Petr will read the first page. On Monday of the second week Petr will read the second page and will finish reading the book.
500
[ { "input": "100\n15 20 20 15 10 30 45", "output": "6" }, { "input": "2\n1 0 0 0 0 0 0", "output": "1" }, { "input": "100\n100 200 100 200 300 400 500", "output": "1" }, { "input": "3\n1 1 1 1 1 1 1", "output": "3" }, { "input": "1\n1 1 1 1 1 1 1", "output": "1" }, { "input": "20\n5 3 7 2 1 6 4", "output": "6" }, { "input": "10\n5 1 1 1 1 1 5", "output": "6" }, { "input": "50\n10 1 10 1 10 1 10", "output": "1" }, { "input": "77\n11 11 11 11 11 11 10", "output": "1" }, { "input": "1\n1000 1000 1000 1000 1000 1000 1000", "output": "1" }, { "input": "1000\n100 100 100 100 100 100 100", "output": "3" }, { "input": "999\n10 20 10 20 30 20 10", "output": "3" }, { "input": "433\n109 58 77 10 39 125 15", "output": "7" }, { "input": "1\n0 0 0 0 0 0 1", "output": "7" }, { "input": "5\n1 0 1 0 1 0 1", "output": "1" }, { "input": "997\n1 1 0 0 1 0 1", "output": "1" }, { "input": "1000\n1 1 1 1 1 1 1", "output": "6" }, { "input": "1000\n1000 1000 1000 1000 1000 1000 1000", "output": "1" }, { "input": "1000\n1 0 0 0 0 0 0", "output": "1" }, { "input": "1000\n0 0 0 0 0 0 1", "output": "7" }, { "input": "1000\n1 0 0 1 0 0 1", "output": "1" }, { "input": "509\n105 23 98 0 7 0 155", "output": "2" }, { "input": "7\n1 1 1 1 1 1 1", "output": "7" }, { "input": "2\n1 1 0 0 0 0 0", "output": "2" }, { "input": "1\n0 0 0 0 0 1 0", "output": "6" }, { "input": "10\n0 0 0 0 0 0 1", "output": "7" }, { "input": "5\n0 0 0 0 0 6 0", "output": "6" }, { "input": "3\n0 1 0 0 0 0 0", "output": "2" }, { "input": "10\n0 0 0 0 0 0 10", "output": "7" }, { "input": "28\n1 2 3 4 5 6 7", "output": "7" }, { "input": "100\n5 5 5 5 5 5 5", "output": "6" }, { "input": "4\n1 0 0 0 0 0 1", "output": "7" }, { "input": "2\n0 0 0 0 0 0 1", "output": "7" }, { "input": "7\n0 0 0 0 0 0 7", "output": "7" }, { "input": "7\n2 1 1 1 1 1 0", "output": "6" }, { "input": "2\n0 0 1 1 0 0 0", "output": "4" }, { "input": "6\n1 1 1 1 1 1 0", "output": "6" }, { "input": "5\n1 1 1 0 0 1 1", "output": "7" }, { "input": "100\n10 20 30 10 10 10 10", "output": "7" }, { "input": "1\n0 0 0 1 0 0 0", "output": "4" }, { "input": "70\n10 10 10 10 10 10 10", "output": "7" }, { "input": "22\n1 2 3 4 5 6 10", "output": "7" }, { "input": "5\n0 0 0 1 0 0 0", "output": "4" }, { "input": "2\n0 0 0 1 0 0 0", "output": "4" }, { "input": "6\n1 0 0 0 0 0 2", "output": "7" }, { "input": "10\n1 2 2 1 2 1 1", "output": "7" }, { "input": "5\n0 0 0 0 0 0 10", "output": "7" }, { "input": "4\n0 1 1 0 0 0 0", "output": "3" }, { "input": "100\n0 0 0 0 0 1 0", "output": "6" } ]
1,601,273,667
2,147,483,647
Python 3
OK
TESTS
49
216
0
n = int(input()) wk = [int(_) for _ in input().split()] n, i = n%sum(wk), 6 if n == 0: n = sum(wk) while n > 0: i = (i+1)%7 n -= wk[i] print(i+1)
Title: Petr and Book Time Limit: None seconds Memory Limit: None megabytes Problem Description: One Sunday Petr went to a bookshop and bought a new book on sports programming. The book had exactly *n* pages. Petr decided to start reading it starting from the next day, that is, from Monday. Petr's got a very tight schedule and for each day of the week he knows how many pages he will be able to read on that day. Some days are so busy that Petr will have no time to read whatsoever. However, we know that he will be able to read at least one page a week. Assuming that Petr will not skip days and will read as much as he can every day, determine on which day of the week he will read the last page of the book. Input Specification: The first input line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of pages in the book. The second line contains seven non-negative space-separated integers that do not exceed 1000 — those integers represent how many pages Petr can read on Monday, Tuesday, Wednesday, Thursday, Friday, Saturday and Sunday correspondingly. It is guaranteed that at least one of those numbers is larger than zero. Output Specification: Print a single number — the number of the day of the week, when Petr will finish reading the book. The days of the week are numbered starting with one in the natural order: Monday, Tuesday, Wednesday, Thursday, Friday, Saturday, Sunday. Demo Input: ['100\n15 20 20 15 10 30 45\n', '2\n1 0 0 0 0 0 0\n'] Demo Output: ['6\n', '1\n'] Note: Note to the first sample: By the end of Monday and therefore, by the beginning of Tuesday Petr has 85 pages left. He has 65 pages left by Wednesday, 45 by Thursday, 30 by Friday, 20 by Saturday and on Saturday Petr finishes reading the book (and he also has time to read 10 pages of something else). Note to the second sample: On Monday of the first week Petr will read the first page. On Monday of the second week Petr will read the second page and will finish reading the book.
```python n = int(input()) wk = [int(_) for _ in input().split()] n, i = n%sum(wk), 6 if n == 0: n = sum(wk) while n > 0: i = (i+1)%7 n -= wk[i] print(i+1) ```
3
906
B
Seating of Students
PROGRAMMING
2,200
[ "brute force", "constructive algorithms", "math" ]
null
null
Students went into a class to write a test and sat in some way. The teacher thought: "Probably they sat in this order to copy works of each other. I need to rearrange them in such a way that students that were neighbors are not neighbors in a new seating." The class can be represented as a matrix with *n* rows and *m* columns with a student in each cell. Two students are neighbors if cells in which they sit have a common side. Let's enumerate students from 1 to *n*·*m* in order of rows. So a student who initially sits in the cell in row *i* and column *j* has a number (*i*<=-<=1)·*m*<=+<=*j*. You have to find a matrix with *n* rows and *m* columns in which all numbers from 1 to *n*·*m* appear exactly once and adjacent numbers in the original matrix are not adjacent in it, or determine that there is no such matrix.
The only line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=105; *n*·*m*<=≤<=105) — the number of rows and the number of columns in the required matrix.
If there is no such matrix, output "NO" (without quotes). Otherwise in the first line output "YES" (without quotes), and in the next *n* lines output *m* integers which form the required matrix.
[ "2 4\n", "2 1\n" ]
[ "YES\n5 4 7 2 \n3 6 1 8 \n", "NO\n" ]
In the first test case the matrix initially looks like this: It's easy to see that there are no two students that are adjacent in both matrices. In the second test case there are only two possible seatings and in both of them students with numbers 1 and 2 are neighbors.
1,250
[ { "input": "2 4", "output": "YES\n5 4 7 2 \n3 6 1 8 " }, { "input": "2 1", "output": "NO" }, { "input": "1 1", "output": "YES\n1" }, { "input": "1 2", "output": "NO" }, { "input": "1 3", "output": "NO" }, { "input": "2 2", "output": "NO" }, { "input": "2 3", "output": "NO" }, { "input": "3 1", "output": "NO" }, { "input": "3 2", "output": "NO" }, { "input": "3 3", "output": "YES\n6 1 8\n7 5 3\n2 9 4" }, { "input": "1 4", "output": "YES\n2 4 1 3" }, { "input": "4 1", "output": "YES\n2\n4\n1\n3" }, { "input": "4 2", "output": "YES\n2 5 \n7 4 \n6 1 \n3 8 " }, { "input": "1 100000", "output": "YES\n1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63 65 67 69 71 73 75 77 79 81 83 85 87 89 91 93 95 97 99 101 103 105 107 109 111 113 115 117 119 121 123 125 127 129 131 133 135 137 139 141 143 145 147 149 151 153 155 157 159 161 163 165 167 169 171 173 175 177 179 181 183 185 187 189 191 193 195 197 199 201 203 205 207 209 211 213 215 217 219 221 223 225 227 229 231 233 235 237 239 241 243 245 247 249 251 253 255 257 259 261 263 265 267 269 271 273 275 277 279 2..." }, { "input": "100000 1", "output": "YES\n1\n3\n5\n7\n9\n11\n13\n15\n17\n19\n21\n23\n25\n27\n29\n31\n33\n35\n37\n39\n41\n43\n45\n47\n49\n51\n53\n55\n57\n59\n61\n63\n65\n67\n69\n71\n73\n75\n77\n79\n81\n83\n85\n87\n89\n91\n93\n95\n97\n99\n101\n103\n105\n107\n109\n111\n113\n115\n117\n119\n121\n123\n125\n127\n129\n131\n133\n135\n137\n139\n141\n143\n145\n147\n149\n151\n153\n155\n157\n159\n161\n163\n165\n167\n169\n171\n173\n175\n177\n179\n181\n183\n185\n187\n189\n191\n193\n195\n197\n199\n201\n203\n205\n207\n209\n211\n213\n215\n217\n219\n221\n223\n2..." }, { "input": "316 316", "output": "YES\n317 4 319 6 321 8 323 10 325 12 327 14 329 16 331 18 333 20 335 22 337 24 339 26 341 28 343 30 345 32 347 34 349 36 351 38 353 40 355 42 357 44 359 46 361 48 363 50 365 52 367 54 369 56 371 58 373 60 375 62 377 64 379 66 381 68 383 70 385 72 387 74 389 76 391 78 393 80 395 82 397 84 399 86 401 88 403 90 405 92 407 94 409 96 411 98 413 100 415 102 417 104 419 106 421 108 423 110 425 112 427 114 429 116 431 118 433 120 435 122 437 124 439 126 441 128 443 130 445 132 447 134 449 136 451 138 453 140 455 1..." }, { "input": "315 316", "output": "YES\n317 4 319 6 321 8 323 10 325 12 327 14 329 16 331 18 333 20 335 22 337 24 339 26 341 28 343 30 345 32 347 34 349 36 351 38 353 40 355 42 357 44 359 46 361 48 363 50 365 52 367 54 369 56 371 58 373 60 375 62 377 64 379 66 381 68 383 70 385 72 387 74 389 76 391 78 393 80 395 82 397 84 399 86 401 88 403 90 405 92 407 94 409 96 411 98 413 100 415 102 417 104 419 106 421 108 423 110 425 112 427 114 429 116 431 118 433 120 435 122 437 124 439 126 441 128 443 130 445 132 447 134 449 136 451 138 453 140 455 1..." }, { "input": "316 315", "output": "YES\n2 633 4 635 6 637 8 639 10 641 12 643 14 645 16 647 18 649 20 651 22 653 24 655 26 657 28 659 30 661 32 663 34 665 36 667 38 669 40 671 42 673 44 675 46 677 48 679 50 681 52 683 54 685 56 687 58 689 60 691 62 693 64 695 66 697 68 699 70 701 72 703 74 705 76 707 78 709 80 711 82 713 84 715 86 717 88 719 90 721 92 723 94 725 96 727 98 729 100 731 102 733 104 735 106 737 108 739 110 741 112 743 114 745 116 747 118 749 120 751 122 753 124 755 126 757 128 759 130 761 132 763 134 765 136 767 138 769 140 771..." }, { "input": "315 315", "output": "YES\n316 4 318 6 320 8 322 10 324 12 326 14 328 16 330 18 332 20 334 22 336 24 338 26 340 28 342 30 344 32 346 34 348 36 350 38 352 40 354 42 356 44 358 46 360 48 362 50 364 52 366 54 368 56 370 58 372 60 374 62 376 64 378 66 380 68 382 70 384 72 386 74 388 76 390 78 392 80 394 82 396 84 398 86 400 88 402 90 404 92 406 94 408 96 410 98 412 100 414 102 416 104 418 106 420 108 422 110 424 112 426 114 428 116 430 118 432 120 434 122 436 124 438 126 440 128 442 130 444 132 446 134 448 136 450 138 452 140 454 1..." }, { "input": "100 1000", "output": "YES\n1001 4 1003 6 1005 8 1007 10 1009 12 1011 14 1013 16 1015 18 1017 20 1019 22 1021 24 1023 26 1025 28 1027 30 1029 32 1031 34 1033 36 1035 38 1037 40 1039 42 1041 44 1043 46 1045 48 1047 50 1049 52 1051 54 1053 56 1055 58 1057 60 1059 62 1061 64 1063 66 1065 68 1067 70 1069 72 1071 74 1073 76 1075 78 1077 80 1079 82 1081 84 1083 86 1085 88 1087 90 1089 92 1091 94 1093 96 1095 98 1097 100 1099 102 1101 104 1103 106 1105 108 1107 110 1109 112 1111 114 1113 116 1115 118 1117 120 1119 122 1121 124 1123 126..." }, { "input": "1000 100", "output": "YES\n2 203 4 205 6 207 8 209 10 211 12 213 14 215 16 217 18 219 20 221 22 223 24 225 26 227 28 229 30 231 32 233 34 235 36 237 38 239 40 241 42 243 44 245 46 247 48 249 50 251 52 253 54 255 56 257 58 259 60 261 62 263 64 265 66 267 68 269 70 271 72 273 74 275 76 277 78 279 80 281 82 283 84 285 86 287 88 289 90 291 92 293 94 295 96 297 98 299 100 201 \n301 102 303 104 305 106 307 108 309 110 311 112 313 114 315 116 317 118 319 120 321 122 323 124 325 126 327 128 329 130 331 132 333 134 335 136 337 138 339 1..." }, { "input": "10 10000", "output": "YES\n10001 4 10003 6 10005 8 10007 10 10009 12 10011 14 10013 16 10015 18 10017 20 10019 22 10021 24 10023 26 10025 28 10027 30 10029 32 10031 34 10033 36 10035 38 10037 40 10039 42 10041 44 10043 46 10045 48 10047 50 10049 52 10051 54 10053 56 10055 58 10057 60 10059 62 10061 64 10063 66 10065 68 10067 70 10069 72 10071 74 10073 76 10075 78 10077 80 10079 82 10081 84 10083 86 10085 88 10087 90 10089 92 10091 94 10093 96 10095 98 10097 100 10099 102 10101 104 10103 106 10105 108 10107 110 10109 112 10111 1..." }, { "input": "10000 10", "output": "YES\n2 23 4 25 6 27 8 29 10 21 \n31 12 33 14 35 16 37 18 39 20 \n22 43 24 45 26 47 28 49 30 41 \n51 32 53 34 55 36 57 38 59 40 \n42 63 44 65 46 67 48 69 50 61 \n71 52 73 54 75 56 77 58 79 60 \n62 83 64 85 66 87 68 89 70 81 \n91 72 93 74 95 76 97 78 99 80 \n82 103 84 105 86 107 88 109 90 101 \n111 92 113 94 115 96 117 98 119 100 \n102 123 104 125 106 127 108 129 110 121 \n131 112 133 114 135 116 137 118 139 120 \n122 143 124 145 126 147 128 149 130 141 \n151 132 153 134 155 136 157 138 159 140 \n142 163 144..." }, { "input": "100 1", "output": "YES\n1\n3\n5\n7\n9\n11\n13\n15\n17\n19\n21\n23\n25\n27\n29\n31\n33\n35\n37\n39\n41\n43\n45\n47\n49\n51\n53\n55\n57\n59\n61\n63\n65\n67\n69\n71\n73\n75\n77\n79\n81\n83\n85\n87\n89\n91\n93\n95\n97\n99\n2\n4\n6\n8\n10\n12\n14\n16\n18\n20\n22\n24\n26\n28\n30\n32\n34\n36\n38\n40\n42\n44\n46\n48\n50\n52\n54\n56\n58\n60\n62\n64\n66\n68\n70\n72\n74\n76\n78\n80\n82\n84\n86\n88\n90\n92\n94\n96\n98\n100" }, { "input": "1 100", "output": "YES\n1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63 65 67 69 71 73 75 77 79 81 83 85 87 89 91 93 95 97 99 2 4 6 8 10 12 14 16 18 20 22 24 26 28 30 32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62 64 66 68 70 72 74 76 78 80 82 84 86 88 90 92 94 96 98 100 " }, { "input": "100 2", "output": "YES\n2 5 \n7 4 \n6 9 \n11 8 \n10 13 \n15 12 \n14 17 \n19 16 \n18 21 \n23 20 \n22 25 \n27 24 \n26 29 \n31 28 \n30 33 \n35 32 \n34 37 \n39 36 \n38 41 \n43 40 \n42 45 \n47 44 \n46 49 \n51 48 \n50 53 \n55 52 \n54 57 \n59 56 \n58 61 \n63 60 \n62 65 \n67 64 \n66 69 \n71 68 \n70 73 \n75 72 \n74 77 \n79 76 \n78 81 \n83 80 \n82 85 \n87 84 \n86 89 \n91 88 \n90 93 \n95 92 \n94 97 \n99 96 \n98 101 \n103 100 \n102 105 \n107 104 \n106 109 \n111 108 \n110 113 \n115 112 \n114 117 \n119 116 \n118 121 \n123 120 \n122 125 \n..." }, { "input": "2 100", "output": "YES\n101 4 103 6 105 8 107 10 109 12 111 14 113 16 115 18 117 20 119 22 121 24 123 26 125 28 127 30 129 32 131 34 133 36 135 38 137 40 139 42 141 44 143 46 145 48 147 50 149 52 151 54 153 56 155 58 157 60 159 62 161 64 163 66 165 68 167 70 169 72 171 74 173 76 175 78 177 80 179 82 181 84 183 86 185 88 187 90 189 92 191 94 193 96 195 98 197 100 199 2 \n3 102 5 104 7 106 9 108 11 110 13 112 15 114 17 116 19 118 21 120 23 122 25 124 27 126 29 128 31 130 33 132 35 134 37 136 39 138 41 140 43 142 45 144 47 146 ..." }, { "input": "100 3", "output": "YES\n2 9 7 \n10 5 12 \n8 15 13 \n16 11 18 \n14 21 19 \n22 17 24 \n20 27 25 \n28 23 30 \n26 33 31 \n34 29 36 \n32 39 37 \n40 35 42 \n38 45 43 \n46 41 48 \n44 51 49 \n52 47 54 \n50 57 55 \n58 53 60 \n56 63 61 \n64 59 66 \n62 69 67 \n70 65 72 \n68 75 73 \n76 71 78 \n74 81 79 \n82 77 84 \n80 87 85 \n88 83 90 \n86 93 91 \n94 89 96 \n92 99 97 \n100 95 102 \n98 105 103 \n106 101 108 \n104 111 109 \n112 107 114 \n110 117 115 \n118 113 120 \n116 123 121 \n124 119 126 \n122 129 127 \n130 125 132 \n128 135 133 \n136 ..." }, { "input": "3 100", "output": "YES\n101 4 103 6 105 8 107 10 109 12 111 14 113 16 115 18 117 20 119 22 121 24 123 26 125 28 127 30 129 32 131 34 133 36 135 38 137 40 139 42 141 44 143 46 145 48 147 50 149 52 151 54 153 56 155 58 157 60 159 62 161 64 163 66 165 68 167 70 169 72 171 74 173 76 175 78 177 80 179 82 181 84 183 86 185 88 187 90 189 92 191 94 193 96 195 98 197 100 199 2 \n203 102 205 104 207 106 209 108 211 110 213 112 215 114 217 116 219 118 221 120 223 122 225 124 227 126 229 128 231 130 233 132 235 134 237 136 239 138 241 1..." }, { "input": "100 4", "output": "YES\n2 11 4 9 \n13 6 15 8 \n10 19 12 17 \n21 14 23 16 \n18 27 20 25 \n29 22 31 24 \n26 35 28 33 \n37 30 39 32 \n34 43 36 41 \n45 38 47 40 \n42 51 44 49 \n53 46 55 48 \n50 59 52 57 \n61 54 63 56 \n58 67 60 65 \n69 62 71 64 \n66 75 68 73 \n77 70 79 72 \n74 83 76 81 \n85 78 87 80 \n82 91 84 89 \n93 86 95 88 \n90 99 92 97 \n101 94 103 96 \n98 107 100 105 \n109 102 111 104 \n106 115 108 113 \n117 110 119 112 \n114 123 116 121 \n125 118 127 120 \n122 131 124 129 \n133 126 135 128 \n130 139 132 137 \n141 134 143 ..." }, { "input": "4 100", "output": "YES\n101 4 103 6 105 8 107 10 109 12 111 14 113 16 115 18 117 20 119 22 121 24 123 26 125 28 127 30 129 32 131 34 133 36 135 38 137 40 139 42 141 44 143 46 145 48 147 50 149 52 151 54 153 56 155 58 157 60 159 62 161 64 163 66 165 68 167 70 169 72 171 74 173 76 175 78 177 80 179 82 181 84 183 86 185 88 187 90 189 92 191 94 193 96 195 98 197 100 199 2 \n203 102 205 104 207 106 209 108 211 110 213 112 215 114 217 116 219 118 221 120 223 122 225 124 227 126 229 128 231 130 233 132 235 134 237 136 239 138 241 1..." }, { "input": "101 1", "output": "YES\n1\n3\n5\n7\n9\n11\n13\n15\n17\n19\n21\n23\n25\n27\n29\n31\n33\n35\n37\n39\n41\n43\n45\n47\n49\n51\n53\n55\n57\n59\n61\n63\n65\n67\n69\n71\n73\n75\n77\n79\n81\n83\n85\n87\n89\n91\n93\n95\n97\n99\n101\n2\n4\n6\n8\n10\n12\n14\n16\n18\n20\n22\n24\n26\n28\n30\n32\n34\n36\n38\n40\n42\n44\n46\n48\n50\n52\n54\n56\n58\n60\n62\n64\n66\n68\n70\n72\n74\n76\n78\n80\n82\n84\n86\n88\n90\n92\n94\n96\n98\n100" }, { "input": "1 101", "output": "YES\n1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 41 43 45 47 49 51 53 55 57 59 61 63 65 67 69 71 73 75 77 79 81 83 85 87 89 91 93 95 97 99 101 2 4 6 8 10 12 14 16 18 20 22 24 26 28 30 32 34 36 38 40 42 44 46 48 50 52 54 56 58 60 62 64 66 68 70 72 74 76 78 80 82 84 86 88 90 92 94 96 98 100 " }, { "input": "101 2", "output": "YES\n2 5 \n7 4 \n6 9 \n11 8 \n10 13 \n15 12 \n14 17 \n19 16 \n18 21 \n23 20 \n22 25 \n27 24 \n26 29 \n31 28 \n30 33 \n35 32 \n34 37 \n39 36 \n38 41 \n43 40 \n42 45 \n47 44 \n46 49 \n51 48 \n50 53 \n55 52 \n54 57 \n59 56 \n58 61 \n63 60 \n62 65 \n67 64 \n66 69 \n71 68 \n70 73 \n75 72 \n74 77 \n79 76 \n78 81 \n83 80 \n82 85 \n87 84 \n86 89 \n91 88 \n90 93 \n95 92 \n94 97 \n99 96 \n98 101 \n103 100 \n102 105 \n107 104 \n106 109 \n111 108 \n110 113 \n115 112 \n114 117 \n119 116 \n118 121 \n123 120 \n122 125 \n..." }, { "input": "2 101", "output": "YES\n102 4 104 6 106 8 108 10 110 12 112 14 114 16 116 18 118 20 120 22 122 24 124 26 126 28 128 30 130 32 132 34 134 36 136 38 138 40 140 42 142 44 144 46 146 48 148 50 150 52 152 54 154 56 156 58 158 60 160 62 162 64 164 66 166 68 168 70 170 72 172 74 174 76 176 78 178 80 180 82 182 84 184 86 186 88 188 90 190 92 192 94 194 96 196 98 198 100 200 1 202 \n3 103 5 105 7 107 9 109 11 111 13 113 15 115 17 117 19 119 21 121 23 123 25 125 27 127 29 129 31 131 33 133 35 135 37 137 39 139 41 141 43 143 45 145 47 ..." }, { "input": "101 3", "output": "YES\n2 9 7 \n10 5 12 \n8 15 13 \n16 11 18 \n14 21 19 \n22 17 24 \n20 27 25 \n28 23 30 \n26 33 31 \n34 29 36 \n32 39 37 \n40 35 42 \n38 45 43 \n46 41 48 \n44 51 49 \n52 47 54 \n50 57 55 \n58 53 60 \n56 63 61 \n64 59 66 \n62 69 67 \n70 65 72 \n68 75 73 \n76 71 78 \n74 81 79 \n82 77 84 \n80 87 85 \n88 83 90 \n86 93 91 \n94 89 96 \n92 99 97 \n100 95 102 \n98 105 103 \n106 101 108 \n104 111 109 \n112 107 114 \n110 117 115 \n118 113 120 \n116 123 121 \n124 119 126 \n122 129 127 \n130 125 132 \n128 135 133 \n136 ..." }, { "input": "3 101", "output": "YES\n102 4 104 6 106 8 108 10 110 12 112 14 114 16 116 18 118 20 120 22 122 24 124 26 126 28 128 30 130 32 132 34 134 36 136 38 138 40 140 42 142 44 144 46 146 48 148 50 150 52 152 54 154 56 156 58 158 60 160 62 162 64 164 66 166 68 168 70 170 72 172 74 174 76 176 78 178 80 180 82 182 84 184 86 186 88 188 90 190 92 192 94 194 96 196 98 198 100 200 1 202 \n205 103 207 105 209 107 211 109 213 111 215 113 217 115 219 117 221 119 223 121 225 123 227 125 229 127 231 129 233 131 235 133 237 135 239 137 241 139 2..." }, { "input": "101 4", "output": "YES\n2 11 4 9 \n13 6 15 8 \n10 19 12 17 \n21 14 23 16 \n18 27 20 25 \n29 22 31 24 \n26 35 28 33 \n37 30 39 32 \n34 43 36 41 \n45 38 47 40 \n42 51 44 49 \n53 46 55 48 \n50 59 52 57 \n61 54 63 56 \n58 67 60 65 \n69 62 71 64 \n66 75 68 73 \n77 70 79 72 \n74 83 76 81 \n85 78 87 80 \n82 91 84 89 \n93 86 95 88 \n90 99 92 97 \n101 94 103 96 \n98 107 100 105 \n109 102 111 104 \n106 115 108 113 \n117 110 119 112 \n114 123 116 121 \n125 118 127 120 \n122 131 124 129 \n133 126 135 128 \n130 139 132 137 \n141 134 143 ..." }, { "input": "4 101", "output": "YES\n102 4 104 6 106 8 108 10 110 12 112 14 114 16 116 18 118 20 120 22 122 24 124 26 126 28 128 30 130 32 132 34 134 36 136 38 138 40 140 42 142 44 144 46 146 48 148 50 150 52 152 54 154 56 156 58 158 60 160 62 162 64 164 66 166 68 168 70 170 72 172 74 174 76 176 78 178 80 180 82 182 84 184 86 186 88 188 90 190 92 192 94 194 96 196 98 198 100 200 1 202 \n205 103 207 105 209 107 211 109 213 111 215 113 217 115 219 117 221 119 223 121 225 123 227 125 229 127 231 129 233 131 235 133 237 135 239 137 241 139 2..." }, { "input": "6 16666", "output": "YES\n16667 4 16669 6 16671 8 16673 10 16675 12 16677 14 16679 16 16681 18 16683 20 16685 22 16687 24 16689 26 16691 28 16693 30 16695 32 16697 34 16699 36 16701 38 16703 40 16705 42 16707 44 16709 46 16711 48 16713 50 16715 52 16717 54 16719 56 16721 58 16723 60 16725 62 16727 64 16729 66 16731 68 16733 70 16735 72 16737 74 16739 76 16741 78 16743 80 16745 82 16747 84 16749 86 16751 88 16753 90 16755 92 16757 94 16759 96 16761 98 16763 100 16765 102 16767 104 16769 106 16771 108 16773 110 16775 112 16777 1..." }, { "input": "314 315", "output": "YES\n316 4 318 6 320 8 322 10 324 12 326 14 328 16 330 18 332 20 334 22 336 24 338 26 340 28 342 30 344 32 346 34 348 36 350 38 352 40 354 42 356 44 358 46 360 48 362 50 364 52 366 54 368 56 370 58 372 60 374 62 376 64 378 66 380 68 382 70 384 72 386 74 388 76 390 78 392 80 394 82 396 84 398 86 400 88 402 90 404 92 406 94 408 96 410 98 412 100 414 102 416 104 418 106 420 108 422 110 424 112 426 114 428 116 430 118 432 120 434 122 436 124 438 126 440 128 442 130 444 132 446 134 448 136 450 138 452 140 454 1..." }, { "input": "2 20", "output": "YES\n21 4 23 6 25 8 27 10 29 12 31 14 33 16 35 18 37 20 39 2 \n3 22 5 24 7 26 9 28 11 30 13 32 15 34 17 36 19 38 1 40 " } ]
1,514,065,197
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
/// The worst problem I've ever seen:( #include<bits/stdc++.h> #define ll long long #define ff first #define ss second #define pb push_back using namespace std; const ll maxn = 2e5 + 1000; const ll mod = 1e9 + 7; vector < int > a[maxn]; int b[maxn]; map < pair < int , int > , bool > bad; pair < int , int > shit[maxn]; int main() { ios_base::sync_with_stdio(false); cin.tie(0); cout.tie(0); int n, m; cin >> n >> m; if(n == 1 && m == 1) { cout << "YES" << endl; cout << 1 << endl; return 0; } if(n <= 3 && m <= 3 && (n + m != 6)) { cout << "NO" << endl; return 0; } if(min(n, m) >= 4) { int x = 1; for(int i = 1; i <= n; ++i) { a[i].pb(0); for(int j = 1; j <= m; ++j) { a[i].pb(x ++); } } for(int i = 1; i <= n; ++i) { for(int j = 2; j <= m; j += 2) { swap(a[i][j], a[i][j - 1]); } for(int j = 3; j <= m; j += 2) { swap(a[i][j], a[i][j - 1]); } } for(int j = 1; j <= m; ++j) { for(int i = 2; i <= n; i += 2) { swap(a[i][j], a[i - 1][j]); } for(int i = 3; i <= n; i += 2) { swap(a[i][j], a[i - 1][j]); } } cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' '; } cout << endl; } return 0; } for(int i = 0; i <= n + 1; ++i) { for(int j = 0; j <= m + 1; ++j) { a[i].pb(0); } } for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { a[i][j] = (i - 1) * m + j; } } for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { bad[{a[i][j], a[i + x][j + y]}] = bad[{a[i + x][j + y], a[i][j]}] = 1; } } } } } srand(time(NULL)); int tt = 10; if(max(n, m) <= 1000) { tt = 1000; } for(int i = 1; i <= n * m; ++i) { b[i] = i; } while(tt --) { random_shuffle(b + 1, b + n * m + 1); int z = n * m; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { a[i][j] = b[z]; z --; } } int ok = 0; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { if(bad[{a[i][j], a[i + x][j + y]}]) { ok ++; shit[ok - 1] = {i, j}; } } } } } } if(!ok) { cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' ' ; } cout << endl; } return 0; } else { for(int i = 0; i < ok; ++i) { ll x = 1LL * rand() * rand() % n + 1; ll y = 1LL * rand() * rand() % m + 1; swap(a[shit[i].ff][shit[i].ss], a[x][y]); } ok = 0; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { if(bad[{a[i][j], a[i + x][j + y]}]) { ok ++; shit[ok - 1] = {i, j}; } } } } } } if(!ok) { cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' ' ; } cout << endl; } return 0; } } } cout << "NO" << endl; return 0; }
Title: Seating of Students Time Limit: None seconds Memory Limit: None megabytes Problem Description: Students went into a class to write a test and sat in some way. The teacher thought: "Probably they sat in this order to copy works of each other. I need to rearrange them in such a way that students that were neighbors are not neighbors in a new seating." The class can be represented as a matrix with *n* rows and *m* columns with a student in each cell. Two students are neighbors if cells in which they sit have a common side. Let's enumerate students from 1 to *n*·*m* in order of rows. So a student who initially sits in the cell in row *i* and column *j* has a number (*i*<=-<=1)·*m*<=+<=*j*. You have to find a matrix with *n* rows and *m* columns in which all numbers from 1 to *n*·*m* appear exactly once and adjacent numbers in the original matrix are not adjacent in it, or determine that there is no such matrix. Input Specification: The only line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=105; *n*·*m*<=≤<=105) — the number of rows and the number of columns in the required matrix. Output Specification: If there is no such matrix, output "NO" (without quotes). Otherwise in the first line output "YES" (without quotes), and in the next *n* lines output *m* integers which form the required matrix. Demo Input: ['2 4\n', '2 1\n'] Demo Output: ['YES\n5 4 7 2 \n3 6 1 8 \n', 'NO\n'] Note: In the first test case the matrix initially looks like this: It's easy to see that there are no two students that are adjacent in both matrices. In the second test case there are only two possible seatings and in both of them students with numbers 1 and 2 are neighbors.
```python /// The worst problem I've ever seen:( #include<bits/stdc++.h> #define ll long long #define ff first #define ss second #define pb push_back using namespace std; const ll maxn = 2e5 + 1000; const ll mod = 1e9 + 7; vector < int > a[maxn]; int b[maxn]; map < pair < int , int > , bool > bad; pair < int , int > shit[maxn]; int main() { ios_base::sync_with_stdio(false); cin.tie(0); cout.tie(0); int n, m; cin >> n >> m; if(n == 1 && m == 1) { cout << "YES" << endl; cout << 1 << endl; return 0; } if(n <= 3 && m <= 3 && (n + m != 6)) { cout << "NO" << endl; return 0; } if(min(n, m) >= 4) { int x = 1; for(int i = 1; i <= n; ++i) { a[i].pb(0); for(int j = 1; j <= m; ++j) { a[i].pb(x ++); } } for(int i = 1; i <= n; ++i) { for(int j = 2; j <= m; j += 2) { swap(a[i][j], a[i][j - 1]); } for(int j = 3; j <= m; j += 2) { swap(a[i][j], a[i][j - 1]); } } for(int j = 1; j <= m; ++j) { for(int i = 2; i <= n; i += 2) { swap(a[i][j], a[i - 1][j]); } for(int i = 3; i <= n; i += 2) { swap(a[i][j], a[i - 1][j]); } } cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' '; } cout << endl; } return 0; } for(int i = 0; i <= n + 1; ++i) { for(int j = 0; j <= m + 1; ++j) { a[i].pb(0); } } for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { a[i][j] = (i - 1) * m + j; } } for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { bad[{a[i][j], a[i + x][j + y]}] = bad[{a[i + x][j + y], a[i][j]}] = 1; } } } } } srand(time(NULL)); int tt = 10; if(max(n, m) <= 1000) { tt = 1000; } for(int i = 1; i <= n * m; ++i) { b[i] = i; } while(tt --) { random_shuffle(b + 1, b + n * m + 1); int z = n * m; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { a[i][j] = b[z]; z --; } } int ok = 0; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { if(bad[{a[i][j], a[i + x][j + y]}]) { ok ++; shit[ok - 1] = {i, j}; } } } } } } if(!ok) { cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' ' ; } cout << endl; } return 0; } else { for(int i = 0; i < ok; ++i) { ll x = 1LL * rand() * rand() % n + 1; ll y = 1LL * rand() * rand() % m + 1; swap(a[shit[i].ff][shit[i].ss], a[x][y]); } ok = 0; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { for(int x = -1; x < 2; ++x) { for(int y = -1; y < 2; ++y) { if((x || y) && (x == 0 || y == 0) && a[i + x][j + y]) { if(bad[{a[i][j], a[i + x][j + y]}]) { ok ++; shit[ok - 1] = {i, j}; } } } } } } if(!ok) { cout << "YES" << endl; for(int i = 1; i <= n; ++i) { for(int j = 1; j <= m; ++j) { cout << a[i][j] << ' ' ; } cout << endl; } return 0; } } } cout << "NO" << endl; return 0; } ```
-1
988
B
Substrings Sort
PROGRAMMING
1,100
[ "sortings", "strings" ]
null
null
You are given $n$ strings. Each string consists of lowercase English letters. Rearrange (reorder) the given strings in such a way that for every string, all strings that are placed before it are its substrings. String $a$ is a substring of string $b$ if it is possible to choose several consecutive letters in $b$ in such a way that they form $a$. For example, string "for" is contained as a substring in strings "codeforces", "for" and "therefore", but is not contained as a substring in strings "four", "fofo" and "rof".
The first line contains an integer $n$ ($1 \le n \le 100$) — the number of strings. The next $n$ lines contain the given strings. The number of letters in each string is from $1$ to $100$, inclusive. Each string consists of lowercase English letters. Some strings might be equal.
If it is impossible to reorder $n$ given strings in required order, print "NO" (without quotes). Otherwise print "YES" (without quotes) and $n$ given strings in required order.
[ "5\na\naba\nabacaba\nba\naba\n", "5\na\nabacaba\nba\naba\nabab\n", "3\nqwerty\nqwerty\nqwerty\n" ]
[ "YES\na\nba\naba\naba\nabacaba\n", "NO\n", "YES\nqwerty\nqwerty\nqwerty\n" ]
In the second example you cannot reorder the strings because the string "abab" is not a substring of the string "abacaba".
0
[ { "input": "5\na\naba\nabacaba\nba\naba", "output": "YES\na\nba\naba\naba\nabacaba" }, { "input": "5\na\nabacaba\nba\naba\nabab", "output": "NO" }, { "input": "3\nqwerty\nqwerty\nqwerty", "output": "YES\nqwerty\nqwerty\nqwerty" }, { "input": "1\nwronganswer", "output": "YES\nwronganswer" }, { "input": "3\na\nb\nab", "output": "NO" }, { "input": "2\nababaab\nabaab", "output": "YES\nabaab\nababaab" }, { "input": "2\nq\nqq", "output": "YES\nq\nqq" }, { "input": "5\nabab\nbab\nba\nab\na", "output": "NO" }, { "input": "3\nb\nc\nd", "output": "NO" }, { "input": "3\naba\nbab\nababa", "output": "NO" }, { "input": "4\na\nba\nabacabac\nb", "output": "NO" }, { "input": "4\nab\nba\nabab\na", "output": "NO" }, { "input": "3\naaa\naab\naaab", "output": "NO" }, { "input": "2\nac\nabac", "output": "YES\nac\nabac" }, { "input": "2\na\nb", "output": "NO" }, { "input": "3\nbaa\nbaaaaaaaab\naaaaaa", "output": "NO" }, { "input": "3\naaab\naab\naaaab", "output": "YES\naab\naaab\naaaab" }, { "input": "2\naaba\naba", "output": "YES\naba\naaba" }, { "input": "10\na\nb\nc\nd\nab\nbc\ncd\nabc\nbcd\nabcd", "output": "NO" }, { "input": "5\na\nab\nae\nabcd\nabcde", "output": "NO" }, { "input": "3\nv\nab\nvab", "output": "NO" }, { "input": "4\na\nb\nc\nabc", "output": "NO" }, { "input": "2\nab\naab", "output": "YES\nab\naab" }, { "input": "3\nabc\na\nc", "output": "NO" }, { "input": "2\nabaab\nababaab", "output": "YES\nabaab\nababaab" }, { "input": "3\ny\nxx\nxxy", "output": "NO" }, { "input": "4\naaaa\naaaa\naaaa\nab", "output": "NO" }, { "input": "3\nbad\naba\nabad", "output": "NO" }, { "input": "3\nabcabc\nab\nbc", "output": "NO" }, { "input": "2\naaaab\naaaaab", "output": "YES\naaaab\naaaaab" }, { "input": "5\nab\naba\naba\naba\nabd", "output": "NO" }, { "input": "4\nded\nd\ne\nd", "output": "NO" }, { "input": "5\nekgetterherforme\ner\nter\nher\ntter", "output": "NO" }, { "input": "3\naa\nbba\ncbba", "output": "NO" }, { "input": "3\nab\naa\naab", "output": "NO" }, { "input": "6\naaaa\naaaa\naaaa\naaaaab\nab\nab", "output": "NO" }, { "input": "3\na\nbcd\nabcd", "output": "NO" }, { "input": "3\naa\nab\naab", "output": "NO" }, { "input": "3\nabcde\nab\ncde", "output": "NO" }, { "input": "4\nanoop\np\nan\noop", "output": "NO" }, { "input": "3\nab\ncd\nabcd", "output": "NO" }, { "input": "3\nafaba\nafab\nfaba", "output": "NO" }, { "input": "3\nababc\nabababc\nab", "output": "YES\nab\nababc\nabababc" }, { "input": "3\na\nba\nbbab", "output": "YES\na\nba\nbbab" }, { "input": "2\naabaa\naba", "output": "YES\naba\naabaa" }, { "input": "3\nbc\nbca\na", "output": "NO" }, { "input": "2\naba\nabba", "output": "NO" }, { "input": "7\na\nb\nc\nab\nac\nac\nac", "output": "NO" }, { "input": "2\naa\nmmmmmmmammmmmmmm", "output": "NO" } ]
1,691,435,646
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
31
0
n = int(input()) strings = [] for i in range(n): strings.append(input()) strings = sorted(strings, key=len, reverse=True) answer = "YES" for i in range(len(strings)-1): if strings[i+1] not in strings[i]: answer = "NO" print(answer)
Title: Substrings Sort Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given $n$ strings. Each string consists of lowercase English letters. Rearrange (reorder) the given strings in such a way that for every string, all strings that are placed before it are its substrings. String $a$ is a substring of string $b$ if it is possible to choose several consecutive letters in $b$ in such a way that they form $a$. For example, string "for" is contained as a substring in strings "codeforces", "for" and "therefore", but is not contained as a substring in strings "four", "fofo" and "rof". Input Specification: The first line contains an integer $n$ ($1 \le n \le 100$) — the number of strings. The next $n$ lines contain the given strings. The number of letters in each string is from $1$ to $100$, inclusive. Each string consists of lowercase English letters. Some strings might be equal. Output Specification: If it is impossible to reorder $n$ given strings in required order, print "NO" (without quotes). Otherwise print "YES" (without quotes) and $n$ given strings in required order. Demo Input: ['5\na\naba\nabacaba\nba\naba\n', '5\na\nabacaba\nba\naba\nabab\n', '3\nqwerty\nqwerty\nqwerty\n'] Demo Output: ['YES\na\nba\naba\naba\nabacaba\n', 'NO\n', 'YES\nqwerty\nqwerty\nqwerty\n'] Note: In the second example you cannot reorder the strings because the string "abab" is not a substring of the string "abacaba".
```python n = int(input()) strings = [] for i in range(n): strings.append(input()) strings = sorted(strings, key=len, reverse=True) answer = "YES" for i in range(len(strings)-1): if strings[i+1] not in strings[i]: answer = "NO" print(answer) ```
0
637
A
Voting for Photos
PROGRAMMING
1,000
[ "*special", "constructive algorithms", "implementation" ]
null
null
After celebrating the midcourse the students of one of the faculties of the Berland State University decided to conduct a vote for the best photo. They published the photos in the social network and agreed on the rules to choose a winner: the photo which gets most likes wins. If multiple photoes get most likes, the winner is the photo that gets this number first. Help guys determine the winner photo by the records of likes.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the total likes to the published photoes. The second line contains *n* positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000), where *a**i* is the identifier of the photo which got the *i*-th like.
Print the identifier of the photo which won the elections.
[ "5\n1 3 2 2 1\n", "9\n100 200 300 200 100 300 300 100 200\n" ]
[ "2\n", "300\n" ]
In the first test sample the photo with id 1 got two likes (first and fifth), photo with id 2 got two likes (third and fourth), and photo with id 3 got one like (second). Thus, the winner is the photo with identifier 2, as it got: - more likes than the photo with id 3; - as many likes as the photo with id 1, but the photo with the identifier 2 got its second like earlier.
500
[ { "input": "5\n1 3 2 2 1", "output": "2" }, { "input": "9\n100 200 300 200 100 300 300 100 200", "output": "300" }, { "input": "1\n5", "output": "5" }, { "input": "1\n1000000", "output": "1000000" }, { "input": "5\n1 3 4 2 2", "output": "2" }, { "input": "10\n2 1 2 3 1 5 8 7 4 8", "output": "2" }, { "input": "7\n1 1 2 2 2 3 3", "output": "2" }, { "input": "12\n2 3 1 2 3 3 3 2 1 1 2 1", "output": "3" }, { "input": "15\n7 6 8 4 9 8 7 3 4 6 7 5 4 2 8", "output": "7" }, { "input": "15\n100 200 300 500 300 400 600 300 100 200 400 300 600 200 100", "output": "300" }, { "input": "10\n677171 677171 677171 677171 672280 677171 677171 672280 672280 677171", "output": "677171" }, { "input": "15\n137419 137419 531977 438949 137419 438949 438949 137419 438949 531977 531977 531977 438949 438949 438949", "output": "438949" }, { "input": "20\n474463 517819 640039 640039 640039 640039 474463 474463 474463 640039 640039 474463 474463 425567 474463 517819 640039 474463 517819 517819", "output": "474463" }, { "input": "40\n119631 119631 772776 119631 658661 119631 108862 524470 125132 700668 69196 844949 154577 108862 108862 108862 597344 940938 989698 108862 154577 69196 125132 687080 940938 125132 69196 69196 125132 566152 953083 406319 380068 119631 154577 125132 413984 69196 154577 154577", "output": "108862" }, { "input": "5\n1 1 1000000 1000000 1000000", "output": "1000000" }, { "input": "5\n1000000 1 1 1000000 1", "output": "1" }, { "input": "10\n1 1 1000000 1000000 1000000 1 1000000 1 1 1000000", "output": "1" }, { "input": "8\n1000000 1000000 1 1 1 1000000 1000000 1", "output": "1000000" }, { "input": "1\n1", "output": "1" }, { "input": "2\n1 1", "output": "1" }, { "input": "2\n1000000 1", "output": "1000000" }, { "input": "2\n1 1000000", "output": "1" }, { "input": "2\n1000000 1000000", "output": "1000000" }, { "input": "3\n1 1 1", "output": "1" }, { "input": "3\n1 1 2", "output": "1" }, { "input": "3\n1 2 1", "output": "1" }, { "input": "3\n2 1 1", "output": "1" }, { "input": "4\n1 1000000 1000000 1", "output": "1000000" } ]
1,622,772,299
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
93
0
x = int(input()) x2 = input() a = 0 raw_num = [] # 1 3 2 2 1 unraw_num = [] z = [] for i in x2.split(" "): raw_num.append(i) while x > a : y = x2.split() unraw_num.append(y.count(y[0])) a += 1 v = 0 for i in raw_num: if raw_num[v][0] == str(unraw_num[-1]): z.append (i) v+=1 # print(raw_num) # print(str(unraw_num)) # print(raw_num[2][0] == str(unraw_num[-1])) if z == []: print(x2) else: print(z[-1])
Title: Voting for Photos Time Limit: None seconds Memory Limit: None megabytes Problem Description: After celebrating the midcourse the students of one of the faculties of the Berland State University decided to conduct a vote for the best photo. They published the photos in the social network and agreed on the rules to choose a winner: the photo which gets most likes wins. If multiple photoes get most likes, the winner is the photo that gets this number first. Help guys determine the winner photo by the records of likes. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the total likes to the published photoes. The second line contains *n* positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000), where *a**i* is the identifier of the photo which got the *i*-th like. Output Specification: Print the identifier of the photo which won the elections. Demo Input: ['5\n1 3 2 2 1\n', '9\n100 200 300 200 100 300 300 100 200\n'] Demo Output: ['2\n', '300\n'] Note: In the first test sample the photo with id 1 got two likes (first and fifth), photo with id 2 got two likes (third and fourth), and photo with id 3 got one like (second). Thus, the winner is the photo with identifier 2, as it got: - more likes than the photo with id 3; - as many likes as the photo with id 1, but the photo with the identifier 2 got its second like earlier.
```python x = int(input()) x2 = input() a = 0 raw_num = [] # 1 3 2 2 1 unraw_num = [] z = [] for i in x2.split(" "): raw_num.append(i) while x > a : y = x2.split() unraw_num.append(y.count(y[0])) a += 1 v = 0 for i in raw_num: if raw_num[v][0] == str(unraw_num[-1]): z.append (i) v+=1 # print(raw_num) # print(str(unraw_num)) # print(raw_num[2][0] == str(unraw_num[-1])) if z == []: print(x2) else: print(z[-1]) ```
0
899
C
Dividing the numbers
PROGRAMMING
1,300
[ "constructive algorithms", "graphs", "math" ]
null
null
Petya has *n* integers: 1,<=2,<=3,<=...,<=*n*. He wants to split these integers in two non-empty groups in such a way that the absolute difference of sums of integers in each group is as small as possible. Help Petya to split the integers. Each of *n* integers should be exactly in one group.
The first line contains a single integer *n* (2<=≤<=*n*<=≤<=60<=000) — the number of integers Petya has.
Print the smallest possible absolute difference in the first line. In the second line print the size of the first group, followed by the integers in that group. You can print these integers in arbitrary order. If there are multiple answers, print any of them.
[ "4\n", "2\n" ]
[ "0\n2 1 4 \n", "1\n1 1 \n" ]
In the first example you have to put integers 1 and 4 in the first group, and 2 and 3 in the second. This way the sum in each group is 5, and the absolute difference is 0. In the second example there are only two integers, and since both groups should be non-empty, you have to put one integer in the first group and one in the second. This way the absolute difference of sums of integers in each group is 1.
1,500
[ { "input": "4", "output": "0\n2 1 4 " }, { "input": "2", "output": "1\n1 1 " }, { "input": "3", "output": "0\n1\n3 " }, { "input": "5", "output": "1\n3\n1 2 5 " }, { "input": "59998", "output": "1\n29999 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "60000", "output": "0\n30000 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 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51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "6", "output": "1\n3 1 4 5 " }, { "input": "7", "output": "0\n3\n1 6 7 " }, { "input": "8", "output": "0\n4 1 4 5 8 " }, { "input": "9", "output": "1\n5\n1 2 3 8 9 " }, { "input": "10", "output": "1\n5 1 4 5 8 9 " }, { "input": "11", "output": "0\n5\n1 2 9 10 11 " }, { "input": "12", "output": "0\n6 1 4 5 8 9 12 " }, { "input": "13", "output": "1\n7\n1 2 3 4 11 12 13 " }, { "input": "14", "output": "1\n7 1 4 5 8 9 12 13 " }, { "input": "15", "output": "0\n7\n1 2 3 12 13 14 15 " }, { "input": "16", "output": "0\n8 1 4 5 8 9 12 13 16 " }, { "input": "17", "output": "1\n9\n1 2 3 4 5 14 15 16 17 " }, { "input": "18", "output": "1\n9 1 4 5 8 9 12 13 16 17 " }, { "input": "19", "output": "0\n9\n1 2 3 4 15 16 17 18 19 " }, { "input": "20", "output": "0\n10 1 4 5 8 9 12 13 16 17 20 " }, { "input": "21", "output": "1\n11\n1 2 3 4 5 6 17 18 19 20 21 " }, { "input": "22", "output": "1\n11 1 4 5 8 9 12 13 16 17 20 21 " }, { "input": "23", "output": "0\n11\n1 2 3 4 5 18 19 20 21 22 23 " }, { "input": "24", "output": "0\n12 1 4 5 8 9 12 13 16 17 20 21 24 " }, { "input": "59999", "output": "0\n29999\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "59997", "output": "1\n29999\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "59996", "output": "0\n29998 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "59995", "output": "0\n29997\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "59994", "output": "1\n29997 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "59993", "output": "1\n29997\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "59992", "output": "0\n29996 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "59990", "output": "1\n29995 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "100", "output": "0\n50 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 " }, { "input": "1000", "output": "0\n500 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 28..." }, { "input": "10001", "output": "1\n5001\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 15..." }, { "input": "103", "output": "0\n51\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 " }, { "input": "1002", "output": "1\n501 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 28..." }, { "input": "31724", "output": "0\n15862 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "2032", "output": "0\n1016 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 2..." }, { "input": "42620", "output": "0\n21310 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "18076", "output": "0\n9038 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 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273 276 277 ..." }, { "input": "27542", "output": "1\n13771 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 ..." }, { "input": "8146", "output": "1\n4073 1 4 5 8 9 12 13 16 17 20 21 24 25 28 29 32 33 36 37 40 41 44 45 48 49 52 53 56 57 60 61 64 65 68 69 72 73 76 77 80 81 84 85 88 89 92 93 96 97 100 101 104 105 108 109 112 113 116 117 120 121 124 125 128 129 132 133 136 137 140 141 144 145 148 149 152 153 156 157 160 161 164 165 168 169 172 173 176 177 180 181 184 185 188 189 192 193 196 197 200 201 204 205 208 209 212 213 216 217 220 221 224 225 228 229 232 233 236 237 240 241 244 245 248 249 252 253 256 257 260 261 264 265 268 269 272 273 276 277 2..." }, { "input": "46659", "output": "0\n23329\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "27259", "output": "0\n13629\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "2715", "output": "0\n1357\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 15..." }, { "input": "38159", "output": "0\n19079\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 1..." }, { "input": "18759", "output": "0\n9379\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 15..." } ]
1,620,382,434
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
62
6,963,200
# import math n=int(input()) #r1,c1,r2,c2 = map(int, input().strip().split(' ')) #lst = list(map(int, input().strip().split(' '))) d=-1 s=n//2 if n%4==0: d=0 elif n%2!=0: d=n//2+1 s=n//2+1 else: d=1 print(d) ## if n==1: print(s,0,end=" ") elif n==2: print(s,1,end=" ") elif n==3: print(s,1,3,end=" ") else: print(s,end=" ") if n%2!=0: j=0 while(j<n): print(j+1,end=" ") j+=2 elif n%4==0: j=1 while(j<n//2): print(j,end=" ") j+=2 j=n//2 + 2 while(j<=n): print(j,end=" ") j+=2 else: j=1 while(j<n//2-1): print(j,end=" ") j+=2 print(n//2,end=" ") j=n//2+3 while(j<=n): print(j,end=" ") j+=2
Title: Dividing the numbers Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya has *n* integers: 1,<=2,<=3,<=...,<=*n*. He wants to split these integers in two non-empty groups in such a way that the absolute difference of sums of integers in each group is as small as possible. Help Petya to split the integers. Each of *n* integers should be exactly in one group. Input Specification: The first line contains a single integer *n* (2<=≤<=*n*<=≤<=60<=000) — the number of integers Petya has. Output Specification: Print the smallest possible absolute difference in the first line. In the second line print the size of the first group, followed by the integers in that group. You can print these integers in arbitrary order. If there are multiple answers, print any of them. Demo Input: ['4\n', '2\n'] Demo Output: ['0\n2 1 4 \n', '1\n1 1 \n'] Note: In the first example you have to put integers 1 and 4 in the first group, and 2 and 3 in the second. This way the sum in each group is 5, and the absolute difference is 0. In the second example there are only two integers, and since both groups should be non-empty, you have to put one integer in the first group and one in the second. This way the absolute difference of sums of integers in each group is 1.
```python # import math n=int(input()) #r1,c1,r2,c2 = map(int, input().strip().split(' ')) #lst = list(map(int, input().strip().split(' '))) d=-1 s=n//2 if n%4==0: d=0 elif n%2!=0: d=n//2+1 s=n//2+1 else: d=1 print(d) ## if n==1: print(s,0,end=" ") elif n==2: print(s,1,end=" ") elif n==3: print(s,1,3,end=" ") else: print(s,end=" ") if n%2!=0: j=0 while(j<n): print(j+1,end=" ") j+=2 elif n%4==0: j=1 while(j<n//2): print(j,end=" ") j+=2 j=n//2 + 2 while(j<=n): print(j,end=" ") j+=2 else: j=1 while(j<n//2-1): print(j,end=" ") j+=2 print(n//2,end=" ") j=n//2+3 while(j<=n): print(j,end=" ") j+=2 ```
0
743
B
Chloe and the sequence
PROGRAMMING
1,200
[ "binary search", "bitmasks", "constructive algorithms", "implementation" ]
null
null
Chloe, the same as Vladik, is a competitive programmer. She didn't have any problems to get to the olympiad like Vladik, but she was confused by the task proposed on the olympiad. Let's consider the following algorithm of generating a sequence of integers. Initially we have a sequence consisting of a single element equal to 1. Then we perform (*n*<=-<=1) steps. On each step we take the sequence we've got on the previous step, append it to the end of itself and insert in the middle the minimum positive integer we haven't used before. For example, we get the sequence [1,<=2,<=1] after the first step, the sequence [1,<=2,<=1,<=3,<=1,<=2,<=1] after the second step. The task is to find the value of the element with index *k* (the elements are numbered from 1) in the obtained sequence, i. e. after (*n*<=-<=1) steps. Please help Chloe to solve the problem!
The only line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=50, 1<=≤<=*k*<=≤<=2*n*<=-<=1).
Print single integer — the integer at the *k*-th position in the obtained sequence.
[ "3 2\n", "4 8\n" ]
[ "2", "4" ]
In the first sample the obtained sequence is [1, 2, 1, 3, 1, 2, 1]. The number on the second position is 2. In the second sample the obtained sequence is [1, 2, 1, 3, 1, 2, 1, 4, 1, 2, 1, 3, 1, 2, 1]. The number on the eighth position is 4.
1,000
[ { "input": "3 2", "output": "2" }, { "input": "4 8", "output": "4" }, { "input": "5 27", "output": "1" }, { "input": "7 44", "output": "3" }, { "input": "15 18432", "output": "12" }, { "input": "20 259676", "output": "3" }, { "input": "30 671088640", "output": "28" }, { "input": "38 137438953472", "output": "38" }, { "input": "1 1", "output": "1" }, { "input": "3 3", "output": "1" }, { "input": "4 12", "output": "3" }, { "input": "8 224", "output": "6" }, { "input": "13 1368", "output": "4" }, { "input": "16 49152", "output": "15" }, { "input": "19 1024", "output": "11" }, { "input": "24 15204352", "output": "20" }, { "input": "27 6586544", "output": "5" }, { "input": "31 536870912", "output": "30" }, { "input": "38 94489280512", "output": "34" }, { "input": "42 215268308020", "output": "3" }, { "input": "42 3452074721280", "output": "21" }, { "input": "46 34394312982528", "output": "15" }, { "input": "48 133865540681728", "output": "39" }, { "input": "49 76541041985542", "output": "2" }, { "input": "49 104822971826176", "output": "34" }, { "input": "49 351843720888320", "output": "47" }, { "input": "50 743042492421629", "output": "1" }, { "input": "50 666266740436818", "output": "2" }, { "input": "50 704239287953456", "output": "5" }, { "input": "50 116938486513664", "output": "17" }, { "input": "50 806423059496960", "output": "37" }, { "input": "50 985162418487296", "output": "48" }, { "input": "50 844424930131968", "output": "49" }, { "input": "50 562949953421312", "output": "50" }, { "input": "50 1", "output": "1" }, { "input": "50 1125899906842623", "output": "1" }, { "input": "50 1125899906842620", "output": "3" }, { "input": "39 549755813887", "output": "1" }, { "input": "50 100000000000", "output": "12" } ]
1,673,544,697
2,147,483,647
Python 3
MEMORY_LIMIT_EXCEEDED
TESTS
6
514
268,390,400
n, k = list(map(int, input().split())) a = [1] new_min_num = 2 for i in range(n - 1): a.append(new_min_num) a += a a = a[:-1] new_min_num += 1 print(a[k - 1])
Title: Chloe and the sequence Time Limit: None seconds Memory Limit: None megabytes Problem Description: Chloe, the same as Vladik, is a competitive programmer. She didn't have any problems to get to the olympiad like Vladik, but she was confused by the task proposed on the olympiad. Let's consider the following algorithm of generating a sequence of integers. Initially we have a sequence consisting of a single element equal to 1. Then we perform (*n*<=-<=1) steps. On each step we take the sequence we've got on the previous step, append it to the end of itself and insert in the middle the minimum positive integer we haven't used before. For example, we get the sequence [1,<=2,<=1] after the first step, the sequence [1,<=2,<=1,<=3,<=1,<=2,<=1] after the second step. The task is to find the value of the element with index *k* (the elements are numbered from 1) in the obtained sequence, i. e. after (*n*<=-<=1) steps. Please help Chloe to solve the problem! Input Specification: The only line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=50, 1<=≤<=*k*<=≤<=2*n*<=-<=1). Output Specification: Print single integer — the integer at the *k*-th position in the obtained sequence. Demo Input: ['3 2\n', '4 8\n'] Demo Output: ['2', '4'] Note: In the first sample the obtained sequence is [1, 2, 1, 3, 1, 2, 1]. The number on the second position is 2. In the second sample the obtained sequence is [1, 2, 1, 3, 1, 2, 1, 4, 1, 2, 1, 3, 1, 2, 1]. The number on the eighth position is 4.
```python n, k = list(map(int, input().split())) a = [1] new_min_num = 2 for i in range(n - 1): a.append(new_min_num) a += a a = a[:-1] new_min_num += 1 print(a[k - 1]) ```
0
479
A
Expression
PROGRAMMING
1,000
[ "brute force", "math" ]
null
null
Petya studies in a school and he adores Maths. His class has been studying arithmetic expressions. On the last class the teacher wrote three positive integers *a*, *b*, *c* on the blackboard. The task was to insert signs of operations '+' and '*', and probably brackets between the numbers so that the value of the resulting expression is as large as possible. Let's consider an example: assume that the teacher wrote numbers 1, 2 and 3 on the blackboard. Here are some ways of placing signs and brackets: - 1+2*3=7 - 1*(2+3)=5 - 1*2*3=6 - (1+2)*3=9 Note that you can insert operation signs only between *a* and *b*, and between *b* and *c*, that is, you cannot swap integers. For instance, in the given sample you cannot get expression (1+3)*2. It's easy to see that the maximum value that you can obtain is 9. Your task is: given *a*, *b* and *c* print the maximum value that you can get.
The input contains three integers *a*, *b* and *c*, each on a single line (1<=≤<=*a*,<=*b*,<=*c*<=≤<=10).
Print the maximum value of the expression that you can obtain.
[ "1\n2\n3\n", "2\n10\n3\n" ]
[ "9\n", "60\n" ]
none
500
[ { "input": "1\n2\n3", "output": "9" }, { "input": "2\n10\n3", "output": "60" }, { "input": "1\n1\n1", "output": "3" }, { "input": "1\n2\n1", "output": "4" }, { "input": "10\n10\n10", "output": "1000" }, { "input": "5\n1\n3", "output": "20" }, { "input": "3\n1\n5", "output": "20" }, { "input": "6\n7\n1", "output": "48" }, { "input": "1\n8\n3", "output": "27" }, { "input": "9\n7\n2", "output": "126" }, { "input": "1\n1\n10", "output": "20" }, { "input": "9\n1\n1", "output": "18" }, { "input": "10\n5\n6", "output": "300" }, { "input": "8\n9\n7", "output": "504" }, { "input": "4\n2\n10", "output": "80" }, { "input": "2\n8\n3", "output": "48" }, { "input": "3\n5\n7", "output": "105" }, { "input": "1\n10\n1", "output": "12" }, { "input": "2\n2\n2", "output": "8" }, { "input": "5\n6\n1", "output": "35" }, { "input": "10\n1\n1", "output": "20" }, { "input": "1\n6\n1", "output": "8" }, { "input": "1\n9\n1", "output": "11" }, { "input": "2\n1\n2", "output": "6" }, { "input": "2\n6\n1", "output": "14" }, { "input": "9\n2\n1", "output": "27" }, { "input": "1\n9\n2", "output": "20" }, { "input": "1\n3\n1", "output": "5" }, { "input": "2\n1\n1", "output": "4" } ]
1,690,002,989
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
2
62
0
a, b, c = int(input()), int(input()), int(input()) val = [a, b, c] _max = max(val) val.remove(_max) product = lambda x: x[0] * x[1] p = product(val) s = sum(val) print(_max * (s if s > p else p))
Title: Expression Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya studies in a school and he adores Maths. His class has been studying arithmetic expressions. On the last class the teacher wrote three positive integers *a*, *b*, *c* on the blackboard. The task was to insert signs of operations '+' and '*', and probably brackets between the numbers so that the value of the resulting expression is as large as possible. Let's consider an example: assume that the teacher wrote numbers 1, 2 and 3 on the blackboard. Here are some ways of placing signs and brackets: - 1+2*3=7 - 1*(2+3)=5 - 1*2*3=6 - (1+2)*3=9 Note that you can insert operation signs only between *a* and *b*, and between *b* and *c*, that is, you cannot swap integers. For instance, in the given sample you cannot get expression (1+3)*2. It's easy to see that the maximum value that you can obtain is 9. Your task is: given *a*, *b* and *c* print the maximum value that you can get. Input Specification: The input contains three integers *a*, *b* and *c*, each on a single line (1<=≤<=*a*,<=*b*,<=*c*<=≤<=10). Output Specification: Print the maximum value of the expression that you can obtain. Demo Input: ['1\n2\n3\n', '2\n10\n3\n'] Demo Output: ['9\n', '60\n'] Note: none
```python a, b, c = int(input()), int(input()), int(input()) val = [a, b, c] _max = max(val) val.remove(_max) product = lambda x: x[0] * x[1] p = product(val) s = sum(val) print(_max * (s if s > p else p)) ```
0
58
A
Chat room
PROGRAMMING
1,000
[ "greedy", "strings" ]
A. Chat room
1
256
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
If Vasya managed to say hello, print "YES", otherwise print "NO".
[ "ahhellllloou\n", "hlelo\n" ]
[ "YES\n", "NO\n" ]
none
500
[ { "input": "ahhellllloou", "output": "YES" }, { "input": "hlelo", "output": "NO" }, { "input": "helhcludoo", "output": "YES" }, { "input": "hehwelloho", "output": "YES" }, { "input": "pnnepelqomhhheollvlo", "output": "YES" }, { "input": "tymbzjyqhymedasloqbq", "output": "NO" }, { "input": "yehluhlkwo", "output": "NO" }, { "input": "hatlevhhalrohairnolsvocafgueelrqmlqlleello", "output": "YES" }, { "input": "hhhtehdbllnhwmbyhvelqqyoulretpbfokflhlhreeflxeftelziclrwllrpflflbdtotvlqgoaoqldlroovbfsq", "output": "YES" }, { "input": "rzlvihhghnelqtwlexmvdjjrliqllolhyewgozkuovaiezgcilelqapuoeglnwmnlftxxiigzczlouooi", "output": "YES" }, { "input": "pfhhwctyqdlkrwhebfqfelhyebwllhemtrmeblgrynmvyhioesqklclocxmlffuormljszllpoo", "output": "YES" }, { "input": "lqllcolohwflhfhlnaow", "output": "NO" }, { "input": "heheeellollvoo", "output": "YES" }, { "input": "hellooo", "output": "YES" }, { "input": "o", "output": "NO" }, { "input": "hhqhzeclohlehljlhtesllylrolmomvuhcxsobtsckogdv", "output": "YES" }, { "input": "yoegfuzhqsihygnhpnukluutocvvwuldiighpogsifealtgkfzqbwtmgghmythcxflebrkctlldlkzlagovwlstsghbouk", "output": "YES" }, { "input": "uatqtgbvrnywfacwursctpagasnhydvmlinrcnqrry", "output": "NO" }, { "input": "tndtbldbllnrwmbyhvqaqqyoudrstpbfokfoclnraefuxtftmgzicorwisrpfnfpbdtatvwqgyalqtdtrjqvbfsq", "output": "NO" }, { "input": "rzlvirhgemelnzdawzpaoqtxmqucnahvqnwldklrmjiiyageraijfivigvozgwngiulttxxgzczptusoi", "output": "YES" }, { "input": "kgyelmchocojsnaqdsyeqgnllytbqietpdlgknwwumqkxrexgdcnwoldicwzwofpmuesjuxzrasscvyuqwspm", "output": "YES" }, { "input": "pnyvrcotjvgynbeldnxieghfltmexttuxzyac", "output": "NO" }, { "input": "dtwhbqoumejligbenxvzhjlhosqojetcqsynlzyhfaevbdpekgbtjrbhlltbceobcok", "output": "YES" }, { "input": "crrfpfftjwhhikwzeedrlwzblckkteseofjuxjrktcjfsylmlsvogvrcxbxtffujqshslemnixoeezivksouefeqlhhokwbqjz", "output": "YES" }, { "input": "jhfbndhyzdvhbvhmhmefqllujdflwdpjbehedlsqfdsqlyelwjtyloxwsvasrbqosblzbowlqjmyeilcvotdlaouxhdpoeloaovb", "output": "YES" }, { "input": "hwlghueoemiqtjhhpashjsouyegdlvoyzeunlroypoprnhlyiwiuxrghekaylndhrhllllwhbebezoglydcvykllotrlaqtvmlla", "output": "YES" }, { "input": "wshiaunnqnqxodholbipwhhjmyeblhgpeleblklpzwhdunmpqkbuzloetmwwxmeltkrcomulxauzlwmlklldjodozxryghsnwgcz", "output": "YES" }, { "input": "shvksednttggehroewuiptvvxtrzgidravtnjwuqrlnnkxbplctzkckinpkgjopjfoxdbojtcvsuvablcbkrzajrlhgobkcxeqti", "output": "YES" }, { "input": "hyyhddqhxhekehkwfhlnlsihzefwchzerevcjtokefplholrbvxlltdlafjxrfhleglrvlolojoqaolagtbeyogxlbgfolllslli", "output": "YES" }, { "input": "iaagrdhhelxpdegueiulflquvlzidoprzkehthkldaytrjwhyhprwjxlltinxvuilxohqgjqcvkkdcuoliekcnlilwgqlnlzouoo", "output": "YES" }, { "input": "wfluaeseldgxyvxpwuhkptdmlflnlhktwxiabsvkolsquymrmhzczzoybvlilhmvsuunggvgxzgyyffk", "output": "NO" }, { "input": "loee", "output": "NO" }, { "input": "izdipwylefqmjbuoznfglgcfvedeouflkeehxbasaqmiooppfsqlhprospqgxvzrcpwlfdddngoqvpwvggsnvvxhmjoslwjudjlo", "output": "NO" }, { "input": "pplynflbjlseflaegzqpdxswgunhnlglqhycrbcwdfhclmcrwekkzsoosmfblljeenwfjyifcvxihhhbyhmhlkvtskeglaovjnsi", "output": "YES" }, { "input": "xqjqmenkodmlhzyzmmvofdngktygbbxbzpluzcohohmalkoeuwfikblltaaigv", "output": "NO" }, { "input": "hello", "output": "YES" }, { "input": "oohell", "output": "NO" }, { "input": "hell", "output": "NO" }, { "input": "eloellohoelo", "output": "NO" }, { "input": "helllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllo", "output": "YES" } ]
1,610,029,713
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
78
0
s=input() if 'h' in s and 'e' in s and 'll' in s and 'o' in s: print('YES') else: print('NO')
Title: Chat room Time Limit: 1 seconds Memory Limit: 256 megabytes Problem Description: Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*. Input Specification: The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters. Output Specification: If Vasya managed to say hello, print "YES", otherwise print "NO". Demo Input: ['ahhellllloou\n', 'hlelo\n'] Demo Output: ['YES\n', 'NO\n'] Note: none
```python s=input() if 'h' in s and 'e' in s and 'll' in s and 'o' in s: print('YES') else: print('NO') ```
0
386
B
Fly, freebies, fly!
PROGRAMMING
1,400
[ "binary search", "brute force", "implementation" ]
null
null
Everyone loves a freebie. Especially students. It is well-known that if in the night before exam a student opens window, opens the student's record-book and shouts loudly three times "Fly, freebie, fly!" — then flown freebie helps him to pass the upcoming exam. In the night before the exam on mathematical analysis *n* students living in dormitory shouted treasured words. The *i*-th student made a sacrament at the time *t**i*, where *t**i* is the number of seconds elapsed since the beginning of the night. It is known that the freebie is a capricious and willful lady. That night the freebie was near dormitory only for *T* seconds. Therefore, if for two students their sacrament times differ for more than *T*, then the freebie didn't visit at least one of them. Since all students are optimists, they really want to know what is the maximal number of students visited by the freebie can be.
The first line of the input contains integer *n* (1<=≤<=*n*<=≤<=100), where *n* — the number of students shouted "Fly, freebie, fly!" The second line contains *n* positive integers *t**i* (1<=≤<=*t**i*<=≤<=1000). The last line contains integer *T* (1<=≤<=*T*<=≤<=1000) — the time interval during which the freebie was near the dormitory.
Print a single integer — the largest number of people who will pass exam tomorrow because of the freebie visit.
[ "6\n4 1 7 8 3 8\n1\n" ]
[ "3\n" ]
none
1,000
[ { "input": "6\n4 1 7 8 3 8\n1", "output": "3" }, { "input": "4\n4 2 1 5\n2", "output": "2" }, { "input": "10\n4 7 1 3 8 5 2 1 8 4\n3", "output": "6" }, { "input": "8\n39 49 37 28 40 17 50 2\n10", "output": "3" }, { "input": "2\n1 1\n1", "output": "2" }, { "input": "2\n1 1\n2", "output": "2" }, { "input": "2\n1 1\n1000", "output": "2" }, { "input": "2\n1 2\n2", "output": "2" }, { "input": "2\n450 826\n1000", "output": "2" }, { "input": "3\n3 1 1\n1", "output": "2" }, { "input": "3\n3 1 2\n2", "output": "3" }, { "input": "3\n3 4 3\n1", "output": "3" }, { "input": "3\n3 4 3\n1", "output": "3" }, { "input": "100\n63 69 36 40 74 31 86 42 81 95 60 55 98 98 2 16 84 37 61 47 81 91 85 62 85 32 79 74 65 48 39 60 97 90 59 76 98 73 58 5 16 54 59 42 9 27 95 24 9 6 42 49 64 61 22 27 43 60 39 87 99 57 5 62 48 67 81 36 27 87 41 88 5 33 43 81 82 65 46 52 43 68 85 75 81 99 30 56 67 55 92 4 3 3 66 32 30 45 22 88\n5", "output": "11" }, { "input": "100\n97 29 39 42 68 100 44 54 6 70 17 100 52 85 67 1 43 49 1 47 98 35 5 38 37 73 84 20 13 15 78 65 29 92 20 40 38 11 12 100 24 94 29 92 83 47 25 63 23 85 85 93 61 60 35 40 96 50 19 15 28 19 98 59 42 14 54 65 2 53 38 9 15 69 43 63 63 8 55 12 81 57 69 21 57 11 99 45 23 31 59 2 16 61 43 36 12 39 42 13\n50", "output": "62" }, { "input": "100\n31 1 56 82 96 98 25 41 74 73 8 66 95 50 89 77 98 12 69 45 6 10 48 59 1 77 15 77 9 52 66 8 6 71 39 3 58 73 66 45 8 22 67 83 58 6 96 79 46 43 44 90 13 67 56 32 83 96 93 22 49 10 100 79 99 41 13 71 42 96 89 10 84 95 89 7 18 49 16 54 61 35 25 71 26 68 22 40 68 19 30 51 18 20 12 61 11 23 86 72\n1", "output": "6" }, { "input": "100\n30 74 20 6 3 63 48 45 36 26 33 24 60 71 45 5 19 37 74 100 98 82 67 76 37 46 68 48 56 29 33 19 15 84 76 92 50 53 42 19 5 91 23 38 93 50 39 45 89 17 57 14 86 81 31 6 16 5 80 6 86 49 18 75 30 30 85 94 38 33 50 76 72 32 73 96 28 3 18 20 96 84 89 48 71 64 6 59 87 31 94 24 9 64 15 86 66 11 32 40\n90", "output": "94" }, { "input": "100\n398 82 739 637 913 962 680 125 963 931 311 680 20 530 795 126 881 666 226 323 594 416 176 6 820 317 866 723 831 432 139 706 608 218 963 550 592 544 874 927 763 468 121 424 91 956 42 442 883 66 299 654 964 730 160 615 515 255 709 278 224 223 304 292 41 450 445 556 477 327 647 518 90 470 894 837 655 495 612 113 746 610 751 486 116 933 314 348 736 58 219 429 976 773 678 642 696 522 161 422\n1", "output": "3" }, { "input": "100\n760 621 622 793 66 684 411 813 474 404 304 934 319 411 99 965 722 156 681 400 481 462 571 726 696 244 124 350 403 566 564 641 381 494 703 3 348 213 343 390 27 660 46 591 990 931 477 823 890 21 936 267 282 753 599 269 387 443 622 673 473 745 646 224 911 7 155 880 332 932 51 994 144 666 789 691 323 738 192 372 191 246 903 666 929 252 132 614 11 938 298 286 309 596 210 18 143 760 759 584\n10", "output": "6" }, { "input": "100\n923 357 749 109 685 126 961 437 859 91 985 488 644 777 950 144 479 667 1 535 475 38 843 606 672 333 798 42 595 854 410 914 934 586 329 595 861 321 603 924 434 636 475 395 619 449 336 790 279 931 605 898 276 47 537 935 508 576 168 465 115 884 960 593 883 581 468 426 848 289 525 309 589 106 924 238 829 975 897 373 650 41 952 621 817 46 366 488 924 561 960 449 311 32 517 737 20 765 799 3\n100", "output": "18" }, { "input": "100\n98 63 672 100 254 218 623 415 426 986 920 915 736 795 407 541 382 213 935 743 961 59 660 512 134 935 248 378 739 356 543 714 28 667 602 596 759 791 103 564 225 520 159 542 966 332 983 655 517 273 95 242 593 940 286 236 41 318 941 727 384 225 319 627 982 359 232 769 854 172 643 598 215 231 305 30 347 469 929 919 90 294 739 641 368 270 932 452 234 741 309 234 357 392 707 873 808 398 417 483\n1000", "output": "100" }, { "input": "100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1", "output": "100" }, { "input": "100\n2 1 1 1 2 2 2 2 2 2 1 1 1 1 2 2 1 1 1 2 2 1 1 1 1 2 1 2 1 2 1 2 1 2 2 2 1 1 2 1 2 2 1 1 2 2 2 2 2 1 1 2 1 1 1 2 1 2 1 2 1 2 1 1 2 1 2 1 2 1 2 1 2 1 1 2 2 1 2 2 1 1 1 2 2 2 1 1 2 2 1 2 2 2 1 2 2 1 2 2\n1", "output": "100" }, { "input": "100\n3 3 1 2 3 3 1 3 3 2 2 2 2 1 2 3 2 1 2 2 2 2 3 2 1 3 3 3 2 1 3 1 2 1 1 2 2 3 2 2 3 1 1 3 1 2 1 3 3 1 1 3 1 3 2 3 3 2 2 2 2 1 1 1 2 1 1 2 1 1 1 1 1 3 2 2 1 3 1 1 3 1 2 2 1 3 1 1 1 1 2 2 2 3 2 2 3 1 1 3\n1", "output": "72" }, { "input": "100\n2 1 3 4 1 1 4 1 3 2 1 4 4 4 4 4 3 2 1 1 2 2 1 3 3 1 1 1 2 3 4 3 1 1 1 4 2 2 2 2 4 1 2 4 2 2 4 3 3 4 1 2 4 1 3 4 1 2 1 2 1 3 3 2 1 1 4 2 1 3 3 2 3 4 1 2 2 4 2 1 4 3 4 3 1 4 3 1 2 3 3 3 2 4 1 1 4 1 2 3\n1", "output": "55" }, { "input": "100\n5 1 3 1 2 3 2 5 5 2 5 1 1 4 1 1 3 5 3 3 3 3 4 4 3 5 4 1 1 3 1 4 2 5 2 5 4 2 3 5 1 3 5 5 5 2 2 5 1 4 1 5 1 5 1 3 3 2 2 4 3 2 1 4 2 5 4 1 2 1 4 3 3 5 4 3 5 5 1 2 4 1 4 2 1 1 2 5 3 3 4 1 3 3 3 5 4 1 1 1\n1", "output": "41" }, { "input": "100\n1 7 8 10 9 4 2 1 6 5 10 6 3 1 10 1 8 4 3 1 7 4 3 7 4 9 1 3 3 5 10 3 7 10 10 10 3 6 2 8 1 3 3 6 2 8 3 7 8 3 4 1 6 4 4 2 10 6 2 10 10 1 7 8 8 1 9 8 7 8 5 2 5 9 2 5 7 10 3 9 8 3 9 4 3 8 6 8 2 8 9 6 7 10 7 9 6 4 4 8\n1", "output": "24" }, { "input": "1\n1\n1", "output": "1" }, { "input": "1\n1\n1000", "output": "1" }, { "input": "1\n849\n1", "output": "1" } ]
1,605,966,160
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
2
124
0
n = int(input()) m = [int(s) for s in input().split()] t = int(input()) m.sort() left = 0 right = n max = 1 while right - left > 1: middle = (right + left) // 2 sum = 0 for i in range(n - middle): if m[i + middle] - m[i] <= t: sum += 1 if max < sum: left = middle else: right = middle max = sum print(right)
Title: Fly, freebies, fly! Time Limit: None seconds Memory Limit: None megabytes Problem Description: Everyone loves a freebie. Especially students. It is well-known that if in the night before exam a student opens window, opens the student's record-book and shouts loudly three times "Fly, freebie, fly!" — then flown freebie helps him to pass the upcoming exam. In the night before the exam on mathematical analysis *n* students living in dormitory shouted treasured words. The *i*-th student made a sacrament at the time *t**i*, where *t**i* is the number of seconds elapsed since the beginning of the night. It is known that the freebie is a capricious and willful lady. That night the freebie was near dormitory only for *T* seconds. Therefore, if for two students their sacrament times differ for more than *T*, then the freebie didn't visit at least one of them. Since all students are optimists, they really want to know what is the maximal number of students visited by the freebie can be. Input Specification: The first line of the input contains integer *n* (1<=≤<=*n*<=≤<=100), where *n* — the number of students shouted "Fly, freebie, fly!" The second line contains *n* positive integers *t**i* (1<=≤<=*t**i*<=≤<=1000). The last line contains integer *T* (1<=≤<=*T*<=≤<=1000) — the time interval during which the freebie was near the dormitory. Output Specification: Print a single integer — the largest number of people who will pass exam tomorrow because of the freebie visit. Demo Input: ['6\n4 1 7 8 3 8\n1\n'] Demo Output: ['3\n'] Note: none
```python n = int(input()) m = [int(s) for s in input().split()] t = int(input()) m.sort() left = 0 right = n max = 1 while right - left > 1: middle = (right + left) // 2 sum = 0 for i in range(n - middle): if m[i + middle] - m[i] <= t: sum += 1 if max < sum: left = middle else: right = middle max = sum print(right) ```
0
38
C
Blinds
PROGRAMMING
1,400
[ "brute force" ]
C. Blinds
2
256
The blinds are known to consist of opaque horizontal stripes that can be rotated thus regulating the amount of light flowing in the room. There are *n* blind stripes with the width of 1 in the factory warehouse for blind production. The problem is that all of them are spare details from different orders, that is, they may not have the same length (it is even possible for them to have different lengths) Every stripe can be cut into two or more parts. The cuttings are made perpendicularly to the side along which the length is measured. Thus the cuttings do not change the width of a stripe but each of the resulting pieces has a lesser length (the sum of which is equal to the length of the initial stripe) After all the cuttings the blinds are constructed through consecutive joining of several parts, similar in length, along sides, along which length is measured. Also, apart from the resulting pieces an initial stripe can be used as a blind if it hasn't been cut. It is forbidden to construct blinds in any other way. Thus, if the blinds consist of *k* pieces each *d* in length, then they are of form of a rectangle of *k*<=×<=*d* bourlemeters. Your task is to find for what window possessing the largest possible area the blinds can be made from the given stripes if on technical grounds it is forbidden to use pieces shorter than *l* bourlemeter. The window is of form of a rectangle with side lengths as positive integers.
The first output line contains two space-separated integers *n* and *l* (1<=≤<=*n*,<=*l*<=≤<=100). They are the number of stripes in the warehouse and the minimal acceptable length of a blind stripe in bourlemeters. The second line contains space-separated *n* integers *a**i*. They are the lengths of initial stripes in bourlemeters (1<=≤<=*a**i*<=≤<=100).
Print the single number — the maximal area of the window in square bourlemeters that can be completely covered. If no window with a positive area that can be covered completely without breaking any of the given rules exist, then print the single number 0.
[ "4 2\n1 2 3 4\n", "5 3\n5 5 7 3 1\n", "2 3\n1 2\n" ]
[ "8\n", "15\n", "0\n" ]
In the first sample test the required window is 2 × 4 in size and the blinds for it consist of 4 parts, each 2 bourlemeters long. One of the parts is the initial stripe with the length of 2, the other one is a part of a cut stripe with the length of 3 and the two remaining stripes are parts of a stripe with the length of 4 cut in halves.
0
[ { "input": "4 2\n1 2 3 4", "output": "8" }, { "input": "5 3\n5 5 7 3 1", "output": "15" }, { "input": "2 3\n1 2", "output": "0" }, { "input": "2 2\n3 3", "output": "6" }, { "input": "5 2\n2 4 1 1 3", "output": "8" }, { "input": "7 4\n3 2 1 1 1 3 2", "output": "0" }, { "input": "10 1\n1 2 2 6 6 1 2 5 5 6", "output": "36" }, { "input": "10 2\n6 3 1 1 6 4 6 1 6 3", "output": "33" }, { "input": "15 6\n1 6 6 5 2 10 4 4 7 8 7 3 5 1 2", "output": "36" }, { "input": "20 2\n13 3 6 11 6 11 9 1 1 2 5 2 9 15 14 10 3 12 3 13", "output": "136" }, { "input": "25 20\n10 8 4 6 12 14 19 18 19 9 21 16 16 15 10 15 12 12 18 18 9 22 12 14 14", "output": "42" }, { "input": "30 15\n93 99 77 69 43 86 56 15 9 9 75 84 56 1 42 45 10 23 83 87 86 99 46 48 40 69 95 10 61 47", "output": "1455" }, { "input": "35 3\n13 12 38 45 71 61 42 75 58 40 50 70 27 38 16 37 21 12 36 7 39 4 65 12 32 26 1 21 66 63 29 56 32 29 26", "output": "1236" }, { "input": "40 33\n33 52 83 32 59 90 25 90 38 31 60 30 76 77 9 13 48 1 55 39 84 28 58 83 12 3 77 34 33 73 15 35 29 8 3 21 63 4 21 75", "output": "1089" }, { "input": "45 1\n1 1 2 3 1 2 3 1 1 1 1 2 2 2 2 3 1 1 2 2 3 3 2 3 3 1 3 3 3 1 2 3 2 1 2 1 1 2 1 2 1 1 2 2 2", "output": "84" }, { "input": "50 70\n60 21 1 35 20 10 35 59 27 12 57 67 76 49 27 72 39 47 56 36 36 13 62 16 6 16 39 46 35 9 67 59 61 52 1 44 70 40 60 3 5 2 14 29 56 32 4 28 35 73", "output": "280" }, { "input": "55 12\n15 5 11 16 17 3 5 28 19 15 1 9 5 26 25 3 14 14 33 12 3 21 16 30 22 18 7 16 24 28 2 17 24 25 16 16 31 9 11 9 6 13 25 23 32 18 4 21 10 32 11 5 4 32 14", "output": "588" }, { "input": "60 10\n42 89 35 19 51 41 31 77 10 8 73 27 47 26 66 91 43 33 74 62 77 23 5 44 18 23 74 6 51 21 30 17 31 39 74 4 55 39 3 34 21 3 18 41 61 37 31 91 69 55 75 67 77 30 11 16 35 68 62 19", "output": "2240" }, { "input": "65 7\n1 5 4 1 4 11 9 1 11 7 6 11 9 4 2 6 10 11 10 12 4 6 1 12 12 5 1 11 7 9 11 6 10 10 7 8 4 1 3 5 2 3 2 10 11 10 5 8 7 10 12 5 11 6 8 6 2 9 9 7 2 4 12 7 7", "output": "245" }, { "input": "70 12\n6 8 11 13 11 30 4 26 16 24 8 12 14 25 7 26 1 24 1 9 7 19 25 11 18 23 27 26 27 19 8 10 9 20 23 2 14 27 24 24 14 21 31 5 1 14 24 20 2 1 11 17 12 7 17 20 8 21 16 17 31 25 9 25 5 18 6 19 22 27", "output": "756" }, { "input": "75 19\n3 35 38 25 5 17 12 37 26 34 20 3 30 33 16 26 16 31 17 5 13 40 4 40 16 4 24 31 39 13 12 3 25 40 21 2 27 26 21 2 18 24 24 25 18 3 15 20 5 6 23 10 16 37 20 13 39 4 6 28 9 25 14 7 6 15 34 9 4 16 36 19 17 30 33", "output": "817" }, { "input": "80 1\n7 13 38 24 17 20 11 3 25 23 36 16 41 36 18 9 33 10 37 20 8 7 42 8 17 1 39 30 39 24 36 17 8 11 3 33 23 42 36 16 36 3 30 20 29 35 43 17 32 26 33 4 41 34 9 37 14 26 6 40 16 24 8 26 16 31 11 12 18 24 42 34 24 37 5 23 32 13 8 14", "output": "1810" }, { "input": "85 2\n26 5 48 55 22 22 43 29 55 29 6 53 48 35 58 22 44 7 14 26 48 17 66 44 2 10 50 4 19 35 29 61 55 57 25 5 54 64 18 17 43 16 14 63 46 22 55 23 8 52 65 30 10 13 24 18 7 44 65 7 42 63 29 54 32 23 55 17 3 11 67 14 45 31 33 22 36 28 27 54 46 45 15 40 55", "output": "2796" }, { "input": "90 3\n44 16 62 40 33 17 53 32 66 18 68 33 18 76 14 66 41 8 18 57 39 63 9 41 30 39 30 35 46 12 27 33 6 4 21 26 32 24 18 25 35 39 14 49 65 32 54 38 55 64 75 2 53 21 72 11 46 47 63 60 33 62 13 35 40 21 26 15 66 74 55 48 24 26 76 69 65 68 62 12 74 58 21 13 53 5 40 56 66 67", "output": "3492" }, { "input": "91 6\n4 2 4 2 6 2 4 1 2 6 5 3 3 3 3 2 5 4 2 5 3 2 1 3 5 2 4 5 1 3 3 3 6 6 5 3 4 1 5 6 2 5 2 2 5 4 1 5 4 1 2 6 1 2 3 4 3 3 3 3 2 1 4 5 1 6 5 1 6 5 3 5 6 3 3 5 4 4 5 4 5 2 5 2 3 1 5 6 6 4 2", "output": "66" }, { "input": "92 8\n3 4 6 9 7 9 12 12 7 4 9 1 3 9 2 12 4 5 12 2 6 5 9 9 5 2 7 5 12 2 1 7 7 11 11 1 4 10 11 7 5 6 3 5 12 2 9 1 11 1 9 11 1 9 7 9 7 8 1 5 8 8 1 8 6 6 4 5 6 10 7 9 7 1 6 2 12 11 7 6 12 11 5 11 6 10 1 9 3 9 11 9", "output": "306" }, { "input": "93 10\n6 47 6 89 21 91 51 72 32 48 54 89 36 12 25 38 58 62 54 16 5 52 52 85 67 33 81 72 6 42 91 16 29 78 56 62 75 48 69 12 89 34 27 15 7 80 14 57 29 6 80 46 64 94 83 96 1 42 11 41 15 26 17 36 44 11 68 73 93 45 73 35 91 14 84 48 7 8 63 84 59 68 87 26 91 10 54 41 74 71 74 62 24", "output": "4110" }, { "input": "94 12\n40 66 66 35 43 23 77 6 55 44 68 90 20 59 11 95 78 13 75 98 30 22 40 29 2 23 82 26 53 48 16 100 97 100 74 96 73 30 35 72 23 38 25 86 7 45 53 20 18 77 68 95 41 45 1 94 42 94 54 9 33 84 53 71 6 68 98 94 35 78 58 34 84 78 28 65 58 11 2 78 96 5 8 36 34 26 76 10 69 49 25 9 77 30", "output": "4173" }, { "input": "95 17\n1 24 17 9 41 5 39 30 6 32 17 30 27 11 13 25 22 23 12 31 19 31 35 43 8 23 39 23 39 41 10 17 25 17 38 39 37 23 37 11 6 15 43 4 15 44 44 42 29 2 14 6 1 6 31 45 26 21 14 18 15 17 23 11 39 12 16 6 11 19 15 31 18 10 33 10 2 8 21 4 26 3 42 45 16 1 11 28 43 24 18 45 25 39 9", "output": "1360" }, { "input": "96 9\n4 5 1 10 2 6 1 9 2 6 3 2 9 4 1 1 3 10 10 4 6 8 6 4 4 6 4 6 2 9 1 9 3 6 9 10 4 3 7 2 7 4 4 4 6 4 1 7 9 4 9 2 1 7 7 3 4 10 10 5 1 3 10 5 1 9 8 4 10 4 7 2 9 6 9 4 2 3 6 9 8 1 1 2 9 4 10 4 9 7 7 5 1 10 9 10", "output": "225" }, { "input": "97 28\n13 12 30 2 17 29 28 28 26 10 27 27 20 14 8 28 10 5 33 19 17 31 15 4 8 13 21 23 32 3 20 9 33 17 11 13 11 9 19 30 19 25 1 18 1 13 1 20 19 9 17 31 32 26 1 34 7 34 6 22 7 13 29 6 29 3 13 28 3 6 7 29 17 34 28 32 14 33 23 25 23 11 19 19 27 27 3 20 17 13 24 2 8 25 10 31 34", "output": "672" }, { "input": "98 14\n23 3 39 39 6 35 2 35 38 9 11 24 42 35 35 46 23 46 20 36 25 46 23 9 21 24 21 38 43 9 9 38 38 46 3 28 17 31 30 14 29 12 37 15 5 45 46 32 35 39 39 27 25 15 42 40 19 19 11 6 32 16 25 29 46 2 45 44 5 36 21 11 14 18 39 1 39 26 18 14 1 23 38 24 10 38 14 42 15 3 8 8 23 46 40 19 14 29", "output": "1876" }, { "input": "99 57\n69 27 70 70 16 66 64 35 44 1 51 38 69 17 19 35 83 7 47 4 10 22 60 64 64 56 80 54 83 34 51 42 46 51 41 75 54 10 13 44 66 46 27 79 55 13 13 40 18 12 2 33 20 13 75 45 70 75 51 39 80 25 22 27 77 52 41 83 40 33 23 76 81 21 23 59 27 74 45 68 42 20 83 50 66 58 5 8 55 62 76 81 27 52 55 67 28 65 71", "output": "2030" }, { "input": "100 2\n2 2 1 1 1 1 1 1 1 2 2 1 1 2 2 1 1 2 1 1 1 1 1 1 2 2 2 1 1 2 1 2 1 2 2 1 1 1 1 2 1 1 1 2 2 1 1 2 1 1 2 2 2 2 2 1 2 1 2 1 1 2 1 2 2 2 2 1 2 1 2 1 2 1 2 2 2 1 1 2 2 1 2 1 1 1 1 2 1 2 2 2 1 2 1 1 1 2 2 1", "output": "92" }, { "input": "100 2\n79 84 2 24 18 95 57 79 67 60 78 85 75 23 68 68 76 30 39 31 32 81 42 90 50 33 49 9 63 18 74 46 34 55 48 41 7 75 74 90 14 90 2 49 20 29 33 65 43 7 11 12 58 45 17 100 1 28 3 12 26 94 45 5 45 19 3 28 95 11 71 68 89 47 59 5 74 92 43 100 15 63 78 85 70 38 62 100 78 76 29 69 64 2 32 68 48 61 82 100", "output": "4978" }, { "input": "100 17\n20 61 7 74 87 84 87 35 64 7 36 5 72 20 62 29 29 58 67 51 50 45 82 20 76 79 39 21 5 39 94 13 65 11 3 21 26 2 15 56 20 75 49 27 64 48 51 96 32 80 57 10 57 48 36 83 51 25 45 65 24 22 3 92 45 52 52 58 15 90 23 43 56 88 46 50 72 70 60 47 91 68 40 24 16 44 82 90 17 17 51 71 25 94 13 42 26 25 53 95", "output": "3961" } ]
1,660,666,219
2,147,483,647
Python 3
OK
TESTS
36
92
0
n,x=map(int,input().split()) l=sorted(list(map(int,input().split()))) ans=0 for i in range (x,101): s=0 for j in l: s+=j-j%i ans=max(s,ans) print(ans)
Title: Blinds Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: The blinds are known to consist of opaque horizontal stripes that can be rotated thus regulating the amount of light flowing in the room. There are *n* blind stripes with the width of 1 in the factory warehouse for blind production. The problem is that all of them are spare details from different orders, that is, they may not have the same length (it is even possible for them to have different lengths) Every stripe can be cut into two or more parts. The cuttings are made perpendicularly to the side along which the length is measured. Thus the cuttings do not change the width of a stripe but each of the resulting pieces has a lesser length (the sum of which is equal to the length of the initial stripe) After all the cuttings the blinds are constructed through consecutive joining of several parts, similar in length, along sides, along which length is measured. Also, apart from the resulting pieces an initial stripe can be used as a blind if it hasn't been cut. It is forbidden to construct blinds in any other way. Thus, if the blinds consist of *k* pieces each *d* in length, then they are of form of a rectangle of *k*<=×<=*d* bourlemeters. Your task is to find for what window possessing the largest possible area the blinds can be made from the given stripes if on technical grounds it is forbidden to use pieces shorter than *l* bourlemeter. The window is of form of a rectangle with side lengths as positive integers. Input Specification: The first output line contains two space-separated integers *n* and *l* (1<=≤<=*n*,<=*l*<=≤<=100). They are the number of stripes in the warehouse and the minimal acceptable length of a blind stripe in bourlemeters. The second line contains space-separated *n* integers *a**i*. They are the lengths of initial stripes in bourlemeters (1<=≤<=*a**i*<=≤<=100). Output Specification: Print the single number — the maximal area of the window in square bourlemeters that can be completely covered. If no window with a positive area that can be covered completely without breaking any of the given rules exist, then print the single number 0. Demo Input: ['4 2\n1 2 3 4\n', '5 3\n5 5 7 3 1\n', '2 3\n1 2\n'] Demo Output: ['8\n', '15\n', '0\n'] Note: In the first sample test the required window is 2 × 4 in size and the blinds for it consist of 4 parts, each 2 bourlemeters long. One of the parts is the initial stripe with the length of 2, the other one is a part of a cut stripe with the length of 3 and the two remaining stripes are parts of a stripe with the length of 4 cut in halves.
```python n,x=map(int,input().split()) l=sorted(list(map(int,input().split()))) ans=0 for i in range (x,101): s=0 for j in l: s+=j-j%i ans=max(s,ans) print(ans) ```
3.977
122
A
Lucky Division
PROGRAMMING
1,000
[ "brute force", "number theory" ]
null
null
Petya loves lucky numbers. Everybody knows that lucky numbers are positive integers whose decimal representation contains only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya calls a number almost lucky if it could be evenly divided by some lucky number. Help him find out if the given number *n* is almost lucky.
The single line contains an integer *n* (1<=≤<=*n*<=≤<=1000) — the number that needs to be checked.
In the only line print "YES" (without the quotes), if number *n* is almost lucky. Otherwise, print "NO" (without the quotes).
[ "47\n", "16\n", "78\n" ]
[ "YES\n", "YES\n", "NO\n" ]
Note that all lucky numbers are almost lucky as any number is evenly divisible by itself. In the first sample 47 is a lucky number. In the second sample 16 is divisible by 4.
500
[ { "input": "47", "output": "YES" }, { "input": "16", "output": "YES" }, { "input": "78", "output": "NO" }, { "input": "48", "output": "YES" }, { "input": "100", "output": "YES" }, { "input": "107", "output": "NO" }, { "input": "77", "output": "YES" }, { "input": "477", "output": "YES" }, { "input": "480", "output": "YES" }, { "input": "1", "output": "NO" }, { "input": "3", "output": "NO" }, { "input": "4", "output": "YES" }, { "input": "49", "output": "YES" }, { "input": "56", "output": "YES" }, { "input": "124", "output": "YES" }, { "input": "1000", "output": "YES" }, { "input": "999", "output": "NO" }, { "input": "298", "output": "NO" }, { "input": "274", "output": "NO" }, { "input": "998", "output": "NO" }, { "input": "42", "output": "YES" }, { "input": "788", "output": "YES" }, { "input": "70", "output": "YES" }, { "input": "444", "output": "YES" }, { "input": "777", "output": "YES" }, { "input": "799", "output": "YES" }, { "input": "25", "output": "NO" }, { "input": "882", "output": "YES" }, { "input": "88", "output": "YES" }, { "input": "11", "output": "NO" }, { "input": "2", "output": "NO" }, { "input": "7", "output": "YES" }, { "input": "8", "output": "YES" }, { "input": "94", "output": "YES" }, { "input": "477", "output": "YES" }, { "input": "141", "output": "YES" } ]
1,691,496,060
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
1
92
0
n = int(input()) c = 1 if n%4==0 or n%7==0: print("YES") c = 3 n = str(n) l = [i for i in n.rstrip()] if "4" in l or "7" in l: print("YES") else: print("NO")
Title: Lucky Division Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya loves lucky numbers. Everybody knows that lucky numbers are positive integers whose decimal representation contains only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya calls a number almost lucky if it could be evenly divided by some lucky number. Help him find out if the given number *n* is almost lucky. Input Specification: The single line contains an integer *n* (1<=≤<=*n*<=≤<=1000) — the number that needs to be checked. Output Specification: In the only line print "YES" (without the quotes), if number *n* is almost lucky. Otherwise, print "NO" (without the quotes). Demo Input: ['47\n', '16\n', '78\n'] Demo Output: ['YES\n', 'YES\n', 'NO\n'] Note: Note that all lucky numbers are almost lucky as any number is evenly divisible by itself. In the first sample 47 is a lucky number. In the second sample 16 is divisible by 4.
```python n = int(input()) c = 1 if n%4==0 or n%7==0: print("YES") c = 3 n = str(n) l = [i for i in n.rstrip()] if "4" in l or "7" in l: print("YES") else: print("NO") ```
0
600
B
Queries about less or equal elements
PROGRAMMING
1,300
[ "binary search", "data structures", "sortings", "two pointers" ]
null
null
You are given two arrays of integers *a* and *b*. For each element of the second array *b**j* you should find the number of elements in array *a* that are less than or equal to the value *b**j*.
The first line contains two integers *n*,<=*m* (1<=≤<=*n*,<=*m*<=≤<=2·105) — the sizes of arrays *a* and *b*. The second line contains *n* integers — the elements of array *a* (<=-<=109<=≤<=*a**i*<=≤<=109). The third line contains *m* integers — the elements of array *b* (<=-<=109<=≤<=*b**j*<=≤<=109).
Print *m* integers, separated by spaces: the *j*-th of which is equal to the number of such elements in array *a* that are less than or equal to the value *b**j*.
[ "5 4\n1 3 5 7 9\n6 4 2 8\n", "5 5\n1 2 1 2 5\n3 1 4 1 5\n" ]
[ "3 2 1 4\n", "4 2 4 2 5\n" ]
none
0
[ { "input": "5 4\n1 3 5 7 9\n6 4 2 8", "output": "3 2 1 4" }, { "input": "5 5\n1 2 1 2 5\n3 1 4 1 5", "output": "4 2 4 2 5" }, { "input": "1 1\n-1\n-2", "output": "0" }, { "input": "1 1\n-80890826\n686519510", "output": "1" }, { "input": "11 11\n237468511 -779187544 -174606592 193890085 404563196 -71722998 -617934776 170102710 -442808289 109833389 953091341\n994454001 322957429 216874735 -606986750 -455806318 -663190696 3793295 41395397 -929612742 -787653860 -684738874", "output": "11 9 8 2 2 1 5 5 0 0 1" }, { "input": "20 22\n858276994 -568758442 -918490847 -983345984 -172435358 389604931 200224783 486556113 413281867 -258259500 -627945379 -584563643 444685477 -602481243 -370745158 965672503 630955806 -626138773 -997221880 633102929\n-61330638 -977252080 -212144219 385501731 669589742 954357160 563935906 584468977 -895883477 405774444 853372186 186056475 -964575261 -952431965 632332084 -388829939 -23011650 310957048 -770695392 977376693 321435214 199223897", "output": "11 2 10 12 18 19 16 16 3 13 18 11 2 2 17 8 11 12 3 20 12 11" }, { "input": "5 9\n1 3 5 7 9\n1 2 3 4 5 6 7 8 9", "output": "1 1 2 2 3 3 4 4 5" }, { "input": "22 1\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22\n1", "output": "1" }, { "input": "5 1\n1 3 3 3 5\n3", "output": "4" }, { "input": "4 5\n1 1 1 4\n1 5 5 4 3", "output": "3 4 4 4 3" }, { "input": "5 4\n0 5 5 5 6\n5 1 6 3", "output": "4 1 5 1" }, { "input": "1 3\n0\n-1 0 1", "output": "0 1 1" }, { "input": "96 1\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1\n1", "output": "96" }, { "input": "7 1\n1 2 3 4 5 6 7\n1", "output": "1" }, { "input": "13 13\n-1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000\n-1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000 1000000000 -1000000000", "output": "7 13 7 13 7 13 7 13 7 13 7 13 7" }, { "input": "9 5\n1 2 3 4 5 6 7 8 9\n1 2 3 4 5", "output": "1 2 3 4 5" }, { "input": "3 8\n1 1 1\n1 1 1 1 1 1 1 1", "output": "3 3 3 3 3 3 3 3" }, { "input": "1 1\n-11111\n-5938", "output": "1" }, { "input": "1 1\n1\n400000009", "output": "1" }, { "input": "1 1\n1\n300000009", "output": "1" }, { "input": "1 1\n1\n200000009", "output": "1" }, { "input": "1 1\n1\n200000003", "output": "1" } ]
1,696,517,672
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
3
62
0
from sys import stdin n, _ = map(int, stdin.readline().strip().split()) arr = sorted(map(int, stdin.readline().strip().split())) q = list(map(int, stdin.readline().strip().split())) for i in q: a, b = 0, n-1 while a <= b: mid = (a+b)//2 if arr[mid] == i: while mid <= b: if arr[mid] != i: break mid += 1 break elif arr[mid] < i: a = mid + 1 else: b = mid - 1 if arr[b] < i: break print(mid, end=' ')
Title: Queries about less or equal elements Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two arrays of integers *a* and *b*. For each element of the second array *b**j* you should find the number of elements in array *a* that are less than or equal to the value *b**j*. Input Specification: The first line contains two integers *n*,<=*m* (1<=≤<=*n*,<=*m*<=≤<=2·105) — the sizes of arrays *a* and *b*. The second line contains *n* integers — the elements of array *a* (<=-<=109<=≤<=*a**i*<=≤<=109). The third line contains *m* integers — the elements of array *b* (<=-<=109<=≤<=*b**j*<=≤<=109). Output Specification: Print *m* integers, separated by spaces: the *j*-th of which is equal to the number of such elements in array *a* that are less than or equal to the value *b**j*. Demo Input: ['5 4\n1 3 5 7 9\n6 4 2 8\n', '5 5\n1 2 1 2 5\n3 1 4 1 5\n'] Demo Output: ['3 2 1 4\n', '4 2 4 2 5\n'] Note: none
```python from sys import stdin n, _ = map(int, stdin.readline().strip().split()) arr = sorted(map(int, stdin.readline().strip().split())) q = list(map(int, stdin.readline().strip().split())) for i in q: a, b = 0, n-1 while a <= b: mid = (a+b)//2 if arr[mid] == i: while mid <= b: if arr[mid] != i: break mid += 1 break elif arr[mid] < i: a = mid + 1 else: b = mid - 1 if arr[b] < i: break print(mid, end=' ') ```
0