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483
A
Counterexample
PROGRAMMING
1,100
[ "brute force", "implementation", "math", "number theory" ]
null
null
Your friend has recently learned about coprime numbers. A pair of numbers {*a*,<=*b*} is called coprime if the maximum number that divides both *a* and *b* is equal to one. Your friend often comes up with different statements. He has recently supposed that if the pair (*a*,<=*b*) is coprime and the pair (*b*,<=*c*) is coprime, then the pair (*a*,<=*c*) is coprime. You want to find a counterexample for your friend's statement. Therefore, your task is to find three distinct numbers (*a*,<=*b*,<=*c*), for which the statement is false, and the numbers meet the condition *l*<=≤<=*a*<=&lt;<=*b*<=&lt;<=*c*<=≤<=*r*. More specifically, you need to find three numbers (*a*,<=*b*,<=*c*), such that *l*<=≤<=*a*<=&lt;<=*b*<=&lt;<=*c*<=≤<=*r*, pairs (*a*,<=*b*) and (*b*,<=*c*) are coprime, and pair (*a*,<=*c*) is not coprime.
The single line contains two positive space-separated integers *l*, *r* (1<=≤<=*l*<=≤<=*r*<=≤<=1018; *r*<=-<=*l*<=≤<=50).
Print three positive space-separated integers *a*, *b*, *c* — three distinct numbers (*a*,<=*b*,<=*c*) that form the counterexample. If there are several solutions, you are allowed to print any of them. The numbers must be printed in ascending order. If the counterexample does not exist, print the single number -1.
[ "2 4\n", "10 11\n", "900000000000000009 900000000000000029\n" ]
[ "2 3 4\n", "-1\n", "900000000000000009 900000000000000010 900000000000000021\n" ]
In the first sample pair (2, 4) is not coprime and pairs (2, 3) and (3, 4) are. In the second sample you cannot form a group of three distinct integers, so the answer is -1. In the third sample it is easy to see that numbers 900000000000000009 and 900000000000000021 are divisible by three.
500
[ { "input": "2 4", "output": "2 3 4" }, { "input": "10 11", "output": "-1" }, { "input": "900000000000000009 900000000000000029", "output": "900000000000000009 900000000000000010 900000000000000021" }, { "input": "640097987171091791 640097987171091835", "output": "640097987171091792 640097987171091793 640097987171091794" }, { "input": "19534350415104721 19534350415104725", "output": "19534350415104722 19534350415104723 19534350415104724" }, { "input": "933700505788726243 933700505788726280", "output": "933700505788726244 933700505788726245 933700505788726246" }, { "input": "1 3", "output": "-1" }, { "input": "1 4", "output": "2 3 4" }, { "input": "1 1", "output": "-1" }, { "input": "266540997167959130 266540997167959164", "output": "266540997167959130 266540997167959131 266540997167959132" }, { "input": "267367244641009850 267367244641009899", "output": "267367244641009850 267367244641009851 267367244641009852" }, { "input": "268193483524125978 268193483524125993", "output": "268193483524125978 268193483524125979 268193483524125980" }, { "input": "269019726702209402 269019726702209432", "output": "269019726702209402 269019726702209403 269019726702209404" }, { "input": "269845965585325530 269845965585325576", "output": "269845965585325530 269845965585325531 269845965585325532" }, { "input": "270672213058376250 270672213058376260", "output": "270672213058376250 270672213058376251 270672213058376252" }, { "input": "271498451941492378 271498451941492378", "output": "-1" }, { "input": "272324690824608506 272324690824608523", "output": "272324690824608506 272324690824608507 272324690824608508" }, { "input": "273150934002691930 273150934002691962", "output": "273150934002691930 273150934002691931 273150934002691932" }, { "input": "996517375802030516 996517375802030524", "output": "996517375802030516 996517375802030517 996517375802030518" }, { "input": "997343614685146644 997343614685146694", "output": "997343614685146644 997343614685146645 997343614685146646" }, { "input": "998169857863230068 998169857863230083", "output": "998169857863230068 998169857863230069 998169857863230070" }, { "input": "998996101041313492 998996101041313522", "output": "998996101041313492 998996101041313493 998996101041313494" }, { "input": "999822344219396916 999822344219396961", "output": "999822344219396916 999822344219396917 999822344219396918" }, { "input": "648583102513043 648583102513053", "output": "648583102513044 648583102513045 648583102513046" }, { "input": "266540997167959130 266540997167959131", "output": "-1" }, { "input": "267367244641009850 267367244641009850", "output": "-1" }, { "input": "268193483524125978 268193483524125979", "output": "-1" }, { "input": "269019726702209402 269019726702209402", "output": "-1" }, { "input": "269845965585325530 269845965585325530", "output": "-1" }, { "input": "270672213058376250 270672213058376254", "output": "270672213058376250 270672213058376251 270672213058376252" }, { "input": "271498451941492378 271498451941492379", "output": "-1" }, { "input": "272324690824608506 272324690824608508", "output": "272324690824608506 272324690824608507 272324690824608508" }, { "input": "273150934002691930 273150934002691931", "output": "-1" }, { "input": "996517375802030516 996517375802030518", "output": "996517375802030516 996517375802030517 996517375802030518" }, { "input": "997343614685146644 997343614685146644", "output": "-1" }, { "input": "2147483647 2147483649", "output": "-1" }, { "input": "3 5", "output": "-1" }, { "input": "1 7", "output": "2 3 4" }, { "input": "9 12", "output": "9 11 12" }, { "input": "4 4", "output": "-1" }, { "input": "11 13", "output": "-1" }, { "input": "2 2", "output": "-1" } ]
1,414,172,797
2,797
Python 3
OK
TESTS
42
62
0
def gcd(a, b): rem = 0 while b != 0: rem = a%b a = b b = rem return a a, b = map(int, input().split()) if b-a == 1: print (-1) else: found = False for i in range(a, b+1): for j in range(i+1, b+1): for k in range(j+1, b+1): if gcd(i, j) == 1 and gcd(j, k) == 1 and gcd(i, k) != 1: found = True print (i, j, k) break if found: break if found: break if not found: print (-1)
Title: Counterexample Time Limit: None seconds Memory Limit: None megabytes Problem Description: Your friend has recently learned about coprime numbers. A pair of numbers {*a*,<=*b*} is called coprime if the maximum number that divides both *a* and *b* is equal to one. Your friend often comes up with different statements. He has recently supposed that if the pair (*a*,<=*b*) is coprime and the pair (*b*,<=*c*) is coprime, then the pair (*a*,<=*c*) is coprime. You want to find a counterexample for your friend's statement. Therefore, your task is to find three distinct numbers (*a*,<=*b*,<=*c*), for which the statement is false, and the numbers meet the condition *l*<=≤<=*a*<=&lt;<=*b*<=&lt;<=*c*<=≤<=*r*. More specifically, you need to find three numbers (*a*,<=*b*,<=*c*), such that *l*<=≤<=*a*<=&lt;<=*b*<=&lt;<=*c*<=≤<=*r*, pairs (*a*,<=*b*) and (*b*,<=*c*) are coprime, and pair (*a*,<=*c*) is not coprime. Input Specification: The single line contains two positive space-separated integers *l*, *r* (1<=≤<=*l*<=≤<=*r*<=≤<=1018; *r*<=-<=*l*<=≤<=50). Output Specification: Print three positive space-separated integers *a*, *b*, *c* — three distinct numbers (*a*,<=*b*,<=*c*) that form the counterexample. If there are several solutions, you are allowed to print any of them. The numbers must be printed in ascending order. If the counterexample does not exist, print the single number -1. Demo Input: ['2 4\n', '10 11\n', '900000000000000009 900000000000000029\n'] Demo Output: ['2 3 4\n', '-1\n', '900000000000000009 900000000000000010 900000000000000021\n'] Note: In the first sample pair (2, 4) is not coprime and pairs (2, 3) and (3, 4) are. In the second sample you cannot form a group of three distinct integers, so the answer is -1. In the third sample it is easy to see that numbers 900000000000000009 and 900000000000000021 are divisible by three.
```python def gcd(a, b): rem = 0 while b != 0: rem = a%b a = b b = rem return a a, b = map(int, input().split()) if b-a == 1: print (-1) else: found = False for i in range(a, b+1): for j in range(i+1, b+1): for k in range(j+1, b+1): if gcd(i, j) == 1 and gcd(j, k) == 1 and gcd(i, k) != 1: found = True print (i, j, k) break if found: break if found: break if not found: print (-1) ```
3
727
A
Transformation: from A to B
PROGRAMMING
1,000
[ "brute force", "dfs and similar", "math" ]
null
null
Vasily has a number *a*, which he wants to turn into a number *b*. For this purpose, he can do two types of operations: - multiply the current number by 2 (that is, replace the number *x* by 2·*x*); - append the digit 1 to the right of current number (that is, replace the number *x* by 10·*x*<=+<=1). You need to help Vasily to transform the number *a* into the number *b* using only the operations described above, or find that it is impossible. Note that in this task you are not required to minimize the number of operations. It suffices to find any way to transform *a* into *b*.
The first line contains two positive integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=109) — the number which Vasily has and the number he wants to have.
If there is no way to get *b* from *a*, print "NO" (without quotes). Otherwise print three lines. On the first line print "YES" (without quotes). The second line should contain single integer *k* — the length of the transformation sequence. On the third line print the sequence of transformations *x*1,<=*x*2,<=...,<=*x**k*, where: - *x*1 should be equal to *a*, - *x**k* should be equal to *b*, - *x**i* should be obtained from *x**i*<=-<=1 using any of two described operations (1<=&lt;<=*i*<=≤<=*k*). If there are multiple answers, print any of them.
[ "2 162\n", "4 42\n", "100 40021\n" ]
[ "YES\n5\n2 4 8 81 162 \n", "NO\n", "YES\n5\n100 200 2001 4002 40021 \n" ]
none
1,000
[ { "input": "2 162", "output": "YES\n5\n2 4 8 81 162 " }, { "input": "4 42", "output": "NO" }, { "input": "100 40021", "output": "YES\n5\n100 200 2001 4002 40021 " }, { "input": "1 111111111", "output": "YES\n9\n1 11 111 1111 11111 111111 1111111 11111111 111111111 " }, { "input": "1 1000000000", "output": "NO" }, { "input": "999999999 1000000000", "output": "NO" }, { "input": "1 2", "output": "YES\n2\n1 2 " }, { "input": "1 536870912", "output": "YES\n30\n1 2 4 8 16 32 64 128 256 512 1024 2048 4096 8192 16384 32768 65536 131072 262144 524288 1048576 2097152 4194304 8388608 16777216 33554432 67108864 134217728 268435456 536870912 " }, { "input": "11111 11111111", "output": "YES\n4\n11111 111111 1111111 11111111 " }, { "input": "59139 946224", "output": "YES\n5\n59139 118278 236556 473112 946224 " }, { "input": "9859 19718", "output": "YES\n2\n9859 19718 " }, { "input": "25987 51974222", "output": "YES\n5\n25987 259871 2598711 25987111 51974222 " }, { "input": "9411 188222222", "output": "YES\n6\n9411 94111 941111 9411111 94111111 188222222 " }, { "input": "25539 510782222", "output": "YES\n6\n25539 255391 2553911 25539111 255391111 510782222 " }, { "input": "76259 610072", "output": "YES\n4\n76259 152518 305036 610072 " }, { "input": "92387 184774", "output": "YES\n2\n92387 184774 " }, { "input": "8515 85151111", "output": "YES\n5\n8515 85151 851511 8515111 85151111 " }, { "input": "91939 9193911", "output": "YES\n3\n91939 919391 9193911 " }, { "input": "30518 610361", "output": "YES\n3\n30518 61036 610361 " }, { "input": "46646 373168844", "output": "YES\n7\n46646 466461 932922 9329221 93292211 186584422 373168844 " }, { "input": "30070 300701", "output": "YES\n2\n30070 300701 " }, { "input": "13494 1079528", "output": "YES\n5\n13494 134941 269882 539764 1079528 " }, { "input": "96918 775344422", "output": "YES\n7\n96918 193836 1938361 3876722 38767221 387672211 775344422 " }, { "input": "13046 260921", "output": "YES\n3\n13046 26092 260921 " }, { "input": "29174 5834811", "output": "YES\n4\n29174 58348 583481 5834811 " }, { "input": "79894 319576421", "output": "YES\n6\n79894 798941 1597882 15978821 31957642 319576421 " }, { "input": "96022 1920442", "output": "YES\n3\n96022 960221 1920442 " }, { "input": "79446 6355681", "output": "YES\n5\n79446 158892 317784 635568 6355681 " }, { "input": "5440 27853056", "output": "YES\n11\n5440 10880 108801 217602 435204 870408 1740816 3481632 6963264 13926528 27853056 " }, { "input": "250000000 705032705", "output": "NO" }, { "input": "17 35", "output": "NO" }, { "input": "1 3", "output": "NO" }, { "input": "2 11", "output": "NO" } ]
1,603,421,718
2,147,483,647
Python 3
OK
TESTS
33
108
307,200
num_possuido, num_desejado = map(int, input().split()) aux = [] aux.append(num_desejado) while(num_desejado > num_possuido): if (num_desejado % 10) == 1: num_desejado = num_desejado // 10 aux.append(num_desejado) elif (num_desejado % 2 == 0): num_desejado = num_desejado // 2 aux.append(num_desejado) else: print("NO") exit() tamanho_da_seq = len(aux) seq = "" aux.reverse() for i in aux: seq += str(i) + " " if(num_desejado == num_possuido): print("YES") print(tamanho_da_seq) print(seq) else: print("NO")
Title: Transformation: from A to B Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasily has a number *a*, which he wants to turn into a number *b*. For this purpose, he can do two types of operations: - multiply the current number by 2 (that is, replace the number *x* by 2·*x*); - append the digit 1 to the right of current number (that is, replace the number *x* by 10·*x*<=+<=1). You need to help Vasily to transform the number *a* into the number *b* using only the operations described above, or find that it is impossible. Note that in this task you are not required to minimize the number of operations. It suffices to find any way to transform *a* into *b*. Input Specification: The first line contains two positive integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=109) — the number which Vasily has and the number he wants to have. Output Specification: If there is no way to get *b* from *a*, print "NO" (without quotes). Otherwise print three lines. On the first line print "YES" (without quotes). The second line should contain single integer *k* — the length of the transformation sequence. On the third line print the sequence of transformations *x*1,<=*x*2,<=...,<=*x**k*, where: - *x*1 should be equal to *a*, - *x**k* should be equal to *b*, - *x**i* should be obtained from *x**i*<=-<=1 using any of two described operations (1<=&lt;<=*i*<=≤<=*k*). If there are multiple answers, print any of them. Demo Input: ['2 162\n', '4 42\n', '100 40021\n'] Demo Output: ['YES\n5\n2 4 8 81 162 \n', 'NO\n', 'YES\n5\n100 200 2001 4002 40021 \n'] Note: none
```python num_possuido, num_desejado = map(int, input().split()) aux = [] aux.append(num_desejado) while(num_desejado > num_possuido): if (num_desejado % 10) == 1: num_desejado = num_desejado // 10 aux.append(num_desejado) elif (num_desejado % 2 == 0): num_desejado = num_desejado // 2 aux.append(num_desejado) else: print("NO") exit() tamanho_da_seq = len(aux) seq = "" aux.reverse() for i in aux: seq += str(i) + " " if(num_desejado == num_possuido): print("YES") print(tamanho_da_seq) print(seq) else: print("NO") ```
3
870
A
Search for Pretty Integers
PROGRAMMING
900
[ "brute force", "implementation" ]
null
null
You are given two lists of non-zero digits. Let's call an integer pretty if its (base 10) representation has at least one digit from the first list and at least one digit from the second list. What is the smallest positive pretty integer?
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=9) — the lengths of the first and the second lists, respectively. The second line contains *n* distinct digits *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=9) — the elements of the first list. The third line contains *m* distinct digits *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=9) — the elements of the second list.
Print the smallest pretty integer.
[ "2 3\n4 2\n5 7 6\n", "8 8\n1 2 3 4 5 6 7 8\n8 7 6 5 4 3 2 1\n" ]
[ "25\n", "1\n" ]
In the first example 25, 46, 24567 are pretty, as well as many other integers. The smallest among them is 25. 42 and 24 are not pretty because they don't have digits from the second list. In the second example all integers that have at least one digit different from 9 are pretty. It's obvious that the smallest among them is 1, because it's the smallest positive integer.
500
[ { "input": "2 3\n4 2\n5 7 6", "output": "25" }, { "input": "8 8\n1 2 3 4 5 6 7 8\n8 7 6 5 4 3 2 1", "output": "1" }, { "input": "1 1\n9\n1", "output": "19" }, { "input": "9 1\n5 4 2 3 6 1 7 9 8\n9", "output": "9" }, { "input": "5 3\n7 2 5 8 6\n3 1 9", "output": "12" }, { "input": "4 5\n5 2 6 4\n8 9 1 3 7", "output": "12" }, { "input": "5 9\n4 2 1 6 7\n2 3 4 5 6 7 8 9 1", "output": "1" }, { "input": "9 9\n5 4 3 2 1 6 7 8 9\n3 2 1 5 4 7 8 9 6", "output": "1" }, { "input": "9 5\n2 3 4 5 6 7 8 9 1\n4 2 1 6 7", "output": "1" }, { "input": "9 9\n1 2 3 4 5 6 7 8 9\n1 2 3 4 5 6 7 8 9", "output": "1" }, { "input": "9 9\n1 2 3 4 5 6 7 8 9\n9 8 7 6 5 4 3 2 1", "output": "1" }, { "input": "9 9\n9 8 7 6 5 4 3 2 1\n1 2 3 4 5 6 7 8 9", "output": "1" }, { "input": "9 9\n9 8 7 6 5 4 3 2 1\n9 8 7 6 5 4 3 2 1", "output": "1" }, { "input": "1 1\n8\n9", "output": "89" }, { "input": "1 1\n9\n8", "output": "89" }, { "input": "1 1\n1\n2", "output": "12" }, { "input": "1 1\n2\n1", "output": "12" }, { "input": "1 1\n9\n9", "output": "9" }, { "input": "1 1\n1\n1", "output": "1" }, { "input": "4 5\n3 2 4 5\n1 6 5 9 8", "output": "5" }, { "input": "3 2\n4 5 6\n1 5", "output": "5" }, { "input": "5 4\n1 3 5 6 7\n2 4 3 9", "output": "3" }, { "input": "5 5\n1 3 5 7 9\n2 4 6 8 9", "output": "9" }, { "input": "2 2\n1 8\n2 8", "output": "8" }, { "input": "5 5\n5 6 7 8 9\n1 2 3 4 5", "output": "5" }, { "input": "5 5\n1 2 3 4 5\n1 2 3 4 5", "output": "1" }, { "input": "5 5\n1 2 3 4 5\n2 3 4 5 6", "output": "2" }, { "input": "2 2\n1 5\n2 5", "output": "5" }, { "input": "4 4\n1 3 5 8\n2 4 6 8", "output": "8" }, { "input": "3 3\n1 5 3\n2 5 7", "output": "5" }, { "input": "3 3\n3 6 8\n2 6 9", "output": "6" }, { "input": "2 2\n1 4\n2 4", "output": "4" }, { "input": "5 3\n3 4 5 6 7\n1 5 9", "output": "5" }, { "input": "4 4\n1 2 3 4\n2 5 6 7", "output": "2" }, { "input": "5 5\n1 2 3 4 5\n9 2 1 7 5", "output": "1" }, { "input": "2 2\n1 3\n2 3", "output": "3" }, { "input": "3 3\n3 2 1\n3 2 1", "output": "1" }, { "input": "3 3\n1 3 5\n2 3 6", "output": "3" }, { "input": "3 3\n5 6 7\n5 6 7", "output": "5" }, { "input": "1 2\n5\n2 5", "output": "5" }, { "input": "3 3\n2 4 9\n7 8 9", "output": "9" }, { "input": "3 3\n1 2 4\n3 4 5", "output": "4" }, { "input": "3 2\n1 4 9\n2 4", "output": "4" }, { "input": "3 3\n3 5 6\n1 5 9", "output": "5" }, { "input": "3 2\n1 2 4\n3 4", "output": "4" }, { "input": "2 4\n8 9\n1 2 3 9", "output": "9" }, { "input": "1 2\n9\n8 9", "output": "9" }, { "input": "3 2\n1 2 4\n4 2", "output": "2" }, { "input": "2 3\n4 5\n1 3 5", "output": "5" }, { "input": "3 2\n1 2 3\n2 3", "output": "2" }, { "input": "4 3\n1 3 5 9\n2 8 9", "output": "9" }, { "input": "2 2\n1 9\n9 2", "output": "9" } ]
1,594,382,869
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
3
156
20,172,800
l1 = input() l2 = set(input().split()) l3 = set(input().split()) l2 = [int(x) for x in l2] l3 = [int(x) for x in l3] if min(l2)==min(l3): print(min(l2)) else: print(str(min(min(l2),min(l3)))+str(max(min(l2),min(l3))))
Title: Search for Pretty Integers Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two lists of non-zero digits. Let's call an integer pretty if its (base 10) representation has at least one digit from the first list and at least one digit from the second list. What is the smallest positive pretty integer? Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=9) — the lengths of the first and the second lists, respectively. The second line contains *n* distinct digits *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=9) — the elements of the first list. The third line contains *m* distinct digits *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=9) — the elements of the second list. Output Specification: Print the smallest pretty integer. Demo Input: ['2 3\n4 2\n5 7 6\n', '8 8\n1 2 3 4 5 6 7 8\n8 7 6 5 4 3 2 1\n'] Demo Output: ['25\n', '1\n'] Note: In the first example 25, 46, 24567 are pretty, as well as many other integers. The smallest among them is 25. 42 and 24 are not pretty because they don't have digits from the second list. In the second example all integers that have at least one digit different from 9 are pretty. It's obvious that the smallest among them is 1, because it's the smallest positive integer.
```python l1 = input() l2 = set(input().split()) l3 = set(input().split()) l2 = [int(x) for x in l2] l3 = [int(x) for x in l3] if min(l2)==min(l3): print(min(l2)) else: print(str(min(min(l2),min(l3)))+str(max(min(l2),min(l3)))) ```
0
453
A
Little Pony and Expected Maximum
PROGRAMMING
1,600
[ "probabilities" ]
null
null
Twilight Sparkle was playing Ludo with her friends Rainbow Dash, Apple Jack and Flutter Shy. But she kept losing. Having returned to the castle, Twilight Sparkle became interested in the dice that were used in the game. The dice has *m* faces: the first face of the dice contains a dot, the second one contains two dots, and so on, the *m*-th face contains *m* dots. Twilight Sparkle is sure that when the dice is tossed, each face appears with probability . Also she knows that each toss is independent from others. Help her to calculate the expected maximum number of dots she could get after tossing the dice *n* times.
A single line contains two integers *m* and *n* (1<=≤<=*m*,<=*n*<=≤<=105).
Output a single real number corresponding to the expected maximum. The answer will be considered correct if its relative or absolute error doesn't exceed 10<=<=-<=4.
[ "6 1\n", "6 3\n", "2 2\n" ]
[ "3.500000000000\n", "4.958333333333\n", "1.750000000000\n" ]
Consider the third test example. If you've made two tosses: 1. You can get 1 in the first toss, and 2 in the second. Maximum equals to 2. 1. You can get 1 in the first toss, and 1 in the second. Maximum equals to 1. 1. You can get 2 in the first toss, and 1 in the second. Maximum equals to 2. 1. You can get 2 in the first toss, and 2 in the second. Maximum equals to 2. The probability of each outcome is 0.25, that is expectation equals to: You can read about expectation using the following link: http://en.wikipedia.org/wiki/Expected_value
500
[ { "input": "6 1", "output": "3.500000000000" }, { "input": "6 3", "output": "4.958333333333" }, { "input": "2 2", "output": "1.750000000000" }, { "input": "5 4", "output": "4.433600000000" }, { "input": "5 8", "output": "4.814773760000" }, { "input": "3 10", "output": "2.982641534996" }, { "input": "3 6", "output": "2.910836762689" }, { "input": "1 8", "output": "1.000000000000" }, { "input": "24438 9", "output": "21994.699969310015" }, { "input": "94444 9", "output": "85000.099992058866" }, { "input": "8 66716", "output": "8.000000000000" }, { "input": "4 25132", "output": "4.000000000000" }, { "input": "51520 73331", "output": "51519.682650242677" }, { "input": "54230 31747", "output": "54228.743352775018" }, { "input": "24236 90163", "output": "24235.975171545670" }, { "input": "26946 99523", "output": "26945.974480086279" }, { "input": "50323 7", "output": "44033.124988408454" }, { "input": "53033 3", "output": "39775.249995286234" }, { "input": "55743 5", "output": "46452.999992525307" }, { "input": "59964 79", "output": "59214.949890211828" }, { "input": "1 1", "output": "1.000000000000" }, { "input": "1 1", "output": "1.000000000000" }, { "input": "3 1", "output": "2.000000000000" }, { "input": "1 2", "output": "1.000000000000" }, { "input": "53513 34040", "output": "53511.875329020870" }, { "input": "100000 100000", "output": "99999.418033254507" }, { "input": "1 100000", "output": "1.000000000000" }, { "input": "100000 1", "output": "50000.499999999935" }, { "input": "2 100000", "output": "2.000000000000" }, { "input": "100000 2", "output": "66667.166665000332" }, { "input": "50000 100000", "output": "49999.843487110789" }, { "input": "99999 1111", "output": "99909.571915885972" }, { "input": "99999 99999", "output": "99998.418033254609" }, { "input": "1000 1000", "output": "999.419018443269" }, { "input": "50000 50000", "output": "49999.418043215679" }, { "input": "88888 88888", "output": "88887.418034499773" }, { "input": "99999 100000", "output": "99998.418042461126" }, { "input": "100000 555", "output": "99820.643422392372" }, { "input": "10000 10000", "output": "9999.418122897887" }, { "input": "100000 5001", "output": "99980.503829474910" }, { "input": "100000 1000", "output": "99900.599066768002" } ]
1,579,862,214
2,147,483,647
PyPy 3
OK
TESTS
41
171
8,294,400
m, n = map(int, input().split()) powers = [] for j in range(m + 1): powers.append(pow(j / m, n)) print(sum(j * (powers[j] - powers[j - 1]) for j in range(1, m + 1)))
Title: Little Pony and Expected Maximum Time Limit: None seconds Memory Limit: None megabytes Problem Description: Twilight Sparkle was playing Ludo with her friends Rainbow Dash, Apple Jack and Flutter Shy. But she kept losing. Having returned to the castle, Twilight Sparkle became interested in the dice that were used in the game. The dice has *m* faces: the first face of the dice contains a dot, the second one contains two dots, and so on, the *m*-th face contains *m* dots. Twilight Sparkle is sure that when the dice is tossed, each face appears with probability . Also she knows that each toss is independent from others. Help her to calculate the expected maximum number of dots she could get after tossing the dice *n* times. Input Specification: A single line contains two integers *m* and *n* (1<=≤<=*m*,<=*n*<=≤<=105). Output Specification: Output a single real number corresponding to the expected maximum. The answer will be considered correct if its relative or absolute error doesn't exceed 10<=<=-<=4. Demo Input: ['6 1\n', '6 3\n', '2 2\n'] Demo Output: ['3.500000000000\n', '4.958333333333\n', '1.750000000000\n'] Note: Consider the third test example. If you've made two tosses: 1. You can get 1 in the first toss, and 2 in the second. Maximum equals to 2. 1. You can get 1 in the first toss, and 1 in the second. Maximum equals to 1. 1. You can get 2 in the first toss, and 1 in the second. Maximum equals to 2. 1. You can get 2 in the first toss, and 2 in the second. Maximum equals to 2. The probability of each outcome is 0.25, that is expectation equals to: You can read about expectation using the following link: http://en.wikipedia.org/wiki/Expected_value
```python m, n = map(int, input().split()) powers = [] for j in range(m + 1): powers.append(pow(j / m, n)) print(sum(j * (powers[j] - powers[j - 1]) for j in range(1, m + 1))) ```
3
727
A
Transformation: from A to B
PROGRAMMING
1,000
[ "brute force", "dfs and similar", "math" ]
null
null
Vasily has a number *a*, which he wants to turn into a number *b*. For this purpose, he can do two types of operations: - multiply the current number by 2 (that is, replace the number *x* by 2·*x*); - append the digit 1 to the right of current number (that is, replace the number *x* by 10·*x*<=+<=1). You need to help Vasily to transform the number *a* into the number *b* using only the operations described above, or find that it is impossible. Note that in this task you are not required to minimize the number of operations. It suffices to find any way to transform *a* into *b*.
The first line contains two positive integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=109) — the number which Vasily has and the number he wants to have.
If there is no way to get *b* from *a*, print "NO" (without quotes). Otherwise print three lines. On the first line print "YES" (without quotes). The second line should contain single integer *k* — the length of the transformation sequence. On the third line print the sequence of transformations *x*1,<=*x*2,<=...,<=*x**k*, where: - *x*1 should be equal to *a*, - *x**k* should be equal to *b*, - *x**i* should be obtained from *x**i*<=-<=1 using any of two described operations (1<=&lt;<=*i*<=≤<=*k*). If there are multiple answers, print any of them.
[ "2 162\n", "4 42\n", "100 40021\n" ]
[ "YES\n5\n2 4 8 81 162 \n", "NO\n", "YES\n5\n100 200 2001 4002 40021 \n" ]
none
1,000
[ { "input": "2 162", "output": "YES\n5\n2 4 8 81 162 " }, { "input": "4 42", "output": "NO" }, { "input": "100 40021", "output": "YES\n5\n100 200 2001 4002 40021 " }, { "input": "1 111111111", "output": "YES\n9\n1 11 111 1111 11111 111111 1111111 11111111 111111111 " }, { "input": "1 1000000000", "output": "NO" }, { "input": "999999999 1000000000", "output": "NO" }, { "input": "1 2", "output": "YES\n2\n1 2 " }, { "input": "1 536870912", "output": "YES\n30\n1 2 4 8 16 32 64 128 256 512 1024 2048 4096 8192 16384 32768 65536 131072 262144 524288 1048576 2097152 4194304 8388608 16777216 33554432 67108864 134217728 268435456 536870912 " }, { "input": "11111 11111111", "output": "YES\n4\n11111 111111 1111111 11111111 " }, { "input": "59139 946224", "output": "YES\n5\n59139 118278 236556 473112 946224 " }, { "input": "9859 19718", "output": "YES\n2\n9859 19718 " }, { "input": "25987 51974222", "output": "YES\n5\n25987 259871 2598711 25987111 51974222 " }, { "input": "9411 188222222", "output": "YES\n6\n9411 94111 941111 9411111 94111111 188222222 " }, { "input": "25539 510782222", "output": "YES\n6\n25539 255391 2553911 25539111 255391111 510782222 " }, { "input": "76259 610072", "output": "YES\n4\n76259 152518 305036 610072 " }, { "input": "92387 184774", "output": "YES\n2\n92387 184774 " }, { "input": "8515 85151111", "output": "YES\n5\n8515 85151 851511 8515111 85151111 " }, { "input": "91939 9193911", "output": "YES\n3\n91939 919391 9193911 " }, { "input": "30518 610361", "output": "YES\n3\n30518 61036 610361 " }, { "input": "46646 373168844", "output": "YES\n7\n46646 466461 932922 9329221 93292211 186584422 373168844 " }, { "input": "30070 300701", "output": "YES\n2\n30070 300701 " }, { "input": "13494 1079528", "output": "YES\n5\n13494 134941 269882 539764 1079528 " }, { "input": "96918 775344422", "output": "YES\n7\n96918 193836 1938361 3876722 38767221 387672211 775344422 " }, { "input": "13046 260921", "output": "YES\n3\n13046 26092 260921 " }, { "input": "29174 5834811", "output": "YES\n4\n29174 58348 583481 5834811 " }, { "input": "79894 319576421", "output": "YES\n6\n79894 798941 1597882 15978821 31957642 319576421 " }, { "input": "96022 1920442", "output": "YES\n3\n96022 960221 1920442 " }, { "input": "79446 6355681", "output": "YES\n5\n79446 158892 317784 635568 6355681 " }, { "input": "5440 27853056", "output": "YES\n11\n5440 10880 108801 217602 435204 870408 1740816 3481632 6963264 13926528 27853056 " }, { "input": "250000000 705032705", "output": "NO" }, { "input": "17 35", "output": "NO" }, { "input": "1 3", "output": "NO" }, { "input": "2 11", "output": "NO" } ]
1,685,129,508
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
1
31
0
entry = [int(i) for i in input().split()] a = entry[0] b = entry[1] arr = [str(b)] while(b > a): if(b%10 == 1): b = int(b // 10) arr.append(str(b)) elif(b % 2 == 0): b = int(b / 2) arr.append(str(b)) elif(b % 2 == 1): break if(b % 2 == 1): print("NO") else: print("YES") print(len(arr)) arr.reverse() arr = " ".join(arr) print(arr)
Title: Transformation: from A to B Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasily has a number *a*, which he wants to turn into a number *b*. For this purpose, he can do two types of operations: - multiply the current number by 2 (that is, replace the number *x* by 2·*x*); - append the digit 1 to the right of current number (that is, replace the number *x* by 10·*x*<=+<=1). You need to help Vasily to transform the number *a* into the number *b* using only the operations described above, or find that it is impossible. Note that in this task you are not required to minimize the number of operations. It suffices to find any way to transform *a* into *b*. Input Specification: The first line contains two positive integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=109) — the number which Vasily has and the number he wants to have. Output Specification: If there is no way to get *b* from *a*, print "NO" (without quotes). Otherwise print three lines. On the first line print "YES" (without quotes). The second line should contain single integer *k* — the length of the transformation sequence. On the third line print the sequence of transformations *x*1,<=*x*2,<=...,<=*x**k*, where: - *x*1 should be equal to *a*, - *x**k* should be equal to *b*, - *x**i* should be obtained from *x**i*<=-<=1 using any of two described operations (1<=&lt;<=*i*<=≤<=*k*). If there are multiple answers, print any of them. Demo Input: ['2 162\n', '4 42\n', '100 40021\n'] Demo Output: ['YES\n5\n2 4 8 81 162 \n', 'NO\n', 'YES\n5\n100 200 2001 4002 40021 \n'] Note: none
```python entry = [int(i) for i in input().split()] a = entry[0] b = entry[1] arr = [str(b)] while(b > a): if(b%10 == 1): b = int(b // 10) arr.append(str(b)) elif(b % 2 == 0): b = int(b / 2) arr.append(str(b)) elif(b % 2 == 1): break if(b % 2 == 1): print("NO") else: print("YES") print(len(arr)) arr.reverse() arr = " ".join(arr) print(arr) ```
0
739
A
Alyona and mex
PROGRAMMING
1,700
[ "constructive algorithms", "greedy" ]
null
null
Alyona's mother wants to present an array of *n* non-negative integers to Alyona. The array should be special. Alyona is a capricious girl so after she gets the array, she inspects *m* of its subarrays. Subarray is a set of some subsequent elements of the array. The *i*-th subarray is described with two integers *l**i* and *r**i*, and its elements are *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*]. Alyona is going to find mex for each of the chosen subarrays. Among these *m* mexes the girl is going to find the smallest. She wants this minimum mex to be as large as possible. You are to find an array *a* of *n* elements so that the minimum mex among those chosen by Alyona subarrays is as large as possible. The mex of a set *S* is a minimum possible non-negative integer that is not in *S*.
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=105). The next *m* lines contain information about the subarrays chosen by Alyona. The *i*-th of these lines contains two integers *l**i* and *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*), that describe the subarray *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*].
In the first line print single integer — the maximum possible minimum mex. In the second line print *n* integers — the array *a*. All the elements in *a* should be between 0 and 109. It is guaranteed that there is an optimal answer in which all the elements in *a* are between 0 and 109. If there are multiple solutions, print any of them.
[ "5 3\n1 3\n2 5\n4 5\n", "4 2\n1 4\n2 4\n" ]
[ "2\n1 0 2 1 0\n", "3\n5 2 0 1" ]
The first example: the mex of the subarray (1, 3) is equal to 3, the mex of the subarray (2, 5) is equal to 3, the mex of the subarray (4, 5) is equal to 2 as well, thus the minumal mex among the subarrays chosen by Alyona is equal to 2.
500
[ { "input": "5 3\n1 3\n2 5\n4 5", "output": "2\n0 1 0 1 0" }, { "input": "4 2\n1 4\n2 4", "output": "3\n0 1 2 0" }, { "input": "1 1\n1 1", "output": "1\n0" }, { "input": "2 1\n2 2", "output": "1\n0 0" }, { "input": "5 6\n2 4\n2 3\n1 4\n3 4\n2 5\n1 3", "output": "2\n0 1 0 1 0" }, { "input": "8 3\n2 3\n2 8\n3 6", "output": "2\n0 1 0 1 0 1 0 1" }, { "input": "10 10\n1 9\n4 8\n4 8\n5 9\n1 9\n3 8\n1 6\n1 9\n1 6\n6 9", "output": "4\n0 1 2 3 0 1 2 3 0 1" }, { "input": "3 6\n1 3\n1 3\n1 1\n1 1\n3 3\n3 3", "output": "1\n0 0 0" }, { "input": "3 3\n1 3\n2 2\n1 3", "output": "1\n0 0 0" }, { "input": "6 8\n3 5\n3 6\n4 6\n2 5\n2 5\n1 3\n3 6\n3 5", "output": "3\n0 1 2 0 1 2" }, { "input": "10 4\n4 10\n4 6\n6 8\n1 10", "output": "3\n0 1 2 0 1 2 0 1 2 0" }, { "input": "9 1\n1 1", "output": "1\n0 0 0 0 0 0 0 0 0" }, { "input": "3 8\n2 3\n1 3\n1 2\n2 3\n1 3\n2 2\n1 2\n1 2", "output": "1\n0 0 0" }, { "input": "3 8\n1 2\n1 2\n1 1\n2 3\n2 3\n1 1\n1 3\n1 3", "output": "1\n0 0 0" }, { "input": "7 3\n7 7\n3 7\n5 7", "output": "1\n0 0 0 0 0 0 0" }, { "input": "9 9\n4 5\n5 8\n1 8\n4 8\n3 4\n7 8\n1 4\n7 8\n6 7", "output": "2\n0 1 0 1 0 1 0 1 0" }, { "input": "10 10\n1 5\n7 10\n2 10\n2 5\n2 9\n5 9\n3 10\n4 9\n6 9\n2 7", "output": "4\n0 1 2 3 0 1 2 3 0 1" }, { "input": "8 7\n5 8\n3 7\n1 8\n3 4\n2 8\n2 7\n4 6", "output": "2\n0 1 0 1 0 1 0 1" }, { "input": "10 3\n2 4\n8 10\n4 6", "output": "3\n0 1 2 0 1 2 0 1 2 0" }, { "input": "5 8\n3 4\n1 5\n3 4\n3 5\n3 4\n1 4\n1 5\n2 5", "output": "2\n0 1 0 1 0" }, { "input": "9 4\n5 9\n3 8\n2 8\n1 4", "output": "4\n0 1 2 3 0 1 2 3 0" }, { "input": "7 7\n2 4\n1 4\n3 6\n2 6\n5 7\n3 6\n1 4", "output": "3\n0 1 2 0 1 2 0" }, { "input": "6 2\n4 6\n2 5", "output": "3\n0 1 2 0 1 2" }, { "input": "7 9\n6 7\n1 2\n2 5\n4 7\n1 7\n5 6\n2 3\n6 7\n1 2", "output": "2\n0 1 0 1 0 1 0" } ]
1,591,777,633
2,147,483,647
PyPy 3
OK
TESTS
69
1,076
11,264,000
n,m=list(map(int,input().split())) a=[] for i in range(m): b=list(map(int,input().split())) a.append(b[1]-b[0]+1) c=min(a) b=[0]*n for i in range(n): b[i]=i%c print(c) print(*b)
Title: Alyona and mex Time Limit: None seconds Memory Limit: None megabytes Problem Description: Alyona's mother wants to present an array of *n* non-negative integers to Alyona. The array should be special. Alyona is a capricious girl so after she gets the array, she inspects *m* of its subarrays. Subarray is a set of some subsequent elements of the array. The *i*-th subarray is described with two integers *l**i* and *r**i*, and its elements are *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*]. Alyona is going to find mex for each of the chosen subarrays. Among these *m* mexes the girl is going to find the smallest. She wants this minimum mex to be as large as possible. You are to find an array *a* of *n* elements so that the minimum mex among those chosen by Alyona subarrays is as large as possible. The mex of a set *S* is a minimum possible non-negative integer that is not in *S*. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=105). The next *m* lines contain information about the subarrays chosen by Alyona. The *i*-th of these lines contains two integers *l**i* and *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*), that describe the subarray *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*]. Output Specification: In the first line print single integer — the maximum possible minimum mex. In the second line print *n* integers — the array *a*. All the elements in *a* should be between 0 and 109. It is guaranteed that there is an optimal answer in which all the elements in *a* are between 0 and 109. If there are multiple solutions, print any of them. Demo Input: ['5 3\n1 3\n2 5\n4 5\n', '4 2\n1 4\n2 4\n'] Demo Output: ['2\n1 0 2 1 0\n', '3\n5 2 0 1'] Note: The first example: the mex of the subarray (1, 3) is equal to 3, the mex of the subarray (2, 5) is equal to 3, the mex of the subarray (4, 5) is equal to 2 as well, thus the minumal mex among the subarrays chosen by Alyona is equal to 2.
```python n,m=list(map(int,input().split())) a=[] for i in range(m): b=list(map(int,input().split())) a.append(b[1]-b[0]+1) c=min(a) b=[0]*n for i in range(n): b[i]=i%c print(c) print(*b) ```
3
842
A
Kirill And The Game
PROGRAMMING
1,200
[ "brute force", "two pointers" ]
null
null
Kirill plays a new computer game. He came to the potion store where he can buy any potion. Each potion is characterized by two integers — amount of experience and cost. The efficiency of a potion is the ratio of the amount of experience to the cost. Efficiency may be a non-integer number. For each two integer numbers *a* and *b* such that *l*<=≤<=*a*<=≤<=*r* and *x*<=≤<=*b*<=≤<=*y* there is a potion with experience *a* and cost *b* in the store (that is, there are (*r*<=-<=*l*<=+<=1)·(*y*<=-<=*x*<=+<=1) potions). Kirill wants to buy a potion which has efficiency *k*. Will he be able to do this?
First string contains five integer numbers *l*, *r*, *x*, *y*, *k* (1<=≤<=*l*<=≤<=*r*<=≤<=107, 1<=≤<=*x*<=≤<=*y*<=≤<=107, 1<=≤<=*k*<=≤<=107).
Print "YES" without quotes if a potion with efficiency exactly *k* can be bought in the store and "NO" without quotes otherwise. You can output each of the letters in any register.
[ "1 10 1 10 1\n", "1 5 6 10 1\n" ]
[ "YES", "NO" ]
none
500
[ { "input": "1 10 1 10 1", "output": "YES" }, { "input": "1 5 6 10 1", "output": "NO" }, { "input": "1 1 1 1 1", "output": "YES" }, { "input": "1 1 1 1 2", "output": "NO" }, { "input": "1 100000 1 100000 100000", "output": "YES" }, { "input": "1 100000 1 100000 100001", "output": "NO" }, { "input": "25 10000 200 10000 5", "output": "YES" }, { "input": "1 100000 10 100000 50000", "output": "NO" }, { "input": "91939 94921 10197 89487 1", "output": "NO" }, { "input": "30518 58228 74071 77671 1", "output": "NO" }, { "input": "46646 79126 78816 91164 5", "output": "NO" }, { "input": "30070 83417 92074 99337 2", "output": "NO" }, { "input": "13494 17544 96820 99660 6", "output": "NO" }, { "input": "96918 97018 10077 86510 9", "output": "YES" }, { "input": "13046 45594 14823 52475 1", "output": "YES" }, { "input": "29174 40572 95377 97669 4", "output": "NO" }, { "input": "79894 92433 8634 86398 4", "output": "YES" }, { "input": "96022 98362 13380 94100 6", "output": "YES" }, { "input": "79446 95675 93934 96272 3", "output": "NO" }, { "input": "5440 46549 61481 99500 10", "output": "NO" }, { "input": "21569 53580 74739 87749 3", "output": "NO" }, { "input": "72289 78297 79484 98991 7", "output": "NO" }, { "input": "88417 96645 92742 98450 5", "output": "NO" }, { "input": "71841 96625 73295 77648 8", "output": "NO" }, { "input": "87969 99230 78041 94736 4", "output": "NO" }, { "input": "4 4 1 2 3", "output": "NO" }, { "input": "150 150 1 2 100", "output": "NO" }, { "input": "99 100 1 100 50", "output": "YES" }, { "input": "7 7 3 6 2", "output": "NO" }, { "input": "10 10 1 10 1", "output": "YES" }, { "input": "36 36 5 7 6", "output": "YES" }, { "input": "73 96 1 51 51", "output": "NO" }, { "input": "3 3 1 3 2", "output": "NO" }, { "input": "10000000 10000000 1 100000 10000000", "output": "YES" }, { "input": "9222174 9829060 9418763 9955619 9092468", "output": "NO" }, { "input": "70 70 1 2 50", "output": "NO" }, { "input": "100 200 1 20 5", "output": "YES" }, { "input": "1 200000 65536 65536 65537", "output": "NO" }, { "input": "15 15 1 100 1", "output": "YES" }, { "input": "10000000 10000000 1 10000000 100000", "output": "YES" }, { "input": "10 10 2 5 4", "output": "NO" }, { "input": "67 69 7 7 9", "output": "NO" }, { "input": "100000 10000000 1 10000000 100000", "output": "YES" }, { "input": "9 12 1 2 7", "output": "NO" }, { "input": "5426234 6375745 2636512 8492816 4409404", "output": "NO" }, { "input": "6134912 6134912 10000000 10000000 999869", "output": "NO" }, { "input": "3 3 1 100 1", "output": "YES" }, { "input": "10000000 10000000 10 10000000 100000", "output": "YES" }, { "input": "4 4 1 100 2", "output": "YES" }, { "input": "8 13 1 4 7", "output": "NO" }, { "input": "10 10 100000 10000000 10000000", "output": "NO" }, { "input": "5 6 1 4 2", "output": "YES" }, { "input": "1002 1003 1 2 1000", "output": "NO" }, { "input": "4 5 1 2 2", "output": "YES" }, { "input": "5 6 1 5 1", "output": "YES" }, { "input": "15 21 2 4 7", "output": "YES" }, { "input": "4 5 3 7 1", "output": "YES" }, { "input": "15 15 3 4 4", "output": "NO" }, { "input": "3 6 1 2 2", "output": "YES" }, { "input": "2 10 3 6 3", "output": "YES" }, { "input": "1 10000000 1 10000000 100000", "output": "YES" }, { "input": "8 13 1 2 7", "output": "NO" }, { "input": "98112 98112 100000 100000 128850", "output": "NO" }, { "input": "2 2 1 2 1", "output": "YES" }, { "input": "8 8 3 4 2", "output": "YES" }, { "input": "60 60 2 3 25", "output": "NO" }, { "input": "16 17 2 5 5", "output": "NO" }, { "input": "2 4 1 3 1", "output": "YES" }, { "input": "4 5 1 2 3", "output": "NO" }, { "input": "10 10 3 4 3", "output": "NO" }, { "input": "10 10000000 999999 10000000 300", "output": "NO" }, { "input": "100 120 9 11 10", "output": "YES" }, { "input": "8 20 1 3 4", "output": "YES" }, { "input": "10 14 2 3 4", "output": "YES" }, { "input": "2000 2001 1 3 1000", "output": "YES" }, { "input": "12 13 2 3 5", "output": "NO" }, { "input": "7 7 2 3 3", "output": "NO" }, { "input": "5 8 1 10000000 4", "output": "YES" }, { "input": "5 5 1 1 4", "output": "NO" }, { "input": "5 5 1 6 2", "output": "NO" }, { "input": "200 300 4000381 4000382 4000381", "output": "NO" }, { "input": "11 17 2 5 2", "output": "NO" }, { "input": "9999999 10000000 1 10000000 999997", "output": "NO" }, { "input": "7 8 2 3 3", "output": "NO" }, { "input": "7 7 3 3 2", "output": "NO" }, { "input": "15 15 2 3 7", "output": "NO" }, { "input": "65408 65408 859 859 10000000", "output": "NO" }, { "input": "1000000 10000000 1 100000 1", "output": "NO" }, { "input": "6 12 2 3 2", "output": "YES" }, { "input": "7 8 1 3 3", "output": "NO" }, { "input": "4 4 1 2 2", "output": "YES" }, { "input": "2 3 1 2 2", "output": "YES" }, { "input": "11 14 2 3 5", "output": "NO" }, { "input": "7 7 1 10 3", "output": "NO" }, { "input": "49 50 1 2 27", "output": "NO" }, { "input": "1 10000000 1 10000000 123456", "output": "YES" }, { "input": "100000 10000000 100 10000000 100000", "output": "YES" }, { "input": "17 19 2 3 8", "output": "NO" }, { "input": "4 6 3 9 1", "output": "YES" }, { "input": "19 20 6 7 3", "output": "NO" }, { "input": "5000000 10000000 1 4999999 1", "output": "NO" } ]
1,521,487,530
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
7
93
7,065,600
IL = lambda: list(map(int, input().split())) IS = lambda: input().split() I = lambda: int(input()) S = lambda: input() l, r, x, y, k = IL() for i in range(max(x, l*k), min(y, r*k) + 1): if i%k == 0: print("YES") quit() print("NO")
Title: Kirill And The Game Time Limit: None seconds Memory Limit: None megabytes Problem Description: Kirill plays a new computer game. He came to the potion store where he can buy any potion. Each potion is characterized by two integers — amount of experience and cost. The efficiency of a potion is the ratio of the amount of experience to the cost. Efficiency may be a non-integer number. For each two integer numbers *a* and *b* such that *l*<=≤<=*a*<=≤<=*r* and *x*<=≤<=*b*<=≤<=*y* there is a potion with experience *a* and cost *b* in the store (that is, there are (*r*<=-<=*l*<=+<=1)·(*y*<=-<=*x*<=+<=1) potions). Kirill wants to buy a potion which has efficiency *k*. Will he be able to do this? Input Specification: First string contains five integer numbers *l*, *r*, *x*, *y*, *k* (1<=≤<=*l*<=≤<=*r*<=≤<=107, 1<=≤<=*x*<=≤<=*y*<=≤<=107, 1<=≤<=*k*<=≤<=107). Output Specification: Print "YES" without quotes if a potion with efficiency exactly *k* can be bought in the store and "NO" without quotes otherwise. You can output each of the letters in any register. Demo Input: ['1 10 1 10 1\n', '1 5 6 10 1\n'] Demo Output: ['YES', 'NO'] Note: none
```python IL = lambda: list(map(int, input().split())) IS = lambda: input().split() I = lambda: int(input()) S = lambda: input() l, r, x, y, k = IL() for i in range(max(x, l*k), min(y, r*k) + 1): if i%k == 0: print("YES") quit() print("NO") ```
0
50
A
Domino piling
PROGRAMMING
800
[ "greedy", "math" ]
A. Domino piling
2
256
You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions.
In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16).
Output one number — the maximal number of dominoes, which can be placed.
[ "2 4\n", "3 3\n" ]
[ "4\n", "4\n" ]
none
500
[ { "input": "2 4", "output": "4" }, { "input": "3 3", "output": "4" }, { "input": "1 5", "output": "2" }, { "input": "1 6", "output": "3" }, { "input": "1 15", "output": "7" }, { "input": "1 16", "output": "8" }, { "input": "2 5", "output": "5" }, { "input": "2 6", "output": "6" }, { "input": "2 7", "output": "7" }, { "input": "2 14", "output": "14" }, { "input": "2 15", "output": "15" }, { "input": "1 4", "output": "2" }, { "input": "2 16", "output": "16" }, { "input": "3 5", "output": "7" }, { "input": "3 6", "output": "9" }, { "input": "3 10", "output": "15" }, { "input": "3 14", "output": "21" }, { "input": "3 15", "output": "22" }, { "input": "3 16", "output": "24" }, { "input": "5 7", "output": "17" }, { "input": "16 16", "output": "128" }, { "input": "15 16", "output": "120" }, { "input": "2 3", "output": "3" }, { "input": "15 15", "output": "112" }, { "input": "14 16", "output": "112" }, { "input": "11 13", "output": "71" }, { "input": "5 16", "output": "40" }, { "input": "8 15", "output": "60" }, { "input": "2 2", "output": "2" }, { "input": "3 4", "output": "6" }, { "input": "4 4", "output": "8" }, { "input": "1 1", "output": "0" }, { "input": "1 2", "output": "1" }, { "input": "1 3", "output": "1" }, { "input": "14 15", "output": "105" } ]
1,662,904,462
2,147,483,647
PyPy 3-64
OK
TESTS
35
124
0
s=input().split(' ') m = int(s[0]) n = int(s[1]) print(m*n // 2)
Title: Domino piling Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions. Input Specification: In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16). Output Specification: Output one number — the maximal number of dominoes, which can be placed. Demo Input: ['2 4\n', '3 3\n'] Demo Output: ['4\n', '4\n'] Note: none
```python s=input().split(' ') m = int(s[0]) n = int(s[1]) print(m*n // 2) ```
3.969
762
A
k-th divisor
PROGRAMMING
1,400
[ "math", "number theory" ]
null
null
You are given two integers *n* and *k*. Find *k*-th smallest divisor of *n*, or report that it doesn't exist. Divisor of *n* is any such natural number, that *n* can be divided by it without remainder.
The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=1015, 1<=≤<=*k*<=≤<=109).
If *n* has less than *k* divisors, output -1. Otherwise, output the *k*-th smallest divisor of *n*.
[ "4 2\n", "5 3\n", "12 5\n" ]
[ "2\n", "-1\n", "6\n" ]
In the first example, number 4 has three divisors: 1, 2 and 4. The second one is 2. In the second example, number 5 has only two divisors: 1 and 5. The third divisor doesn't exist, so the answer is -1.
0
[ { "input": "4 2", "output": "2" }, { "input": "5 3", "output": "-1" }, { "input": "12 5", "output": "6" }, { "input": "1 1", "output": "1" }, { "input": "866421317361600 26880", "output": "866421317361600" }, { "input": "866421317361600 26881", "output": "-1" }, { "input": "1000000000000000 1000000000", "output": "-1" }, { "input": "1000000000000000 100", "output": "1953125" }, { "input": "1 2", "output": "-1" }, { "input": "4 3", "output": "4" }, { "input": "4 4", "output": "-1" }, { "input": "9 3", "output": "9" }, { "input": "21 3", "output": "7" }, { "input": "67280421310721 1", "output": "1" }, { "input": "6 3", "output": "3" }, { "input": "3 3", "output": "-1" }, { "input": "16 3", "output": "4" }, { "input": "1 1000", "output": "-1" }, { "input": "16 4", "output": "8" }, { "input": "36 8", "output": "18" }, { "input": "49 4", "output": "-1" }, { "input": "9 4", "output": "-1" }, { "input": "16 1", "output": "1" }, { "input": "16 6", "output": "-1" }, { "input": "16 5", "output": "16" }, { "input": "25 4", "output": "-1" }, { "input": "4010815561 2", "output": "63331" }, { "input": "49 3", "output": "49" }, { "input": "36 6", "output": "9" }, { "input": "36 10", "output": "-1" }, { "input": "25 3", "output": "25" }, { "input": "22876792454961 28", "output": "7625597484987" }, { "input": "1234 2", "output": "2" }, { "input": "179458711 2", "output": "179458711" }, { "input": "900104343024121 100000", "output": "-1" }, { "input": "8 3", "output": "4" }, { "input": "100 6", "output": "20" }, { "input": "15500 26", "output": "-1" }, { "input": "111111 1", "output": "1" }, { "input": "100000000000000 200", "output": "160000000000" }, { "input": "1000000000000 100", "output": "6400000" }, { "input": "100 10", "output": "-1" }, { "input": "1000000000039 2", "output": "1000000000039" }, { "input": "64 5", "output": "16" }, { "input": "999999961946176 33", "output": "63245552" }, { "input": "376219076689 3", "output": "376219076689" }, { "input": "999999961946176 63", "output": "999999961946176" }, { "input": "1048576 12", "output": "2048" }, { "input": "745 21", "output": "-1" }, { "input": "748 6", "output": "22" }, { "input": "999999961946176 50", "output": "161082468097" }, { "input": "10 3", "output": "5" }, { "input": "1099511627776 22", "output": "2097152" }, { "input": "1000000007 100010", "output": "-1" }, { "input": "3 1", "output": "1" }, { "input": "100 8", "output": "50" }, { "input": "100 7", "output": "25" }, { "input": "7 2", "output": "7" }, { "input": "999999961946176 64", "output": "-1" }, { "input": "20 5", "output": "10" }, { "input": "999999999999989 2", "output": "999999999999989" }, { "input": "100000000000000 114", "output": "10240000" }, { "input": "99999640000243 3", "output": "9999991" }, { "input": "999998000001 566", "output": "333332666667" }, { "input": "99999820000081 2", "output": "9999991" }, { "input": "49000042000009 3", "output": "49000042000009" }, { "input": "151491429961 4", "output": "-1" }, { "input": "32416190071 2", "output": "32416190071" }, { "input": "1000 8", "output": "25" }, { "input": "1999967841 15", "output": "1999967841" }, { "input": "26880 26880", "output": "-1" }, { "input": "151491429961 3", "output": "151491429961" }, { "input": "90000000000 300", "output": "100000000" }, { "input": "98765004361 10", "output": "-1" }, { "input": "15 2", "output": "3" }, { "input": "16 2", "output": "2" }, { "input": "1996 2", "output": "2" }, { "input": "1997 2", "output": "1997" }, { "input": "1999 2", "output": "1999" }, { "input": "1998 2", "output": "2" }, { "input": "1998 1", "output": "1" }, { "input": "1998 7", "output": "27" }, { "input": "1998 8", "output": "37" }, { "input": "100000380000361 2", "output": "10000019" }, { "input": "15 1", "output": "1" }, { "input": "100000000000000 226", "output": "-1" }, { "input": "844030857550613 517", "output": "-1" }, { "input": "4567890 14", "output": "430" }, { "input": "123123123 123123123", "output": "-1" }, { "input": "24 4", "output": "4" }, { "input": "999999993568952 17", "output": "31622777" }, { "input": "99999999994190 9", "output": "241656799" }, { "input": "999997874844049 4", "output": "-1" }, { "input": "99999999999931 2", "output": "99999999999931" }, { "input": "2 3", "output": "-1" }, { "input": "67280421310721 2", "output": "67280421310721" } ]
1,532,357,918
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
4
2,000
0
from math import * n,k=input().split(); n=int(n); k=int(k); ctr=0; flag=0; for i in range(1,int(2*sqrt(n))+1): if(n%i==0): ctr+=1; if(ctr==k): print(i); flag=1; break; if(flag==0): print(-1);
Title: k-th divisor Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two integers *n* and *k*. Find *k*-th smallest divisor of *n*, or report that it doesn't exist. Divisor of *n* is any such natural number, that *n* can be divided by it without remainder. Input Specification: The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=1015, 1<=≤<=*k*<=≤<=109). Output Specification: If *n* has less than *k* divisors, output -1. Otherwise, output the *k*-th smallest divisor of *n*. Demo Input: ['4 2\n', '5 3\n', '12 5\n'] Demo Output: ['2\n', '-1\n', '6\n'] Note: In the first example, number 4 has three divisors: 1, 2 and 4. The second one is 2. In the second example, number 5 has only two divisors: 1 and 5. The third divisor doesn't exist, so the answer is -1.
```python from math import * n,k=input().split(); n=int(n); k=int(k); ctr=0; flag=0; for i in range(1,int(2*sqrt(n))+1): if(n%i==0): ctr+=1; if(ctr==k): print(i); flag=1; break; if(flag==0): print(-1); ```
0
1,005
A
Tanya and Stairways
PROGRAMMING
800
[ "implementation" ]
null
null
Little girl Tanya climbs the stairs inside a multi-storey building. Every time Tanya climbs a stairway, she starts counting steps from $1$ to the number of steps in this stairway. She speaks every number aloud. For example, if she climbs two stairways, the first of which contains $3$ steps, and the second contains $4$ steps, she will pronounce the numbers $1, 2, 3, 1, 2, 3, 4$. You are given all the numbers pronounced by Tanya. How many stairways did she climb? Also, output the number of steps in each stairway. The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
The first line contains $n$ ($1 \le n \le 1000$) — the total number of numbers pronounced by Tanya. The second line contains integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 1000$) — all the numbers Tanya pronounced while climbing the stairs, in order from the first to the last pronounced number. Passing a stairway with $x$ steps, she will pronounce the numbers $1, 2, \dots, x$ in that order. The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
In the first line, output $t$ — the number of stairways that Tanya climbed. In the second line, output $t$ numbers — the number of steps in each stairway she climbed. Write the numbers in the correct order of passage of the stairways.
[ "7\n1 2 3 1 2 3 4\n", "4\n1 1 1 1\n", "5\n1 2 3 4 5\n", "5\n1 2 1 2 1\n" ]
[ "2\n3 4 ", "4\n1 1 1 1 ", "1\n5 ", "3\n2 2 1 " ]
none
0
[ { "input": "7\n1 2 3 1 2 3 4", "output": "2\n3 4 " }, { "input": "4\n1 1 1 1", "output": "4\n1 1 1 1 " }, { "input": "5\n1 2 3 4 5", "output": "1\n5 " }, { "input": "5\n1 2 1 2 1", "output": "3\n2 2 1 " }, { "input": "1\n1", "output": "1\n1 " }, { "input": "48\n1 2 3 4 1 2 3 1 1 2 3 1 2 3 4 1 1 2 3 4 1 2 3 4 1 2 3 4 1 1 2 1 2 1 2 1 1 2 1 2 1 2 3 1 2 1 2 1", "output": "20\n4 3 1 3 4 1 4 4 4 1 2 2 2 1 2 2 3 2 2 1 " }, { "input": "2\n1 2", "output": "1\n2 " }, { "input": "3\n1 1 2", "output": "2\n1 2 " }, { "input": "4\n1 1 2 3", "output": "2\n1 3 " }, { "input": "8\n1 2 3 1 2 3 4 5", "output": "2\n3 5 " }, { "input": "5\n1 1 1 2 3", "output": "3\n1 1 3 " } ]
1,693,767,591
2,147,483,647
Python 3
OK
TESTS
16
46
0
inp1 = int(input()) inp2 = input().split() all_count = 1 stairs_count = '' for i in range(inp1 - 1): if inp2[i + 1] == '1': all_count += 1 stairs_count += f"{inp2[i]} " stairs_count += inp2[-1] print(all_count) print(stairs_count) # Sun Sep 03 2023 21:59:50 GMT+0300 (Moscow Standard Time)
Title: Tanya and Stairways Time Limit: None seconds Memory Limit: None megabytes Problem Description: Little girl Tanya climbs the stairs inside a multi-storey building. Every time Tanya climbs a stairway, she starts counting steps from $1$ to the number of steps in this stairway. She speaks every number aloud. For example, if she climbs two stairways, the first of which contains $3$ steps, and the second contains $4$ steps, she will pronounce the numbers $1, 2, 3, 1, 2, 3, 4$. You are given all the numbers pronounced by Tanya. How many stairways did she climb? Also, output the number of steps in each stairway. The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways. Input Specification: The first line contains $n$ ($1 \le n \le 1000$) — the total number of numbers pronounced by Tanya. The second line contains integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 1000$) — all the numbers Tanya pronounced while climbing the stairs, in order from the first to the last pronounced number. Passing a stairway with $x$ steps, she will pronounce the numbers $1, 2, \dots, x$ in that order. The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways. Output Specification: In the first line, output $t$ — the number of stairways that Tanya climbed. In the second line, output $t$ numbers — the number of steps in each stairway she climbed. Write the numbers in the correct order of passage of the stairways. Demo Input: ['7\n1 2 3 1 2 3 4\n', '4\n1 1 1 1\n', '5\n1 2 3 4 5\n', '5\n1 2 1 2 1\n'] Demo Output: ['2\n3 4 ', '4\n1 1 1 1 ', '1\n5 ', '3\n2 2 1 '] Note: none
```python inp1 = int(input()) inp2 = input().split() all_count = 1 stairs_count = '' for i in range(inp1 - 1): if inp2[i + 1] == '1': all_count += 1 stairs_count += f"{inp2[i]} " stairs_count += inp2[-1] print(all_count) print(stairs_count) # Sun Sep 03 2023 21:59:50 GMT+0300 (Moscow Standard Time) ```
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" } ]
1,627,298,135
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
2
92
6,963,200
n=int(input()) l=[] sum=0 for i in range(n): a=list(map(int,input().split())) l.append(a) for i in range(n): d=0 for j in range(n): d=d+l[j][i] if(d==0): sum+=1 if(sum==n): 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 n=int(input()) l=[] sum=0 for i in range(n): a=list(map(int,input().split())) l.append(a) for i in range(n): d=0 for j in range(n): d=d+l[j][i] if(d==0): sum+=1 if(sum==n): print("YES") else: print("NO") ```
-1
949
A
Zebras
PROGRAMMING
1,600
[ "greedy" ]
null
null
Oleg writes down the history of the days he lived. For each day he decides if it was good or bad. Oleg calls a non-empty sequence of days a zebra, if it starts with a bad day, ends with a bad day, and good and bad days are alternating in it. Let us denote bad days as 0 and good days as 1. Then, for example, sequences of days 0, 010, 01010 are zebras, while sequences 1, 0110, 0101 are not. Oleg tells you the story of days he lived in chronological order in form of string consisting of 0 and 1. Now you are interested if it is possible to divide Oleg's life history into several subsequences, each of which is a zebra, and the way it can be done. Each day must belong to exactly one of the subsequences. For each of the subsequences, days forming it must be ordered chronologically. Note that subsequence does not have to be a group of consecutive days.
In the only line of input data there is a non-empty string *s* consisting of characters 0 and 1, which describes the history of Oleg's life. Its length (denoted as |*s*|) does not exceed 200<=000 characters.
If there is a way to divide history into zebra subsequences, in the first line of output you should print an integer *k* (1<=≤<=*k*<=≤<=|*s*|), the resulting number of subsequences. In the *i*-th of following *k* lines first print the integer *l**i* (1<=≤<=*l**i*<=≤<=|*s*|), which is the length of the *i*-th subsequence, and then *l**i* indices of days forming the subsequence. Indices must follow in ascending order. Days are numbered starting from 1. Each index from 1 to *n* must belong to exactly one subsequence. If there is no way to divide day history into zebra subsequences, print -1. Subsequences may be printed in any order. If there are several solutions, you may print any of them. You do not have to minimize nor maximize the value of *k*.
[ "0010100\n", "111\n" ]
[ "3\n3 1 3 4\n3 2 5 6\n1 7\n", "-1\n" ]
none
500
[ { "input": "0010100", "output": "3\n1 1\n5 2 3 4 5 6\n1 7" }, { "input": "111", "output": "-1" }, { "input": "0", "output": "1\n1 1" }, { "input": "1", "output": "-1" }, { "input": "0101010101", "output": "-1" }, { "input": "010100001", "output": "-1" }, { "input": "000111000", "output": "3\n3 1 6 7\n3 2 5 8\n3 3 4 9" }, { "input": "0101001000", "output": "4\n5 1 2 3 4 5\n3 6 7 8\n1 9\n1 10" }, { "input": "0000001000", "output": "8\n1 1\n1 2\n1 3\n1 4\n1 5\n3 6 7 8\n1 9\n1 10" }, { "input": "0101", "output": "-1" }, { "input": "000101110", "output": "-1" }, { "input": "010101010", "output": "1\n9 1 2 3 4 5 6 7 8 9" }, { "input": "0101001010", "output": "2\n5 1 2 3 4 5\n5 6 7 8 9 10" }, { "input": "0100101100", "output": "2\n5 1 2 3 8 9\n5 4 5 6 7 10" }, { "input": "0110100000", "output": "-1" }, { "input": "0000000000", "output": "10\n1 1\n1 2\n1 3\n1 4\n1 5\n1 6\n1 7\n1 8\n1 9\n1 10" }, { "input": "1111111111", "output": "-1" }, { "input": "0010101100", "output": "2\n3 1 8 9\n7 2 3 4 5 6 7 10" }, { "input": "1010000", "output": "-1" }, { "input": "0001110", "output": "-1" }, { "input": "0000000000011001100011110101000101000010010111000100110110000011010011110110001100100001001001010010", "output": "22\n1 1\n1 2\n1 3\n1 4\n1 5\n1 6\n1 7\n1 8\n7 9 24 25 26 27 28 29\n7 10 13 14 17 18 23 30\n11 11 12 15 16 19 22 31 32 33 34 35\n3 20 21 36\n3 37 46 47\n9 38 39 40 45 48 57 58 75 76\n17 41 42 43 44 49 50 51 54 55 56 59 72 73 74 77 80 81\n9 52 53 60 71 78 79 82 83 84\n7 61 64 65 66 67 70 85\n5 62 63 68 69 86\n3 87 88 89\n3 90 91 92\n5 93 94 95 96 97\n3 98 99 100" }, { "input": "01010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010", "output": "1\n245 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 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 ..." }, { "input": "0010011100000000", "output": "8\n3 1 8 9\n5 2 3 4 7 10\n3 5 6 11\n1 12\n1 13\n1 14\n1 15\n1 16" } ]
1,541,426,445
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
8
1,000
10,342,400
temp = [int(x) for x in list(input())] a = [] # ending with 1 b = [] # ending with 0 skip = False for i in range(len(temp)): if temp[i] == 0: if len(a) == 0: b.append([i+1]) else: b.append(a[0]+[i+1]) del a[0] else: if len(b) == 0: skip = True break else: a.append(b[0]+[i+1]) del b[0] if skip or len(a) != 0: print(-1) else: print(len(b)) for i in b: print(str(len(i))+' '+' '.join([str(x) for x in i]))
Title: Zebras Time Limit: None seconds Memory Limit: None megabytes Problem Description: Oleg writes down the history of the days he lived. For each day he decides if it was good or bad. Oleg calls a non-empty sequence of days a zebra, if it starts with a bad day, ends with a bad day, and good and bad days are alternating in it. Let us denote bad days as 0 and good days as 1. Then, for example, sequences of days 0, 010, 01010 are zebras, while sequences 1, 0110, 0101 are not. Oleg tells you the story of days he lived in chronological order in form of string consisting of 0 and 1. Now you are interested if it is possible to divide Oleg's life history into several subsequences, each of which is a zebra, and the way it can be done. Each day must belong to exactly one of the subsequences. For each of the subsequences, days forming it must be ordered chronologically. Note that subsequence does not have to be a group of consecutive days. Input Specification: In the only line of input data there is a non-empty string *s* consisting of characters 0 and 1, which describes the history of Oleg's life. Its length (denoted as |*s*|) does not exceed 200<=000 characters. Output Specification: If there is a way to divide history into zebra subsequences, in the first line of output you should print an integer *k* (1<=≤<=*k*<=≤<=|*s*|), the resulting number of subsequences. In the *i*-th of following *k* lines first print the integer *l**i* (1<=≤<=*l**i*<=≤<=|*s*|), which is the length of the *i*-th subsequence, and then *l**i* indices of days forming the subsequence. Indices must follow in ascending order. Days are numbered starting from 1. Each index from 1 to *n* must belong to exactly one subsequence. If there is no way to divide day history into zebra subsequences, print -1. Subsequences may be printed in any order. If there are several solutions, you may print any of them. You do not have to minimize nor maximize the value of *k*. Demo Input: ['0010100\n', '111\n'] Demo Output: ['3\n3 1 3 4\n3 2 5 6\n1 7\n', '-1\n'] Note: none
```python temp = [int(x) for x in list(input())] a = [] # ending with 1 b = [] # ending with 0 skip = False for i in range(len(temp)): if temp[i] == 0: if len(a) == 0: b.append([i+1]) else: b.append(a[0]+[i+1]) del a[0] else: if len(b) == 0: skip = True break else: a.append(b[0]+[i+1]) del b[0] if skip or len(a) != 0: print(-1) else: print(len(b)) for i in b: print(str(len(i))+' '+' '.join([str(x) for x in i])) ```
0
265
A
Colorful Stones (Simplified Edition)
PROGRAMMING
800
[ "implementation" ]
null
null
There is a sequence of colorful stones. The color of each stone is one of red, green, or blue. You are given a string *s*. The *i*-th (1-based) character of *s* represents the color of the *i*-th stone. If the character is "R", "G", or "B", the color of the corresponding stone is red, green, or blue, respectively. Initially Squirrel Liss is standing on the first stone. You perform instructions one or more times. Each instruction is one of the three types: "RED", "GREEN", or "BLUE". After an instruction *c*, if Liss is standing on a stone whose colors is *c*, Liss will move one stone forward, else she will not move. You are given a string *t*. The number of instructions is equal to the length of *t*, and the *i*-th character of *t* represents the *i*-th instruction. Calculate the final position of Liss (the number of the stone she is going to stand on in the end) after performing all the instructions, and print its 1-based position. It is guaranteed that Liss don't move out of the sequence.
The input contains two lines. The first line contains the string *s* (1<=≤<=|*s*|<=≤<=50). The second line contains the string *t* (1<=≤<=|*t*|<=≤<=50). The characters of each string will be one of "R", "G", or "B". It is guaranteed that Liss don't move out of the sequence.
Print the final 1-based position of Liss in a single line.
[ "RGB\nRRR\n", "RRRBGBRBBB\nBBBRR\n", "BRRBGBRGRBGRGRRGGBGBGBRGBRGRGGGRBRRRBRBBBGRRRGGBBB\nBBRBGGRGRGBBBRBGRBRBBBBRBRRRBGBBGBBRRBBGGRBRRBRGRB\n" ]
[ "2\n", "3\n", "15\n" ]
none
500
[ { "input": "RGB\nRRR", "output": "2" }, { "input": "RRRBGBRBBB\nBBBRR", "output": "3" }, { "input": "BRRBGBRGRBGRGRRGGBGBGBRGBRGRGGGRBRRRBRBBBGRRRGGBBB\nBBRBGGRGRGBBBRBGRBRBBBBRBRRRBGBBGBBRRBBGGRBRRBRGRB", "output": "15" }, { "input": "G\nRRBBRBRRBR", "output": "1" }, { "input": "RRRRRBRRBRRGRBGGRRRGRBBRBBBBBRGRBGBRRGBBBRBBGBRGBB\nB", "output": "1" }, { "input": "RRGGBRGRBG\nBRRGGBBGGR", "output": "7" }, { "input": "BBRRGBGGRGBRGBRBRBGR\nGGGRBGGGBRRRRGRBGBGRGRRBGRBGBG", "output": "15" }, { "input": "GBRRBGBGBBBBRRRGBGRRRGBGBBBRGR\nRRGBRRGRBBBBBBGRRBBR", "output": "8" }, { "input": "BRGRRGRGRRGBBGBBBRRBBRRBGBBGRGBBGGRGBRBGGGRRRBGGBB\nRGBBGRRBBBRRGRRBRBBRGBBGGGRGBGRRRRBRBGGBRBGGGRGBRR", "output": "16" }, { "input": "GGRGGBRRGRGBRRGGRBBGGRRGBBBGBBBGGRBGGBRBBRGBRRRBRG\nGGRGRRRRRRRRRGBBBBRGBRGRGRRGBBRGGBRBBRBGBRGRRRRGGR", "output": "18" }, { "input": "RBBRBGBBGGGBRRBGBRGRRGGRBBBBGRBGGBRRBGBBRBRGBBGGGG\nBRRGRBGRBGBRGBRBGGBBBGBBRGRBGRGRBGRBGGRRBGBRGRRBBG", "output": "23" }, { "input": "RRGGRRBRGRGBRGBRGBBRGGGBRBGBRGBRGGBRBRGBGRRBBGGRBR\nBRGRBBBGRBGRRGGRRRRRRRRGGGGGGGGBGGGGGGGRGRBBRGRGBR", "output": "14" }, { "input": "RBRBRRRRRGGR\nBBBBRRGGBGRBRGBBRGGGRGGBRRBRBRBGGG", "output": "12" }, { "input": "GGRGGGBRGRGRBBRGGGRBGRRR\nGBBBBGBGBGBBBRGGRGGBGRRGRRRGBGB", "output": "12" }, { "input": "RGRBGBRBBGBRRGGGBBGBRRBGRGBBBBBGRRRGGRBB\nBGR", "output": "2" }, { "input": "R\nB", "output": "1" }, { "input": "RRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR\nRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR", "output": "50" }, { "input": "RRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR\nGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGG", "output": "1" }, { "input": "R\nGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGGG", "output": "1" } ]
1,699,722,220
2,147,483,647
Python 3
OK
TESTS
19
62
0
s = input() c = 0 for v in input(): c += (v == s[c]) print(c + 1)
Title: Colorful Stones (Simplified Edition) Time Limit: None seconds Memory Limit: None megabytes Problem Description: There is a sequence of colorful stones. The color of each stone is one of red, green, or blue. You are given a string *s*. The *i*-th (1-based) character of *s* represents the color of the *i*-th stone. If the character is "R", "G", or "B", the color of the corresponding stone is red, green, or blue, respectively. Initially Squirrel Liss is standing on the first stone. You perform instructions one or more times. Each instruction is one of the three types: "RED", "GREEN", or "BLUE". After an instruction *c*, if Liss is standing on a stone whose colors is *c*, Liss will move one stone forward, else she will not move. You are given a string *t*. The number of instructions is equal to the length of *t*, and the *i*-th character of *t* represents the *i*-th instruction. Calculate the final position of Liss (the number of the stone she is going to stand on in the end) after performing all the instructions, and print its 1-based position. It is guaranteed that Liss don't move out of the sequence. Input Specification: The input contains two lines. The first line contains the string *s* (1<=≤<=|*s*|<=≤<=50). The second line contains the string *t* (1<=≤<=|*t*|<=≤<=50). The characters of each string will be one of "R", "G", or "B". It is guaranteed that Liss don't move out of the sequence. Output Specification: Print the final 1-based position of Liss in a single line. Demo Input: ['RGB\nRRR\n', 'RRRBGBRBBB\nBBBRR\n', 'BRRBGBRGRBGRGRRGGBGBGBRGBRGRGGGRBRRRBRBBBGRRRGGBBB\nBBRBGGRGRGBBBRBGRBRBBBBRBRRRBGBBGBBRRBBGGRBRRBRGRB\n'] Demo Output: ['2\n', '3\n', '15\n'] Note: none
```python s = input() c = 0 for v in input(): c += (v == s[c]) print(c + 1) ```
3
732
A
Buy a Shovel
PROGRAMMING
800
[ "brute force", "constructive algorithms", "implementation", "math" ]
null
null
Polycarp urgently needs a shovel! He comes to the shop and chooses an appropriate one. The shovel that Policarp chooses is sold for *k* burles. Assume that there is an unlimited number of such shovels in the shop. In his pocket Polycarp has an unlimited number of "10-burle coins" and exactly one coin of *r* burles (1<=≤<=*r*<=≤<=9). What is the minimum number of shovels Polycarp has to buy so that he can pay for the purchase without any change? It is obvious that he can pay for 10 shovels without any change (by paying the requied amount of 10-burle coins and not using the coin of *r* burles). But perhaps he can buy fewer shovels and pay without any change. Note that Polycarp should buy at least one shovel.
The single line of input contains two integers *k* and *r* (1<=≤<=*k*<=≤<=1000, 1<=≤<=*r*<=≤<=9) — the price of one shovel and the denomination of the coin in Polycarp's pocket that is different from "10-burle coins". Remember that he has an unlimited number of coins in the denomination of 10, that is, Polycarp has enough money to buy any number of shovels.
Print the required minimum number of shovels Polycarp has to buy so that he can pay for them without any change.
[ "117 3\n", "237 7\n", "15 2\n" ]
[ "9\n", "1\n", "2\n" ]
In the first example Polycarp can buy 9 shovels and pay 9·117 = 1053 burles. Indeed, he can pay this sum by using 10-burle coins and one 3-burle coin. He can't buy fewer shovels without any change. In the second example it is enough for Polycarp to buy one shovel. In the third example Polycarp should buy two shovels and pay 2·15 = 30 burles. It is obvious that he can pay this sum without any change.
500
[ { "input": "117 3", "output": "9" }, { "input": "237 7", "output": "1" }, { "input": "15 2", "output": "2" }, { "input": "1 1", "output": "1" }, { "input": "1 9", "output": "9" }, { "input": "1000 3", "output": "1" }, { "input": "1000 1", "output": "1" }, { "input": "1000 9", "output": "1" }, { "input": "1 2", "output": "2" }, { "input": "999 9", "output": "1" }, { "input": "999 8", "output": "2" }, { "input": "105 6", "output": "2" }, { "input": "403 9", "output": "3" }, { "input": "546 4", "output": "4" }, { "input": "228 9", "output": "5" }, { "input": "57 2", "output": "6" }, { "input": "437 9", "output": "7" }, { "input": "997 6", "output": "8" }, { "input": "109 1", "output": "9" }, { "input": "998 9", "output": "5" }, { "input": "4 2", "output": "3" }, { "input": "9 3", "output": "7" }, { "input": "8 2", "output": "4" }, { "input": "1 3", "output": "3" }, { "input": "1 4", "output": "4" }, { "input": "1 5", "output": "5" }, { "input": "1 6", "output": "6" }, { "input": "1 7", "output": "7" }, { "input": "1 8", "output": "8" }, { "input": "100 3", "output": "1" }, { "input": "1000 2", "output": "1" }, { "input": "1000 4", "output": "1" }, { "input": "1000 5", "output": "1" }, { "input": "1000 6", "output": "1" }, { "input": "1000 7", "output": "1" }, { "input": "1000 8", "output": "1" }, { "input": "23 4", "output": "8" }, { "input": "33 1", "output": "7" }, { "input": "33 2", "output": "4" }, { "input": "666 5", "output": "5" }, { "input": "2 3", "output": "5" }, { "input": "5 5", "output": "1" }, { "input": "3 6", "output": "2" }, { "input": "12 4", "output": "2" }, { "input": "15 5", "output": "1" }, { "input": "2 5", "output": "5" }, { "input": "25 5", "output": "1" }, { "input": "2 9", "output": "5" }, { "input": "6 7", "output": "5" }, { "input": "8 9", "output": "5" }, { "input": "2 7", "output": "5" }, { "input": "4 7", "output": "5" }, { "input": "2 1", "output": "5" }, { "input": "261 1", "output": "1" } ]
1,674,661,916
2,147,483,647
PyPy 3
OK
TESTS
54
93
0
k, r= map(int,input().split()) count = 1 sum=k for i in range(1000): if sum%10==0: break elif (sum-r)%10==0: break else: sum += k count += 1 print (count)
Title: Buy a Shovel Time Limit: None seconds Memory Limit: None megabytes Problem Description: Polycarp urgently needs a shovel! He comes to the shop and chooses an appropriate one. The shovel that Policarp chooses is sold for *k* burles. Assume that there is an unlimited number of such shovels in the shop. In his pocket Polycarp has an unlimited number of "10-burle coins" and exactly one coin of *r* burles (1<=≤<=*r*<=≤<=9). What is the minimum number of shovels Polycarp has to buy so that he can pay for the purchase without any change? It is obvious that he can pay for 10 shovels without any change (by paying the requied amount of 10-burle coins and not using the coin of *r* burles). But perhaps he can buy fewer shovels and pay without any change. Note that Polycarp should buy at least one shovel. Input Specification: The single line of input contains two integers *k* and *r* (1<=≤<=*k*<=≤<=1000, 1<=≤<=*r*<=≤<=9) — the price of one shovel and the denomination of the coin in Polycarp's pocket that is different from "10-burle coins". Remember that he has an unlimited number of coins in the denomination of 10, that is, Polycarp has enough money to buy any number of shovels. Output Specification: Print the required minimum number of shovels Polycarp has to buy so that he can pay for them without any change. Demo Input: ['117 3\n', '237 7\n', '15 2\n'] Demo Output: ['9\n', '1\n', '2\n'] Note: In the first example Polycarp can buy 9 shovels and pay 9·117 = 1053 burles. Indeed, he can pay this sum by using 10-burle coins and one 3-burle coin. He can't buy fewer shovels without any change. In the second example it is enough for Polycarp to buy one shovel. In the third example Polycarp should buy two shovels and pay 2·15 = 30 burles. It is obvious that he can pay this sum without any change.
```python k, r= map(int,input().split()) count = 1 sum=k for i in range(1000): if sum%10==0: break elif (sum-r)%10==0: break else: sum += k count += 1 print (count) ```
3
38
A
Army
PROGRAMMING
800
[ "implementation" ]
A. Army
2
256
The Berland Armed Forces System consists of *n* ranks that are numbered using natural numbers from 1 to *n*, where 1 is the lowest rank and *n* is the highest rank. One needs exactly *d**i* years to rise from rank *i* to rank *i*<=+<=1. Reaching a certain rank *i* having not reached all the previous *i*<=-<=1 ranks is impossible. Vasya has just reached a new rank of *a*, but he dreams of holding the rank of *b*. Find for how many more years Vasya should serve in the army until he can finally realize his dream.
The first input line contains an integer *n* (2<=≤<=*n*<=≤<=100). The second line contains *n*<=-<=1 integers *d**i* (1<=≤<=*d**i*<=≤<=100). The third input line contains two integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=*n*). The numbers on the lines are space-separated.
Print the single number which is the number of years that Vasya needs to rise from rank *a* to rank *b*.
[ "3\n5 6\n1 2\n", "3\n5 6\n1 3\n" ]
[ "5\n", "11\n" ]
none
0
[ { "input": "3\n5 6\n1 2", "output": "5" }, { "input": "3\n5 6\n1 3", "output": "11" }, { "input": "2\n55\n1 2", "output": "55" }, { "input": "3\n85 78\n1 3", "output": "163" }, { "input": "4\n63 4 49\n2 3", "output": "4" }, { "input": "5\n93 83 42 56\n2 5", "output": "181" }, { "input": "6\n22 9 87 89 57\n1 6", "output": "264" }, { "input": "7\n52 36 31 23 74 78\n2 7", "output": "242" }, { "input": "8\n82 14 24 5 91 49 94\n3 8", "output": "263" }, { "input": "9\n12 40 69 39 59 21 59 5\n4 6", "output": "98" }, { "input": "10\n95 81 32 59 71 30 50 61 100\n1 6", "output": "338" }, { "input": "15\n89 55 94 4 15 69 19 60 91 77 3 94 91 62\n3 14", "output": "617" }, { "input": "20\n91 1 41 51 95 67 92 35 23 70 44 91 57 50 21 8 9 71 40\n8 17", "output": "399" }, { "input": "25\n70 95 21 84 97 39 12 98 53 24 78 29 84 65 70 22 100 17 69 27 62 48 35 80\n8 23", "output": "846" }, { "input": "30\n35 69 50 44 19 56 86 56 98 24 21 2 61 24 85 30 2 22 57 35 59 84 12 77 92 53 50 92 9\n1 16", "output": "730" }, { "input": "35\n2 34 47 15 27 61 6 88 67 20 53 65 29 68 77 5 78 86 44 98 32 81 91 79 54 84 95 23 65 97 22 33 42 87\n8 35", "output": "1663" }, { "input": "40\n32 88 59 36 95 45 28 78 73 30 97 13 13 47 48 100 43 21 22 45 88 25 15 13 63 25 72 92 29 5 25 11 50 5 54 51 48 84 23\n7 26", "output": "862" }, { "input": "45\n83 74 73 95 10 31 100 26 29 15 80 100 22 70 31 88 9 56 19 70 2 62 48 30 27 47 52 50 94 44 21 94 23 85 15 3 95 72 43 62 94 89 68 88\n17 40", "output": "1061" }, { "input": "50\n28 8 16 29 19 82 70 51 96 84 74 72 17 69 12 21 37 21 39 3 18 66 19 49 86 96 94 93 2 90 96 84 59 88 58 15 61 33 55 22 35 54 51 29 64 68 29 38 40\n23 28", "output": "344" }, { "input": "60\n24 28 25 21 43 71 64 73 71 90 51 83 69 43 75 43 78 72 56 61 99 7 23 86 9 16 16 94 23 74 18 56 20 72 13 31 75 34 35 86 61 49 4 72 84 7 65 70 66 52 21 38 6 43 69 40 73 46 5\n28 60", "output": "1502" }, { "input": "70\n69 95 34 14 67 61 6 95 94 44 28 94 73 66 39 13 19 71 73 71 28 48 26 22 32 88 38 95 43 59 88 77 80 55 17 95 40 83 67 1 38 95 58 63 56 98 49 2 41 4 73 8 78 41 64 71 60 71 41 61 67 4 4 19 97 14 39 20 27\n9 41", "output": "1767" }, { "input": "80\n65 15 43 6 43 98 100 16 69 98 4 54 25 40 2 35 12 23 38 29 10 89 30 6 4 8 7 96 64 43 11 49 89 38 20 59 54 85 46 16 16 89 60 54 28 37 32 34 67 9 78 30 50 87 58 53 99 48 77 3 5 6 19 99 16 20 31 10 80 76 82 56 56 83 72 81 84 60 28\n18 24", "output": "219" }, { "input": "90\n61 35 100 99 67 87 42 90 44 4 81 65 29 63 66 56 53 22 55 87 39 30 34 42 27 80 29 97 85 28 81 22 50 22 24 75 67 86 78 79 94 35 13 97 48 76 68 66 94 13 82 1 22 85 5 36 86 73 65 97 43 56 35 26 87 25 74 47 81 67 73 75 99 75 53 38 70 21 66 78 38 17 57 40 93 57 68 55 1\n12 44", "output": "1713" }, { "input": "95\n37 74 53 96 65 84 65 72 95 45 6 77 91 35 58 50 51 51 97 30 51 20 79 81 92 10 89 34 40 76 71 54 26 34 73 72 72 28 53 19 95 64 97 10 44 15 12 38 5 63 96 95 86 8 36 96 45 53 81 5 18 18 47 97 65 9 33 53 41 86 37 53 5 40 15 76 83 45 33 18 26 5 19 90 46 40 100 42 10 90 13 81 40 53\n6 15", "output": "570" }, { "input": "96\n51 32 95 75 23 54 70 89 67 3 1 51 4 100 97 30 9 35 56 38 54 77 56 98 43 17 60 43 72 46 87 61 100 65 81 22 74 38 16 96 5 10 54 22 23 22 10 91 9 54 49 82 29 73 33 98 75 8 4 26 24 90 71 42 90 24 94 74 94 10 41 98 56 63 18 43 56 21 26 64 74 33 22 38 67 66 38 60 64 76 53 10 4 65 76\n21 26", "output": "328" }, { "input": "97\n18 90 84 7 33 24 75 55 86 10 96 72 16 64 37 9 19 71 62 97 5 34 85 15 46 72 82 51 52 16 55 68 27 97 42 72 76 97 32 73 14 56 11 86 2 81 59 95 60 93 1 22 71 37 77 100 6 16 78 47 78 62 94 86 16 91 56 46 47 35 93 44 7 86 70 10 29 45 67 62 71 61 74 39 36 92 24 26 65 14 93 92 15 28 79 59\n6 68", "output": "3385" }, { "input": "98\n32 47 26 86 43 42 79 72 6 68 40 46 29 80 24 89 29 7 21 56 8 92 13 33 50 79 5 7 84 85 24 23 1 80 51 21 26 55 96 51 24 2 68 98 81 88 57 100 64 84 54 10 14 2 74 1 89 71 1 20 84 85 17 31 42 58 69 67 48 60 97 90 58 10 21 29 2 21 60 61 68 89 77 39 57 18 61 44 67 100 33 74 27 40 83 29 6\n8 77", "output": "3319" }, { "input": "99\n46 5 16 66 53 12 84 89 26 27 35 68 41 44 63 17 88 43 80 15 59 1 42 50 53 34 75 16 16 55 92 30 28 11 12 71 27 65 11 28 86 47 24 10 60 47 7 53 16 75 6 49 56 66 70 3 20 78 75 41 38 57 89 23 16 74 30 39 1 32 49 84 9 33 25 95 75 45 54 59 17 17 29 40 79 96 47 11 69 86 73 56 91 4 87 47 31 24\n23 36", "output": "514" }, { "input": "100\n63 65 21 41 95 23 3 4 12 23 95 50 75 63 58 34 71 27 75 31 23 94 96 74 69 34 43 25 25 55 44 19 43 86 68 17 52 65 36 29 72 96 84 25 84 23 71 54 6 7 71 7 21 100 99 58 93 35 62 47 36 70 68 9 75 13 35 70 76 36 62 22 52 51 2 87 66 41 54 35 78 62 30 35 65 44 74 93 78 37 96 70 26 32 71 27 85 85 63\n43 92", "output": "2599" }, { "input": "51\n85 38 22 38 42 36 55 24 36 80 49 15 66 91 88 61 46 82 1 61 89 92 6 56 28 8 46 80 56 90 91 38 38 17 69 64 57 68 13 44 45 38 8 72 61 39 87 2 73 88\n15 27", "output": "618" }, { "input": "2\n3\n1 2", "output": "3" }, { "input": "5\n6 8 22 22\n2 3", "output": "8" }, { "input": "6\n3 12 27 28 28\n3 4", "output": "27" }, { "input": "9\n1 2 2 2 2 3 3 5\n3 7", "output": "9" }, { "input": "10\n1 1 1 1 1 1 1 1 1\n6 8", "output": "2" }, { "input": "20\n1 1 1 1 1 1 1 1 2 2 2 2 2 3 3 3 3 3 3\n5 17", "output": "23" }, { "input": "25\n1 1 1 4 5 6 8 11 11 11 11 12 13 14 14 14 15 16 16 17 17 17 19 19\n4 8", "output": "23" }, { "input": "35\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2\n30 31", "output": "2" }, { "input": "45\n1 1 1 1 2 2 2 2 2 2 2 3 3 3 3 3 3 4 5 5 5 5 6 6 6 6 6 6 6 7 7 7 7 8 8 8 9 9 9 9 9 10 10 10\n42 45", "output": "30" }, { "input": "50\n1 8 8 13 14 15 15 16 19 21 22 24 26 31 32 37 45 47 47 47 50 50 51 54 55 56 58 61 61 61 63 63 64 66 66 67 67 70 71 80 83 84 85 92 92 94 95 95 100\n4 17", "output": "285" }, { "input": "60\n1 2 4 4 4 6 6 8 9 10 10 13 14 18 20 20 21 22 23 23 26 29 30 32 33 34 35 38 40 42 44 44 46 48 52 54 56 56 60 60 66 67 68 68 69 73 73 74 80 80 81 81 82 84 86 86 87 89 89\n56 58", "output": "173" }, { "input": "70\n1 2 3 3 4 5 5 7 7 7 8 8 8 8 9 9 10 12 12 12 12 13 16 16 16 16 16 16 17 17 18 18 20 20 21 23 24 25 25 26 29 29 29 29 31 32 32 34 35 36 36 37 37 38 39 39 40 40 40 40 41 41 42 43 44 44 44 45 45\n62 65", "output": "126" }, { "input": "80\n1 1 1 1 1 1 1 1 2 2 2 2 2 2 3 3 3 3 3 3 3 3 3 3 4 4 4 4 5 5 5 5 5 5 5 6 7 7 7 7 7 7 8 8 8 8 9 9 9 9 9 9 9 9 9 10 10 10 10 10 10 10 10 10 11 11 11 11 11 11 11 12 12 12 12 12 12 12 12\n17 65", "output": "326" }, { "input": "90\n1 1 3 5 8 9 10 11 11 11 11 12 13 14 15 15 15 16 16 19 19 20 22 23 24 25 25 28 29 29 30 31 33 34 35 37 37 38 41 43 43 44 45 47 51 54 55 56 58 58 59 59 60 62 66 67 67 67 68 68 69 70 71 72 73 73 76 77 77 78 78 78 79 79 79 82 83 84 85 85 87 87 89 93 93 93 95 99 99\n28 48", "output": "784" }, { "input": "95\n2 2 3 3 4 6 6 7 7 7 9 10 12 12 12 12 13 14 15 16 17 18 20 20 20 20 21 21 21 21 22 22 22 22 22 23 23 23 25 26 26 27 27 27 28 29 29 30 30 31 32 33 34 36 37 37 38 39 39 39 42 43 43 43 45 47 48 50 50 51 52 53 54 54 54 55 55 55 58 59 60 61 61 61 61 62 62 63 64 65 66 67 67 67\n64 93", "output": "1636" }, { "input": "96\n1 1 2 3 3 5 8 9 9 10 10 10 11 11 11 11 11 12 13 13 13 14 15 15 16 16 17 17 17 17 18 18 20 20 20 21 21 21 23 24 24 25 25 26 27 27 27 27 29 29 29 30 30 30 32 32 32 32 32 32 33 33 34 34 34 35 35 35 36 36 37 37 37 38 39 40 41 41 41 41 42 42 43 43 45 45 45 46 46 47 47 49 50 52 52\n76 96", "output": "898" }, { "input": "98\n2 3 4 4 5 7 8 10 10 10 11 11 12 12 12 12 13 14 15 15 16 16 18 19 19 20 21 21 21 21 22 23 24 25 26 26 27 27 27 27 29 29 30 30 31 31 37 40 40 40 41 41 41 42 43 44 44 44 46 46 47 49 49 50 50 50 51 53 55 55 56 56 56 56 56 57 57 58 59 60 60 60 62 62 63 64 64 64 65 66 66 67 68 70 70 71 71\n8 90", "output": "3016" }, { "input": "99\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\n66 95", "output": "29" }, { "input": "100\n1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 3 3 3 4 4 4 4 4 4 4 4 4 4 5 5 5 5 5 5 6 6 6 6 6 6 6 6 6 6 6 6 7 7 7 7 7 7 8 8 8 8 9 9 9 9 10 10 10 10 11 11 11 11 12 12 12 13 13 13 13 13 13 13 13 13 13 14 14 14 14 14 14 15 15 15 15 15 15 16 16 16 17 17\n39 52", "output": "82" }, { "input": "51\n5 7 9 16 19 25 26 29 29 30 31 32 32 41 43 44 47 49 50 50 51 52 54 55 56 63 64 66 67 70 74 74 77 78 79 80 80 85 86 87 89 89 90 92 93 94 94 95 95 97\n3 44", "output": "2268" } ]
1,586,665,062
2,147,483,647
PyPy 3
OK
TESTS
50
280
0
n=int(input()) c=list(map(int,input().split())) a,b=map(int,input().split()) print(sum(c[a-1:b-1]))
Title: Army Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: The Berland Armed Forces System consists of *n* ranks that are numbered using natural numbers from 1 to *n*, where 1 is the lowest rank and *n* is the highest rank. One needs exactly *d**i* years to rise from rank *i* to rank *i*<=+<=1. Reaching a certain rank *i* having not reached all the previous *i*<=-<=1 ranks is impossible. Vasya has just reached a new rank of *a*, but he dreams of holding the rank of *b*. Find for how many more years Vasya should serve in the army until he can finally realize his dream. Input Specification: The first input line contains an integer *n* (2<=≤<=*n*<=≤<=100). The second line contains *n*<=-<=1 integers *d**i* (1<=≤<=*d**i*<=≤<=100). The third input line contains two integers *a* and *b* (1<=≤<=*a*<=&lt;<=*b*<=≤<=*n*). The numbers on the lines are space-separated. Output Specification: Print the single number which is the number of years that Vasya needs to rise from rank *a* to rank *b*. Demo Input: ['3\n5 6\n1 2\n', '3\n5 6\n1 3\n'] Demo Output: ['5\n', '11\n'] Note: none
```python n=int(input()) c=list(map(int,input().split())) a,b=map(int,input().split()) print(sum(c[a-1:b-1])) ```
3.93
339
A
Helpful Maths
PROGRAMMING
800
[ "greedy", "implementation", "sortings", "strings" ]
null
null
Xenia the beginner mathematician is a third year student at elementary school. She is now learning the addition operation. The teacher has written down the sum of multiple numbers. Pupils should calculate the sum. To make the calculation easier, the sum only contains numbers 1, 2 and 3. Still, that isn't enough for Xenia. She is only beginning to count, so she can calculate a sum only if the summands follow in non-decreasing order. For example, she can't calculate sum 1+3+2+1 but she can calculate sums 1+1+2 and 3+3. You've got the sum that was written on the board. Rearrange the summans and print the sum in such a way that Xenia can calculate the sum.
The first line contains a non-empty string *s* — the sum Xenia needs to count. String *s* contains no spaces. It only contains digits and characters "+". Besides, string *s* is a correct sum of numbers 1, 2 and 3. String *s* is at most 100 characters long.
Print the new sum that Xenia can count.
[ "3+2+1\n", "1+1+3+1+3\n", "2\n" ]
[ "1+2+3\n", "1+1+1+3+3\n", "2\n" ]
none
500
[ { "input": "3+2+1", "output": "1+2+3" }, { "input": "1+1+3+1+3", "output": "1+1+1+3+3" }, { "input": "2", "output": "2" }, { "input": "2+2+1+1+3", "output": "1+1+2+2+3" }, { "input": "2+1+2+2+2+3+1+3+1+2", "output": "1+1+1+2+2+2+2+2+3+3" }, { "input": "1+2+1+2+2+2+2+1+3+3", "output": "1+1+1+2+2+2+2+2+3+3" }, { "input": "2+3+3+1+2+2+2+1+1+2+1+3+2+2+3+3+2+2+3+3+3+1+1+1+3+3+3+2+1+3+2+3+2+1+1+3+3+3+1+2+2+1+2+2+1+2+1+3+1+1", "output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3" }, { "input": "1", "output": "1" }, { "input": "2+1+2+2+1+3+2+3+1+1+2+1+2+2+3+1+1+3+3+3+2+2+3+2+2+2+1+2+1+2+3+2+2+2+1+3+1+3+3+3+1+2+1+2+2+2+2+3+1+1", "output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3" }, { "input": "2+2+1+1+1+3+1+1+3+3+2+3+1+3+1+1+3+1+1+2+2+2+2+1+2+1+2+1+1+1+3+1+3+2+3+2+3+3+1+1+1+2+3+2+1+3+1+3+2+2", "output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3" }, { "input": "3+2+3+3+2+2+1+2+1+2+3+1+2+3+2+3+2+1+2+2+1+1+2+2+3+2+1+3+1+1+3+2+2+2+2+3+3+2+2+3+3+1+1+2+3+3+2+3+3+3", "output": "1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3" }, { "input": "3", "output": "3" }, { "input": "1+1", "output": "1+1" }, { "input": "1+2", "output": "1+2" }, { "input": "1+3", "output": "1+3" }, { "input": "2+1", "output": "1+2" }, { "input": "2+2", "output": "2+2" }, { "input": "2+3", "output": "2+3" }, { "input": "3+1", "output": "1+3" }, { "input": "3+2", "output": "2+3" }, { "input": "3+3", "output": "3+3" } ]
1,694,690,827
2,147,483,647
Python 3
OK
TESTS
21
92
0
s = input() count_1 = s.count('1') count_2 = s.count('2') count_3 = s.count('3') sorted_digits = [str(i) for i in [1, 2, 3] for _ in range(eval(f'count_{i}'))] rearranged_sum = '+'.join(sorted_digits) print(rearranged_sum)
Title: Helpful Maths Time Limit: None seconds Memory Limit: None megabytes Problem Description: Xenia the beginner mathematician is a third year student at elementary school. She is now learning the addition operation. The teacher has written down the sum of multiple numbers. Pupils should calculate the sum. To make the calculation easier, the sum only contains numbers 1, 2 and 3. Still, that isn't enough for Xenia. She is only beginning to count, so she can calculate a sum only if the summands follow in non-decreasing order. For example, she can't calculate sum 1+3+2+1 but she can calculate sums 1+1+2 and 3+3. You've got the sum that was written on the board. Rearrange the summans and print the sum in such a way that Xenia can calculate the sum. Input Specification: The first line contains a non-empty string *s* — the sum Xenia needs to count. String *s* contains no spaces. It only contains digits and characters "+". Besides, string *s* is a correct sum of numbers 1, 2 and 3. String *s* is at most 100 characters long. Output Specification: Print the new sum that Xenia can count. Demo Input: ['3+2+1\n', '1+1+3+1+3\n', '2\n'] Demo Output: ['1+2+3\n', '1+1+1+3+3\n', '2\n'] Note: none
```python s = input() count_1 = s.count('1') count_2 = s.count('2') count_3 = s.count('3') sorted_digits = [str(i) for i in [1, 2, 3] for _ in range(eval(f'count_{i}'))] rearranged_sum = '+'.join(sorted_digits) print(rearranged_sum) ```
3
600
E
Lomsat gelral
PROGRAMMING
2,300
[ "data structures", "dfs and similar", "dsu", "trees" ]
null
null
You are given a rooted tree with root in vertex 1. Each vertex is coloured in some colour. Let's call colour *c* dominating in the subtree of vertex *v* if there are no other colours that appear in the subtree of vertex *v* more times than colour *c*. So it's possible that two or more colours will be dominating in the subtree of some vertex. The subtree of vertex *v* is the vertex *v* and all other vertices that contains vertex *v* in each path to the root. For each vertex *v* find the sum of all dominating colours in the subtree of vertex *v*.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of vertices in the tree. The second line contains *n* integers *c**i* (1<=≤<=*c**i*<=≤<=*n*), *c**i* — the colour of the *i*-th vertex. Each of the next *n*<=-<=1 lines contains two integers *x**j*,<=*y**j* (1<=≤<=*x**j*,<=*y**j*<=≤<=*n*) — the edge of the tree. The first vertex is the root of the tree.
Print *n* integers — the sums of dominating colours for each vertex.
[ "4\n1 2 3 4\n1 2\n2 3\n2 4\n", "15\n1 2 3 1 2 3 3 1 1 3 2 2 1 2 3\n1 2\n1 3\n1 4\n1 14\n1 15\n2 5\n2 6\n2 7\n3 8\n3 9\n3 10\n4 11\n4 12\n4 13\n" ]
[ "10 9 3 4\n", "6 5 4 3 2 3 3 1 1 3 2 2 1 2 3\n" ]
none
0
[ { "input": "4\n1 2 3 4\n1 2\n2 3\n2 4", "output": "10 9 3 4" }, { "input": "15\n1 2 3 1 2 3 3 1 1 3 2 2 1 2 3\n1 2\n1 3\n1 4\n1 14\n1 15\n2 5\n2 6\n2 7\n3 8\n3 9\n3 10\n4 11\n4 12\n4 13", "output": "6 5 4 3 2 3 3 1 1 3 2 2 1 2 3" } ]
1,663,856,147
2,147,483,647
Python 3
OK
TESTS
28
1,559
26,009,600
import sys readline = sys.stdin.readline write = sys.stdout.write def dsu_on_tree(N, G, Prop): order = [] prt = [-1]*N que = [0] pn = [-1]*N used = [0]*N used[0] = 1 while que: v = que.pop() for w in G[v]: if used[w]: continue used[w] = 1 que.append(w) prt[w] = v pn[v] = len(order) order.append(v) sz = [0]*N tmp_ps = [[i] for i in range(N)] h_ps = [] for v in reversed(order): p = prt[v] m_sz = 0 h = -1 s = 1 for w in G[v]: if p == w: continue if m_sz < sz[w]: m_sz = sz[w] h = w s += sz[w] if h != -1: tmp_ps[v] = tmp_ps[h] tmp_ps[v].append(v) for w in G[v]: if w == p or w == h: continue h_ps.append(tmp_ps[w]) sz[v] = s h_ps.append(tmp_ps[0]) ans = [-1]*N ph = Prop() for path in h_ps: h = -1 for v in path: p = prt[v] for w in G[v]: if w == p or w == h: continue for c in order[pn[w]:pn[w] + sz[w]]: ph.add(c) ph.add(v) ans[v] = ph.get(v) h = v for c in order[pn[h]:pn[h] + sz[h]]: ph.remove(c) return ans def solve(): N = int(readline()) *C, = map(int, readline().split()) G = [[] for i in range(N)] for i in range(N-1): x, y = map(int, readline().split()) G[x-1].append(y-1) G[y-1].append(x-1) class Prop: def __init__(self): self.ts = [0]*(N+1) self.cs = [0]*(N+1) self.mc = 0 def add(self, v): c = C[v] r = self.cs[c] if r != 0: self.ts[r] -= c self.ts[r+1] += c if self.mc < r+1: self.mc = r+1 self.cs[c] += 1 def remove(self, v): c = C[v] r = self.cs[c] #assert r > 0 self.ts[r] -= c if r != 1: self.ts[r-1] += c self.cs[c] -= 1 if self.ts[r] == 0: self.mc -= 1 def get(self, i): return self.ts[self.mc] ans = dsu_on_tree(N, G, Prop) write(" ".join(map(str, ans))) write("\n") solve()
Title: Lomsat gelral Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a rooted tree with root in vertex 1. Each vertex is coloured in some colour. Let's call colour *c* dominating in the subtree of vertex *v* if there are no other colours that appear in the subtree of vertex *v* more times than colour *c*. So it's possible that two or more colours will be dominating in the subtree of some vertex. The subtree of vertex *v* is the vertex *v* and all other vertices that contains vertex *v* in each path to the root. For each vertex *v* find the sum of all dominating colours in the subtree of vertex *v*. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of vertices in the tree. The second line contains *n* integers *c**i* (1<=≤<=*c**i*<=≤<=*n*), *c**i* — the colour of the *i*-th vertex. Each of the next *n*<=-<=1 lines contains two integers *x**j*,<=*y**j* (1<=≤<=*x**j*,<=*y**j*<=≤<=*n*) — the edge of the tree. The first vertex is the root of the tree. Output Specification: Print *n* integers — the sums of dominating colours for each vertex. Demo Input: ['4\n1 2 3 4\n1 2\n2 3\n2 4\n', '15\n1 2 3 1 2 3 3 1 1 3 2 2 1 2 3\n1 2\n1 3\n1 4\n1 14\n1 15\n2 5\n2 6\n2 7\n3 8\n3 9\n3 10\n4 11\n4 12\n4 13\n'] Demo Output: ['10 9 3 4\n', '6 5 4 3 2 3 3 1 1 3 2 2 1 2 3\n'] Note: none
```python import sys readline = sys.stdin.readline write = sys.stdout.write def dsu_on_tree(N, G, Prop): order = [] prt = [-1]*N que = [0] pn = [-1]*N used = [0]*N used[0] = 1 while que: v = que.pop() for w in G[v]: if used[w]: continue used[w] = 1 que.append(w) prt[w] = v pn[v] = len(order) order.append(v) sz = [0]*N tmp_ps = [[i] for i in range(N)] h_ps = [] for v in reversed(order): p = prt[v] m_sz = 0 h = -1 s = 1 for w in G[v]: if p == w: continue if m_sz < sz[w]: m_sz = sz[w] h = w s += sz[w] if h != -1: tmp_ps[v] = tmp_ps[h] tmp_ps[v].append(v) for w in G[v]: if w == p or w == h: continue h_ps.append(tmp_ps[w]) sz[v] = s h_ps.append(tmp_ps[0]) ans = [-1]*N ph = Prop() for path in h_ps: h = -1 for v in path: p = prt[v] for w in G[v]: if w == p or w == h: continue for c in order[pn[w]:pn[w] + sz[w]]: ph.add(c) ph.add(v) ans[v] = ph.get(v) h = v for c in order[pn[h]:pn[h] + sz[h]]: ph.remove(c) return ans def solve(): N = int(readline()) *C, = map(int, readline().split()) G = [[] for i in range(N)] for i in range(N-1): x, y = map(int, readline().split()) G[x-1].append(y-1) G[y-1].append(x-1) class Prop: def __init__(self): self.ts = [0]*(N+1) self.cs = [0]*(N+1) self.mc = 0 def add(self, v): c = C[v] r = self.cs[c] if r != 0: self.ts[r] -= c self.ts[r+1] += c if self.mc < r+1: self.mc = r+1 self.cs[c] += 1 def remove(self, v): c = C[v] r = self.cs[c] #assert r > 0 self.ts[r] -= c if r != 1: self.ts[r-1] += c self.cs[c] -= 1 if self.ts[r] == 0: self.mc -= 1 def get(self, i): return self.ts[self.mc] ans = dsu_on_tree(N, G, Prop) write(" ".join(map(str, ans))) write("\n") solve() ```
3
721
B
Passwords
PROGRAMMING
1,100
[ "implementation", "math", "sortings", "strings" ]
null
null
Vanya is managed to enter his favourite site Codehorses. Vanya uses *n* distinct passwords for sites at all, however he can't remember which one exactly he specified during Codehorses registration. Vanya will enter passwords in order of non-decreasing their lengths, and he will enter passwords of same length in arbitrary order. Just when Vanya will have entered the correct password, he is immediately authorized on the site. Vanya will not enter any password twice. Entering any passwords takes one second for Vanya. But if Vanya will enter wrong password *k* times, then he is able to make the next try only 5 seconds after that. Vanya makes each try immediately, that is, at each moment when Vanya is able to enter password, he is doing that. Determine how many seconds will Vanya need to enter Codehorses in the best case for him (if he spends minimum possible number of second) and in the worst case (if he spends maximum possible amount of seconds).
The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100) — the number of Vanya's passwords and the number of failed tries, after which the access to the site is blocked for 5 seconds. The next *n* lines contains passwords, one per line — pairwise distinct non-empty strings consisting of latin letters and digits. Each password length does not exceed 100 characters. The last line of the input contains the Vanya's Codehorses password. It is guaranteed that the Vanya's Codehorses password is equal to some of his *n* passwords.
Print two integers — time (in seconds), Vanya needs to be authorized to Codehorses in the best case for him and in the worst case respectively.
[ "5 2\ncba\nabc\nbb1\nabC\nABC\nabc\n", "4 100\n11\n22\n1\n2\n22\n" ]
[ "1 15\n", "3 4\n" ]
Consider the first sample case. As soon as all passwords have the same length, Vanya can enter the right password at the first try as well as at the last try. If he enters it at the first try, he spends exactly 1 second. Thus in the best case the answer is 1. If, at the other hand, he enters it at the last try, he enters another 4 passwords before. He spends 2 seconds to enter first 2 passwords, then he waits 5 seconds as soon as he made 2 wrong tries. Then he spends 2 more seconds to enter 2 wrong passwords, again waits 5 seconds and, finally, enters the correct password spending 1 more second. In summary in the worst case he is able to be authorized in 15 seconds. Consider the second sample case. There is no way of entering passwords and get the access to the site blocked. As soon as the required password has length of 2, Vanya enters all passwords of length 1 anyway, spending 2 seconds for that. Then, in the best case, he immediately enters the correct password and the answer for the best case is 3, but in the worst case he enters wrong password of length 2 and only then the right one, spending 4 seconds at all.
1,000
[ { "input": "5 2\ncba\nabc\nbb1\nabC\nABC\nabc", "output": "1 15" }, { "input": "4 100\n11\n22\n1\n2\n22", "output": "3 4" }, { "input": "1 1\na1\na1", "output": "1 1" }, { "input": "1 100\na1\na1", "output": "1 1" }, { "input": "2 1\nabc\nAbc\nAbc", "output": "1 7" }, { "input": "2 2\nabc\nAbc\nabc", "output": "1 2" }, { "input": "2 1\nab\nabc\nab", "output": "1 1" }, { "input": "2 2\nab\nabc\nab", "output": "1 1" }, { "input": "2 1\nab\nabc\nabc", "output": "7 7" }, { "input": "2 2\nab\nabc\nabc", "output": "2 2" }, { "input": "10 3\nOIbV1igi\no\nZS\nQM\n9woLzI\nWreboD\nQ7yl\nA5Rb\nS9Lno72TkP\nfT97o\no", "output": "1 1" }, { "input": "10 3\nHJZNMsT\nLaPcH2C\nlrhqIO\n9cxw\noTC1XwjW\nGHL9Ul6\nUyIs\nPuzwgR4ZKa\nyIByoKR5\nd3QA\nPuzwgR4ZKa", "output": "25 25" }, { "input": "20 5\nvSyC787KlIL8kZ2Uv5sw\nWKWOP\n7i8J3E8EByIq\nNW2VyGweL\nmyR2sRNu\nmXusPP0\nf4jgGxra\n4wHRzRhOCpEt\npPz9kybGb\nOtSpePCRoG5nkjZ2VxRy\nwHYsSttWbJkg\nKBOP9\nQfiOiFyHPPsw3GHo8J8\nxB8\nqCpehZEeEhdq\niOLjICK6\nQ91\nHmCsfMGTFKoFFnv238c\nJKjhg\ngkEUh\nKBOP9", "output": "3 11" }, { "input": "15 2\nw6S9WyU\nMVh\nkgUhQHW\nhGQNOF\nUuym\n7rGQA\nBM8vLPRB\n9E\nDs32U\no\nz1aV2C5T\n8\nzSXjrqQ\n1FO\n3kIt\nBM8vLPRB", "output": "44 50" }, { "input": "20 2\ni\n5Rp6\nE4vsr\nSY\nORXx\nh13C\nk6tzC\ne\nN\nKQf4C\nWZcdL\ndiA3v\n0InQT\nuJkAr\nGCamp\nBuIRd\nY\nM\nxZYx7\n0a5A\nWZcdL", "output": "36 65" }, { "input": "20 2\naWLQ6\nSgQ9r\nHcPdj\n2BNaO\n3TjNb\nnvwFM\nqsKt7\nFnb6N\nLoc0p\njxuLq\nBKAjf\nEKgZB\nBfOSa\nsMIvr\nuIWcR\nIura3\nLAqSf\ntXq3G\n8rQ8I\n8otAO\nsMIvr", "output": "1 65" }, { "input": "20 15\n0ZpQugVlN7\nm0SlKGnohN\nRFXTqhNGcn\n1qm2ZbB\nQXtJWdf78P\nbc2vH\nP21dty2Z1P\nm2c71LFhCk\n23EuP1Dvh3\nanwri5RhQN\n55v6HYv288\n1u5uKOjM5r\n6vg0GC1\nDAPYiA3ns1\nUZaaJ3Gmnk\nwB44x7V4Zi\n4hgB2oyU8P\npYFQpy8gGK\ndbz\nBv\n55v6HYv288", "output": "6 25" }, { "input": "3 1\na\nb\naa\naa", "output": "13 13" }, { "input": "6 3\nab\nac\nad\nabc\nabd\nabe\nabc", "output": "9 11" }, { "input": "4 2\n1\n2\n11\n22\n22", "output": "8 9" }, { "input": "2 1\n1\n12\n12", "output": "7 7" }, { "input": "3 1\nab\nabc\nabd\nabc", "output": "7 13" }, { "input": "2 1\na\nab\nab", "output": "7 7" }, { "input": "5 2\na\nb\nc\nab\naa\naa", "output": "9 15" }, { "input": "6 1\n1\n2\n11\n22\n111\n2222\n22", "output": "13 19" }, { "input": "3 1\n1\n2\n11\n11", "output": "13 13" }, { "input": "10 4\na\nb\nc\nd\ne\nf\nab\ncd\nac\nad\nac", "output": "12 20" }, { "input": "4 2\na\nb\nc\nd\na", "output": "1 9" }, { "input": "4 1\n1\n2\n3\n4\n4", "output": "1 19" }, { "input": "5 1\na\nb\nc\nd\nef\nef", "output": "25 25" }, { "input": "6 4\n1\n2\n22\n33\n44\n555\n555", "output": "11 11" }, { "input": "5 2\na\nb\nc\nd\nab\nab", "output": "15 15" }, { "input": "6 2\n1\n2\n3\n4\n5\n23\n23", "output": "16 16" }, { "input": "4 2\na\nb\naa\nbb\naa", "output": "8 9" }, { "input": "5 4\na\nbb\ncc\ndd\nee\nbb", "output": "2 10" }, { "input": "4 1\na\nb\nc\nab\nab", "output": "19 19" }, { "input": "7 100\na\nb\nc\nd\ne\ng\nab\nab", "output": "7 7" }, { "input": "6 1\na\nb\nc\nd\ne\naa\naa", "output": "31 31" }, { "input": "4 1\na\nas\nasd\nasde\nasde", "output": "19 19" }, { "input": "5 2\n1\n2\n3\n11\n22\n22", "output": "9 15" }, { "input": "10 2\na\nb\nc\nd\nee\nff\ngg\nhh\nii\njj\nii", "output": "15 30" }, { "input": "3 1\na\nab\nbc\nab", "output": "7 13" }, { "input": "6 4\na\nb\nc\nbb\nbc\ncc\ncc", "output": "4 11" } ]
1,613,734,938
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
2
77
0
n,k=map(int,input().split()) a=[] for i in range(n): s=input() a.append(s) a=sorted(a,key=lambda x:len(x)) minCount=0 minFinalCount=0 maxCount=0 maxFinalCount=0 password = input() ans1=[] ans2=[] for i in range(len(a)): if(len(a[i])<len(password)): minCount=minCount+1 if(minCount%k==0): ans1.append(1) for i in range(len(a)): if(len(a[i])<=len(password)): maxCount=maxCount+1 if(maxCount%k==0): ans2.append(1) print(minCount+(len(ans1)*5)+1,maxCount+(len(ans2)*5))
Title: Passwords Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vanya is managed to enter his favourite site Codehorses. Vanya uses *n* distinct passwords for sites at all, however he can't remember which one exactly he specified during Codehorses registration. Vanya will enter passwords in order of non-decreasing their lengths, and he will enter passwords of same length in arbitrary order. Just when Vanya will have entered the correct password, he is immediately authorized on the site. Vanya will not enter any password twice. Entering any passwords takes one second for Vanya. But if Vanya will enter wrong password *k* times, then he is able to make the next try only 5 seconds after that. Vanya makes each try immediately, that is, at each moment when Vanya is able to enter password, he is doing that. Determine how many seconds will Vanya need to enter Codehorses in the best case for him (if he spends minimum possible number of second) and in the worst case (if he spends maximum possible amount of seconds). Input Specification: The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100) — the number of Vanya's passwords and the number of failed tries, after which the access to the site is blocked for 5 seconds. The next *n* lines contains passwords, one per line — pairwise distinct non-empty strings consisting of latin letters and digits. Each password length does not exceed 100 characters. The last line of the input contains the Vanya's Codehorses password. It is guaranteed that the Vanya's Codehorses password is equal to some of his *n* passwords. Output Specification: Print two integers — time (in seconds), Vanya needs to be authorized to Codehorses in the best case for him and in the worst case respectively. Demo Input: ['5 2\ncba\nabc\nbb1\nabC\nABC\nabc\n', '4 100\n11\n22\n1\n2\n22\n'] Demo Output: ['1 15\n', '3 4\n'] Note: Consider the first sample case. As soon as all passwords have the same length, Vanya can enter the right password at the first try as well as at the last try. If he enters it at the first try, he spends exactly 1 second. Thus in the best case the answer is 1. If, at the other hand, he enters it at the last try, he enters another 4 passwords before. He spends 2 seconds to enter first 2 passwords, then he waits 5 seconds as soon as he made 2 wrong tries. Then he spends 2 more seconds to enter 2 wrong passwords, again waits 5 seconds and, finally, enters the correct password spending 1 more second. In summary in the worst case he is able to be authorized in 15 seconds. Consider the second sample case. There is no way of entering passwords and get the access to the site blocked. As soon as the required password has length of 2, Vanya enters all passwords of length 1 anyway, spending 2 seconds for that. Then, in the best case, he immediately enters the correct password and the answer for the best case is 3, but in the worst case he enters wrong password of length 2 and only then the right one, spending 4 seconds at all.
```python n,k=map(int,input().split()) a=[] for i in range(n): s=input() a.append(s) a=sorted(a,key=lambda x:len(x)) minCount=0 minFinalCount=0 maxCount=0 maxFinalCount=0 password = input() ans1=[] ans2=[] for i in range(len(a)): if(len(a[i])<len(password)): minCount=minCount+1 if(minCount%k==0): ans1.append(1) for i in range(len(a)): if(len(a[i])<=len(password)): maxCount=maxCount+1 if(maxCount%k==0): ans2.append(1) print(minCount+(len(ans1)*5)+1,maxCount+(len(ans2)*5)) ```
0
393
A
Nineteen
PROGRAMMING
0
[]
null
null
Alice likes word "nineteen" very much. She has a string *s* and wants the string to contain as many such words as possible. For that reason she can rearrange the letters of the string. For example, if she has string "xiineteenppnnnewtnee", she can get string "xnineteenppnineteenw", containing (the occurrences marked) two such words. More formally, word "nineteen" occurs in the string the number of times you can read it starting from some letter of the string. Of course, you shouldn't skip letters. Help her to find the maximum number of "nineteen"s that she can get in her string.
The first line contains a non-empty string *s*, consisting only of lowercase English letters. The length of string *s* doesn't exceed 100.
Print a single integer — the maximum number of "nineteen"s that she can get in her string.
[ "nniinneetteeeenn\n", "nneteenabcnneteenabcnneteenabcnneteenabcnneteenabcii\n", "nineteenineteen\n" ]
[ "2", "2", "2" ]
none
500
[ { "input": "nniinneetteeeenn", "output": "2" }, { "input": "nneteenabcnneteenabcnneteenabcnneteenabcnneteenabcii", "output": "2" }, { "input": "nineteenineteen", "output": "2" }, { "input": "nssemsnnsitjtihtthij", "output": "0" }, { "input": "eehihnttehtherjsihihnrhimihrjinjiehmtjimnrss", "output": "1" }, { "input": "rrrteiehtesisntnjirtitijnjjjthrsmhtneirjimniemmnrhirssjnhetmnmjejjnjjritjttnnrhnjs", "output": "2" }, { "input": "mmrehtretseihsrjmtsenemniehssnisijmsnntesismmtmthnsieijjjnsnhisi", "output": "2" }, { "input": "hshretttnntmmiertrrnjihnrmshnthirnnirrheinnnrjiirshthsrsijtrrtrmnjrrjnresnintnmtrhsnjrinsseimn", "output": "1" }, { "input": "snmmensntritetnmmmerhhrmhnehehtesmhthseemjhmnrti", "output": "2" }, { "input": "rmeetriiitijmrenmeiijt", "output": "0" }, { "input": "ihimeitimrmhriemsjhrtjtijtesmhemnmmrsetmjttthtjhnnmirtimne", "output": "1" }, { "input": "rhtsnmnesieernhstjnmmirthhieejsjttsiierhihhrrijhrrnejsjer", "output": "2" }, { "input": "emmtjsjhretehmiiiestmtmnmissjrstnsnjmhimjmststsitemtttjrnhsrmsenjtjim", "output": "2" }, { "input": "nmehhjrhirniitshjtrrtitsjsntjhrstjehhhrrerhemehjeermhmhjejjesnhsiirheijjrnrjmminneeehtm", "output": "3" }, { "input": "hsntijjetmehejtsitnthietssmeenjrhhetsnjrsethisjrtrhrierjtmimeenjnhnijeesjttrmn", "output": "3" }, { "input": "jnirirhmirmhisemittnnsmsttesjhmjnsjsmntisheneiinsrjsjirnrmnjmjhmistntersimrjni", "output": "1" }, { "input": "neithjhhhtmejjnmieishethmtetthrienrhjmjenrmtejerernmthmsnrthhtrimmtmshm", "output": "2" }, { "input": "sithnrsnemhijsnjitmijjhejjrinejhjinhtisttteermrjjrtsirmessejireihjnnhhemiirmhhjeet", "output": "3" }, { "input": "jrjshtjstteh", "output": "0" }, { "input": "jsihrimrjnnmhttmrtrenetimemjnshnimeiitmnmjishjjneisesrjemeshjsijithtn", "output": "2" }, { "input": "hhtjnnmsemermhhtsstejehsssmnesereehnnsnnremjmmieethmirjjhn", "output": "2" }, { "input": "tmnersmrtsehhntsietttrehrhneiireijnijjejmjhei", "output": "1" }, { "input": "mtstiresrtmesritnjriirehtermtrtseirtjrhsejhhmnsineinsjsin", "output": "2" }, { "input": "ssitrhtmmhtnmtreijteinimjemsiiirhrttinsnneshintjnin", "output": "1" }, { "input": "rnsrsmretjiitrjthhritniijhjmm", "output": "0" }, { "input": "hntrteieimrimteemenserntrejhhmijmtjjhnsrsrmrnsjseihnjmehtthnnithirnhj", "output": "3" }, { "input": "nmmtsmjrntrhhtmimeresnrinstjnhiinjtnjjjnthsintmtrhijnrnmtjihtinmni", "output": "0" }, { "input": "eihstiirnmteejeehimttrijittjsntjejmessstsemmtristjrhenithrrsssihnthheehhrnmimssjmejjreimjiemrmiis", "output": "2" }, { "input": "srthnimimnemtnmhsjmmmjmmrsrisehjseinemienntetmitjtnnneseimhnrmiinsismhinjjnreehseh", "output": "3" }, { "input": "etrsmrjehntjjimjnmsresjnrthjhehhtreiijjminnheeiinseenmmethiemmistsei", "output": "3" }, { "input": "msjeshtthsieshejsjhsnhejsihisijsertenrshhrthjhiirijjneinjrtrmrs", "output": "1" }, { "input": "mehsmstmeejrhhsjihntjmrjrihssmtnensttmirtieehimj", "output": "1" }, { "input": "mmmsermimjmrhrhejhrrejermsneheihhjemnehrhihesnjsehthjsmmjeiejmmnhinsemjrntrhrhsmjtttsrhjjmejj", "output": "2" }, { "input": "rhsmrmesijmmsnsmmhertnrhsetmisshriirhetmjihsmiinimtrnitrseii", "output": "1" }, { "input": "iihienhirmnihh", "output": "0" }, { "input": "ismtthhshjmhisssnmnhe", "output": "0" }, { "input": "rhsmnrmhejshinnjrtmtsssijimimethnm", "output": "0" }, { "input": "eehnshtiriejhiirntminrirnjihmrnittnmmnjejjhjtennremrnssnejtntrtsiejjijisermj", "output": "3" }, { "input": "rnhmeesnhttrjintnhnrhristjrthhrmehrhjmjhjehmstrijemjmmistes", "output": "2" }, { "input": "ssrmjmjeeetrnimemrhimes", "output": "0" }, { "input": "n", "output": "0" }, { "input": "ni", "output": "0" }, { "input": "nine", "output": "0" }, { "input": "nineteenineteenineteenineteenineteenineteenineteenineteenineteenineteenineteenineteenineteen", "output": "13" }, { "input": "ninetee", "output": "0" }, { "input": "mzbmweyydiadtlcouegmdbyfwurpwbpuvhifnuapwynd", "output": "0" }, { "input": "zenudggmyopddhszhrbmftgzmjorabhgojdtfnzxjkayjlkgczsyshczutkdch", "output": "0" }, { "input": "rtzxovxqfapkdmelxiyjroohufhbakpmmvaxq", "output": "0" }, { "input": "zninetneeineteeniwnteeennieteenineteenineteenineteenineteenineteenineteenineteenineteeninetzeenz", "output": "13" }, { "input": "nnnnnnniiiiiiiiiiiitttttttttteeeeeeeeeeeeeeeeee", "output": "3" }, { "input": "ttttiiiieeeeeeeeeeeennnnnnnnn", "output": "4" }, { "input": "ttttttttteeeeeeeeeeeeeeeeeeeeeiiiiiiiiiiiinnnnnnn", "output": "3" }, { "input": "nnnnnnnnnneeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeiiiiiiiiiiiiiiiiiiiitttttttttttttttttttt", "output": "4" }, { "input": "eeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeeiiiiiiiiiiiiiiiiittttttttttttttttnnnnnnn", "output": "3" }, { "input": "nineeen", "output": "0" }, { "input": "nineteeeeeeeeeeeeeeeeettttttttttttttttttiiiiiiiiiiiiiiiiii", "output": "0" }, { "input": "nineteenieteenieteenieteenieteenieteenieteen", "output": "4" }, { "input": "nineteenineteenineteenineteenineteen", "output": "5" } ]
1,606,292,839
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
18
139
0
st = input() nn = st.count('n') ne = st.count('e') ni = st.count('i') nt = st.count('t') print(min((nn - 1) // 2, ne // 3, ni, nt))
Title: Nineteen Time Limit: None seconds Memory Limit: None megabytes Problem Description: Alice likes word "nineteen" very much. She has a string *s* and wants the string to contain as many such words as possible. For that reason she can rearrange the letters of the string. For example, if she has string "xiineteenppnnnewtnee", she can get string "xnineteenppnineteenw", containing (the occurrences marked) two such words. More formally, word "nineteen" occurs in the string the number of times you can read it starting from some letter of the string. Of course, you shouldn't skip letters. Help her to find the maximum number of "nineteen"s that she can get in her string. Input Specification: The first line contains a non-empty string *s*, consisting only of lowercase English letters. The length of string *s* doesn't exceed 100. Output Specification: Print a single integer — the maximum number of "nineteen"s that she can get in her string. Demo Input: ['nniinneetteeeenn\n', 'nneteenabcnneteenabcnneteenabcnneteenabcnneteenabcii\n', 'nineteenineteen\n'] Demo Output: ['2', '2', '2'] Note: none
```python st = input() nn = st.count('n') ne = st.count('e') ni = st.count('i') nt = st.count('t') print(min((nn - 1) // 2, ne // 3, ni, nt)) ```
0
25
D
Roads not only in Berland
PROGRAMMING
1,900
[ "dsu", "graphs", "trees" ]
D. Roads not only in Berland
2
256
Berland Government decided to improve relations with neighboring countries. First of all, it was decided to build new roads so that from each city of Berland and neighboring countries it became possible to reach all the others. There are *n* cities in Berland and neighboring countries in total and exactly *n*<=-<=1 two-way roads. Because of the recent financial crisis, the Berland Government is strongly pressed for money, so to build a new road it has to close some of the existing ones. Every day it is possible to close one existing road and immediately build a new one. Your task is to determine how many days would be needed to rebuild roads so that from each city it became possible to reach all the others, and to draw a plan of closure of old roads and building of new ones.
The first line contains integer *n* (2<=≤<=*n*<=≤<=1000) — amount of cities in Berland and neighboring countries. Next *n*<=-<=1 lines contain the description of roads. Each road is described by two space-separated integers *a**i*, *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*,<=*a**i*<=≠<=*b**i*) — pair of cities, which the road connects. It can't be more than one road between a pair of cities. No road connects the city with itself.
Output the answer, number *t* — what is the least amount of days needed to rebuild roads so that from each city it became possible to reach all the others. Then output *t* lines — the plan of closure of old roads and building of new ones. Each line should describe one day in the format i j u v — it means that road between cities i and j became closed and a new road between cities u and v is built. Cities are numbered from 1. If the answer is not unique, output any.
[ "2\n1 2\n", "7\n1 2\n2 3\n3 1\n4 5\n5 6\n6 7\n" ]
[ "0\n", "1\n3 1 3 7\n" ]
none
0
[ { "input": "2\n1 2", "output": "0" }, { "input": "7\n1 2\n2 3\n3 1\n4 5\n5 6\n6 7", "output": "1\n3 1 3 7" }, { "input": "3\n3 2\n1 2", "output": "0" }, { "input": "3\n3 1\n3 2", "output": "0" }, { "input": "4\n1 4\n3 1\n3 4", "output": "1\n3 4 2 4" }, { "input": "5\n4 1\n4 3\n5 3\n2 4", "output": "0" }, { "input": "6\n5 2\n5 3\n1 4\n3 1\n5 6", "output": "0" }, { "input": "10\n5 9\n8 5\n7 6\n7 9\n3 9\n2 1\n7 2\n3 6\n7 1", "output": "2\n3 6 1 4\n7 1 4 10" }, { "input": "21\n7 15\n13 1\n14 3\n4 10\n2 3\n16 18\n17 20\n16 20\n8 4\n3 12\n2 17\n13 11\n16 1\n13 2\n13 5\n8 9\n6 14\n3 17\n16 9\n13 8", "output": "3\n13 2 9 15\n3 17 15 19\n13 8 19 21" }, { "input": "39\n6 13\n15 39\n10 35\n31 28\n4 21\n12 39\n3 7\n3 13\n6 1\n5 14\n36 28\n12 15\n18 38\n30 29\n19 34\n36 16\n20 22\n8 13\n38 32\n26 39\n21 37\n1 7\n15 27\n12 26\n8 3\n6 14\n29 2\n25 23\n32 21\n5 16\n32 25\n6 8\n13 10\n23 30\n34 37\n29 33\n28 14\n36 5", "output": "7\n12 15 9 11\n1 7 11 17\n12 26 17 22\n8 3 22 24\n6 8 24 27\n28 14 27 33\n36 5 33 35" }, { "input": "60\n17 34\n46 22\n50 44\n46 33\n41 21\n31 33\n48 6\n38 19\n35 60\n2 24\n49 29\n7 53\n34 1\n19 55\n32 1\n31 42\n27 28\n4 53\n6 50\n21 34\n1 10\n12 36\n54 8\n16 13\n51 43\n45 51\n54 20\n13 53\n34 33\n49 33\n51 11\n59 34\n15 5\n59 28\n30 39\n13 30\n58 4\n34 14\n3 9\n19 34\n4 18\n26 48\n56 54\n3 43\n57 25\n3 41\n35 3\n48 44\n19 13\n54 1\n23 31\n59 47\n5 1\n46 40\n6 26\n20 25\n37 5\n17 24\n20 52", "output": "2\n48 44 36 44\n6 26 44 52" } ]
1,554,817,808
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
186
204,800
class BerlandRoads(): def __init__(self, n, edges): self.n = n self.edges = edges self.parents = [i for i in range(n)] self.sizes = [1 for i in range(n)] def find(self, v): while self.parents[v] != v: temp = self.parents[v] self.parents[v] = self.parents[temp] v = temp return v def union(self, u, v): u = self.find(u) v = self.find(v) if u == v: return False else: if self.sizes[u] > self.sizes[v]: self.parents[v] = u self.sizes[u] += self.sizes[v] else: self.parents[u] = v self.sizes[v] += self.sizes[u] return True def build_roads(self): rem_edges = [] for u,v in self.edges: if not self.union(u-1,v-1): rem_edges.append((u,v)) tree_reps = [] for i in range(n): if self.parents[i] == i: tree_reps.append(i) for i in range(len(rem_edges)): vals = [rem_edges[i][0],rem_edges[i][1],tree_reps[i], tree_reps[i+1]] print(*vals) n = int(input()) edges = [] for i in range(n-1): u,v = list(map(int,input().strip(' ').split(' '))) edges.append((u,v)) br = BerlandRoads(n, edges) br.build_roads()
Title: Roads not only in Berland Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Berland Government decided to improve relations with neighboring countries. First of all, it was decided to build new roads so that from each city of Berland and neighboring countries it became possible to reach all the others. There are *n* cities in Berland and neighboring countries in total and exactly *n*<=-<=1 two-way roads. Because of the recent financial crisis, the Berland Government is strongly pressed for money, so to build a new road it has to close some of the existing ones. Every day it is possible to close one existing road and immediately build a new one. Your task is to determine how many days would be needed to rebuild roads so that from each city it became possible to reach all the others, and to draw a plan of closure of old roads and building of new ones. Input Specification: The first line contains integer *n* (2<=≤<=*n*<=≤<=1000) — amount of cities in Berland and neighboring countries. Next *n*<=-<=1 lines contain the description of roads. Each road is described by two space-separated integers *a**i*, *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*,<=*a**i*<=≠<=*b**i*) — pair of cities, which the road connects. It can't be more than one road between a pair of cities. No road connects the city with itself. Output Specification: Output the answer, number *t* — what is the least amount of days needed to rebuild roads so that from each city it became possible to reach all the others. Then output *t* lines — the plan of closure of old roads and building of new ones. Each line should describe one day in the format i j u v — it means that road between cities i and j became closed and a new road between cities u and v is built. Cities are numbered from 1. If the answer is not unique, output any. Demo Input: ['2\n1 2\n', '7\n1 2\n2 3\n3 1\n4 5\n5 6\n6 7\n'] Demo Output: ['0\n', '1\n3 1 3 7\n'] Note: none
```python class BerlandRoads(): def __init__(self, n, edges): self.n = n self.edges = edges self.parents = [i for i in range(n)] self.sizes = [1 for i in range(n)] def find(self, v): while self.parents[v] != v: temp = self.parents[v] self.parents[v] = self.parents[temp] v = temp return v def union(self, u, v): u = self.find(u) v = self.find(v) if u == v: return False else: if self.sizes[u] > self.sizes[v]: self.parents[v] = u self.sizes[u] += self.sizes[v] else: self.parents[u] = v self.sizes[v] += self.sizes[u] return True def build_roads(self): rem_edges = [] for u,v in self.edges: if not self.union(u-1,v-1): rem_edges.append((u,v)) tree_reps = [] for i in range(n): if self.parents[i] == i: tree_reps.append(i) for i in range(len(rem_edges)): vals = [rem_edges[i][0],rem_edges[i][1],tree_reps[i], tree_reps[i+1]] print(*vals) n = int(input()) edges = [] for i in range(n-1): u,v = list(map(int,input().strip(' ').split(' '))) edges.append((u,v)) br = BerlandRoads(n, edges) br.build_roads() ```
0
489
B
BerSU Ball
PROGRAMMING
1,200
[ "dfs and similar", "dp", "graph matchings", "greedy", "sortings", "two pointers" ]
null
null
The Berland State University is hosting a ballroom dance in celebration of its 100500-th anniversary! *n* boys and *m* girls are already busy rehearsing waltz, minuet, polonaise and quadrille moves. We know that several boy&amp;girl pairs are going to be invited to the ball. However, the partners' dancing skill in each pair must differ by at most one. For each boy, we know his dancing skills. Similarly, for each girl we know her dancing skills. Write a code that can determine the largest possible number of pairs that can be formed from *n* boys and *m* girls.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=100) — the number of boys. The second line contains sequence *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100), where *a**i* is the *i*-th boy's dancing skill. Similarly, the third line contains an integer *m* (1<=≤<=*m*<=≤<=100) — the number of girls. The fourth line contains sequence *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**j*<=≤<=100), where *b**j* is the *j*-th girl's dancing skill.
Print a single number — the required maximum possible number of pairs.
[ "4\n1 4 6 2\n5\n5 1 5 7 9\n", "4\n1 2 3 4\n4\n10 11 12 13\n", "5\n1 1 1 1 1\n3\n1 2 3\n" ]
[ "3\n", "0\n", "2\n" ]
none
1,000
[ { "input": "4\n1 4 6 2\n5\n5 1 5 7 9", "output": "3" }, { "input": "4\n1 2 3 4\n4\n10 11 12 13", "output": "0" }, { "input": "5\n1 1 1 1 1\n3\n1 2 3", "output": "2" }, { "input": "1\n1\n1\n1", "output": "1" }, { "input": "2\n1 10\n1\n9", "output": "1" }, { "input": "4\n4 5 4 4\n5\n5 3 4 2 4", "output": "4" }, { "input": "1\n2\n1\n1", "output": "1" }, { "input": "1\n3\n2\n3 2", "output": "1" }, { "input": "1\n4\n3\n4 4 4", "output": "1" }, { "input": "1\n2\n4\n3 1 4 2", "output": "1" }, { "input": "1\n4\n5\n2 5 5 3 1", "output": "1" }, { "input": "2\n2 2\n1\n2", "output": "1" }, { "input": "2\n4 2\n2\n4 4", "output": "1" }, { "input": "2\n4 1\n3\n2 3 2", "output": "2" }, { "input": "2\n4 3\n4\n5 5 5 6", "output": "1" }, { "input": "2\n5 7\n5\n4 6 7 2 5", "output": "2" }, { "input": "3\n1 2 3\n1\n1", "output": "1" }, { "input": "3\n5 4 5\n2\n2 1", "output": "0" }, { "input": "3\n6 3 4\n3\n4 5 2", "output": "3" }, { "input": "3\n7 7 7\n4\n2 7 2 4", "output": "1" }, { "input": "3\n1 3 3\n5\n1 3 4 1 2", "output": "3" }, { "input": "4\n1 2 1 3\n1\n4", "output": "1" }, { "input": "4\n4 4 6 6\n2\n2 1", "output": "0" }, { "input": "4\n3 1 1 1\n3\n1 6 7", "output": "1" }, { "input": "4\n2 5 1 2\n4\n2 3 3 1", "output": "3" }, { "input": "4\n9 1 7 1\n5\n9 9 9 8 4", "output": "2" }, { "input": "5\n1 6 5 5 6\n1\n2", "output": "1" }, { "input": "5\n5 2 4 5 6\n2\n7 4", "output": "2" }, { "input": "5\n4 1 3 1 4\n3\n6 3 6", "output": "1" }, { "input": "5\n5 2 3 1 4\n4\n1 3 1 7", "output": "3" }, { "input": "5\n9 8 10 9 10\n5\n2 1 5 4 6", "output": "0" }, { "input": "1\n48\n100\n76 90 78 44 29 30 35 85 98 38 27 71 51 100 15 98 78 45 85 26 48 66 98 71 45 85 83 77 92 17 23 95 98 43 11 15 39 53 71 25 74 53 77 41 39 35 66 4 92 44 44 55 35 87 91 6 44 46 57 24 46 82 15 44 81 40 65 17 64 24 42 52 13 12 64 82 26 7 66 85 93 89 58 92 92 77 37 91 47 73 35 69 31 22 60 60 97 21 52 6", "output": "1" }, { "input": "100\n9 90 66 62 60 9 10 97 47 73 26 81 97 60 80 84 19 4 25 77 19 17 91 12 1 27 15 54 18 45 71 79 96 90 51 62 9 13 92 34 7 52 55 8 16 61 96 12 52 38 50 9 60 3 30 3 48 46 77 64 90 35 16 16 21 42 67 70 23 19 90 14 50 96 98 92 82 62 7 51 93 38 84 82 37 78 99 3 20 69 44 96 94 71 3 55 27 86 92 82\n1\n58", "output": "0" }, { "input": "10\n20 87 3 39 20 20 8 40 70 51\n100\n69 84 81 84 35 97 69 68 63 97 85 80 95 58 70 91 100 65 72 80 41 87 87 87 22 49 96 96 78 96 97 56 90 31 62 98 89 74 100 86 95 88 66 54 93 62 41 60 95 79 29 69 63 70 52 63 87 58 54 52 48 57 26 75 39 61 98 78 52 73 99 49 74 50 59 90 31 97 16 85 63 72 81 68 75 59 70 67 73 92 10 88 57 95 3 71 80 95 84 96", "output": "6" }, { "input": "100\n10 10 9 18 56 64 92 66 54 42 66 65 58 5 74 68 80 57 58 30 58 69 70 13 38 19 34 63 38 17 26 24 66 83 48 77 44 37 78 97 13 90 51 56 60 23 49 32 14 86 90 100 13 14 52 69 85 95 81 53 5 3 91 66 2 64 45 59 7 30 80 42 61 82 70 10 62 82 5 34 50 28 24 47 85 68 27 50 24 61 76 17 63 24 3 67 83 76 42 60\n10\n66 74 40 67 28 82 99 57 93 64", "output": "9" }, { "input": "100\n4 1 1 1 3 3 2 5 1 2 1 2 1 1 1 6 1 3 1 1 1 1 2 4 1 1 4 2 2 8 2 2 1 8 2 4 3 3 8 1 3 2 3 2 1 3 8 2 2 3 1 1 2 2 5 1 4 3 1 1 3 1 3 1 7 1 1 1 3 2 1 2 2 3 7 2 1 4 3 2 1 1 3 4 1 1 3 5 1 8 4 1 1 1 3 10 2 2 1 2\n100\n1 1 5 2 13 2 2 3 6 12 1 13 8 1 1 16 1 1 5 6 2 4 6 4 2 7 4 1 7 3 3 9 5 3 1 7 4 1 6 6 8 2 2 5 2 3 16 3 6 3 8 6 1 8 1 2 6 5 3 4 11 3 4 8 2 13 2 5 2 7 3 3 1 8 1 4 4 2 4 7 7 1 5 7 6 3 6 9 1 1 1 3 1 11 5 2 5 11 13 1", "output": "76" }, { "input": "4\n1 6 9 15\n2\n5 8", "output": "2" }, { "input": "2\n2 4\n2\n3 1", "output": "2" }, { "input": "3\n2 3 5\n3\n3 4 6", "output": "3" }, { "input": "3\n1 3 4\n3\n2 1 5", "output": "3" }, { "input": "2\n5 5\n4\n1 1 1 5", "output": "1" }, { "input": "2\n3 2\n2\n3 4", "output": "2" }, { "input": "2\n3 1\n2\n2 4", "output": "2" }, { "input": "2\n2 3\n2\n2 1", "output": "2" }, { "input": "2\n10 12\n2\n11 9", "output": "2" }, { "input": "3\n1 2 3\n3\n3 2 1", "output": "3" }, { "input": "2\n1 3\n2\n2 1", "output": "2" }, { "input": "2\n4 5\n2\n5 3", "output": "2" }, { "input": "2\n7 5\n2\n6 8", "output": "2" }, { "input": "4\n4 3 2 1\n4\n1 2 3 4", "output": "4" }, { "input": "2\n2 3\n2\n3 1", "output": "2" }, { "input": "2\n2 4\n3\n3 1 8", "output": "2" }, { "input": "3\n3 1 1\n3\n2 4 4", "output": "2" }, { "input": "2\n5 3\n2\n4 6", "output": "2" }, { "input": "4\n1 1 3 3\n4\n2 2 1 1", "output": "4" }, { "input": "3\n3 2 1\n3\n2 4 3", "output": "3" }, { "input": "5\n1 2 3 4 5\n5\n2 3 4 5 1", "output": "5" }, { "input": "3\n3 2 1\n3\n1 2 3", "output": "3" }, { "input": "2\n5 4\n2\n4 6", "output": "2" }, { "input": "4\n3 3 5 5\n4\n4 4 2 2", "output": "4" }, { "input": "3\n2 7 5\n3\n2 4 8", "output": "3" }, { "input": "100\n2 3 3 4 2 1 4 4 5 5 2 1 5 2 3 3 5 4 3 2 4 2 3 3 2 2 3 4 2 2 2 3 1 2 3 2 2 3 5 3 3 3 3 4 5 2 2 1 1 1 3 1 2 2 3 5 5 2 5 1 3 4 5 3 5 4 1 1 2 3 4 4 5 3 2 4 5 5 5 2 1 4 2 4 5 4 4 5 5 3 2 5 1 4 4 2 2 2 5 3\n100\n4 5 3 3 2 2 4 3 1 5 4 3 3 2 2 4 5 2 5 2 1 4 3 4 2 3 5 3 4 4 1 2 3 5 2 2 1 5 4 2 4 3 4 3 4 2 3 1 3 3 4 1 1 1 4 4 5 3 1 4 2 3 2 1 3 3 2 3 2 1 1 2 3 2 1 3 3 4 3 3 1 1 3 3 3 1 1 3 5 3 3 3 3 4 4 5 2 5 4 5", "output": "100" }, { "input": "1\n3\n2\n2 3", "output": "1" }, { "input": "2\n5 6\n3\n1 5 100", "output": "1" }, { "input": "2\n2 7\n2\n6 8", "output": "1" }, { "input": "4\n4 10 15 17\n4\n3 12 16 16", "output": "3" }, { "input": "2\n2 3\n2\n1 2", "output": "2" } ]
1,691,673,529
2,147,483,647
PyPy 3-64
COMPILATION_ERROR
TESTS
0
0
0
#![allow(unused)] use std::io::stdin; fn input() -> String { let mut buf = String::new(); stdin().read_line(&mut buf); buf.trim().to_owned() } fn int_input() -> i32 { input().parse::<i32>().unwrap() } fn vec_input() -> Vec<i32> { input().split_whitespace().map(|i| i.parse::<i32>().unwrap()).collect() } // main code fn main() { let n = int_input(); let mut a = vec_input(); let m = int_input(); let mut b = vec_input(); let mut cnt = 0; while a.len() as i32 > 0 { for i in 0..b.len() { if (a[0] - b[i]).abs() <= 1 { b.remove(i); cnt += 1; break } } a.remove(0); } println!("{}", cnt); }
Title: BerSU Ball Time Limit: None seconds Memory Limit: None megabytes Problem Description: The Berland State University is hosting a ballroom dance in celebration of its 100500-th anniversary! *n* boys and *m* girls are already busy rehearsing waltz, minuet, polonaise and quadrille moves. We know that several boy&amp;girl pairs are going to be invited to the ball. However, the partners' dancing skill in each pair must differ by at most one. For each boy, we know his dancing skills. Similarly, for each girl we know her dancing skills. Write a code that can determine the largest possible number of pairs that can be formed from *n* boys and *m* girls. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=100) — the number of boys. The second line contains sequence *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100), where *a**i* is the *i*-th boy's dancing skill. Similarly, the third line contains an integer *m* (1<=≤<=*m*<=≤<=100) — the number of girls. The fourth line contains sequence *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**j*<=≤<=100), where *b**j* is the *j*-th girl's dancing skill. Output Specification: Print a single number — the required maximum possible number of pairs. Demo Input: ['4\n1 4 6 2\n5\n5 1 5 7 9\n', '4\n1 2 3 4\n4\n10 11 12 13\n', '5\n1 1 1 1 1\n3\n1 2 3\n'] Demo Output: ['3\n', '0\n', '2\n'] Note: none
```python #![allow(unused)] use std::io::stdin; fn input() -> String { let mut buf = String::new(); stdin().read_line(&mut buf); buf.trim().to_owned() } fn int_input() -> i32 { input().parse::<i32>().unwrap() } fn vec_input() -> Vec<i32> { input().split_whitespace().map(|i| i.parse::<i32>().unwrap()).collect() } // main code fn main() { let n = int_input(); let mut a = vec_input(); let m = int_input(); let mut b = vec_input(); let mut cnt = 0; while a.len() as i32 > 0 { for i in 0..b.len() { if (a[0] - b[i]).abs() <= 1 { b.remove(i); cnt += 1; break } } a.remove(0); } println!("{}", cnt); } ```
-1
572
A
Arrays
PROGRAMMING
900
[ "sortings" ]
null
null
You are given two arrays *A* and *B* consisting of integers, sorted in non-decreasing order. Check whether it is possible to choose *k* numbers in array *A* and choose *m* numbers in array *B* so that any number chosen in the first array is strictly less than any number chosen in the second array.
The first line contains two integers *n**A*,<=*n**B* (1<=≤<=*n**A*,<=*n**B*<=≤<=105), separated by a space — the sizes of arrays *A* and *B*, correspondingly. The second line contains two integers *k* and *m* (1<=≤<=*k*<=≤<=*n**A*,<=1<=≤<=*m*<=≤<=*n**B*), separated by a space. The third line contains *n**A* numbers *a*1,<=*a*2,<=... *a**n**A* (<=-<=109<=≤<=*a*1<=≤<=*a*2<=≤<=...<=≤<=*a**n**A*<=≤<=109), separated by spaces — elements of array *A*. The fourth line contains *n**B* integers *b*1,<=*b*2,<=... *b**n**B* (<=-<=109<=≤<=*b*1<=≤<=*b*2<=≤<=...<=≤<=*b**n**B*<=≤<=109), separated by spaces — elements of array *B*.
Print "YES" (without the quotes), if you can choose *k* numbers in array *A* and *m* numbers in array *B* so that any number chosen in array *A* was strictly less than any number chosen in array *B*. Otherwise, print "NO" (without the quotes).
[ "3 3\n2 1\n1 2 3\n3 4 5\n", "3 3\n3 3\n1 2 3\n3 4 5\n", "5 2\n3 1\n1 1 1 1 1\n2 2\n" ]
[ "YES\n", "NO\n", "YES\n" ]
In the first sample test you can, for example, choose numbers 1 and 2 from array *A* and number 3 from array *B* (1 &lt; 3 and 2 &lt; 3). In the second sample test the only way to choose *k* elements in the first array and *m* elements in the second one is to choose all numbers in both arrays, but then not all the numbers chosen in *A* will be less than all the numbers chosen in *B*: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/7280148ed5eab0a7d418d4f92b32061243a8ca58.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
500
[ { "input": "3 3\n2 1\n1 2 3\n3 4 5", "output": "YES" }, { "input": "3 3\n3 3\n1 2 3\n3 4 5", "output": "NO" }, { "input": "5 2\n3 1\n1 1 1 1 1\n2 2", "output": "YES" }, { "input": "3 5\n1 1\n5 5 5\n5 5 5 5 5", "output": "NO" }, { "input": "1 1\n1 1\n1\n1", "output": "NO" }, { "input": "3 3\n1 1\n1 2 3\n1 2 3", "output": "YES" }, { "input": "3 3\n1 2\n1 2 3\n1 2 3", "output": "YES" }, { "input": "3 3\n2 2\n1 2 3\n1 2 3", "output": "NO" }, { "input": "10 15\n10 1\n1 1 5 17 22 29 32 36 39 48\n9 10 20 23 26 26 32 32 33 39 43 45 47 49 49", "output": "YES" }, { "input": "10 15\n1 15\n91 91 91 92 92 94 94 95 98 100\n92 92 93 93 93 94 95 96 97 98 98 99 99 100 100", "output": "YES" }, { "input": "15 10\n12 5\n9 25 25 32 32 38 40 41 46 46 48 51 64 64 73\n5 14 30 35 50 52 67 79 89 99", "output": "YES" }, { "input": "15 10\n4 10\n22 32 35 45 45 50 51 55 79 80 83 88 90 92 93\n46 48 52 55 60 60 68 75 80 81", "output": "YES" }, { "input": "20 30\n2 8\n6 7 7 7 7 7 7 8 8 8 8 9 9 9 9 10 10 10 10 10\n1 1 2 2 2 2 2 2 2 3 3 4 5 5 5 5 6 6 6 6 6 6 7 7 7 8 8 9 10 10", "output": "NO" }, { "input": "20 30\n19 29\n1 1 2 2 2 3 4 4 7 7 7 8 8 8 8 8 9 9 9 9\n6 9 9 9 9 9 9 9 9 9 9 9 9 9 9 9 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "NO" }, { "input": "1 1\n1 1\n-1000000000\n30", "output": "YES" }, { "input": "3 3\n1 3\n1 3 3\n3 3 3", "output": "YES" }, { "input": "3 3\n1 1\n3 3 3\n2 2 2", "output": "NO" }, { "input": "5 5\n3 3\n1 5 6 7 8\n1 2 5 6 7", "output": "NO" }, { "input": "3 4\n2 2\n5 6 7\n1 2 3 4", "output": "NO" }, { "input": "3 3\n3 3\n1 2 3\n4 5 6", "output": "YES" }, { "input": "5 5\n4 5\n2 2 3 4 5\n5 6 7 8 9", "output": "YES" } ]
1,503,522,628
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
5
62
0
_=input() k,_=map(int,input().split()) if list(map(int,input().split()))[k-1]<list(map(int,input().split()))[0]: print('YES') else: print('NO')
Title: Arrays Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two arrays *A* and *B* consisting of integers, sorted in non-decreasing order. Check whether it is possible to choose *k* numbers in array *A* and choose *m* numbers in array *B* so that any number chosen in the first array is strictly less than any number chosen in the second array. Input Specification: The first line contains two integers *n**A*,<=*n**B* (1<=≤<=*n**A*,<=*n**B*<=≤<=105), separated by a space — the sizes of arrays *A* and *B*, correspondingly. The second line contains two integers *k* and *m* (1<=≤<=*k*<=≤<=*n**A*,<=1<=≤<=*m*<=≤<=*n**B*), separated by a space. The third line contains *n**A* numbers *a*1,<=*a*2,<=... *a**n**A* (<=-<=109<=≤<=*a*1<=≤<=*a*2<=≤<=...<=≤<=*a**n**A*<=≤<=109), separated by spaces — elements of array *A*. The fourth line contains *n**B* integers *b*1,<=*b*2,<=... *b**n**B* (<=-<=109<=≤<=*b*1<=≤<=*b*2<=≤<=...<=≤<=*b**n**B*<=≤<=109), separated by spaces — elements of array *B*. Output Specification: Print "YES" (without the quotes), if you can choose *k* numbers in array *A* and *m* numbers in array *B* so that any number chosen in array *A* was strictly less than any number chosen in array *B*. Otherwise, print "NO" (without the quotes). Demo Input: ['3 3\n2 1\n1 2 3\n3 4 5\n', '3 3\n3 3\n1 2 3\n3 4 5\n', '5 2\n3 1\n1 1 1 1 1\n2 2\n'] Demo Output: ['YES\n', 'NO\n', 'YES\n'] Note: In the first sample test you can, for example, choose numbers 1 and 2 from array *A* and number 3 from array *B* (1 &lt; 3 and 2 &lt; 3). In the second sample test the only way to choose *k* elements in the first array and *m* elements in the second one is to choose all numbers in both arrays, but then not all the numbers chosen in *A* will be less than all the numbers chosen in *B*: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/7280148ed5eab0a7d418d4f92b32061243a8ca58.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
```python _=input() k,_=map(int,input().split()) if list(map(int,input().split()))[k-1]<list(map(int,input().split()))[0]: print('YES') else: print('NO') ```
0
834
A
The Useless Toy
PROGRAMMING
900
[ "implementation" ]
null
null
Walking through the streets of Marshmallow City, Slastyona have spotted some merchants selling a kind of useless toy which is very popular nowadays – caramel spinner! Wanting to join the craze, she has immediately bought the strange contraption. Spinners in Sweetland have the form of V-shaped pieces of caramel. Each spinner can, well, spin around an invisible magic axis. At a specific point in time, a spinner can take 4 positions shown below (each one rotated 90 degrees relative to the previous, with the fourth one followed by the first one): After the spinner was spun, it starts its rotation, which is described by a following algorithm: the spinner maintains its position for a second then majestically switches to the next position in clockwise or counter-clockwise order, depending on the direction the spinner was spun in. Slastyona managed to have spinner rotating for exactly *n* seconds. Being fascinated by elegance of the process, she completely forgot the direction the spinner was spun in! Lucky for her, she managed to recall the starting position, and wants to deduct the direction given the information she knows. Help her do this.
There are two characters in the first string – the starting and the ending position of a spinner. The position is encoded with one of the following characters: v (ASCII code 118, lowercase v), &lt; (ASCII code 60), ^ (ASCII code 94) or &gt; (ASCII code 62) (see the picture above for reference). Characters are separated by a single space. In the second strings, a single number *n* is given (0<=≤<=*n*<=≤<=109) – the duration of the rotation. It is guaranteed that the ending position of a spinner is a result of a *n* second spin in any of the directions, assuming the given starting position.
Output cw, if the direction is clockwise, ccw – if counter-clockwise, and undefined otherwise.
[ "^ &gt;\n1\n", "&lt; ^\n3\n", "^ v\n6\n" ]
[ "cw\n", "ccw\n", "undefined\n" ]
none
500
[ { "input": "^ >\n1", "output": "cw" }, { "input": "< ^\n3", "output": "ccw" }, { "input": "^ v\n6", "output": "undefined" }, { "input": "^ >\n999999999", "output": "ccw" }, { "input": "> v\n1", "output": "cw" }, { "input": "v <\n1", "output": "cw" }, { "input": "< ^\n1", "output": "cw" }, { "input": "v <\n422435957", "output": "cw" }, { "input": "v >\n139018901", "output": "ccw" }, { "input": "v ^\n571728018", "output": "undefined" }, { "input": "^ ^\n0", "output": "undefined" }, { "input": "< >\n2", "output": "undefined" }, { "input": "> >\n1000000000", "output": "undefined" }, { "input": "v v\n8", "output": "undefined" }, { "input": "< <\n1568", "output": "undefined" }, { "input": "^ v\n2", "output": "undefined" }, { "input": "^ <\n1", "output": "ccw" }, { "input": "< v\n1", "output": "ccw" }, { "input": "v >\n1", "output": "ccw" }, { "input": "> ^\n1", "output": "ccw" }, { "input": "v <\n422435957", "output": "cw" }, { "input": "v v\n927162384", "output": "undefined" }, { "input": "v ^\n571728018", "output": "undefined" }, { "input": "^ <\n467441155", "output": "cw" }, { "input": "^ >\n822875521", "output": "cw" }, { "input": "^ <\n821690113", "output": "ccw" }, { "input": "^ <\n171288453", "output": "ccw" }, { "input": "^ <\n110821381", "output": "ccw" }, { "input": "^ ^\n539580280", "output": "undefined" }, { "input": "^ >\n861895563", "output": "ccw" }, { "input": "v v\n4", "output": "undefined" }, { "input": "^ ^\n4", "output": "undefined" }, { "input": "> >\n4", "output": "undefined" }, { "input": "< <\n8", "output": "undefined" }, { "input": "v v\n0", "output": "undefined" }, { "input": "^ <\n11", "output": "cw" }, { "input": "< <\n4", "output": "undefined" }, { "input": "< <\n0", "output": "undefined" }, { "input": "< v\n3", "output": "cw" }, { "input": "^ <\n3", "output": "cw" }, { "input": "^ <\n7", "output": "cw" }, { "input": "< >\n6", "output": "undefined" }, { "input": "v >\n3", "output": "cw" }, { "input": "> >\n300", "output": "undefined" }, { "input": "> >\n0", "output": "undefined" }, { "input": "v <\n3", "output": "ccw" }, { "input": "> >\n12", "output": "undefined" } ]
1,545,753,864
3,084
PyPy 3
WRONG_ANSWER
TESTS
1
109
0
s,e=map(str,input().split()) n=int(input()) def clk(st,n,lis): sti=lis.index(st) n=n-n//5 p=4-sti if(n<=p): return(lis[sti+n]) else: n=n-p return(lis[n]) def aclk(st,n,lis): sti=lis.index(st)+1 n=n-n//5 if(n<=sti): return(lis[sti-n]) else: n=n-sti return(lis[-n]) lis=['v', '<', '^' ,'>' ,'v'] ck=clk(s,n,lis) ack=aclk(s,n,lis) if(ck==e): print('cw') elif(ack==e): print('ccw') else: print('undefined')
Title: The Useless Toy Time Limit: None seconds Memory Limit: None megabytes Problem Description: Walking through the streets of Marshmallow City, Slastyona have spotted some merchants selling a kind of useless toy which is very popular nowadays – caramel spinner! Wanting to join the craze, she has immediately bought the strange contraption. Spinners in Sweetland have the form of V-shaped pieces of caramel. Each spinner can, well, spin around an invisible magic axis. At a specific point in time, a spinner can take 4 positions shown below (each one rotated 90 degrees relative to the previous, with the fourth one followed by the first one): After the spinner was spun, it starts its rotation, which is described by a following algorithm: the spinner maintains its position for a second then majestically switches to the next position in clockwise or counter-clockwise order, depending on the direction the spinner was spun in. Slastyona managed to have spinner rotating for exactly *n* seconds. Being fascinated by elegance of the process, she completely forgot the direction the spinner was spun in! Lucky for her, she managed to recall the starting position, and wants to deduct the direction given the information she knows. Help her do this. Input Specification: There are two characters in the first string – the starting and the ending position of a spinner. The position is encoded with one of the following characters: v (ASCII code 118, lowercase v), &lt; (ASCII code 60), ^ (ASCII code 94) or &gt; (ASCII code 62) (see the picture above for reference). Characters are separated by a single space. In the second strings, a single number *n* is given (0<=≤<=*n*<=≤<=109) – the duration of the rotation. It is guaranteed that the ending position of a spinner is a result of a *n* second spin in any of the directions, assuming the given starting position. Output Specification: Output cw, if the direction is clockwise, ccw – if counter-clockwise, and undefined otherwise. Demo Input: ['^ &gt;\n1\n', '&lt; ^\n3\n', '^ v\n6\n'] Demo Output: ['cw\n', 'ccw\n', 'undefined\n'] Note: none
```python s,e=map(str,input().split()) n=int(input()) def clk(st,n,lis): sti=lis.index(st) n=n-n//5 p=4-sti if(n<=p): return(lis[sti+n]) else: n=n-p return(lis[n]) def aclk(st,n,lis): sti=lis.index(st)+1 n=n-n//5 if(n<=sti): return(lis[sti-n]) else: n=n-sti return(lis[-n]) lis=['v', '<', '^' ,'>' ,'v'] ck=clk(s,n,lis) ack=aclk(s,n,lis) if(ck==e): print('cw') elif(ack==e): print('ccw') else: print('undefined') ```
0
35
A
Shell Game
PROGRAMMING
1,000
[ "implementation" ]
A. Shell Game
2
64
Today the «Z» city residents enjoy a shell game competition. The residents are gathered on the main square to watch the breath-taking performance. The performer puts 3 non-transparent cups upside down in a row. Then he openly puts a small ball under one of the cups and starts to shuffle the cups around very quickly so that on the whole he makes exactly 3 shuffles. After that the spectators have exactly one attempt to guess in which cup they think the ball is and if the answer is correct they get a prize. Maybe you can try to find the ball too?
The first input line contains an integer from 1 to 3 — index of the cup which covers the ball before the shuffles. The following three lines describe the shuffles. Each description of a shuffle contains two distinct integers from 1 to 3 — indexes of the cups which the performer shuffled this time. The cups are numbered from left to right and are renumbered after each shuffle from left to right again. In other words, the cup on the left always has index 1, the one in the middle — index 2 and the one on the right — index 3.
In the first line output an integer from 1 to 3 — index of the cup which will have the ball after all the shuffles.
[ "1\n1 2\n2 1\n2 1\n", "1\n2 1\n3 1\n1 3\n" ]
[ "2\n", "2\n" ]
none
500
[ { "input": "1\n1 2\n2 1\n2 1", "output": "2" }, { "input": "1\n2 1\n3 1\n1 3", "output": "2" }, { "input": "3\n3 1\n2 1\n1 2", "output": "1" }, { "input": "1\n1 3\n1 2\n2 3", "output": "2" }, { "input": "3\n3 2\n3 1\n3 1", "output": "2" }, { "input": "1\n2 1\n1 3\n1 3", "output": "2" }, { "input": "3\n3 1\n2 3\n3 2", "output": "1" }, { "input": "2\n1 3\n1 2\n2 1", "output": "2" }, { "input": "1\n1 3\n3 2\n1 2", "output": "1" }, { "input": "1\n1 3\n1 3\n2 3", "output": "1" }, { "input": "2\n1 2\n2 3\n2 1", "output": "2" }, { "input": "3\n1 3\n3 2\n2 1", "output": "2" }, { "input": "1\n1 2\n2 1\n2 3", "output": "1" }, { "input": "1\n2 3\n1 3\n1 2", "output": "3" }, { "input": "2\n3 1\n3 2\n2 3", "output": "2" }, { "input": "2\n1 3\n3 1\n3 1", "output": "2" }, { "input": "1\n3 2\n1 3\n3 1", "output": "1" }, { "input": "3\n1 3\n1 2\n1 3", "output": "2" }, { "input": "1\n3 2\n3 1\n1 2", "output": "3" }, { "input": "2\n2 3\n1 3\n1 3", "output": "3" } ]
1,502,784,278
2,147,483,647
Python 3
OK
TESTS
20
124
4,608,000
fo = open('input.txt', 'r') idx = fo.readline() idx = int(idx) for i in range(3): s = fo.readline() a = s.split() for j in range(len(a)): a[j] = int(a[j]) if idx in a: a.remove(idx) idx = a[0] fo.close() fi = open('output.txt', 'w') fi.write(str(idx)) fi.close()
Title: Shell Game Time Limit: 2 seconds Memory Limit: 64 megabytes Problem Description: Today the «Z» city residents enjoy a shell game competition. The residents are gathered on the main square to watch the breath-taking performance. The performer puts 3 non-transparent cups upside down in a row. Then he openly puts a small ball under one of the cups and starts to shuffle the cups around very quickly so that on the whole he makes exactly 3 shuffles. After that the spectators have exactly one attempt to guess in which cup they think the ball is and if the answer is correct they get a prize. Maybe you can try to find the ball too? Input Specification: The first input line contains an integer from 1 to 3 — index of the cup which covers the ball before the shuffles. The following three lines describe the shuffles. Each description of a shuffle contains two distinct integers from 1 to 3 — indexes of the cups which the performer shuffled this time. The cups are numbered from left to right and are renumbered after each shuffle from left to right again. In other words, the cup on the left always has index 1, the one in the middle — index 2 and the one on the right — index 3. Output Specification: In the first line output an integer from 1 to 3 — index of the cup which will have the ball after all the shuffles. Demo Input: ['1\n1 2\n2 1\n2 1\n', '1\n2 1\n3 1\n1 3\n'] Demo Output: ['2\n', '2\n'] Note: none
```python fo = open('input.txt', 'r') idx = fo.readline() idx = int(idx) for i in range(3): s = fo.readline() a = s.split() for j in range(len(a)): a[j] = int(a[j]) if idx in a: a.remove(idx) idx = a[0] fo.close() fi = open('output.txt', 'w') fi.write(str(idx)) fi.close() ```
3.934668
584
A
Olesya and Rodion
PROGRAMMING
1,000
[ "math" ]
null
null
Olesya loves numbers consisting of *n* digits, and Rodion only likes numbers that are divisible by *t*. Find some number that satisfies both of them. Your task is: given the *n* and *t* print an integer strictly larger than zero consisting of *n* digits that is divisible by *t*. If such number doesn't exist, print <=-<=1.
The single line contains two numbers, *n* and *t* (1<=≤<=*n*<=≤<=100, 2<=≤<=*t*<=≤<=10) — the length of the number and the number it should be divisible by.
Print one such positive number without leading zeroes, — the answer to the problem, or <=-<=1, if such number doesn't exist. If there are multiple possible answers, you are allowed to print any of them.
[ "3 2\n" ]
[ "712" ]
none
500
[ { "input": "3 2", "output": "222" }, { "input": "2 2", "output": "22" }, { "input": "4 3", "output": "3333" }, { "input": "5 3", "output": "33333" }, { "input": "10 7", "output": "7777777777" }, { "input": "2 9", "output": "99" }, { "input": "18 8", "output": "888888888888888888" }, { "input": "1 5", "output": "5" }, { "input": "1 10", "output": "-1" }, { "input": "100 5", "output": "5555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555" }, { "input": "10 2", "output": "2222222222" }, { "input": "18 10", "output": "111111111111111110" }, { "input": "1 9", "output": "9" }, { "input": "7 6", "output": "6666666" }, { "input": "4 4", "output": "4444" }, { "input": "14 7", "output": "77777777777777" }, { "input": "3 8", "output": "888" }, { "input": "1 3", "output": "3" }, { "input": "2 8", "output": "88" }, { "input": "3 8", "output": "888" }, { "input": "4 3", "output": "3333" }, { "input": "5 9", "output": "99999" }, { "input": "4 8", "output": "8888" }, { "input": "3 4", "output": "444" }, { "input": "9 4", "output": "444444444" }, { "input": "8 10", "output": "11111110" }, { "input": "1 6", "output": "6" }, { "input": "20 3", "output": "33333333333333333333" }, { "input": "15 10", "output": "111111111111110" }, { "input": "31 4", "output": "4444444444444444444444444444444" }, { "input": "18 9", "output": "999999999999999999" }, { "input": "72 4", "output": "444444444444444444444444444444444444444444444444444444444444444444444444" }, { "input": "76 8", "output": "8888888888888888888888888888888888888888888888888888888888888888888888888888" }, { "input": "12 5", "output": "555555555555" }, { "input": "54 5", "output": "555555555555555555555555555555555555555555555555555555" }, { "input": "96 10", "output": "111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111110" }, { "input": "15 9", "output": "999999999999999" }, { "input": "100 2", "output": "2222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222" }, { "input": "99 3", "output": "333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333" }, { "input": "98 4", "output": "44444444444444444444444444444444444444444444444444444444444444444444444444444444444444444444444444" }, { "input": "97 5", "output": "5555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555" }, { "input": "100 6", "output": "6666666666666666666666666666666666666666666666666666666666666666666666666666666666666666666666666666" }, { "input": "99 7", "output": "777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "98 8", "output": "88888888888888888888888888888888888888888888888888888888888888888888888888888888888888888888888888" }, { "input": "97 9", "output": "9999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999" }, { "input": "100 10", "output": "1111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111110" }, { "input": "3 10", "output": "110" }, { "input": "2 4", "output": "44" }, { "input": "2 10", "output": "10" }, { "input": "10 10", "output": "1111111110" }, { "input": "4 10", "output": "1110" }, { "input": "25 10", "output": "1111111111111111111111110" }, { "input": "50 10", "output": "11111111111111111111111111111111111111111111111110" }, { "input": "5 10", "output": "11110" }, { "input": "99 10", "output": "111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111110" }, { "input": "100 10", "output": "1111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111110" }, { "input": "1 2", "output": "2" }, { "input": "20 10", "output": "11111111111111111110" }, { "input": "99 7", "output": "777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "89 5", "output": "55555555555555555555555555555555555555555555555555555555555555555555555555555555555555555" }, { "input": "6 10", "output": "111110" }, { "input": "3 8", "output": "888" }, { "input": "1 9", "output": "9" }, { "input": "1 4", "output": "4" }, { "input": "100 7", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" } ]
1,680,205,274
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
8
93
0
#print(104%8) x,y=map(int,input().split()) k=1 #for t in range(x): while len(str(k))<x: k=k*10 for i in range(k,k+10): if i%y==0: print(i) break
Title: Olesya and Rodion Time Limit: None seconds Memory Limit: None megabytes Problem Description: Olesya loves numbers consisting of *n* digits, and Rodion only likes numbers that are divisible by *t*. Find some number that satisfies both of them. Your task is: given the *n* and *t* print an integer strictly larger than zero consisting of *n* digits that is divisible by *t*. If such number doesn't exist, print <=-<=1. Input Specification: The single line contains two numbers, *n* and *t* (1<=≤<=*n*<=≤<=100, 2<=≤<=*t*<=≤<=10) — the length of the number and the number it should be divisible by. Output Specification: Print one such positive number without leading zeroes, — the answer to the problem, or <=-<=1, if such number doesn't exist. If there are multiple possible answers, you are allowed to print any of them. Demo Input: ['3 2\n'] Demo Output: ['712'] Note: none
```python #print(104%8) x,y=map(int,input().split()) k=1 #for t in range(x): while len(str(k))<x: k=k*10 for i in range(k,k+10): if i%y==0: print(i) break ```
0
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" } ]
1,619,179,310
2,147,483,647
Python 3
OK
TESTS
81
124
0
n = int(input()) x_s = 0 y_s = 0 z_s = 0 while n > 0: x,y,z = map(int, input().split()) x_s += x y_s += y z_s += z n -= 1 if x_s == 0 and y_s == 0 and z_s == 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 n = int(input()) x_s = 0 y_s = 0 z_s = 0 while n > 0: x,y,z = map(int, input().split()) x_s += x y_s += y z_s += z n -= 1 if x_s == 0 and y_s == 0 and z_s == 0: print("YES") else: print("NO") ```
3.969
216
B
Forming Teams
PROGRAMMING
1,700
[ "dfs and similar", "implementation" ]
null
null
One day *n* students come to the stadium. They want to play football, and for that they need to split into teams, the teams must have an equal number of people. We know that this group of people has archenemies. Each student has at most two archenemies. Besides, if student *A* is an archenemy to student *B*, then student *B* is an archenemy to student *A*. The students want to split so as no two archenemies were in one team. If splitting in the required manner is impossible, some students will have to sit on the bench. Determine the minimum number of students you will have to send to the bench in order to form the two teams in the described manner and begin the game at last.
The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=100, 1<=≤<=*m*<=≤<=100) — the number of students and the number of pairs of archenemies correspondingly. Next *m* lines describe enmity between students. Each enmity is described as two numbers *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*, *a**i*<=≠<=*b**i*) — the indexes of the students who are enemies to each other. Each enmity occurs in the list exactly once. It is guaranteed that each student has no more than two archenemies. You can consider the students indexed in some manner with distinct integers from 1 to *n*.
Print a single integer — the minimum number of students you will have to send to the bench in order to start the game.
[ "5 4\n1 2\n2 4\n5 3\n1 4\n", "6 2\n1 4\n3 4\n", "6 6\n1 2\n2 3\n3 1\n4 5\n5 6\n6 4\n" ]
[ "1", "0", "2" ]
none
1,500
[ { "input": "5 4\n1 2\n2 4\n5 3\n1 4", "output": "1" }, { "input": "6 2\n1 4\n3 4", "output": "0" }, { "input": "6 6\n1 2\n2 3\n3 1\n4 5\n5 6\n6 4", "output": "2" }, { "input": "5 1\n1 2", "output": "1" }, { "input": "8 8\n1 2\n2 3\n3 4\n4 5\n5 6\n6 7\n7 8\n8 1", "output": "0" }, { "input": "28 3\n15 3\n10 19\n17 25", "output": "0" }, { "input": "2 1\n1 2", "output": "0" }, { "input": "3 1\n2 3", "output": "1" }, { "input": "3 2\n1 2\n3 2", "output": "1" }, { "input": "3 3\n1 2\n1 3\n2 3", "output": "1" }, { "input": "4 1\n1 4", "output": "0" }, { "input": "4 2\n4 1\n2 1", "output": "0" }, { "input": "4 3\n1 3\n3 2\n2 4", "output": "0" }, { "input": "4 3\n3 2\n4 2\n4 3", "output": "2" }, { "input": "5 3\n4 2\n3 4\n5 1", "output": "1" }, { "input": "10 7\n8 9\n3 6\n2 4\n4 1\n1 3\n2 7\n7 10", "output": "0" }, { "input": "29 20\n15 9\n21 15\n14 12\n12 16\n3 28\n5 13\n19 1\n19 21\n23 17\n27 9\n26 10\n20 5\n8 16\n11 6\n4 22\n29 22\n29 11\n14 17\n28 6\n1 23", "output": "1" }, { "input": "68 50\n10 9\n28 25\n53 46\n38 32\n46 9\n35 13\n65 21\n64 1\n15 52\n43 52\n31 7\n61 67\n41 49\n30 1\n14 4\n17 44\n25 7\n24 31\n57 51\n27 12\n3 37\n17 11\n41 16\n65 23\n10 2\n16 22\n40 36\n15 51\n58 44\n61 2\n50 30\n48 35\n45 32\n56 59\n37 49\n62 55\n62 11\n6 19\n34 33\n53 66\n67 39\n47 21\n56 40\n12 58\n4 23\n26 42\n42 5\n60 8\n5 63\n6 47", "output": "0" }, { "input": "89 30\n86 72\n43 16\n32 80\n17 79\n29 8\n89 37\n84 65\n3 41\n55 79\n33 56\n60 40\n43 45\n59 38\n26 23\n66 61\n81 30\n65 25\n13 71\n25 8\n56 59\n46 13\n22 30\n87 3\n26 32\n75 44\n48 87\n47 4\n63 21\n36 6\n42 86", "output": "1" }, { "input": "100 1\n3 87", "output": "0" }, { "input": "100 10\n88 82\n5 78\n66 31\n65 100\n92 25\n71 62\n47 31\n17 67\n69 68\n59 49", "output": "0" }, { "input": "100 50\n82 99\n27 56\n74 38\n16 68\n90 27\n77 4\n7 88\n77 33\n25 85\n18 70\n50 7\n31 5\n21 20\n50 83\n55 5\n46 83\n55 81\n73 6\n76 58\n60 67\n66 99\n71 23\n100 13\n76 8\n52 14\n6 54\n53 54\n88 22\n12 4\n33 60\n43 62\n42 31\n19 67\n98 80\n15 17\n78 79\n62 37\n66 96\n40 44\n37 86\n71 58\n42 92\n8 38\n92 13\n73 70\n46 41\n30 34\n15 65\n97 19\n14 53", "output": "0" }, { "input": "10 9\n5 10\n3 2\n8 6\n4 5\n4 10\n6 1\n1 8\n9 2\n3 9", "output": "4" }, { "input": "50 48\n33 21\n1 46\n43 37\n1 48\n42 32\n31 45\n14 29\n34 28\n38 19\n46 48\n49 31\n8 3\n27 23\n26 37\n15 9\n27 17\n9 35\n18 7\n35 15\n32 4\n23 17\n36 22\n16 33\n39 6\n40 13\n11 6\n21 16\n10 40\n30 36\n20 5\n24 3\n43 26\n22 30\n41 20\n50 38\n25 29\n5 41\n34 44\n12 7\n8 24\n44 28\n25 14\n12 18\n39 11\n42 4\n45 49\n50 19\n13 10", "output": "16" }, { "input": "19 16\n2 16\n7 10\n17 16\n17 14\n1 5\n19 6\n11 13\n15 19\n7 9\n13 5\n4 6\n1 11\n12 9\n10 12\n2 14\n4 15", "output": "1" }, { "input": "70 70\n27 54\n45 23\n67 34\n66 25\n64 38\n30 68\n51 65\n19 4\n15 33\n47 14\n3 9\n42 29\n69 56\n10 50\n34 58\n51 23\n55 14\n18 53\n27 68\n17 6\n48 6\n8 5\n46 37\n37 33\n21 36\n69 24\n16 13\n50 12\n59 31\n63 38\n22 11\n46 28\n67 62\n63 26\n70 31\n7 59\n55 52\n28 43\n18 35\n53 3\n16 60\n43 40\n61 9\n20 44\n47 41\n35 1\n32 4\n13 54\n30 60\n45 19\n39 42\n2 20\n2 26\n52 8\n12 25\n5 41\n21 10\n58 48\n29 11\n7 56\n49 57\n65 32\n15 40\n66 36\n64 44\n22 57\n1 61\n39 49\n24 70\n62 17", "output": "10" }, { "input": "33 33\n2 16\n28 20\n13 9\n4 22\n18 1\n6 12\n13 29\n32 1\n17 15\n10 7\n6 15\n16 5\n11 10\n31 29\n25 8\n23 21\n14 32\n8 2\n19 3\n11 4\n21 25\n31 30\n33 5\n26 7\n27 26\n27 12\n30 24\n33 17\n28 22\n18 24\n19 9\n3 23\n14 20", "output": "1" }, { "input": "10 8\n8 3\n9 7\n6 1\n10 9\n2 6\n2 1\n3 4\n4 8", "output": "2" }, { "input": "20 12\n16 20\n8 3\n20 5\n5 10\n17 7\n13 2\n18 9\n17 18\n1 6\n14 4\n11 12\n10 16", "output": "0" }, { "input": "35 21\n15 3\n13 5\n2 28\n26 35\n9 10\n22 18\n17 1\n31 32\n35 33\n5 15\n14 24\n29 12\n16 2\n14 10\n7 4\n29 4\n23 27\n30 34\n19 26\n23 11\n25 21", "output": "1" }, { "input": "49 36\n17 47\n19 27\n41 23\n31 27\n11 29\n34 10\n35 2\n42 24\n19 16\n38 24\n5 9\n26 9\n36 14\n18 47\n28 40\n45 13\n35 22\n2 15\n31 30\n20 48\n39 3\n8 34\n36 7\n25 17\n5 39\n29 1\n32 33\n16 30\n38 49\n25 18\n1 11\n7 44\n12 43\n15 22\n49 21\n8 23", "output": "3" }, { "input": "77 54\n18 56\n72 2\n6 62\n58 52\n5 70\n24 4\n67 66\n65 47\n43 77\n61 66\n24 51\n70 7\n48 39\n46 11\n77 28\n65 76\n15 6\n22 13\n34 75\n33 42\n59 37\n7 31\n50 23\n28 9\n17 29\n1 14\n11 45\n36 46\n32 39\n59 21\n22 34\n53 21\n29 47\n16 44\n69 4\n62 16\n36 3\n68 75\n51 69\n49 43\n30 55\n40 20\n57 60\n45 3\n38 33\n49 9\n71 19\n73 20\n48 32\n63 67\n8 54\n42 38\n26 12\n5 74", "output": "5" }, { "input": "93 72\n3 87\n88 60\n73 64\n45 35\n61 85\n68 80\n54 29\n4 88\n19 91\n82 48\n50 2\n40 53\n56 8\n66 82\n83 81\n62 8\n79 30\n89 26\n77 10\n65 15\n27 47\n15 51\n70 6\n59 85\n63 20\n64 92\n7 1\n93 52\n74 38\n71 23\n83 12\n86 52\n46 56\n34 36\n37 84\n18 16\n11 42\n69 72\n53 20\n78 84\n54 91\n14 5\n65 49\n90 19\n42 39\n68 57\n75 27\n57 32\n44 9\n79 74\n48 66\n43 93\n31 30\n58 24\n80 67\n6 60\n39 5\n23 17\n25 1\n18 36\n32 67\n10 9\n14 11\n63 21\n92 73\n13 43\n28 78\n33 51\n4 70\n75 45\n37 28\n62 46", "output": "5" }, { "input": "100 72\n2 88\n55 80\n22 20\n78 52\n66 74\n91 82\n59 77\n97 93\n46 44\n99 35\n73 62\n58 24\n6 16\n47 41\n98 86\n23 19\n39 68\n32 28\n85 29\n37 40\n16 62\n19 61\n84 72\n17 15\n76 96\n37 31\n67 35\n48 15\n80 85\n90 47\n79 36\n39 54\n57 87\n42 60\n34 56\n23 61\n92 2\n88 63\n20 42\n27 81\n65 84\n6 73\n64 100\n76 95\n43 4\n65 86\n21 46\n11 64\n72 98\n63 92\n7 50\n14 22\n89 30\n31 40\n8 57\n90 70\n53 59\n69 24\n96 49\n67 99\n51 70\n18 66\n91 3\n26 38\n13 58\n51 41\n9 11\n5 74\n3 25\n4 32\n28 43\n71 56", "output": "6" }, { "input": "6 5\n1 2\n2 3\n3 4\n4 5\n5 1", "output": "2" }, { "input": "6 4\n1 2\n1 3\n4 5\n4 6", "output": "0" }, { "input": "16 16\n1 2\n2 3\n1 3\n4 5\n5 6\n4 6\n7 8\n8 9\n9 10\n10 11\n11 7\n12 13\n13 14\n14 15\n15 16\n16 12", "output": "4" }, { "input": "4 4\n1 2\n4 3\n1 4\n2 3", "output": "0" }, { "input": "9 9\n1 2\n2 3\n3 1\n4 5\n5 6\n6 4\n7 8\n8 9\n9 7", "output": "3" }, { "input": "20 11\n1 2\n2 3\n3 4\n4 5\n5 6\n6 7\n7 8\n8 9\n9 10\n10 11\n11 1", "output": "2" }, { "input": "4 3\n1 2\n3 4\n1 3", "output": "0" }, { "input": "4 2\n2 4\n3 4", "output": "0" }, { "input": "10 10\n1 2\n2 3\n3 4\n4 5\n5 1\n6 7\n7 8\n8 9\n9 10\n10 6", "output": "2" }, { "input": "6 5\n2 1\n3 4\n2 3\n4 5\n5 6", "output": "0" }, { "input": "8 5\n1 2\n2 3\n3 4\n4 5\n5 1", "output": "2" }, { "input": "6 5\n1 2\n2 3\n3 4\n4 5\n1 5", "output": "2" }, { "input": "8 8\n1 2\n2 3\n3 4\n1 4\n5 6\n6 7\n7 8\n5 8", "output": "0" }, { "input": "6 5\n1 3\n1 2\n2 4\n5 3\n5 4", "output": "2" } ]
1,511,701,447
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
3
124
5,529,600
n, m = map(int, input().split()) gr = [[] for i in range(n + 1)] for _ in range(m): u, v = map(int, input().split()) gr[u].append(v) gr[v].append(u) vis = [False] * (n + 1) def dfs(x): vis[x] = True ans = [1, len(gr[x]) != 2] for u in gr[x]: if vis[u]: continue a, b = dfs(u) ans[0] += a if b: ans[1] = True return ans t = [] ans = 0 for i in range(1, n + 1): if vis[i]: continue a, b = dfs(i) if not b: a -= 1 ans += 1 t.append([a // 2, a - a// 2]) dp = [[False] * n for i in range(n)] dp[0][0] = True for i in t: for f in range(n - 1, -1, -1): if f + i[0] >= n: continue; for g in range(n - 1, -1, -1): if g + i[1] >= n: continue if dp[f][g]: dp[f + i[0]][g + i[1]] = True minrem = n for i in range(n): for f in range(n): if dp[i][f]: minrem = min(minrem, abs(i - f)) print(ans + minrem)
Title: Forming Teams Time Limit: None seconds Memory Limit: None megabytes Problem Description: One day *n* students come to the stadium. They want to play football, and for that they need to split into teams, the teams must have an equal number of people. We know that this group of people has archenemies. Each student has at most two archenemies. Besides, if student *A* is an archenemy to student *B*, then student *B* is an archenemy to student *A*. The students want to split so as no two archenemies were in one team. If splitting in the required manner is impossible, some students will have to sit on the bench. Determine the minimum number of students you will have to send to the bench in order to form the two teams in the described manner and begin the game at last. Input Specification: The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=100, 1<=≤<=*m*<=≤<=100) — the number of students and the number of pairs of archenemies correspondingly. Next *m* lines describe enmity between students. Each enmity is described as two numbers *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*, *a**i*<=≠<=*b**i*) — the indexes of the students who are enemies to each other. Each enmity occurs in the list exactly once. It is guaranteed that each student has no more than two archenemies. You can consider the students indexed in some manner with distinct integers from 1 to *n*. Output Specification: Print a single integer — the minimum number of students you will have to send to the bench in order to start the game. Demo Input: ['5 4\n1 2\n2 4\n5 3\n1 4\n', '6 2\n1 4\n3 4\n', '6 6\n1 2\n2 3\n3 1\n4 5\n5 6\n6 4\n'] Demo Output: ['1', '0', '2'] Note: none
```python n, m = map(int, input().split()) gr = [[] for i in range(n + 1)] for _ in range(m): u, v = map(int, input().split()) gr[u].append(v) gr[v].append(u) vis = [False] * (n + 1) def dfs(x): vis[x] = True ans = [1, len(gr[x]) != 2] for u in gr[x]: if vis[u]: continue a, b = dfs(u) ans[0] += a if b: ans[1] = True return ans t = [] ans = 0 for i in range(1, n + 1): if vis[i]: continue a, b = dfs(i) if not b: a -= 1 ans += 1 t.append([a // 2, a - a// 2]) dp = [[False] * n for i in range(n)] dp[0][0] = True for i in t: for f in range(n - 1, -1, -1): if f + i[0] >= n: continue; for g in range(n - 1, -1, -1): if g + i[1] >= n: continue if dp[f][g]: dp[f + i[0]][g + i[1]] = True minrem = n for i in range(n): for f in range(n): if dp[i][f]: minrem = min(minrem, abs(i - f)) print(ans + minrem) ```
0
496
A
Minimum Difficulty
PROGRAMMING
900
[ "brute force", "implementation", "math" ]
null
null
Mike is trying rock climbing but he is awful at it. There are *n* holds on the wall, *i*-th hold is at height *a**i* off the ground. Besides, let the sequence *a**i* increase, that is, *a**i*<=&lt;<=*a**i*<=+<=1 for all *i* from 1 to *n*<=-<=1; we will call such sequence a track. Mike thinks that the track *a*1, ..., *a**n* has difficulty . In other words, difficulty equals the maximum distance between two holds that are adjacent in height. Today Mike decided to cover the track with holds hanging on heights *a*1, ..., *a**n*. To make the problem harder, Mike decided to remove one hold, that is, remove one element of the sequence (for example, if we take the sequence (1,<=2,<=3,<=4,<=5) and remove the third element from it, we obtain the sequence (1,<=2,<=4,<=5)). However, as Mike is awful at climbing, he wants the final difficulty (i.e. the maximum difference of heights between adjacent holds after removing the hold) to be as small as possible among all possible options of removing a hold. The first and last holds must stay at their positions. Help Mike determine the minimum difficulty of the track after removing one hold.
The first line contains a single integer *n* (3<=≤<=*n*<=≤<=100) — the number of holds. The next line contains *n* space-separated integers *a**i* (1<=≤<=*a**i*<=≤<=1000), where *a**i* is the height where the hold number *i* hangs. The sequence *a**i* is increasing (i.e. each element except for the first one is strictly larger than the previous one).
Print a single number — the minimum difficulty of the track after removing a single hold.
[ "3\n1 4 6\n", "5\n1 2 3 4 5\n", "5\n1 2 3 7 8\n" ]
[ "5\n", "2\n", "4\n" ]
In the first sample you can remove only the second hold, then the sequence looks like (1, 6), the maximum difference of the neighboring elements equals 5. In the second test after removing every hold the difficulty equals 2. In the third test you can obtain sequences (1, 3, 7, 8), (1, 2, 7, 8), (1, 2, 3, 8), for which the difficulty is 4, 5 and 5, respectively. Thus, after removing the second element we obtain the optimal answer — 4.
500
[ { "input": "3\n1 4 6", "output": "5" }, { "input": "5\n1 2 3 4 5", "output": "2" }, { "input": "5\n1 2 3 7 8", "output": "4" }, { "input": "3\n1 500 1000", "output": "999" }, { "input": "10\n1 2 3 4 5 6 7 8 9 10", "output": "2" }, { "input": "10\n1 4 9 16 25 36 49 64 81 100", "output": "19" }, { "input": "10\n300 315 325 338 350 365 379 391 404 416", "output": "23" }, { "input": "15\n87 89 91 92 93 95 97 99 101 103 105 107 109 111 112", "output": "2" }, { "input": "60\n3 5 7 8 15 16 18 21 24 26 40 41 43 47 48 49 50 51 52 54 55 60 62 71 74 84 85 89 91 96 406 407 409 412 417 420 423 424 428 431 432 433 436 441 445 446 447 455 458 467 469 471 472 475 480 485 492 493 497 500", "output": "310" }, { "input": "3\n159 282 405", "output": "246" }, { "input": "81\n6 7 22 23 27 38 40 56 59 71 72 78 80 83 86 92 95 96 101 122 125 127 130 134 154 169 170 171 172 174 177 182 184 187 195 197 210 211 217 223 241 249 252 253 256 261 265 269 274 277 291 292 297 298 299 300 302 318 338 348 351 353 381 386 387 397 409 410 419 420 428 430 453 460 461 473 478 493 494 500 741", "output": "241" }, { "input": "10\n218 300 388 448 535 629 680 740 836 925", "output": "111" }, { "input": "100\n6 16 26 36 46 56 66 76 86 96 106 116 126 136 146 156 166 176 186 196 206 216 226 236 246 256 266 276 286 296 306 316 326 336 346 356 366 376 386 396 406 416 426 436 446 456 466 476 486 496 506 516 526 536 546 556 566 576 586 596 606 616 626 636 646 656 666 676 686 696 706 716 726 736 746 756 766 776 786 796 806 816 826 836 846 856 866 876 886 896 906 916 926 936 946 956 966 976 986 996", "output": "20" }, { "input": "100\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 50 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000", "output": "901" }, { "input": "100\n1 9 15 17 28 29 30 31 32 46 48 49 52 56 62 77 82 85 90 91 94 101 102 109 111 113 116 118 124 125 131 132 136 138 139 143 145 158 161 162 165 167 171 173 175 177 179 183 189 196 801 802 804 806 817 819 827 830 837 840 842 846 850 855 858 862 863 866 869 870 878 881 883 884 896 898 899 901 904 906 908 909 910 911 912 917 923 924 925 935 939 943 945 956 963 964 965 972 976 978", "output": "605" }, { "input": "100\n2 43 47 49 50 57 59 67 74 98 901 903 904 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 938 939 940 942 943 944 945 946 947 948 949 950 952 953 954 956 957 958 959 960 961 962 963 965 966 967 968 969 970 971 972 973 974 975 976 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 998 999", "output": "803" }, { "input": "72\n178 186 196 209 217 226 236 248 260 273 281 291 300 309 322 331 343 357 366 377 389 399 409 419 429 442 450 459 469 477 491 501 512 524 534 548 557 568 582 593 602 616 630 643 652 660 670 679 693 707 715 728 737 750 759 768 776 789 797 807 815 827 837 849 863 873 881 890 901 910 920 932", "output": "17" }, { "input": "38\n1 28 55 82 109 136 163 190 217 244 271 298 325 352 379 406 433 460 487 514 541 568 595 622 649 676 703 730 757 784 811 838 865 892 919 946 973 1000", "output": "54" }, { "input": "28\n1 38 75 112 149 186 223 260 297 334 371 408 445 482 519 556 593 630 667 704 741 778 815 852 889 926 963 1000", "output": "74" } ]
1,418,834,647
847
Python 3
OK
TESTS
19
61
0
holds= int(input()) heights= [int(i) for i in input().split()] ans= 999999999 real= heights for i in range(1, len(heights)-1): #print(i, heights, real) app= heights[i] heights.remove(app) k= 0 for j in range(len(heights)-1): k= max(heights[j+1]-heights[j], k) ans= min(ans, k) heights.append(app) heights= sorted(heights) print(ans)
Title: Minimum Difficulty Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mike is trying rock climbing but he is awful at it. There are *n* holds on the wall, *i*-th hold is at height *a**i* off the ground. Besides, let the sequence *a**i* increase, that is, *a**i*<=&lt;<=*a**i*<=+<=1 for all *i* from 1 to *n*<=-<=1; we will call such sequence a track. Mike thinks that the track *a*1, ..., *a**n* has difficulty . In other words, difficulty equals the maximum distance between two holds that are adjacent in height. Today Mike decided to cover the track with holds hanging on heights *a*1, ..., *a**n*. To make the problem harder, Mike decided to remove one hold, that is, remove one element of the sequence (for example, if we take the sequence (1,<=2,<=3,<=4,<=5) and remove the third element from it, we obtain the sequence (1,<=2,<=4,<=5)). However, as Mike is awful at climbing, he wants the final difficulty (i.e. the maximum difference of heights between adjacent holds after removing the hold) to be as small as possible among all possible options of removing a hold. The first and last holds must stay at their positions. Help Mike determine the minimum difficulty of the track after removing one hold. Input Specification: The first line contains a single integer *n* (3<=≤<=*n*<=≤<=100) — the number of holds. The next line contains *n* space-separated integers *a**i* (1<=≤<=*a**i*<=≤<=1000), where *a**i* is the height where the hold number *i* hangs. The sequence *a**i* is increasing (i.e. each element except for the first one is strictly larger than the previous one). Output Specification: Print a single number — the minimum difficulty of the track after removing a single hold. Demo Input: ['3\n1 4 6\n', '5\n1 2 3 4 5\n', '5\n1 2 3 7 8\n'] Demo Output: ['5\n', '2\n', '4\n'] Note: In the first sample you can remove only the second hold, then the sequence looks like (1, 6), the maximum difference of the neighboring elements equals 5. In the second test after removing every hold the difficulty equals 2. In the third test you can obtain sequences (1, 3, 7, 8), (1, 2, 7, 8), (1, 2, 3, 8), for which the difficulty is 4, 5 and 5, respectively. Thus, after removing the second element we obtain the optimal answer — 4.
```python holds= int(input()) heights= [int(i) for i in input().split()] ans= 999999999 real= heights for i in range(1, len(heights)-1): #print(i, heights, real) app= heights[i] heights.remove(app) k= 0 for j in range(len(heights)-1): k= max(heights[j+1]-heights[j], k) ans= min(ans, k) heights.append(app) heights= sorted(heights) print(ans) ```
3
475
B
Strongly Connected City
PROGRAMMING
1,400
[ "brute force", "dfs and similar", "graphs", "implementation" ]
null
null
Imagine a city with *n* horizontal streets crossing *m* vertical streets, forming an (*n*<=-<=1)<=×<=(*m*<=-<=1) grid. In order to increase the traffic flow, mayor of the city has decided to make each street one way. This means in each horizontal street, the traffic moves only from west to east or only from east to west. Also, traffic moves only from north to south or only from south to north in each vertical street. It is possible to enter a horizontal street from a vertical street, or vice versa, at their intersection. The mayor has received some street direction patterns. Your task is to check whether it is possible to reach any junction from any other junction in the proposed street direction pattern.
The first line of input contains two integers *n* and *m*, (2<=≤<=*n*,<=*m*<=≤<=20), denoting the number of horizontal streets and the number of vertical streets. The second line contains a string of length *n*, made of characters '&lt;' and '&gt;', denoting direction of each horizontal street. If the *i*-th character is equal to '&lt;', the street is directed from east to west otherwise, the street is directed from west to east. Streets are listed in order from north to south. The third line contains a string of length *m*, made of characters '^' and 'v', denoting direction of each vertical street. If the *i*-th character is equal to '^', the street is directed from south to north, otherwise the street is directed from north to south. Streets are listed in order from west to east.
If the given pattern meets the mayor's criteria, print a single line containing "YES", otherwise print a single line containing "NO".
[ "3 3\n&gt;&lt;&gt;\nv^v\n", "4 6\n&lt;&gt;&lt;&gt;\nv^v^v^\n" ]
[ "NO\n", "YES\n" ]
The figure above shows street directions in the second sample test case.
1,000
[ { "input": "3 3\n><>\nv^v", "output": "NO" }, { "input": "4 6\n<><>\nv^v^v^", "output": "YES" }, { "input": "2 2\n<>\nv^", "output": "YES" }, { "input": "2 2\n>>\n^v", "output": "NO" }, { "input": "3 3\n>><\n^^v", "output": "YES" }, { "input": "3 4\n>><\n^v^v", "output": "YES" }, { "input": "3 8\n>><\nv^^^^^^^", "output": "NO" }, { "input": "7 2\n<><<<<>\n^^", "output": "NO" }, { "input": "4 5\n><<<\n^^^^v", "output": "YES" }, { "input": "2 20\n><\n^v^^v^^v^^^v^vv^vv^^", "output": "NO" }, { "input": "2 20\n<>\nv^vv^v^^vvv^^^v^vvv^", "output": "YES" }, { "input": "20 2\n<><<><<>><<<>><><<<<\n^^", "output": "NO" }, { "input": "20 2\n><>><>><>><<<><<><><\n^v", "output": "YES" }, { "input": "11 12\n><<<><><<>>\nvv^^^^vvvvv^", "output": "NO" }, { "input": "4 18\n<<>>\nv^v^v^^vvvv^v^^vv^", "output": "YES" }, { "input": "16 11\n<<<<>><><<<<<><<\nvv^v^vvvv^v", "output": "NO" }, { "input": "14 7\n><<<<>>>>>>><<\nvv^^^vv", "output": "NO" }, { "input": "5 14\n<<><>\nv^vv^^vv^v^^^v", "output": "NO" }, { "input": "8 18\n>>>><>>>\nv^vv^v^^^^^vvv^^vv", "output": "NO" }, { "input": "18 18\n<<><>><<>><>><><<<\n^^v^v^vvvv^v^vv^vv", "output": "NO" }, { "input": "4 18\n<<<>\n^^^^^vv^vv^^vv^v^v", "output": "NO" }, { "input": "19 18\n><><>>><<<<<>>><<<>\n^^v^^v^^v^vv^v^vvv", "output": "NO" }, { "input": "14 20\n<<<><><<>><><<\nvvvvvvv^v^vvvv^^^vv^", "output": "NO" }, { "input": "18 18\n><>>><<<>><><>>>><\nvv^^^^v^v^^^^v^v^^", "output": "NO" }, { "input": "8 18\n<><<<>>>\n^^^^^^v^^^vv^^vvvv", "output": "NO" }, { "input": "11 12\n><><><<><><\n^^v^^^^^^^^v", "output": "YES" }, { "input": "4 18\n<<>>\nv^v^v^^vvvv^v^^vv^", "output": "YES" }, { "input": "16 11\n>><<><<<<>>><><<\n^^^^vvvv^vv", "output": "YES" }, { "input": "14 7\n<><><<<>>>><>>\nvv^^v^^", "output": "YES" }, { "input": "5 14\n>>>><\n^v^v^^^vv^vv^v", "output": "YES" }, { "input": "8 18\n<<<><>>>\nv^^vvv^^v^v^vvvv^^", "output": "YES" }, { "input": "18 18\n><><<><><>>><>>>><\n^^vvv^v^^^v^vv^^^v", "output": "YES" }, { "input": "4 18\n<<>>\nv^v^v^^vvvv^v^^vv^", "output": "YES" }, { "input": "19 18\n>>>><><<>>><<<><<<<\n^v^^^^vv^^v^^^^v^v", "output": "YES" }, { "input": "14 20\n<>><<<><<>>>>>\nvv^^v^^^^v^^vv^^vvv^", "output": "YES" }, { "input": "18 18\n><><<><><>>><>>>><\n^^vvv^v^^^v^vv^^^v", "output": "YES" }, { "input": "8 18\n<<<><>>>\nv^^vvv^^v^v^vvvv^^", "output": "YES" }, { "input": "20 19\n<><>>>>><<<<<><<>>>>\nv^vv^^vvvvvv^vvvv^v", "output": "NO" }, { "input": "20 19\n<<<><<<>><<<>><><><>\nv^v^vvv^vvv^^^vvv^^", "output": "YES" }, { "input": "19 20\n<><<<><><><<<<<<<<>\n^v^^^^v^^vvvv^^^^vvv", "output": "NO" }, { "input": "19 20\n>>>>>>>><>>><><<<><\n^v^v^^^vvv^^^v^^vvvv", "output": "YES" }, { "input": "20 20\n<<<>>>><>><<>><<>>>>\n^vvv^^^^vv^^^^^v^^vv", "output": "NO" }, { "input": "20 20\n>>><><<><<<<<<<><<><\nvv^vv^vv^^^^^vv^^^^^", "output": "NO" }, { "input": "20 20\n><<><<<<<<<>>><>>><<\n^^^^^^^^vvvv^vv^vvvv", "output": "YES" }, { "input": "20 20\n<>>>>>>>><>>><>><<<>\nvv^^vv^^^^v^vv^v^^^^", "output": "YES" }, { "input": "20 20\n><>><<>><>>>>>>>><<>\n^^v^vv^^^vvv^v^^^vv^", "output": "NO" }, { "input": "20 20\n<<<<><<>><><<<>><<><\nv^^^^vvv^^^vvvv^v^vv", "output": "NO" }, { "input": "20 20\n><<<><<><>>><><<<<<<\nvv^^vvv^^v^^v^vv^vvv", "output": "NO" }, { "input": "20 20\n<<>>><>>>><<<<>>><<>\nv^vv^^^^^vvv^^v^^v^v", "output": "NO" }, { "input": "20 20\n><<><<><<<<<<>><><>>\nv^^^v^vv^^v^^vvvv^vv", "output": "NO" }, { "input": "20 20\n<<<<<<<<><>><><>><<<\n^vvv^^^v^^^vvv^^^^^v", "output": "NO" }, { "input": "20 20\n>>><<<<<>>><><><<><<\n^^^vvv^^^v^^v^^v^vvv", "output": "YES" }, { "input": "20 20\n<><<<><><>><><><<<<>\n^^^vvvv^vv^v^^^^v^vv", "output": "NO" }, { "input": "20 20\n>>>>>>>>>><>>><>><>>\n^vvv^^^vv^^^^^^vvv^v", "output": "NO" }, { "input": "20 20\n<><>><><<<<<>><<>>><\nv^^^v^v^v^vvvv^^^vv^", "output": "NO" }, { "input": "20 20\n><<<><<<><<<><>>>><<\nvvvv^^^^^vv^v^^vv^v^", "output": "NO" }, { "input": "20 20\n<<><<<<<<>>>>><<<>>>\nvvvvvv^v^vvv^^^^^^^^", "output": "YES" }, { "input": "20 20\n><<><<>>>>><><>><>>>\nv^^^^vvv^^^^^v^v^vv^", "output": "NO" }, { "input": "20 20\n<<>>><>><<>>>><<<><<\n^^vvv^^vvvv^vv^^v^v^", "output": "NO" }, { "input": "20 20\n><<>><>>>><<><>><><<\n^v^^^^^^vvvv^v^v^v^^", "output": "NO" }, { "input": "20 20\n<<><<<<><><<>>><>>>>\n^^vvvvv^v^^^^^^^vvv^", "output": "NO" }, { "input": "20 20\n>><<<<<<><>>>><>>><>\n^^^v^v^vv^^vv^vvv^^^", "output": "NO" }, { "input": "20 20\n>>>>>>>>>>>>>>>>>>>>\nvvvvvvvvvvvvvvvvvvvv", "output": "NO" }, { "input": "2 2\n><\nv^", "output": "NO" }, { "input": "2 2\n<>\n^v", "output": "NO" }, { "input": "3 3\n>><\nvvv", "output": "NO" }, { "input": "2 3\n<>\nv^^", "output": "YES" }, { "input": "4 4\n>>><\nvvv^", "output": "NO" }, { "input": "20 20\n<><><><><><><><><><>\nvvvvvvvvvvvvvvvvvvvv", "output": "NO" }, { "input": "4 4\n<>>>\nv^^^", "output": "YES" }, { "input": "20 20\n<><><><><><><><><><>\nv^v^v^v^v^v^v^v^v^v^", "output": "YES" }, { "input": "2 3\n<>\n^v^", "output": "NO" }, { "input": "4 3\n<><>\n^vv", "output": "NO" }, { "input": "3 3\n<<>\nvv^", "output": "YES" }, { "input": "2 3\n><\nvv^", "output": "NO" }, { "input": "7 6\n>>><>><\n^vv^vv", "output": "YES" }, { "input": "2 2\n<<\nv^", "output": "NO" }, { "input": "3 3\n>><\n^^^", "output": "NO" }, { "input": "3 3\n<><\nv^v", "output": "NO" }, { "input": "20 20\n><><><><><><><><><><\n^v^v^v^v^v^v^v^v^v^v", "output": "YES" }, { "input": "4 4\n<>>>\nvvv^", "output": "YES" } ]
1,683,560,376
2,147,483,647
PyPy 3
OK
TESTS
81
155
8,396,800
n,m=list(map(int,input().split())) di=input() dj=input() def canmove(i,j): return i>=0 and j>=0 and i<n and j<m def dfs(i,j,seen): seen[i][j]=True pi=i pj=j if di[i]=='>': pj+=1 else: pj-=1 if dj[j]=='^': pi-=1 else: pi+=1 if canmove(pi,j) and not seen[pi][j]: dfs(pi,j,seen) if canmove(i,pj) and not seen[i][pj]: dfs(i,pj,seen) def solve(): for i in range(n): for j in range(m): seen = [[False] * m for k in range(n)] if not seen[i][j]: dfs(i,j,seen) for row in seen: for b in row: if b==False: return False return True if solve(): print("YES") else: print("NO")
Title: Strongly Connected City Time Limit: None seconds Memory Limit: None megabytes Problem Description: Imagine a city with *n* horizontal streets crossing *m* vertical streets, forming an (*n*<=-<=1)<=×<=(*m*<=-<=1) grid. In order to increase the traffic flow, mayor of the city has decided to make each street one way. This means in each horizontal street, the traffic moves only from west to east or only from east to west. Also, traffic moves only from north to south or only from south to north in each vertical street. It is possible to enter a horizontal street from a vertical street, or vice versa, at their intersection. The mayor has received some street direction patterns. Your task is to check whether it is possible to reach any junction from any other junction in the proposed street direction pattern. Input Specification: The first line of input contains two integers *n* and *m*, (2<=≤<=*n*,<=*m*<=≤<=20), denoting the number of horizontal streets and the number of vertical streets. The second line contains a string of length *n*, made of characters '&lt;' and '&gt;', denoting direction of each horizontal street. If the *i*-th character is equal to '&lt;', the street is directed from east to west otherwise, the street is directed from west to east. Streets are listed in order from north to south. The third line contains a string of length *m*, made of characters '^' and 'v', denoting direction of each vertical street. If the *i*-th character is equal to '^', the street is directed from south to north, otherwise the street is directed from north to south. Streets are listed in order from west to east. Output Specification: If the given pattern meets the mayor's criteria, print a single line containing "YES", otherwise print a single line containing "NO". Demo Input: ['3 3\n&gt;&lt;&gt;\nv^v\n', '4 6\n&lt;&gt;&lt;&gt;\nv^v^v^\n'] Demo Output: ['NO\n', 'YES\n'] Note: The figure above shows street directions in the second sample test case.
```python n,m=list(map(int,input().split())) di=input() dj=input() def canmove(i,j): return i>=0 and j>=0 and i<n and j<m def dfs(i,j,seen): seen[i][j]=True pi=i pj=j if di[i]=='>': pj+=1 else: pj-=1 if dj[j]=='^': pi-=1 else: pi+=1 if canmove(pi,j) and not seen[pi][j]: dfs(pi,j,seen) if canmove(i,pj) and not seen[i][pj]: dfs(i,pj,seen) def solve(): for i in range(n): for j in range(m): seen = [[False] * m for k in range(n)] if not seen[i][j]: dfs(i,j,seen) for row in seen: for b in row: if b==False: return False return True if solve(): print("YES") else: print("NO") ```
3
116
A
Tram
PROGRAMMING
800
[ "implementation" ]
null
null
Linear Kingdom has exactly one tram line. It has *n* stops, numbered from 1 to *n* in the order of tram's movement. At the *i*-th stop *a**i* passengers exit the tram, while *b**i* passengers enter it. The tram is empty before it arrives at the first stop. Also, when the tram arrives at the last stop, all passengers exit so that it becomes empty. Your task is to calculate the tram's minimum capacity such that the number of people inside the tram at any time never exceeds this capacity. Note that at each stop all exiting passengers exit before any entering passenger enters the tram.
The first line contains a single number *n* (2<=≤<=*n*<=≤<=1000) — the number of the tram's stops. Then *n* lines follow, each contains two integers *a**i* and *b**i* (0<=≤<=*a**i*,<=*b**i*<=≤<=1000) — the number of passengers that exits the tram at the *i*-th stop, and the number of passengers that enter the tram at the *i*-th stop. The stops are given from the first to the last stop in the order of tram's movement. - The number of people who exit at a given stop does not exceed the total number of people in the tram immediately before it arrives at the stop. More formally, . This particularly means that *a*1<==<=0. - At the last stop, all the passengers exit the tram and it becomes empty. More formally, . - No passenger will enter the train at the last stop. That is, *b**n*<==<=0.
Print a single integer denoting the minimum possible capacity of the tram (0 is allowed).
[ "4\n0 3\n2 5\n4 2\n4 0\n" ]
[ "6\n" ]
For the first example, a capacity of 6 is sufficient: - At the first stop, the number of passengers inside the tram before arriving is 0. Then, 3 passengers enter the tram, and the number of passengers inside the tram becomes 3. - At the second stop, 2 passengers exit the tram (1 passenger remains inside). Then, 5 passengers enter the tram. There are 6 passengers inside the tram now. - At the third stop, 4 passengers exit the tram (2 passengers remain inside). Then, 2 passengers enter the tram. There are 4 passengers inside the tram now. - Finally, all the remaining passengers inside the tram exit the tram at the last stop. There are no passenger inside the tram now, which is in line with the constraints. Since the number of passengers inside the tram never exceeds 6, a capacity of 6 is sufficient. Furthermore it is not possible for the tram to have a capacity less than 6. Hence, 6 is the correct answer.
500
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1\n1 2\n1 2\n2 1\n1 1\n2 2\n1 1\n2 1\n2 2\n2 1\n1 2\n2 2\n1 2\n1 1\n1 1\n2 1\n2 1\n2 2\n2 1\n2 1\n1 2\n1 2\n1 2\n1 2\n2 0\n2 0\n2 0\n0 0", "output": "8" }, { "input": "50\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\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\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\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "100\n0 1\n0 0\n0 0\n1 0\n0 0\n0 1\n0 1\n1 1\n0 0\n0 0\n1 1\n0 0\n1 1\n0 1\n1 1\n0 1\n1 1\n1 0\n1 0\n0 0\n1 0\n0 1\n1 0\n0 0\n0 0\n1 1\n1 1\n0 1\n0 0\n1 0\n1 1\n0 1\n1 0\n1 1\n0 1\n1 1\n1 0\n0 0\n0 0\n0 1\n0 0\n0 1\n1 1\n0 0\n1 1\n1 1\n0 0\n0 1\n1 0\n0 1\n0 0\n0 1\n0 1\n1 1\n1 1\n1 1\n0 0\n0 0\n1 1\n0 1\n0 1\n1 0\n0 0\n0 0\n1 1\n0 1\n0 1\n1 1\n1 1\n0 1\n1 1\n1 1\n0 0\n1 0\n0 1\n0 0\n0 0\n1 1\n1 1\n1 1\n1 1\n0 1\n1 0\n1 0\n1 0\n1 0\n1 0\n0 0\n1 0\n1 0\n0 0\n1 0\n0 0\n0 1\n1 0\n0 1\n1 0\n1 0\n1 0\n1 0", "output": "11" }, { "input": "100\n0 2\n1 2\n2 1\n1 2\n1 2\n2 1\n2 2\n1 1\n1 1\n2 1\n1 2\n2 1\n1 2\n2 2\n2 2\n2 2\n1 2\n2 2\n2 1\n1 1\n1 1\n1 1\n2 2\n1 2\n2 2\n1 1\n1 1\n1 1\n1 1\n2 2\n1 2\n2 1\n1 1\n2 2\n1 1\n2 1\n1 1\n2 2\n2 1\n1 2\n1 1\n1 2\n2 1\n2 2\n1 1\n2 1\n1 1\n2 1\n1 1\n1 2\n2 2\n2 2\n1 1\n2 2\n1 2\n2 1\n2 1\n1 1\n1 1\n1 2\n1 2\n1 1\n1 1\n2 1\n1 2\n1 2\n2 1\n2 2\n2 2\n2 2\n2 1\n2 2\n1 1\n1 2\n1 2\n1 1\n2 2\n2 2\n1 1\n2 1\n1 1\n1 2\n1 2\n1 2\n1 1\n1 1\n2 2\n1 2\n2 1\n2 1\n2 1\n1 2\n1 2\n1 1\n2 2\n1 2\n2 0\n2 0\n2 0\n1 0", "output": "7" }, { "input": "100\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\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\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\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\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\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\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "2\n0 1\n1 0", "output": "1" }, { "input": "2\n0 900\n900 0", "output": "900" }, { "input": "2\n0 1\n1 0", "output": "1" }, { "input": "2\n0 0\n0 0", "output": "0" }, { "input": "2\n0 1000\n1000 0", "output": "1000" }, { "input": "3\n0 802\n175 188\n815 0", "output": "815" }, { "input": "3\n0 910\n910 976\n976 0", "output": "976" }, { "input": "3\n0 2\n2 1\n1 0", "output": "2" } ]
1,694,962,601
2,147,483,647
Python 3
OK
TESTS
71
92
0
tc=int(input()) persons=0 max_list=[] for x in range(tc): exit_,enter=map(int,input().split()) persons=(persons+enter)-exit_ max_list.append(persons) print(max(max_list))
Title: Tram Time Limit: None seconds Memory Limit: None megabytes Problem Description: Linear Kingdom has exactly one tram line. It has *n* stops, numbered from 1 to *n* in the order of tram's movement. At the *i*-th stop *a**i* passengers exit the tram, while *b**i* passengers enter it. The tram is empty before it arrives at the first stop. Also, when the tram arrives at the last stop, all passengers exit so that it becomes empty. Your task is to calculate the tram's minimum capacity such that the number of people inside the tram at any time never exceeds this capacity. Note that at each stop all exiting passengers exit before any entering passenger enters the tram. Input Specification: The first line contains a single number *n* (2<=≤<=*n*<=≤<=1000) — the number of the tram's stops. Then *n* lines follow, each contains two integers *a**i* and *b**i* (0<=≤<=*a**i*,<=*b**i*<=≤<=1000) — the number of passengers that exits the tram at the *i*-th stop, and the number of passengers that enter the tram at the *i*-th stop. The stops are given from the first to the last stop in the order of tram's movement. - The number of people who exit at a given stop does not exceed the total number of people in the tram immediately before it arrives at the stop. More formally, . This particularly means that *a*1<==<=0. - At the last stop, all the passengers exit the tram and it becomes empty. More formally, . - No passenger will enter the train at the last stop. That is, *b**n*<==<=0. Output Specification: Print a single integer denoting the minimum possible capacity of the tram (0 is allowed). Demo Input: ['4\n0 3\n2 5\n4 2\n4 0\n'] Demo Output: ['6\n'] Note: For the first example, a capacity of 6 is sufficient: - At the first stop, the number of passengers inside the tram before arriving is 0. Then, 3 passengers enter the tram, and the number of passengers inside the tram becomes 3. - At the second stop, 2 passengers exit the tram (1 passenger remains inside). Then, 5 passengers enter the tram. There are 6 passengers inside the tram now. - At the third stop, 4 passengers exit the tram (2 passengers remain inside). Then, 2 passengers enter the tram. There are 4 passengers inside the tram now. - Finally, all the remaining passengers inside the tram exit the tram at the last stop. There are no passenger inside the tram now, which is in line with the constraints. Since the number of passengers inside the tram never exceeds 6, a capacity of 6 is sufficient. Furthermore it is not possible for the tram to have a capacity less than 6. Hence, 6 is the correct answer.
```python tc=int(input()) persons=0 max_list=[] for x in range(tc): exit_,enter=map(int,input().split()) persons=(persons+enter)-exit_ max_list.append(persons) print(max(max_list)) ```
3
549
A
Face Detection
PROGRAMMING
900
[ "implementation", "strings" ]
null
null
The developers of Looksery have to write an efficient algorithm that detects faces on a picture. Unfortunately, they are currently busy preparing a contest for you, so you will have to do it for them. In this problem an image is a rectangular table that consists of lowercase Latin letters. A face on the image is a 2<=×<=2 square, such that from the four letters of this square you can make word "face". You need to write a program that determines the number of faces on the image. The squares that correspond to the faces can overlap.
The first line contains two space-separated integers, *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=50) — the height and the width of the image, respectively. Next *n* lines define the image. Each line contains *m* lowercase Latin letters.
In the single line print the number of faces on the image.
[ "4 4\nxxxx\nxfax\nxcex\nxxxx\n", "4 2\nxx\ncf\nae\nxx\n", "2 3\nfac\ncef\n", "1 4\nface\n" ]
[ "1\n", "1\n", "2\n", "0\n" ]
In the first sample the image contains a single face, located in a square with the upper left corner at the second line and the second column: In the second sample the image also contains exactly one face, its upper left corner is at the second row and the first column. In the third sample two faces are shown: In the fourth sample the image has no faces on it.
250
[ { "input": "4 4\nxxxx\nxfax\nxcex\nxxxx", "output": "1" }, { "input": "4 2\nxx\ncf\nae\nxx", "output": "1" }, { "input": "2 3\nfac\ncef", "output": "2" }, { "input": "1 4\nface", "output": "0" }, { "input": "5 5\nwmmwn\nlurcm\nkeetd\nfokon\ncxxgx", "output": "0" }, { "input": "5 5\nkjxbw\neacra\nxefhx\nucmcz\npgtjk", "output": "1" }, { "input": "1 1\np", "output": "0" }, { "input": "2 5\nacdmw\nefazb", "output": "1" }, { "input": "5 2\ndz\nda\nsx\nyu\nzz", "output": "0" }, { "input": "5 5\nxeljd\nwriac\nveief\nlcacf\nbqefn", "output": "2" }, { "input": "5 5\nacnbx\nefacp\nlrefa\norqce\nzvbay", "output": "3" }, { "input": "5 5\nbyjvu\nkmaca\nalefe\nwcacg\nrefez", "output": "5" }, { "input": "5 5\npuxac\nbbaef\naccfa\nefaec\nligsr", "output": "5" }, { "input": "37 4\nacjo\nefac\nacef\nefac\nwpef\nicac\naefe\ncfac\naece\ncfaf\nyqce\nmiaf\nirce\nycaf\naefc\ncfae\nrsnc\nbacz\nqefb\npdhs\nffac\nfaef\nacfd\nacmi\nefvm\nacaz\nefpn\nacao\nefer\nacap\nefec\nacaf\nefef\nacbj\nefac\nacef\nefoz", "output": "49" }, { "input": "7 3\njac\naef\ncfa\naec\ncfq\ndig\nxyq", "output": "5" }, { "input": "35 1\ny\na\nk\ng\ni\nd\nv\nn\nl\nx\nu\nx\nu\no\nd\nf\nk\nj\nr\nm\nq\ns\nc\nd\nc\nm\nv\nh\nn\ne\nl\nt\nz\ny\no", "output": "0" }, { "input": "9 46\nuuexbaacesjclggslacermcbkxlcxhdgqtacdwfryxzuxc\naclrsaefakndbnzlkefenuphgcgoedhkaxefjtnkgfeaca\nefuqunpmfxdyyffyhvracozzrxlpekhtsrfhlilfmyhefg\numyacfzffvicqtdpiulefnwcojuwtfbvlxkfsiapdnzpqo\nactefvuxqptremlqjhdbdwacjxdxitxjktecvefacamjcz\neflarseklqrkayhosverpfefzirqigzlxezabhzeferkwm\nztpypwxyohtacsnnvoigqwcachtaceyxlkhfhgwbnfmklb\nfzpqeymhljiefctvqtbgcdjefkxefarbciyosmktmoziac\nbssxizyrzyhacszttwhrzspbfkgfcejybdjcpuczhrkqef", "output": "20" }, { "input": "7 30\nmjfracgaacacctacrreyrlkacuacay\nrlacefacefeftaeftkacacaefcefev\nacefacefacraccfaeaefefecaeacaf\nefacefacefaefaecfcfacacaecfefa\nncefacefacecacfaeaecefefcaeace\nfafaceacuafaefadcfcafacaefcfea\nzsvefafukcecfarkaeaecefecailgu", "output": "95" }, { "input": "2 2\nff\nee", "output": "0" }, { "input": "2 2\nfa\ncc", "output": "0" }, { "input": "2 2\nfa\naa", "output": "0" }, { "input": "2 2\nfa\nea", "output": "0" }, { "input": "2 2\nfa\ndd", "output": "0" }, { "input": "2 2\nee\nff", "output": "0" }, { "input": "2 2\ncc\ncf", "output": "0" }, { "input": "2 2\naa\nae", "output": "0" }, { "input": "2 2\nef\nac", "output": "1" }, { "input": "2 2\nfe\nca", "output": "1" } ]
1,435,226,434
2,147,483,647
Python 3
OK
TESTS
37
62
0
n, m = map(int, input().split()) a = [input() for i in range(n)] print(sum([{a[i][j], a[i + 1][j], a[i][j + 1], a[i + 1][j + 1]} == set('face') for j in range(m - 1) for i in range(n - 1)]))
Title: Face Detection Time Limit: None seconds Memory Limit: None megabytes Problem Description: The developers of Looksery have to write an efficient algorithm that detects faces on a picture. Unfortunately, they are currently busy preparing a contest for you, so you will have to do it for them. In this problem an image is a rectangular table that consists of lowercase Latin letters. A face on the image is a 2<=×<=2 square, such that from the four letters of this square you can make word "face". You need to write a program that determines the number of faces on the image. The squares that correspond to the faces can overlap. Input Specification: The first line contains two space-separated integers, *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=50) — the height and the width of the image, respectively. Next *n* lines define the image. Each line contains *m* lowercase Latin letters. Output Specification: In the single line print the number of faces on the image. Demo Input: ['4 4\nxxxx\nxfax\nxcex\nxxxx\n', '4 2\nxx\ncf\nae\nxx\n', '2 3\nfac\ncef\n', '1 4\nface\n'] Demo Output: ['1\n', '1\n', '2\n', '0\n'] Note: In the first sample the image contains a single face, located in a square with the upper left corner at the second line and the second column: In the second sample the image also contains exactly one face, its upper left corner is at the second row and the first column. In the third sample two faces are shown: In the fourth sample the image has no faces on it.
```python n, m = map(int, input().split()) a = [input() for i in range(n)] print(sum([{a[i][j], a[i + 1][j], a[i][j + 1], a[i + 1][j + 1]} == set('face') for j in range(m - 1) for i in range(n - 1)])) ```
3
851
A
Arpa and a research in Mexican wave
PROGRAMMING
800
[ "implementation", "math" ]
null
null
Arpa is researching the Mexican wave. There are *n* spectators in the stadium, labeled from 1 to *n*. They start the Mexican wave at time 0. - At time 1, the first spectator stands. - At time 2, the second spectator stands. - ... - At time *k*, the *k*-th spectator stands. - At time *k*<=+<=1, the (*k*<=+<=1)-th spectator stands and the first spectator sits. - At time *k*<=+<=2, the (*k*<=+<=2)-th spectator stands and the second spectator sits. - ... - At time *n*, the *n*-th spectator stands and the (*n*<=-<=*k*)-th spectator sits. - At time *n*<=+<=1, the (*n*<=+<=1<=-<=*k*)-th spectator sits. - ... - At time *n*<=+<=*k*, the *n*-th spectator sits. Arpa wants to know how many spectators are standing at time *t*.
The first line contains three integers *n*, *k*, *t* (1<=≤<=*n*<=≤<=109, 1<=≤<=*k*<=≤<=*n*, 1<=≤<=*t*<=&lt;<=*n*<=+<=*k*).
Print single integer: how many spectators are standing at time *t*.
[ "10 5 3\n", "10 5 7\n", "10 5 12\n" ]
[ "3\n", "5\n", "3\n" ]
In the following a sitting spectator is represented as -, a standing spectator is represented as ^. - At *t* = 0  ---------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 0. - At *t* = 1  ^--------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 1. - At *t* = 2  ^^-------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 2. - At *t* = 3  ^^^------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 3. - At *t* = 4  ^^^^------ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 4. - At *t* = 5  ^^^^^----- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 6  -^^^^^---- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 7  --^^^^^--- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 8  ---^^^^^-- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 9  ----^^^^^- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 10 -----^^^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 11 ------^^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 4. - At *t* = 12 -------^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 3. - At *t* = 13 --------^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 2. - At *t* = 14 ---------^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 1. - At *t* = 15 ---------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 0.
500
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"output": "5" }, { "input": "5 3 5", "output": "3" }, { "input": "10 3 3", "output": "3" }, { "input": "10 5 6", "output": "5" }, { "input": "3 2 4", "output": "1" }, { "input": "10 5 14", "output": "1" }, { "input": "6 1 4", "output": "1" }, { "input": "10 10 19", "output": "1" }, { "input": "10 4 11", "output": "3" }, { "input": "2 2 3", "output": "1" }, { "input": "10 5 11", "output": "4" }, { "input": "600 200 700", "output": "100" }, { "input": "2000 1000 2001", "output": "999" }, { "input": "1000 1000 1001", "output": "999" }, { "input": "5 4 6", "output": "3" }, { "input": "2 1 2", "output": "1" }, { "input": "10 3 10", "output": "3" }, { "input": "15 10 10", "output": "10" }, { "input": "10 5 13", "output": "2" }, { "input": "2 2 2", "output": "2" }, { "input": "5 5 6", "output": "4" }, { "input": "10 6 12", "output": "4" }, { "input": "7 5 8", "output": "4" }, { "input": "10 4 9", "output": "4" }, { "input": "9 2 6", "output": "2" }, { "input": "5 2 6", "output": "1" }, { "input": "6 2 6", "output": "2" }, { "input": "5 5 8", "output": "2" }, { "input": "3 3 5", "output": "1" }, { "input": "10 2 5", "output": "2" }, { "input": "5 3 7", "output": "1" }, { "input": "5 4 8", "output": "1" }, { "input": "10 6 11", "output": "5" }, { "input": "5 3 6", "output": "2" }, { "input": "10 6 14", "output": "2" }, { "input": "10 10 10", "output": "10" }, { "input": "1000000000 1 1000000000", "output": "1" }, { "input": "20 4 22", "output": "2" }, { "input": "5 4 4", "output": "4" }, { "input": "4 3 6", "output": "1" }, { "input": "12 8 18", "output": "2" }, { "input": "10 5 10", "output": "5" }, { "input": "100 50 149", "output": "1" }, { "input": "4 4 4", "output": "4" }, { "input": "7 6 9", "output": "4" }, { "input": "16 10 21", "output": "5" }, { "input": "10 2 11", "output": "1" }, { "input": "600 200 500", "output": "200" }, { "input": "100 30 102", "output": "28" }, { "input": "10 10 18", "output": "2" }, { "input": "15 3 10", "output": "3" }, { "input": "1000000000 1000000000 1000000000", "output": "1000000000" }, { "input": "5 5 5", "output": "5" }, { "input": "10 3 12", "output": "1" }, { "input": "747 457 789", "output": "415" }, { "input": "5 4 7", "output": "2" }, { "input": "15 5 11", "output": "5" }, { "input": "3 2 2", "output": "2" }, { "input": "7 6 8", "output": "5" }, { "input": "7 4 8", "output": "3" }, { "input": "10 4 13", "output": "1" }, { "input": "10 3 9", "output": "3" }, { "input": "20 2 21", "output": "1" }, { "input": "6 5 9", "output": "2" }, { "input": "10 9 18", "output": "1" }, { "input": "12 4 9", "output": "4" }, { "input": "10 7 15", "output": "2" }, { "input": "999999999 999999998 1500000000", "output": "499999997" }, { "input": "20 5 20", "output": "5" }, { "input": "4745 4574 4757", "output": "4562" }, { "input": "10 7 12", "output": "5" }, { "input": "17 15 18", "output": "14" }, { "input": "3 1 3", "output": "1" }, { "input": "100 3 7", "output": "3" }, { "input": "6 2 7", "output": "1" }, { "input": "8 5 10", "output": "3" }, { "input": "3 3 3", "output": "3" }, { "input": "9 5 10", "output": "4" }, { "input": "10 6 13", "output": "3" }, { "input": "13 10 14", "output": "9" }, { "input": "13 12 15", "output": "10" }, { "input": "10 4 12", "output": "2" }, { "input": "41 3 3", "output": "3" }, { "input": "1000000000 1000000000 1400000000", "output": "600000000" }, { "input": "10 3 11", "output": "2" }, { "input": "12 7 18", "output": "1" }, { "input": "15 3 17", "output": "1" }, { "input": "10 2 8", "output": "2" }, { "input": "1000000000 1000 1000000999", "output": "1" }, { "input": "5 5 9", "output": "1" }, { "input": "100 3 6", "output": "3" }, { "input": "100 5 50", "output": "5" }, { "input": "10000 10 10000", "output": "10" }, { "input": "1 1 1", "output": "1" }, { "input": "6 4 4", "output": "4" }, { "input": "9979797 555554 10101010", "output": "434341" }, { "input": "13 5 12", "output": "5" }, { "input": "9 4 10", "output": "3" }, { "input": "7 5 10", "output": "2" }, { "input": "100000000 10000000 100005000", "output": "9995000" }, { "input": "100000 50000 100001", "output": "49999" }, { "input": "15 10 20", "output": "5" }, { "input": "4 4 5", "output": "3" }, { "input": "5 3 3", "output": "3" }, { "input": "30 5 30", "output": "5" }, { "input": "200000 10 200005", "output": "5" }, { "input": "10 9 12", "output": "7" }, { "input": "10 6 15", "output": "1" }, { "input": "1000000000 10 1000000000", "output": "10" }, { "input": "7 5 11", "output": "1" }, { "input": "9 4 4", "output": "4" }, { "input": "14 3 15", "output": "2" }, { "input": "1000000000 100000000 1000000000", "output": "100000000" }, { "input": "40 10 22", "output": "10" }, { "input": "50 10 51", "output": "9" }, { "input": "999999997 999999995 1999999991", "output": "1" }, { "input": "92 79 144", "output": "27" }, { "input": "8 4 4", "output": "4" } ]
1,612,377,142
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
3
1,000
0
n,k,t=map(int,input().split()) for i in range(0,k): if i==t: print(i) for i in range(k,n+1): if i==t: print(n-k) for i in range(n+1,n+k+1): if i==t: print(n+k-t)
Title: Arpa and a research in Mexican wave Time Limit: None seconds Memory Limit: None megabytes Problem Description: Arpa is researching the Mexican wave. There are *n* spectators in the stadium, labeled from 1 to *n*. They start the Mexican wave at time 0. - At time 1, the first spectator stands. - At time 2, the second spectator stands. - ... - At time *k*, the *k*-th spectator stands. - At time *k*<=+<=1, the (*k*<=+<=1)-th spectator stands and the first spectator sits. - At time *k*<=+<=2, the (*k*<=+<=2)-th spectator stands and the second spectator sits. - ... - At time *n*, the *n*-th spectator stands and the (*n*<=-<=*k*)-th spectator sits. - At time *n*<=+<=1, the (*n*<=+<=1<=-<=*k*)-th spectator sits. - ... - At time *n*<=+<=*k*, the *n*-th spectator sits. Arpa wants to know how many spectators are standing at time *t*. Input Specification: The first line contains three integers *n*, *k*, *t* (1<=≤<=*n*<=≤<=109, 1<=≤<=*k*<=≤<=*n*, 1<=≤<=*t*<=&lt;<=*n*<=+<=*k*). Output Specification: Print single integer: how many spectators are standing at time *t*. Demo Input: ['10 5 3\n', '10 5 7\n', '10 5 12\n'] Demo Output: ['3\n', '5\n', '3\n'] Note: In the following a sitting spectator is represented as -, a standing spectator is represented as ^. - At *t* = 0  ---------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 0. - At *t* = 1  ^--------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 1. - At *t* = 2  ^^-------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 2. - At *t* = 3  ^^^------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 3. - At *t* = 4  ^^^^------ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 4. - At *t* = 5  ^^^^^----- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 6  -^^^^^---- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 7  --^^^^^--- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 8  ---^^^^^-- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 9  ----^^^^^- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 10 -----^^^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 5. - At *t* = 11 ------^^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 4. - At *t* = 12 -------^^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 3. - At *t* = 13 --------^^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 2. - At *t* = 14 ---------^ <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 1. - At *t* = 15 ---------- <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/4d97e684117250a9afe9be022ab8a63653dd15aa.png" style="max-width: 100.0%;max-height: 100.0%;"/> number of standing spectators = 0.
```python n,k,t=map(int,input().split()) for i in range(0,k): if i==t: print(i) for i in range(k,n+1): if i==t: print(n-k) for i in range(n+1,n+k+1): if i==t: print(n+k-t) ```
0
75
A
Life Without Zeros
PROGRAMMING
1,000
[ "implementation" ]
A. Life Without Zeros
2
256
Can you imagine our life if we removed all zeros from it? For sure we will have many problems. In this problem we will have a simple example if we removed all zeros from our life, it's the addition operation. Let's assume you are given this equation *a*<=+<=*b*<==<=*c*, where *a* and *b* are positive integers, and *c* is the sum of *a* and *b*. Now let's remove all zeros from this equation. Will the equation remain correct after removing all zeros? For example if the equation is 101<=+<=102<==<=203, if we removed all zeros it will be 11<=+<=12<==<=23 which is still a correct equation. But if the equation is 105<=+<=106<==<=211, if we removed all zeros it will be 15<=+<=16<==<=211 which is not a correct equation.
The input will consist of two lines, the first line will contain the integer *a*, and the second line will contain the integer *b* which are in the equation as described above (1<=≤<=*a*,<=*b*<=≤<=109). There won't be any leading zeros in both. The value of *c* should be calculated as *c*<==<=*a*<=+<=*b*.
The output will be just one line, you should print "YES" if the equation will remain correct after removing all zeros, and print "NO" otherwise.
[ "101\n102\n", "105\n106\n" ]
[ "YES\n", "NO\n" ]
none
500
[ { "input": "101\n102", "output": "YES" }, { "input": "105\n106", "output": "NO" }, { "input": "544\n397", "output": "YES" }, { "input": "822\n280", "output": "NO" }, { "input": "101\n413", "output": "NO" }, { "input": "309\n139", "output": "NO" }, { "input": "693\n970", "output": "NO" }, { "input": "981\n1", "output": "YES" }, { "input": "352\n276", "output": "YES" }, { "input": "164\n691", "output": "YES" }, { "input": "110036\n43", "output": "YES" }, { "input": "100\n1000", "output": "NO" }, { "input": "1000000000\n1000000000", "output": "YES" }, { "input": "999999999\n999999999", "output": "YES" }, { "input": "6\n4", "output": "NO" }, { "input": "123456\n876543", "output": "YES" }, { "input": "1234567\n9876543", "output": "NO" }, { "input": "1111111\n1119111", "output": "NO" }, { "input": "10502405\n40403403", "output": "YES" }, { "input": "1\n1", "output": "YES" }, { "input": "5\n4", "output": "YES" }, { "input": "1\n6", "output": "YES" }, { "input": "40\n17", "output": "NO" }, { "input": "35\n81", "output": "YES" }, { "input": "347\n908", "output": "NO" }, { "input": "2081\n7450", "output": "NO" }, { "input": "84355694\n373629503", "output": "NO" }, { "input": "885992048\n510468672", "output": "NO" }, { "input": "540144752\n647307841", "output": "NO" }, { "input": "341781108\n784147010", "output": "NO" }, { "input": "960440938\n572334653", "output": "NO" }, { "input": "657414510\n768771903", "output": "NO" }, { "input": "501871728\n725074574", "output": "NO" }, { "input": "968\n851", "output": "YES" }, { "input": "943\n939", "output": "YES" }, { "input": "347\n908", "output": "NO" }, { "input": "611\n41", "output": "YES" }, { "input": "737\n289", "output": "NO" }, { "input": "168\n571", "output": "YES" }, { "input": "868\n463", "output": "YES" }, { "input": "815732007\n913882008", "output": "NO" }, { "input": "459039901\n453033850", "output": "NO" }, { "input": "975305404\n484601256", "output": "NO" } ]
1,634,489,552
2,147,483,647
Python 3
OK
TESTS
43
92
0
#n, m, k = map(int,input().split()) #a, b = map(int,input().split()) a = input() b = input() c = str(int(a)+int(b)) s_a = "" s_b = "" s_c = "" for i in range(0, len(a)): if(a[i]!='0'): s_a += a[i] for i in range(0, len(b)): if(b[i] != '0'): s_b+=b[i] for i in range(0, len(c)): if(c[i] != '0'): s_c+=c[i] if(int(s_c)==int(s_a)+int(s_b)): print("YES") else: print("NO")
Title: Life Without Zeros Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Can you imagine our life if we removed all zeros from it? For sure we will have many problems. In this problem we will have a simple example if we removed all zeros from our life, it's the addition operation. Let's assume you are given this equation *a*<=+<=*b*<==<=*c*, where *a* and *b* are positive integers, and *c* is the sum of *a* and *b*. Now let's remove all zeros from this equation. Will the equation remain correct after removing all zeros? For example if the equation is 101<=+<=102<==<=203, if we removed all zeros it will be 11<=+<=12<==<=23 which is still a correct equation. But if the equation is 105<=+<=106<==<=211, if we removed all zeros it will be 15<=+<=16<==<=211 which is not a correct equation. Input Specification: The input will consist of two lines, the first line will contain the integer *a*, and the second line will contain the integer *b* which are in the equation as described above (1<=≤<=*a*,<=*b*<=≤<=109). There won't be any leading zeros in both. The value of *c* should be calculated as *c*<==<=*a*<=+<=*b*. Output Specification: The output will be just one line, you should print "YES" if the equation will remain correct after removing all zeros, and print "NO" otherwise. Demo Input: ['101\n102\n', '105\n106\n'] Demo Output: ['YES\n', 'NO\n'] Note: none
```python #n, m, k = map(int,input().split()) #a, b = map(int,input().split()) a = input() b = input() c = str(int(a)+int(b)) s_a = "" s_b = "" s_c = "" for i in range(0, len(a)): if(a[i]!='0'): s_a += a[i] for i in range(0, len(b)): if(b[i] != '0'): s_b+=b[i] for i in range(0, len(c)): if(c[i] != '0'): s_c+=c[i] if(int(s_c)==int(s_a)+int(s_b)): print("YES") else: print("NO") ```
3.977
501
A
Contest
PROGRAMMING
900
[ "implementation" ]
null
null
Misha and Vasya participated in a Codeforces contest. Unfortunately, each of them solved only one problem, though successfully submitted it at the first attempt. Misha solved the problem that costs *a* points and Vasya solved the problem that costs *b* points. Besides, Misha submitted the problem *c* minutes after the contest started and Vasya submitted the problem *d* minutes after the contest started. As you know, on Codeforces the cost of a problem reduces as a round continues. That is, if you submit a problem that costs *p* points *t* minutes after the contest started, you get points. Misha and Vasya are having an argument trying to find out who got more points. Help them to find out the truth.
The first line contains four integers *a*, *b*, *c*, *d* (250<=≤<=*a*,<=*b*<=≤<=3500, 0<=≤<=*c*,<=*d*<=≤<=180). It is guaranteed that numbers *a* and *b* are divisible by 250 (just like on any real Codeforces round).
Output on a single line: "Misha" (without the quotes), if Misha got more points than Vasya. "Vasya" (without the quotes), if Vasya got more points than Misha. "Tie" (without the quotes), if both of them got the same number of points.
[ "500 1000 20 30\n", "1000 1000 1 1\n", "1500 1000 176 177\n" ]
[ "Vasya\n", "Tie\n", "Misha\n" ]
none
500
[ { "input": "500 1000 20 30", "output": "Vasya" }, { "input": "1000 1000 1 1", "output": "Tie" }, { "input": "1500 1000 176 177", "output": "Misha" }, { "input": "1500 1000 74 177", "output": "Misha" }, { "input": "750 2500 175 178", "output": "Vasya" }, { "input": "750 1000 54 103", "output": "Tie" }, { "input": "2000 1250 176 130", "output": "Tie" }, { "input": "1250 1750 145 179", "output": "Tie" }, { "input": "2000 2000 176 179", "output": "Tie" }, { "input": "1500 1500 148 148", "output": "Tie" }, { "input": "2750 1750 134 147", "output": "Misha" }, { "input": "3250 250 175 173", "output": "Misha" }, { "input": "500 500 170 176", "output": "Misha" }, { "input": "250 1000 179 178", "output": "Vasya" }, { "input": "3250 1000 160 138", "output": "Misha" }, { "input": "3000 2000 162 118", "output": "Tie" }, { "input": "1500 1250 180 160", "output": "Tie" }, { "input": "1250 2500 100 176", "output": "Tie" }, { "input": "3500 3500 177 178", "output": "Tie" }, { "input": "3000 3250 16 34", "output": "Tie" }, { "input": "1750 3000 137 49", "output": "Vasya" }, { "input": "500 1500 179 71", "output": "Vasya" }, { "input": "1250 2000 101 180", "output": "Misha" }, { "input": "250 750 180 176", "output": "Vasya" }, { "input": "2250 2250 163 145", "output": "Vasya" }, { "input": "3000 3000 176 78", "output": "Vasya" }, { "input": "250 3500 8 178", "output": "Vasya" }, { "input": "1750 1250 179 180", "output": "Misha" }, { "input": "2750 1750 13 164", "output": "Misha" }, { "input": "1750 2250 178 53", "output": "Vasya" }, { "input": "2500 2750 73 179", "output": "Misha" }, { "input": "1000 3500 178 175", "output": "Vasya" }, { "input": "1000 500 7 162", "output": "Misha" }, { "input": "1000 250 175 48", "output": "Misha" }, { "input": "1750 500 166 177", "output": "Misha" }, { "input": "250 250 0 0", "output": "Tie" }, { "input": "250 3500 0 0", "output": "Vasya" }, { "input": "250 3500 0 180", "output": "Vasya" }, { "input": "3500 3500 180 180", "output": "Tie" }, { "input": "3500 250 0 180", "output": "Misha" } ]
1,641,721,141
2,147,483,647
PyPy 3-64
OK
TESTS
40
108
0
a, b, c, d = map(int, input().split()) vasya = max(3 * b // 10, b - b // 250 * d) misha = max(3 * a // 10, a - a // 250 * c) if vasya > misha: print("Vasya") elif misha > vasya: print("Misha") else: print("Tie")
Title: Contest Time Limit: None seconds Memory Limit: None megabytes Problem Description: Misha and Vasya participated in a Codeforces contest. Unfortunately, each of them solved only one problem, though successfully submitted it at the first attempt. Misha solved the problem that costs *a* points and Vasya solved the problem that costs *b* points. Besides, Misha submitted the problem *c* minutes after the contest started and Vasya submitted the problem *d* minutes after the contest started. As you know, on Codeforces the cost of a problem reduces as a round continues. That is, if you submit a problem that costs *p* points *t* minutes after the contest started, you get points. Misha and Vasya are having an argument trying to find out who got more points. Help them to find out the truth. Input Specification: The first line contains four integers *a*, *b*, *c*, *d* (250<=≤<=*a*,<=*b*<=≤<=3500, 0<=≤<=*c*,<=*d*<=≤<=180). It is guaranteed that numbers *a* and *b* are divisible by 250 (just like on any real Codeforces round). Output Specification: Output on a single line: "Misha" (without the quotes), if Misha got more points than Vasya. "Vasya" (without the quotes), if Vasya got more points than Misha. "Tie" (without the quotes), if both of them got the same number of points. Demo Input: ['500 1000 20 30\n', '1000 1000 1 1\n', '1500 1000 176 177\n'] Demo Output: ['Vasya\n', 'Tie\n', 'Misha\n'] Note: none
```python a, b, c, d = map(int, input().split()) vasya = max(3 * b // 10, b - b // 250 * d) misha = max(3 * a // 10, a - a // 250 * c) if vasya > misha: print("Vasya") elif misha > vasya: print("Misha") else: print("Tie") ```
3
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" } ]
1,649,624,192
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
8
62
0
n, m = map(int, input().split()) liste = [] for s in range(m): ai, bi = map(int, input().split()) for k in range(ai): liste.append(bi) liste2 = sorted(liste, reverse=True) matches = 0 for i in range(n): matches += liste2[i] print(matches)
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()) liste = [] for s in range(m): ai, bi = map(int, input().split()) for k in range(ai): liste.append(bi) liste2 = sorted(liste, reverse=True) matches = 0 for i in range(n): matches += liste2[i] print(matches) ```
-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" } ]
1,593,018,134
2,147,483,647
PyPy 3
OK
TESTS
81
280
20,172,800
n = int(input()) data = [] for i in range(n): data.append(list(map(int, input().split()))) sum1 = sum(x[0] for x in data) sum2 = sum(x[1] for x in data) sum3 = sum(x[2] for x in data) if sum1 == 0 and sum2 == 0 and sum3 == 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 n = int(input()) data = [] for i in range(n): data.append(list(map(int, input().split()))) sum1 = sum(x[0] for x in data) sum2 = sum(x[1] for x in data) sum3 = sum(x[2] for x in data) if sum1 == 0 and sum2 == 0 and sum3 == 0: print("YES") else: print("NO") ```
3.892425
312
B
Archer
PROGRAMMING
1,300
[ "math", "probabilities" ]
null
null
SmallR is an archer. SmallR is taking a match of archer with Zanoes. They try to shoot in the target in turns, and SmallR shoots first. The probability of shooting the target each time is for SmallR while for Zanoes. The one who shoots in the target first should be the winner. Output the probability that SmallR will win the match.
A single line contains four integers .
Print a single real number, the probability that SmallR will win the match. The answer will be considered correct if the absolute or relative error doesn't exceed 10<=-<=6.
[ "1 2 1 2\n" ]
[ "0.666666666667" ]
none
1,000
[ { "input": "1 2 1 2", "output": "0.666666666667" }, { "input": "1 3 1 3", "output": "0.600000000000" }, { "input": "1 3 2 3", "output": "0.428571428571" }, { "input": "3 4 3 4", "output": "0.800000000000" }, { "input": "1 2 10 11", "output": "0.523809523810" }, { "input": "4 5 4 5", "output": "0.833333333333" }, { "input": "466 701 95 721", "output": "0.937693791148" }, { "input": "268 470 444 885", "output": "0.725614009325" }, { "input": "632 916 713 821", "output": "0.719292895126" }, { "input": "269 656 918 992", "output": "0.428937461623" }, { "input": "71 657 187 695", "output": "0.310488463257" }, { "input": "435 852 973 978", "output": "0.511844133157" }, { "input": "518 816 243 359", "output": "0.719734031025" }, { "input": "882 962 311 811", "output": "0.966386645447" }, { "input": "684 774 580 736", "output": "0.906051574446" }, { "input": "486 868 929 999", "output": "0.577723252958" }, { "input": "132 359 996 998", "output": "0.368154532345" }, { "input": "933 977 266 450", "output": "0.972879407907" }, { "input": "298 833 615 872", "output": "0.441270817024" }, { "input": "34 554 14 958", "output": "0.817324099167" }, { "input": "836 934 800 905", "output": "0.906105535462" }, { "input": "482 815 69 509", "output": "0.914365577772" }, { "input": "284 423 137 521", "output": "0.885974839378" }, { "input": "648 881 486 703", "output": "0.800911421248" }, { "input": "450 885 755 836", "output": "0.533901011176" }, { "input": "533 773 823 998", "output": "0.729222130525" }, { "input": "897 957 92 898", "output": "0.993193806364" }, { "input": "699 925 441 928", "output": "0.866816866175" }, { "input": "64 704 148 603", "output": "0.289486317811" }, { "input": "719 735 626 990", "output": "0.986124079764" }, { "input": "1 1000 1 1000", "output": "0.500250125063" } ]
1,602,868,270
2,147,483,647
Python 3
OK
TESTS
31
109
0
a, b, c, d = [int(i) for i in input().split()] p1 = a/b p2 = c/d awns = p1 / (1 - (1-p1) * (1 - p2)) print(awns)
Title: Archer Time Limit: None seconds Memory Limit: None megabytes Problem Description: SmallR is an archer. SmallR is taking a match of archer with Zanoes. They try to shoot in the target in turns, and SmallR shoots first. The probability of shooting the target each time is for SmallR while for Zanoes. The one who shoots in the target first should be the winner. Output the probability that SmallR will win the match. Input Specification: A single line contains four integers . Output Specification: Print a single real number, the probability that SmallR will win the match. The answer will be considered correct if the absolute or relative error doesn't exceed 10<=-<=6. Demo Input: ['1 2 1 2\n'] Demo Output: ['0.666666666667'] Note: none
```python a, b, c, d = [int(i) for i in input().split()] p1 = a/b p2 = c/d awns = p1 / (1 - (1-p1) * (1 - p2)) print(awns) ```
3
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" } ]
1,669,775,949
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
60
0
n, t=map(int, input().split()) arr=[int(i) for i in input().split()] arr=sorted(arr) total=0 for i in range(n): if total<t: total+=arr[i] if total>=t or i==n-1: print(i+1) break
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=map(int, input().split()) arr=[int(i) for i in input().split()] arr=sorted(arr) total=0 for i in range(n): if total<t: total+=arr[i] if total>=t or i==n-1: print(i+1) break ```
0
387
B
George and Round
PROGRAMMING
1,200
[ "brute force", "greedy", "two pointers" ]
null
null
George decided to prepare a Codesecrof round, so he has prepared *m* problems for the round. Let's number the problems with integers 1 through *m*. George estimates the *i*-th problem's complexity by integer *b**i*. To make the round good, he needs to put at least *n* problems there. Besides, he needs to have at least one problem with complexity exactly *a*1, at least one with complexity exactly *a*2, ..., and at least one with complexity exactly *a**n*. Of course, the round can also have problems with other complexities. George has a poor imagination. It's easier for him to make some already prepared problem simpler than to come up with a new one and prepare it. George is magnificent at simplifying problems. He can simplify any already prepared problem with complexity *c* to any positive integer complexity *d* (*c*<=≥<=*d*), by changing limits on the input data. However, nothing is so simple. George understood that even if he simplifies some problems, he can run out of problems for a good round. That's why he decided to find out the minimum number of problems he needs to come up with in addition to the *m* he's prepared in order to make a good round. Note that George can come up with a new problem of any complexity.
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=3000) — the minimal number of problems in a good round and the number of problems George's prepared. The second line contains space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a*1<=&lt;<=*a*2<=&lt;<=...<=&lt;<=*a**n*<=≤<=106) — the requirements for the complexity of the problems in a good round. The third line contains space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b*1<=≤<=*b*2...<=≤<=*b**m*<=≤<=106) — the complexities of the problems prepared by George.
Print a single integer — the answer to the problem.
[ "3 5\n1 2 3\n1 2 2 3 3\n", "3 5\n1 2 3\n1 1 1 1 1\n", "3 1\n2 3 4\n1\n" ]
[ "0\n", "2\n", "3\n" ]
In the first sample the set of the prepared problems meets the requirements for a good round. In the second sample, it is enough to come up with and prepare two problems with complexities 2 and 3 to get a good round. In the third sample it is very easy to get a good round if come up with and prepare extra problems with complexities: 2, 3, 4.
1,000
[ { "input": "3 5\n1 2 3\n1 2 2 3 3", "output": "0" }, { "input": "3 5\n1 2 3\n1 1 1 1 1", "output": "2" }, { "input": "3 1\n2 3 4\n1", "output": "3" }, { "input": "29 100\n20 32 41 67 72 155 331 382 399 412 465 470 484 511 515 529 616 637 679 715 733 763 826 843 862 903 925 979 989\n15 15 15 17 18 19 19 20 21 21 22 24 25 26 26 27 28 31 32 32 37 38 38 39 39 40 41 42 43 43 45 45 46 47 49 49 50 50 50 51 52 53 53 55 56 57 59 59 59 60 60 62 62 63 63 64 64 64 66 67 69 69 70 70 72 72 73 74 75 76 77 78 80 80 81 81 83 83 83 84 86 86 86 86 87 88 89 91 91 91 92 93 94 94 96 97 97 97 98 98", "output": "24" } ]
1,553,755,260
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
78
0
n, m = map(int,input().split()) s = list(map(int,input().split())) a = list(map(int,input().split())) for i in range(m): g.append(s[:]) g.append(a[:])
Title: George and Round Time Limit: None seconds Memory Limit: None megabytes Problem Description: George decided to prepare a Codesecrof round, so he has prepared *m* problems for the round. Let's number the problems with integers 1 through *m*. George estimates the *i*-th problem's complexity by integer *b**i*. To make the round good, he needs to put at least *n* problems there. Besides, he needs to have at least one problem with complexity exactly *a*1, at least one with complexity exactly *a*2, ..., and at least one with complexity exactly *a**n*. Of course, the round can also have problems with other complexities. George has a poor imagination. It's easier for him to make some already prepared problem simpler than to come up with a new one and prepare it. George is magnificent at simplifying problems. He can simplify any already prepared problem with complexity *c* to any positive integer complexity *d* (*c*<=≥<=*d*), by changing limits on the input data. However, nothing is so simple. George understood that even if he simplifies some problems, he can run out of problems for a good round. That's why he decided to find out the minimum number of problems he needs to come up with in addition to the *m* he's prepared in order to make a good round. Note that George can come up with a new problem of any complexity. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=3000) — the minimal number of problems in a good round and the number of problems George's prepared. The second line contains space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a*1<=&lt;<=*a*2<=&lt;<=...<=&lt;<=*a**n*<=≤<=106) — the requirements for the complexity of the problems in a good round. The third line contains space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b*1<=≤<=*b*2...<=≤<=*b**m*<=≤<=106) — the complexities of the problems prepared by George. Output Specification: Print a single integer — the answer to the problem. Demo Input: ['3 5\n1 2 3\n1 2 2 3 3\n', '3 5\n1 2 3\n1 1 1 1 1\n', '3 1\n2 3 4\n1\n'] Demo Output: ['0\n', '2\n', '3\n'] Note: In the first sample the set of the prepared problems meets the requirements for a good round. In the second sample, it is enough to come up with and prepare two problems with complexities 2 and 3 to get a good round. In the third sample it is very easy to get a good round if come up with and prepare extra problems with complexities: 2, 3, 4.
```python n, m = map(int,input().split()) s = list(map(int,input().split())) a = list(map(int,input().split())) for i in range(m): g.append(s[:]) g.append(a[:]) ```
-1
994
B
Knights of a Polygonal Table
PROGRAMMING
1,400
[ "greedy", "implementation", "sortings" ]
null
null
Unlike Knights of a Round Table, Knights of a Polygonal Table deprived of nobility and happy to kill each other. But each knight has some power and a knight can kill another knight if and only if his power is greater than the power of victim. However, even such a knight will torment his conscience, so he can kill no more than $k$ other knights. Also, each knight has some number of coins. After a kill, a knight can pick up all victim's coins. Now each knight ponders: how many coins he can have if only he kills other knights? You should answer this question for each knight.
The first line contains two integers $n$ and $k$ $(1 \le n \le 10^5, 0 \le k \le \min(n-1,10))$ — the number of knights and the number $k$ from the statement. The second line contains $n$ integers $p_1, p_2 ,\ldots,p_n$ $(1 \le p_i \le 10^9)$ — powers of the knights. All $p_i$ are distinct. The third line contains $n$ integers $c_1, c_2 ,\ldots,c_n$ $(0 \le c_i \le 10^9)$ — the number of coins each knight has.
Print $n$ integers — the maximum number of coins each knight can have it only he kills other knights.
[ "4 2\n4 5 9 7\n1 2 11 33\n", "5 1\n1 2 3 4 5\n1 2 3 4 5\n", "1 0\n2\n3\n" ]
[ "1 3 46 36 ", "1 3 5 7 9 ", "3 " ]
Consider the first example. - The first knight is the weakest, so he can't kill anyone. That leaves him with the only coin he initially has. - The second knight can kill the first knight and add his coin to his own two. - The third knight is the strongest, but he can't kill more than $k = 2$ other knights. It is optimal to kill the second and the fourth knights: $2+11+33 = 46$. - The fourth knight should kill the first and the second knights: $33+1+2 = 36$. In the second example the first knight can't kill anyone, while all the others should kill the one with the index less by one than their own. In the third example there is only one knight, so he can't kill anyone.
1,000
[ { "input": "4 2\n4 5 9 7\n1 2 11 33", "output": "1 3 46 36 " }, { "input": "5 1\n1 2 3 4 5\n1 2 3 4 5", "output": "1 3 5 7 9 " }, { "input": "1 0\n2\n3", "output": "3 " }, { "input": "7 1\n2 3 4 5 7 8 9\n0 3 7 9 5 8 9", "output": "0 3 10 16 14 17 18 " }, { "input": "7 2\n2 4 6 7 8 9 10\n10 8 4 8 4 5 9", "output": "10 18 22 26 22 23 27 " }, { "input": "11 10\n1 2 3 4 5 6 7 8 9 10 11\n1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000", "output": "1000000000 2000000000 3000000000 4000000000 5000000000 6000000000 7000000000 8000000000 9000000000 10000000000 11000000000 " }, { "input": "2 0\n2 3\n3 3", "output": "3 3 " }, { "input": "7 3\n1 2 3 4 5 6 7\n3 3 3 4 5 6 7", "output": "3 6 9 13 15 18 22 " }, { "input": "3 0\n3 2 1\n1 2 3", "output": "1 2 3 " }, { "input": "5 3\n4 5 7 9 11\n10 10 10 10 10", "output": "10 20 30 40 40 " }, { "input": "4 0\n4 5 9 7\n1 2 11 33", "output": "1 2 11 33 " }, { "input": "7 3\n1 2 3 4 5 6 7\n3 3 3 8 8 8 8", "output": "3 6 9 17 22 27 32 " }, { "input": "3 0\n1 2 3\n5 5 5", "output": "5 5 5 " }, { "input": "4 2\n4 5 9 7\n2 2 11 33", "output": "2 4 46 37 " }, { "input": "6 3\n1 2 3 4 5 6\n1 1 1 1 1 1", "output": "1 2 3 4 4 4 " }, { "input": "10 5\n1 2 3 4 5 6 7 8 9 10\n1 1 1 1 1 1 1 1 1 1", "output": "1 2 3 4 5 6 6 6 6 6 " }, { "input": "3 2\n1 2 3\n1 1 1", "output": "1 2 3 " }, { "input": "3 0\n1 2 3\n10 20 30", "output": "10 20 30 " }, { "input": "4 0\n4 5 9 7\n1 2 3 4", "output": "1 2 3 4 " }, { "input": "5 4\n1 2 3 4 5\n1 1 1 1 1", "output": "1 2 3 4 5 " }, { "input": "4 3\n1 2 3 4\n5 5 5 5", "output": "5 10 15 20 " }, { "input": "5 3\n1 2 3 4 5\n7 7 7 7 7", "output": "7 14 21 28 28 " } ]
1,529,171,867
4,967
Python 3
WRONG_ANSWER
PRETESTS
4
62
0
import sys def solve(): n,k = sys.stdin.readline().strip().split() n=int(n) k=int(k) s1=sys.stdin.readline().strip().split() s2=sys.stdin.readline().strip().split() s3=[] s4=[] for i in range(n): s1[i]=int(s1[i]) s2[i]=int(s2[i]) s3.append((s1[i],s2[i])) s4.append((s1[i],i)) s3.sort() s4.sort() b=s3[0][1] ll=n i=1 while i<ll: if s3[i][1]<=b: s3.pop(i) ll-=1 else: b=s3[i][1] i+=1 j=0 ans=[] for i in range(n): while j<len(s3): if s3[j][0]<s4[i][0]: j+=1 else: tt=0 for l in range(j-1,j-1-k,-1): if l>=0: tt+=s3[l][1] ans.append((s4[i][1],tt)) break if j==len(s3): tt=0 for l in (range(j-1,j-1-k,-1)): if l>=0: tt+=s3[l][1] ans.append((s4[i][1],tt)) ans.sort() for i in range(n-1): print(ans[i][1]+s2[i],end=" ") print(ans[n-1][1]+s2[n-1]) if __name__ == "__main__": solve()
Title: Knights of a Polygonal Table Time Limit: None seconds Memory Limit: None megabytes Problem Description: Unlike Knights of a Round Table, Knights of a Polygonal Table deprived of nobility and happy to kill each other. But each knight has some power and a knight can kill another knight if and only if his power is greater than the power of victim. However, even such a knight will torment his conscience, so he can kill no more than $k$ other knights. Also, each knight has some number of coins. After a kill, a knight can pick up all victim's coins. Now each knight ponders: how many coins he can have if only he kills other knights? You should answer this question for each knight. Input Specification: The first line contains two integers $n$ and $k$ $(1 \le n \le 10^5, 0 \le k \le \min(n-1,10))$ — the number of knights and the number $k$ from the statement. The second line contains $n$ integers $p_1, p_2 ,\ldots,p_n$ $(1 \le p_i \le 10^9)$ — powers of the knights. All $p_i$ are distinct. The third line contains $n$ integers $c_1, c_2 ,\ldots,c_n$ $(0 \le c_i \le 10^9)$ — the number of coins each knight has. Output Specification: Print $n$ integers — the maximum number of coins each knight can have it only he kills other knights. Demo Input: ['4 2\n4 5 9 7\n1 2 11 33\n', '5 1\n1 2 3 4 5\n1 2 3 4 5\n', '1 0\n2\n3\n'] Demo Output: ['1 3 46 36 ', '1 3 5 7 9 ', '3 '] Note: Consider the first example. - The first knight is the weakest, so he can't kill anyone. That leaves him with the only coin he initially has. - The second knight can kill the first knight and add his coin to his own two. - The third knight is the strongest, but he can't kill more than $k = 2$ other knights. It is optimal to kill the second and the fourth knights: $2+11+33 = 46$. - The fourth knight should kill the first and the second knights: $33+1+2 = 36$. In the second example the first knight can't kill anyone, while all the others should kill the one with the index less by one than their own. In the third example there is only one knight, so he can't kill anyone.
```python import sys def solve(): n,k = sys.stdin.readline().strip().split() n=int(n) k=int(k) s1=sys.stdin.readline().strip().split() s2=sys.stdin.readline().strip().split() s3=[] s4=[] for i in range(n): s1[i]=int(s1[i]) s2[i]=int(s2[i]) s3.append((s1[i],s2[i])) s4.append((s1[i],i)) s3.sort() s4.sort() b=s3[0][1] ll=n i=1 while i<ll: if s3[i][1]<=b: s3.pop(i) ll-=1 else: b=s3[i][1] i+=1 j=0 ans=[] for i in range(n): while j<len(s3): if s3[j][0]<s4[i][0]: j+=1 else: tt=0 for l in range(j-1,j-1-k,-1): if l>=0: tt+=s3[l][1] ans.append((s4[i][1],tt)) break if j==len(s3): tt=0 for l in (range(j-1,j-1-k,-1)): if l>=0: tt+=s3[l][1] ans.append((s4[i][1],tt)) ans.sort() for i in range(n-1): print(ans[i][1]+s2[i],end=" ") print(ans[n-1][1]+s2[n-1]) if __name__ == "__main__": solve() ```
0
525
A
Vitaliy and Pie
PROGRAMMING
1,100
[ "greedy", "hashing", "strings" ]
null
null
After a hard day Vitaly got very hungry and he wants to eat his favorite potato pie. But it's not that simple. Vitaly is in the first room of the house with *n* room located in a line and numbered starting from one from left to right. You can go from the first room to the second room, from the second room to the third room and so on — you can go from the (*n*<=-<=1)-th room to the *n*-th room. Thus, you can go to room *x* only from room *x*<=-<=1. The potato pie is located in the *n*-th room and Vitaly needs to go there. Each pair of consecutive rooms has a door between them. In order to go to room *x* from room *x*<=-<=1, you need to open the door between the rooms with the corresponding key. In total the house has several types of doors (represented by uppercase Latin letters) and several types of keys (represented by lowercase Latin letters). The key of type *t* can open the door of type *T* if and only if *t* and *T* are the same letter, written in different cases. For example, key f can open door F. Each of the first *n*<=-<=1 rooms contains exactly one key of some type that Vitaly can use to get to next rooms. Once the door is open with some key, Vitaly won't get the key from the keyhole but he will immediately run into the next room. In other words, each key can open no more than one door. Vitaly realizes that he may end up in some room without the key that opens the door to the next room. Before the start his run for the potato pie Vitaly can buy any number of keys of any type that is guaranteed to get to room *n*. Given the plan of the house, Vitaly wants to know what is the minimum number of keys he needs to buy to surely get to the room *n*, which has a delicious potato pie. Write a program that will help Vitaly find out this number.
The first line of the input contains a positive integer *n* (2<=≤<=*n*<=≤<=105) — the number of rooms in the house. The second line of the input contains string *s* of length 2·*n*<=-<=2. Let's number the elements of the string from left to right, starting from one. The odd positions in the given string *s* contain lowercase Latin letters — the types of the keys that lie in the corresponding rooms. Thus, each odd position *i* of the given string *s* contains a lowercase Latin letter — the type of the key that lies in room number (*i*<=+<=1)<=/<=2. The even positions in the given string contain uppercase Latin letters — the types of doors between the rooms. Thus, each even position *i* of the given string *s* contains an uppercase letter — the type of the door that leads from room *i*<=/<=2 to room *i*<=/<=2<=+<=1.
Print the only integer — the minimum number of keys that Vitaly needs to buy to surely get from room one to room *n*.
[ "3\naAbB\n", "4\naBaCaB\n", "5\nxYyXzZaZ\n" ]
[ "0\n", "3\n", "2\n" ]
none
250
[ { "input": "3\naAbB", "output": "0" }, { "input": "4\naBaCaB", "output": "3" }, { "input": "5\nxYyXzZaZ", "output": "2" }, { "input": "26\naAbBcCdDeEfFgGhHiIjJkKlLmMnNoOpPqQrRsStTuUvVwWxXyY", "output": "0" }, { "input": "26\nzAyBxCwDvEuFtGsHrIqJpKoLnMmNlOkPjQiRhSgTfUeVdWcXbY", "output": "13" }, { "input": "5\naArRaRaR", "output": "2" }, { "input": "2\ndA", "output": "1" }, { "input": "2\ncB", "output": "1" }, { "input": "10\nhNcMeXsSlHsUwYeMcA", "output": "7" }, { "input": "100\nqDpInBmCrFwXpDbFgOzVvOcEmJrUcToAdEwEgTvBvBfWwRpGyEaXgDdRwVlQnYgWmWhMrHaIzPyXvGaFlRsVzHhZrOuVpXrKxFzAmWwPlFtNfPtJxVmLuHjKfYyArHrEnSwSzOvDpQhCgCqLlAcNpGhXrEeFuCmAqIkXyYtSsQwIxJzNiIuTgEbVuWrMwPrAlLyKaZ", "output": "42" }, { "input": "2\ndD", "output": "0" }, { "input": "2\ndE", "output": "1" }, { "input": "3\ndDdD", "output": "0" }, { "input": "3\ndEdD", "output": "1" }, { "input": "3\ndEeD", "output": "1" }, { "input": "3\ndEeF", "output": "2" } ]
1,585,242,611
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
7
186
18,944,000
n = int(input()) s = input() rooms = {} doors = {} keys = set() for i in range(len(s)): if i%2==0: rooms[(i+2)//2] = s[i] else: doors[(i+1)//2] = s[i] count=0 for i in range(1,n): keys.add(rooms[i]) if doors[i].lower() in keys: keys.remove(doors[i].lower()) continue if ord(rooms[i])-97 != ord(doors[i])-65: count+=1 print(count)
Title: Vitaliy and Pie Time Limit: None seconds Memory Limit: None megabytes Problem Description: After a hard day Vitaly got very hungry and he wants to eat his favorite potato pie. But it's not that simple. Vitaly is in the first room of the house with *n* room located in a line and numbered starting from one from left to right. You can go from the first room to the second room, from the second room to the third room and so on — you can go from the (*n*<=-<=1)-th room to the *n*-th room. Thus, you can go to room *x* only from room *x*<=-<=1. The potato pie is located in the *n*-th room and Vitaly needs to go there. Each pair of consecutive rooms has a door between them. In order to go to room *x* from room *x*<=-<=1, you need to open the door between the rooms with the corresponding key. In total the house has several types of doors (represented by uppercase Latin letters) and several types of keys (represented by lowercase Latin letters). The key of type *t* can open the door of type *T* if and only if *t* and *T* are the same letter, written in different cases. For example, key f can open door F. Each of the first *n*<=-<=1 rooms contains exactly one key of some type that Vitaly can use to get to next rooms. Once the door is open with some key, Vitaly won't get the key from the keyhole but he will immediately run into the next room. In other words, each key can open no more than one door. Vitaly realizes that he may end up in some room without the key that opens the door to the next room. Before the start his run for the potato pie Vitaly can buy any number of keys of any type that is guaranteed to get to room *n*. Given the plan of the house, Vitaly wants to know what is the minimum number of keys he needs to buy to surely get to the room *n*, which has a delicious potato pie. Write a program that will help Vitaly find out this number. Input Specification: The first line of the input contains a positive integer *n* (2<=≤<=*n*<=≤<=105) — the number of rooms in the house. The second line of the input contains string *s* of length 2·*n*<=-<=2. Let's number the elements of the string from left to right, starting from one. The odd positions in the given string *s* contain lowercase Latin letters — the types of the keys that lie in the corresponding rooms. Thus, each odd position *i* of the given string *s* contains a lowercase Latin letter — the type of the key that lies in room number (*i*<=+<=1)<=/<=2. The even positions in the given string contain uppercase Latin letters — the types of doors between the rooms. Thus, each even position *i* of the given string *s* contains an uppercase letter — the type of the door that leads from room *i*<=/<=2 to room *i*<=/<=2<=+<=1. Output Specification: Print the only integer — the minimum number of keys that Vitaly needs to buy to surely get from room one to room *n*. Demo Input: ['3\naAbB\n', '4\naBaCaB\n', '5\nxYyXzZaZ\n'] Demo Output: ['0\n', '3\n', '2\n'] Note: none
```python n = int(input()) s = input() rooms = {} doors = {} keys = set() for i in range(len(s)): if i%2==0: rooms[(i+2)//2] = s[i] else: doors[(i+1)//2] = s[i] count=0 for i in range(1,n): keys.add(rooms[i]) if doors[i].lower() in keys: keys.remove(doors[i].lower()) continue if ord(rooms[i])-97 != ord(doors[i])-65: count+=1 print(count) ```
0
1,000
B
Light It Up
PROGRAMMING
1,500
[ "greedy" ]
null
null
Recently, you bought a brand new smart lamp with programming features. At first, you set up a schedule to the lamp. Every day it will turn power on at moment $0$ and turn power off at moment $M$. Moreover, the lamp allows you to set a program of switching its state (states are "lights on" and "lights off"). Unfortunately, some program is already installed into the lamp. The lamp allows only good programs. Good program can be represented as a non-empty array $a$, where $0 &lt; a_1 &lt; a_2 &lt; \dots &lt; a_{|a|} &lt; M$. All $a_i$ must be integers. Of course, preinstalled program is a good program. The lamp follows program $a$ in next manner: at moment $0$ turns power and light on. Then at moment $a_i$ the lamp flips its state to opposite (if it was lit, it turns off, and vice versa). The state of the lamp flips instantly: for example, if you turn the light off at moment $1$ and then do nothing, the total time when the lamp is lit will be $1$. Finally, at moment $M$ the lamp is turning its power off regardless of its state. Since you are not among those people who read instructions, and you don't understand the language it's written in, you realize (after some testing) the only possible way to alter the preinstalled program. You can insert at most one element into the program $a$, so it still should be a good program after alteration. Insertion can be done between any pair of consecutive elements of $a$, or even at the begining or at the end of $a$. Find such a way to alter the program that the total time when the lamp is lit is maximum possible. Maybe you should leave program untouched. If the lamp is lit from $x$ till moment $y$, then its lit for $y - x$ units of time. Segments of time when the lamp is lit are summed up.
First line contains two space separated integers $n$ and $M$ ($1 \le n \le 10^5$, $2 \le M \le 10^9$) — the length of program $a$ and the moment when power turns off. Second line contains $n$ space separated integers $a_1, a_2, \dots, a_n$ ($0 &lt; a_1 &lt; a_2 &lt; \dots &lt; a_n &lt; M$) — initially installed program $a$.
Print the only integer — maximum possible total time when the lamp is lit.
[ "3 10\n4 6 7\n", "2 12\n1 10\n", "2 7\n3 4\n" ]
[ "8\n", "9\n", "6\n" ]
In the first example, one of possible optimal solutions is to insert value $x = 3$ before $a_1$, so program will be $[3, 4, 6, 7]$ and time of lamp being lit equals $(3 - 0) + (6 - 4) + (10 - 7) = 8$. Other possible solution is to insert $x = 5$ in appropriate place. In the second example, there is only one optimal solution: to insert $x = 2$ between $a_1$ and $a_2$. Program will become $[1, 2, 10]$, and answer will be $(1 - 0) + (10 - 2) = 9$. In the third example, optimal answer is to leave program untouched, so answer will be $(3 - 0) + (7 - 4) = 6$.
0
[ { "input": "3 10\n4 6 7", "output": "8" }, { "input": "2 12\n1 10", "output": "9" }, { "input": "2 7\n3 4", "output": "6" }, { "input": "1 2\n1", "output": "1" }, { "input": "5 10\n1 3 5 6 8", "output": "6" }, { "input": "7 1000000000\n1 10001 10011 20011 20021 40021 40031", "output": "999999969" }, { "input": "7 1000000000\n3 10001 10011 20011 20021 40021 40031", "output": "999999969" }, { "input": "1 10\n1", "output": "9" }, { "input": "1 10000000\n1", "output": "9999999" }, { "input": "1 8\n1", "output": "7" }, { "input": "7 17\n1 5 9 10 11 14 16", "output": "9" }, { "input": "4 17\n1 5 9 10", "output": "12" }, { "input": "5 12\n1 2 3 4 5", "output": "9" }, { "input": "2 1000000000\n100 111", "output": "999999989" }, { "input": "3 90591\n90579 90580 90581", "output": "90589" }, { "input": "5 16\n1 2 3 4 5", "output": "13" }, { "input": "6 981231233\n1 6 15 30 130 1875", "output": "981229468" }, { "input": "1 3\n1", "output": "2" }, { "input": "3 12\n4 7 11", "output": "8" }, { "input": "1 100000\n1", "output": "99999" }, { "input": "2 5\n1 3", "output": "3" }, { "input": "1 1000000000\n1", "output": "999999999" }, { "input": "1 1000000000\n999999999", "output": "999999999" }, { "input": "3 4\n1 2 3", "output": "2" }, { "input": "3 5\n1 2 3", "output": "3" }, { "input": "1 4\n2", "output": "3" }, { "input": "3 5\n1 3 4", "output": "3" }, { "input": "9 20\n5 9 11 12 14 15 16 17 19", "output": "12" }, { "input": "2 4\n1 2", "output": "3" }, { "input": "1 10\n2", "output": "9" }, { "input": "2 6\n2 4", "output": "4" }, { "input": "2 4\n1 3", "output": "2" }, { "input": "3 6\n1 2 4", "output": "4" }, { "input": "7 9863\n65 96 97 98 101 112 1115", "output": "9819" } ]
1,635,650,294
2,147,483,647
Python 3
OK
TESTS
39
217
12,902,400
n, M = map(int, input().split()) op = list(map(int, input().split())) switch = 1 time = [0] * (n+2) op.append(0) op.sort() for i in range(1, n+1): time[i] += time[i-1] + switch*(op[i]-op[i-1]) switch = 1 - switch time[n+1] = time[n] + switch * (M-op[n]) maxHour = time[n+1] for i in range(1, n+1): maxHour = max(maxHour, time[i]+M-op[i]-(time[n+1]-time[i])-1) print(maxHour)
Title: Light It Up Time Limit: None seconds Memory Limit: None megabytes Problem Description: Recently, you bought a brand new smart lamp with programming features. At first, you set up a schedule to the lamp. Every day it will turn power on at moment $0$ and turn power off at moment $M$. Moreover, the lamp allows you to set a program of switching its state (states are "lights on" and "lights off"). Unfortunately, some program is already installed into the lamp. The lamp allows only good programs. Good program can be represented as a non-empty array $a$, where $0 &lt; a_1 &lt; a_2 &lt; \dots &lt; a_{|a|} &lt; M$. All $a_i$ must be integers. Of course, preinstalled program is a good program. The lamp follows program $a$ in next manner: at moment $0$ turns power and light on. Then at moment $a_i$ the lamp flips its state to opposite (if it was lit, it turns off, and vice versa). The state of the lamp flips instantly: for example, if you turn the light off at moment $1$ and then do nothing, the total time when the lamp is lit will be $1$. Finally, at moment $M$ the lamp is turning its power off regardless of its state. Since you are not among those people who read instructions, and you don't understand the language it's written in, you realize (after some testing) the only possible way to alter the preinstalled program. You can insert at most one element into the program $a$, so it still should be a good program after alteration. Insertion can be done between any pair of consecutive elements of $a$, or even at the begining or at the end of $a$. Find such a way to alter the program that the total time when the lamp is lit is maximum possible. Maybe you should leave program untouched. If the lamp is lit from $x$ till moment $y$, then its lit for $y - x$ units of time. Segments of time when the lamp is lit are summed up. Input Specification: First line contains two space separated integers $n$ and $M$ ($1 \le n \le 10^5$, $2 \le M \le 10^9$) — the length of program $a$ and the moment when power turns off. Second line contains $n$ space separated integers $a_1, a_2, \dots, a_n$ ($0 &lt; a_1 &lt; a_2 &lt; \dots &lt; a_n &lt; M$) — initially installed program $a$. Output Specification: Print the only integer — maximum possible total time when the lamp is lit. Demo Input: ['3 10\n4 6 7\n', '2 12\n1 10\n', '2 7\n3 4\n'] Demo Output: ['8\n', '9\n', '6\n'] Note: In the first example, one of possible optimal solutions is to insert value $x = 3$ before $a_1$, so program will be $[3, 4, 6, 7]$ and time of lamp being lit equals $(3 - 0) + (6 - 4) + (10 - 7) = 8$. Other possible solution is to insert $x = 5$ in appropriate place. In the second example, there is only one optimal solution: to insert $x = 2$ between $a_1$ and $a_2$. Program will become $[1, 2, 10]$, and answer will be $(1 - 0) + (10 - 2) = 9$. In the third example, optimal answer is to leave program untouched, so answer will be $(3 - 0) + (7 - 4) = 6$.
```python n, M = map(int, input().split()) op = list(map(int, input().split())) switch = 1 time = [0] * (n+2) op.append(0) op.sort() for i in range(1, n+1): time[i] += time[i-1] + switch*(op[i]-op[i-1]) switch = 1 - switch time[n+1] = time[n] + switch * (M-op[n]) maxHour = time[n+1] for i in range(1, n+1): maxHour = max(maxHour, time[i]+M-op[i]-(time[n+1]-time[i])-1) print(maxHour) ```
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" } ]
1,685,197,266
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
3
296
24,883,200
n, m = map(int, input().split()) c = list(map(int, input().split())) graph = {} visited = set() mn = [] ans = 0 def dfs(graph, node): if node not in visited: mn.append(c[node - 1]) visited.add(node) for neighbour in graph[node]: dfs(graph, neighbour) for i in range(n): graph[i + 1] = [] for i in range(m): x, y = map(int, input().split()) graph[x].append(y) for i in graph.keys(): mn = [] dfs(graph, i) if len(mn): ans += min(mn) 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 n, m = map(int, input().split()) c = list(map(int, input().split())) graph = {} visited = set() mn = [] ans = 0 def dfs(graph, node): if node not in visited: mn.append(c[node - 1]) visited.add(node) for neighbour in graph[node]: dfs(graph, neighbour) for i in range(n): graph[i + 1] = [] for i in range(m): x, y = map(int, input().split()) graph[x].append(y) for i in graph.keys(): mn = [] dfs(graph, i) if len(mn): ans += min(mn) print(ans) ```
-1
255
A
Greg's Workout
PROGRAMMING
800
[ "implementation" ]
null
null
Greg is a beginner bodybuilder. Today the gym coach gave him the training plan. All it had was *n* integers *a*1,<=*a*2,<=...,<=*a**n*. These numbers mean that Greg needs to do exactly *n* exercises today. Besides, Greg should repeat the *i*-th in order exercise *a**i* times. Greg now only does three types of exercises: "chest" exercises, "biceps" exercises and "back" exercises. Besides, his training is cyclic, that is, the first exercise he does is a "chest" one, the second one is "biceps", the third one is "back", the fourth one is "chest", the fifth one is "biceps", and so on to the *n*-th exercise. Now Greg wonders, which muscle will get the most exercise during his training. We know that the exercise Greg repeats the maximum number of times, trains the corresponding muscle the most. Help Greg, determine which muscle will get the most training.
The first line contains integer *n* (1<=≤<=*n*<=≤<=20). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=25) — the number of times Greg repeats the exercises.
Print word "chest" (without the quotes), if the chest gets the most exercise, "biceps" (without the quotes), if the biceps gets the most exercise and print "back" (without the quotes) if the back gets the most exercise. It is guaranteed that the input is such that the answer to the problem is unambiguous.
[ "2\n2 8\n", "3\n5 1 10\n", "7\n3 3 2 7 9 6 8\n" ]
[ "biceps\n", "back\n", "chest\n" ]
In the first sample Greg does 2 chest, 8 biceps and zero back exercises, so the biceps gets the most exercises. In the second sample Greg does 5 chest, 1 biceps and 10 back exercises, so the back gets the most exercises. In the third sample Greg does 18 chest, 12 biceps and 8 back exercises, so the chest gets the most exercise.
500
[ { "input": "2\n2 8", "output": "biceps" }, { "input": "3\n5 1 10", "output": "back" }, { "input": "7\n3 3 2 7 9 6 8", "output": "chest" }, { "input": "4\n5 6 6 2", "output": "chest" }, { "input": "5\n8 2 2 6 3", "output": "chest" }, { "input": "6\n8 7 2 5 3 4", "output": "chest" }, { "input": "8\n7 2 9 10 3 8 10 6", "output": "chest" }, { "input": "9\n5 4 2 3 4 4 5 2 2", "output": "chest" }, { "input": "10\n4 9 8 5 3 8 8 10 4 2", "output": "biceps" }, { "input": "11\n10 9 7 6 1 3 9 7 1 3 5", "output": "chest" }, { "input": "12\n24 22 6 16 5 21 1 7 2 19 24 5", "output": "chest" }, { "input": "13\n24 10 5 7 16 17 2 7 9 20 15 2 24", "output": "chest" }, { "input": "14\n13 14 19 8 5 17 9 16 15 9 5 6 3 7", "output": "back" }, { "input": "15\n24 12 22 21 25 23 21 5 3 24 23 13 12 16 12", "output": "chest" }, { "input": "16\n12 6 18 6 25 7 3 1 1 17 25 17 6 8 17 8", "output": "biceps" }, { "input": "17\n13 8 13 4 9 21 10 10 9 22 14 23 22 7 6 14 19", "output": "chest" }, { "input": "18\n1 17 13 6 11 10 25 13 24 9 21 17 3 1 17 12 25 21", "output": "back" }, { "input": "19\n22 22 24 25 19 10 7 10 4 25 19 14 1 14 3 18 4 19 24", "output": "chest" }, { "input": "20\n9 8 22 11 18 14 15 10 17 11 2 1 25 20 7 24 4 25 9 20", "output": "chest" }, { "input": "1\n10", "output": "chest" }, { "input": "2\n15 3", "output": "chest" }, { "input": "3\n21 11 19", "output": "chest" }, { "input": "4\n19 24 13 15", "output": "chest" }, { "input": "5\n4 24 1 9 19", "output": "biceps" }, { "input": "6\n6 22 24 7 15 24", "output": "back" }, { "input": "7\n10 8 23 23 14 18 14", "output": "chest" }, { "input": "8\n5 16 8 9 17 16 14 7", "output": "biceps" }, { "input": "9\n12 3 10 23 6 4 22 13 12", "output": "chest" }, { "input": "10\n1 9 20 18 20 17 7 24 23 2", "output": "back" }, { "input": "11\n22 25 8 2 18 15 1 13 1 11 4", "output": "biceps" }, { "input": "12\n20 12 14 2 15 6 24 3 11 8 11 14", "output": "chest" }, { "input": "13\n2 18 8 8 8 20 5 22 15 2 5 19 18", "output": "back" }, { "input": "14\n1 6 10 25 17 13 21 11 19 4 15 24 5 22", "output": "biceps" }, { "input": "15\n13 5 25 13 17 25 19 21 23 17 12 6 14 8 6", "output": "back" }, { "input": "16\n10 15 2 17 22 12 14 14 6 11 4 13 9 8 21 14", "output": "chest" }, { "input": "17\n7 22 9 22 8 7 20 22 23 5 12 11 1 24 17 20 10", "output": "biceps" }, { "input": "18\n18 15 4 25 5 11 21 25 12 14 25 23 19 19 13 6 9 17", "output": "chest" }, { "input": "19\n3 1 3 15 15 25 10 25 23 10 9 21 13 23 19 3 24 21 14", "output": "back" }, { "input": "20\n19 18 11 3 6 14 3 3 25 3 1 19 25 24 23 12 7 4 8 6", "output": "back" }, { "input": "1\n19", "output": "chest" }, { "input": "2\n1 7", "output": "biceps" }, { "input": "3\n18 18 23", "output": "back" }, { "input": "4\n12 15 1 13", "output": "chest" }, { "input": "5\n11 14 25 21 21", "output": "biceps" }, { "input": "6\n11 9 12 11 22 18", "output": "biceps" }, { "input": "7\n11 1 16 20 21 25 20", "output": "chest" }, { "input": "8\n1 2 20 9 3 22 17 4", "output": "back" }, { "input": "9\n19 2 10 19 15 20 3 1 13", "output": "back" }, { "input": "10\n11 2 11 8 21 16 2 3 19 9", "output": "back" }, { "input": "20\n25 25 25 25 25 25 25 25 25 25 25 25 25 25 25 25 25 25 25 24", "output": "chest" }, { "input": "12\n4 24 21 3 13 24 22 13 12 21 1 15", "output": "back" }, { "input": "13\n14 14 16 2 13 5 1 14 9 4 16 8 3", "output": "biceps" }, { "input": "14\n1 9 15 4 11 8 25 3 9 14 13 2 1 11", "output": "biceps" }, { "input": "15\n4 19 10 6 16 12 5 11 7 23 1 24 11 7 17", "output": "back" }, { "input": "16\n2 8 2 8 13 22 20 12 22 23 18 13 18 22 11 17", "output": "chest" }, { "input": "17\n24 5 5 16 10 8 22 6 4 13 10 10 5 23 8 20 8", "output": "chest" }, { "input": "18\n14 8 9 12 11 18 24 1 14 24 18 5 12 17 1 10 1 22", "output": "chest" }, { "input": "19\n21 2 10 6 9 1 24 5 2 19 10 13 10 7 19 2 6 13 24", "output": "chest" }, { "input": "20\n7 1 14 17 6 6 18 13 12 3 25 4 3 19 22 24 16 14 1 23", "output": "biceps" }, { "input": "1\n19", "output": "chest" }, { "input": "20\n2 1 2 2 1 2 2 1 2 1 1 1 1 1 1 1 1 1 1 22", "output": "biceps" } ]
1,691,486,648
2,147,483,647
PyPy 3-64
OK
TESTS
61
124
0
n = int(input()) j = 0 a = [0] * 3 data = input().split() for el in data: a[j] += int(el) j += 1 if j == 3: j = 0 if a.index(max(a)) == 0: print('chest') elif a.index(max(a)) == 1: print('biceps') else: print('back')
Title: Greg's Workout Time Limit: None seconds Memory Limit: None megabytes Problem Description: Greg is a beginner bodybuilder. Today the gym coach gave him the training plan. All it had was *n* integers *a*1,<=*a*2,<=...,<=*a**n*. These numbers mean that Greg needs to do exactly *n* exercises today. Besides, Greg should repeat the *i*-th in order exercise *a**i* times. Greg now only does three types of exercises: "chest" exercises, "biceps" exercises and "back" exercises. Besides, his training is cyclic, that is, the first exercise he does is a "chest" one, the second one is "biceps", the third one is "back", the fourth one is "chest", the fifth one is "biceps", and so on to the *n*-th exercise. Now Greg wonders, which muscle will get the most exercise during his training. We know that the exercise Greg repeats the maximum number of times, trains the corresponding muscle the most. Help Greg, determine which muscle will get the most training. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=20). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=25) — the number of times Greg repeats the exercises. Output Specification: Print word "chest" (without the quotes), if the chest gets the most exercise, "biceps" (without the quotes), if the biceps gets the most exercise and print "back" (without the quotes) if the back gets the most exercise. It is guaranteed that the input is such that the answer to the problem is unambiguous. Demo Input: ['2\n2 8\n', '3\n5 1 10\n', '7\n3 3 2 7 9 6 8\n'] Demo Output: ['biceps\n', 'back\n', 'chest\n'] Note: In the first sample Greg does 2 chest, 8 biceps and zero back exercises, so the biceps gets the most exercises. In the second sample Greg does 5 chest, 1 biceps and 10 back exercises, so the back gets the most exercises. In the third sample Greg does 18 chest, 12 biceps and 8 back exercises, so the chest gets the most exercise.
```python n = int(input()) j = 0 a = [0] * 3 data = input().split() for el in data: a[j] += int(el) j += 1 if j == 3: j = 0 if a.index(max(a)) == 0: print('chest') elif a.index(max(a)) == 1: print('biceps') else: print('back') ```
3
369
A
Valera and Plates
PROGRAMMING
900
[ "greedy", "implementation" ]
null
null
Valera is a lazy student. He has *m* clean bowls and *k* clean plates. Valera has made an eating plan for the next *n* days. As Valera is lazy, he will eat exactly one dish per day. At that, in order to eat a dish, he needs exactly one clean plate or bowl. We know that Valera can cook only two types of dishes. He can eat dishes of the first type from bowls and dishes of the second type from either bowls or plates. When Valera finishes eating, he leaves a dirty plate/bowl behind. His life philosophy doesn't let him eat from dirty kitchenware. So sometimes he needs to wash his plate/bowl before eating. Find the minimum number of times Valera will need to wash a plate/bowl, if he acts optimally.
The first line of the input contains three integers *n*, *m*, *k* (1<=≤<=*n*,<=*m*,<=*k*<=≤<=1000) — the number of the planned days, the number of clean bowls and the number of clean plates. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=2). If *a**i* equals one, then on day *i* Valera will eat a first type dish. If *a**i* equals two, then on day *i* Valera will eat a second type dish.
Print a single integer — the minimum number of times Valera will need to wash a plate/bowl.
[ "3 1 1\n1 2 1\n", "4 3 1\n1 1 1 1\n", "3 1 2\n2 2 2\n", "8 2 2\n1 2 1 2 1 2 1 2\n" ]
[ "1\n", "1\n", "0\n", "4\n" ]
In the first sample Valera will wash a bowl only on the third day, so the answer is one. In the second sample, Valera will have the first type of the dish during all four days, and since there are only three bowls, he will wash a bowl exactly once. In the third sample, Valera will have the second type of dish for all three days, and as they can be eaten from either a plate or a bowl, he will never need to wash a plate/bowl.
500
[ { "input": "3 1 1\n1 2 1", "output": "1" }, { "input": "4 3 1\n1 1 1 1", "output": "1" }, { "input": "3 1 2\n2 2 2", "output": "0" }, { "input": "8 2 2\n1 2 1 2 1 2 1 2", "output": "4" }, { "input": "2 100 100\n2 2", "output": "0" }, { "input": "1 1 1\n2", "output": "0" }, { "input": "233 100 1\n2 2 1 1 1 2 2 2 2 1 1 2 2 2 1 2 2 1 1 1 2 2 1 1 1 1 2 1 2 2 1 1 2 2 1 2 2 1 2 1 2 1 2 2 2 1 1 1 1 2 1 2 1 1 2 1 1 2 2 1 2 1 2 1 1 1 1 1 1 1 1 1 2 1 2 2 2 1 1 2 2 1 1 1 1 2 1 1 2 1 2 2 2 1 1 1 2 2 2 1 1 1 1 2 1 2 1 1 1 1 2 2 2 1 1 2 1 2 1 1 1 1 1 2 1 1 1 1 1 2 1 1 2 2 1 2 1 1 2 2 1 1 2 2 1 1 1 2 2 1 1 2 1 2 1 2 2 1 2 2 2 2 2 1 2 2 2 2 2 1 2 2 1 2 2 1 1 1 2 2 1 1 2 2 1 1 2 1 1 2 2 1 2 2 2 2 2 2 1 2 2 2 2 2 1 1 2 2 2 2 2 2 1 1 1 2 1 2 2 2 2 2 2 2 2 1 1 2 1 2 1 2 2", "output": "132" }, { "input": "123 100 1\n2 2 2 1 1 2 2 2 2 1 1 2 2 2 1 2 2 2 2 1 2 2 2 1 1 1 2 2 2 2 1 2 2 2 2 2 2 1 2 1 2 1 2 2 2 1 2 1 2 2 1 2 2 1 2 2 1 2 2 1 2 2 2 1 1 1 1 1 1 1 1 1 2 2 2 2 2 1 1 2 2 1 1 1 1 2 1 2 2 1 2 2 2 1 1 1 2 2 2 1 2 2 2 2 1 2 2 2 2 1 2 2 2 1 1 2 1 2 1 2 1 1 1", "output": "22" }, { "input": "188 100 1\n2 2 1 1 1 2 2 2 2 1 1 2 2 2 1 2 2 1 1 1 2 2 1 1 1 1 2 1 2 2 1 1 2 2 1 2 2 1 2 1 2 1 2 2 2 1 1 1 1 2 1 2 1 1 2 1 1 2 2 1 2 1 2 1 1 1 1 1 1 1 1 1 2 1 2 2 2 1 1 2 2 1 1 1 1 2 1 1 2 1 2 2 2 1 1 1 2 2 2 1 1 1 1 2 1 2 1 1 1 1 2 2 2 1 1 2 1 2 1 1 1 1 1 2 1 1 1 1 1 2 1 1 2 2 1 2 1 1 2 2 1 1 2 2 1 1 1 2 2 1 1 2 1 2 1 2 2 1 2 2 2 2 2 1 2 2 2 2 2 1 2 2 1 2 2 1 1 1 2 2 1 1 2 2 1 1 2 1", "output": "87" }, { "input": "3 1 2\n1 1 1", "output": "2" }, { "input": "3 2 2\n1 1 1", "output": "1" }, { "input": "3 2 1\n1 1 1", "output": "1" }, { "input": "3 1 1\n1 1 1", "output": "2" }, { "input": "5 1 2\n2 2 2 2 2", "output": "2" }, { "input": "5 2 2\n2 2 2 2 2", "output": "1" }, { "input": "5 2 1\n2 2 2 2 2", "output": "2" }, { "input": "5 1 1\n2 2 2 2 2", "output": "3" }, { "input": "1 1 2\n2", "output": "0" }, { "input": "1 2 2\n2", "output": "0" }, { "input": "1 2 1\n2", "output": "0" }, { "input": "1 1 1\n2", "output": "0" }, { "input": "6 3 1\n1 1 2 2 2 2", "output": "2" }, { "input": "100 40 20\n2 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 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "40" }, { "input": "7 5 2\n2 2 1 1 1 1 1", "output": "0" }, { "input": "10 4 4\n2 2 2 2 2 2 1 1 1 1", "output": "2" }, { "input": "3 2 1\n2 1 1", "output": "0" }, { "input": "7 6 1\n2 1 1 1 1 1 1", "output": "0" }, { "input": "7 5 1\n1 1 1 2 2 2 2", "output": "1" }, { "input": "5 3 1\n1 1 2 2 2", "output": "1" }, { "input": "3 1 1\n2 2 2", "output": "1" }, { "input": "5 2 2\n2 2 2 2 2", "output": "1" }, { "input": "3 1 3\n1 1 1", "output": "2" }, { "input": "5 2 1\n1 1 2 2 2", "output": "2" }, { "input": "4 3 2\n2 1 1 1", "output": "0" }, { "input": "4 2 1\n1 2 2 2", "output": "1" }, { "input": "14 4 7\n1 1 1 2 2 2 2 2 2 2 2 2 2 2", "output": "3" }, { "input": "12 10 4\n2 2 2 2 2 2 1 1 1 1 1 1", "output": "0" }, { "input": "5 3 2\n2 2 1 1 1", "output": "0" } ]
1,582,659,141
2,147,483,647
Python 3
OK
TESTS
63
109
0
n,m,k=map(int,input().split()) a=list(map(int,input().split())) s=0 for i in range(n): if m<1 and k<1: s+=1 elif a[i]==1: if m<1: s+=1 else: m-=1 else: if k>0: k-=1 elif m>0: m-=1 else: s+=1 print(s)
Title: Valera and Plates Time Limit: None seconds Memory Limit: None megabytes Problem Description: Valera is a lazy student. He has *m* clean bowls and *k* clean plates. Valera has made an eating plan for the next *n* days. As Valera is lazy, he will eat exactly one dish per day. At that, in order to eat a dish, he needs exactly one clean plate or bowl. We know that Valera can cook only two types of dishes. He can eat dishes of the first type from bowls and dishes of the second type from either bowls or plates. When Valera finishes eating, he leaves a dirty plate/bowl behind. His life philosophy doesn't let him eat from dirty kitchenware. So sometimes he needs to wash his plate/bowl before eating. Find the minimum number of times Valera will need to wash a plate/bowl, if he acts optimally. Input Specification: The first line of the input contains three integers *n*, *m*, *k* (1<=≤<=*n*,<=*m*,<=*k*<=≤<=1000) — the number of the planned days, the number of clean bowls and the number of clean plates. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=2). If *a**i* equals one, then on day *i* Valera will eat a first type dish. If *a**i* equals two, then on day *i* Valera will eat a second type dish. Output Specification: Print a single integer — the minimum number of times Valera will need to wash a plate/bowl. Demo Input: ['3 1 1\n1 2 1\n', '4 3 1\n1 1 1 1\n', '3 1 2\n2 2 2\n', '8 2 2\n1 2 1 2 1 2 1 2\n'] Demo Output: ['1\n', '1\n', '0\n', '4\n'] Note: In the first sample Valera will wash a bowl only on the third day, so the answer is one. In the second sample, Valera will have the first type of the dish during all four days, and since there are only three bowls, he will wash a bowl exactly once. In the third sample, Valera will have the second type of dish for all three days, and as they can be eaten from either a plate or a bowl, he will never need to wash a plate/bowl.
```python n,m,k=map(int,input().split()) a=list(map(int,input().split())) s=0 for i in range(n): if m<1 and k<1: s+=1 elif a[i]==1: if m<1: s+=1 else: m-=1 else: if k>0: k-=1 elif m>0: m-=1 else: s+=1 print(s) ```
3
546
A
Soldier and Bananas
PROGRAMMING
800
[ "brute force", "implementation", "math" ]
null
null
A soldier wants to buy *w* bananas in the shop. He has to pay *k* dollars for the first banana, 2*k* dollars for the second one and so on (in other words, he has to pay *i*·*k* dollars for the *i*-th banana). He has *n* dollars. How many dollars does he have to borrow from his friend soldier to buy *w* bananas?
The first line contains three positive integers *k*,<=*n*,<=*w* (1<=<=≤<=<=*k*,<=*w*<=<=≤<=<=1000, 0<=≤<=*n*<=≤<=109), the cost of the first banana, initial number of dollars the soldier has and number of bananas he wants.
Output one integer — the amount of dollars that the soldier must borrow from his friend. If he doesn't have to borrow money, output 0.
[ "3 17 4\n" ]
[ "13" ]
none
500
[ { "input": "3 17 4", "output": "13" }, { "input": "1 2 1", "output": "0" }, { "input": "1 1 1", "output": "0" }, { "input": "1 5 6", "output": "16" }, { "input": "1 1000000000 1", "output": "0" }, { "input": "1000 0 1000", "output": "500500000" }, { "input": "859 453892 543", "output": "126416972" }, { "input": "1000 1000000000 1000", "output": "0" }, { "input": "1000 500500000 1000", "output": "0" }, { "input": "1000 500500001 1000", "output": "0" }, { "input": "1000 500499999 1000", "output": "1" }, { "input": "634 87973 214", "output": "14497197" }, { "input": "432 10000 241", "output": "12587552" }, { "input": "111 111111111 111", "output": "0" }, { "input": "20 43 3", "output": "77" } ]
1,695,757,272
2,147,483,647
Python 3
OK
TESTS
15
46
5,632,000
a,b,c = list(map(int,input().split())) if 1<=a<=1000 and 1<=c<=1000 and 0<=b<=pow(10,9): sum = 0 for i in range(1, c + 1): sum += i tk = sum * a print(tk - b) if b < tk else print(0)
Title: Soldier and Bananas Time Limit: None seconds Memory Limit: None megabytes Problem Description: A soldier wants to buy *w* bananas in the shop. He has to pay *k* dollars for the first banana, 2*k* dollars for the second one and so on (in other words, he has to pay *i*·*k* dollars for the *i*-th banana). He has *n* dollars. How many dollars does he have to borrow from his friend soldier to buy *w* bananas? Input Specification: The first line contains three positive integers *k*,<=*n*,<=*w* (1<=<=≤<=<=*k*,<=*w*<=<=≤<=<=1000, 0<=≤<=*n*<=≤<=109), the cost of the first banana, initial number of dollars the soldier has and number of bananas he wants. Output Specification: Output one integer — the amount of dollars that the soldier must borrow from his friend. If he doesn't have to borrow money, output 0. Demo Input: ['3 17 4\n'] Demo Output: ['13'] Note: none
```python a,b,c = list(map(int,input().split())) if 1<=a<=1000 and 1<=c<=1000 and 0<=b<=pow(10,9): sum = 0 for i in range(1, c + 1): sum += i tk = sum * a print(tk - b) if b < tk else print(0) ```
3
922
A
Cloning Toys
PROGRAMMING
1,300
[ "implementation" ]
null
null
Imp likes his plush toy a lot. Recently, he found a machine that can clone plush toys. Imp knows that if he applies the machine to an original toy, he additionally gets one more original toy and one copy, and if he applies the machine to a copied toy, he gets two additional copies. Initially, Imp has only one original toy. He wants to know if it is possible to use machine to get exactly *x* copied toys and *y* original toys? He can't throw toys away, and he can't apply the machine to a copy if he doesn't currently have any copies.
The only line contains two integers *x* and *y* (0<=≤<=*x*,<=*y*<=≤<=109) — the number of copies and the number of original toys Imp wants to get (including the initial one).
Print "Yes", if the desired configuration is possible, and "No" otherwise. You can print each letter in arbitrary case (upper or lower).
[ "6 3\n", "4 2\n", "1000 1001\n" ]
[ "Yes\n", "No\n", "Yes\n" ]
In the first example, Imp has to apply the machine twice to original toys and then twice to copies.
500
[ { "input": "6 3", "output": "Yes" }, { "input": "4 2", "output": "No" }, { "input": "1000 1001", "output": "Yes" }, { "input": "1000000000 999999999", "output": "Yes" }, { "input": "81452244 81452247", "output": "No" }, { "input": "188032448 86524683", "output": "Yes" }, { "input": "365289629 223844571", "output": "No" }, { "input": "247579518 361164458", "output": "No" }, { "input": "424836699 793451637", "output": "No" }, { "input": "602093880 930771525", "output": "No" }, { "input": "779351061 773124120", "output": "Yes" }, { "input": "661640950 836815080", "output": "No" }, { "input": "543930839 974134967", "output": "No" }, { "input": "16155311 406422145", "output": "No" }, { "input": "81601559 445618240", "output": "No" }, { "input": "963891449 582938127", "output": "No" }, { "input": "141148629 351661795", "output": "No" }, { "input": "318405810 783948974", "output": "No" }, { "input": "495662991 921268861", "output": "No" }, { "input": "1 0", "output": "No" }, { "input": "0 1", "output": "Yes" }, { "input": "0 0", "output": "No" }, { "input": "453462237 167520068", "output": "Yes" }, { "input": "630719418 9872663", "output": "Yes" }, { "input": "807976599 442159843", "output": "No" }, { "input": "690266488 579479730", "output": "No" }, { "input": "771581370 589752968", "output": "No" }, { "input": "948838551 727072855", "output": "No" }, { "input": "831128440 790763814", "output": "No" }, { "input": "303352912 928083702", "output": "No" }, { "input": "185642801 65403588", "output": "Yes" }, { "input": "67932690 202723476", "output": "No" }, { "input": "540157163 340043363", "output": "No" }, { "input": "422447052 772330542", "output": "No" }, { "input": "599704233 541054210", "output": "Yes" }, { "input": "481994122 678374097", "output": "No" }, { "input": "48564714 743566477", "output": "No" }, { "input": "225821895 880886365", "output": "No" }, { "input": "403079076 313173543", "output": "Yes" }, { "input": "1000000000 1000000000", "output": "No" }, { "input": "1 1", "output": "No" }, { "input": "1 2", "output": "Yes" }, { "input": "2 1", "output": "No" }, { "input": "2 2", "output": "No" }, { "input": "2 0", "output": "No" }, { "input": "0 2", "output": "No" }, { "input": "1000000000 1", "output": "No" }, { "input": "777777 0", "output": "No" }, { "input": "10 1", "output": "No" }, { "input": "7 0", "output": "No" }, { "input": "3 0", "output": "No" }, { "input": "3 2", "output": "Yes" } ]
1,658,238,761
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
19
46
0
# https://algoprog.ru/material/pc922pA x, y = map(int, input().split()) # x - копии, y - оригиналы if y - x == 1 or x > y and (x - y) % 2 != 0: print('Yes') else: print('No')
Title: Cloning Toys Time Limit: None seconds Memory Limit: None megabytes Problem Description: Imp likes his plush toy a lot. Recently, he found a machine that can clone plush toys. Imp knows that if he applies the machine to an original toy, he additionally gets one more original toy and one copy, and if he applies the machine to a copied toy, he gets two additional copies. Initially, Imp has only one original toy. He wants to know if it is possible to use machine to get exactly *x* copied toys and *y* original toys? He can't throw toys away, and he can't apply the machine to a copy if he doesn't currently have any copies. Input Specification: The only line contains two integers *x* and *y* (0<=≤<=*x*,<=*y*<=≤<=109) — the number of copies and the number of original toys Imp wants to get (including the initial one). Output Specification: Print "Yes", if the desired configuration is possible, and "No" otherwise. You can print each letter in arbitrary case (upper or lower). Demo Input: ['6 3\n', '4 2\n', '1000 1001\n'] Demo Output: ['Yes\n', 'No\n', 'Yes\n'] Note: In the first example, Imp has to apply the machine twice to original toys and then twice to copies.
```python # https://algoprog.ru/material/pc922pA x, y = map(int, input().split()) # x - копии, y - оригиналы if y - x == 1 or x > y and (x - y) % 2 != 0: print('Yes') else: print('No') ```
0
682
B
Alyona and Mex
PROGRAMMING
1,200
[ "sortings" ]
null
null
Someone gave Alyona an array containing *n* positive integers *a*1,<=*a*2,<=...,<=*a**n*. In one operation, Alyona can choose any element of the array and decrease it, i.e. replace with any positive integer that is smaller than the current one. Alyona can repeat this operation as many times as she wants. In particular, she may not apply any operation to the array at all. Formally, after applying some operations Alyona will get an array of *n* positive integers *b*1,<=*b*2,<=...,<=*b**n* such that 1<=≤<=*b**i*<=≤<=*a**i* for every 1<=≤<=*i*<=≤<=*n*. Your task is to determine the maximum possible value of mex of this array. Mex of an array in this problem is the minimum positive integer that doesn't appear in this array. For example, mex of the array containing 1, 3 and 4 is equal to 2, while mex of the array containing 2, 3 and 2 is equal to 1.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of elements in the Alyona's array. The second line of the input contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=109) — the elements of the array.
Print one positive integer — the maximum possible value of mex of the array after Alyona applies some (possibly none) operations.
[ "5\n1 3 3 3 6\n", "2\n2 1\n" ]
[ "5\n", "3\n" ]
In the first sample case if one will decrease the second element value to 2 and the fifth element value to 4 then the mex value of resulting array 1 2 3 3 4 will be equal to 5. To reach the answer to the second sample case one must not decrease any of the array elements.
1,000
[ { "input": "5\n1 3 3 3 6", "output": "5" }, { "input": "2\n2 1", "output": "3" }, { "input": "1\n1", "output": "2" }, { "input": "1\n1000000000", "output": "2" }, { "input": "1\n2", "output": "2" }, { "input": "2\n1 1", "output": "2" }, { "input": "2\n1 3", "output": "3" }, { "input": "2\n2 2", "output": "3" }, { "input": "2\n2 3", "output": "3" }, { "input": "2\n3 3", "output": "3" }, { "input": "3\n1 1 1", "output": "2" }, { "input": "3\n2 1 1", "output": "3" }, { "input": "3\n3 1 1", "output": "3" }, { "input": "3\n1 1 4", "output": "3" }, { "input": "3\n2 1 2", "output": "3" }, { "input": "3\n3 2 1", "output": "4" }, { "input": "3\n2 4 1", "output": "4" }, { "input": "3\n3 3 1", "output": "4" }, { "input": "3\n1 3 4", "output": "4" }, { "input": "3\n4 1 4", "output": "4" }, { "input": "3\n2 2 2", "output": "3" }, { "input": "3\n3 2 2", "output": "4" }, { "input": "3\n4 2 2", "output": "4" }, { "input": "3\n2 3 3", "output": "4" }, { "input": "3\n4 2 3", "output": "4" }, { "input": "3\n4 4 2", "output": "4" }, { "input": "3\n3 3 3", "output": "4" }, { "input": "3\n4 3 3", "output": "4" }, { "input": "3\n4 3 4", "output": "4" }, { "input": "3\n4 4 4", "output": "4" }, { "input": "4\n1 1 1 1", "output": "2" }, { "input": "4\n1 1 2 1", "output": "3" }, { "input": "4\n1 1 3 1", "output": "3" }, { "input": "4\n1 4 1 1", "output": "3" }, { "input": "4\n1 2 1 2", "output": "3" }, { "input": "4\n1 3 2 1", "output": "4" }, { "input": "4\n2 1 4 1", "output": "4" }, { "input": "4\n3 3 1 1", "output": "4" }, { "input": "4\n1 3 4 1", "output": "4" }, { "input": "4\n1 1 4 4", "output": "4" }, { "input": "4\n2 2 2 1", "output": "3" }, { "input": "4\n1 2 2 3", "output": "4" }, { "input": "4\n2 4 1 2", "output": "4" }, { "input": "4\n3 3 1 2", "output": "4" }, { "input": "4\n2 3 4 1", "output": "5" }, { "input": "4\n1 4 2 4", "output": "5" }, { "input": "4\n3 1 3 3", "output": "4" }, { "input": "4\n3 4 3 1", "output": "5" }, { "input": "4\n1 4 4 3", "output": "5" }, { "input": "4\n4 1 4 4", "output": "5" }, { "input": "4\n2 2 2 2", "output": "3" }, { "input": "4\n2 2 3 2", "output": "4" }, { "input": "4\n2 2 2 4", "output": "4" }, { "input": "4\n2 2 3 3", "output": "4" }, { "input": "4\n2 2 3 4", "output": "5" }, { "input": "4\n2 4 4 2", "output": "5" }, { "input": "4\n2 3 3 3", "output": "4" }, { "input": "4\n2 4 3 3", "output": "5" }, { "input": "4\n4 4 2 3", "output": "5" }, { "input": "4\n4 4 4 2", "output": "5" }, { "input": "4\n3 3 3 3", "output": "4" }, { "input": "4\n3 3 3 4", "output": "5" }, { "input": "4\n4 3 3 4", "output": "5" }, { "input": "4\n4 4 3 4", "output": "5" }, { "input": "4\n4 4 4 4", "output": "5" }, { "input": "11\n1 1 1 1 1 1 1 1 1 3 3", "output": "4" }, { "input": "20\n1 1 1 1 1 1 1 1 1 1 8 8 8 8 8 8 8 8 8 8", "output": "9" }, { "input": "4\n2 2 2 3", "output": "4" }, { "input": "3\n1 1 2", "output": "3" }, { "input": "15\n1 2 2 20 23 25 28 60 66 71 76 77 79 99 100", "output": "15" }, { "input": "7\n1 2 2 2 5 5 1", "output": "5" }, { "input": "4\n1 1 1 2", "output": "3" }, { "input": "5\n1 1 1 1 10000", "output": "3" }, { "input": "5\n1 1 1 1 2", "output": "3" }, { "input": "7\n1 3 3 3 3 3 6", "output": "5" }, { "input": "4\n1 1 1 3", "output": "3" }, { "input": "10\n1 1 1 1 1 1 1 1 1 100", "output": "3" }, { "input": "4\n1 1 2 2", "output": "3" }, { "input": "5\n1 1 1 3 4", "output": "4" }, { "input": "8\n1 1 1 1 2 2 3 40", "output": "5" }, { "input": "5\n1 1 1 1 1", "output": "2" }, { "input": "7\n1 2 2 2 2 2 4", "output": "4" }, { "input": "10\n1 1 1 10000000 10000000 10000000 10000000 10000000 10000000 10000000", "output": "9" }, { "input": "10\n1 1 1 1 1 1 1 1 2 3", "output": "4" }, { "input": "4\n8 8 8 8", "output": "5" }, { "input": "5\n5 6 6 6 7", "output": "6" } ]
1,520,951,509
2,147,483,647
Python 3
OK
TESTS
127
171
14,438,400
n=int(input()) a=sorted(list(map(int,input().split())));m=1 for i in range(n): if a[i]>=m: a[i]=m m+=1 print(m)
Title: Alyona and Mex Time Limit: None seconds Memory Limit: None megabytes Problem Description: Someone gave Alyona an array containing *n* positive integers *a*1,<=*a*2,<=...,<=*a**n*. In one operation, Alyona can choose any element of the array and decrease it, i.e. replace with any positive integer that is smaller than the current one. Alyona can repeat this operation as many times as she wants. In particular, she may not apply any operation to the array at all. Formally, after applying some operations Alyona will get an array of *n* positive integers *b*1,<=*b*2,<=...,<=*b**n* such that 1<=≤<=*b**i*<=≤<=*a**i* for every 1<=≤<=*i*<=≤<=*n*. Your task is to determine the maximum possible value of mex of this array. Mex of an array in this problem is the minimum positive integer that doesn't appear in this array. For example, mex of the array containing 1, 3 and 4 is equal to 2, while mex of the array containing 2, 3 and 2 is equal to 1. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of elements in the Alyona's array. The second line of the input contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=109) — the elements of the array. Output Specification: Print one positive integer — the maximum possible value of mex of the array after Alyona applies some (possibly none) operations. Demo Input: ['5\n1 3 3 3 6\n', '2\n2 1\n'] Demo Output: ['5\n', '3\n'] Note: In the first sample case if one will decrease the second element value to 2 and the fifth element value to 4 then the mex value of resulting array 1 2 3 3 4 will be equal to 5. To reach the answer to the second sample case one must not decrease any of the array elements.
```python n=int(input()) a=sorted(list(map(int,input().split())));m=1 for i in range(n): if a[i]>=m: a[i]=m m+=1 print(m) ```
3
39
D
Cubical Planet
PROGRAMMING
1,100
[ "math" ]
D. Cubical Planet
2
64
You can find anything whatsoever in our Galaxy! A cubical planet goes round an icosahedral star. Let us introduce a system of axes so that the edges of the cubical planet are parallel to the coordinate axes and two opposite vertices lay in the points (0,<=0,<=0) and (1,<=1,<=1). Two flies live on the planet. At the moment they are sitting on two different vertices of the cubical planet. Your task is to determine whether they see each other or not. The flies see each other when the vertices they occupy lie on the same face of the cube.
The first line contains three space-separated integers (0 or 1) — the coordinates of the first fly, the second line analogously contains the coordinates of the second fly.
Output "YES" (without quotes) if the flies see each other. Otherwise, output "NO".
[ "0 0 0\n0 1 0\n", "1 1 0\n0 1 0\n", "0 0 0\n1 1 1\n" ]
[ "YES\n", "YES\n", "NO\n" ]
none
0
[ { "input": "0 0 0\n0 1 0", "output": "YES" }, { "input": "1 1 0\n0 1 0", "output": "YES" }, { "input": "0 0 0\n1 1 1", "output": "NO" }, { "input": "0 0 0\n1 0 0", "output": "YES" }, { "input": "0 0 0\n0 1 0", "output": "YES" }, { "input": "0 0 0\n1 1 0", "output": "YES" }, { "input": "0 0 0\n0 0 1", "output": "YES" }, { "input": "0 0 0\n1 0 1", "output": "YES" }, { "input": "0 0 0\n0 1 1", "output": "YES" }, { "input": "0 0 0\n1 1 1", "output": "NO" }, { "input": "1 0 0\n0 0 0", "output": "YES" }, { "input": "1 0 0\n0 1 0", "output": "YES" }, { "input": "1 0 0\n1 1 0", "output": "YES" }, { "input": "1 0 0\n0 0 1", "output": "YES" }, { "input": "1 0 0\n1 0 1", "output": "YES" }, { "input": "1 0 0\n0 1 1", "output": "NO" }, { "input": "1 0 0\n1 1 1", "output": "YES" }, { "input": "0 1 0\n0 0 0", "output": "YES" }, { "input": "0 1 0\n1 0 0", "output": "YES" }, { "input": "0 1 0\n1 1 0", "output": "YES" }, { "input": "0 1 0\n0 0 1", "output": "YES" }, { "input": "0 1 0\n1 0 1", "output": "NO" }, { "input": "0 1 0\n0 1 1", "output": "YES" }, { "input": "0 1 0\n1 1 1", "output": "YES" }, { "input": "1 1 0\n0 0 0", "output": "YES" }, { "input": "1 1 0\n1 0 0", "output": "YES" }, { "input": "1 1 0\n0 1 0", "output": "YES" }, { "input": "1 1 0\n0 0 1", "output": "NO" }, { "input": "1 1 0\n1 0 1", "output": "YES" }, { "input": "1 1 0\n0 1 1", "output": "YES" }, { "input": "1 1 0\n1 1 1", "output": "YES" }, { "input": "0 0 1\n0 0 0", "output": "YES" }, { "input": "0 0 1\n1 0 0", "output": "YES" }, { "input": "0 0 1\n0 1 0", "output": "YES" }, { "input": "0 0 1\n1 1 0", "output": "NO" }, { "input": "0 0 1\n1 0 1", "output": "YES" }, { "input": "0 0 1\n0 1 1", "output": "YES" }, { "input": "0 0 1\n1 1 1", "output": "YES" }, { "input": "1 0 1\n0 0 0", "output": "YES" }, { "input": "1 0 1\n1 0 0", "output": "YES" }, { "input": "1 0 1\n0 1 0", "output": "NO" }, { "input": "1 0 1\n1 1 0", "output": "YES" }, { "input": "1 0 1\n0 0 1", "output": "YES" }, { "input": "1 0 1\n0 1 1", "output": "YES" }, { "input": "1 0 1\n1 1 1", "output": "YES" }, { "input": "0 1 1\n0 0 0", "output": "YES" }, { "input": "0 1 1\n1 0 0", "output": "NO" }, { "input": "0 1 1\n0 1 0", "output": "YES" }, { "input": "0 1 1\n1 1 0", "output": "YES" }, { "input": "0 1 1\n0 0 1", "output": "YES" }, { "input": "0 1 1\n1 0 1", "output": "YES" }, { "input": "0 1 1\n1 1 1", "output": "YES" }, { "input": "1 1 1\n0 0 0", "output": "NO" }, { "input": "1 1 1\n1 0 0", "output": "YES" }, { "input": "1 1 1\n0 1 0", "output": "YES" }, { "input": "1 1 1\n1 1 0", "output": "YES" }, { "input": "1 1 1\n0 0 1", "output": "YES" }, { "input": "1 1 1\n1 0 1", "output": "YES" }, { "input": "1 1 1\n0 1 1", "output": "YES" } ]
1,698,224,548
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
# LUOGU_RID: 131529051 x1,y1,z1,x2,y2,z2=map(int,input().split()) if x1!=x2andy1!=y2andz1!=z2: print("No") elif : print("Yes")
Title: Cubical Planet Time Limit: 2 seconds Memory Limit: 64 megabytes Problem Description: You can find anything whatsoever in our Galaxy! A cubical planet goes round an icosahedral star. Let us introduce a system of axes so that the edges of the cubical planet are parallel to the coordinate axes and two opposite vertices lay in the points (0,<=0,<=0) and (1,<=1,<=1). Two flies live on the planet. At the moment they are sitting on two different vertices of the cubical planet. Your task is to determine whether they see each other or not. The flies see each other when the vertices they occupy lie on the same face of the cube. Input Specification: The first line contains three space-separated integers (0 or 1) — the coordinates of the first fly, the second line analogously contains the coordinates of the second fly. Output Specification: Output "YES" (without quotes) if the flies see each other. Otherwise, output "NO". Demo Input: ['0 0 0\n0 1 0\n', '1 1 0\n0 1 0\n', '0 0 0\n1 1 1\n'] Demo Output: ['YES\n', 'YES\n', 'NO\n'] Note: none
```python # LUOGU_RID: 131529051 x1,y1,z1,x2,y2,z2=map(int,input().split()) if x1!=x2andy1!=y2andz1!=z2: print("No") elif : print("Yes") ```
-1
663
A
Rebus
PROGRAMMING
1,800
[ "constructive algorithms", "expression parsing", "greedy", "math" ]
null
null
You are given a rebus of form ? + ? - ? + ? = n, consisting of only question marks, separated by arithmetic operation '+' and '-', equality and positive integer *n*. The goal is to replace each question mark with some positive integer from 1 to *n*, such that equality holds.
The only line of the input contains a rebus. It's guaranteed that it contains no more than 100 question marks, integer *n* is positive and doesn't exceed 1<=000<=000, all letters and integers are separated by spaces, arithmetic operations are located only between question marks.
The first line of the output should contain "Possible" (without quotes) if rebus has a solution and "Impossible" (without quotes) otherwise. If the answer exists, the second line should contain any valid rebus with question marks replaced by integers from 1 to *n*. Follow the format given in the samples.
[ "? + ? - ? + ? + ? = 42\n", "? - ? = 1\n", "? = 1000000\n" ]
[ "Possible\n9 + 13 - 39 + 28 + 31 = 42\n", "Impossible\n", "Possible\n1000000 = 1000000\n" ]
none
500
[ { "input": "? + ? - ? + ? + ? = 42", "output": "Possible\n1 + 1 - 1 + 1 + 40 = 42" }, { "input": "? - ? = 1", "output": "Impossible" }, { "input": "? = 1000000", "output": "Possible\n1000000 = 1000000" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? = 9", "output": "Impossible" }, { "input": "? - ? + ? + ? + ? + ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? + ? + ? + ? - ? + ? + ? + ? - ? + ? + ? - ? + ? - ? + ? - ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? + ? - ? + ? + ? - ? - ? - ? - ? + ? - ? - ? + ? + ? - ? + ? + ? - ? - ? - ? + ? + ? - ? - ? + ? - ? - ? + ? - ? + ? - ? - ? - ? - ? + ? - ? + ? - ? + ? + ? + ? - ? + ? + ? - ? - ? + ? = 123456", "output": "Possible\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 + 2 - 1 - 1 + 123456 = 123456" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 93", "output": "Impossible" }, { "input": "? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 57", "output": "Possible\n18 - 1 + 57 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 = 57" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 32", "output": "Possible\n32 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 32 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 32 - 1 - 1 - 1 - 1 + 32 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 = 32" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 31", "output": "Impossible" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? + ? + ? - ? - ? - ? + ? - ? + ? - ? - ? - ? - ? - ? + ? - ? + ? - ? - ? - ? - ? - ? - ? + ? - ? + ? - ? + ? - ? - ? + ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? + ? - ? - ? = 4", "output": "Impossible" }, { "input": "? + ? - ? - ? - ? + ? + ? - ? + ? + ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? + ? - ? + ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? = 5", "output": "Possible\n1 + 1 - 1 - 1 - 1 + 1 + 2 - 1 + 5 + 5 - 1 - 1 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 + 5 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 + 5 - 1 - 1 - 1 + 5 - 1 - 1 + 5 - 1 + 5 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 - 1 - 1 + 5 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 = 5" }, { "input": "? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? - ? + ? + ? + ? + ? + ? - ? - ? + ? + ? - ? + ? - ? - ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? - ? - ? + ? + ? + ? + ? - ? + ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? = 3", "output": "Impossible" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? - ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? - ? - ? + ? + ? - ? - ? + ? + ? + ? - ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? - ? + ? + ? + ? - ? + ? + ? - ? - ? + ? - ? + ? + ? + ? = 4", "output": "Possible\n1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 - 4 - 4 + 1 + 1 - 4 - 4 + 1 + 1 + 1 - 4 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 - 4 + 1 + 1 + 1 - 4 + 1 + 1 - 4 - 4 + 1 - 4 + 1 + 1 + 1 = 4" }, { "input": "? + ? - ? + ? + ? - ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? - ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? - ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? - ? - ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? + ? - ? - ? + ? + ? = 4", "output": "Possible\n1 + 1 - 1 + 1 + 1 - 3 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 - 4 + 1 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 + 1 + 1 - 4 + 1 - 4 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 - 4 - 4 - 4 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 - 4 + 1 + 1 + 1 + 1 + 1 + 1 - 4 + 1 + 1 - 4 - 4 + 1 + 1 = 4" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? = 100", "output": "Possible\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 = 100" }, { "input": "? + ? + ? - ? + ? - ? - ? - ? - ? - ? + ? - ? + ? + ? - ? + ? - ? + ? + ? - ? + ? - ? + ? + ? + ? - ? - ? - ? + ? - ? - ? + ? - ? - ? + ? - ? + ? + ? - ? + ? - ? - ? + ? + ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? + ? - ? - ? + ? - ? - ? - ? - ? + ? + ? - ? + ? + ? - ? + ? - ? + ? - ? + ? - ? - ? - ? - ? - ? + ? - ? = 837454", "output": "Possible\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 + 28 - 1 - 1 - 1 - 1 - 1 + 837454 - 1 = 837454" }, { "input": "? - ? + ? - ? + ? + ? - ? + ? - ? + ? + ? - ? + ? - ? - ? + ? - ? - ? + ? - ? + ? - ? - ? - ? - ? - ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? - ? - ? + ? - ? + ? + ? - ? + ? - ? + ? - ? - ? + ? - ? - ? + ? - ? - ? - ? + ? - ? - ? + ? - ? + ? + ? - ? - ? + ? - ? - ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? - ? - ? + ? - ? - ? - ? + ? = 254253", "output": "Possible\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 + 2 - 1 - 1 - 1 + 254253 = 254253" }, { "input": "? - ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? - ? + ? + ? - ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? - ? - ? + ? - ? + ? + ? + ? + ? - ? - ? + ? + ? - ? - ? + ? = 1000000", "output": "Possible\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 + 999963 = 1000000" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 43386", "output": "Impossible" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? = 999999", "output": "Possible\n98 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 999999 - 1 - 1 = 999999" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 37", "output": "Possible\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 + 20 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 37 - 1 - 1 - 1 + 37 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 37 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 = 37" }, { "input": "? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? + ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? - ? = 19", "output": "Possible\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 + 11 - 1 - 1 - 1 - 1 - 1 - 1 + 19 - 1 - 1 - 1 - 1 - 1 - 1 + 19 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 + 19 - 1 - 1 - 1 - 1 + 19 - 1 - 1 - 1 - 1 - 1 + 19 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 - 1 = 19" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? - ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? = 15", "output": "Possible\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 - 14 + 1 + 1 - 15 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 15 + 1 - 15 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 15 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 = 15" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? + ? = 33", "output": "Possible\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 - 33 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 = 33" }, { "input": "? + ? + ? + ? + ? - ? = 3", "output": "Possible\n1 + 1 + 1 + 1 + 1 - 2 = 3" }, { "input": "? + ? + ? + ? - ? = 2", "output": "Possible\n1 + 1 + 1 + 1 - 2 = 2" }, { "input": "? + ? - ? + ? + ? = 2", "output": "Possible\n1 + 1 - 2 + 1 + 1 = 2" }, { "input": "? + ? + ? + ? + ? - ? - ? = 2", "output": "Possible\n1 + 1 + 1 + 1 + 1 - 1 - 2 = 2" }, { "input": "? + ? - ? = 1", "output": "Possible\n1 + 1 - 1 = 1" }, { "input": "? - ? + ? - ? + ? + ? + ? + ? = 2", "output": "Possible\n1 - 2 + 1 - 2 + 1 + 1 + 1 + 1 = 2" }, { "input": "? + ? + ? + ? + ? + ? + ? + ? + ? + ? - ? = 5", "output": "Possible\n1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 - 5 = 5" } ]
1,637,860,135
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
12
62
512,000
c = input() p = c.count('+') + 1 m = c.count('-') c = c.split() n = int(c[-1]) if(p - m * n <= n and p * n - m >= n): print("Possible") s = n ismin = False for i in c: if(i == '?'): x = max(s + m - n * (p - 1), 1) if(ismin): x = max(s + (m - 1) - n * p, 1) m-=1 else: p-=1 print(x, end = ' ') s-=x - 2 * x * int(ismin) ismin = False else: if(i == '-'): ismin = True print(i, end = ' ') else: print("Impossible") #? * p - ? * m = 10
Title: Rebus Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a rebus of form ? + ? - ? + ? = n, consisting of only question marks, separated by arithmetic operation '+' and '-', equality and positive integer *n*. The goal is to replace each question mark with some positive integer from 1 to *n*, such that equality holds. Input Specification: The only line of the input contains a rebus. It's guaranteed that it contains no more than 100 question marks, integer *n* is positive and doesn't exceed 1<=000<=000, all letters and integers are separated by spaces, arithmetic operations are located only between question marks. Output Specification: The first line of the output should contain "Possible" (without quotes) if rebus has a solution and "Impossible" (without quotes) otherwise. If the answer exists, the second line should contain any valid rebus with question marks replaced by integers from 1 to *n*. Follow the format given in the samples. Demo Input: ['? + ? - ? + ? + ? = 42\n', '? - ? = 1\n', '? = 1000000\n'] Demo Output: ['Possible\n9 + 13 - 39 + 28 + 31 = 42\n', 'Impossible\n', 'Possible\n1000000 = 1000000\n'] Note: none
```python c = input() p = c.count('+') + 1 m = c.count('-') c = c.split() n = int(c[-1]) if(p - m * n <= n and p * n - m >= n): print("Possible") s = n ismin = False for i in c: if(i == '?'): x = max(s + m - n * (p - 1), 1) if(ismin): x = max(s + (m - 1) - n * p, 1) m-=1 else: p-=1 print(x, end = ' ') s-=x - 2 * x * int(ismin) ismin = False else: if(i == '-'): ismin = True print(i, end = ' ') else: print("Impossible") #? * p - ? * m = 10 ```
0
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" } ]
1,595,098,502
2,147,483,647
PyPy 3
OK
TESTS
36
312
22,016,000
from itertools import product n = input() count = 0 for i in range(1, len(n)+1): for comb in product("10", repeat=i): a = "".join(comb) if a[0]=="0": continue a = int(a) if a <= int(n) and a > 0: #print(a) count += 1 print(count)
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 product n = input() count = 0 for i in range(1, len(n)+1): for comb in product("10", repeat=i): a = "".join(comb) if a[0]=="0": continue a = int(a) if a <= int(n) and a > 0: #print(a) count += 1 print(count) ```
3.679968
999
A
Mishka and Contest
PROGRAMMING
800
[ "brute force", "implementation" ]
null
null
Mishka started participating in a programming contest. There are $n$ problems in the contest. Mishka's problem-solving skill is equal to $k$. Mishka arranges all problems from the contest into a list. Because of his weird principles, Mishka only solves problems from one of the ends of the list. Every time, he chooses which end (left or right) he will solve the next problem from. Thus, each problem Mishka solves is either the leftmost or the rightmost problem in the list. Mishka cannot solve a problem with difficulty greater than $k$. When Mishka solves the problem, it disappears from the list, so the length of the list decreases by $1$. Mishka stops when he is unable to solve any problem from any end of the list. How many problems can Mishka solve?
The first line of input contains two integers $n$ and $k$ ($1 \le n, k \le 100$) — the number of problems in the contest and Mishka's problem-solving skill. The second line of input contains $n$ integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 100$), where $a_i$ is the difficulty of the $i$-th problem. The problems are given in order from the leftmost to the rightmost in the list.
Print one integer — the maximum number of problems Mishka can solve.
[ "8 4\n4 2 3 1 5 1 6 4\n", "5 2\n3 1 2 1 3\n", "5 100\n12 34 55 43 21\n" ]
[ "5\n", "0\n", "5\n" ]
In the first example, Mishka can solve problems in the following order: $[4, 2, 3, 1, 5, 1, 6, 4] \rightarrow [2, 3, 1, 5, 1, 6, 4] \rightarrow [2, 3, 1, 5, 1, 6] \rightarrow [3, 1, 5, 1, 6] \rightarrow [1, 5, 1, 6] \rightarrow [5, 1, 6]$, so the number of solved problems will be equal to $5$. In the second example, Mishka can't solve any problem because the difficulties of problems from both ends are greater than $k$. In the third example, Mishka's solving skill is so amazing that he can solve all the problems.
0
[ { "input": "8 4\n4 2 3 1 5 1 6 4", "output": "5" }, { "input": "5 2\n3 1 2 1 3", "output": "0" }, { "input": "5 100\n12 34 55 43 21", "output": "5" }, { "input": "100 100\n44 47 36 83 76 94 86 69 31 2 22 77 37 51 10 19 25 78 53 25 1 29 48 95 35 53 22 72 49 86 60 38 13 91 89 18 54 19 71 2 25 33 65 49 53 5 95 90 100 68 25 5 87 48 45 72 34 14 100 44 94 75 80 26 25 7 57 82 49 73 55 43 42 60 34 8 51 11 71 41 81 23 20 89 12 72 68 26 96 92 32 63 13 47 19 9 35 56 79 62", "output": "100" }, { "input": "100 99\n84 82 43 4 71 3 30 92 15 47 76 43 2 17 76 4 1 33 24 96 44 98 75 99 59 11 73 27 67 17 8 88 69 41 44 22 91 48 4 46 42 21 21 67 85 51 57 84 11 100 100 59 39 72 89 82 74 19 98 14 37 97 20 78 38 52 44 83 19 83 69 32 56 6 93 13 98 80 80 2 33 71 11 15 55 51 98 58 16 91 39 32 83 58 77 79 88 81 17 98", "output": "98" }, { "input": "100 69\n80 31 12 89 16 35 8 28 39 12 32 51 42 67 64 53 17 88 63 97 29 41 57 28 51 33 82 75 93 79 57 86 32 100 83 82 99 33 1 27 86 22 65 15 60 100 42 37 38 85 26 43 90 62 91 13 1 92 16 20 100 19 28 30 23 6 5 69 24 22 9 1 10 14 28 14 25 9 32 8 67 4 39 7 10 57 15 7 8 35 62 6 53 59 62 13 24 7 53 2", "output": "39" }, { "input": "100 2\n2 2 2 2 1 1 1 2 1 2 2 2 1 2 2 2 2 1 2 1 2 1 1 1 2 1 2 1 2 1 1 2 2 2 2 2 1 2 1 2 1 1 2 1 2 1 1 2 1 2 1 2 2 1 2 1 2 1 1 2 1 2 2 1 1 2 2 2 1 1 2 1 1 2 2 2 1 1 1 2 2 2 1 2 1 2 1 1 1 1 1 1 1 1 1 1 1 2 2 16", "output": "99" }, { "input": "100 3\n86 53 82 40 2 20 59 2 46 63 75 49 24 81 70 22 9 9 93 72 47 23 29 77 78 51 17 59 19 71 35 3 20 60 70 9 11 96 71 94 91 19 88 93 50 49 72 19 53 30 38 67 62 71 81 86 5 26 5 32 63 98 1 97 22 32 87 65 96 55 43 85 56 37 56 67 12 100 98 58 77 54 18 20 33 53 21 66 24 64 42 71 59 32 51 69 49 79 10 1", "output": "1" }, { "input": "13 7\n1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "13" }, { "input": "1 5\n4", "output": "1" }, { "input": "3 2\n1 4 1", "output": "2" }, { "input": "1 2\n100", "output": "0" }, { "input": "7 4\n4 2 3 4 4 2 3", "output": "7" }, { "input": "1 2\n1", "output": "1" }, { "input": "1 2\n15", "output": "0" }, { "input": "2 1\n1 1", "output": "2" }, { "input": "5 3\n3 4 3 2 1", "output": "4" }, { "input": "1 1\n2", "output": "0" }, { "input": "1 5\n1", "output": "1" }, { "input": "6 6\n7 1 1 1 1 1", "output": "5" }, { "input": "5 5\n6 5 5 5 5", "output": "4" }, { "input": "1 4\n2", "output": "1" }, { "input": "9 4\n1 2 1 2 4 2 1 2 1", "output": "9" }, { "input": "1 1\n1", "output": "1" }, { "input": "1 10\n5", "output": "1" }, { "input": "5 5\n1 1 1 1 1", "output": "5" }, { "input": "100 10\n2 5 1 10 10 2 7 7 9 4 1 8 1 1 8 4 7 9 10 5 7 9 5 6 7 2 7 5 3 2 1 82 4 80 9 8 6 1 10 7 5 7 1 5 6 7 19 4 2 4 6 2 1 8 31 6 2 2 57 42 3 2 7 1 9 5 10 8 5 4 10 8 3 5 8 7 2 7 6 5 3 3 4 10 6 7 10 8 7 10 7 2 4 6 8 10 10 2 6 4", "output": "71" }, { "input": "100 90\n17 16 5 51 17 62 24 45 49 41 90 30 19 78 67 66 59 34 28 47 42 8 33 77 90 41 61 16 86 33 43 71 90 95 23 9 56 41 24 90 31 12 77 36 90 67 47 15 92 50 79 88 42 19 21 79 86 60 41 26 47 4 70 62 44 90 82 89 84 91 54 16 90 53 29 69 21 44 18 28 88 74 56 43 12 76 10 22 34 24 27 52 28 76 90 75 5 29 50 90", "output": "63" }, { "input": "100 10\n6 4 8 4 1 9 4 8 5 2 2 5 2 6 10 2 2 5 3 5 2 3 10 5 2 9 1 1 6 1 5 9 16 42 33 49 26 31 81 27 53 63 81 90 55 97 70 51 87 21 79 62 60 91 54 95 26 26 30 61 87 79 47 11 59 34 40 82 37 40 81 2 7 1 8 4 10 7 1 10 8 7 3 5 2 8 3 3 9 2 1 1 5 7 8 7 1 10 9 8", "output": "61" }, { "input": "100 90\n45 57 52 69 17 81 85 60 59 39 55 14 87 90 90 31 41 57 35 89 74 20 53 4 33 49 71 11 46 90 71 41 71 90 63 74 51 13 99 92 99 91 100 97 93 40 93 96 100 99 100 92 98 96 78 91 91 91 91 100 94 97 95 97 96 95 17 13 45 35 54 26 2 74 6 51 20 3 73 90 90 42 66 43 86 28 84 70 37 27 90 30 55 80 6 58 57 51 10 22", "output": "72" }, { "input": "100 10\n10 2 10 10 10 10 10 10 10 7 10 10 10 10 10 10 9 10 10 10 10 10 10 10 10 7 9 10 10 10 37 10 4 10 10 10 59 5 95 10 10 10 10 39 10 10 10 10 10 10 10 5 10 10 10 10 10 10 10 10 10 10 10 10 66 10 10 10 10 10 5 10 10 10 10 10 10 44 10 10 10 10 10 10 10 10 10 10 10 7 10 10 10 10 10 10 10 10 10 2", "output": "52" }, { "input": "100 90\n57 90 90 90 90 90 90 90 81 90 3 90 39 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 92 90 90 90 90 90 90 90 90 98 90 90 90 90 90 90 90 90 90 90 90 90 90 54 90 90 90 90 90 62 90 90 91 90 90 90 90 90 90 91 90 90 90 90 90 90 90 3 90 90 90 90 90 90 90 2 90 90 90 90 90 90 90 90 90 2 90 90 90 90 90", "output": "60" }, { "input": "100 10\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 6 10 10 10 10 10 10 78 90 61 40 87 39 91 50 64 30 10 24 10 55 28 11 28 35 26 26 10 57 45 67 14 99 96 51 67 79 59 11 21 55 70 33 10 16 92 70 38 50 66 52 5 10 10 10 2 4 10 10 10 10 10 10 10 10 10 6 10 10 10 10 10 10 10 10 10 10 8 10 10 10 10 10", "output": "56" }, { "input": "100 90\n90 90 90 90 90 90 55 21 90 90 90 90 90 90 90 90 90 90 69 83 90 90 90 90 90 90 90 90 93 95 92 98 92 97 91 92 92 91 91 95 94 95 100 100 96 97 94 93 90 90 95 95 97 99 90 95 98 91 94 96 99 99 94 95 95 97 99 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 90 12 90 3 90 90 90 90 90 90 90", "output": "61" }, { "input": "100 49\n71 25 14 36 36 48 36 49 28 40 49 49 49 38 40 49 33 22 49 49 14 46 8 44 49 11 37 49 40 49 2 49 3 49 37 49 49 11 25 49 49 32 49 11 49 30 16 21 49 49 23 24 30 49 49 49 49 49 49 27 49 42 49 49 20 32 30 29 35 49 30 49 9 49 27 25 5 49 49 42 49 20 49 35 49 22 15 49 49 49 19 49 29 28 13 49 22 7 6 24", "output": "99" }, { "input": "100 50\n38 68 9 6 50 18 19 50 50 20 33 34 43 50 24 50 50 2 50 50 50 50 50 21 30 50 41 40 50 50 50 50 50 7 50 21 19 23 1 50 24 50 50 50 25 50 50 50 50 50 50 50 7 24 28 18 50 5 43 50 20 50 13 50 50 16 50 3 2 24 50 50 18 5 50 4 50 50 38 50 33 49 12 33 11 14 50 50 50 33 50 50 50 50 50 50 7 4 50 50", "output": "99" }, { "input": "100 48\n8 6 23 47 29 48 48 48 48 48 48 26 24 48 48 48 3 48 27 28 41 45 9 29 48 48 48 48 48 48 48 48 48 48 47 23 48 48 48 5 48 22 40 48 48 48 20 48 48 57 48 32 19 48 33 2 4 19 48 48 39 48 16 48 48 44 48 48 48 48 29 14 25 43 46 7 48 19 30 48 18 8 39 48 30 47 35 18 48 45 48 48 30 13 48 48 48 17 9 48", "output": "99" }, { "input": "100 57\n57 9 57 4 43 57 57 57 57 26 57 18 57 57 57 57 57 57 57 47 33 57 57 43 57 57 55 57 14 57 57 4 1 57 57 57 57 57 46 26 57 57 57 57 57 57 57 39 57 57 57 5 57 12 11 57 57 57 25 37 34 57 54 18 29 57 39 57 5 57 56 34 57 24 7 57 57 57 2 57 57 57 57 1 55 39 19 57 57 57 57 21 3 40 13 3 57 57 62 57", "output": "99" }, { "input": "100 51\n51 51 38 51 51 45 51 51 51 18 51 36 51 19 51 26 37 51 11 51 45 34 51 21 51 51 33 51 6 51 51 51 21 47 51 13 51 51 30 29 50 51 51 51 51 51 51 45 14 51 2 51 51 23 9 51 50 23 51 29 34 51 40 32 1 36 31 51 11 51 51 47 51 51 51 51 51 51 51 50 39 51 14 4 4 12 3 11 51 51 51 51 41 51 51 51 49 37 5 93", "output": "99" }, { "input": "100 50\n87 91 95 73 50 50 16 97 39 24 58 50 33 89 42 37 50 50 12 71 3 55 50 50 80 10 76 50 52 36 88 44 66 69 86 71 77 50 72 50 21 55 50 50 78 61 75 89 65 2 50 69 62 47 11 92 97 77 41 31 55 29 35 51 36 48 50 91 92 86 50 36 50 94 51 74 4 27 55 63 50 36 87 50 67 7 65 75 20 96 88 50 41 73 35 51 66 21 29 33", "output": "3" }, { "input": "100 50\n50 37 28 92 7 76 50 50 50 76 100 57 50 50 50 32 76 50 8 72 14 8 50 91 67 50 55 82 50 50 24 97 88 50 59 61 68 86 44 15 61 67 88 50 40 50 36 99 1 23 63 50 88 59 76 82 99 76 68 50 50 30 31 68 57 98 71 12 15 60 35 79 90 6 67 50 50 50 50 68 13 6 50 50 16 87 84 50 67 67 50 64 50 58 50 50 77 51 50 51", "output": "3" }, { "input": "100 50\n43 50 50 91 97 67 6 50 86 50 76 60 50 59 4 56 11 38 49 50 37 50 50 20 60 47 33 54 95 58 22 50 77 77 72 9 57 40 81 57 95 50 81 63 62 76 13 87 50 39 74 69 50 99 63 1 11 62 84 31 97 99 56 73 70 36 45 100 28 91 93 9 19 52 73 50 83 58 84 52 86 12 50 44 64 52 97 50 12 71 97 52 87 66 83 66 86 50 9 49", "output": "6" }, { "input": "88 10\n10 8 1 10 10 1 3 7 10 5 8 8 10 2 7 10 10 10 10 10 1 10 10 10 10 1 2 9 10 9 10 10 10 64 100 25 10 12 9 52 13 8 10 56 10 4 10 7 10 3 10 79 74 8 73 10 10 10 9 10 3 5 10 10 10 5 1 10 10 4 3 10 10 10 4 10 6 4 10 10 10 10 3 3 8 5 6 8", "output": "66" }, { "input": "100 50\n80 39 33 69 75 50 23 88 50 50 67 90 87 50 29 15 55 32 60 50 50 50 38 95 62 50 50 88 8 97 45 50 42 12 22 93 49 50 24 50 50 71 60 4 50 72 57 57 50 50 50 83 69 17 1 31 72 55 50 11 50 80 93 41 91 94 20 60 50 50 51 48 53 56 76 73 50 72 19 98 50 50 50 50 50 28 48 45 62 11 16 67 93 88 63 50 50 66 48 95", "output": "0" }, { "input": "100 50\n70 50 38 50 38 50 32 30 50 31 26 42 50 33 34 50 50 50 28 21 50 44 50 47 50 50 9 40 50 50 50 50 50 42 50 50 16 50 50 3 24 50 50 50 4 26 50 2 50 50 33 1 27 50 50 50 8 29 50 23 33 50 6 29 50 50 15 50 50 50 32 50 43 50 50 50 31 50 4 50 50 31 50 50 31 16 50 17 50 17 31 13 25 16 50 10 50 47 50 66", "output": "0" }, { "input": "2 8\n8 8", "output": "2" }, { "input": "1 6\n3", "output": "1" }, { "input": "1 5\n5", "output": "1" } ]
1,626,773,176
2,147,483,647
PyPy 3
OK
TESTS
48
109
20,172,800
n,k=map(int,input().split()) l=list(map(int,input().split())) i=0 j=n-1 ans=0 while i<=j: if l[i]>k and l[j]>k: break if l[i]<=k: ans+=1 i+=1 if l[j]<=k and j>i: ans+=1 j-=1 print(ans)
Title: Mishka and Contest Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mishka started participating in a programming contest. There are $n$ problems in the contest. Mishka's problem-solving skill is equal to $k$. Mishka arranges all problems from the contest into a list. Because of his weird principles, Mishka only solves problems from one of the ends of the list. Every time, he chooses which end (left or right) he will solve the next problem from. Thus, each problem Mishka solves is either the leftmost or the rightmost problem in the list. Mishka cannot solve a problem with difficulty greater than $k$. When Mishka solves the problem, it disappears from the list, so the length of the list decreases by $1$. Mishka stops when he is unable to solve any problem from any end of the list. How many problems can Mishka solve? Input Specification: The first line of input contains two integers $n$ and $k$ ($1 \le n, k \le 100$) — the number of problems in the contest and Mishka's problem-solving skill. The second line of input contains $n$ integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 100$), where $a_i$ is the difficulty of the $i$-th problem. The problems are given in order from the leftmost to the rightmost in the list. Output Specification: Print one integer — the maximum number of problems Mishka can solve. Demo Input: ['8 4\n4 2 3 1 5 1 6 4\n', '5 2\n3 1 2 1 3\n', '5 100\n12 34 55 43 21\n'] Demo Output: ['5\n', '0\n', '5\n'] Note: In the first example, Mishka can solve problems in the following order: $[4, 2, 3, 1, 5, 1, 6, 4] \rightarrow [2, 3, 1, 5, 1, 6, 4] \rightarrow [2, 3, 1, 5, 1, 6] \rightarrow [3, 1, 5, 1, 6] \rightarrow [1, 5, 1, 6] \rightarrow [5, 1, 6]$, so the number of solved problems will be equal to $5$. In the second example, Mishka can't solve any problem because the difficulties of problems from both ends are greater than $k$. In the third example, Mishka's solving skill is so amazing that he can solve all the problems.
```python n,k=map(int,input().split()) l=list(map(int,input().split())) i=0 j=n-1 ans=0 while i<=j: if l[i]>k and l[j]>k: break if l[i]<=k: ans+=1 i+=1 if l[j]<=k and j>i: ans+=1 j-=1 print(ans) ```
3
609
A
USB Flash Drives
PROGRAMMING
800
[ "greedy", "implementation", "sortings" ]
null
null
Sean is trying to save a large file to a USB flash drive. He has *n* USB flash drives with capacities equal to *a*1,<=*a*2,<=...,<=*a**n* megabytes. The file size is equal to *m* megabytes. Find the minimum number of USB flash drives needed to write Sean's file, if he can split the file between drives.
The first line contains positive integer *n* (1<=≤<=*n*<=≤<=100) — the number of USB flash drives. The second line contains positive integer *m* (1<=≤<=*m*<=≤<=105) — the size of Sean's file. Each of the next *n* lines contains positive integer *a**i* (1<=≤<=*a**i*<=≤<=1000) — the sizes of USB flash drives in megabytes. It is guaranteed that the answer exists, i. e. the sum of all *a**i* is not less than *m*.
Print the minimum number of USB flash drives to write Sean's file, if he can split the file between drives.
[ "3\n5\n2\n1\n3\n", "3\n6\n2\n3\n2\n", "2\n5\n5\n10\n" ]
[ "2\n", "3\n", "1\n" ]
In the first example Sean needs only two USB flash drives — the first and the third. In the second example Sean needs all three USB flash drives. In the third example Sean needs only one USB flash drive and he can use any available USB flash drive — the first or the second.
0
[ { "input": "3\n5\n2\n1\n3", "output": "2" }, { "input": "3\n6\n2\n3\n2", "output": "3" }, { "input": "2\n5\n5\n10", "output": "1" }, { "input": "5\n16\n8\n1\n3\n4\n9", "output": "2" }, { "input": "10\n121\n10\n37\n74\n56\n42\n39\n6\n68\n8\n100", "output": "2" }, { "input": "12\n4773\n325\n377\n192\n780\n881\n816\n839\n223\n215\n125\n952\n8", "output": "7" }, { "input": "15\n7758\n182\n272\n763\n910\n24\n359\n583\n890\n735\n819\n66\n992\n440\n496\n227", "output": "15" }, { "input": "30\n70\n6\n2\n10\n4\n7\n10\n5\n1\n8\n10\n4\n3\n5\n9\n3\n6\n6\n4\n2\n6\n5\n10\n1\n9\n7\n2\n1\n10\n7\n5", "output": "8" }, { "input": "40\n15705\n702\n722\n105\n873\n417\n477\n794\n300\n869\n496\n572\n232\n456\n298\n473\n584\n486\n713\n934\n121\n303\n956\n934\n840\n358\n201\n861\n497\n131\n312\n957\n96\n914\n509\n60\n300\n722\n658\n820\n103", "output": "21" }, { "input": "50\n18239\n300\n151\n770\n9\n200\n52\n247\n753\n523\n263\n744\n463\n540\n244\n608\n569\n771\n32\n425\n777\n624\n761\n628\n124\n405\n396\n726\n626\n679\n237\n229\n49\n512\n18\n671\n290\n768\n632\n739\n18\n136\n413\n117\n83\n413\n452\n767\n664\n203\n404", "output": "31" }, { "input": "70\n149\n5\n3\n3\n4\n6\n1\n2\n9\n8\n3\n1\n8\n4\n4\n3\n6\n10\n7\n1\n10\n8\n4\n9\n3\n8\n3\n2\n5\n1\n8\n6\n9\n10\n4\n8\n6\n9\n9\n9\n3\n4\n2\n2\n5\n8\n9\n1\n10\n3\n4\n3\n1\n9\n3\n5\n1\n3\n7\n6\n9\n8\n9\n1\n7\n4\n4\n2\n3\n5\n7", "output": "17" }, { "input": "70\n2731\n26\n75\n86\n94\n37\n25\n32\n35\n92\n1\n51\n73\n53\n66\n16\n80\n15\n81\n100\n87\n55\n48\n30\n71\n39\n87\n77\n25\n70\n22\n75\n23\n97\n16\n75\n95\n61\n61\n28\n10\n78\n54\n80\n51\n25\n24\n90\n58\n4\n77\n40\n54\n53\n47\n62\n30\n38\n71\n97\n71\n60\n58\n1\n21\n15\n55\n99\n34\n88\n99", "output": "35" }, { "input": "70\n28625\n34\n132\n181\n232\n593\n413\n862\n887\n808\n18\n35\n89\n356\n640\n339\n280\n975\n82\n345\n398\n948\n372\n91\n755\n75\n153\n948\n603\n35\n694\n722\n293\n363\n884\n264\n813\n175\n169\n646\n138\n449\n488\n828\n417\n134\n84\n763\n288\n845\n801\n556\n972\n332\n564\n934\n699\n842\n942\n644\n203\n406\n140\n37\n9\n423\n546\n675\n491\n113\n587", "output": "45" }, { "input": "80\n248\n3\n9\n4\n5\n10\n7\n2\n6\n2\n2\n8\n2\n1\n3\n7\n9\n2\n8\n4\n4\n8\n5\n4\n4\n10\n2\n1\n4\n8\n4\n10\n1\n2\n10\n2\n3\n3\n1\n1\n8\n9\n5\n10\n2\n8\n10\n5\n3\n6\n1\n7\n8\n9\n10\n5\n10\n10\n2\n10\n1\n2\n4\n1\n9\n4\n7\n10\n8\n5\n8\n1\n4\n2\n2\n3\n9\n9\n9\n10\n6", "output": "27" }, { "input": "80\n2993\n18\n14\n73\n38\n14\n73\n77\n18\n81\n6\n96\n65\n77\n86\n76\n8\n16\n81\n83\n83\n34\n69\n58\n15\n19\n1\n16\n57\n95\n35\n5\n49\n8\n15\n47\n84\n99\n94\n93\n55\n43\n47\n51\n61\n57\n13\n7\n92\n14\n4\n83\n100\n60\n75\n41\n95\n74\n40\n1\n4\n95\n68\n59\n65\n15\n15\n75\n85\n46\n77\n26\n30\n51\n64\n75\n40\n22\n88\n68\n24", "output": "38" }, { "input": "80\n37947\n117\n569\n702\n272\n573\n629\n90\n337\n673\n589\n576\n205\n11\n284\n645\n719\n777\n271\n567\n466\n251\n402\n3\n97\n288\n699\n208\n173\n530\n782\n266\n395\n957\n159\n463\n43\n316\n603\n197\n386\n132\n799\n778\n905\n784\n71\n851\n963\n883\n705\n454\n275\n425\n727\n223\n4\n870\n833\n431\n463\n85\n505\n800\n41\n954\n981\n242\n578\n336\n48\n858\n702\n349\n929\n646\n528\n993\n506\n274\n227", "output": "70" }, { "input": "90\n413\n5\n8\n10\n7\n5\n7\n5\n7\n1\n7\n8\n4\n3\n9\n4\n1\n10\n3\n1\n10\n9\n3\n1\n8\n4\n7\n5\n2\n9\n3\n10\n10\n3\n6\n3\n3\n10\n7\n5\n1\n1\n2\n4\n8\n2\n5\n5\n3\n9\n5\n5\n3\n10\n2\n3\n8\n5\n9\n1\n3\n6\n5\n9\n2\n3\n7\n10\n3\n4\n4\n1\n5\n9\n2\n6\n9\n1\n1\n9\n9\n7\n7\n7\n8\n4\n5\n3\n4\n6\n9", "output": "59" }, { "input": "90\n4226\n33\n43\n83\n46\n75\n14\n88\n36\n8\n25\n47\n4\n96\n19\n33\n49\n65\n17\n59\n72\n1\n55\n94\n92\n27\n33\n39\n14\n62\n79\n12\n89\n22\n86\n13\n19\n77\n53\n96\n74\n24\n25\n17\n64\n71\n81\n87\n52\n72\n55\n49\n74\n36\n65\n86\n91\n33\n61\n97\n38\n87\n61\n14\n73\n95\n43\n67\n42\n67\n22\n12\n62\n32\n96\n24\n49\n82\n46\n89\n36\n75\n91\n11\n10\n9\n33\n86\n28\n75\n39", "output": "64" }, { "input": "90\n40579\n448\n977\n607\n745\n268\n826\n479\n59\n330\n609\n43\n301\n970\n726\n172\n632\n600\n181\n712\n195\n491\n312\n849\n722\n679\n682\n780\n131\n404\n293\n387\n567\n660\n54\n339\n111\n833\n612\n911\n869\n356\n884\n635\n126\n639\n712\n473\n663\n773\n435\n32\n973\n484\n662\n464\n699\n274\n919\n95\n904\n253\n589\n543\n454\n250\n349\n237\n829\n511\n536\n36\n45\n152\n626\n384\n199\n877\n941\n84\n781\n115\n20\n52\n726\n751\n920\n291\n571\n6\n199", "output": "64" }, { "input": "100\n66\n7\n9\n10\n5\n2\n8\n6\n5\n4\n10\n10\n6\n5\n2\n2\n1\n1\n5\n8\n7\n8\n10\n5\n6\n6\n5\n9\n9\n6\n3\n8\n7\n10\n5\n9\n6\n7\n3\n5\n8\n6\n8\n9\n1\n1\n1\n2\n4\n5\n5\n1\n1\n2\n6\n7\n1\n5\n8\n7\n2\n1\n7\n10\n9\n10\n2\n4\n10\n4\n10\n10\n5\n3\n9\n1\n2\n1\n10\n5\n1\n7\n4\n4\n5\n7\n6\n10\n4\n7\n3\n4\n3\n6\n2\n5\n2\n4\n9\n5\n3", "output": "7" }, { "input": "100\n4862\n20\n47\n85\n47\n76\n38\n48\n93\n91\n81\n31\n51\n23\n60\n59\n3\n73\n72\n57\n67\n54\n9\n42\n5\n32\n46\n72\n79\n95\n61\n79\n88\n33\n52\n97\n10\n3\n20\n79\n82\n93\n90\n38\n80\n18\n21\n43\n60\n73\n34\n75\n65\n10\n84\n100\n29\n94\n56\n22\n59\n95\n46\n22\n57\n69\n67\n90\n11\n10\n61\n27\n2\n48\n69\n86\n91\n69\n76\n36\n71\n18\n54\n90\n74\n69\n50\n46\n8\n5\n41\n96\n5\n14\n55\n85\n39\n6\n79\n75\n87", "output": "70" }, { "input": "100\n45570\n14\n881\n678\n687\n993\n413\n760\n451\n426\n787\n503\n343\n234\n530\n294\n725\n941\n524\n574\n441\n798\n399\n360\n609\n376\n525\n229\n995\n478\n347\n47\n23\n468\n525\n749\n601\n235\n89\n995\n489\n1\n239\n415\n122\n671\n128\n357\n886\n401\n964\n212\n968\n210\n130\n871\n360\n661\n844\n414\n187\n21\n824\n266\n713\n126\n496\n916\n37\n193\n755\n894\n641\n300\n170\n176\n383\n488\n627\n61\n897\n33\n242\n419\n881\n698\n107\n391\n418\n774\n905\n87\n5\n896\n835\n318\n373\n916\n393\n91\n460", "output": "78" }, { "input": "100\n522\n1\n5\n2\n4\n2\n6\n3\n4\n2\n10\n10\n6\n7\n9\n7\n1\n7\n2\n5\n3\n1\n5\n2\n3\n5\n1\n7\n10\n10\n4\n4\n10\n9\n10\n6\n2\n8\n2\n6\n10\n9\n2\n7\n5\n9\n4\n6\n10\n7\n3\n1\n1\n9\n5\n10\n9\n2\n8\n3\n7\n5\n4\n7\n5\n9\n10\n6\n2\n9\n2\n5\n10\n1\n7\n7\n10\n5\n6\n2\n9\n4\n7\n10\n10\n8\n3\n4\n9\n3\n6\n9\n10\n2\n9\n9\n3\n4\n1\n10\n2", "output": "74" }, { "input": "100\n32294\n414\n116\n131\n649\n130\n476\n630\n605\n213\n117\n757\n42\n109\n85\n127\n635\n629\n994\n410\n764\n204\n161\n231\n577\n116\n936\n537\n565\n571\n317\n722\n819\n229\n284\n487\n649\n304\n628\n727\n816\n854\n91\n111\n549\n87\n374\n417\n3\n868\n882\n168\n743\n77\n534\n781\n75\n956\n910\n734\n507\n568\n802\n946\n891\n659\n116\n678\n375\n380\n430\n627\n873\n350\n930\n285\n6\n183\n96\n517\n81\n794\n235\n360\n551\n6\n28\n799\n226\n996\n894\n981\n551\n60\n40\n460\n479\n161\n318\n952\n433", "output": "42" }, { "input": "100\n178\n71\n23\n84\n98\n8\n14\n4\n42\n56\n83\n87\n28\n22\n32\n50\n5\n96\n90\n1\n59\n74\n56\n96\n77\n88\n71\n38\n62\n36\n85\n1\n97\n98\n98\n32\n99\n42\n6\n81\n20\n49\n57\n71\n66\n9\n45\n41\n29\n28\n32\n68\n38\n29\n35\n29\n19\n27\n76\n85\n68\n68\n41\n32\n78\n72\n38\n19\n55\n83\n83\n25\n46\n62\n48\n26\n53\n14\n39\n31\n94\n84\n22\n39\n34\n96\n63\n37\n42\n6\n78\n76\n64\n16\n26\n6\n79\n53\n24\n29\n63", "output": "2" }, { "input": "100\n885\n226\n266\n321\n72\n719\n29\n121\n533\n85\n672\n225\n830\n783\n822\n30\n791\n618\n166\n487\n922\n434\n814\n473\n5\n741\n947\n910\n305\n998\n49\n945\n588\n868\n809\n803\n168\n280\n614\n434\n634\n538\n591\n437\n540\n445\n313\n177\n171\n799\n778\n55\n617\n554\n583\n611\n12\n94\n599\n182\n765\n556\n965\n542\n35\n460\n177\n313\n485\n744\n384\n21\n52\n879\n792\n411\n614\n811\n565\n695\n428\n587\n631\n794\n461\n258\n193\n696\n936\n646\n756\n267\n55\n690\n730\n742\n734\n988\n235\n762\n440", "output": "1" }, { "input": "100\n29\n9\n2\n10\n8\n6\n7\n7\n3\n3\n10\n4\n5\n2\n5\n1\n6\n3\n2\n5\n10\n10\n9\n1\n4\n5\n2\n2\n3\n1\n2\n2\n9\n6\n9\n7\n8\n8\n1\n5\n5\n3\n1\n5\n6\n1\n9\n2\n3\n8\n10\n8\n3\n2\n7\n1\n2\n1\n2\n8\n10\n5\n2\n3\n1\n10\n7\n1\n7\n4\n9\n6\n6\n4\n7\n1\n2\n7\n7\n9\n9\n7\n10\n4\n10\n8\n2\n1\n5\n5\n10\n5\n8\n1\n5\n6\n5\n1\n5\n6\n8", "output": "3" }, { "input": "100\n644\n94\n69\n43\n36\n54\n93\n30\n74\n56\n95\n70\n49\n11\n36\n57\n30\n59\n3\n52\n59\n90\n82\n39\n67\n32\n8\n80\n64\n8\n65\n51\n48\n89\n90\n35\n4\n54\n66\n96\n68\n90\n30\n4\n13\n97\n41\n90\n85\n17\n45\n94\n31\n58\n4\n39\n76\n95\n92\n59\n67\n46\n96\n55\n82\n64\n20\n20\n83\n46\n37\n15\n60\n37\n79\n45\n47\n63\n73\n76\n31\n52\n36\n32\n49\n26\n61\n91\n31\n25\n62\n90\n65\n65\n5\n94\n7\n15\n97\n88\n68", "output": "7" }, { "input": "100\n1756\n98\n229\n158\n281\n16\n169\n149\n239\n235\n182\n147\n215\n49\n270\n194\n242\n295\n289\n249\n19\n12\n144\n157\n92\n270\n122\n212\n97\n152\n14\n42\n12\n198\n98\n295\n154\n229\n191\n294\n5\n156\n43\n185\n184\n20\n125\n23\n10\n257\n244\n264\n79\n46\n277\n13\n22\n97\n212\n77\n293\n20\n51\n17\n109\n37\n68\n117\n51\n248\n10\n149\n179\n192\n239\n161\n13\n173\n297\n73\n43\n109\n288\n198\n81\n70\n254\n187\n277\n1\n295\n113\n95\n291\n293\n119\n205\n191\n37\n34\n116", "output": "6" }, { "input": "100\n20562\n721\n452\n11\n703\n376\n183\n197\n203\n406\n642\n346\n446\n256\n760\n201\n360\n702\n707\n388\n779\n653\n610\n497\n768\n670\n134\n780\n306\n661\n180\n259\n256\n362\n6\n121\n415\n747\n170\n67\n439\n728\n193\n622\n481\n38\n225\n343\n303\n253\n436\n305\n68\n794\n247\n291\n600\n750\n188\n199\n757\n28\n776\n749\n253\n351\n53\n629\n129\n578\n209\n89\n651\n262\n638\n353\n469\n31\n144\n460\n176\n535\n562\n366\n639\n234\n577\n364\n761\n617\n303\n450\n778\n311\n289\n221\n274\n239\n626\n194\n36", "output": "30" }, { "input": "100\n32630\n548\n21\n756\n138\n56\n719\n97\n86\n599\n531\n464\n137\n737\n239\n626\n179\n170\n271\n335\n178\n298\n597\n616\n104\n190\n216\n333\n606\n621\n310\n70\n286\n593\n655\n472\n556\n77\n625\n744\n395\n487\n762\n316\n469\n258\n475\n596\n651\n180\n737\n101\n511\n708\n163\n713\n475\n557\n649\n705\n583\n97\n447\n119\n91\n372\n194\n394\n667\n384\n635\n611\n746\n758\n613\n54\n508\n405\n188\n570\n254\n28\n599\n767\n115\n737\n194\n148\n686\n705\n236\n762\n613\n770\n633\n401\n773\n448\n274\n141\n718", "output": "52" }, { "input": "1\n1\n1", "output": "1" } ]
1,507,831,605
2,147,483,647
Python 3
OK
TESTS
34
62
0
# -*- coding: utf-8 -*- """ Created on Thu Oct 12 18:44:49 2017 @author: ASUS """ n = int(input ()) m = int (input ()) L = [] for i in range (n): L.append(int (input ())) L.sort () L = L[::-1] s = 0 t=0 for i in L : if i >= m : t = 1 break elif i < m : if s < m : t+=1 s+= i else : break print (t)
Title: USB Flash Drives Time Limit: None seconds Memory Limit: None megabytes Problem Description: Sean is trying to save a large file to a USB flash drive. He has *n* USB flash drives with capacities equal to *a*1,<=*a*2,<=...,<=*a**n* megabytes. The file size is equal to *m* megabytes. Find the minimum number of USB flash drives needed to write Sean's file, if he can split the file between drives. Input Specification: The first line contains positive integer *n* (1<=≤<=*n*<=≤<=100) — the number of USB flash drives. The second line contains positive integer *m* (1<=≤<=*m*<=≤<=105) — the size of Sean's file. Each of the next *n* lines contains positive integer *a**i* (1<=≤<=*a**i*<=≤<=1000) — the sizes of USB flash drives in megabytes. It is guaranteed that the answer exists, i. e. the sum of all *a**i* is not less than *m*. Output Specification: Print the minimum number of USB flash drives to write Sean's file, if he can split the file between drives. Demo Input: ['3\n5\n2\n1\n3\n', '3\n6\n2\n3\n2\n', '2\n5\n5\n10\n'] Demo Output: ['2\n', '3\n', '1\n'] Note: In the first example Sean needs only two USB flash drives — the first and the third. In the second example Sean needs all three USB flash drives. In the third example Sean needs only one USB flash drive and he can use any available USB flash drive — the first or the second.
```python # -*- coding: utf-8 -*- """ Created on Thu Oct 12 18:44:49 2017 @author: ASUS """ n = int(input ()) m = int (input ()) L = [] for i in range (n): L.append(int (input ())) L.sort () L = L[::-1] s = 0 t=0 for i in L : if i >= m : t = 1 break elif i < m : if s < m : t+=1 s+= i else : break print (t) ```
3
427
A
Police Recruits
PROGRAMMING
800
[ "implementation" ]
null
null
The police department of your city has just started its journey. Initially, they don’t have any manpower. So, they started hiring new recruits in groups. Meanwhile, crimes keeps occurring within the city. One member of the police force can investigate only one crime during his/her lifetime. If there is no police officer free (isn't busy with crime) during the occurrence of a crime, it will go untreated. Given the chronological order of crime occurrences and recruit hirings, find the number of crimes which will go untreated.
The first line of input will contain an integer *n* (1<=≤<=*n*<=≤<=105), the number of events. The next line will contain *n* space-separated integers. If the integer is -1 then it means a crime has occurred. Otherwise, the integer will be positive, the number of officers recruited together at that time. No more than 10 officers will be recruited at a time.
Print a single integer, the number of crimes which will go untreated.
[ "3\n-1 -1 1\n", "8\n1 -1 1 -1 -1 1 1 1\n", "11\n-1 -1 2 -1 -1 -1 -1 -1 -1 -1 -1\n" ]
[ "2\n", "1\n", "8\n" ]
Lets consider the second example: 1. Firstly one person is hired. 1. Then crime appears, the last hired person will investigate this crime. 1. One more person is hired. 1. One more crime appears, the last hired person will investigate this crime. 1. Crime appears. There is no free policeman at the time, so this crime will go untreated. 1. One more person is hired. 1. One more person is hired. 1. One more person is hired. The answer is one, as one crime (on step 5) will go untreated.
500
[ { "input": "3\n-1 -1 1", "output": "2" }, { "input": "8\n1 -1 1 -1 -1 1 1 1", "output": "1" }, { "input": "11\n-1 -1 2 -1 -1 -1 -1 -1 -1 -1 -1", "output": "8" }, { "input": "7\n-1 -1 1 1 -1 -1 1", "output": "2" }, { "input": "21\n-1 -1 -1 -1 -1 3 2 -1 6 -1 -1 2 1 -1 2 2 1 6 5 -1 5", "output": "5" }, { "input": "98\n-1 -1 1 -1 -1 -1 -1 1 -1 -1 1 -1 -1 1 -1 1 1 1 -1 1 1 1 1 1 -1 1 -1 -1 -1 -1 1 -1 -1 1 1 -1 1 1 1 -1 -1 -1 -1 -1 -1 1 -1 -1 -1 1 -1 1 -1 1 -1 1 1 1 1 1 1 1 -1 -1 1 1 -1 -1 -1 -1 -1 -1 -1 -1 -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": "13" }, { "input": "3\n-1 5 4", "output": "1" }, { "input": "146\n4 -1 -1 -1 -1 -1 -1 -1 -1 -1 4 -1 3 -1 3 -1 -1 1 4 -1 2 -1 -1 3 -1 -1 -1 4 1 -1 -1 -1 4 -1 -1 -1 -1 -1 -1 3 2 -1 3 2 4 5 2 4 1 5 -1 -1 2 -1 -1 1 -1 5 3 -1 1 2 2 3 5 3 -1 -1 3 -1 -1 3 5 5 -1 -1 5 -1 4 4 1 -1 -1 -1 2 1 -1 -1 -1 2 5 3 -1 -1 -1 3 -1 5 4 -1 1 -1 -1 3 -1 -1 3 1 1 2 -1 -1 -1 1 3 1 -1 2 -1 -1 5 5 -1 -1 3 4 5 1 -1 2 -1 -1 -1 3 -1 5 3 2 -1 2 -1 -1 5 -1 3 -1", "output": "5" }, { "input": "1\n2", "output": "0" }, { "input": "1\n-1", "output": "1" }, { "input": "2\n1 -1", "output": "0" }, { "input": "2\n-1 1", "output": "1" }, { "input": "2\n1 1", "output": "0" }, { "input": "2\n-1 -1", "output": "2" }, { "input": "4\n10 -1 -1 -1", "output": "0" }, { "input": "1\n1", "output": "0" }, { "input": "4\n-1 -1 1 1", "output": "2" } ]
1,692,425,898
2,147,483,647
Python 3
OK
TESTS
63
62
9,420,800
n = int(input("")) l=[int(x) for x in input().split()] crime = 0 police = 0 crime_unsolved = 0 for i in l: if i==-1: if police<=0: crime_unsolved+=1 else: police-=1 if i>=1: police+=i print(crime_unsolved)
Title: Police Recruits Time Limit: None seconds Memory Limit: None megabytes Problem Description: The police department of your city has just started its journey. Initially, they don’t have any manpower. So, they started hiring new recruits in groups. Meanwhile, crimes keeps occurring within the city. One member of the police force can investigate only one crime during his/her lifetime. If there is no police officer free (isn't busy with crime) during the occurrence of a crime, it will go untreated. Given the chronological order of crime occurrences and recruit hirings, find the number of crimes which will go untreated. Input Specification: The first line of input will contain an integer *n* (1<=≤<=*n*<=≤<=105), the number of events. The next line will contain *n* space-separated integers. If the integer is -1 then it means a crime has occurred. Otherwise, the integer will be positive, the number of officers recruited together at that time. No more than 10 officers will be recruited at a time. Output Specification: Print a single integer, the number of crimes which will go untreated. Demo Input: ['3\n-1 -1 1\n', '8\n1 -1 1 -1 -1 1 1 1\n', '11\n-1 -1 2 -1 -1 -1 -1 -1 -1 -1 -1\n'] Demo Output: ['2\n', '1\n', '8\n'] Note: Lets consider the second example: 1. Firstly one person is hired. 1. Then crime appears, the last hired person will investigate this crime. 1. One more person is hired. 1. One more crime appears, the last hired person will investigate this crime. 1. Crime appears. There is no free policeman at the time, so this crime will go untreated. 1. One more person is hired. 1. One more person is hired. 1. One more person is hired. The answer is one, as one crime (on step 5) will go untreated.
```python n = int(input("")) l=[int(x) for x in input().split()] crime = 0 police = 0 crime_unsolved = 0 for i in l: if i==-1: if police<=0: crime_unsolved+=1 else: police-=1 if i>=1: police+=i print(crime_unsolved) ```
3
931
A
Friends Meeting
PROGRAMMING
800
[ "brute force", "greedy", "implementation", "math" ]
null
null
Two friends are on the coordinate axis *Ox* in points with integer coordinates. One of them is in the point *x*1<==<=*a*, another one is in the point *x*2<==<=*b*. Each of the friends can move by one along the line in any direction unlimited number of times. When a friend moves, the tiredness of a friend changes according to the following rules: the first move increases the tiredness by 1, the second move increases the tiredness by 2, the third — by 3 and so on. For example, if a friend moves first to the left, then to the right (returning to the same point), and then again to the left his tiredness becomes equal to 1<=+<=2<=+<=3<==<=6. The friends want to meet in a integer point. Determine the minimum total tiredness they should gain, if they meet in the same point.
The first line contains a single integer *a* (1<=≤<=*a*<=≤<=1000) — the initial position of the first friend. The second line contains a single integer *b* (1<=≤<=*b*<=≤<=1000) — the initial position of the second friend. It is guaranteed that *a*<=≠<=*b*.
Print the minimum possible total tiredness if the friends meet in the same point.
[ "3\n4\n", "101\n99\n", "5\n10\n" ]
[ "1\n", "2\n", "9\n" ]
In the first example the first friend should move by one to the right (then the meeting happens at point 4), or the second friend should move by one to the left (then the meeting happens at point 3). In both cases, the total tiredness becomes 1. In the second example the first friend should move by one to the left, and the second friend should move by one to the right. Then they meet in the point 100, and the total tiredness becomes 1 + 1 = 2. In the third example one of the optimal ways is the following. The first friend should move three times to the right, and the second friend — two times to the left. Thus the friends meet in the point 8, and the total tiredness becomes 1 + 2 + 3 + 1 + 2 = 9.
500
[ { "input": "3\n4", "output": "1" }, { "input": "101\n99", "output": "2" }, { "input": "5\n10", "output": "9" }, { "input": "1\n2", "output": "1" }, { "input": "1\n1000", "output": "250000" }, { "input": "999\n1000", "output": "1" }, { "input": "1000\n999", "output": "1" }, { "input": "1000\n1", "output": "250000" }, { "input": "2\n1", "output": "1" }, { "input": "2\n999", "output": "249001" }, { "input": "2\n998", "output": "248502" }, { "input": "999\n2", "output": "249001" }, { "input": "998\n2", "output": "248502" }, { "input": "2\n1000", "output": "249500" }, { "input": "1000\n2", "output": "249500" }, { "input": "1\n999", "output": "249500" }, { "input": "999\n1", "output": "249500" }, { "input": "188\n762", "output": "82656" }, { "input": "596\n777", "output": "8281" }, { "input": "773\n70", "output": "123904" }, { "input": "825\n729", "output": "2352" }, { "input": "944\n348", "output": "89102" }, { "input": "352\n445", "output": "2209" }, { "input": "529\n656", "output": "4096" }, { "input": "19\n315", "output": "22052" }, { "input": "138\n370", "output": "13572" }, { "input": "546\n593", "output": "576" }, { "input": "285\n242", "output": "484" }, { "input": "773\n901", "output": "4160" }, { "input": "892\n520", "output": "34782" }, { "input": "864\n179", "output": "117649" }, { "input": "479\n470", "output": "25" }, { "input": "967\n487", "output": "57840" }, { "input": "648\n106", "output": "73712" }, { "input": "58\n765", "output": "125316" }, { "input": "235\n56", "output": "8100" }, { "input": "285\n153", "output": "4422" }, { "input": "943\n13", "output": "216690" }, { "input": "675\n541", "output": "4556" }, { "input": "4\n912", "output": "206570" } ]
1,520,183,148
5,448
Python 3
OK
TESTS
40
77
5,632,000
def suma(q): sump = 0 for i in range(1,q+1): sump = sump + i return(sump) a = int(input()) b = int(input()) c = (a+b)//2 c1 = abs(c - a) c2 = abs(c - b) print(suma(c1)+suma(c2))
Title: Friends Meeting Time Limit: None seconds Memory Limit: None megabytes Problem Description: Two friends are on the coordinate axis *Ox* in points with integer coordinates. One of them is in the point *x*1<==<=*a*, another one is in the point *x*2<==<=*b*. Each of the friends can move by one along the line in any direction unlimited number of times. When a friend moves, the tiredness of a friend changes according to the following rules: the first move increases the tiredness by 1, the second move increases the tiredness by 2, the third — by 3 and so on. For example, if a friend moves first to the left, then to the right (returning to the same point), and then again to the left his tiredness becomes equal to 1<=+<=2<=+<=3<==<=6. The friends want to meet in a integer point. Determine the minimum total tiredness they should gain, if they meet in the same point. Input Specification: The first line contains a single integer *a* (1<=≤<=*a*<=≤<=1000) — the initial position of the first friend. The second line contains a single integer *b* (1<=≤<=*b*<=≤<=1000) — the initial position of the second friend. It is guaranteed that *a*<=≠<=*b*. Output Specification: Print the minimum possible total tiredness if the friends meet in the same point. Demo Input: ['3\n4\n', '101\n99\n', '5\n10\n'] Demo Output: ['1\n', '2\n', '9\n'] Note: In the first example the first friend should move by one to the right (then the meeting happens at point 4), or the second friend should move by one to the left (then the meeting happens at point 3). In both cases, the total tiredness becomes 1. In the second example the first friend should move by one to the left, and the second friend should move by one to the right. Then they meet in the point 100, and the total tiredness becomes 1 + 1 = 2. In the third example one of the optimal ways is the following. The first friend should move three times to the right, and the second friend — two times to the left. Thus the friends meet in the point 8, and the total tiredness becomes 1 + 2 + 3 + 1 + 2 = 9.
```python def suma(q): sump = 0 for i in range(1,q+1): sump = sump + i return(sump) a = int(input()) b = int(input()) c = (a+b)//2 c1 = abs(c - a) c2 = abs(c - b) print(suma(c1)+suma(c2)) ```
3
456
A
Laptops
PROGRAMMING
1,100
[ "sortings" ]
null
null
One day Dima and Alex had an argument about the price and quality of laptops. Dima thinks that the more expensive a laptop is, the better it is. Alex disagrees. Alex thinks that there are two laptops, such that the price of the first laptop is less (strictly smaller) than the price of the second laptop but the quality of the first laptop is higher (strictly greater) than the quality of the second laptop. Please, check the guess of Alex. You are given descriptions of *n* laptops. Determine whether two described above laptops exist.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=105) — the number of laptops. Next *n* lines contain two integers each, *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*), where *a**i* is the price of the *i*-th laptop, and *b**i* is the number that represents the quality of the *i*-th laptop (the larger the number is, the higher is the quality). All *a**i* are distinct. All *b**i* are distinct.
If Alex is correct, print "Happy Alex", otherwise print "Poor Alex" (without the quotes).
[ "2\n1 2\n2 1\n" ]
[ "Happy Alex\n" ]
none
500
[ { "input": "2\n1 2\n2 1", "output": "Happy Alex" }, { "input": "2\n1 1\n2 2", "output": "Poor Alex" }, { "input": "3\n2 2\n3 3\n1 1", "output": "Poor Alex" }, { "input": "3\n3 3\n1 2\n2 1", "output": "Happy Alex" }, { "input": "1\n1 1", "output": "Poor Alex" }, { "input": "3\n2 3\n1 1\n3 2", "output": "Happy Alex" }, { "input": "4\n4 1\n3 2\n2 3\n1 4", "output": "Happy Alex" }, { "input": "2\n2 1\n1 2", "output": "Happy Alex" }, { "input": "3\n3 2\n1 1\n2 3", "output": "Happy Alex" }, { "input": "3\n1 2\n2 3\n3 1", "output": "Happy Alex" }, { "input": "3\n1 2\n2 1\n3 3", "output": "Happy Alex" }, { "input": "3\n1 2\n2 3\n3 1", "output": "Happy Alex" } ]
1,673,354,589
2,147,483,647
Python 3
OK
TESTS
46
358
9,728,000
q = [[int(x) for x in input().split()] for _ in range(int(input()))] q.sort(key=lambda x: x[1], reverse=True) found = False for i in range(len(q)-1): if ( q[i][1] > q[i+1][1] and q[i][0] < q[i+1][0] ): found = True break print(["Poor Alex", "Happy Alex"][found])
Title: Laptops Time Limit: None seconds Memory Limit: None megabytes Problem Description: One day Dima and Alex had an argument about the price and quality of laptops. Dima thinks that the more expensive a laptop is, the better it is. Alex disagrees. Alex thinks that there are two laptops, such that the price of the first laptop is less (strictly smaller) than the price of the second laptop but the quality of the first laptop is higher (strictly greater) than the quality of the second laptop. Please, check the guess of Alex. You are given descriptions of *n* laptops. Determine whether two described above laptops exist. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=105) — the number of laptops. Next *n* lines contain two integers each, *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*), where *a**i* is the price of the *i*-th laptop, and *b**i* is the number that represents the quality of the *i*-th laptop (the larger the number is, the higher is the quality). All *a**i* are distinct. All *b**i* are distinct. Output Specification: If Alex is correct, print "Happy Alex", otherwise print "Poor Alex" (without the quotes). Demo Input: ['2\n1 2\n2 1\n'] Demo Output: ['Happy Alex\n'] Note: none
```python q = [[int(x) for x in input().split()] for _ in range(int(input()))] q.sort(key=lambda x: x[1], reverse=True) found = False for i in range(len(q)-1): if ( q[i][1] > q[i+1][1] and q[i][0] < q[i+1][0] ): found = True break print(["Poor Alex", "Happy Alex"][found]) ```
3
496
A
Minimum Difficulty
PROGRAMMING
900
[ "brute force", "implementation", "math" ]
null
null
Mike is trying rock climbing but he is awful at it. There are *n* holds on the wall, *i*-th hold is at height *a**i* off the ground. Besides, let the sequence *a**i* increase, that is, *a**i*<=&lt;<=*a**i*<=+<=1 for all *i* from 1 to *n*<=-<=1; we will call such sequence a track. Mike thinks that the track *a*1, ..., *a**n* has difficulty . In other words, difficulty equals the maximum distance between two holds that are adjacent in height. Today Mike decided to cover the track with holds hanging on heights *a*1, ..., *a**n*. To make the problem harder, Mike decided to remove one hold, that is, remove one element of the sequence (for example, if we take the sequence (1,<=2,<=3,<=4,<=5) and remove the third element from it, we obtain the sequence (1,<=2,<=4,<=5)). However, as Mike is awful at climbing, he wants the final difficulty (i.e. the maximum difference of heights between adjacent holds after removing the hold) to be as small as possible among all possible options of removing a hold. The first and last holds must stay at their positions. Help Mike determine the minimum difficulty of the track after removing one hold.
The first line contains a single integer *n* (3<=≤<=*n*<=≤<=100) — the number of holds. The next line contains *n* space-separated integers *a**i* (1<=≤<=*a**i*<=≤<=1000), where *a**i* is the height where the hold number *i* hangs. The sequence *a**i* is increasing (i.e. each element except for the first one is strictly larger than the previous one).
Print a single number — the minimum difficulty of the track after removing a single hold.
[ "3\n1 4 6\n", "5\n1 2 3 4 5\n", "5\n1 2 3 7 8\n" ]
[ "5\n", "2\n", "4\n" ]
In the first sample you can remove only the second hold, then the sequence looks like (1, 6), the maximum difference of the neighboring elements equals 5. In the second test after removing every hold the difficulty equals 2. In the third test you can obtain sequences (1, 3, 7, 8), (1, 2, 7, 8), (1, 2, 3, 8), for which the difficulty is 4, 5 and 5, respectively. Thus, after removing the second element we obtain the optimal answer — 4.
500
[ { "input": "3\n1 4 6", "output": "5" }, { "input": "5\n1 2 3 4 5", "output": "2" }, { "input": "5\n1 2 3 7 8", "output": "4" }, { "input": "3\n1 500 1000", "output": "999" }, { "input": "10\n1 2 3 4 5 6 7 8 9 10", "output": "2" }, { "input": "10\n1 4 9 16 25 36 49 64 81 100", "output": "19" }, { "input": "10\n300 315 325 338 350 365 379 391 404 416", "output": "23" }, { "input": "15\n87 89 91 92 93 95 97 99 101 103 105 107 109 111 112", "output": "2" }, { "input": "60\n3 5 7 8 15 16 18 21 24 26 40 41 43 47 48 49 50 51 52 54 55 60 62 71 74 84 85 89 91 96 406 407 409 412 417 420 423 424 428 431 432 433 436 441 445 446 447 455 458 467 469 471 472 475 480 485 492 493 497 500", "output": "310" }, { "input": "3\n159 282 405", "output": "246" }, { "input": "81\n6 7 22 23 27 38 40 56 59 71 72 78 80 83 86 92 95 96 101 122 125 127 130 134 154 169 170 171 172 174 177 182 184 187 195 197 210 211 217 223 241 249 252 253 256 261 265 269 274 277 291 292 297 298 299 300 302 318 338 348 351 353 381 386 387 397 409 410 419 420 428 430 453 460 461 473 478 493 494 500 741", "output": "241" }, { "input": "10\n218 300 388 448 535 629 680 740 836 925", "output": "111" }, { "input": "100\n6 16 26 36 46 56 66 76 86 96 106 116 126 136 146 156 166 176 186 196 206 216 226 236 246 256 266 276 286 296 306 316 326 336 346 356 366 376 386 396 406 416 426 436 446 456 466 476 486 496 506 516 526 536 546 556 566 576 586 596 606 616 626 636 646 656 666 676 686 696 706 716 726 736 746 756 766 776 786 796 806 816 826 836 846 856 866 876 886 896 906 916 926 936 946 956 966 976 986 996", "output": "20" }, { "input": "100\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 50 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000", "output": "901" }, { "input": "100\n1 9 15 17 28 29 30 31 32 46 48 49 52 56 62 77 82 85 90 91 94 101 102 109 111 113 116 118 124 125 131 132 136 138 139 143 145 158 161 162 165 167 171 173 175 177 179 183 189 196 801 802 804 806 817 819 827 830 837 840 842 846 850 855 858 862 863 866 869 870 878 881 883 884 896 898 899 901 904 906 908 909 910 911 912 917 923 924 925 935 939 943 945 956 963 964 965 972 976 978", "output": "605" }, { "input": "100\n2 43 47 49 50 57 59 67 74 98 901 903 904 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 938 939 940 942 943 944 945 946 947 948 949 950 952 953 954 956 957 958 959 960 961 962 963 965 966 967 968 969 970 971 972 973 974 975 976 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 998 999", "output": "803" }, { "input": "72\n178 186 196 209 217 226 236 248 260 273 281 291 300 309 322 331 343 357 366 377 389 399 409 419 429 442 450 459 469 477 491 501 512 524 534 548 557 568 582 593 602 616 630 643 652 660 670 679 693 707 715 728 737 750 759 768 776 789 797 807 815 827 837 849 863 873 881 890 901 910 920 932", "output": "17" }, { "input": "38\n1 28 55 82 109 136 163 190 217 244 271 298 325 352 379 406 433 460 487 514 541 568 595 622 649 676 703 730 757 784 811 838 865 892 919 946 973 1000", "output": "54" }, { "input": "28\n1 38 75 112 149 186 223 260 297 334 371 408 445 482 519 556 593 630 667 704 741 778 815 852 889 926 963 1000", "output": "74" } ]
1,419,431,220
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
62
0
n = int(input()) ai = list(map(int,input().split())) maxi = ai[1]-ai[0] mini = ai[-1]-ai[0] for num in range(1,n-1): ai2 = ai[:num]+ai[num+1:] for i in range(n-2): z = ai2[i+1]-ai2[i] if z>maxi: maxi=z if mini > maxi: mini = maxi print(mini)
Title: Minimum Difficulty Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mike is trying rock climbing but he is awful at it. There are *n* holds on the wall, *i*-th hold is at height *a**i* off the ground. Besides, let the sequence *a**i* increase, that is, *a**i*<=&lt;<=*a**i*<=+<=1 for all *i* from 1 to *n*<=-<=1; we will call such sequence a track. Mike thinks that the track *a*1, ..., *a**n* has difficulty . In other words, difficulty equals the maximum distance between two holds that are adjacent in height. Today Mike decided to cover the track with holds hanging on heights *a*1, ..., *a**n*. To make the problem harder, Mike decided to remove one hold, that is, remove one element of the sequence (for example, if we take the sequence (1,<=2,<=3,<=4,<=5) and remove the third element from it, we obtain the sequence (1,<=2,<=4,<=5)). However, as Mike is awful at climbing, he wants the final difficulty (i.e. the maximum difference of heights between adjacent holds after removing the hold) to be as small as possible among all possible options of removing a hold. The first and last holds must stay at their positions. Help Mike determine the minimum difficulty of the track after removing one hold. Input Specification: The first line contains a single integer *n* (3<=≤<=*n*<=≤<=100) — the number of holds. The next line contains *n* space-separated integers *a**i* (1<=≤<=*a**i*<=≤<=1000), where *a**i* is the height where the hold number *i* hangs. The sequence *a**i* is increasing (i.e. each element except for the first one is strictly larger than the previous one). Output Specification: Print a single number — the minimum difficulty of the track after removing a single hold. Demo Input: ['3\n1 4 6\n', '5\n1 2 3 4 5\n', '5\n1 2 3 7 8\n'] Demo Output: ['5\n', '2\n', '4\n'] Note: In the first sample you can remove only the second hold, then the sequence looks like (1, 6), the maximum difference of the neighboring elements equals 5. In the second test after removing every hold the difficulty equals 2. In the third test you can obtain sequences (1, 3, 7, 8), (1, 2, 7, 8), (1, 2, 3, 8), for which the difficulty is 4, 5 and 5, respectively. Thus, after removing the second element we obtain the optimal answer — 4.
```python n = int(input()) ai = list(map(int,input().split())) maxi = ai[1]-ai[0] mini = ai[-1]-ai[0] for num in range(1,n-1): ai2 = ai[:num]+ai[num+1:] for i in range(n-2): z = ai2[i+1]-ai2[i] if z>maxi: maxi=z if mini > maxi: mini = maxi print(mini) ```
0
821
A
Okabe and Future Gadget Laboratory
PROGRAMMING
800
[ "implementation" ]
null
null
Okabe needs to renovate the Future Gadget Laboratory after he tried doing some crazy experiments! The lab is represented as an *n* by *n* square grid of integers. A good lab is defined as a lab in which every number not equal to 1 can be expressed as the sum of a number in the same row and a number in the same column. In other words, for every *x*,<=*y* such that 1<=≤<=*x*,<=*y*<=≤<=*n* and *a**x*,<=*y*<=≠<=1, there should exist two indices *s* and *t* so that *a**x*,<=*y*<==<=*a**x*,<=*s*<=+<=*a**t*,<=*y*, where *a**i*,<=*j* denotes the integer in *i*-th row and *j*-th column. Help Okabe determine whether a given lab is good!
The first line of input contains the integer *n* (1<=≤<=*n*<=≤<=50) — the size of the lab. The next *n* lines contain *n* space-separated integers denoting a row of the grid. The *j*-th integer in the *i*-th row is *a**i*,<=*j* (1<=≤<=*a**i*,<=*j*<=≤<=105).
Print "Yes" if the given lab is good and "No" otherwise. You can output each letter in upper or lower case.
[ "3\n1 1 2\n2 3 1\n6 4 1\n", "3\n1 5 2\n1 1 1\n1 2 3\n" ]
[ "Yes\n", "No\n" ]
In the first sample test, the 6 in the bottom left corner is valid because it is the sum of the 2 above it and the 4 on the right. The same holds for every number not equal to 1 in this table, so the answer is "Yes". In the second sample test, the 5 cannot be formed as the sum of an integer in the same row and an integer in the same column. Thus the answer is "No".
500
[ { "input": "3\n1 1 2\n2 3 1\n6 4 1", "output": "Yes" }, { "input": "3\n1 5 2\n1 1 1\n1 2 3", "output": "No" }, { "input": "1\n1", "output": "Yes" }, { "input": "4\n1 1 1 1\n1 11 1 2\n2 5 1 4\n3 9 4 1", "output": "Yes" }, { "input": "4\n1 1 1 1\n1 7 1 1\n1 3 1 2\n2 6 3 1", "output": "Yes" }, { "input": "4\n1 1 1 1\n1 12 1 2\n4 4 1 3\n5 10 6 1", "output": "Yes" }, { "input": "4\n1 1 1 1\n1 13 1 2\n4 5 1 3\n5 11 6 1", "output": "Yes" }, { "input": "4\n1 1 1 1\n1 13 1 2\n4 5 1 3\n7 11 6 1", "output": "No" }, { "input": "4\n1 1 1 1\n1 14 1 6\n4 5 1 5\n3 8 2 1", "output": "Yes" }, { "input": "10\n3 2 6 5 1 2 1 1 2 1\n1 2 2 3 1 4 1 1 1 1\n1 1 3 1 2 2 2 1 1 1\n1 3 1 2 1 2 1 1 1 1\n12 1 4 3 3 1 1 1 2 1\n8 1 1 1 1 3 6 5 1 3\n1 1 1 2 4 1 3 2 1 1\n1 1 1 1 1 1 1 2 1 1\n1 2 1 1 1 1 1 1 1 1\n2 1 1 1 1 1 1 1 1 2", "output": "Yes" }, { "input": "4\n1 2 3 5\n1 1 1 1\n1 1 1 1\n1 1 1 1", "output": "No" }, { "input": "1\n2", "output": "No" }, { "input": "3\n1 1 4\n1 1 2\n1 1 2", "output": "No" }, { "input": "1\n5", "output": "No" }, { "input": "3\n1 2 1\n2 2 3\n1 3 1", "output": "No" }, { "input": "3\n2 1 1\n2 1 1\n2 1 1", "output": "No" }, { "input": "1\n60000", "output": "No" } ]
1,616,882,841
2,147,483,647
PyPy 3
OK
TESTS
31
140
2,252,800
cases = int(input()) n = cases matrix = [] while cases: cases -= 1 row = list(map(int, input().split())) matrix.append(row) for i in range(n): for j in range(n): if matrix[i][j] == 1: continue broken = False for k in range(n): for m in range(n): if matrix[i][k] + matrix[m][j] == matrix[i][j]: broken = True if not broken: print("No") exit() print("Yes")
Title: Okabe and Future Gadget Laboratory Time Limit: None seconds Memory Limit: None megabytes Problem Description: Okabe needs to renovate the Future Gadget Laboratory after he tried doing some crazy experiments! The lab is represented as an *n* by *n* square grid of integers. A good lab is defined as a lab in which every number not equal to 1 can be expressed as the sum of a number in the same row and a number in the same column. In other words, for every *x*,<=*y* such that 1<=≤<=*x*,<=*y*<=≤<=*n* and *a**x*,<=*y*<=≠<=1, there should exist two indices *s* and *t* so that *a**x*,<=*y*<==<=*a**x*,<=*s*<=+<=*a**t*,<=*y*, where *a**i*,<=*j* denotes the integer in *i*-th row and *j*-th column. Help Okabe determine whether a given lab is good! Input Specification: The first line of input contains the integer *n* (1<=≤<=*n*<=≤<=50) — the size of the lab. The next *n* lines contain *n* space-separated integers denoting a row of the grid. The *j*-th integer in the *i*-th row is *a**i*,<=*j* (1<=≤<=*a**i*,<=*j*<=≤<=105). Output Specification: Print "Yes" if the given lab is good and "No" otherwise. You can output each letter in upper or lower case. Demo Input: ['3\n1 1 2\n2 3 1\n6 4 1\n', '3\n1 5 2\n1 1 1\n1 2 3\n'] Demo Output: ['Yes\n', 'No\n'] Note: In the first sample test, the 6 in the bottom left corner is valid because it is the sum of the 2 above it and the 4 on the right. The same holds for every number not equal to 1 in this table, so the answer is "Yes". In the second sample test, the 5 cannot be formed as the sum of an integer in the same row and an integer in the same column. Thus the answer is "No".
```python cases = int(input()) n = cases matrix = [] while cases: cases -= 1 row = list(map(int, input().split())) matrix.append(row) for i in range(n): for j in range(n): if matrix[i][j] == 1: continue broken = False for k in range(n): for m in range(n): if matrix[i][k] + matrix[m][j] == matrix[i][j]: broken = True if not broken: print("No") exit() print("Yes") ```
3
50
A
Domino piling
PROGRAMMING
800
[ "greedy", "math" ]
A. Domino piling
2
256
You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions.
In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16).
Output one number — the maximal number of dominoes, which can be placed.
[ "2 4\n", "3 3\n" ]
[ "4\n", "4\n" ]
none
500
[ { "input": "2 4", "output": "4" }, { "input": "3 3", "output": "4" }, { "input": "1 5", "output": "2" }, { "input": "1 6", "output": "3" }, { "input": "1 15", "output": "7" }, { "input": "1 16", "output": "8" }, { "input": "2 5", "output": "5" }, { "input": "2 6", "output": "6" }, { "input": "2 7", "output": "7" }, { "input": "2 14", "output": "14" }, { "input": "2 15", "output": "15" }, { "input": "1 4", "output": "2" }, { "input": "2 16", "output": "16" }, { "input": "3 5", "output": "7" }, { "input": "3 6", "output": "9" }, { "input": "3 10", "output": "15" }, { "input": "3 14", "output": "21" }, { "input": "3 15", "output": "22" }, { "input": "3 16", "output": "24" }, { "input": "5 7", "output": "17" }, { "input": "16 16", "output": "128" }, { "input": "15 16", "output": "120" }, { "input": "2 3", "output": "3" }, { "input": "15 15", "output": "112" }, { "input": "14 16", "output": "112" }, { "input": "11 13", "output": "71" }, { "input": "5 16", "output": "40" }, { "input": "8 15", "output": "60" }, { "input": "2 2", "output": "2" }, { "input": "3 4", "output": "6" }, { "input": "4 4", "output": "8" }, { "input": "1 1", "output": "0" }, { "input": "1 2", "output": "1" }, { "input": "1 3", "output": "1" }, { "input": "14 15", "output": "105" } ]
1,662,742,934
2,147,483,647
Python 3
OK
TESTS
35
92
0
num = input().split() m = num[0] n = num[1] sum = int(n)*int(m) / 2 print(int(sum))
Title: Domino piling Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions. Input Specification: In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16). Output Specification: Output one number — the maximal number of dominoes, which can be placed. Demo Input: ['2 4\n', '3 3\n'] Demo Output: ['4\n', '4\n'] Note: none
```python num = input().split() m = num[0] n = num[1] sum = int(n)*int(m) / 2 print(int(sum)) ```
3.977
660
A
Co-prime Array
PROGRAMMING
1,200
[ "greedy", "implementation", "math", "number theory" ]
null
null
You are given an array of *n* elements, you must make it a co-prime array in as few moves as possible. In each move you can insert any positive integral number you want not greater than 109 in any place in the array. An array is co-prime if any two adjacent numbers of it are co-prime. In the number theory, two integers *a* and *b* are said to be co-prime if the only positive integer that divides both of them is 1.
The first line contains integer *n* (1<=≤<=*n*<=≤<=1000) — the number of elements in the given array. The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the elements of the array *a*.
Print integer *k* on the first line — the least number of elements needed to add to the array *a* to make it co-prime. The second line should contain *n*<=+<=*k* integers *a**j* — the elements of the array *a* after adding *k* elements to it. Note that the new array should be co-prime, so any two adjacent values should be co-prime. Also the new array should be got from the original array *a* by adding *k* elements to it. If there are multiple answers you can print any one of them.
[ "3\n2 7 28\n" ]
[ "1\n2 7 9 28\n" ]
none
0
[ { "input": "3\n2 7 28", "output": "1\n2 7 1 28" }, { "input": "1\n1", "output": "0\n1" }, { "input": "1\n548", "output": "0\n548" }, { "input": "1\n963837006", "output": "0\n963837006" }, { "input": "10\n1 1 1 1 1 1 1 1 1 1", "output": "0\n1 1 1 1 1 1 1 1 1 1" }, { "input": "10\n26 723 970 13 422 968 875 329 234 983", "output": "2\n26 723 970 13 422 1 968 875 1 329 234 983" }, { "input": "10\n319645572 758298525 812547177 459359946 355467212 304450522 807957797 916787906 239781206 242840396", "output": "7\n319645572 1 758298525 1 812547177 1 459359946 1 355467212 1 304450522 807957797 916787906 1 239781206 1 242840396" }, { "input": "100\n1 1 1 1 2 1 1 1 1 1 2 2 1 1 2 1 2 1 1 1 2 1 1 2 1 2 1 1 2 2 2 1 1 2 1 1 1 2 2 2 1 1 1 2 1 2 2 1 2 1 1 2 2 1 2 1 2 1 2 2 1 1 1 2 1 1 2 1 2 1 2 2 2 1 2 1 2 2 2 1 2 2 1 1 1 1 2 2 2 2 2 2 2 1 1 1 2 1 2 1", "output": "19\n1 1 1 1 2 1 1 1 1 1 2 1 2 1 1 2 1 2 1 1 1 2 1 1 2 1 2 1 1 2 1 2 1 2 1 1 2 1 1 1 2 1 2 1 2 1 1 1 2 1 2 1 2 1 2 1 1 2 1 2 1 2 1 2 1 2 1 2 1 1 1 2 1 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 1 1 1 2 1 2 1 2 1 2 1 2 1 2 1 2 1 1 1 2 1 2 1" }, { "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": "38\n591 1 417 1 888 251 792 1 847 685 3 182 461 102 1 348 1 555 956 771 901 712 1 878 1 580 631 342 1 333 1 285 899 525 1 725 537 718 929 653 84 1 788 1 104 355 624 803 1 253 853 201 995 536 1 184 65 1 205 1 540 1 652 549 1 777 248 405 677 950 431 580 1 600 1 846 1 328 429 134 983 526 103 500 963 400 23 1 276 1 704 1 570 757 410 1 658 507 620 1 984 1 244 1 486 1 454 1 802 411 985 303 635 283 96 1 597 1 855 1 775 139 839 1 839 61 219 986 1 776 1 72 1 729 1 69 20 917" }, { "input": "5\n472882027 472882027 472882027 472882027 472882027", "output": "4\n472882027 1 472882027 1 472882027 1 472882027 1 472882027" }, { "input": "2\n1000000000 1000000000", "output": "1\n1000000000 1 1000000000" }, { "input": "2\n8 6", "output": "1\n8 1 6" }, { "input": "3\n100000000 1000000000 1000000000", "output": "2\n100000000 1 1000000000 1 1000000000" }, { "input": "5\n1 2 3 4 5", "output": "0\n1 2 3 4 5" }, { "input": "20\n2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000 2 1000000000", "output": "19\n2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000 1 2 1 1000000000" }, { "input": "2\n223092870 23", "output": "1\n223092870 1 23" }, { "input": "2\n100000003 100000003", "output": "1\n100000003 1 100000003" }, { "input": "2\n999999937 999999937", "output": "1\n999999937 1 999999937" }, { "input": "4\n999 999999937 999999937 999", "output": "1\n999 999999937 1 999999937 999" }, { "input": "2\n999999929 999999929", "output": "1\n999999929 1 999999929" }, { "input": "2\n1049459 2098918", "output": "1\n1049459 1 2098918" }, { "input": "2\n352229 704458", "output": "1\n352229 1 704458" }, { "input": "2\n7293 4011", "output": "1\n7293 1 4011" }, { "input": "2\n5565651 3999930", "output": "1\n5565651 1 3999930" }, { "input": "2\n997 997", "output": "1\n997 1 997" }, { "input": "3\n9994223 9994223 9994223", "output": "2\n9994223 1 9994223 1 9994223" }, { "input": "2\n99999998 1000000000", "output": "1\n99999998 1 1000000000" }, { "input": "3\n1000000000 1000000000 1000000000", "output": "2\n1000000000 1 1000000000 1 1000000000" }, { "input": "2\n130471 130471", "output": "1\n130471 1 130471" }, { "input": "3\n1000000000 2 2", "output": "2\n1000000000 1 2 1 2" }, { "input": "2\n223092870 66526", "output": "1\n223092870 1 66526" }, { "input": "14\n1000000000 1000000000 223092870 223092870 6 105 2 2 510510 510510 999999491 999999491 436077930 570018449", "output": "10\n1000000000 1 1000000000 1 223092870 1 223092870 1 6 1 105 2 1 2 1 510510 1 510510 999999491 1 999999491 436077930 1 570018449" }, { "input": "2\n3996017 3996017", "output": "1\n3996017 1 3996017" }, { "input": "2\n999983 999983", "output": "1\n999983 1 999983" }, { "input": "2\n618575685 773990454", "output": "1\n618575685 1 773990454" }, { "input": "3\n9699690 3 7", "output": "1\n9699690 1 3 7" }, { "input": "2\n999999999 999999996", "output": "1\n999999999 1 999999996" }, { "input": "2\n99999910 99999910", "output": "1\n99999910 1 99999910" }, { "input": "12\n1000000000 1000000000 223092870 223092870 6 105 2 2 510510 510510 999999491 999999491", "output": "9\n1000000000 1 1000000000 1 223092870 1 223092870 1 6 1 105 2 1 2 1 510510 1 510510 999999491 1 999999491" }, { "input": "3\n999999937 999999937 999999937", "output": "2\n999999937 1 999999937 1 999999937" }, { "input": "2\n99839 99839", "output": "1\n99839 1 99839" }, { "input": "3\n19999909 19999909 19999909", "output": "2\n19999909 1 19999909 1 19999909" }, { "input": "4\n1 1000000000 1 1000000000", "output": "0\n1 1000000000 1 1000000000" }, { "input": "2\n64006 64006", "output": "1\n64006 1 64006" }, { "input": "2\n1956955 1956955", "output": "1\n1956955 1 1956955" }, { "input": "3\n1 1000000000 1000000000", "output": "1\n1 1000000000 1 1000000000" }, { "input": "2\n982451707 982451707", "output": "1\n982451707 1 982451707" }, { "input": "2\n999999733 999999733", "output": "1\n999999733 1 999999733" }, { "input": "3\n999999733 999999733 999999733", "output": "2\n999999733 1 999999733 1 999999733" }, { "input": "2\n3257 3257", "output": "1\n3257 1 3257" }, { "input": "2\n223092870 181598", "output": "1\n223092870 1 181598" }, { "input": "3\n959919409 105935 105935", "output": "2\n959919409 1 105935 1 105935" }, { "input": "2\n510510 510510", "output": "1\n510510 1 510510" }, { "input": "3\n223092870 1000000000 1000000000", "output": "2\n223092870 1 1000000000 1 1000000000" }, { "input": "14\n1000000000 2 1000000000 3 1000000000 6 1000000000 1000000000 15 1000000000 1000000000 1000000000 100000000 1000", "output": "11\n1000000000 1 2 1 1000000000 3 1000000000 1 6 1 1000000000 1 1000000000 1 15 1 1000000000 1 1000000000 1 1000000000 1 100000000 1 1000" }, { "input": "7\n1 982451653 982451653 1 982451653 982451653 982451653", "output": "3\n1 982451653 1 982451653 1 982451653 1 982451653 1 982451653" }, { "input": "2\n100000007 100000007", "output": "1\n100000007 1 100000007" }, { "input": "3\n999999757 999999757 999999757", "output": "2\n999999757 1 999999757 1 999999757" }, { "input": "3\n99999989 99999989 99999989", "output": "2\n99999989 1 99999989 1 99999989" }, { "input": "5\n2 4 982451707 982451707 3", "output": "2\n2 1 4 982451707 1 982451707 3" }, { "input": "2\n20000014 20000014", "output": "1\n20000014 1 20000014" }, { "input": "2\n99999989 99999989", "output": "1\n99999989 1 99999989" }, { "input": "2\n111546435 111546435", "output": "1\n111546435 1 111546435" }, { "input": "2\n55288874 33538046", "output": "1\n55288874 1 33538046" }, { "input": "5\n179424673 179424673 179424673 179424673 179424673", "output": "4\n179424673 1 179424673 1 179424673 1 179424673 1 179424673" }, { "input": "2\n199999978 199999978", "output": "1\n199999978 1 199999978" }, { "input": "2\n1000000000 2", "output": "1\n1000000000 1 2" }, { "input": "3\n19999897 19999897 19999897", "output": "2\n19999897 1 19999897 1 19999897" }, { "input": "2\n19999982 19999982", "output": "1\n19999982 1 19999982" }, { "input": "2\n10000007 10000007", "output": "1\n10000007 1 10000007" }, { "input": "3\n999999937 999999937 2", "output": "1\n999999937 1 999999937 2" }, { "input": "5\n2017 2017 2017 2017 2017", "output": "4\n2017 1 2017 1 2017 1 2017 1 2017" }, { "input": "2\n19999909 39999818", "output": "1\n19999909 1 39999818" }, { "input": "2\n62615533 7919", "output": "1\n62615533 1 7919" }, { "input": "5\n39989 39989 33 31 29", "output": "1\n39989 1 39989 33 31 29" }, { "input": "2\n1000000000 100000", "output": "1\n1000000000 1 100000" }, { "input": "2\n1938 10010", "output": "1\n1938 1 10010" }, { "input": "2\n199999 199999", "output": "1\n199999 1 199999" }, { "input": "2\n107273 107273", "output": "1\n107273 1 107273" }, { "input": "3\n49999 49999 49999", "output": "2\n49999 1 49999 1 49999" }, { "input": "2\n1999966 1999958", "output": "1\n1999966 1 1999958" }, { "input": "2\n86020 300846", "output": "1\n86020 1 300846" }, { "input": "2\n999999997 213", "output": "1\n999999997 1 213" }, { "input": "2\n200000014 200000434", "output": "1\n200000014 1 200000434" } ]
1,629,872,043
243
PyPy 3
OK
TESTS
93
124
22,528,000
import math import sys input = sys.stdin.readline n = int(input()) a = list(map(int, input().split())) s = set() for i in range(n - 1): if math.gcd(a[i], a[i + 1]) ^ 1: s.add(i) k = len(s) ans = [] for i in range(n): ans.append(a[i]) if i in s: ans.append(1) print(k) print(*ans)
Title: Co-prime Array Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given an array of *n* elements, you must make it a co-prime array in as few moves as possible. In each move you can insert any positive integral number you want not greater than 109 in any place in the array. An array is co-prime if any two adjacent numbers of it are co-prime. In the number theory, two integers *a* and *b* are said to be co-prime if the only positive integer that divides both of them is 1. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=1000) — the number of elements in the given array. The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the elements of the array *a*. Output Specification: Print integer *k* on the first line — the least number of elements needed to add to the array *a* to make it co-prime. The second line should contain *n*<=+<=*k* integers *a**j* — the elements of the array *a* after adding *k* elements to it. Note that the new array should be co-prime, so any two adjacent values should be co-prime. Also the new array should be got from the original array *a* by adding *k* elements to it. If there are multiple answers you can print any one of them. Demo Input: ['3\n2 7 28\n'] Demo Output: ['1\n2 7 9 28\n'] Note: none
```python import math import sys input = sys.stdin.readline n = int(input()) a = list(map(int, input().split())) s = set() for i in range(n - 1): if math.gcd(a[i], a[i + 1]) ^ 1: s.add(i) k = len(s) ans = [] for i in range(n): ans.append(a[i]) if i in s: ans.append(1) print(k) print(*ans) ```
3
801
B
Valued Keys
PROGRAMMING
900
[ "constructive algorithms", "greedy", "strings" ]
null
null
You found a mysterious function *f*. The function takes two strings *s*1 and *s*2. These strings must consist only of lowercase English letters, and must be the same length. The output of the function *f* is another string of the same length. The *i*-th character of the output is equal to the minimum of the *i*-th character of *s*1 and the *i*-th character of *s*2. For example, *f*("ab", "ba") = "aa", and *f*("nzwzl", "zizez") = "niwel". You found two strings *x* and *y* of the same length and consisting of only lowercase English letters. Find any string *z* such that *f*(*x*,<=*z*)<==<=*y*, or print -1 if no such string *z* exists.
The first line of input contains the string *x*. The second line of input contains the string *y*. Both *x* and *y* consist only of lowercase English letters, *x* and *y* have same length and this length is between 1 and 100.
If there is no string *z* such that *f*(*x*,<=*z*)<==<=*y*, print -1. Otherwise, print a string *z* such that *f*(*x*,<=*z*)<==<=*y*. If there are multiple possible answers, print any of them. The string *z* should be the same length as *x* and *y* and consist only of lowercase English letters.
[ "ab\naa\n", "nzwzl\nniwel\n", "ab\nba\n" ]
[ "ba\n", "xiyez\n", "-1\n" ]
The first case is from the statement. Another solution for the second case is "zizez" There is no solution for the third case. That is, there is no *z* such that *f*("ab", *z*) =  "ba".
1,000
[ { "input": "ab\naa", "output": "ba" }, { "input": "nzwzl\nniwel", "output": "xiyez" }, { "input": "ab\nba", "output": "-1" }, { "input": "r\nl", "output": "l" }, { "input": "d\ny", "output": "-1" }, { "input": "yvowz\ncajav", "output": "cajav" }, { "input": "lwzjp\ninjit", "output": "-1" }, { "input": "epqnlxmiicdidyscjaxqznwur\neodnlemiicdedmkcgavqbnqmm", "output": "eodnlemiicdedmkcgavqbnqmm" }, { "input": "qqdabbsxiibnnjgsgxllfvdqj\nuxmypqtwfdezewdxfgplannrs", "output": "-1" }, { "input": "aanerbaqslfmqmuciqbxyznkevukvznpkmxlcorpmrenwxhzfgbmlfpxtkqpxdrmcqcmbf\naanebbaqkgfiimcciqbaoznkeqqkrgapdillccrfeienwbcvfgbmlfbimkqchcrmclcmbf", "output": "aanebbaqkgfiimcciqbaoznkeqqkrgapdillccrfeienwbcvfgbmlfbimkqchcrmclcmbf" }, { "input": "mbyrkhjctrcrayisflptgfudwgrtegidhqicsjqafvdloritbjhciyxuwavxknezwwudnk\nvvixsutlbdewqoabqhpuerfkzrddcqptfwmxdlxwbvsaqfjoxztlddvwgflcteqbwaiaen", "output": "-1" }, { "input": "eufycwztywhbjrpqobvknwfqmnboqcfdiahkagykeibbsqpljcghhmsgfmswwsanzyiwtvuirwmppfivtekaywkzskyydfvkjgxb\necfwavookadbcilfobojnweqinbcpcfdiahkabwkeibbacpljcghhksgfajgmianfnivmhfifogpffiheegayfkxkkcmdfvihgdb", "output": "ecfwavookadbcilfobojnweqinbcpcfdiahkabwkeibbacpljcghhksgfajgmianfnivmhfifogpffiheegayfkxkkcmdfvihgdb" }, { "input": "qvpltcffyeghtbdhjyhfteojezyzziardduzrbwuxmzzkkoehfnxecafizxglboauhynfbawlfxenmykquyhrxswhjuovvogntok\nchvkcvzxptbcepdjfezcpuvtehewbnvqeoezlcnzhpfwujbmhafoeqmjhtwisnobauinkzyigrvahpuetkgpdjfgbzficsmuqnym", "output": "-1" }, { "input": "nmuwjdihouqrnsuahimssnrbxdpwvxiyqtenahtrlshjkmnfuttnpqhgcagoptinnaptxaccptparldzrhpgbyrzedghudtsswxi\nnilhbdghosqnbebafimconrbvdodjsipqmekahhrllhjkemeketapfhgcagopfidnahtlaccpfpafedqicpcbvfgedghudhddwib", "output": "nilhbdghosqnbebafimconrbvdodjsipqmekahhrllhjkemeketapfhgcagopfidnahtlaccpfpafedqicpcbvfgedghudhddwib" }, { "input": "dyxgwupoauwqtcfoyfjdotzirwztdfrueqiypxoqvkmhiehdppwtdoxrbfvtairdbuvlqohjflznggjpifhwjrshcrfbjtklpykx\ngzqlnoizhxolnditjdhlhptjsbczehicudoybzilwnshmywozwnwuipcgirgzldtvtowdsokfeafggwserzdazkxyddjttiopeew", "output": "-1" }, { "input": "hbgwuqzougqzlxemvyjpeizjfwhgugrfnhbrlxkmkdalikfyunppwgdzmalbwewybnjzqsohwhjkdcyhhzmysflambvhpsjilsyv\nfbdjdqjojdafarakvcjpeipjfehgfgrfehbolxkmkdagikflunnpvadocalbkedibhbflmohnhjkdcthhaigsfjaibqhbcjelirv", "output": "fbdjdqjojdafarakvcjpeipjfehgfgrfehbolxkmkdagikflunnpvadocalbkedibhbflmohnhjkdcthhaigsfjaibqhbcjelirv" }, { "input": "xnjjhjfuhgyxqhpzmvgbaohqarugdoaczcfecofltwemieyxolswkcwhlfagfrgmoiqrgftokbqwtxgxzweozzlikrvafiabivlk\npjfosalbsitcnqiazhmepfifjxvmazvdgffcnozmnqubhonwjldmpdsjagmamniylzjdbklcyrzivjyzgnogahobpkwpwpvraqns", "output": "-1" }, { "input": "zrvzedssbsrfldqvjpgmsefrmsatspzoitwvymahiptphiystjlsauzquzqqbmljobdhijcpdvatorwmyojqgnezvzlgjibxepcf\npesoedmqbmffldqsjggmhefkadaesijointrkmahapaahiysfjdiaupqujngbjhjobdhiecadeatgjvelojjgnepvajgeibfepaf", "output": "pesoedmqbmffldqsjggmhefkadaesijointrkmahapaahiysfjdiaupqujngbjhjobdhiecadeatgjvelojjgnepvajgeibfepaf" }, { "input": "pdvkuwyzntzfqpblzmbynknyhlnqbxijuqaincviugxohcsrofozrrsategwkbwxcvkyzxhurokefpbdnmcfogfhsojayysqbrow\nbvxruombdrywlcjkrltyayaazwpauuhbtgwfzdrmfwwucgffucwelzvpsdgtapogchblzahsrfymjlaghkbmbssghrpxalkslcvp", "output": "-1" }, { "input": "tgharsjyihroiiahwgbjezlxvlterxivdhtzjcqegzmtigqmrehvhiyjeywegxaseoyoacouijudbiruoghgxvxadwzgdxtnxlds\ntghaksjsdhkoiiahegbjexlfrctercipdhmvjbgegxdtggqdpbhvhiseehhegnaseoooacnsijubbirjnghgsvpadhaadrtimfdp", "output": "tghaksjsdhkoiiahegbjexlfrctercipdhmvjbgegxdtggqdpbhvhiseehhegnaseoooacnsijubbirjnghgsvpadhaadrtimfdp" }, { "input": "jsinejpfwhzloulxndzvzftgogfdagrsscxmatldssqsgaknnbkcvhptebjjpkjhrjegrotzwcdosezkedzxeoyibmyzunkguoqj\nkfmvybobocdpipiripysioruqvloopvbggpjksgmwzyqwyxnesmvhsawnbbmntulspvsysfkjqwpvoelliopbaukyagedextzoej", "output": "-1" }, { "input": "nttdcfceptruiomtmwzestrfchnqpgqeztpcvthzelfyggjgqadylzubpvbrlgndrcsursczpxlnoyoadxezncqalupfzmjeqihe\nkttdcfceohrjiaahmoldanpfchnfpgheqpdahqhxecfpbgigqadrkjubjfbrlgndbcgcgmcjpeleinaadretncqaiqpfkmjeqihe", "output": "kttdcfceohrjiaahmoldanpfchnfpgheqpdahqhxecfpbgigqadrkjubjfbrlgndbcgcgmcjpeleinaadretncqaiqpfkmjeqihe" }, { "input": "diuopwglduasnaxgduwslbzoyayoypzznqspljcyqehweydhlwifcvnjmaowuvyqfwynjghecqvxdvuquuwpvwrjljozocaxnktv\ntrdydprdzmjhgbhzytelrfjpgsebijicsigmwhynmcyjtqrvojcndodchzxfcvyqjxqzwibccdvsjqhsnectdjyrrhzkeamukang", "output": "-1" }, { "input": "ftfr\nftfr", "output": "ftfr" }, { "input": "ftr\nftr", "output": "ftr" }, { "input": "shftr\nshftr", "output": "shftr" }, { "input": "vkvkkv\nvkvkkv", "output": "vkvkkv" }, { "input": "ftrd\nftrd", "output": "ftrd" }, { "input": "fztr\nfztr", "output": "fztr" }, { "input": "frtr\nfrtr", "output": "frtr" }, { "input": "shdftr\nshdftr", "output": "shdftr" }, { "input": "zzz\nzzz", "output": "zzz" }, { "input": "shtr\nshtr", "output": "shtr" }, { "input": "aaaaa\nzzzzz", "output": "-1" }, { "input": "efr\nefr", "output": "efr" } ]
1,594,895,567
2,147,483,647
PyPy 3
OK
TESTS
35
155
20,172,800
x,y=input(),input() print('-1' if any(y[i]>x[i] for i in range(len(x))) else y)
Title: Valued Keys Time Limit: None seconds Memory Limit: None megabytes Problem Description: You found a mysterious function *f*. The function takes two strings *s*1 and *s*2. These strings must consist only of lowercase English letters, and must be the same length. The output of the function *f* is another string of the same length. The *i*-th character of the output is equal to the minimum of the *i*-th character of *s*1 and the *i*-th character of *s*2. For example, *f*("ab", "ba") = "aa", and *f*("nzwzl", "zizez") = "niwel". You found two strings *x* and *y* of the same length and consisting of only lowercase English letters. Find any string *z* such that *f*(*x*,<=*z*)<==<=*y*, or print -1 if no such string *z* exists. Input Specification: The first line of input contains the string *x*. The second line of input contains the string *y*. Both *x* and *y* consist only of lowercase English letters, *x* and *y* have same length and this length is between 1 and 100. Output Specification: If there is no string *z* such that *f*(*x*,<=*z*)<==<=*y*, print -1. Otherwise, print a string *z* such that *f*(*x*,<=*z*)<==<=*y*. If there are multiple possible answers, print any of them. The string *z* should be the same length as *x* and *y* and consist only of lowercase English letters. Demo Input: ['ab\naa\n', 'nzwzl\nniwel\n', 'ab\nba\n'] Demo Output: ['ba\n', 'xiyez\n', '-1\n'] Note: The first case is from the statement. Another solution for the second case is "zizez" There is no solution for the third case. That is, there is no *z* such that *f*("ab", *z*) =  "ba".
```python x,y=input(),input() print('-1' if any(y[i]>x[i] for i in range(len(x))) else y) ```
3
637
B
Chat Order
PROGRAMMING
1,200
[ "*special", "binary search", "constructive algorithms", "data structures", "sortings" ]
null
null
Polycarp is a big lover of killing time in social networks. A page with a chatlist in his favourite network is made so that when a message is sent to some friend, his friend's chat rises to the very top of the page. The relative order of the other chats doesn't change. If there was no chat with this friend before, then a new chat is simply inserted to the top of the list. Assuming that the chat list is initially empty, given the sequence of Polycaprus' messages make a list of chats after all of his messages are processed. Assume that no friend wrote any message to Polycarpus.
The first line contains integer *n* (1<=≤<=*n*<=≤<=200<=000) — the number of Polycarpus' messages. Next *n* lines enlist the message recipients in the order in which the messages were sent. The name of each participant is a non-empty sequence of lowercase English letters of length at most 10.
Print all the recipients to who Polycarp talked to in the order of chats with them, from top to bottom.
[ "4\nalex\nivan\nroman\nivan\n", "8\nalina\nmaria\nekaterina\ndarya\ndarya\nekaterina\nmaria\nalina\n" ]
[ "ivan\nroman\nalex\n", "alina\nmaria\nekaterina\ndarya\n" ]
In the first test case Polycarpus first writes to friend by name "alex", and the list looks as follows: 1. alex Then Polycarpus writes to friend by name "ivan" and the list looks as follows: 1. ivan 1. alex Polycarpus writes the third message to friend by name "roman" and the list looks as follows: 1. roman 1. ivan 1. alex Polycarpus writes the fourth message to friend by name "ivan", to who he has already sent a message, so the list of chats changes as follows: 1. ivan 1. roman 1. alex
1,000
[ { "input": "4\nalex\nivan\nroman\nivan", "output": "ivan\nroman\nalex" }, { "input": "8\nalina\nmaria\nekaterina\ndarya\ndarya\nekaterina\nmaria\nalina", "output": "alina\nmaria\nekaterina\ndarya" }, { "input": "1\nwdi", "output": "wdi" }, { "input": "2\nypg\nypg", "output": "ypg" }, { "input": "3\nexhll\nexhll\narruapexj", "output": "arruapexj\nexhll" }, { "input": "3\nfv\nle\nle", "output": "le\nfv" }, { "input": "8\nm\nm\nm\nm\nm\nm\nm\nm", "output": "m" }, { "input": "10\nr\nr\ni\nw\nk\nr\nb\nu\nu\nr", "output": "r\nu\nb\nk\nw\ni" }, { "input": "7\ne\nfau\ncmk\nnzs\nby\nwx\ntjmok", "output": "tjmok\nwx\nby\nnzs\ncmk\nfau\ne" }, { "input": "6\nklrj\nwe\nklrj\nwe\nwe\nwe", "output": "we\nklrj" }, { "input": "8\nzncybqmh\naeebef\nzncybqmh\nn\naeebef\nzncybqmh\nzncybqmh\nzncybqmh", "output": "zncybqmh\naeebef\nn" }, { "input": "30\nkqqcbs\nvap\nkymomn\nj\nkqqcbs\nfuzlzoum\nkymomn\ndbh\nfuzlzoum\nkymomn\nvap\nvlgzs\ndbh\nvlgzs\nbvy\ndbh\nkymomn\nkymomn\neoqql\nkymomn\nkymomn\nkqqcbs\nvlgzs\nkqqcbs\nkqqcbs\nfuzlzoum\nvlgzs\nrylgdoo\nvlgzs\nrylgdoo", "output": "rylgdoo\nvlgzs\nfuzlzoum\nkqqcbs\nkymomn\neoqql\ndbh\nbvy\nvap\nj" }, { "input": "40\nji\nv\nv\nns\nji\nn\nji\nv\nfvy\nvje\nns\nvje\nv\nhas\nv\nusm\nhas\nfvy\nvje\nkdb\nn\nv\nji\nji\nn\nhas\nv\nji\nkdb\nr\nvje\nns\nv\nusm\nn\nvje\nhas\nns\nhas\nn", "output": "n\nhas\nns\nvje\nusm\nv\nr\nkdb\nji\nfvy" }, { "input": "50\njcg\nvle\njopb\nepdb\nnkef\nfv\nxj\nufe\nfuy\noqta\ngbc\nyuz\nec\nyji\nkuux\ncwm\ntq\nnno\nhp\nzry\nxxpp\ntjvo\ngyz\nkwo\nvwqz\nyaqc\njnj\nwoav\nqcv\ndcu\ngc\nhovn\nop\nevy\ndc\ntrpu\nyb\nuzfa\npca\noq\nnhxy\nsiqu\nde\nhphy\nc\nwovu\nf\nbvv\ndsik\nlwyg", "output": "lwyg\ndsik\nbvv\nf\nwovu\nc\nhphy\nde\nsiqu\nnhxy\noq\npca\nuzfa\nyb\ntrpu\ndc\nevy\nop\nhovn\ngc\ndcu\nqcv\nwoav\njnj\nyaqc\nvwqz\nkwo\ngyz\ntjvo\nxxpp\nzry\nhp\nnno\ntq\ncwm\nkuux\nyji\nec\nyuz\ngbc\noqta\nfuy\nufe\nxj\nfv\nnkef\nepdb\njopb\nvle\njcg" }, { "input": "100\nvhh\nvhh\nvhh\nfa\nfa\nvhh\nvhh\nvhh\nfa\nfa\nfa\nvhh\nfa\nvhh\nvhh\nvhh\nfa\nvhh\nvhh\nfa\nfa\nfa\nfa\nfa\nfa\nvhh\nfa\nfa\nvhh\nvhh\nvhh\nfa\nfa\nfa\nvhh\nfa\nvhh\nfa\nvhh\nvhh\nfa\nvhh\nfa\nvhh\nvhh\nvhh\nfa\nvhh\nfa\nfa\nvhh\nfa\nvhh\nvhh\nvhh\nvhh\nfa\nvhh\nvhh\nvhh\nvhh\nfa\nvhh\nvhh\nvhh\nvhh\nvhh\nfa\nvhh\nvhh\nfa\nfa\nfa\nvhh\nfa\nfa\nvhh\nfa\nvhh\nfa\nfa\nfa\nfa\nfa\nfa\nvhh\nvhh\nfa\nvhh\nfa\nfa\nvhh\nfa\nfa\nvhh\nfa\nvhh\nvhh\nfa\nvhh", "output": "vhh\nfa" }, { "input": "2\naa\nbb", "output": "bb\naa" }, { "input": "2\naa\na", "output": "a\naa" }, { "input": "3\naa\naa\naa", "output": "aa" }, { "input": "5\naa\na\naa\na\naa", "output": "aa\na" }, { "input": "7\naaaa\naaaa\naaa\na\naa\naaaaaaa\naaa", "output": "aaa\naaaaaaa\naa\na\naaaa" }, { "input": "5\na\naa\naaa\naaaa\na", "output": "a\naaaa\naaa\naa" }, { "input": "12\naaaaa\naaaaaa\naaaa\naaaaaa\naa\naaaa\naaaa\naaaaaa\na\naaa\naaaaaaaa\naa", "output": "aa\naaaaaaaa\naaa\na\naaaaaa\naaaa\naaaaa" }, { "input": "3\na\naa\naaa", "output": "aaa\naa\na" }, { "input": "9\nzzz\nzzzzz\nzzz\nzzzz\nzz\nzzzz\nzzzzz\nzzzz\nzzzzzzz", "output": "zzzzzzz\nzzzz\nzzzzz\nzz\nzzz" } ]
1,633,183,456
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
11
343
6,963,200
destArray = [] nMessages = int(input()) if nMessages >= 1 and nMessages <= 200000: for x in range (nMessages): dest = str(input()) if len(dest) > 0 and len(dest) < 10: if not dest in destArray: destArray.append(dest.lower()) else: destArray.remove(dest.lower()) destArray.append(dest.lower()) for x in destArray[::-1]: print(x)
Title: Chat Order Time Limit: None seconds Memory Limit: None megabytes Problem Description: Polycarp is a big lover of killing time in social networks. A page with a chatlist in his favourite network is made so that when a message is sent to some friend, his friend's chat rises to the very top of the page. The relative order of the other chats doesn't change. If there was no chat with this friend before, then a new chat is simply inserted to the top of the list. Assuming that the chat list is initially empty, given the sequence of Polycaprus' messages make a list of chats after all of his messages are processed. Assume that no friend wrote any message to Polycarpus. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=200<=000) — the number of Polycarpus' messages. Next *n* lines enlist the message recipients in the order in which the messages were sent. The name of each participant is a non-empty sequence of lowercase English letters of length at most 10. Output Specification: Print all the recipients to who Polycarp talked to in the order of chats with them, from top to bottom. Demo Input: ['4\nalex\nivan\nroman\nivan\n', '8\nalina\nmaria\nekaterina\ndarya\ndarya\nekaterina\nmaria\nalina\n'] Demo Output: ['ivan\nroman\nalex\n', 'alina\nmaria\nekaterina\ndarya\n'] Note: In the first test case Polycarpus first writes to friend by name "alex", and the list looks as follows: 1. alex Then Polycarpus writes to friend by name "ivan" and the list looks as follows: 1. ivan 1. alex Polycarpus writes the third message to friend by name "roman" and the list looks as follows: 1. roman 1. ivan 1. alex Polycarpus writes the fourth message to friend by name "ivan", to who he has already sent a message, so the list of chats changes as follows: 1. ivan 1. roman 1. alex
```python destArray = [] nMessages = int(input()) if nMessages >= 1 and nMessages <= 200000: for x in range (nMessages): dest = str(input()) if len(dest) > 0 and len(dest) < 10: if not dest in destArray: destArray.append(dest.lower()) else: destArray.remove(dest.lower()) destArray.append(dest.lower()) for x in destArray[::-1]: print(x) ```
0
515
C
Drazil and Factorial
PROGRAMMING
1,400
[ "greedy", "math", "sortings" ]
null
null
Drazil is playing a math game with Varda. Let's define for positive integer *x* as a product of factorials of its digits. For example, . First, they choose a decimal number *a* consisting of *n* digits that contains at least one digit larger than 1. This number may possibly start with leading zeroes. Then they should find maximum positive number *x* satisfying following two conditions: 1. *x* doesn't contain neither digit 0 nor digit 1. 2. = . Help friends find such number.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=15) — the number of digits in *a*. The second line contains *n* digits of *a*. There is at least one digit in *a* that is larger than 1. Number *a* may possibly contain leading zeroes.
Output a maximum possible integer satisfying the conditions above. There should be no zeroes and ones in this number decimal representation.
[ "4\n1234\n", "3\n555\n" ]
[ "33222\n", "555\n" ]
In the first case, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/f5a4207f23215fddce977ab5ea9e9d2e7578fb52.png" style="max-width: 100.0%;max-height: 100.0%;"/>
1,000
[ { "input": "4\n1234", "output": "33222" }, { "input": "3\n555", "output": "555" }, { "input": "15\n012345781234578", "output": "7777553333222222222222" }, { "input": "1\n8", "output": "7222" }, { "input": "10\n1413472614", "output": "75333332222222" }, { "input": "8\n68931246", "output": "77553333332222222" }, { "input": "7\n4424368", "output": "75333332222222222" }, { "input": "6\n576825", "output": "7755532222" }, { "input": "5\n97715", "output": "7775332" }, { "input": "3\n915", "output": "75332" }, { "input": "2\n26", "output": "532" }, { "input": "1\n4", "output": "322" }, { "input": "15\n028745260720699", "output": "7777755533333332222222222" }, { "input": "13\n5761790121605", "output": "7775555333322" }, { "input": "10\n3312667105", "output": "755533332" }, { "input": "1\n7", "output": "7" }, { "input": "15\n989898989898989", "output": "777777777777777333333333333333322222222222222222222222222222" }, { "input": "15\n000000000000007", "output": "7" }, { "input": "15\n999999999999990", "output": "77777777777777333333333333333333333333333322222222222222" }, { "input": "1\n2", "output": "2" }, { "input": "1\n3", "output": "3" }, { "input": "1\n4", "output": "322" }, { "input": "1\n5", "output": "5" }, { "input": "1\n6", "output": "53" }, { "input": "1\n7", "output": "7" }, { "input": "1\n9", "output": "7332" }, { "input": "2\n09", "output": "7332" }, { "input": "13\n1337251172966", "output": "777555333333222" }, { "input": "15\n987654329876543", "output": "777777555533333333332222222222222" }, { "input": "9\n234567899", "output": "777755333333322222222" }, { "input": "2\n99", "output": "77333322" }, { "input": "2\n66", "output": "5533" }, { "input": "3\n999", "output": "777333333222" }, { "input": "5\n99999", "output": "77777333333333322222" }, { "input": "9\n123456789", "output": "77755333332222222" }, { "input": "9\n987654321", "output": "77755333332222222" }, { "input": "3\n666", "output": "555333" }, { "input": "2\n26", "output": "532" }, { "input": "6\n555777", "output": "777555" }, { "input": "10\n1234567899", "output": "777755333333322222222" }, { "input": "4\n6666", "output": "55553333" }, { "input": "4\n9754", "output": "775333222" }, { "input": "2\n95", "output": "75332" }, { "input": "14\n11122233344455", "output": "55333333222222222" }, { "input": "12\n836544897832", "output": "77777553333333222222222222222" } ]
1,590,175,707
2,147,483,647
PyPy 3
OK
TESTS
45
155
0
def f_app(arr, number): if number == '2': arr.append('2') if number == '3': arr.append('3') if number == '4': arr.extend(['3','2','2']) if number == '5': arr.append('5') if number == '6': arr.extend(['5','3']) if number == '7': arr.append('7') if number == '8': arr.extend(['7','2','2','2']) if number == '9': arr.extend(['7','3','3','2']) return arr def solve(s): arr = [] for letter in s: arr = f_app(arr, letter) return ''.join(sorted(arr, reverse=True)) n = int(input()) s = input() print(solve(s))
Title: Drazil and Factorial Time Limit: None seconds Memory Limit: None megabytes Problem Description: Drazil is playing a math game with Varda. Let's define for positive integer *x* as a product of factorials of its digits. For example, . First, they choose a decimal number *a* consisting of *n* digits that contains at least one digit larger than 1. This number may possibly start with leading zeroes. Then they should find maximum positive number *x* satisfying following two conditions: 1. *x* doesn't contain neither digit 0 nor digit 1. 2. = . Help friends find such number. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=15) — the number of digits in *a*. The second line contains *n* digits of *a*. There is at least one digit in *a* that is larger than 1. Number *a* may possibly contain leading zeroes. Output Specification: Output a maximum possible integer satisfying the conditions above. There should be no zeroes and ones in this number decimal representation. Demo Input: ['4\n1234\n', '3\n555\n'] Demo Output: ['33222\n', '555\n'] Note: In the first case, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/f5a4207f23215fddce977ab5ea9e9d2e7578fb52.png" style="max-width: 100.0%;max-height: 100.0%;"/>
```python def f_app(arr, number): if number == '2': arr.append('2') if number == '3': arr.append('3') if number == '4': arr.extend(['3','2','2']) if number == '5': arr.append('5') if number == '6': arr.extend(['5','3']) if number == '7': arr.append('7') if number == '8': arr.extend(['7','2','2','2']) if number == '9': arr.extend(['7','3','3','2']) return arr def solve(s): arr = [] for letter in s: arr = f_app(arr, letter) return ''.join(sorted(arr, reverse=True)) n = int(input()) s = input() print(solve(s)) ```
3
598
D
Igor In the Museum
PROGRAMMING
1,700
[ "dfs and similar", "graphs", "shortest paths" ]
null
null
Igor is in the museum and he wants to see as many pictures as possible. Museum can be represented as a rectangular field of *n*<=×<=*m* cells. Each cell is either empty or impassable. Empty cells are marked with '.', impassable cells are marked with '*'. Every two adjacent cells of different types (one empty and one impassable) are divided by a wall containing one picture. At the beginning Igor is in some empty cell. At every moment he can move to any empty cell that share a side with the current one. For several starting positions you should calculate the maximum number of pictures that Igor can see. Igor is able to see the picture only if he is in the cell adjacent to the wall with this picture. Igor have a lot of time, so he will examine every picture he can see.
First line of the input contains three integers *n*, *m* and *k* (3<=≤<=*n*,<=*m*<=≤<=1000,<=1<=≤<=*k*<=≤<=*min*(*n*·*m*,<=100<=000)) — the museum dimensions and the number of starting positions to process. Each of the next *n* lines contains *m* symbols '.', '*' — the description of the museum. It is guaranteed that all border cells are impassable, so Igor can't go out from the museum. Each of the last *k* lines contains two integers *x* and *y* (1<=≤<=*x*<=≤<=*n*,<=1<=≤<=*y*<=≤<=*m*) — the row and the column of one of Igor's starting positions respectively. Rows are numbered from top to bottom, columns — from left to right. It is guaranteed that all starting positions are empty cells.
Print *k* integers — the maximum number of pictures, that Igor can see if he starts in corresponding position.
[ "5 6 3\n******\n*..*.*\n******\n*....*\n******\n2 2\n2 5\n4 3\n", "4 4 1\n****\n*..*\n*.**\n****\n3 2\n" ]
[ "6\n4\n10\n", "8\n" ]
none
0
[ { "input": "5 6 3\n******\n*..*.*\n******\n*....*\n******\n2 2\n2 5\n4 3", "output": "6\n4\n10" }, { "input": "4 4 1\n****\n*..*\n*.**\n****\n3 2", "output": "8" }, { "input": "3 3 1\n***\n*.*\n***\n2 2", "output": "4" }, { "input": "5 5 10\n*****\n*...*\n*..**\n*.***\n*****\n2 4\n4 2\n2 2\n2 3\n2 2\n2 2\n2 4\n3 2\n2 2\n2 2", "output": "12\n12\n12\n12\n12\n12\n12\n12\n12\n12" }, { "input": "10 3 10\n***\n*.*\n*.*\n***\n***\n*.*\n*.*\n*.*\n*.*\n***\n2 2\n2 2\n2 2\n2 2\n8 2\n2 2\n2 2\n7 2\n8 2\n6 2", "output": "6\n6\n6\n6\n10\n6\n6\n10\n10\n10" }, { "input": "3 10 10\n**********\n***.*.*..*\n**********\n2 6\n2 6\n2 9\n2 9\n2 4\n2 9\n2 6\n2 6\n2 4\n2 6", "output": "4\n4\n6\n6\n4\n6\n4\n4\n4\n4" }, { "input": "10 10 50\n**********\n*......***\n***..**..*\n***....***\n**..***..*\n**..**.*.*\n*****..***\n*.***..***\n*..****.**\n**********\n5 9\n5 9\n7 7\n6 4\n6 7\n8 7\n6 7\n9 2\n3 9\n9 2\n4 7\n4 6\n2 7\n9 2\n7 7\n5 8\n8 7\n8 6\n7 7\n5 9\n8 7\n3 8\n3 8\n5 9\n9 8\n9 3\n8 7\n5 9\n9 2\n9 8\n9 3\n3 8\n9 2\n8 6\n2 4\n6 9\n6 3\n9 8\n3 9\n9 8\n4 5\n8 6\n3 8\n5 9\n8 7\n5 8\n6 9\n8 2\n3 9\n3 9", "output": "8\n8\n10\n28\n10\n10\n10\n8\n6\n8\n28\n28\n28\n8\n10\n8\n10\n10\n10\n8\n10\n6\n6\n8\n4\n8\n10\n8\n8\n4\n8\n6\n8\n10\n28\n8\n28\n4\n6\n4\n28\n10\n6\n8\n10\n8\n8\n8\n6\n6" }, { "input": "5 5 21\n*****\n*.***\n*****\n*****\n*****\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2\n2 2", "output": "4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4" } ]
1,648,621,467
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
3
31
102,400
# ──────▄▀▄─────▄▀▄───── # ─────▄█░░▀▀▀▀▀░░█▄──── # ─▄▄──█░░░░░░░░░░░█──▄▄ # █▄▄█─█░░▀░░┬░░▀░░█─█▄▄█ from sys import stdin from collections import deque input = stdin.readline n, m2, k = map(int, input().split()) m = [] for i in range(n): m.append(list(input())) p = 0 been = [] for i in range(n): been.append([-1]*m2) q = [1,0,-1,0] q2 = [0,1,0,-1] for j in range(k): a,b = map(int,input().split()) d = deque() d.append([a-1,b-1]) ans =0 while len(d) != 0: a = d.popleft() x = a[0] y = a[1] o = 0 if been[x][y] != -1: o += been[x][y] for j in range(4): if m[x+q[i]][y+q2[i]] != '*': d.append([x+q[i],y+q2[i]]) else: been[x][y] = 0 for i in range(4): if m[x+q[i]][y+q2[i]] != '*': d.append([x+q[i],y+q2[i]]) else: o += 1 been[x][y] += o ans += o print(ans)
Title: Igor In the Museum Time Limit: None seconds Memory Limit: None megabytes Problem Description: Igor is in the museum and he wants to see as many pictures as possible. Museum can be represented as a rectangular field of *n*<=×<=*m* cells. Each cell is either empty or impassable. Empty cells are marked with '.', impassable cells are marked with '*'. Every two adjacent cells of different types (one empty and one impassable) are divided by a wall containing one picture. At the beginning Igor is in some empty cell. At every moment he can move to any empty cell that share a side with the current one. For several starting positions you should calculate the maximum number of pictures that Igor can see. Igor is able to see the picture only if he is in the cell adjacent to the wall with this picture. Igor have a lot of time, so he will examine every picture he can see. Input Specification: First line of the input contains three integers *n*, *m* and *k* (3<=≤<=*n*,<=*m*<=≤<=1000,<=1<=≤<=*k*<=≤<=*min*(*n*·*m*,<=100<=000)) — the museum dimensions and the number of starting positions to process. Each of the next *n* lines contains *m* symbols '.', '*' — the description of the museum. It is guaranteed that all border cells are impassable, so Igor can't go out from the museum. Each of the last *k* lines contains two integers *x* and *y* (1<=≤<=*x*<=≤<=*n*,<=1<=≤<=*y*<=≤<=*m*) — the row and the column of one of Igor's starting positions respectively. Rows are numbered from top to bottom, columns — from left to right. It is guaranteed that all starting positions are empty cells. Output Specification: Print *k* integers — the maximum number of pictures, that Igor can see if he starts in corresponding position. Demo Input: ['5 6 3\n******\n*..*.*\n******\n*....*\n******\n2 2\n2 5\n4 3\n', '4 4 1\n****\n*..*\n*.**\n****\n3 2\n'] Demo Output: ['6\n4\n10\n', '8\n'] Note: none
```python # ──────▄▀▄─────▄▀▄───── # ─────▄█░░▀▀▀▀▀░░█▄──── # ─▄▄──█░░░░░░░░░░░█──▄▄ # █▄▄█─█░░▀░░┬░░▀░░█─█▄▄█ from sys import stdin from collections import deque input = stdin.readline n, m2, k = map(int, input().split()) m = [] for i in range(n): m.append(list(input())) p = 0 been = [] for i in range(n): been.append([-1]*m2) q = [1,0,-1,0] q2 = [0,1,0,-1] for j in range(k): a,b = map(int,input().split()) d = deque() d.append([a-1,b-1]) ans =0 while len(d) != 0: a = d.popleft() x = a[0] y = a[1] o = 0 if been[x][y] != -1: o += been[x][y] for j in range(4): if m[x+q[i]][y+q2[i]] != '*': d.append([x+q[i],y+q2[i]]) else: been[x][y] = 0 for i in range(4): if m[x+q[i]][y+q2[i]] != '*': d.append([x+q[i],y+q2[i]]) else: o += 1 been[x][y] += o ans += o print(ans) ```
0
38
B
Chess
PROGRAMMING
1,200
[ "brute force", "implementation", "math" ]
B. Chess
2
256
Two chess pieces, a rook and a knight, stand on a standard chessboard 8<=×<=8 in size. The positions in which they are situated are known. It is guaranteed that none of them beats the other one. Your task is to find the number of ways to place another knight on the board so that none of the three pieces on the board beat another one. A new piece can only be placed on an empty square.
The first input line contains the description of the rook's position on the board. This description is a line which is 2 in length. Its first symbol is a lower-case Latin letter from a to h, and its second symbol is a number from 1 to 8. The second line contains the description of the knight's position in a similar way. It is guaranteed that their positions do not coincide.
Print a single number which is the required number of ways.
[ "a1\nb2\n", "a8\nd4\n" ]
[ "44\n", "38\n" ]
none
0
[ { "input": "a1\nb2", "output": "44" }, { "input": "a8\nd4", "output": "38" }, { "input": "a8\nf1", "output": "42" }, { "input": "f8\nh3", "output": "42" }, { "input": "g8\nb7", "output": "42" }, { "input": "h1\ng5", "output": "42" }, { "input": "c6\nb5", "output": "39" }, { "input": "c1\nd2", "output": "42" }, { "input": "g3\nh4", "output": "42" }, { "input": "e3\ng5", "output": "38" }, { "input": "f8\na3", "output": "40" }, { "input": "a2\nh8", "output": "43" }, { "input": "a3\nc5", "output": "40" }, { "input": "g1\ne6", "output": "39" }, { "input": "e1\na7", "output": "41" }, { "input": "b5\nc1", "output": "39" }, { "input": "b2\ne1", "output": "43" }, { "input": "h8\ng2", "output": "43" }, { "input": "a3\nd6", "output": "38" }, { "input": "g6\nb7", "output": "39" }, { "input": "c8\ne6", "output": "40" }, { "input": "e6\nf2", "output": "35" }, { "input": "b6\nd8", "output": "41" }, { "input": "a4\nd1", "output": "42" }, { "input": "b5\nh8", "output": "40" }, { "input": "h6\na1", "output": "42" }, { "input": "c3\na8", "output": "39" }, { "input": "g5\nd2", "output": "38" }, { "input": "b6\ng7", "output": "39" }, { "input": "h6\na8", "output": "43" }, { "input": "a8\nb7", "output": "44" }, { "input": "c8\nb2", "output": "41" }, { "input": "e4\nc1", "output": "37" }, { "input": "f1\nc3", "output": "38" }, { "input": "a3\nc8", "output": "41" }, { "input": "e8\nb6", "output": "40" }, { "input": "a1\nb7", "output": "43" }, { "input": "g2\nb7", "output": "40" }, { "input": "e1\nd6", "output": "38" }, { "input": "e5\nh6", "output": "39" } ]
1,550,574,200
2,147,483,647
Python 3
OK
TESTS
40
218
307,200
rock=input() knight=input() busyDots=set() busyDots.add(knight) rockColumn=rock[0] rockRow=int(rock[1]) for code in range(ord('a'), ord('i')): busyDots.add(str(chr(code))+str(rockRow)) for i in range(1,9): busyDots.add(str(rockColumn)+str(i)) knightColumn=knight[0] knightRow=int(knight[1]) #up up left if(knightRow+2<=8 and chr(ord(knightColumn)-1)>='a'): busyDots.add(str(chr(ord(knightColumn)-1))+str((knightRow+2))) #up left left if(knightRow+1<=8 and chr(ord(knightColumn)-2)>='a'): busyDots.add( str(chr(ord(knightColumn)-2)) + str((knightRow+1)) ) #up up right if(knightRow+2<=8 and chr(ord(knightColumn)+1)<='h'): busyDots.add( str(chr(ord(knightColumn)+1)) + str((knightRow+2)) ) #up right right if(knightRow+1<=8 and chr(ord(knightColumn)+2)<='h'): busyDots.add( str(chr(ord(knightColumn)+2)) + str((knightRow+1)) ) #down down left if(knightRow-2>=1 and chr(ord(knightColumn)-1)>='a'): busyDots.add( str(chr(ord(knightColumn)-1)) + str((knightRow-2)) ) #down left left if(knightRow-1>=1 and chr(ord(knightColumn)-2)>='a'): busyDots.add( str(chr(ord(knightColumn)-2)) + str((knightRow-1)) ) #down down right if(knightRow-2>=1 and chr(ord(knightColumn)+1)<='h'): busyDots.add( str(chr(ord(knightColumn)+1)) + str((knightRow-2)) ) #down right right if(knightRow-1>=1 and chr(ord(knightColumn)+2)<='h'): busyDots.add( str(chr(ord(knightColumn)+2)) + str((knightRow-1)) ) #rock research #up up left if(rockRow+2<=8 and chr(ord(rockColumn)-1)>='a'): busyDots.add (str(chr(ord(rockColumn)-1))+str((rockRow+2))) #up left left if(rockRow+1<=8 and chr(ord(rockColumn)-2)>='a'): busyDots.add( str(chr(ord(rockColumn)-2)) + str((rockRow+1)) ) #up up right if(rockRow+2<=8 and chr(ord(rockColumn)+1)<='h'): busyDots.add( str(chr(ord(rockColumn)+1)) + str((rockRow+2)) ) #up right right if(rockRow+1<=8 and chr(ord(rockColumn)+2)<='h'): busyDots.add( str(chr(ord(rockColumn)+2)) + str((rockRow+1)) ) #down down left if(rockRow-2>=1 and chr(ord(rockColumn)-1)>='a'): busyDots.add( str(chr(ord(rockColumn)-1)) + str((rockRow-2)) ) #down left left if(rockRow-1>=1 and chr(ord(rockColumn)-2)>='a'): busyDots.add( str(chr(ord(rockColumn)-2)) + str((rockRow-1)) ) #down down right if(rockRow-2>=1 and chr(ord(rockColumn)+1)<='h'): busyDots.add( str(chr(ord(rockColumn)+1)) + str((rockRow-2)) ) #down right right if(rockRow-1>=1 and chr(ord(rockColumn)+2)<='h'): busyDots.add( str(chr(ord(rockColumn)+2)) + str((rockRow-1)) ) print(64-len(busyDots))
Title: Chess Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Two chess pieces, a rook and a knight, stand on a standard chessboard 8<=×<=8 in size. The positions in which they are situated are known. It is guaranteed that none of them beats the other one. Your task is to find the number of ways to place another knight on the board so that none of the three pieces on the board beat another one. A new piece can only be placed on an empty square. Input Specification: The first input line contains the description of the rook's position on the board. This description is a line which is 2 in length. Its first symbol is a lower-case Latin letter from a to h, and its second symbol is a number from 1 to 8. The second line contains the description of the knight's position in a similar way. It is guaranteed that their positions do not coincide. Output Specification: Print a single number which is the required number of ways. Demo Input: ['a1\nb2\n', 'a8\nd4\n'] Demo Output: ['44\n', '38\n'] Note: none
```python rock=input() knight=input() busyDots=set() busyDots.add(knight) rockColumn=rock[0] rockRow=int(rock[1]) for code in range(ord('a'), ord('i')): busyDots.add(str(chr(code))+str(rockRow)) for i in range(1,9): busyDots.add(str(rockColumn)+str(i)) knightColumn=knight[0] knightRow=int(knight[1]) #up up left if(knightRow+2<=8 and chr(ord(knightColumn)-1)>='a'): busyDots.add(str(chr(ord(knightColumn)-1))+str((knightRow+2))) #up left left if(knightRow+1<=8 and chr(ord(knightColumn)-2)>='a'): busyDots.add( str(chr(ord(knightColumn)-2)) + str((knightRow+1)) ) #up up right if(knightRow+2<=8 and chr(ord(knightColumn)+1)<='h'): busyDots.add( str(chr(ord(knightColumn)+1)) + str((knightRow+2)) ) #up right right if(knightRow+1<=8 and chr(ord(knightColumn)+2)<='h'): busyDots.add( str(chr(ord(knightColumn)+2)) + str((knightRow+1)) ) #down down left if(knightRow-2>=1 and chr(ord(knightColumn)-1)>='a'): busyDots.add( str(chr(ord(knightColumn)-1)) + str((knightRow-2)) ) #down left left if(knightRow-1>=1 and chr(ord(knightColumn)-2)>='a'): busyDots.add( str(chr(ord(knightColumn)-2)) + str((knightRow-1)) ) #down down right if(knightRow-2>=1 and chr(ord(knightColumn)+1)<='h'): busyDots.add( str(chr(ord(knightColumn)+1)) + str((knightRow-2)) ) #down right right if(knightRow-1>=1 and chr(ord(knightColumn)+2)<='h'): busyDots.add( str(chr(ord(knightColumn)+2)) + str((knightRow-1)) ) #rock research #up up left if(rockRow+2<=8 and chr(ord(rockColumn)-1)>='a'): busyDots.add (str(chr(ord(rockColumn)-1))+str((rockRow+2))) #up left left if(rockRow+1<=8 and chr(ord(rockColumn)-2)>='a'): busyDots.add( str(chr(ord(rockColumn)-2)) + str((rockRow+1)) ) #up up right if(rockRow+2<=8 and chr(ord(rockColumn)+1)<='h'): busyDots.add( str(chr(ord(rockColumn)+1)) + str((rockRow+2)) ) #up right right if(rockRow+1<=8 and chr(ord(rockColumn)+2)<='h'): busyDots.add( str(chr(ord(rockColumn)+2)) + str((rockRow+1)) ) #down down left if(rockRow-2>=1 and chr(ord(rockColumn)-1)>='a'): busyDots.add( str(chr(ord(rockColumn)-1)) + str((rockRow-2)) ) #down left left if(rockRow-1>=1 and chr(ord(rockColumn)-2)>='a'): busyDots.add( str(chr(ord(rockColumn)-2)) + str((rockRow-1)) ) #down down right if(rockRow-2>=1 and chr(ord(rockColumn)+1)<='h'): busyDots.add( str(chr(ord(rockColumn)+1)) + str((rockRow-2)) ) #down right right if(rockRow-1>=1 and chr(ord(rockColumn)+2)<='h'): busyDots.add( str(chr(ord(rockColumn)+2)) + str((rockRow-1)) ) print(64-len(busyDots)) ```
3.944928
709
A
Juicer
PROGRAMMING
900
[ "implementation" ]
null
null
Kolya is going to make fresh orange juice. He has *n* oranges of sizes *a*1,<=*a*2,<=...,<=*a**n*. Kolya will put them in the juicer in the fixed order, starting with orange of size *a*1, then orange of size *a*2 and so on. To be put in the juicer the orange must have size not exceeding *b*, so if Kolya sees an orange that is strictly greater he throws it away and continues with the next one. The juicer has a special section to collect waste. It overflows if Kolya squeezes oranges of the total size strictly greater than *d*. When it happens Kolya empties the waste section (even if there are no more oranges) and continues to squeeze the juice. How many times will he have to empty the waste section?
The first line of the input contains three integers *n*, *b* and *d* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*b*<=≤<=*d*<=≤<=1<=000<=000) — the number of oranges, the maximum size of the orange that fits in the juicer and the value *d*, which determines the condition when the waste section should be emptied. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000) — sizes of the oranges listed in the order Kolya is going to try to put them in the juicer.
Print one integer — the number of times Kolya will have to empty the waste section.
[ "2 7 10\n5 6\n", "1 5 10\n7\n", "3 10 10\n5 7 7\n", "1 1 1\n1\n" ]
[ "1\n", "0\n", "1\n", "0\n" ]
In the first sample, Kolya will squeeze the juice from two oranges and empty the waste section afterwards. In the second sample, the orange won't fit in the juicer so Kolya will have no juice at all.
500
[ { "input": "2 7 10\n5 6", "output": "1" }, { "input": "1 5 10\n7", "output": "0" }, { "input": "3 10 10\n5 7 7", "output": "1" }, { "input": "1 1 1\n1", "output": "0" }, { "input": "2 951637 951638\n44069 951637", "output": "1" }, { "input": "50 100 129\n55 130 91 19 116 3 63 52 104 76 75 27 151 99 149 147 39 148 84 9 132 49 40 112 124 141 144 93 36 32 146 74 48 38 150 55 94 32 107 69 77 81 33 57 62 98 78 127 154 126", "output": "12" }, { "input": "100 1000 1083\n992 616 818 359 609 783 263 989 501 929 362 394 919 1081 870 830 1097 975 62 346 531 367 323 457 707 360 949 334 867 116 478 417 961 963 1029 114 867 1008 988 916 983 1077 959 942 572 961 579 318 721 337 488 717 111 70 416 685 987 130 353 107 61 191 827 849 106 815 211 953 111 398 889 860 801 71 375 320 395 1059 116 222 931 444 582 74 677 655 88 173 686 491 661 186 114 832 615 814 791 464 517 850", "output": "36" }, { "input": "2 6 8\n2 1", "output": "0" }, { "input": "5 15 16\n7 11 5 12 8", "output": "2" }, { "input": "15 759966 759967\n890397 182209 878577 548548 759966 812923 759966 860479 200595 381358 299175 339368 759966 907668 69574", "output": "4" }, { "input": "5 234613 716125\n642626 494941 234613 234613 234613", "output": "0" }, { "input": "50 48547 567054\n529808 597004 242355 559114 78865 537318 631455 733020 655072 645093 309010 855034 306058 625046 524574 834944 27330 664392 443637 821584 338013 490702 289520 675471 885846 258814 134220 571301 84875 94132 200425 928833 375166 521232 317961 175315 947093 89971 322071 174033 48547 998535 954205 704114 943163 438900 48547 538422 48547 48547", "output": "0" }, { "input": "5 10 20\n10 10 10 10 1", "output": "1" }, { "input": "5 10 11\n10 10 10 10 1", "output": "2" }, { "input": "3 10 10\n4 3 3", "output": "0" }, { "input": "3 5 5\n5 5 5", "output": "1" }, { "input": "3 4 14\n5 5 5", "output": "0" }, { "input": "2 7 10\n1234 1234", "output": "0" }, { "input": "1 5 6\n10", "output": "0" }, { "input": "3 4 6\n1 2 3", "output": "0" }, { "input": "5 10 12\n13 13 13 13 13", "output": "0" }, { "input": "3 4 5\n5 7 9", "output": "0" }, { "input": "3 10 100\n5 5 5", "output": "0" }, { "input": "5 1 2\n2 2 2 2 2", "output": "0" }, { "input": "5 5 5\n5 5 5 5 5", "output": "2" }, { "input": "2 2 5\n5 5", "output": "0" }, { "input": "3 1 4\n2 2 2", "output": "0" } ]
1,621,119,821
2,147,483,647
Python 3
OK
TESTS
58
124
7,270,400
N,MaxSize,WasteSize = [int(x) for x in input().split()] Oranges = [int(x) for x in input().split()] CurrWaste = 0 TimesEmptied = 0 for i in Oranges: if CurrWaste > WasteSize: TimesEmptied += 1 CurrWaste = 0 if i <= MaxSize: CurrWaste += i if CurrWaste > WasteSize: TimesEmptied += 1 print(TimesEmptied)
Title: Juicer Time Limit: None seconds Memory Limit: None megabytes Problem Description: Kolya is going to make fresh orange juice. He has *n* oranges of sizes *a*1,<=*a*2,<=...,<=*a**n*. Kolya will put them in the juicer in the fixed order, starting with orange of size *a*1, then orange of size *a*2 and so on. To be put in the juicer the orange must have size not exceeding *b*, so if Kolya sees an orange that is strictly greater he throws it away and continues with the next one. The juicer has a special section to collect waste. It overflows if Kolya squeezes oranges of the total size strictly greater than *d*. When it happens Kolya empties the waste section (even if there are no more oranges) and continues to squeeze the juice. How many times will he have to empty the waste section? Input Specification: The first line of the input contains three integers *n*, *b* and *d* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*b*<=≤<=*d*<=≤<=1<=000<=000) — the number of oranges, the maximum size of the orange that fits in the juicer and the value *d*, which determines the condition when the waste section should be emptied. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000) — sizes of the oranges listed in the order Kolya is going to try to put them in the juicer. Output Specification: Print one integer — the number of times Kolya will have to empty the waste section. Demo Input: ['2 7 10\n5 6\n', '1 5 10\n7\n', '3 10 10\n5 7 7\n', '1 1 1\n1\n'] Demo Output: ['1\n', '0\n', '1\n', '0\n'] Note: In the first sample, Kolya will squeeze the juice from two oranges and empty the waste section afterwards. In the second sample, the orange won't fit in the juicer so Kolya will have no juice at all.
```python N,MaxSize,WasteSize = [int(x) for x in input().split()] Oranges = [int(x) for x in input().split()] CurrWaste = 0 TimesEmptied = 0 for i in Oranges: if CurrWaste > WasteSize: TimesEmptied += 1 CurrWaste = 0 if i <= MaxSize: CurrWaste += i if CurrWaste > WasteSize: TimesEmptied += 1 print(TimesEmptied) ```
3
302
A
Eugeny and Array
PROGRAMMING
800
[ "implementation" ]
null
null
Eugeny has array *a*<==<=*a*1,<=*a*2,<=...,<=*a**n*, consisting of *n* integers. Each integer *a**i* equals to -1, or to 1. Also, he has *m* queries: - Query number *i* is given as a pair of integers *l**i*, *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). - The response to the query will be integer 1, if the elements of array *a* can be rearranged so as the sum *a**l**i*<=+<=*a**l**i*<=+<=1<=+<=...<=+<=*a**r**i*<==<=0, otherwise the response to the query will be integer 0. Help Eugeny, answer all his queries.
The first line contains integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=2·105). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (*a**i*<==<=-1,<=1). Next *m* lines contain Eugene's queries. The *i*-th line contains integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*).
Print *m* integers — the responses to Eugene's queries in the order they occur in the input.
[ "2 3\n1 -1\n1 1\n1 2\n2 2\n", "5 5\n-1 1 1 1 -1\n1 1\n2 3\n3 5\n2 5\n1 5\n" ]
[ "0\n1\n0\n", "0\n1\n0\n1\n0\n" ]
none
500
[ { "input": "2 3\n1 -1\n1 1\n1 2\n2 2", "output": "0\n1\n0" }, { "input": "5 5\n-1 1 1 1 -1\n1 1\n2 3\n3 5\n2 5\n1 5", "output": "0\n1\n0\n1\n0" }, { "input": "3 3\n1 1 1\n2 2\n1 1\n1 1", "output": "0\n0\n0" }, { "input": "4 4\n-1 -1 -1 -1\n1 3\n1 2\n1 2\n1 1", "output": "0\n0\n0\n0" }, { "input": "5 5\n-1 -1 -1 -1 -1\n1 1\n1 1\n3 4\n1 1\n1 4", "output": "0\n0\n0\n0\n0" }, { "input": "6 6\n-1 -1 1 -1 -1 1\n1 1\n3 4\n1 1\n1 1\n1 3\n1 4", "output": "0\n1\n0\n0\n0\n1" }, { "input": "7 7\n-1 -1 -1 1 -1 -1 -1\n1 1\n2 7\n1 3\n1 5\n4 7\n1 7\n6 7", "output": "0\n0\n0\n0\n0\n0\n1" }, { "input": "8 8\n1 1 1 1 1 1 1 1\n5 8\n2 6\n2 3\n1 7\n7 7\n1 6\n1 8\n1 3", "output": "0\n0\n0\n0\n0\n0\n0\n0" }, { "input": "9 9\n-1 1 1 1 1 1 1 1 1\n1 7\n5 6\n1 4\n1 1\n1 1\n6 8\n1 1\n6 7\n3 5", "output": "0\n1\n0\n0\n0\n0\n0\n1\n0" }, { "input": "10 10\n-1 1 -1 1 -1 -1 -1 -1 -1 -1\n6 7\n2 5\n3 6\n1 3\n3 5\n4 5\n3 4\n1 6\n1 1\n1 1", "output": "1\n1\n1\n0\n0\n1\n1\n0\n0\n0" }, { "input": "1 1\n-1\n1 1", "output": "0" }, { "input": "1 1\n1\n1 1", "output": "0" } ]
1,587,116,853
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
10
1,000
3,686,400
n,m = map(int,input().split()) arr = list(map(int,input().split())) ne,po = 0,0 for i in arr: if i<0: ne+=1 else: po+=1 for _ in range(m): l,r = map(int,input().split()) x = r-l+1 if ne>=x//2 and po>=x//2 and x%2==0: print(1) else: print(0)
Title: Eugeny and Array Time Limit: None seconds Memory Limit: None megabytes Problem Description: Eugeny has array *a*<==<=*a*1,<=*a*2,<=...,<=*a**n*, consisting of *n* integers. Each integer *a**i* equals to -1, or to 1. Also, he has *m* queries: - Query number *i* is given as a pair of integers *l**i*, *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). - The response to the query will be integer 1, if the elements of array *a* can be rearranged so as the sum *a**l**i*<=+<=*a**l**i*<=+<=1<=+<=...<=+<=*a**r**i*<==<=0, otherwise the response to the query will be integer 0. Help Eugeny, answer all his queries. Input Specification: The first line contains integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=2·105). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (*a**i*<==<=-1,<=1). Next *m* lines contain Eugene's queries. The *i*-th line contains integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). Output Specification: Print *m* integers — the responses to Eugene's queries in the order they occur in the input. Demo Input: ['2 3\n1 -1\n1 1\n1 2\n2 2\n', '5 5\n-1 1 1 1 -1\n1 1\n2 3\n3 5\n2 5\n1 5\n'] Demo Output: ['0\n1\n0\n', '0\n1\n0\n1\n0\n'] Note: none
```python n,m = map(int,input().split()) arr = list(map(int,input().split())) ne,po = 0,0 for i in arr: if i<0: ne+=1 else: po+=1 for _ in range(m): l,r = map(int,input().split()) x = r-l+1 if ne>=x//2 and po>=x//2 and x%2==0: print(1) else: print(0) ```
0
920
B
Tea Queue
PROGRAMMING
1,200
[ "implementation" ]
null
null
Recently *n* students from city S moved to city P to attend a programming camp. They moved there by train. In the evening, all students in the train decided that they want to drink some tea. Of course, no two people can use the same teapot simultaneously, so the students had to form a queue to get their tea. *i*-th student comes to the end of the queue at the beginning of *l**i*-th second. If there are multiple students coming to the queue in the same moment, then the student with greater index comes after the student with lesser index. Students in the queue behave as follows: if there is nobody in the queue before the student, then he uses the teapot for exactly one second and leaves the queue with his tea; otherwise the student waits for the people before him to get their tea. If at the beginning of *r**i*-th second student *i* still cannot get his tea (there is someone before him in the queue), then he leaves the queue without getting any tea. For each student determine the second he will use the teapot and get his tea (if he actually gets it).
The first line contains one integer *t* — the number of test cases to solve (1<=≤<=*t*<=≤<=1000). Then *t* test cases follow. The first line of each test case contains one integer *n* (1<=≤<=*n*<=≤<=1000) — the number of students. Then *n* lines follow. Each line contains two integer *l**i*, *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=5000) — the second *i*-th student comes to the end of the queue, and the second he leaves the queue if he still cannot get his tea. It is guaranteed that for every condition *l**i*<=-<=1<=≤<=*l**i* holds. The sum of *n* over all test cases doesn't exceed 1000. Note that in hacks you have to set *t*<==<=1.
For each test case print *n* integers. *i*-th of them must be equal to the second when *i*-th student gets his tea, or 0 if he leaves without tea.
[ "2\n2\n1 3\n1 4\n3\n1 5\n1 1\n2 3\n" ]
[ "1 2 \n1 0 2 \n" ]
The example contains 2 tests: 1. During 1-st second, students 1 and 2 come to the queue, and student 1 gets his tea. Student 2 gets his tea during 2-nd second. 1. During 1-st second, students 1 and 2 come to the queue, student 1 gets his tea, and student 2 leaves without tea. During 2-nd second, student 3 comes and gets his tea.
0
[ { "input": "2\n2\n1 3\n1 4\n3\n1 5\n1 1\n2 3", "output": "1 2 \n1 0 2 " }, { "input": "19\n1\n1 1\n1\n1 2\n1\n1 1000\n1\n1 2000\n1\n2 2\n1\n2 3\n1\n2 1000\n1\n2 2000\n1\n1999 1999\n1\n1999 2000\n1\n2000 2000\n2\n1 1\n1 1\n2\n1 1\n1 2\n2\n1 2\n1 1\n2\n1 2000\n1 1\n2\n1 1\n1 2000\n2\n1 2000\n2 2\n2\n2 2000\n2 2\n2\n2 2\n2 2000", "output": "1 \n1 \n1 \n1 \n2 \n2 \n2 \n2 \n1999 \n1999 \n2000 \n1 0 \n1 2 \n1 0 \n1 0 \n1 2 \n1 2 \n2 0 \n2 3 " }, { "input": "1\n11\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1", "output": "1 0 0 0 0 0 0 0 0 0 0 " }, { "input": "1\n5\n1 1\n1 2\n1 5\n1 1\n1 1", "output": "1 2 3 0 0 " } ]
1,517,587,423
5,323
Python 3
OK
TESTS
8
62
5,734,400
t = int(input()) while t: t -= 1 n = int(input()) wait = [] time = 1 leave = [] for i in range(n): a, b = input().split(" ") wait.append((int(a), int(b))) for i in wait: if i[1] < time: leave.append(0) else: if i[0] <= time: leave.append(time) time += 1 else: leave.append(i[0]) time = i[0] + 1 for i in leave: print(i, end=" ") print("")
Title: Tea Queue Time Limit: None seconds Memory Limit: None megabytes Problem Description: Recently *n* students from city S moved to city P to attend a programming camp. They moved there by train. In the evening, all students in the train decided that they want to drink some tea. Of course, no two people can use the same teapot simultaneously, so the students had to form a queue to get their tea. *i*-th student comes to the end of the queue at the beginning of *l**i*-th second. If there are multiple students coming to the queue in the same moment, then the student with greater index comes after the student with lesser index. Students in the queue behave as follows: if there is nobody in the queue before the student, then he uses the teapot for exactly one second and leaves the queue with his tea; otherwise the student waits for the people before him to get their tea. If at the beginning of *r**i*-th second student *i* still cannot get his tea (there is someone before him in the queue), then he leaves the queue without getting any tea. For each student determine the second he will use the teapot and get his tea (if he actually gets it). Input Specification: The first line contains one integer *t* — the number of test cases to solve (1<=≤<=*t*<=≤<=1000). Then *t* test cases follow. The first line of each test case contains one integer *n* (1<=≤<=*n*<=≤<=1000) — the number of students. Then *n* lines follow. Each line contains two integer *l**i*, *r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=5000) — the second *i*-th student comes to the end of the queue, and the second he leaves the queue if he still cannot get his tea. It is guaranteed that for every condition *l**i*<=-<=1<=≤<=*l**i* holds. The sum of *n* over all test cases doesn't exceed 1000. Note that in hacks you have to set *t*<==<=1. Output Specification: For each test case print *n* integers. *i*-th of them must be equal to the second when *i*-th student gets his tea, or 0 if he leaves without tea. Demo Input: ['2\n2\n1 3\n1 4\n3\n1 5\n1 1\n2 3\n'] Demo Output: ['1 2 \n1 0 2 \n'] Note: The example contains 2 tests: 1. During 1-st second, students 1 and 2 come to the queue, and student 1 gets his tea. Student 2 gets his tea during 2-nd second. 1. During 1-st second, students 1 and 2 come to the queue, student 1 gets his tea, and student 2 leaves without tea. During 2-nd second, student 3 comes and gets his tea.
```python t = int(input()) while t: t -= 1 n = int(input()) wait = [] time = 1 leave = [] for i in range(n): a, b = input().split(" ") wait.append((int(a), int(b))) for i in wait: if i[1] < time: leave.append(0) else: if i[0] <= time: leave.append(time) time += 1 else: leave.append(i[0]) time = i[0] + 1 for i in leave: print(i, end=" ") print("") ```
3
41
A
Translation
PROGRAMMING
800
[ "implementation", "strings" ]
A. Translation
2
256
The translation from the Berland language into the Birland language is not an easy task. Those languages are very similar: a berlandish word differs from a birlandish word with the same meaning a little: it is spelled (and pronounced) reversely. For example, a Berlandish word code corresponds to a Birlandish word edoc. However, it's easy to make a mistake during the «translation». Vasya translated word *s* from Berlandish into Birlandish as *t*. Help him: find out if he translated the word correctly.
The first line contains word *s*, the second line contains word *t*. The words consist of lowercase Latin letters. The input data do not consist unnecessary spaces. The words are not empty and their lengths do not exceed 100 symbols.
If the word *t* is a word *s*, written reversely, print YES, otherwise print NO.
[ "code\nedoc\n", "abb\naba\n", "code\ncode\n" ]
[ "YES\n", "NO\n", "NO\n" ]
none
500
[ { "input": "code\nedoc", "output": "YES" }, { "input": "abb\naba", "output": "NO" }, { "input": "code\ncode", "output": "NO" }, { "input": "abacaba\nabacaba", "output": "YES" }, { "input": "q\nq", "output": "YES" }, { "input": "asrgdfngfnmfgnhweratgjkk\nasrgdfngfnmfgnhweratgjkk", "output": "NO" }, { "input": "z\na", "output": "NO" }, { "input": "asd\ndsa", "output": "YES" }, { "input": "abcdef\nfecdba", "output": "NO" }, { "input": "ywjjbirapvskozubvxoemscfwl\ngnduubaogtfaiowjizlvjcu", "output": "NO" }, { "input": "mfrmqxtzvgaeuleubcmcxcfqyruwzenguhgrmkuhdgnhgtgkdszwqyd\nmfxufheiperjnhyczclkmzyhcxntdfskzkzdwzzujdinf", "output": "NO" }, { "input": "bnbnemvybqizywlnghlykniaxxxlkhftppbdeqpesrtgkcpoeqowjwhrylpsziiwcldodcoonpimudvrxejjo\ntiynnekmlalogyvrgptbinkoqdwzuiyjlrldxhzjmmp", "output": "NO" }, { "input": "pwlpubwyhzqvcitemnhvvwkmwcaawjvdiwtoxyhbhbxerlypelevasmelpfqwjk\nstruuzebbcenziscuoecywugxncdwzyfozhljjyizpqcgkyonyetarcpwkqhuugsqjuixsxptmbnlfupdcfigacdhhrzb", "output": "NO" }, { "input": "gdvqjoyxnkypfvdxssgrihnwxkeojmnpdeobpecytkbdwujqfjtxsqspxvxpqioyfagzjxupqqzpgnpnpxcuipweunqch\nkkqkiwwasbhezqcfeceyngcyuogrkhqecwsyerdniqiocjehrpkljiljophqhyaiefjpavoom", "output": "NO" }, { "input": "umeszdawsvgkjhlqwzents\nhxqhdungbylhnikwviuh", "output": "NO" }, { "input": "juotpscvyfmgntshcealgbsrwwksgrwnrrbyaqqsxdlzhkbugdyx\nibqvffmfktyipgiopznsqtrtxiijntdbgyy", "output": "NO" }, { "input": "zbwueheveouatecaglziqmudxemhrsozmaujrwlqmppzoumxhamwugedikvkblvmxwuofmpafdprbcftew\nulczwrqhctbtbxrhhodwbcxwimncnexosksujlisgclllxokrsbnozthajnnlilyffmsyko", "output": "NO" }, { "input": "nkgwuugukzcv\nqktnpxedwxpxkrxdvgmfgoxkdfpbzvwsduyiybynbkouonhvmzakeiruhfmvrktghadbfkmwxduoqv", "output": "NO" }, { "input": "incenvizhqpcenhjhehvjvgbsnfixbatrrjstxjzhlmdmxijztphxbrldlqwdfimweepkggzcxsrwelodpnryntepioqpvk\ndhjbjjftlvnxibkklxquwmzhjfvnmwpapdrslioxisbyhhfymyiaqhlgecpxamqnocizwxniubrmpyubvpenoukhcobkdojlybxd", "output": "NO" }, { "input": "w\nw", "output": "YES" }, { "input": "vz\nzv", "output": "YES" }, { "input": "ry\nyr", "output": "YES" }, { "input": "xou\nuox", "output": "YES" }, { "input": "axg\ngax", "output": "NO" }, { "input": "zdsl\nlsdz", "output": "YES" }, { "input": "kudl\nldku", "output": "NO" }, { "input": "zzlzwnqlcl\nlclqnwzlzz", "output": "YES" }, { "input": "vzzgicnzqooejpjzads\nsdazjpjeooqzncigzzv", "output": "YES" }, { "input": "raqhmvmzuwaykjpyxsykr\nxkysrypjkyawuzmvmhqar", "output": "NO" }, { "input": "ngedczubzdcqbxksnxuavdjaqtmdwncjnoaicvmodcqvhfezew\nwezefhvqcdomvciaonjcnwdmtqajdvauxnskxbqcdzbuzcdegn", "output": "YES" }, { "input": "muooqttvrrljcxbroizkymuidvfmhhsjtumksdkcbwwpfqdyvxtrlymofendqvznzlmim\nmimlznzvqdnefomylrtxvydqfpwwbckdskmutjshhmfvdiumykziorbxcjlrrvttqooum", "output": "YES" }, { "input": "vxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaivg\ngviayyikkitmuomcpiakhbxszgbnhvwyzkftwoagzixaearxpjacrnvpvbuzenvovehkmmxvblqyxvctroddksdsgebcmlluqpxv", "output": "YES" }, { "input": "mnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfdc\ncdfmkdgrdptkpewbsqvszipgxvgvuiuzbkkwuowbafkikgvnqdkxnayzdjygvezmtsgywnupocdntipiyiorblqkrzjpzatxahnm", "output": "NO" }, { "input": "dgxmzbqofstzcdgthbaewbwocowvhqpinehpjatnnbrijcolvsatbblsrxabzrpszoiecpwhfjmwuhqrapvtcgvikuxtzbftydkw\nwkdytfbztxukivgctvparqhuwmjfhwpceiozsprzbaxrslbbqasvlocjirbnntajphenipthvwocowbweabhtgdcztsfoqbzmxgd", "output": "NO" }, { "input": "gxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwgeh\nhegwxvocotmzstqfbmpjvijgkcyodlxyjawrpkczpmdspsuhoiruavnnnuwvtwohglkdxjetshkboalvzqbgjgthoteceixioxg", "output": "YES" }, { "input": "sihxuwvmaambplxvjfoskinghzicyfqebjtkysotattkahssumfcgrkheotdxwjckpvapbkaepqrxseyfrwtyaycmrzsrsngkh\nhkgnsrszrmcyaytwrfyesxrqpeakbpavpkcjwxdtoehkrgcfmusshakttatosyktjbeqfycizhgniksofjvxlpbmaamvwuxhis", "output": "YES" }, { "input": "ycnahksbughnonldzrhkysujmylcgcfuludjvjiahtkyzqvkopzqcnwhltbzfugzojqkjjlggmvnultascmygelkiktmfieok\nkoeifmtkiklegkmcsatlunvmggkjjlqjozgufzbtlhwncqzpokvqzykthaijvjdulufcgclymjusyyhrzdlnonhgubskhancy", "output": "NO" }, { "input": "wbqasaehtkfojruzyhrlgwmtyiovmzyfifslvlemhqheyaelzwnthrenjsbmntwaoryzwfbxmscmypvxlfmzpnkkjlvwvmtz\nztmvwvljkknpzmflxvpymcsmxbfwzyroawtnmbsjnerhtnwzleayehqhmelvlsfifyzmvoiytmwglrhyzurjofktheasaqbw", "output": "YES" }, { "input": "imippqurprbhfugngtgifelytadegwrgaefnfhbjjnmzikvjaccotqzemufqieqldgnbmviisgkynzeldlhqxuqphjfmyij\njiymfjhpquxqhldleznykgsiivmbngdlqeiqfumezqtoccajvkizmnjjbhfnfeagrwgedatylefigtgngufhbrpruqppimi", "output": "YES" }, { "input": "bikydffiuisckpvzqlteqfhegsagimodb\nbdomigasgehfqetlqzvpkcsiuiffdykib", "output": "YES" } ]
1,639,708,469
2,147,483,647
Python 3
OK
TESTS
40
122
0
x = input() y = input() reversedString = "" if(len(x) == len(y)): reversedString = x[::-1] if(reversedString == y): print("YES") else: print("NO")
Title: Translation Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: The translation from the Berland language into the Birland language is not an easy task. Those languages are very similar: a berlandish word differs from a birlandish word with the same meaning a little: it is spelled (and pronounced) reversely. For example, a Berlandish word code corresponds to a Birlandish word edoc. However, it's easy to make a mistake during the «translation». Vasya translated word *s* from Berlandish into Birlandish as *t*. Help him: find out if he translated the word correctly. Input Specification: The first line contains word *s*, the second line contains word *t*. The words consist of lowercase Latin letters. The input data do not consist unnecessary spaces. The words are not empty and their lengths do not exceed 100 symbols. Output Specification: If the word *t* is a word *s*, written reversely, print YES, otherwise print NO. Demo Input: ['code\nedoc\n', 'abb\naba\n', 'code\ncode\n'] Demo Output: ['YES\n', 'NO\n', 'NO\n'] Note: none
```python x = input() y = input() reversedString = "" if(len(x) == len(y)): reversedString = x[::-1] if(reversedString == y): print("YES") else: print("NO") ```
3.9695
313
B
Ilya and Queries
PROGRAMMING
1,100
[ "dp", "implementation" ]
null
null
Ilya the Lion wants to help all his friends with passing exams. They need to solve the following problem to pass the IT exam. You've got string *s*<==<=*s*1*s*2... *s**n* (*n* is the length of the string), consisting only of characters "." and "#" and *m* queries. Each query is described by a pair of integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=&lt;<=*r**i*<=≤<=*n*). The answer to the query *l**i*,<=*r**i* is the number of such integers *i* (*l**i*<=≤<=*i*<=&lt;<=*r**i*), that *s**i*<==<=*s**i*<=+<=1. Ilya the Lion wants to help his friends but is there anyone to help him? Help Ilya, solve the problem.
The first line contains string *s* of length *n* (2<=≤<=*n*<=≤<=105). It is guaranteed that the given string only consists of characters "." and "#". The next line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. Each of the next *m* lines contains the description of the corresponding query. The *i*-th line contains integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=&lt;<=*r**i*<=≤<=*n*).
Print *m* integers — the answers to the queries in the order in which they are given in the input.
[ "......\n4\n3 4\n2 3\n1 6\n2 6\n", "#..###\n5\n1 3\n5 6\n1 5\n3 6\n3 4\n" ]
[ "1\n1\n5\n4\n", "1\n1\n2\n2\n0\n" ]
none
1,000
[ { "input": "......\n4\n3 4\n2 3\n1 6\n2 6", "output": "1\n1\n5\n4" }, { "input": "#..###\n5\n1 3\n5 6\n1 5\n3 6\n3 4", "output": "1\n1\n2\n2\n0" }, { "input": ".#...#..\n6\n1 5\n2 3\n6 7\n2 4\n2 5\n1 3", "output": "2\n0\n0\n1\n2\n0" }, { "input": "#.#.#..\n5\n3 4\n4 5\n5 7\n5 7\n1 3", "output": "0\n0\n1\n1\n0" }, { "input": "#.##.##.\n7\n1 8\n2 6\n2 6\n6 8\n3 5\n2 4\n2 5", "output": "2\n1\n1\n1\n1\n1\n1" }, { "input": "#..#\n1\n1 4", "output": "1" }, { "input": "#..##...#.\n7\n5 9\n6 10\n1 7\n5 8\n3 5\n2 10\n3 4", "output": "2\n2\n3\n2\n1\n4\n0" }, { "input": "#.#.#\n7\n1 2\n3 4\n3 5\n2 3\n3 5\n1 5\n1 3", "output": "0\n0\n0\n0\n0\n0\n0" }, { "input": "###..#...#\n2\n2 4\n1 2", "output": "1\n1" }, { "input": "..\n1\n1 2", "output": "1" }, { "input": "##\n1\n1 2", "output": "1" }, { "input": ".#\n1\n1 2", "output": "0" }, { "input": "#.\n1\n1 2", "output": "0" }, { "input": "...\n2\n1 2\n1 2", "output": "1\n1" } ]
1,699,325,115
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
9
2,000
1,740,800
''' 2300015897 吴杰稀 光华管理学院 ''' string = "0" + str(input()) length = len(string) dp = [0] * (length) for i in range(1,len(string) - 1): if string[i] == string[i + 1]: dp[i] = 1 cases = int(input()) for i in range(cases): l,r = map(int,input().split()) print(sum(dp[l:r]))
Title: Ilya and Queries Time Limit: None seconds Memory Limit: None megabytes Problem Description: Ilya the Lion wants to help all his friends with passing exams. They need to solve the following problem to pass the IT exam. You've got string *s*<==<=*s*1*s*2... *s**n* (*n* is the length of the string), consisting only of characters "." and "#" and *m* queries. Each query is described by a pair of integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=&lt;<=*r**i*<=≤<=*n*). The answer to the query *l**i*,<=*r**i* is the number of such integers *i* (*l**i*<=≤<=*i*<=&lt;<=*r**i*), that *s**i*<==<=*s**i*<=+<=1. Ilya the Lion wants to help his friends but is there anyone to help him? Help Ilya, solve the problem. Input Specification: The first line contains string *s* of length *n* (2<=≤<=*n*<=≤<=105). It is guaranteed that the given string only consists of characters "." and "#". The next line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. Each of the next *m* lines contains the description of the corresponding query. The *i*-th line contains integers *l**i*,<=*r**i* (1<=≤<=*l**i*<=&lt;<=*r**i*<=≤<=*n*). Output Specification: Print *m* integers — the answers to the queries in the order in which they are given in the input. Demo Input: ['......\n4\n3 4\n2 3\n1 6\n2 6\n', '#..###\n5\n1 3\n5 6\n1 5\n3 6\n3 4\n'] Demo Output: ['1\n1\n5\n4\n', '1\n1\n2\n2\n0\n'] Note: none
```python ''' 2300015897 吴杰稀 光华管理学院 ''' string = "0" + str(input()) length = len(string) dp = [0] * (length) for i in range(1,len(string) - 1): if string[i] == string[i + 1]: dp[i] = 1 cases = int(input()) for i in range(cases): l,r = map(int,input().split()) print(sum(dp[l:r])) ```
0
701
C
They Are Everywhere
PROGRAMMING
1,500
[ "binary search", "strings", "two pointers" ]
null
null
Sergei B., the young coach of Pokemons, has found the big house which consists of *n* flats ordered in a row from left to right. It is possible to enter each flat from the street. It is possible to go out from each flat. Also, each flat is connected with the flat to the left and the flat to the right. Flat number 1 is only connected with the flat number 2 and the flat number *n* is only connected with the flat number *n*<=-<=1. There is exactly one Pokemon of some type in each of these flats. Sergei B. asked residents of the house to let him enter their flats in order to catch Pokemons. After consulting the residents of the house decided to let Sergei B. enter one flat from the street, visit several flats and then go out from some flat. But they won't let him visit the same flat more than once. Sergei B. was very pleased, and now he wants to visit as few flats as possible in order to collect Pokemons of all types that appear in this house. Your task is to help him and determine this minimum number of flats he has to visit.
The first line contains the integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of flats in the house. The second line contains the row *s* with the length *n*, it consists of uppercase and lowercase letters of English alphabet, the *i*-th letter equals the type of Pokemon, which is in the flat number *i*.
Print the minimum number of flats which Sergei B. should visit in order to catch Pokemons of all types which there are in the house.
[ "3\nAaA\n", "7\nbcAAcbc\n", "6\naaBCCe\n" ]
[ "2\n", "3\n", "5\n" ]
In the first test Sergei B. can begin, for example, from the flat number 1 and end in the flat number 2. In the second test Sergei B. can begin, for example, from the flat number 4 and end in the flat number 6. In the third test Sergei B. must begin from the flat number 2 and end in the flat number 6.
1,000
[ { "input": "3\nAaA", "output": "2" }, { "input": "7\nbcAAcbc", "output": "3" }, { "input": "6\naaBCCe", "output": "5" }, { "input": "1\nA", "output": "1" }, { "input": "1\ng", "output": "1" }, { "input": "52\nabcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ", "output": "52" }, { "input": "2\nAA", "output": "1" }, { "input": "4\nqqqE", "output": "2" }, { "input": "10\nrrrrroooro", "output": "2" }, { "input": "15\nOCOCCCCiCOCCCOi", "output": "3" }, { "input": "20\nVEVnVVnWnVEVVnEVBEWn", "output": "5" }, { "input": "25\ncpcyPPjPPcPPPPcppPcPpppcP", "output": "6" }, { "input": "30\nsssssAsesssssssssssssessssssss", "output": "3" }, { "input": "35\ngdXdddgddddddddggggXdbgdggdgddddddb", "output": "4" }, { "input": "40\nIgsggIiIggzgigIIiiIIIiIgIggIzgIiiiggggIi", "output": "9" }, { "input": "45\neteeeeeteaattaeetaetteeettoetettteyeteeeotaae", "output": "9" }, { "input": "50\nlUlUllUlUllllUllllUllllUlUlllUlllUlllllUUlllUUlkUl", "output": "3" }, { "input": "55\nAAAAASAAAASAASAAAAAAAAAAAAASAAAAAAAAAAAAAAAASAAAAAAAAAA", "output": "2" }, { "input": "60\nRRRrSRRRRRRRRRSSRRRSRRRRRRRRrRSRRRRRRRRRRRRRRSRRRRRSSRSRrRRR", "output": "3" }, { "input": "65\nhhMhMhhhhhhhhhhhMhhMMMhhhhBhhhhMhhhhMhhhhhMhhhBhhhhhhhhhhBhhhhhhh", "output": "5" }, { "input": "70\nwAwwwAwwwwwwwwwwwwwwAwAAwwAwwwwwwwwAwAAAwAAwwwwwwwwwAwwwwwwwwwwwwAAwww", "output": "2" }, { "input": "75\niiiXXiiyiiiXyXiiyXiiXiiiiiiXXyiiiiXXiiXiiXifiXiXXiifiiiiiiXfXiyiXXiXiiiiXiX", "output": "4" }, { "input": "80\nSrSrrrrrrrrrrrrrrSSSrrrrrrSrrrrSrrrrrrrrrrSSrrrrrrrrrrrSrrrSrrrrSrrrrSrrrrSSrSSr", "output": "2" }, { "input": "85\nwkMMMwMMkMMMMMMMkkkkMMMMzkkMMwMMkkwMkMwkMMkMMwwMzMMMkkMwwMMMMMMkMMkMzMMMkMMkwMkMMMkMM", "output": "6" }, { "input": "90\nZllZZZyZlZlllZlylllZlllZZllllllllZZllllllllllyylZZyvZvZlllZZlZllZlZlllZyllZyZlllZlllllllZl", "output": "5" }, { "input": "95\nEmuBuEBmmEBBElBlElmmBEmmmEmmEuBEEmummmEmBBBBEWBBBmEEBmmummBBmmlluBBmElmEBEmBmBBmBmuLmEBBmlEBmBu", "output": "39" }, { "input": "100\nfAfhfNNNhfffAfNffNANhffNffffffNfffffhNfffNfffNfffNfNNNffNfffNfhNNNffffNfNfffAffNffNffNNfhfffNhNffNNN", "output": "4" }, { "input": "7\nabcbbab", "output": "3" }, { "input": "65\nkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkjjjjkkkkkkkkkkkkkkkkkkkllllllljk", "output": "3" }, { "input": "9\nbcdddbddc", "output": "3" }, { "input": "71\nlqcrdopdpfagcilpcmheqhjbmnciqmeoabflrenbkrsaabaanpehdmpqcdqnljcrsplnlco", "output": "36" }, { "input": "8\nabbbbbbc", "output": "8" } ]
1,625,186,459
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
10
108
1,843,200
n = int(input()) s = input() check = {} for i in s: if i in check: check[i]+=1 else: check[i]=1 left = 0 right =n-1 while left <=right: if check[s[left]]>1: check[s[left]]-=1 left+=1 elif check[s[right]]>1: check[s[right]]-=1 right-=1 else: print(right-left+1) break
Title: They Are Everywhere Time Limit: None seconds Memory Limit: None megabytes Problem Description: Sergei B., the young coach of Pokemons, has found the big house which consists of *n* flats ordered in a row from left to right. It is possible to enter each flat from the street. It is possible to go out from each flat. Also, each flat is connected with the flat to the left and the flat to the right. Flat number 1 is only connected with the flat number 2 and the flat number *n* is only connected with the flat number *n*<=-<=1. There is exactly one Pokemon of some type in each of these flats. Sergei B. asked residents of the house to let him enter their flats in order to catch Pokemons. After consulting the residents of the house decided to let Sergei B. enter one flat from the street, visit several flats and then go out from some flat. But they won't let him visit the same flat more than once. Sergei B. was very pleased, and now he wants to visit as few flats as possible in order to collect Pokemons of all types that appear in this house. Your task is to help him and determine this minimum number of flats he has to visit. Input Specification: The first line contains the integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of flats in the house. The second line contains the row *s* with the length *n*, it consists of uppercase and lowercase letters of English alphabet, the *i*-th letter equals the type of Pokemon, which is in the flat number *i*. Output Specification: Print the minimum number of flats which Sergei B. should visit in order to catch Pokemons of all types which there are in the house. Demo Input: ['3\nAaA\n', '7\nbcAAcbc\n', '6\naaBCCe\n'] Demo Output: ['2\n', '3\n', '5\n'] Note: In the first test Sergei B. can begin, for example, from the flat number 1 and end in the flat number 2. In the second test Sergei B. can begin, for example, from the flat number 4 and end in the flat number 6. In the third test Sergei B. must begin from the flat number 2 and end in the flat number 6.
```python n = int(input()) s = input() check = {} for i in s: if i in check: check[i]+=1 else: check[i]=1 left = 0 right =n-1 while left <=right: if check[s[left]]>1: check[s[left]]-=1 left+=1 elif check[s[right]]>1: check[s[right]]-=1 right-=1 else: print(right-left+1) break ```
0
234
C
Weather
PROGRAMMING
1,300
[ "dp", "implementation" ]
null
null
Scientists say a lot about the problems of global warming and cooling of the Earth. Indeed, such natural phenomena strongly influence all life on our planet. Our hero Vasya is quite concerned about the problems. He decided to try a little experiment and observe how outside daily temperature changes. He hung out a thermometer on the balcony every morning and recorded the temperature. He had been measuring the temperature for the last *n* days. Thus, he got a sequence of numbers *t*1,<=*t*2,<=...,<=*t**n*, where the *i*-th number is the temperature on the *i*-th day. Vasya analyzed the temperature statistics in other cities, and came to the conclusion that the city has no environmental problems, if first the temperature outside is negative for some non-zero number of days, and then the temperature is positive for some non-zero number of days. More formally, there must be a positive integer *k* (1<=≤<=*k*<=≤<=*n*<=-<=1) such that *t*1<=&lt;<=0,<=*t*2<=&lt;<=0,<=...,<=*t**k*<=&lt;<=0 and *t**k*<=+<=1<=&gt;<=0,<=*t**k*<=+<=2<=&gt;<=0,<=...,<=*t**n*<=&gt;<=0. In particular, the temperature should never be zero. If this condition is not met, Vasya decides that his city has environmental problems, and gets upset. You do not want to upset Vasya. Therefore, you want to select multiple values of temperature and modify them to satisfy Vasya's condition. You need to know what the least number of temperature values needs to be changed for that.
The first line contains a single integer *n* (2<=≤<=*n*<=≤<=105) — the number of days for which Vasya has been measuring the temperature. The second line contains a sequence of *n* integers *t*1,<=*t*2,<=...,<=*t**n* (|*t**i*|<=≤<=109) — the sequence of temperature values. Numbers *t**i* are separated by single spaces.
Print a single integer — the answer to the given task.
[ "4\n-1 1 -2 1\n", "5\n0 -1 1 2 -5\n" ]
[ "1\n", "2\n" ]
Note to the first sample: there are two ways to change exactly one number so that the sequence met Vasya's condition. You can either replace the first number 1 by any negative number or replace the number -2 by any positive number.
0
[ { "input": "4\n-1 1 -2 1", "output": "1" }, { "input": "5\n0 -1 1 2 -5", "output": "2" }, { "input": "6\n0 0 0 0 0 0", "output": "6" }, { "input": "6\n-1 -2 -3 -4 5 6", "output": "0" }, { "input": "8\n1 2 -1 0 10 2 12 13", "output": "3" }, { "input": "7\n-1 -2 -3 3 -1 3 4", "output": "1" }, { "input": "2\n3 -5", "output": "2" }, { "input": "50\n4 -8 0 -1 -3 -9 0 -2 0 1 -1 0 7 -10 9 7 0 -10 5 0 1 -6 9 -9 3 -3 3 7 4 -8 -8 3 3 -1 0 2 -6 10 7 -1 -6 -3 -4 2 3 0 -4 0 7 -9", "output": "26" }, { "input": "90\n52 -89 17 64 11 -61 92 51 42 -92 -14 -100 21 -88 73 -11 84 72 -80 -78 5 -70 -70 80 91 -89 87 -74 63 -79 -94 52 82 79 81 40 69 -15 33 -52 18 30 -39 99 84 -98 44 69 -75 0 60 -89 51 -92 83 73 16 -43 17 0 51 9 -53 86 86 -50 0 -80 3 0 86 0 -76 -45 0 -32 45 81 47 15 -62 21 4 -82 77 -67 -64 -12 0 -50", "output": "42" }, { "input": "10\n-19 -29 -21 -6 29 89 -74 -22 18 -13", "output": "3" }, { "input": "100\n-782 365 -283 769 -58 224 1000 983 7 595 -963 -267 -934 -187 -609 693 -316 431 859 -753 865 -421 861 -728 -793 621 -311 414 -101 -196 120 84 633 -362 989 94 206 19 -949 -629 489 376 -391 165 50 22 -209 735 565 61 -321 -256 890 34 343 -326 984 -268 -609 385 717 81 372 -391 271 -89 297 -510 797 -425 -276 573 510 560 165 -482 511 541 -491 60 168 -805 235 -657 -679 -617 -212 816 -98 901 380 103 608 -257 -643 333 8 355 743 -801", "output": "40" } ]
1,620,689,882
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
60
6,963,200
input_txt = open("input.txt", "r") n = int(input_txt.readline()) t = list(map(int, input_txt.readline().split())) b = 0 if t[0] >= 0: b += 1 for y in range(1, n): if t[y] <= 0: b += 1 a = b n -= 1 for y in range(1, n): if t[y] < 0: a -= 1 elif t[y] == 0: a = a else: a -= + 1 b = min(b, a) output_txt = open("output.txt", "w") output_txt.write(str(b)) input_txt.close() output_txt.close()
Title: Weather Time Limit: None seconds Memory Limit: None megabytes Problem Description: Scientists say a lot about the problems of global warming and cooling of the Earth. Indeed, such natural phenomena strongly influence all life on our planet. Our hero Vasya is quite concerned about the problems. He decided to try a little experiment and observe how outside daily temperature changes. He hung out a thermometer on the balcony every morning and recorded the temperature. He had been measuring the temperature for the last *n* days. Thus, he got a sequence of numbers *t*1,<=*t*2,<=...,<=*t**n*, where the *i*-th number is the temperature on the *i*-th day. Vasya analyzed the temperature statistics in other cities, and came to the conclusion that the city has no environmental problems, if first the temperature outside is negative for some non-zero number of days, and then the temperature is positive for some non-zero number of days. More formally, there must be a positive integer *k* (1<=≤<=*k*<=≤<=*n*<=-<=1) such that *t*1<=&lt;<=0,<=*t*2<=&lt;<=0,<=...,<=*t**k*<=&lt;<=0 and *t**k*<=+<=1<=&gt;<=0,<=*t**k*<=+<=2<=&gt;<=0,<=...,<=*t**n*<=&gt;<=0. In particular, the temperature should never be zero. If this condition is not met, Vasya decides that his city has environmental problems, and gets upset. You do not want to upset Vasya. Therefore, you want to select multiple values of temperature and modify them to satisfy Vasya's condition. You need to know what the least number of temperature values needs to be changed for that. Input Specification: The first line contains a single integer *n* (2<=≤<=*n*<=≤<=105) — the number of days for which Vasya has been measuring the temperature. The second line contains a sequence of *n* integers *t*1,<=*t*2,<=...,<=*t**n* (|*t**i*|<=≤<=109) — the sequence of temperature values. Numbers *t**i* are separated by single spaces. Output Specification: Print a single integer — the answer to the given task. Demo Input: ['4\n-1 1 -2 1\n', '5\n0 -1 1 2 -5\n'] Demo Output: ['1\n', '2\n'] Note: Note to the first sample: there are two ways to change exactly one number so that the sequence met Vasya's condition. You can either replace the first number 1 by any negative number or replace the number -2 by any positive number.
```python input_txt = open("input.txt", "r") n = int(input_txt.readline()) t = list(map(int, input_txt.readline().split())) b = 0 if t[0] >= 0: b += 1 for y in range(1, n): if t[y] <= 0: b += 1 a = b n -= 1 for y in range(1, n): if t[y] < 0: a -= 1 elif t[y] == 0: a = a else: a -= + 1 b = min(b, a) output_txt = open("output.txt", "w") output_txt.write(str(b)) input_txt.close() output_txt.close() ```
0
1,008
A
Romaji
PROGRAMMING
900
[ "implementation", "strings" ]
null
null
Vitya has just started learning Berlanese language. It is known that Berlanese uses the Latin alphabet. Vowel letters are "a", "o", "u", "i", and "e". Other letters are consonant. In Berlanese, there has to be a vowel after every consonant, but there can be any letter after any vowel. The only exception is a consonant "n"; after this letter, there can be any letter (not only a vowel) or there can be no letter at all. For example, the words "harakiri", "yupie", "man", and "nbo" are Berlanese while the words "horse", "king", "my", and "nz" are not. Help Vitya find out if a word $s$ is Berlanese.
The first line of the input contains the string $s$ consisting of $|s|$ ($1\leq |s|\leq 100$) lowercase Latin letters.
Print "YES" (without quotes) if there is a vowel after every consonant except "n", otherwise print "NO". You can print each letter in any case (upper or lower).
[ "sumimasen\n", "ninja\n", "codeforces\n" ]
[ "YES\n", "YES\n", "NO\n" ]
In the first and second samples, a vowel goes after each consonant except "n", so the word is Berlanese. In the third sample, the consonant "c" goes after the consonant "r", and the consonant "s" stands on the end, so the word is not Berlanese.
500
[ { "input": "sumimasen", "output": "YES" }, { "input": "ninja", "output": "YES" }, { "input": "codeforces", "output": "NO" }, { "input": "auuaoonntanonnuewannnnpuuinniwoonennyolonnnvienonpoujinndinunnenannmuveoiuuhikucuziuhunnnmunzancenen", "output": "YES" }, { "input": "n", "output": "YES" }, { "input": "necnei", "output": "NO" }, { "input": "nternn", "output": "NO" }, { "input": "aucunuohja", "output": "NO" }, { "input": "a", "output": "YES" }, { "input": "b", "output": "NO" }, { "input": "nn", "output": "YES" }, { "input": "nnnzaaa", "output": "YES" }, { "input": "zn", "output": "NO" }, { "input": "ab", "output": "NO" }, { "input": "aaaaaaaaaa", "output": "YES" }, { "input": "aaaaaaaaab", "output": "NO" }, { "input": "aaaaaaaaan", "output": "YES" }, { "input": "baaaaaaaaa", "output": "YES" }, { "input": "naaaaaaaaa", "output": "YES" }, { "input": "nbaaaaaaaa", "output": "YES" }, { "input": "bbaaaaaaaa", "output": "NO" }, { "input": "bnaaaaaaaa", "output": "NO" }, { "input": "eonwonojannonnufimiiniewuqaienokacevecinfuqihatenhunliquuyebayiaenifuexuanenuaounnboancaeowonu", "output": "YES" }, { "input": "uixinnepnlinqaingieianndeakuniooudidonnnqeaituioeneiroionxuowudiooonayenfeonuino", "output": "NO" }, { "input": "nnnnnyigaveteononnnnxaalenxuiiwannntoxonyoqonlejuoxuoconnnentoinnul", "output": "NO" }, { "input": "ndonneasoiunhomuunnhuitonnntunntoanerekonoupunanuauenu", "output": "YES" }, { "input": "anujemogawautiedoneobninnibonuunaoennnyoorufonxionntinimiboonununnnnnleenqunminzayoutanlalo", "output": "NO" }, { "input": "y", "output": "NO" }, { "input": "by", "output": "NO" }, { "input": "yy", "output": "NO" }, { "input": "nbn", "output": "NO" }, { "input": "nz", "output": "NO" }, { "input": "king", "output": "NO" }, { "input": "g", "output": "NO" }, { "input": "az", "output": "NO" }, { "input": "x", "output": "NO" }, { "input": "z", "output": "NO" }, { "input": "yn", "output": "NO" }, { "input": "aeo", "output": "YES" }, { "input": "nb", "output": "NO" }, { "input": "npn", "output": "NO" }, { "input": "kini", "output": "YES" }, { "input": "pya", "output": "NO" }, { "input": "m", "output": "NO" }, { "input": "p", "output": "NO" }, { "input": "aaaaaaaak", "output": "NO" }, { "input": "aab", "output": "NO" }, { "input": "d", "output": "NO" }, { "input": "at", "output": "NO" }, { "input": "aaaaaak", "output": "NO" }, { "input": "aaz", "output": "NO" }, { "input": "aaab", "output": "NO" }, { "input": "s", "output": "NO" }, { "input": "nzzen", "output": "NO" }, { "input": "aeionnhhhn", "output": "NO" }, { "input": "h", "output": "NO" }, { "input": "ny", "output": "NO" } ]
1,689,715,999
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
9
46
0
vowel = ["a", "o", "u", "i","e"] text = input() for index in range(len(text) - 1) : if text[index] == "n" or text[index] in vowel : continue else : if text[index + 1] not in vowel : exit(print("NO")) print("YES")
Title: Romaji Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vitya has just started learning Berlanese language. It is known that Berlanese uses the Latin alphabet. Vowel letters are "a", "o", "u", "i", and "e". Other letters are consonant. In Berlanese, there has to be a vowel after every consonant, but there can be any letter after any vowel. The only exception is a consonant "n"; after this letter, there can be any letter (not only a vowel) or there can be no letter at all. For example, the words "harakiri", "yupie", "man", and "nbo" are Berlanese while the words "horse", "king", "my", and "nz" are not. Help Vitya find out if a word $s$ is Berlanese. Input Specification: The first line of the input contains the string $s$ consisting of $|s|$ ($1\leq |s|\leq 100$) lowercase Latin letters. Output Specification: Print "YES" (without quotes) if there is a vowel after every consonant except "n", otherwise print "NO". You can print each letter in any case (upper or lower). Demo Input: ['sumimasen\n', 'ninja\n', 'codeforces\n'] Demo Output: ['YES\n', 'YES\n', 'NO\n'] Note: In the first and second samples, a vowel goes after each consonant except "n", so the word is Berlanese. In the third sample, the consonant "c" goes after the consonant "r", and the consonant "s" stands on the end, so the word is not Berlanese.
```python vowel = ["a", "o", "u", "i","e"] text = input() for index in range(len(text) - 1) : if text[index] == "n" or text[index] in vowel : continue else : if text[index + 1] not in vowel : exit(print("NO")) print("YES") ```
0
828
A
Restaurant Tables
PROGRAMMING
1,200
[ "implementation" ]
null
null
In a small restaurant there are *a* tables for one person and *b* tables for two persons. It it known that *n* groups of people come today, each consisting of one or two people. If a group consist of one person, it is seated at a vacant one-seater table. If there are none of them, it is seated at a vacant two-seater table. If there are none of them, it is seated at a two-seater table occupied by single person. If there are still none of them, the restaurant denies service to this group. If a group consist of two people, it is seated at a vacant two-seater table. If there are none of them, the restaurant denies service to this group. You are given a chronological order of groups coming. You are to determine the total number of people the restaurant denies service to.
The first line contains three integers *n*, *a* and *b* (1<=≤<=*n*<=≤<=2·105, 1<=≤<=*a*,<=*b*<=≤<=2·105) — the number of groups coming to the restaurant, the number of one-seater and the number of two-seater tables. The second line contains a sequence of integers *t*1,<=*t*2,<=...,<=*t**n* (1<=≤<=*t**i*<=≤<=2) — the description of clients in chronological order. If *t**i* is equal to one, then the *i*-th group consists of one person, otherwise the *i*-th group consists of two people.
Print the total number of people the restaurant denies service to.
[ "4 1 2\n1 2 1 1\n", "4 1 1\n1 1 2 1\n" ]
[ "0\n", "2\n" ]
In the first example the first group consists of one person, it is seated at a vacant one-seater table. The next group occupies a whole two-seater table. The third group consists of one person, it occupies one place at the remaining two-seater table. The fourth group consists of one person, he is seated at the remaining seat at the two-seater table. Thus, all clients are served. In the second example the first group consists of one person, it is seated at the vacant one-seater table. The next group consists of one person, it occupies one place at the two-seater table. It's impossible to seat the next group of two people, so the restaurant denies service to them. The fourth group consists of one person, he is seated at the remaining seat at the two-seater table. Thus, the restaurant denies service to 2 clients.
500
[ { "input": "4 1 2\n1 2 1 1", "output": "0" }, { "input": "4 1 1\n1 1 2 1", "output": "2" }, { "input": "1 1 1\n1", "output": "0" }, { "input": "2 1 2\n2 2", "output": "0" }, { "input": "5 1 3\n1 2 2 2 1", "output": "1" }, { "input": "7 6 1\n1 1 1 1 1 1 1", "output": "0" }, { "input": "10 2 1\n2 1 2 2 2 2 1 2 1 2", "output": "13" }, { "input": "20 4 3\n2 2 2 2 2 2 2 2 1 2 1 1 2 2 1 2 2 2 1 2", "output": "25" }, { "input": "1 1 1\n1", "output": "0" }, { "input": "1 1 1\n2", "output": "0" }, { "input": "1 200000 200000\n2", "output": "0" }, { "input": "30 10 10\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 2 2", "output": "20" }, { "input": "4 1 2\n1 1 1 2", "output": "2" }, { "input": "6 2 3\n1 2 1 1 1 2", "output": "2" }, { "input": "6 1 4\n1 1 1 1 1 2", "output": "2" }, { "input": "6 1 3\n1 1 1 1 2 2", "output": "4" }, { "input": "6 1 3\n1 1 1 1 1 2", "output": "2" }, { "input": "6 4 2\n2 1 2 2 1 1", "output": "2" }, { "input": "3 10 1\n2 2 2", "output": "4" }, { "input": "5 1 3\n1 1 1 1 2", "output": "2" }, { "input": "5 2 2\n1 1 1 1 2", "output": "2" }, { "input": "15 5 5\n1 1 1 1 1 1 1 1 1 1 2 2 2 2 2", "output": "10" }, { "input": "5 1 2\n1 1 1 1 1", "output": "0" }, { "input": "3 6 1\n2 2 2", "output": "4" }, { "input": "5 3 3\n2 2 2 2 2", "output": "4" }, { "input": "8 3 3\n1 1 1 1 1 1 2 2", "output": "4" }, { "input": "5 1 2\n1 1 1 2 1", "output": "2" }, { "input": "6 1 4\n1 2 2 1 2 2", "output": "2" }, { "input": "2 1 1\n2 2", "output": "2" }, { "input": "2 2 1\n2 2", "output": "2" }, { "input": "5 8 1\n2 2 2 2 2", "output": "8" }, { "input": "3 1 4\n1 1 2", "output": "0" }, { "input": "7 1 5\n1 1 1 1 1 1 2", "output": "2" }, { "input": "6 1 3\n1 1 1 2 1 1", "output": "0" }, { "input": "6 1 2\n1 1 1 2 2 2", "output": "6" }, { "input": "8 1 4\n2 1 1 1 2 2 2 2", "output": "6" }, { "input": "4 2 3\n2 2 2 2", "output": "2" }, { "input": "3 1 1\n1 1 2", "output": "2" }, { "input": "5 1 1\n2 2 2 2 2", "output": "8" }, { "input": "10 1 5\n1 1 1 1 1 2 2 2 2 2", "output": "8" }, { "input": "5 1 2\n1 1 1 2 2", "output": "4" }, { "input": "4 1 1\n1 1 2 2", "output": "4" }, { "input": "7 1 2\n1 1 1 1 1 1 1", "output": "2" }, { "input": "5 1 4\n2 2 2 2 2", "output": "2" }, { "input": "6 2 3\n1 1 1 1 2 2", "output": "2" }, { "input": "5 2 2\n2 1 2 1 2", "output": "2" }, { "input": "4 6 1\n2 2 2 2", "output": "6" }, { "input": "6 1 4\n1 1 2 1 1 2", "output": "2" }, { "input": "7 1 3\n1 1 1 1 2 2 2", "output": "6" }, { "input": "4 1 2\n1 1 2 2", "output": "2" }, { "input": "3 1 2\n1 1 2", "output": "0" }, { "input": "6 1 3\n1 2 1 1 2 1", "output": "2" }, { "input": "6 1 3\n1 1 1 2 2 2", "output": "4" }, { "input": "10 2 2\n1 1 1 1 2 2 2 2 2 2", "output": "12" }, { "input": "10 1 4\n1 1 1 1 1 2 2 2 2 2", "output": "10" }, { "input": "3 10 2\n2 2 2", "output": "2" }, { "input": "4 3 1\n1 2 2 2", "output": "4" }, { "input": "7 1 4\n1 1 1 1 1 2 2", "output": "4" }, { "input": "3 4 1\n2 2 2", "output": "4" }, { "input": "4 1 2\n2 1 1 2", "output": "2" }, { "input": "10 1 2\n1 1 1 1 1 1 1 1 1 2", "output": "6" }, { "input": "5 1 3\n1 1 2 1 2", "output": "2" }, { "input": "6 1 3\n1 1 1 1 2 1", "output": "2" }, { "input": "6 1 4\n1 1 1 2 2 2", "output": "2" }, { "input": "7 1 2\n1 2 1 1 1 1 1", "output": "3" }, { "input": "6 2 2\n1 1 1 1 1 1", "output": "0" }, { "input": "6 1 2\n1 1 2 1 1 1", "output": "2" }, { "input": "3 3 1\n2 2 1", "output": "2" }, { "input": "8 4 2\n1 1 1 1 1 1 1 2", "output": "2" }, { "input": "9 1 4\n1 1 1 1 1 2 2 2 2", "output": "8" }, { "input": "5 10 1\n2 2 2 2 2", "output": "8" }, { "input": "3 5 1\n2 2 2", "output": "4" }, { "input": "5 100 1\n2 2 2 2 2", "output": "8" }, { "input": "4 1 2\n1 1 1 1", "output": "0" }, { "input": "4 1 1\n1 1 1 1", "output": "1" }, { "input": "7 2 2\n1 1 1 1 1 1 1", "output": "1" } ]
1,530,629,283
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
11
249
5,120,000
n, a, b = [int(i) for i in input().split()] lista = [] [lista.append(int(i)) for i in input().split()] b *= 2 rejeitados = 0 for i in lista: if i == 1: if a >= 1: a -= 1 elif b > 0: b -= 1 else: rejeitados += 1 else: if b > 1: b -= 2 else: rejeitados += 2 print(rejeitados)
Title: Restaurant Tables Time Limit: None seconds Memory Limit: None megabytes Problem Description: In a small restaurant there are *a* tables for one person and *b* tables for two persons. It it known that *n* groups of people come today, each consisting of one or two people. If a group consist of one person, it is seated at a vacant one-seater table. If there are none of them, it is seated at a vacant two-seater table. If there are none of them, it is seated at a two-seater table occupied by single person. If there are still none of them, the restaurant denies service to this group. If a group consist of two people, it is seated at a vacant two-seater table. If there are none of them, the restaurant denies service to this group. You are given a chronological order of groups coming. You are to determine the total number of people the restaurant denies service to. Input Specification: The first line contains three integers *n*, *a* and *b* (1<=≤<=*n*<=≤<=2·105, 1<=≤<=*a*,<=*b*<=≤<=2·105) — the number of groups coming to the restaurant, the number of one-seater and the number of two-seater tables. The second line contains a sequence of integers *t*1,<=*t*2,<=...,<=*t**n* (1<=≤<=*t**i*<=≤<=2) — the description of clients in chronological order. If *t**i* is equal to one, then the *i*-th group consists of one person, otherwise the *i*-th group consists of two people. Output Specification: Print the total number of people the restaurant denies service to. Demo Input: ['4 1 2\n1 2 1 1\n', '4 1 1\n1 1 2 1\n'] Demo Output: ['0\n', '2\n'] Note: In the first example the first group consists of one person, it is seated at a vacant one-seater table. The next group occupies a whole two-seater table. The third group consists of one person, it occupies one place at the remaining two-seater table. The fourth group consists of one person, he is seated at the remaining seat at the two-seater table. Thus, all clients are served. In the second example the first group consists of one person, it is seated at the vacant one-seater table. The next group consists of one person, it occupies one place at the two-seater table. It's impossible to seat the next group of two people, so the restaurant denies service to them. The fourth group consists of one person, he is seated at the remaining seat at the two-seater table. Thus, the restaurant denies service to 2 clients.
```python n, a, b = [int(i) for i in input().split()] lista = [] [lista.append(int(i)) for i in input().split()] b *= 2 rejeitados = 0 for i in lista: if i == 1: if a >= 1: a -= 1 elif b > 0: b -= 1 else: rejeitados += 1 else: if b > 1: b -= 2 else: rejeitados += 2 print(rejeitados) ```
0
854
A
Fraction
PROGRAMMING
800
[ "brute force", "constructive algorithms", "math" ]
null
null
Petya is a big fan of mathematics, especially its part related to fractions. Recently he learned that a fraction is called proper iff its numerator is smaller than its denominator (*a*<=&lt;<=*b*) and that the fraction is called irreducible if its numerator and its denominator are coprime (they do not have positive common divisors except 1). During his free time, Petya thinks about proper irreducible fractions and converts them to decimals using the calculator. One day he mistakenly pressed addition button (<=+<=) instead of division button (÷) and got sum of numerator and denominator that was equal to *n* instead of the expected decimal notation. Petya wanted to restore the original fraction, but soon he realized that it might not be done uniquely. That's why he decided to determine maximum possible proper irreducible fraction such that sum of its numerator and denominator equals *n*. Help Petya deal with this problem.
In the only line of input there is an integer *n* (3<=≤<=*n*<=≤<=1000), the sum of numerator and denominator of the fraction.
Output two space-separated positive integers *a* and *b*, numerator and denominator of the maximum possible proper irreducible fraction satisfying the given sum.
[ "3\n", "4\n", "12\n" ]
[ "1 2\n", "1 3\n", "5 7\n" ]
none
500
[ { "input": "3", "output": "1 2" }, { "input": "4", "output": "1 3" }, { "input": "12", "output": "5 7" }, { "input": "34", "output": "15 19" }, { "input": "13", "output": "6 7" }, { "input": "11", "output": "5 6" }, { "input": "24", "output": "11 13" }, { "input": "17", "output": "8 9" }, { "input": "10", "output": "3 7" }, { "input": "69", "output": "34 35" }, { "input": "100", "output": "49 51" }, { "input": "57", "output": "28 29" }, { "input": "1000", "output": "499 501" }, { "input": "999", "output": "499 500" }, { "input": "998", "output": "497 501" }, { "input": "997", "output": "498 499" }, { "input": "996", "output": "497 499" }, { "input": "995", "output": "497 498" }, { "input": "994", "output": "495 499" }, { "input": "5", "output": "2 3" }, { "input": "6", "output": "1 5" }, { "input": "8", "output": "3 5" }, { "input": "9", "output": "4 5" }, { "input": "423", "output": "211 212" }, { "input": "876", "output": "437 439" }, { "input": "29", "output": "14 15" } ]
1,607,453,555
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
3
140
0
n = int(input()) last = 1 if n % 2 == 0: start = (n // 2) - 1 else: start = n // 2 for i in range(start, 0, -1): accept = 1 for j in range(2, i): if i % j == 0: accept = 0 break if accept == 1: res = i break print(res, n - res)
Title: Fraction Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya is a big fan of mathematics, especially its part related to fractions. Recently he learned that a fraction is called proper iff its numerator is smaller than its denominator (*a*<=&lt;<=*b*) and that the fraction is called irreducible if its numerator and its denominator are coprime (they do not have positive common divisors except 1). During his free time, Petya thinks about proper irreducible fractions and converts them to decimals using the calculator. One day he mistakenly pressed addition button (<=+<=) instead of division button (÷) and got sum of numerator and denominator that was equal to *n* instead of the expected decimal notation. Petya wanted to restore the original fraction, but soon he realized that it might not be done uniquely. That's why he decided to determine maximum possible proper irreducible fraction such that sum of its numerator and denominator equals *n*. Help Petya deal with this problem. Input Specification: In the only line of input there is an integer *n* (3<=≤<=*n*<=≤<=1000), the sum of numerator and denominator of the fraction. Output Specification: Output two space-separated positive integers *a* and *b*, numerator and denominator of the maximum possible proper irreducible fraction satisfying the given sum. Demo Input: ['3\n', '4\n', '12\n'] Demo Output: ['1 2\n', '1 3\n', '5 7\n'] Note: none
```python n = int(input()) last = 1 if n % 2 == 0: start = (n // 2) - 1 else: start = n // 2 for i in range(start, 0, -1): accept = 1 for j in range(2, i): if i % j == 0: accept = 0 break if accept == 1: res = i break print(res, n - res) ```
0
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" } ]
1,646,403,631
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
#include <stdio.h> int solve(void); void solve_test_cases(void); void solve_test_cases(void){ int t; scanf("%d",&t); while(t--){ solve(); } } int main(){ //solve_test_cases(); solve(); return 0; } int solve(void){ long long int n; int x; scanf("%lld\n%d",&n,&x); n=n%6; int data[6][3]={ {0,1,2}, {1,0,2}, {1,2,0}, {2,1,0}, {2,0,1}, {0,2,1}, }; printf("%d",data[n][x]); return 0; }
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 #include <stdio.h> int solve(void); void solve_test_cases(void); void solve_test_cases(void){ int t; scanf("%d",&t); while(t--){ solve(); } } int main(){ //solve_test_cases(); solve(); return 0; } int solve(void){ long long int n; int x; scanf("%lld\n%d",&n,&x); n=n%6; int data[6][3]={ {0,1,2}, {1,0,2}, {1,2,0}, {2,1,0}, {2,0,1}, {0,2,1}, }; printf("%d",data[n][x]); return 0; } ```
-1
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" } ]
1,638,455,450
2,147,483,647
Python 3
OK
TESTS
30
92
0
#59A Words #check how many upper and lowercase letters then print all as lowercase or uppercase s = input() uppercase = int(sum(1 for c in s if c.isupper())) lowercase = int(sum(1 for c in s if c.islower())) if (uppercase > lowercase): print(s.upper()) else: print(s.lower())
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 #59A Words #check how many upper and lowercase letters then print all as lowercase or uppercase s = input() uppercase = int(sum(1 for c in s if c.isupper())) lowercase = int(sum(1 for c in s if c.islower())) if (uppercase > lowercase): print(s.upper()) else: print(s.lower()) ```
3.977
902
A
Visiting a Friend
PROGRAMMING
1,100
[ "greedy", "implementation" ]
null
null
Pig is visiting a friend. Pig's house is located at point 0, and his friend's house is located at point *m* on an axis. Pig can use teleports to move along the axis. To use a teleport, Pig should come to a certain point (where the teleport is located) and choose where to move: for each teleport there is the rightmost point it can move Pig to, this point is known as the limit of the teleport. Formally, a teleport located at point *x* with limit *y* can move Pig from point *x* to any point within the segment [*x*;<=*y*], including the bounds. Determine if Pig can visit the friend using teleports only, or he should use his car.
The first line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100,<=1<=≤<=*m*<=≤<=100) — the number of teleports and the location of the friend's house. The next *n* lines contain information about teleports. The *i*-th of these lines contains two integers *a**i* and *b**i* (0<=≤<=*a**i*<=≤<=*b**i*<=≤<=*m*), where *a**i* is the location of the *i*-th teleport, and *b**i* is its limit. It is guaranteed that *a**i*<=≥<=*a**i*<=-<=1 for every *i* (2<=≤<=*i*<=≤<=*n*).
Print "YES" if there is a path from Pig's house to his friend's house that uses only teleports, and "NO" otherwise. You can print each letter in arbitrary case (upper or lower).
[ "3 5\n0 2\n2 4\n3 5\n", "3 7\n0 4\n2 5\n6 7\n" ]
[ "YES\n", "NO\n" ]
The first example is shown on the picture below: Pig can use the first teleport from his house (point 0) to reach point 2, then using the second teleport go from point 2 to point 3, then using the third teleport go from point 3 to point 5, where his friend lives. The second example is shown on the picture below: You can see that there is no path from Pig's house to his friend's house that uses only teleports.
500
[ { "input": "3 5\n0 2\n2 4\n3 5", "output": "YES" }, { "input": "3 7\n0 4\n2 5\n6 7", "output": "NO" }, { "input": "1 1\n0 0", "output": "NO" }, { "input": "30 10\n0 7\n1 2\n1 2\n1 4\n1 4\n1 3\n2 2\n2 4\n2 6\n2 9\n2 2\n3 5\n3 8\n4 8\n4 5\n4 6\n5 6\n5 7\n6 6\n6 9\n6 7\n6 9\n7 7\n7 7\n8 8\n8 8\n9 9\n9 9\n10 10\n10 10", "output": "NO" }, { "input": "30 100\n0 27\n4 82\n11 81\n14 32\n33 97\n33 34\n37 97\n38 52\n45 91\n49 56\n50 97\n57 70\n59 94\n59 65\n62 76\n64 65\n65 95\n67 77\n68 100\n71 73\n80 94\n81 92\n84 85\n85 100\n88 91\n91 95\n92 98\n92 98\n99 100\n100 100", "output": "YES" }, { "input": "70 10\n0 4\n0 4\n0 8\n0 9\n0 1\n0 5\n0 7\n1 3\n1 8\n1 8\n1 6\n1 6\n1 2\n1 3\n1 2\n1 3\n2 5\n2 4\n2 3\n2 4\n2 6\n2 2\n2 5\n2 7\n3 7\n3 4\n3 7\n3 4\n3 8\n3 4\n3 9\n3 3\n3 7\n3 9\n3 3\n3 9\n4 6\n4 7\n4 5\n4 7\n5 8\n5 5\n5 9\n5 7\n5 5\n6 6\n6 9\n6 7\n6 8\n6 9\n6 8\n7 7\n7 8\n7 7\n7 8\n8 9\n8 8\n8 9\n8 8\n9 9\n9 9\n9 9\n9 9\n9 9\n9 9\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "NO" }, { "input": "30 10\n0 7\n1 2\n1 2\n1 4\n1 4\n1 3\n2 2\n2 4\n2 6\n2 9\n2 2\n3 5\n3 8\n4 8\n4 5\n4 6\n5 6\n5 7\n6 6\n6 9\n6 7\n6 9\n7 7\n7 7\n8 10\n8 10\n9 9\n9 9\n10 10\n10 10", "output": "YES" }, { "input": "50 100\n0 95\n1 100\n1 38\n2 82\n5 35\n7 71\n8 53\n11 49\n15 27\n17 84\n17 75\n18 99\n18 43\n18 69\n21 89\n27 60\n27 29\n38 62\n38 77\n39 83\n40 66\n48 80\n48 100\n50 51\n50 61\n53 77\n53 63\n55 58\n56 68\n60 82\n62 95\n66 74\n67 83\n69 88\n69 81\n69 88\n69 98\n70 91\n70 76\n71 90\n72 99\n81 99\n85 87\n88 97\n88 93\n90 97\n90 97\n92 98\n98 99\n100 100", "output": "YES" }, { "input": "70 10\n0 4\n0 4\n0 8\n0 9\n0 1\n0 5\n0 7\n1 3\n1 8\n1 8\n1 10\n1 9\n1 6\n1 2\n1 3\n1 2\n2 6\n2 5\n2 4\n2 3\n2 10\n2 2\n2 6\n2 2\n3 10\n3 7\n3 7\n3 4\n3 7\n3 4\n3 8\n3 4\n3 10\n3 5\n3 3\n3 7\n4 8\n4 8\n4 9\n4 6\n5 7\n5 10\n5 7\n5 8\n5 5\n6 8\n6 9\n6 10\n6 6\n6 9\n6 7\n7 8\n7 9\n7 10\n7 10\n8 8\n8 8\n8 9\n8 10\n9 10\n9 9\n9 10\n9 10\n9 9\n9 9\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "YES" }, { "input": "85 10\n0 9\n0 4\n0 2\n0 5\n0 1\n0 8\n0 7\n1 2\n1 4\n1 5\n1 9\n1 1\n1 6\n1 6\n2 5\n2 7\n2 7\n2 7\n2 7\n3 4\n3 7\n3 9\n3 5\n3 3\n4 4\n4 6\n4 5\n5 6\n5 6\n5 6\n5 6\n5 7\n5 8\n5 5\n5 7\n5 8\n5 9\n5 8\n6 8\n6 7\n6 8\n6 9\n6 9\n6 6\n6 9\n6 7\n7 7\n7 7\n7 7\n7 8\n7 7\n7 8\n7 8\n7 9\n8 8\n8 8\n8 8\n8 8\n8 8\n8 9\n8 9\n9 9\n9 9\n9 9\n9 9\n9 9\n9 9\n9 9\n9 9\n9 9\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "NO" }, { "input": "30 40\n0 0\n4 8\n5 17\n7 32\n7 16\n8 16\n10 19\n12 22\n12 27\n13 21\n13 28\n13 36\n14 28\n14 18\n18 21\n21 26\n21 36\n22 38\n23 32\n24 30\n26 35\n29 32\n29 32\n31 34\n31 31\n33 33\n33 35\n35 40\n38 38\n40 40", "output": "NO" }, { "input": "70 100\n0 99\n1 87\n1 94\n1 4\n2 72\n3 39\n3 69\n4 78\n5 85\n7 14\n8 59\n12 69\n14 15\n14 76\n17 17\n19 53\n19 57\n19 21\n21 35\n21 83\n24 52\n24 33\n27 66\n27 97\n30 62\n30 74\n30 64\n32 63\n35 49\n37 60\n40 99\n40 71\n41 83\n42 66\n42 46\n45 83\n51 76\n53 69\n54 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39\n25 27\n27 32\n27 29\n27 39\n27 29\n28 38\n30 38\n32 40\n32 38\n33 33\n33 40\n34 35\n34 34\n34 38\n34 38\n35 37\n36 39\n36 39\n37 37\n38 40\n39 39\n40 40", "output": "YES" }, { "input": "70 40\n0 34\n1 16\n3 33\n4 36\n4 22\n5 9\n5 9\n7 16\n8 26\n9 29\n9 25\n10 15\n10 22\n10 29\n10 20\n11 27\n11 26\n11 12\n12 19\n13 21\n14 31\n14 36\n15 34\n15 37\n16 21\n17 31\n18 22\n20 27\n20 32\n20 20\n20 29\n21 29\n21 34\n21 30\n22 22\n23 28\n23 39\n24 24\n25 27\n26 38\n27 39\n28 33\n28 39\n28 34\n28 33\n29 30\n29 35\n30 30\n30 38\n30 34\n30 31\n31 36\n31 31\n31 32\n31 38\n33 34\n33 34\n35 36\n36 38\n37 38\n37 39\n38 38\n38 38\n38 38\n39 39\n39 39\n40 40\n40 40\n40 40\n40 40", "output": "NO" }, { "input": "10 100\n0 34\n8 56\n17 79\n24 88\n28 79\n45 79\n48 93\n55 87\n68 93\n88 99", "output": "NO" }, { "input": "10 10\n0 2\n3 8\n3 5\n3 3\n3 9\n3 8\n5 7\n6 10\n7 10\n9 10", "output": "NO" }, { "input": "50 10\n0 2\n0 2\n0 6\n1 9\n1 3\n1 2\n1 6\n1 1\n1 1\n2 7\n2 6\n2 4\n3 9\n3 8\n3 8\n3 8\n3 6\n3 4\n3 7\n3 4\n3 6\n3 5\n4 8\n5 5\n5 7\n6 7\n6 6\n7 7\n7 7\n7 7\n7 8\n7 8\n8 8\n8 8\n8 9\n8 8\n8 9\n9 9\n9 9\n9 9\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "NO" }, { "input": "10 40\n0 21\n1 19\n4 33\n6 26\n8 39\n15 15\n20 24\n27 27\n29 39\n32 37", "output": "NO" }, { "input": "50 10\n0 2\n0 2\n0 6\n1 9\n1 3\n1 2\n1 6\n1 1\n1 1\n2 7\n2 6\n2 4\n3 9\n3 8\n3 8\n3 8\n3 6\n3 4\n3 7\n3 4\n3 6\n3 10\n4 6\n5 9\n5 5\n6 7\n6 10\n7 8\n7 7\n7 7\n7 7\n7 10\n8 8\n8 8\n8 10\n8 8\n8 8\n9 10\n9 10\n9 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "YES" }, { "input": "1 1\n0 1", "output": "YES" }, { "input": "30 40\n0 0\n4 8\n5 17\n7 32\n7 16\n8 16\n10 19\n12 22\n12 27\n13 21\n13 28\n13 36\n14 28\n14 18\n18 21\n21 26\n21 36\n22 38\n23 32\n24 30\n26 35\n29 32\n29 32\n31 34\n31 31\n33 33\n33 35\n35 36\n38 38\n40 40", "output": "NO" }, { "input": "30 100\n0 27\n4 82\n11 81\n14 32\n33 97\n33 34\n37 97\n38 52\n45 91\n49 56\n50 97\n57 70\n59 94\n59 65\n62 76\n64 65\n65 95\n67 77\n68 82\n71 94\n80 90\n81 88\n84 93\n85 89\n88 92\n91 97\n92 99\n92 97\n99 99\n100 100", "output": "NO" }, { "input": "10 100\n0 34\n8 56\n17 79\n24 88\n28 79\n45 79\n48 93\n55 87\n68 93\n79 100", "output": "YES" }, { "input": "10 40\n0 21\n1 19\n4 33\n6 26\n8 39\n15 15\n20 24\n27 27\n29 39\n37 40", "output": "YES" }, { "input": "85 10\n0 9\n0 4\n0 2\n0 5\n0 1\n0 8\n0 7\n1 2\n1 10\n1 2\n1 5\n1 10\n1 8\n1 1\n2 8\n2 7\n2 5\n2 5\n2 7\n3 5\n3 7\n3 5\n3 4\n3 7\n4 7\n4 8\n4 6\n5 7\n5 10\n5 5\n5 6\n5 6\n5 6\n5 6\n5 7\n5 8\n5 5\n5 7\n6 10\n6 9\n6 7\n6 10\n6 8\n6 7\n6 10\n6 10\n7 8\n7 9\n7 8\n7 8\n7 8\n7 8\n7 7\n7 7\n8 8\n8 8\n8 10\n8 9\n8 9\n8 9\n8 9\n9 9\n9 10\n9 9\n9 9\n9 9\n9 9\n9 10\n9 10\n9 9\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10\n10 10", "output": "YES" }, { "input": "50 100\n0 95\n1 7\n1 69\n2 83\n5 67\n7 82\n8 31\n11 25\n15 44\n17 75\n17 27\n18 43\n18 69\n18 40\n21 66\n27 29\n27 64\n38 77\n38 90\n39 52\n40 60\n48 91\n48 98\n50 89\n50 63\n53 54\n53 95\n55 76\n56 59\n60 96\n62 86\n66 70\n67 77\n69 88\n69 98\n69 80\n69 95\n70 74\n70 77\n71 99\n72 73\n81 87\n85 99\n88 96\n88 91\n90 97\n90 99\n92 92\n98 99\n100 100", "output": "NO" }, { "input": "50 40\n0 9\n1 26\n1 27\n2 33\n2 5\n3 30\n4 28\n5 31\n5 27\n5 29\n7 36\n8 32\n8 13\n9 24\n10 10\n10 30\n11 26\n11 22\n11 35\n11 23\n12 36\n13 31\n14 31\n17 17\n21 25\n22 33\n24 26\n25 32\n25 25\n27 39\n27 29\n27 34\n27 32\n28 34\n30 36\n32 37\n32 33\n33 35\n33 33\n34 38\n34 38\n34 36\n34 36\n35 36\n36 36\n36 39\n37 37\n38 39\n39 39\n40 40", "output": "NO" }, { "input": "10 10\n0 2\n3 8\n3 5\n3 3\n3 9\n3 8\n5 7\n6 9\n7 7\n9 9", "output": "NO" }, { "input": "70 100\n0 99\n1 87\n1 94\n1 4\n2 72\n3 39\n3 69\n4 78\n5 85\n7 14\n8 59\n12 69\n14 15\n14 76\n17 17\n19 53\n19 57\n19 21\n21 35\n21 83\n24 52\n24 33\n27 66\n27 97\n30 62\n30 74\n30 64\n32 63\n35 49\n37 60\n40 99\n40 71\n41 83\n42 66\n42 46\n45 83\n51 76\n53 69\n54 82\n54 96\n54 88\n55 91\n56 88\n58 62\n62 87\n64 80\n67 90\n67 69\n68 92\n72 93\n74 93\n77 79\n77 91\n78 97\n78 98\n81 85\n81 83\n81 83\n84 85\n86 88\n89 94\n89 100\n92 97\n96 96\n97 98\n97 100\n99 100\n100 100\n100 100\n100 100", "output": "YES" }, { "input": "2 2\n0 2\n0 1", "output": "YES" }, { "input": "2 100\n0 49\n50 100", "output": "NO" }, { "input": "2 100\n0 50\n50 100", "output": "YES" }, { "input": "10 100\n0 10\n10 20\n20 30\n30 40\n40 50\n50 60\n60 70\n70 80\n80 90\n90 100", "output": "YES" }, { "input": "100 10\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\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\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\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\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\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\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 10", "output": "YES" }, { "input": "1 4\n1 4", "output": "NO" }, { "input": "3 5\n0 2\n2 5\n3 4", "output": "YES" }, { "input": "2 5\n0 5\n1 2", "output": "YES" }, { "input": "5 5\n0 2\n0 2\n3 5\n3 5\n3 5", "output": "NO" }, { "input": "4 10\n0 3\n2 10\n4 10\n5 7", "output": "YES" }, { "input": "3 8\n0 0\n1 8\n2 8", "output": "NO" }, { "input": "6 8\n0 3\n1 5\n2 3\n5 6\n6 7\n7 8", "output": "YES" } ]
1,591,933,942
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
93
307,200
n,m=map(int,input().split(' ')) a=[] flag=0 for i in range(n): x,y=map(int,input().split(' ')) a.append([x,y]) for j in range(n-1): if a[len(a) - 1][1] != m: flag = 1 print("NO") break elif a[j][0] == a[j + 1][0]: if a[j][1] > a[j + 1][1]: a[j + 1][1] = a[j][1] else: if a[j][1]<a[j+1][0]: print("NO") flag=1 break if flag==0: print("YES")
Title: Visiting a Friend Time Limit: None seconds Memory Limit: None megabytes Problem Description: Pig is visiting a friend. Pig's house is located at point 0, and his friend's house is located at point *m* on an axis. Pig can use teleports to move along the axis. To use a teleport, Pig should come to a certain point (where the teleport is located) and choose where to move: for each teleport there is the rightmost point it can move Pig to, this point is known as the limit of the teleport. Formally, a teleport located at point *x* with limit *y* can move Pig from point *x* to any point within the segment [*x*;<=*y*], including the bounds. Determine if Pig can visit the friend using teleports only, or he should use his car. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=100,<=1<=≤<=*m*<=≤<=100) — the number of teleports and the location of the friend's house. The next *n* lines contain information about teleports. The *i*-th of these lines contains two integers *a**i* and *b**i* (0<=≤<=*a**i*<=≤<=*b**i*<=≤<=*m*), where *a**i* is the location of the *i*-th teleport, and *b**i* is its limit. It is guaranteed that *a**i*<=≥<=*a**i*<=-<=1 for every *i* (2<=≤<=*i*<=≤<=*n*). Output Specification: Print "YES" if there is a path from Pig's house to his friend's house that uses only teleports, and "NO" otherwise. You can print each letter in arbitrary case (upper or lower). Demo Input: ['3 5\n0 2\n2 4\n3 5\n', '3 7\n0 4\n2 5\n6 7\n'] Demo Output: ['YES\n', 'NO\n'] Note: The first example is shown on the picture below: Pig can use the first teleport from his house (point 0) to reach point 2, then using the second teleport go from point 2 to point 3, then using the third teleport go from point 3 to point 5, where his friend lives. The second example is shown on the picture below: You can see that there is no path from Pig's house to his friend's house that uses only teleports.
```python n,m=map(int,input().split(' ')) a=[] flag=0 for i in range(n): x,y=map(int,input().split(' ')) a.append([x,y]) for j in range(n-1): if a[len(a) - 1][1] != m: flag = 1 print("NO") break elif a[j][0] == a[j + 1][0]: if a[j][1] > a[j + 1][1]: a[j + 1][1] = a[j][1] else: if a[j][1]<a[j+1][0]: print("NO") flag=1 break if flag==0: print("YES") ```
0
404
A
Valera and X
PROGRAMMING
1,000
[ "implementation" ]
null
null
Valera is a little boy. Yesterday he got a huge Math hometask at school, so Valera didn't have enough time to properly learn the English alphabet for his English lesson. Unfortunately, the English teacher decided to have a test on alphabet today. At the test Valera got a square piece of squared paper. The length of the side equals *n* squares (*n* is an odd number) and each unit square contains some small letter of the English alphabet. Valera needs to know if the letters written on the square piece of paper form letter "X". Valera's teacher thinks that the letters on the piece of paper form an "X", if: - on both diagonals of the square paper all letters are the same; - all other squares of the paper (they are not on the diagonals) contain the same letter that is different from the letters on the diagonals. Help Valera, write the program that completes the described task for him.
The first line contains integer *n* (3<=≤<=*n*<=&lt;<=300; *n* is odd). Each of the next *n* lines contains *n* small English letters — the description of Valera's paper.
Print string "YES", if the letters on the paper form letter "X". Otherwise, print string "NO". Print the strings without quotes.
[ "5\nxooox\noxoxo\nsoxoo\noxoxo\nxooox\n", "3\nwsw\nsws\nwsw\n", "3\nxpx\npxp\nxpe\n" ]
[ "NO\n", "YES\n", "NO\n" ]
none
500
[ { "input": "5\nxooox\noxoxo\nsoxoo\noxoxo\nxooox", "output": "NO" }, { "input": "3\nwsw\nsws\nwsw", "output": "YES" }, { "input": "3\nxpx\npxp\nxpe", "output": "NO" }, { "input": "5\nliiil\nilili\niilii\nilili\nliiil", "output": "YES" }, { "input": "7\nbwccccb\nckcccbj\nccbcbcc\ncccbccc\nccbcbcc\ncbcccbc\nbccccdt", "output": "NO" }, { "input": "13\nsooooooooooos\nosoooooooooso\noosooooooosoo\nooosooooosooo\noooosooosoooo\nooooososooooo\noooooosoooooo\nooooososooooo\noooosooosoooo\nooosooooosooo\noosooooooosoo\nosoooooooooso\nsooooooooooos", "output": "YES" }, { "input": "3\naaa\naaa\naaa", "output": "NO" }, { "input": "3\naca\noec\nzba", "output": "NO" }, { "input": "15\nrxeeeeeeeeeeeer\nereeeeeeeeeeere\needeeeeeeeeeoee\neeereeeeeeeewee\neeeereeeeebeeee\nqeeeereeejedyee\neeeeeerereeeeee\neeeeeeereeeeeee\neeeeeerereeeeze\neeeeereeereeeee\neeeereeeeegeeee\neeereeeeeeereee\neereeeeeeqeeved\ncreeeeeeceeeere\nreeerneeeeeeeer", "output": "NO" }, { "input": "5\nxxxxx\nxxxxx\nxxxxx\nxxxxx\nxxxxx", "output": "NO" }, { "input": "5\nxxxxx\nxxxxx\nxoxxx\nxxxxx\nxxxxx", "output": "NO" }, { "input": "5\noxxxo\nxoxox\nxxxxx\nxoxox\noxxxo", "output": "NO" }, { "input": "5\noxxxo\nxoxox\nxxoox\nxoxox\noxxxo", "output": "NO" }, { "input": "5\noxxxo\nxoxox\nxxaxx\nxoxox\noxxxo", "output": "NO" }, { "input": "5\noxxxo\nxoxox\noxoxx\nxoxox\noxxxo", "output": "NO" }, { "input": "3\nxxx\naxa\nxax", "output": "NO" }, { "input": "3\nxax\naxx\nxax", "output": "NO" }, { "input": "3\nxax\naxa\nxxx", "output": "NO" }, { "input": "3\nxax\nxxa\nxax", "output": "NO" }, { "input": "3\nxax\naaa\nxax", "output": "NO" }, { "input": "3\naax\naxa\nxax", "output": "NO" }, { "input": "3\nxaa\naxa\nxax", "output": "NO" }, { "input": "3\nxax\naxa\naax", "output": "NO" }, { "input": "3\nxax\naxa\nxaa", "output": "NO" }, { "input": "3\nxfx\naxa\nxax", "output": "NO" }, { "input": "3\nxax\nafa\nxax", "output": "NO" }, { "input": "3\nxax\naxa\nxaf", "output": "NO" }, { "input": "3\nxox\nxxx\nxxx", "output": "NO" }, { "input": "3\naxa\naax\nxxa", "output": "NO" }, { "input": "3\nxox\noxx\nxox", "output": "NO" }, { "input": "3\nxox\nooo\nxox", "output": "NO" }, { "input": "3\naaa\naab\nbbb", "output": "NO" }, { "input": "3\nxxx\nsxs\nxsx", "output": "NO" }, { "input": "5\nabbba\nbabab\nbbbbb\nbaaab\nabbba", "output": "NO" }, { "input": "5\nabaaa\nbbbbb\nbbabb\nbabab\nabbba", "output": "NO" }, { "input": "5\nxoxox\noxoxo\nooxoo\noxoxo\nxooox", "output": "NO" }, { "input": "3\nxox\noxx\nxxx", "output": "NO" }, { "input": "5\nxoooo\noxooo\nooxoo\noooxo\noooox", "output": "NO" }, { "input": "5\nxoooo\noxoxx\nooxoo\noxoxo\noxoox", "output": "NO" }, { "input": "3\naaa\nbab\naba", "output": "NO" } ]
1,641,187,343
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
1
93
0
def find(n): matrix = [] seen = set() for index in range(n): matrix.append(list(input())) mark = matrix[0][0] seen.add(mark) for row in range(n): for column in range(n): if row == column or column == n-row-1: if matrix[row][column] != mark: return "NO" elif matrix[row][column] == mark: return "NO" seen.add(matrix[row][column]) if len(seen) < 2 or len(seen) > 2: return "NO" return "YES" n = int(input()) print(find(n))
Title: Valera and X Time Limit: None seconds Memory Limit: None megabytes Problem Description: Valera is a little boy. Yesterday he got a huge Math hometask at school, so Valera didn't have enough time to properly learn the English alphabet for his English lesson. Unfortunately, the English teacher decided to have a test on alphabet today. At the test Valera got a square piece of squared paper. The length of the side equals *n* squares (*n* is an odd number) and each unit square contains some small letter of the English alphabet. Valera needs to know if the letters written on the square piece of paper form letter "X". Valera's teacher thinks that the letters on the piece of paper form an "X", if: - on both diagonals of the square paper all letters are the same; - all other squares of the paper (they are not on the diagonals) contain the same letter that is different from the letters on the diagonals. Help Valera, write the program that completes the described task for him. Input Specification: The first line contains integer *n* (3<=≤<=*n*<=&lt;<=300; *n* is odd). Each of the next *n* lines contains *n* small English letters — the description of Valera's paper. Output Specification: Print string "YES", if the letters on the paper form letter "X". Otherwise, print string "NO". Print the strings without quotes. Demo Input: ['5\nxooox\noxoxo\nsoxoo\noxoxo\nxooox\n', '3\nwsw\nsws\nwsw\n', '3\nxpx\npxp\nxpe\n'] Demo Output: ['NO\n', 'YES\n', 'NO\n'] Note: none
```python def find(n): matrix = [] seen = set() for index in range(n): matrix.append(list(input())) mark = matrix[0][0] seen.add(mark) for row in range(n): for column in range(n): if row == column or column == n-row-1: if matrix[row][column] != mark: return "NO" elif matrix[row][column] == mark: return "NO" seen.add(matrix[row][column]) if len(seen) < 2 or len(seen) > 2: return "NO" return "YES" n = int(input()) print(find(n)) ```
0
270
A
Fancy Fence
PROGRAMMING
1,100
[ "geometry", "implementation", "math" ]
null
null
Emuskald needs a fence around his farm, but he is too lazy to build it himself. So he purchased a fence-building robot. He wants the fence to be a regular polygon. The robot builds the fence along a single path, but it can only make fence corners at a single angle *a*. Will the robot be able to build the fence Emuskald wants? In other words, is there a regular polygon which angles are equal to *a*?
The first line of input contains an integer *t* (0<=&lt;<=*t*<=&lt;<=180) — the number of tests. Each of the following *t* lines contains a single integer *a* (0<=&lt;<=*a*<=&lt;<=180) — the angle the robot can make corners at measured in degrees.
For each test, output on a single line "YES" (without quotes), if the robot can build a fence Emuskald wants, and "NO" (without quotes), if it is impossible.
[ "3\n30\n60\n90\n" ]
[ "NO\nYES\nYES\n" ]
In the first test case, it is impossible to build the fence, since there is no regular polygon with angle <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/df5f4b07dd5316fde165b43657b2696e2919e791.png" style="max-width: 100.0%;max-height: 100.0%;"/>. In the second test case, the fence is a regular triangle, and in the last test case — a square.
500
[ { "input": "3\n30\n60\n90", "output": "NO\nYES\nYES" }, { "input": "6\n1\n2\n3\n170\n179\n25", "output": "NO\nNO\nNO\nYES\nYES\nNO" } ]
1,694,584,074
2,147,483,647
Python 3
OK
TESTS
3
92
0
# -*- coding: utf-8 -*- """ Created on Wed Sep 13 13:41:09 2023 @author: mac """ t = int(input()) for i in range(t): a = int(input()) ans = False for n in range(3,361): if 360 % n == 0 and a == 180 - 360 // n: ans = True break if ans: print("YES") else: print("NO")
Title: Fancy Fence Time Limit: None seconds Memory Limit: None megabytes Problem Description: Emuskald needs a fence around his farm, but he is too lazy to build it himself. So he purchased a fence-building robot. He wants the fence to be a regular polygon. The robot builds the fence along a single path, but it can only make fence corners at a single angle *a*. Will the robot be able to build the fence Emuskald wants? In other words, is there a regular polygon which angles are equal to *a*? Input Specification: The first line of input contains an integer *t* (0<=&lt;<=*t*<=&lt;<=180) — the number of tests. Each of the following *t* lines contains a single integer *a* (0<=&lt;<=*a*<=&lt;<=180) — the angle the robot can make corners at measured in degrees. Output Specification: For each test, output on a single line "YES" (without quotes), if the robot can build a fence Emuskald wants, and "NO" (without quotes), if it is impossible. Demo Input: ['3\n30\n60\n90\n'] Demo Output: ['NO\nYES\nYES\n'] Note: In the first test case, it is impossible to build the fence, since there is no regular polygon with angle <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/df5f4b07dd5316fde165b43657b2696e2919e791.png" style="max-width: 100.0%;max-height: 100.0%;"/>. In the second test case, the fence is a regular triangle, and in the last test case — a square.
```python # -*- coding: utf-8 -*- """ Created on Wed Sep 13 13:41:09 2023 @author: mac """ t = int(input()) for i in range(t): a = int(input()) ans = False for n in range(3,361): if 360 % n == 0 and a == 180 - 360 // n: ans = True break if ans: print("YES") else: print("NO") ```
3
4
A
Watermelon
PROGRAMMING
800
[ "brute force", "math" ]
A. Watermelon
1
64
One hot summer day Pete and his friend Billy decided to buy a watermelon. They chose the biggest and the ripest one, in their opinion. After that the watermelon was weighed, and the scales showed *w* kilos. They rushed home, dying of thirst, and decided to divide the berry, however they faced a hard problem. Pete and Billy are great fans of even numbers, that's why they want to divide the watermelon in such a way that each of the two parts weighs even number of kilos, at the same time it is not obligatory that the parts are equal. The boys are extremely tired and want to start their meal as soon as possible, that's why you should help them and find out, if they can divide the watermelon in the way they want. For sure, each of them should get a part of positive weight.
The first (and the only) input line contains integer number *w* (1<=≤<=*w*<=≤<=100) — the weight of the watermelon bought by the boys.
Print YES, if the boys can divide the watermelon into two parts, each of them weighing even number of kilos; and NO in the opposite case.
[ "8\n" ]
[ "YES\n" ]
For example, the boys can divide the watermelon into two parts of 2 and 6 kilos respectively (another variant — two parts of 4 and 4 kilos).
0
[ { "input": "8", "output": "YES" }, { "input": "5", "output": "NO" }, { "input": "4", "output": "YES" }, { "input": "3", "output": "NO" }, { "input": "2", "output": "NO" }, { "input": "1", "output": "NO" }, { "input": "7", "output": "NO" }, { "input": "6", "output": "YES" }, { "input": "10", "output": "YES" }, { "input": "9", "output": "NO" }, { "input": "53", "output": "NO" }, { "input": "77", "output": "NO" }, { "input": "32", "output": "YES" }, { "input": "44", "output": "YES" }, { "input": "98", "output": "YES" }, { "input": "99", "output": "NO" }, { "input": "90", "output": "YES" }, { "input": "67", "output": "NO" }, { "input": "100", "output": "YES" }, { "input": "88", "output": "YES" } ]
1,693,747,181
2,147,483,647
Python 3
COMPILATION_ERROR
TESTS
0
0
0
a=int(input("enter the value")) if a%2==0: print("yes") else: printf("no")
Title: Watermelon Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: One hot summer day Pete and his friend Billy decided to buy a watermelon. They chose the biggest and the ripest one, in their opinion. After that the watermelon was weighed, and the scales showed *w* kilos. They rushed home, dying of thirst, and decided to divide the berry, however they faced a hard problem. Pete and Billy are great fans of even numbers, that's why they want to divide the watermelon in such a way that each of the two parts weighs even number of kilos, at the same time it is not obligatory that the parts are equal. The boys are extremely tired and want to start their meal as soon as possible, that's why you should help them and find out, if they can divide the watermelon in the way they want. For sure, each of them should get a part of positive weight. Input Specification: The first (and the only) input line contains integer number *w* (1<=≤<=*w*<=≤<=100) — the weight of the watermelon bought by the boys. Output Specification: Print YES, if the boys can divide the watermelon into two parts, each of them weighing even number of kilos; and NO in the opposite case. Demo Input: ['8\n'] Demo Output: ['YES\n'] Note: For example, the boys can divide the watermelon into two parts of 2 and 6 kilos respectively (another variant — two parts of 4 and 4 kilos).
```python a=int(input("enter the value")) if a%2==0: print("yes") else: printf("no") ```
-1
242
C
King's Path
PROGRAMMING
1,800
[ "dfs and similar", "graphs", "hashing", "shortest paths" ]
null
null
The black king is standing on a chess field consisting of 109 rows and 109 columns. We will consider the rows of the field numbered with integers from 1 to 109 from top to bottom. The columns are similarly numbered with integers from 1 to 109 from left to right. We will denote a cell of the field that is located in the *i*-th row and *j*-th column as (*i*,<=*j*). You know that some squares of the given chess field are allowed. All allowed cells of the chess field are given as *n* segments. Each segment is described by three integers *r**i*,<=*a**i*,<=*b**i* (*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Your task is to find the minimum number of moves the king needs to get from square (*x*0,<=*y*0) to square (*x*1,<=*y*1), provided that he only moves along the allowed cells. In other words, the king can be located only on allowed cells on his way. Let us remind you that a chess king can move to any of the neighboring cells in one move. Two cells of a chess field are considered neighboring if they share at least one point.
The first line contains four space-separated integers *x*0,<=*y*0,<=*x*1,<=*y*1 (1<=≤<=*x*0,<=*y*0,<=*x*1,<=*y*1<=≤<=109), denoting the initial and the final positions of the king. The second line contains a single integer *n* (1<=≤<=*n*<=≤<=105), denoting the number of segments of allowed cells. Next *n* lines contain the descriptions of these segments. The *i*-th line contains three space-separated integers *r**i*,<=*a**i*,<=*b**i* (1<=≤<=*r**i*,<=*a**i*,<=*b**i*<=≤<=109,<=*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Note that the segments of the allowed cells can intersect and embed arbitrarily. It is guaranteed that the king's initial and final position are allowed cells. It is guaranteed that the king's initial and the final positions do not coincide. It is guaranteed that the total length of all given segments doesn't exceed 105.
If there is no path between the initial and final position along allowed cells, print -1. Otherwise print a single integer — the minimum number of moves the king needs to get from the initial position to the final one.
[ "5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5\n", "3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10\n", "1 1 2 10\n2\n1 1 3\n2 6 10\n" ]
[ "4\n", "6\n", "-1\n" ]
none
1,500
[ { "input": "5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5", "output": "4" }, { "input": "3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10", "output": "6" }, { "input": "1 1 2 10\n2\n1 1 3\n2 6 10", "output": "-1" }, { "input": "9 8 7 8\n9\n10 6 6\n10 6 6\n7 7 8\n9 5 6\n8 9 9\n9 5 5\n9 8 8\n8 5 6\n9 10 10", "output": "2" }, { "input": "6 15 7 15\n9\n6 15 15\n7 14 14\n6 15 15\n9 14 14\n7 14 16\n6 15 15\n6 15 15\n7 14 14\n8 15 15", "output": "1" }, { "input": "13 16 20 10\n18\n13 16 16\n20 10 10\n19 10 10\n12 15 15\n20 10 10\n18 11 11\n19 10 10\n19 10 10\n20 10 10\n19 10 10\n20 10 10\n20 10 10\n19 10 10\n18 11 11\n13 16 16\n12 15 15\n19 10 10\n19 10 10", "output": "-1" }, { "input": "89 29 88 30\n16\n87 31 31\n14 95 95\n98 88 89\n96 88 88\n14 97 97\n13 97 98\n100 88 88\n88 32 32\n99 88 89\n90 29 29\n87 31 31\n15 94 96\n89 29 29\n88 32 32\n97 89 89\n88 29 30", "output": "1" }, { "input": "30 14 39 19\n31\n35 7 11\n37 11 12\n32 13 13\n37 5 6\n46 13 13\n37 14 14\n31 13 13\n43 13 19\n45 15 19\n46 13 13\n32 17 17\n41 14 19\n30 14 14\n43 13 17\n34 16 18\n44 11 19\n38 13 13\n40 12 20\n37 16 18\n46 16 18\n34 10 14\n36 9 10\n36 15 19\n38 15 19\n42 13 19\n33 14 15\n35 15 19\n33 17 18\n39 12 20\n36 5 7\n45 12 12", "output": "9" }, { "input": "2 1 1 1\n2\n1 1 2\n2 1 2", "output": "1" }, { "input": "1 1 1 2\n5\n1000000000 1 10000\n19920401 1188 5566\n1000000000 1 10000\n1 1 10000\n5 100 200", "output": "1" }, { "input": "1 1 1000000000 2\n5\n1000000000 1 10000\n19920401 1188 5566\n1000000000 1 10000\n1 1 10000\n5 100 200", "output": "-1" } ]
1,611,688,803
2,147,483,647
PyPy 3
OK
TESTS
43
1,122
16,896,000
###### ### ####### ####### ## # ##### ### ##### # # # # # # # # # # # # # ### # # # # # # # # # # # # # ### ###### ######### # # # # # # ######### # ###### ######### # # # # # # ######### # # # # # # # # # # # #### # # # # # # # # # # ## # # # # # ###### # # ####### ####### # # ##### # # # # from __future__ import print_function # for PyPy2 from collections import Counter, OrderedDict from itertools import permutations as perm from fractions import Fraction from collections import deque from sys import stdin from bisect import * from heapq import * from math import * g = lambda : stdin.readline().strip() gl = lambda : g().split() gil = lambda : [int(var) for var in gl()] gfl = lambda : [float(var) for var in gl()] gcl = lambda : list(g()) gbs = lambda : [int(var) for var in g()] mod = int(1e9)+7 inf = float("inf") sx, sy, ex, ey = gil() d, h = {}, [] for _ in range(gil()[0]): r, L, R = gil() for c in range(L, R+1): d[r, c] = inf if (sx, sy) not in d or (ex, ey) not in d : print(0 if (sx, sy) == (ex, ey) else -1) exit() d[sx, sy] = 0 h.append((0, sx, sy)) perm = [(-1, -1), (1, 0), (0, 1), (1, 1), (0, -1), (-1, 0), (-1, 1), (1, -1)] while h: di, x, y = heappop(h) if d[x, y] != di:continue for dx, dy in perm: p = (x+dx, y+dy) if p in d and d[p] > di+1: d[p] = di + 1 heappush(h, (di+1, p[0], p[1])) print(-1 if d[ex, ey] == inf else d[ex, ey])
Title: King's Path Time Limit: None seconds Memory Limit: None megabytes Problem Description: The black king is standing on a chess field consisting of 109 rows and 109 columns. We will consider the rows of the field numbered with integers from 1 to 109 from top to bottom. The columns are similarly numbered with integers from 1 to 109 from left to right. We will denote a cell of the field that is located in the *i*-th row and *j*-th column as (*i*,<=*j*). You know that some squares of the given chess field are allowed. All allowed cells of the chess field are given as *n* segments. Each segment is described by three integers *r**i*,<=*a**i*,<=*b**i* (*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Your task is to find the minimum number of moves the king needs to get from square (*x*0,<=*y*0) to square (*x*1,<=*y*1), provided that he only moves along the allowed cells. In other words, the king can be located only on allowed cells on his way. Let us remind you that a chess king can move to any of the neighboring cells in one move. Two cells of a chess field are considered neighboring if they share at least one point. Input Specification: The first line contains four space-separated integers *x*0,<=*y*0,<=*x*1,<=*y*1 (1<=≤<=*x*0,<=*y*0,<=*x*1,<=*y*1<=≤<=109), denoting the initial and the final positions of the king. The second line contains a single integer *n* (1<=≤<=*n*<=≤<=105), denoting the number of segments of allowed cells. Next *n* lines contain the descriptions of these segments. The *i*-th line contains three space-separated integers *r**i*,<=*a**i*,<=*b**i* (1<=≤<=*r**i*,<=*a**i*,<=*b**i*<=≤<=109,<=*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Note that the segments of the allowed cells can intersect and embed arbitrarily. It is guaranteed that the king's initial and final position are allowed cells. It is guaranteed that the king's initial and the final positions do not coincide. It is guaranteed that the total length of all given segments doesn't exceed 105. Output Specification: If there is no path between the initial and final position along allowed cells, print -1. Otherwise print a single integer — the minimum number of moves the king needs to get from the initial position to the final one. Demo Input: ['5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5\n', '3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10\n', '1 1 2 10\n2\n1 1 3\n2 6 10\n'] Demo Output: ['4\n', '6\n', '-1\n'] Note: none
```python ###### ### ####### ####### ## # ##### ### ##### # # # # # # # # # # # # # ### # # # # # # # # # # # # # ### ###### ######### # # # # # # ######### # ###### ######### # # # # # # ######### # # # # # # # # # # # #### # # # # # # # # # # ## # # # # # ###### # # ####### ####### # # ##### # # # # from __future__ import print_function # for PyPy2 from collections import Counter, OrderedDict from itertools import permutations as perm from fractions import Fraction from collections import deque from sys import stdin from bisect import * from heapq import * from math import * g = lambda : stdin.readline().strip() gl = lambda : g().split() gil = lambda : [int(var) for var in gl()] gfl = lambda : [float(var) for var in gl()] gcl = lambda : list(g()) gbs = lambda : [int(var) for var in g()] mod = int(1e9)+7 inf = float("inf") sx, sy, ex, ey = gil() d, h = {}, [] for _ in range(gil()[0]): r, L, R = gil() for c in range(L, R+1): d[r, c] = inf if (sx, sy) not in d or (ex, ey) not in d : print(0 if (sx, sy) == (ex, ey) else -1) exit() d[sx, sy] = 0 h.append((0, sx, sy)) perm = [(-1, -1), (1, 0), (0, 1), (1, 1), (0, -1), (-1, 0), (-1, 1), (1, -1)] while h: di, x, y = heappop(h) if d[x, y] != di:continue for dx, dy in perm: p = (x+dx, y+dy) if p in d and d[p] > di+1: d[p] = di + 1 heappush(h, (di+1, p[0], p[1])) print(-1 if d[ex, ey] == inf else d[ex, ey]) ```
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
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14 25 52 38 26 36 18" }, { "input": "14\n14 6 3 12 11 2 7 1 10 9 8 5 4 13", "output": "8 6 3 13 12 2 7 11 10 9 5 4 14 1" }, { "input": "81\n13 43 79 8 7 21 73 46 63 4 62 78 56 11 70 68 61 53 60 49 16 27 59 47 69 5 22 44 77 57 52 48 1 9 72 81 28 55 58 33 51 18 31 17 41 20 42 3 32 54 19 2 75 34 64 10 65 50 30 29 67 12 71 66 74 15 26 23 6 38 25 35 37 24 80 76 40 45 39 36 14", "output": "33 52 48 10 26 69 5 4 34 56 14 62 1 81 66 21 44 42 51 46 6 27 68 74 71 67 22 37 60 59 43 49 40 54 72 80 73 70 79 77 45 47 2 28 78 8 24 32 20 58 41 31 18 50 38 13 30 39 23 19 17 11 9 55 57 64 61 16 25 15 63 35 7 65 53 76 29 12 3 75 36" }, { "input": "42\n41 11 10 8 21 37 32 19 31 25 1 15 36 5 6 27 4 3 13 7 16 17 2 23 34 24 38 28 12 20 30 42 18 26 39 35 33 40 9 14 22 29", "output": "11 23 18 17 14 15 20 4 39 3 2 29 19 40 12 21 22 33 8 30 5 41 24 26 10 34 16 28 42 31 9 7 37 25 36 13 6 27 35 38 1 32" }, { "input": "97\n20 6 76 42 4 18 35 59 39 63 27 7 66 47 61 52 15 36 88 93 19 33 10 92 1 34 46 86 78 57 51 94 77 29 26 73 41 2 58 97 43 65 17 74 21 49 25 3 91 82 95 12 96 13 84 90 69 24 72 37 16 55 54 71 64 62 48 89 11 70 80 67 30 40 44 85 53 83 79 9 56 45 75 87 22 14 81 68 8 38 60 50 28 23 31 32 5", "output": "25 38 48 5 97 2 12 89 80 23 69 52 54 86 17 61 43 6 21 1 45 85 94 58 47 35 11 93 34 73 95 96 22 26 7 18 60 90 9 74 37 4 41 75 82 27 14 67 46 92 31 16 77 63 62 81 30 39 8 91 15 66 10 65 42 13 72 88 57 70 64 59 36 44 83 3 33 29 79 71 87 50 78 55 76 28 84 19 68 56 49 24 20 32 51 53 40" }, { "input": "62\n15 27 46 6 8 51 14 56 23 48 42 49 52 22 20 31 29 12 47 3 62 34 37 35 32 57 19 25 5 60 61 38 18 10 11 55 45 53 17 30 9 36 4 50 41 16 44 28 40 59 24 1 13 39 26 7 33 58 2 43 21 54", "output": "52 59 20 43 29 4 56 5 41 34 35 18 53 7 1 46 39 33 27 15 61 14 9 51 28 55 2 48 17 40 16 25 57 22 24 42 23 32 54 49 45 11 60 47 37 3 19 10 12 44 6 13 38 62 36 8 26 58 50 30 31 21" }, { "input": "61\n35 27 4 61 52 32 41 46 14 37 17 54 55 31 11 26 44 49 15 30 9 50 45 39 7 38 53 3 58 40 13 56 18 19 28 6 43 5 21 42 20 34 2 25 36 12 33 57 16 60 1 8 59 10 22 23 24 48 51 47 29", "output": "51 43 28 3 38 36 25 52 21 54 15 46 31 9 19 49 11 33 34 41 39 55 56 57 44 16 2 35 61 20 14 6 47 42 1 45 10 26 24 30 7 40 37 17 23 8 60 58 18 22 59 5 27 12 13 32 48 29 53 50 4" }, { "input": "59\n31 26 36 15 17 19 10 53 11 34 13 46 55 9 44 7 8 37 32 52 47 25 51 22 35 39 41 4 43 24 5 27 20 57 6 38 3 28 21 40 50 18 14 56 33 45 12 2 49 59 54 29 16 48 42 58 1 30 23", "output": "57 48 37 28 31 35 16 17 14 7 9 47 11 43 4 53 5 42 6 33 39 24 59 30 22 2 32 38 52 58 1 19 45 10 25 3 18 36 26 40 27 55 29 15 46 12 21 54 49 41 23 20 8 51 13 44 34 56 50" }, { "input": "10\n2 10 7 4 1 5 8 6 3 9", "output": "5 1 9 4 6 8 3 7 10 2" }, { "input": "14\n14 2 1 8 6 12 11 10 9 7 3 4 5 13", "output": "3 2 11 12 13 5 10 4 9 8 7 6 14 1" }, { "input": "43\n28 38 15 14 31 42 27 30 19 33 43 26 22 29 18 32 3 13 1 8 35 34 4 12 11 17 41 21 5 25 39 37 20 23 7 24 16 10 40 9 6 36 2", "output": "19 43 17 23 29 41 35 20 40 38 25 24 18 4 3 37 26 15 9 33 28 13 34 36 30 12 7 1 14 8 5 16 10 22 21 42 32 2 31 39 27 6 11" }, { "input": "86\n39 11 20 31 28 76 29 64 35 21 41 71 12 82 5 37 80 73 38 26 79 75 23 15 59 45 47 6 3 62 50 49 51 22 2 65 86 60 70 42 74 17 1 30 55 44 8 66 81 27 57 77 43 13 54 32 72 46 48 56 14 34 78 52 36 85 24 19 69 83 25 61 7 4 84 33 63 58 18 40 68 10 67 9 16 53", "output": "43 35 29 74 15 28 73 47 84 82 2 13 54 61 24 85 42 79 68 3 10 34 23 67 71 20 50 5 7 44 4 56 76 62 9 65 16 19 1 80 11 40 53 46 26 58 27 59 32 31 33 64 86 55 45 60 51 78 25 38 72 30 77 8 36 48 83 81 69 39 12 57 18 41 22 6 52 63 21 17 49 14 70 75 66 37" }, { "input": "99\n65 78 56 98 33 24 61 40 29 93 1 64 57 22 25 52 67 95 50 3 31 15 90 68 71 83 38 36 6 46 89 26 4 87 14 88 72 37 23 43 63 12 80 96 5 34 73 86 9 48 92 62 99 10 16 20 66 27 28 2 82 70 30 94 49 8 84 69 18 60 58 59 44 39 21 7 91 76 54 19 75 85 74 47 55 32 97 77 51 13 35 79 45 42 11 41 17 81 53", "output": "11 60 20 33 45 29 76 66 49 54 95 42 90 35 22 55 97 69 80 56 75 14 39 6 15 32 58 59 9 63 21 86 5 46 91 28 38 27 74 8 96 94 40 73 93 30 84 50 65 19 89 16 99 79 85 3 13 71 72 70 7 52 41 12 1 57 17 24 68 62 25 37 47 83 81 78 88 2 92 43 98 61 26 67 82 48 34 36 31 23 77 51 10 64 18 44 87 4 53" }, { "input": "100\n42 23 48 88 36 6 18 70 96 1 34 40 46 22 39 55 85 93 45 67 71 75 59 9 21 3 86 63 65 68 20 38 73 31 84 90 50 51 56 95 72 33 49 19 83 76 54 74 100 30 17 98 15 94 4 97 5 99 81 27 92 32 89 12 13 91 87 29 60 11 52 43 35 58 10 25 16 80 28 2 44 61 8 82 66 69 41 24 57 62 78 37 79 77 53 7 14 47 26 64", "output": "10 80 26 55 57 6 96 83 24 75 70 64 65 97 53 77 51 7 44 31 25 14 2 88 76 99 60 79 68 50 34 62 42 11 73 5 92 32 15 12 87 1 72 81 19 13 98 3 43 37 38 71 95 47 16 39 89 74 23 69 82 90 28 100 29 85 20 30 86 8 21 41 33 48 22 46 94 91 93 78 59 84 45 35 17 27 67 4 63 36 66 61 18 54 40 9 56 52 58 49" }, { "input": "99\n8 68 94 75 71 60 57 58 6 11 5 48 65 41 49 12 46 72 95 59 13 70 74 7 84 62 17 36 55 76 38 79 2 85 23 10 32 99 87 50 83 28 54 91 53 51 1 3 97 81 21 89 93 78 61 26 82 96 4 98 25 40 31 44 24 47 30 52 14 16 39 27 9 29 45 18 67 63 37 43 90 66 19 69 88 22 92 77 34 42 73 80 56 64 20 35 15 33 86", "output": "47 33 48 59 11 9 24 1 73 36 10 16 21 69 97 70 27 76 83 95 51 86 35 65 61 56 72 42 74 67 63 37 98 89 96 28 79 31 71 62 14 90 80 64 75 17 66 12 15 40 46 68 45 43 29 93 7 8 20 6 55 26 78 94 13 82 77 2 84 22 5 18 91 23 4 30 88 54 32 92 50 57 41 25 34 99 39 85 52 81 44 87 53 3 19 58 49 60 38" }, { "input": "99\n12 99 88 13 7 19 74 47 23 90 16 29 26 11 58 60 64 98 37 18 82 67 72 46 51 85 17 92 87 20 77 36 78 71 57 35 80 54 73 15 14 62 97 45 31 79 94 56 76 96 28 63 8 44 38 86 49 2 52 66 61 59 10 43 55 50 22 34 83 53 95 40 81 21 30 42 27 3 5 41 1 70 69 25 93 48 65 6 24 89 91 33 39 68 9 4 32 84 75", "output": "81 58 78 96 79 88 5 53 95 63 14 1 4 41 40 11 27 20 6 30 74 67 9 89 84 13 77 51 12 75 45 97 92 68 36 32 19 55 93 72 80 76 64 54 44 24 8 86 57 66 25 59 70 38 65 48 35 15 62 16 61 42 52 17 87 60 22 94 83 82 34 23 39 7 99 49 31 33 46 37 73 21 69 98 26 56 29 3 90 10 91 28 85 47 71 50 43 18 2" }, { "input": "99\n20 79 26 75 99 69 98 47 93 62 18 42 43 38 90 66 67 8 13 84 76 58 81 60 64 46 56 23 78 17 86 36 19 52 85 39 48 27 96 49 37 95 5 31 10 24 12 1 80 35 92 33 16 68 57 54 32 29 45 88 72 77 4 87 97 89 59 3 21 22 61 94 83 15 44 34 70 91 55 9 51 50 73 11 14 6 40 7 63 25 2 82 41 65 28 74 71 30 53", "output": "48 91 68 63 43 86 88 18 80 45 84 47 19 85 74 53 30 11 33 1 69 70 28 46 90 3 38 95 58 98 44 57 52 76 50 32 41 14 36 87 93 12 13 75 59 26 8 37 40 82 81 34 99 56 79 27 55 22 67 24 71 10 89 25 94 16 17 54 6 77 97 61 83 96 4 21 62 29 2 49 23 92 73 20 35 31 64 60 66 15 78 51 9 72 42 39 65 7 5" }, { "input": "99\n74 20 9 1 60 85 65 13 4 25 40 99 5 53 64 3 36 31 73 44 55 50 45 63 98 51 68 6 47 37 71 82 88 34 84 18 19 12 93 58 86 7 11 46 90 17 33 27 81 69 42 59 56 32 95 52 76 61 96 62 78 43 66 21 49 97 75 14 41 72 89 16 30 79 22 23 15 83 91 38 48 2 87 26 28 80 94 70 54 92 57 10 8 35 67 77 29 24 39", "output": "4 82 16 9 13 28 42 93 3 92 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" } ]
1,683,036,512
2,147,483,647
PyPy 3-64
OK
TESTS
101
124
0
n = int(input()) l = list(map(int, input().split(' '))) ans = [0] * n for x in range(n): y = l[x] y -= 1 ans[y] = (x + 1) print(*ans)
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 n = int(input()) l = list(map(int, input().split(' '))) ans = [0] * n for x in range(n): y = l[x] y -= 1 ans[y] = (x + 1) print(*ans) ```
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" } ]
1,651,396,521
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
3
62
0
import math n,x,y=map(int,input().split(" ")) p=y/100 q=p*n ans=(math.ceil(q)) print(ans-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 import math n,x,y=map(int,input().split(" ")) p=y/100 q=p*n ans=(math.ceil(q)) print(ans-x) ```
0
868
A
Bark to Unlock
PROGRAMMING
900
[ "brute force", "implementation", "strings" ]
null
null
As technologies develop, manufacturers are making the process of unlocking a phone as user-friendly as possible. To unlock its new phone, Arkady's pet dog Mu-mu has to bark the password once. The phone represents a password as a string of two lowercase English letters. Mu-mu's enemy Kashtanka wants to unlock Mu-mu's phone to steal some sensible information, but it can only bark *n* distinct words, each of which can be represented as a string of two lowercase English letters. Kashtanka wants to bark several words (not necessarily distinct) one after another to pronounce a string containing the password as a substring. Tell if it's possible to unlock the phone in this way, or not.
The first line contains two lowercase English letters — the password on the phone. The second line contains single integer *n* (1<=≤<=*n*<=≤<=100) — the number of words Kashtanka knows. The next *n* lines contain two lowercase English letters each, representing the words Kashtanka knows. The words are guaranteed to be distinct.
Print "YES" if Kashtanka can bark several words in a line forming a string containing the password, and "NO" otherwise. You can print each letter in arbitrary case (upper or lower).
[ "ya\n4\nah\noy\nto\nha\n", "hp\n2\nht\ntp\n", "ah\n1\nha\n" ]
[ "YES\n", "NO\n", "YES\n" ]
In the first example the password is "ya", and Kashtanka can bark "oy" and then "ah", and then "ha" to form the string "oyahha" which contains the password. So, the answer is "YES". In the second example Kashtanka can't produce a string containing password as a substring. Note that it can bark "ht" and then "tp" producing "http", but it doesn't contain the password "hp" as a substring. In the third example the string "hahahaha" contains "ah" as a substring.
250
[ { "input": "ya\n4\nah\noy\nto\nha", "output": "YES" }, { "input": "hp\n2\nht\ntp", "output": "NO" }, { "input": "ah\n1\nha", "output": "YES" }, { "input": "bb\n4\nba\nab\naa\nbb", "output": "YES" }, { "input": "bc\n4\nca\nba\nbb\ncc", "output": "YES" }, { "input": "ba\n4\ncd\nad\ncc\ncb", "output": "YES" }, { "input": "pg\n4\nzl\nxs\ndi\nxn", "output": "NO" }, { "input": "bn\n100\ndf\nyb\nze\nml\nyr\nof\nnw\nfm\ndw\nlv\nzr\nhu\nzt\nlw\nld\nmo\nxz\ntp\nmr\nou\nme\npx\nvp\nes\nxi\nnr\nbx\nqc\ngm\njs\nkn\ntw\nrq\nkz\nuc\nvc\nqr\nab\nna\nro\nya\nqy\ngu\nvk\nqk\ngs\nyq\nop\nhw\nrj\neo\nlz\nbh\nkr\nkb\nma\nrd\nza\nuf\nhq\nmc\nmn\nti\nwn\nsh\nax\nsi\nnd\ntz\ndu\nfj\nkl\nws\now\nnf\nvr\nye\nzc\niw\nfv\nkv\noo\nsm\nbc\nrs\nau\nuz\nuv\ngh\nsu\njn\ndz\nrl\nwj\nbk\nzl\nas\nms\nit\nwu", "output": "YES" }, { "input": "bb\n1\naa", "output": "NO" }, { "input": "qm\n25\nqw\nwe\ner\nrt\nty\nyu\nui\nio\nop\npa\nas\nsd\ndf\nfg\ngh\nhj\njk\nkl\nlz\nzx\nxc\ncv\nvb\nbn\nnm", "output": "NO" }, { "input": "mq\n25\nqw\nwe\ner\nrt\nty\nyu\nui\nio\nop\npa\nas\nsd\ndf\nfg\ngh\nhj\njk\nkl\nlz\nzx\nxc\ncv\nvb\nbn\nnm", "output": "YES" }, { "input": "aa\n1\naa", "output": "YES" }, { "input": "bb\n1\nbb", "output": "YES" }, { "input": "ba\n1\ncc", "output": "NO" }, { "input": "ha\n1\nha", "output": "YES" }, { "input": "aa\n1\naa", "output": "YES" }, { "input": "ez\n1\njl", "output": "NO" }, { "input": "aa\n2\nab\nba", "output": "YES" }, { "input": "aa\n2\nca\ncc", "output": "NO" }, { "input": "dd\n2\nac\ndc", "output": "NO" }, { "input": "qc\n2\nyc\nkr", "output": "NO" }, { "input": "aa\n3\nba\nbb\nab", "output": "YES" }, { "input": "ca\n3\naa\nbb\nab", "output": "NO" }, { "input": "ca\n3\nbc\nbd\nca", "output": "YES" }, { "input": "dd\n3\nmt\nrg\nxl", "output": "NO" }, { "input": "be\n20\nad\ncd\ncb\ndb\ndd\naa\nab\nca\nae\ned\ndc\nbb\nba\nda\nee\nea\ncc\nac\nec\neb", "output": "YES" }, { "input": "fc\n20\nca\nbb\nce\nfd\nde\nfa\ncc\nec\nfb\nfc\nff\nbe\ncf\nba\ndb\ned\naf\nae\nda\nef", "output": "YES" }, { "input": "ca\n20\ndc\naf\ndf\neg\naa\nbc\nea\nbd\nab\ndb\ngc\nfb\nba\nbe\nee\ngf\ncf\nag\nga\nca", "output": "YES" }, { "input": "ke\n20\nzk\nra\nbq\nqz\nwt\nzg\nmz\nuk\nge\nuv\nud\nfd\neh\ndm\nsk\nki\nfv\ntp\nat\nfb", "output": "YES" }, { "input": "hh\n50\nag\nhg\ndg\nfh\neg\ngh\ngd\nda\nbh\nab\nhf\ndc\nhb\nfe\nad\nec\nac\nfd\nca\naf\ncg\nhd\neb\nce\nhe\nha\ngb\nea\nae\nfb\nff\nbe\nch\nhh\nee\nde\nge\ngf\naa\ngg\neh\ned\nbf\nfc\nah\nga\nbd\ncb\nbg\nbc", "output": "YES" }, { "input": "id\n50\nhi\ndc\nfg\nee\ngi\nhc\nac\nih\ndg\nfc\nde\ned\nie\neb\nic\ncf\nib\nfa\ngc\nba\nbe\nga\nha\nhg\nia\ndf\nab\nei\neh\nad\nii\nci\ndh\nec\nif\ndi\nbg\nag\nhe\neg\nca\nae\ndb\naa\nid\nfh\nhh\ncc\nfb\ngb", "output": "YES" }, { "input": "fe\n50\nje\nbi\nbg\ngc\nfb\nig\ndf\nji\ndg\nfe\nfc\ncf\ngf\nai\nhe\nac\nch\nja\ngh\njf\nge\ncb\nij\ngb\ncg\naf\neh\nee\nhd\njd\njb\nii\nca\nci\nga\nab\nhi\nag\nfj\nej\nfi\nie\ndj\nfg\nef\njc\njg\njh\nhf\nha", "output": "YES" }, { "input": "rn\n50\nba\nec\nwg\nao\nlk\nmz\njj\ncf\nfa\njk\ndy\nsz\njs\nzr\nqv\ntx\nwv\nrd\nqw\nls\nrr\nvt\nrx\nkc\neh\nnj\niq\nyi\nkh\nue\nnv\nkz\nrn\nes\nua\nzf\nvu\nll\neg\nmj\ncz\nzj\nxz\net\neb\nci\nih\nig\nam\nvd", "output": "YES" }, { "input": "ee\n100\nah\nfb\ncd\nbi\nii\nai\nid\nag\nie\nha\ndi\nec\nae\nce\njb\ndg\njg\ngd\ngf\nda\nih\nbd\nhj\ngg\nhb\ndf\ned\nfh\naf\nja\nci\nfc\nic\nji\nac\nhi\nfj\nch\nbc\njd\naa\nff\nad\ngj\nej\nde\nee\nhe\ncf\nga\nia\ncg\nbb\nhc\nbe\ngi\njf\nbg\naj\njj\nbh\nfe\ndj\nef\ngb\nge\ndb\nig\ncj\ndc\nij\njh\nei\ndd\nib\nhf\neg\nbf\nfg\nab\ngc\nfd\nhd\ngh\neh\njc\neb\nhh\nca\nje\nbj\nif\nea\nhg\nfa\ncc\nba\ndh\ncb\nfi", "output": "YES" }, { "input": "if\n100\njd\nbc\nje\nhi\nga\nde\nkb\nfc\ncd\ngd\naj\ncb\nei\nbf\ncf\ndk\ndb\ncg\nki\ngg\nkg\nfa\nkj\nii\njf\njg\ngb\nbh\nbg\neh\nhj\nhb\ndg\ndj\njc\njb\nce\ndi\nig\nci\ndf\nji\nhc\nfk\naf\nac\ngk\nhd\nae\nkd\nec\nkc\neb\nfh\nij\nie\nca\nhh\nkf\nha\ndd\nif\nef\nih\nhg\nej\nfe\njk\nea\nib\nck\nhf\nak\ngi\nch\ndc\nba\nke\nad\nka\neg\njh\nja\ngc\nfd\ncc\nab\ngj\nik\nfg\nbj\nhe\nfj\nge\ngh\nhk\nbk\ned\nid\nfi", "output": "YES" }, { "input": "kd\n100\nek\nea\nha\nkf\nkj\ngh\ndl\nfj\nal\nga\nlj\nik\ngd\nid\ncb\nfh\ndk\nif\nbh\nkb\nhc\nej\nhk\ngc\ngb\nef\nkk\nll\nlf\nkh\ncl\nlh\njj\nil\nhh\nci\ndb\ndf\ngk\njg\nch\nbd\ncg\nfg\nda\neb\nlg\ndg\nbk\nje\nbg\nbl\njl\ncj\nhb\nei\naa\ngl\nka\nfa\nfi\naf\nkc\nla\ngi\nij\nib\nle\ndi\nck\nag\nlc\nca\nge\nie\nlb\nke\nii\nae\nig\nic\nhe\ncf\nhd\nak\nfb\nhi\ngf\nad\nba\nhg\nbi\nkl\nac\ngg\ngj\nbe\nlk\nld\naj", "output": "YES" }, { "input": "ab\n1\nab", "output": "YES" }, { "input": "ya\n1\nya", "output": "YES" }, { "input": "ay\n1\nyb", "output": "NO" }, { "input": "ax\n2\nii\nxa", "output": "YES" }, { "input": "hi\n1\nhi", "output": "YES" }, { "input": "ag\n1\nag", "output": "YES" }, { "input": "th\n1\nth", "output": "YES" }, { "input": "sb\n1\nsb", "output": "YES" }, { "input": "hp\n1\nhp", "output": "YES" }, { "input": "ah\n1\nah", "output": "YES" }, { "input": "ta\n1\nta", "output": "YES" }, { "input": "tb\n1\ntb", "output": "YES" }, { "input": "ab\n5\nca\nda\nea\nfa\nka", "output": "NO" }, { "input": "ac\n1\nac", "output": "YES" }, { "input": "ha\n2\nha\nzz", "output": "YES" }, { "input": "ok\n1\nok", "output": "YES" }, { "input": "bc\n1\nbc", "output": "YES" }, { "input": "az\n1\nzz", "output": "NO" }, { "input": "ab\n2\nba\ntt", "output": "YES" }, { "input": "ah\n2\nap\nhp", "output": "NO" }, { "input": "sh\n1\nsh", "output": "YES" }, { "input": "az\n1\nby", "output": "NO" }, { "input": "as\n1\nas", "output": "YES" }, { "input": "ab\n2\nab\ncd", "output": "YES" }, { "input": "ab\n2\nxa\nza", "output": "NO" }, { "input": "ab\n2\net\nab", "output": "YES" }, { "input": "ab\n1\naa", "output": "NO" }, { "input": "ab\n2\nab\nde", "output": "YES" }, { "input": "ah\n2\nba\nha", "output": "YES" }, { "input": "ha\n3\ndd\ncc\nha", "output": "YES" }, { "input": "oo\n1\nox", "output": "NO" }, { "input": "ab\n2\nax\nbx", "output": "NO" }, { "input": "ww\n4\nuw\now\npo\nko", "output": "NO" }, { "input": "ay\n1\nay", "output": "YES" }, { "input": "yo\n1\nyo", "output": "YES" }, { "input": "ba\n1\nba", "output": "YES" }, { "input": "qw\n1\nqw", "output": "YES" }, { "input": "la\n1\nla", "output": "YES" }, { "input": "ab\n2\nbb\nbc", "output": "NO" }, { "input": "aa\n2\nab\nac", "output": "NO" }, { "input": "ah\n2\nbb\nha", "output": "YES" }, { "input": "ya\n42\nab\nac\nad\nae\naf\nag\nah\nai\nak\naj\nba\nbc\nbd\nbe\nbf\nbg\nbh\nbi\nbk\nbj\ncb\nca\ncd\nce\ncf\ncg\nch\nci\nck\ncj\ndb\ndc\nda\nde\ndf\ndg\ndh\ndi\ndk\ndj\nef\nek", "output": "NO" }, { "input": "ab\n3\nab\nxx\nyy", "output": "YES" }, { "input": "ab\n2\nab\ncc", "output": "YES" }, { "input": "sa\n2\nxx\nas", "output": "YES" }, { "input": "ma\n1\nma", "output": "YES" }, { "input": "ba\n1\nbb", "output": "NO" }, { "input": "bc\n1\nab", "output": "NO" }, { "input": "fa\n1\nfa", "output": "YES" }, { "input": "ap\n1\nap", "output": "YES" }, { "input": "ab\n1\nbb", "output": "NO" }, { "input": "bk\n1\nbk", "output": "YES" }, { "input": "xy\n2\nxy\naa", "output": "YES" }, { "input": "ab\n2\nza\nbz", "output": "YES" } ]
1,631,633,143
2,147,483,647
PyPy 3
OK
TESTS
90
108
21,401,600
pwd = input() chk = [] for _ in range(int(input())): chk.append(input()) for a in chk: for b in chk: if pwd in a+b: print("Yes"); exit() print("No")
Title: Bark to Unlock Time Limit: None seconds Memory Limit: None megabytes Problem Description: As technologies develop, manufacturers are making the process of unlocking a phone as user-friendly as possible. To unlock its new phone, Arkady's pet dog Mu-mu has to bark the password once. The phone represents a password as a string of two lowercase English letters. Mu-mu's enemy Kashtanka wants to unlock Mu-mu's phone to steal some sensible information, but it can only bark *n* distinct words, each of which can be represented as a string of two lowercase English letters. Kashtanka wants to bark several words (not necessarily distinct) one after another to pronounce a string containing the password as a substring. Tell if it's possible to unlock the phone in this way, or not. Input Specification: The first line contains two lowercase English letters — the password on the phone. The second line contains single integer *n* (1<=≤<=*n*<=≤<=100) — the number of words Kashtanka knows. The next *n* lines contain two lowercase English letters each, representing the words Kashtanka knows. The words are guaranteed to be distinct. Output Specification: Print "YES" if Kashtanka can bark several words in a line forming a string containing the password, and "NO" otherwise. You can print each letter in arbitrary case (upper or lower). Demo Input: ['ya\n4\nah\noy\nto\nha\n', 'hp\n2\nht\ntp\n', 'ah\n1\nha\n'] Demo Output: ['YES\n', 'NO\n', 'YES\n'] Note: In the first example the password is "ya", and Kashtanka can bark "oy" and then "ah", and then "ha" to form the string "oyahha" which contains the password. So, the answer is "YES". In the second example Kashtanka can't produce a string containing password as a substring. Note that it can bark "ht" and then "tp" producing "http", but it doesn't contain the password "hp" as a substring. In the third example the string "hahahaha" contains "ah" as a substring.
```python pwd = input() chk = [] for _ in range(int(input())): chk.append(input()) for a in chk: for b in chk: if pwd in a+b: print("Yes"); exit() print("No") ```
3
343
B
Alternating Current
PROGRAMMING
1,600
[ "data structures", "greedy", "implementation" ]
null
null
Mad scientist Mike has just finished constructing a new device to search for extraterrestrial intelligence! He was in such a hurry to launch it for the first time that he plugged in the power wires without giving it a proper glance and started experimenting right away. After a while Mike observed that the wires ended up entangled and now have to be untangled again. The device is powered by two wires "plus" and "minus". The wires run along the floor from the wall (on the left) to the device (on the right). Both the wall and the device have two contacts in them on the same level, into which the wires are plugged in some order. The wires are considered entangled if there are one or more places where one wire runs above the other one. For example, the picture below has four such places (top view): Mike knows the sequence in which the wires run above each other. Mike also noticed that on the left side, the "plus" wire is always plugged into the top contact (as seen on the picture). He would like to untangle the wires without unplugging them and without moving the device. Determine if it is possible to do that. A wire can be freely moved and stretched on the floor, but cannot be cut. To understand the problem better please read the notes to the test samples.
The single line of the input contains a sequence of characters "+" and "-" of length *n* (1<=≤<=*n*<=≤<=100000). The *i*-th (1<=≤<=*i*<=≤<=*n*) position of the sequence contains the character "+", if on the *i*-th step from the wall the "plus" wire runs above the "minus" wire, and the character "-" otherwise.
Print either "Yes" (without the quotes) if the wires can be untangled or "No" (without the quotes) if the wires cannot be untangled.
[ "-++-\n", "+-\n", "++\n", "-\n" ]
[ "Yes\n", "No\n", "Yes\n", "No\n" ]
The first testcase corresponds to the picture in the statement. To untangle the wires, one can first move the "plus" wire lower, thus eliminating the two crosses in the middle, and then draw it under the "minus" wire, eliminating also the remaining two crosses. In the second testcase the "plus" wire makes one full revolution around the "minus" wire. Thus the wires cannot be untangled: In the third testcase the "plus" wire simply runs above the "minus" wire twice in sequence. The wires can be untangled by lifting "plus" and moving it higher: In the fourth testcase the "minus" wire runs above the "plus" wire once. The wires cannot be untangled without moving the device itself:
1,000
[ { "input": "-++-", "output": "Yes" }, { "input": "+-", "output": "No" }, { "input": "++", "output": "Yes" }, { "input": "-", "output": "No" }, { "input": "+-+-", "output": "No" }, { "input": "-+-", "output": "No" }, { "input": "-++-+--+", "output": "Yes" }, { "input": "+", "output": "No" }, { "input": "-+", "output": "No" }, { "input": "--", "output": "Yes" }, { "input": "+++", "output": "No" }, { "input": "--+", "output": "No" }, { "input": "++--++", "output": "Yes" }, { "input": "+-++-+", "output": "Yes" }, { "input": "+-+--+", "output": "No" }, { "input": "--++-+", "output": "No" }, { "input": "-+-+--", "output": "No" }, { "input": "+-+++-", "output": "No" }, { "input": "-+-+-+", "output": "No" }, { "input": "-++-+--++--+-++-", "output": "Yes" }, { "input": "+-----+-++---+------+++-++++", "output": "No" }, { "input": "-+-++--+++-++++---+--+----+--+-+-+++-+++-+---++-++++-+--+--+--+-+-++-+-+-++++++---++--+++++-+--++--+-+--++-----+--+-++---+++---++----+++-++++--++-++-", "output": "No" }, { "input": "-+-----++++--++-+-++", "output": "Yes" }, { "input": "+--+--+------+++++++-+-+++--++---+--+-+---+--+++-+++-------+++++-+-++++--+-+-+++++++----+----+++----+-+++-+++-----+++-+-++-+-+++++-+--++----+--+-++-----+-+-++++---+++---+-+-+-++++--+--+++---+++++-+---+-----+++-++--+++---++-++-+-+++-+-+-+---+++--+--++++-+-+--++-------+--+---++-----+++--+-+++--++-+-+++-++--+++-++++++++++-++-++++++-+++--+--++-+++--+++-++++----+++---+-+----++++-+-+", "output": "Yes" }, { "input": "-+-+-++-+-+-", "output": "Yes" }, { "input": "-+-++-+-", "output": "Yes" }, { "input": "-+-++-+-+-", "output": "No" }, { "input": "++-+-+-+-+--+", "output": "No" }, { "input": "+++---", "output": "No" }, { "input": "+-+-+-+-+--+-+-+-+-++--++--+", "output": "Yes" }, { "input": "+-+-++", "output": "No" }, { "input": "-++--+--+++-+-+-+-+-", "output": "No" }, { "input": "+---+-+-", "output": "No" }, { "input": "+-+--+-+", "output": "Yes" }, { "input": "+++---+++---", "output": "No" }, { "input": "-+++++", "output": "No" }, { "input": "-+-+-+-+-+-+-++-+-+-+-+-+-+-", "output": "Yes" }, { "input": "-+++--", "output": "No" }, { "input": "+---+", "output": "No" }, { "input": "-++", "output": "No" }, { "input": "-+--+-", "output": "Yes" }, { "input": "+---++--++", "output": "No" }, { "input": "+++-", "output": "No" }, { "input": "--+++", "output": "No" }, { "input": "++-+", "output": "No" } ]
1,617,722,047
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
122
0
def valid(s): if len(s)%2==0 and len(s)>2: if s==s[::-1]: return True else: ss = s.replace("+", "0").replace("-", "+").replace("0", "-") if s[len(s)//2:]==ss[:len(s)//2]: return True return False s = input() print("YES") if valid(s) else print("NO")
Title: Alternating Current Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mad scientist Mike has just finished constructing a new device to search for extraterrestrial intelligence! He was in such a hurry to launch it for the first time that he plugged in the power wires without giving it a proper glance and started experimenting right away. After a while Mike observed that the wires ended up entangled and now have to be untangled again. The device is powered by two wires "plus" and "minus". The wires run along the floor from the wall (on the left) to the device (on the right). Both the wall and the device have two contacts in them on the same level, into which the wires are plugged in some order. The wires are considered entangled if there are one or more places where one wire runs above the other one. For example, the picture below has four such places (top view): Mike knows the sequence in which the wires run above each other. Mike also noticed that on the left side, the "plus" wire is always plugged into the top contact (as seen on the picture). He would like to untangle the wires without unplugging them and without moving the device. Determine if it is possible to do that. A wire can be freely moved and stretched on the floor, but cannot be cut. To understand the problem better please read the notes to the test samples. Input Specification: The single line of the input contains a sequence of characters "+" and "-" of length *n* (1<=≤<=*n*<=≤<=100000). The *i*-th (1<=≤<=*i*<=≤<=*n*) position of the sequence contains the character "+", if on the *i*-th step from the wall the "plus" wire runs above the "minus" wire, and the character "-" otherwise. Output Specification: Print either "Yes" (without the quotes) if the wires can be untangled or "No" (without the quotes) if the wires cannot be untangled. Demo Input: ['-++-\n', '+-\n', '++\n', '-\n'] Demo Output: ['Yes\n', 'No\n', 'Yes\n', 'No\n'] Note: The first testcase corresponds to the picture in the statement. To untangle the wires, one can first move the "plus" wire lower, thus eliminating the two crosses in the middle, and then draw it under the "minus" wire, eliminating also the remaining two crosses. In the second testcase the "plus" wire makes one full revolution around the "minus" wire. Thus the wires cannot be untangled: In the third testcase the "plus" wire simply runs above the "minus" wire twice in sequence. The wires can be untangled by lifting "plus" and moving it higher: In the fourth testcase the "minus" wire runs above the "plus" wire once. The wires cannot be untangled without moving the device itself:
```python def valid(s): if len(s)%2==0 and len(s)>2: if s==s[::-1]: return True else: ss = s.replace("+", "0").replace("-", "+").replace("0", "-") if s[len(s)//2:]==ss[:len(s)//2]: return True return False s = input() print("YES") if valid(s) else print("NO") ```
0
50
A
Domino piling
PROGRAMMING
800
[ "greedy", "math" ]
A. Domino piling
2
256
You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions.
In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16).
Output one number — the maximal number of dominoes, which can be placed.
[ "2 4\n", "3 3\n" ]
[ "4\n", "4\n" ]
none
500
[ { "input": "2 4", "output": "4" }, { "input": "3 3", "output": "4" }, { "input": "1 5", "output": "2" }, { "input": "1 6", "output": "3" }, { "input": "1 15", "output": "7" }, { "input": "1 16", "output": "8" }, { "input": "2 5", "output": "5" }, { "input": "2 6", "output": "6" }, { "input": "2 7", "output": "7" }, { "input": "2 14", "output": "14" }, { "input": "2 15", "output": "15" }, { "input": "1 4", "output": "2" }, { "input": "2 16", "output": "16" }, { "input": "3 5", "output": "7" }, { "input": "3 6", "output": "9" }, { "input": "3 10", "output": "15" }, { "input": "3 14", "output": "21" }, { "input": "3 15", "output": "22" }, { "input": "3 16", "output": "24" }, { "input": "5 7", "output": "17" }, { "input": "16 16", "output": "128" }, { "input": "15 16", "output": "120" }, { "input": "2 3", "output": "3" }, { "input": "15 15", "output": "112" }, { "input": "14 16", "output": "112" }, { "input": "11 13", "output": "71" }, { "input": "5 16", "output": "40" }, { "input": "8 15", "output": "60" }, { "input": "2 2", "output": "2" }, { "input": "3 4", "output": "6" }, { "input": "4 4", "output": "8" }, { "input": "1 1", "output": "0" }, { "input": "1 2", "output": "1" }, { "input": "1 3", "output": "1" }, { "input": "14 15", "output": "105" } ]
1,611,809,397
2,147,483,647
Python 3
OK
TESTS
35
124
0
dom=2 num=list(map(int,input().split(' '))) ar=num[0]*num[1] sum=0 c=0 while True: sum=sum+dom if sum<=ar: c+=1 else: break print(c)
Title: Domino piling Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions. Input Specification: In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16). Output Specification: Output one number — the maximal number of dominoes, which can be placed. Demo Input: ['2 4\n', '3 3\n'] Demo Output: ['4\n', '4\n'] Note: none
```python dom=2 num=list(map(int,input().split(' '))) ar=num[0]*num[1] sum=0 c=0 while True: sum=sum+dom if sum<=ar: c+=1 else: break print(c) ```
3.969
979
A
Pizza, Pizza, Pizza!!!
PROGRAMMING
1,000
[ "math" ]
null
null
Katie, Kuro and Shiro are best friends. They have known each other since kindergarten. That's why they often share everything with each other and work together on some very hard problems. Today is Shiro's birthday. She really loves pizza so she wants to invite her friends to the pizza restaurant near her house to celebrate her birthday, including her best friends Katie and Kuro. She has ordered a very big round pizza, in order to serve her many friends. Exactly $n$ of Shiro's friends are here. That's why she has to divide the pizza into $n + 1$ slices (Shiro also needs to eat). She wants the slices to be exactly the same size and shape. If not, some of her friends will get mad and go home early, and the party will be over. Shiro is now hungry. She wants to cut the pizza with minimum of straight cuts. A cut is a straight segment, it might have ends inside or outside the pizza. But she is too lazy to pick up the calculator. As usual, she will ask Katie and Kuro for help. But they haven't come yet. Could you help Shiro with this problem?
A single line contains one non-negative integer $n$ ($0 \le n \leq 10^{18}$) — the number of Shiro's friends. The circular pizza has to be sliced into $n + 1$ pieces.
A single integer — the number of straight cuts Shiro needs.
[ "3\n", "4\n" ]
[ "2", "5" ]
To cut the round pizza into quarters one has to make two cuts through the center with angle $90^{\circ}$ between them. To cut the round pizza into five equal parts one has to make five cuts.
500
[ { "input": "3", "output": "2" }, { "input": "4", "output": "5" }, { "input": "10", "output": "11" }, { "input": "10000000000", "output": "10000000001" }, { "input": "1234567891", "output": "617283946" }, { "input": "7509213957", "output": "3754606979" }, { "input": "99999999999999999", "output": "50000000000000000" }, { "input": "21", "output": "11" }, { "input": "712394453192", "output": "712394453193" }, { "input": "172212168", "output": "172212169" }, { "input": "822981260158260519", "output": "411490630079130260" }, { "input": "28316250877914571", "output": "14158125438957286" }, { "input": "779547116602436424", "output": "779547116602436425" }, { "input": "578223540024979436", "output": "578223540024979437" }, { "input": "335408917861648766", "output": "335408917861648767" }, { "input": "74859962623690078", "output": "74859962623690079" }, { "input": "252509054433933439", "output": "126254527216966720" }, { "input": "760713016476190622", "output": "760713016476190623" }, { "input": "919845426262703496", "output": "919845426262703497" }, { "input": "585335723211047194", "output": "585335723211047195" }, { "input": "522842184971407769", "output": "261421092485703885" }, { "input": "148049062628894320", "output": "148049062628894321" }, { "input": "84324828731963974", "output": "84324828731963975" }, { "input": "354979173822804781", "output": "177489586911402391" }, { "input": "1312150450968413", "output": "656075225484207" }, { "input": "269587449430302150", "output": "269587449430302151" }, { "input": "645762258982631926", "output": "645762258982631927" }, { "input": "615812229161735895", "output": "307906114580867948" }, { "input": "0", "output": "0" }, { "input": "349993004923078531", "output": "174996502461539266" }, { "input": "891351282707723851", "output": "445675641353861926" }, { "input": "563324731189330734", "output": "563324731189330735" }, { "input": "520974001910286909", "output": "260487000955143455" }, { "input": "666729339802329204", "output": "666729339802329205" }, { "input": "856674611404539671", "output": "428337305702269836" }, { "input": "791809296303238499", "output": "395904648151619250" }, { "input": "711066337317063338", "output": "711066337317063339" }, { "input": "931356503492686566", "output": "931356503492686567" }, { "input": "234122432773361866", "output": "234122432773361867" }, { "input": "1000000000000000000", "output": "1000000000000000001" }, { "input": "1", "output": "1" }, { "input": "2", "output": "3" }, { "input": "7", "output": "4" }, { "input": "63", "output": "32" }, { "input": "24", "output": "25" }, { "input": "8", "output": "9" }, { "input": "15", "output": "8" } ]
1,619,264,086
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
28
62
0
n=int(input()) print(n//2+1if n%2else n+1)
Title: Pizza, Pizza, Pizza!!! Time Limit: None seconds Memory Limit: None megabytes Problem Description: Katie, Kuro and Shiro are best friends. They have known each other since kindergarten. That's why they often share everything with each other and work together on some very hard problems. Today is Shiro's birthday. She really loves pizza so she wants to invite her friends to the pizza restaurant near her house to celebrate her birthday, including her best friends Katie and Kuro. She has ordered a very big round pizza, in order to serve her many friends. Exactly $n$ of Shiro's friends are here. That's why she has to divide the pizza into $n + 1$ slices (Shiro also needs to eat). She wants the slices to be exactly the same size and shape. If not, some of her friends will get mad and go home early, and the party will be over. Shiro is now hungry. She wants to cut the pizza with minimum of straight cuts. A cut is a straight segment, it might have ends inside or outside the pizza. But she is too lazy to pick up the calculator. As usual, she will ask Katie and Kuro for help. But they haven't come yet. Could you help Shiro with this problem? Input Specification: A single line contains one non-negative integer $n$ ($0 \le n \leq 10^{18}$) — the number of Shiro's friends. The circular pizza has to be sliced into $n + 1$ pieces. Output Specification: A single integer — the number of straight cuts Shiro needs. Demo Input: ['3\n', '4\n'] Demo Output: ['2', '5'] Note: To cut the round pizza into quarters one has to make two cuts through the center with angle $90^{\circ}$ between them. To cut the round pizza into five equal parts one has to make five cuts.
```python n=int(input()) print(n//2+1if n%2else n+1) ```
0
21
C
Stripe 2
PROGRAMMING
2,000
[ "binary search", "dp", "sortings" ]
C. Stripe 2
1
64
Once Bob took a paper stripe of n squares (the height of the stripe is 1 square). In each square he wrote an integer number, possibly negative. He became interested in how many ways exist to cut this stripe into three pieces so that the sum of numbers from each piece is equal to the sum of numbers from any other piece, and each piece contains positive integer amount of squares. Would you help Bob solve this problem?
The first input line contains integer *n* (1<=≤<=*n*<=≤<=105) — amount of squares in the stripe. The second line contains n space-separated numbers — they are the numbers written in the squares of the stripe. These numbers are integer and do not exceed 10000 in absolute value.
Output the amount of ways to cut the stripe into three non-empty pieces so that the sum of numbers from each piece is equal to the sum of numbers from any other piece. Don't forget that it's allowed to cut the stripe along the squares' borders only.
[ "4\n1 2 3 3\n", "5\n1 2 3 4 5\n" ]
[ "1\n", "0\n" ]
none
1,500
[ { "input": "1\n-3", "output": "0" }, { "input": "2\n0 0", "output": "0" }, { "input": "3\n0 0 0", "output": "1" }, { "input": "4\n-2 3 3 2", "output": "0" }, { "input": "5\n-6 3 -1 2 -7", "output": "0" }, { "input": "6\n2 3 -3 0 -3 1", "output": "0" }, { "input": "7\n-1 1 -3 4 3 0 2", "output": "0" }, { "input": "8\n2 0 0 2 -1 3 4 5", "output": "0" }, { "input": "9\n-5 -2 1 1 5 0 -4 4 0", "output": "3" }, { "input": "10\n-1 5 2 3 1 5 0 2 2 5", "output": "0" }, { "input": "100\n3 0 -5 2 -3 -1 -1 0 -2 -5 -4 2 1 2 -2 -1 -1 -4 3 -1 -3 -1 5 0 -4 -4 -1 0 -2 -2 0 1 -1 -2 -1 -5 -4 -2 3 1 -3 0 -1 1 0 -1 2 0 -2 -1 -3 1 -2 2 3 2 -3 -5 2 2 -2 -2 1 2 -2 -1 3 0 -4 7 -2 2 1 4 -9 -1 -2 -1 0 -1 0 -2 -2 -1 1 1 -4 2 -3 -3 7 1 1 -3 -7 0 -2 0 5 -2", "output": "5" } ]
1,692,214,894
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
31
0
def ways_to_cut_strip(nums): total_sum = sum(nums) if total_sum % 3 != 0: return 0 target = total_sum // 3 dp = [0] * 3 prefix_sum = 0 count = 0 for num in nums[:-1]: prefix_sum += num if prefix_sum == target * 2: count += dp[0] if prefix_sum == target: dp[0] += 1 if prefix_sum == target * 2: dp[1] += dp[0] if prefix_sum == target * 3: count += dp[1] return count n = int(input()) arr = [int(elem) for elem in input().split()] # nums = [1, 2, 3, 4, 5] result = ways_to_cut_strip(nums) print(result)
Title: Stripe 2 Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: Once Bob took a paper stripe of n squares (the height of the stripe is 1 square). In each square he wrote an integer number, possibly negative. He became interested in how many ways exist to cut this stripe into three pieces so that the sum of numbers from each piece is equal to the sum of numbers from any other piece, and each piece contains positive integer amount of squares. Would you help Bob solve this problem? Input Specification: The first input line contains integer *n* (1<=≤<=*n*<=≤<=105) — amount of squares in the stripe. The second line contains n space-separated numbers — they are the numbers written in the squares of the stripe. These numbers are integer and do not exceed 10000 in absolute value. Output Specification: Output the amount of ways to cut the stripe into three non-empty pieces so that the sum of numbers from each piece is equal to the sum of numbers from any other piece. Don't forget that it's allowed to cut the stripe along the squares' borders only. Demo Input: ['4\n1 2 3 3\n', '5\n1 2 3 4 5\n'] Demo Output: ['1\n', '0\n'] Note: none
```python def ways_to_cut_strip(nums): total_sum = sum(nums) if total_sum % 3 != 0: return 0 target = total_sum // 3 dp = [0] * 3 prefix_sum = 0 count = 0 for num in nums[:-1]: prefix_sum += num if prefix_sum == target * 2: count += dp[0] if prefix_sum == target: dp[0] += 1 if prefix_sum == target * 2: dp[1] += dp[0] if prefix_sum == target * 3: count += dp[1] return count n = int(input()) arr = [int(elem) for elem in input().split()] # nums = [1, 2, 3, 4, 5] result = ways_to_cut_strip(nums) print(result) ```
-1
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" } ]
1,698,963,370
2,147,483,647
PyPy 3
OK
TESTS
106
310
3,276,800
n = int(input()) ranks = [None for i in range(n)] boss = [int(input()) for i in range(n)] for i in range(0, n): if ranks[i] != None: continue stack = [i] while stack: last = stack[-1] b = boss[last] if b == -1: ranks[last] = 1 stack.pop() elif ranks[b - 1] != None: ranks[last] = ranks[b - 1] + 1 stack.pop() else: stack.append(b - 1) ans = max(ranks) print(ans)
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()) ranks = [None for i in range(n)] boss = [int(input()) for i in range(n)] for i in range(0, n): if ranks[i] != None: continue stack = [i] while stack: last = stack[-1] b = boss[last] if b == -1: ranks[last] = 1 stack.pop() elif ranks[b - 1] != None: ranks[last] = ranks[b - 1] + 1 stack.pop() else: stack.append(b - 1) ans = max(ranks) print(ans) ```
3
180
C
Letter
PROGRAMMING
1,400
[ "dp" ]
null
null
Patrick has just finished writing a message to his sweetheart Stacey when he noticed that the message didn't look fancy. Patrick was nervous while writing the message, so some of the letters there were lowercase and some of them were uppercase. Patrick believes that a message is fancy if any uppercase letter stands to the left of any lowercase one. In other words, this rule describes the strings where first go zero or more uppercase letters, and then — zero or more lowercase letters. To make the message fancy, Patrick can erase some letter and add the same letter in the same place in the opposite case (that is, he can replace an uppercase letter with the lowercase one and vice versa). Patrick got interested in the following question: what minimum number of actions do we need to make a message fancy? Changing a letter's case in the message counts as one action. Patrick cannot perform any other actions.
The only line of the input contains a non-empty string consisting of uppercase and lowercase letters. The string's length does not exceed 105.
Print a single number — the least number of actions needed to make the message fancy.
[ "PRuvetSTAaYA\n", "OYPROSTIYAOPECHATALSYAPRIVETSTASYA\n", "helloworld\n" ]
[ "5\n", "0\n", "0\n" ]
none
0
[ { "input": "PRuvetSTAaYA", "output": "5" }, { "input": "OYPROSTIYAOPECHATALSYAPRIVETSTASYA", "output": "0" }, { "input": "helloworld", "output": "0" }, { "input": "P", "output": "0" }, { "input": "t", "output": "0" }, { "input": "XdJ", "output": "1" }, { "input": "FSFlNEelYY", "output": "3" }, { "input": "lgtyasficu", "output": "0" }, { "input": "WYKUDTDDBT", "output": "0" }, { "input": "yysxwlyqboatikfnpxczmpijziiojbvadlfozjqldssffcxdegyxfrvohoxvgsrvlzjlkcuffoeisrpvagxtbkapkpzcafadzzjd", "output": "0" }, { "input": "mnAkOBuKxaiJwXhKnlcCvjxYXGXDoIqfUYkiLrdSYWhMemgWFzsgpoKOtHqooxbLYFuABWQSXuHdbyPVWyrkeEfqOsnEBikiqhfu", "output": "43" }, { "input": "MMVESdOCALHJCTBTUWWQRGUUVTTTABKKAAdIINAdKLRLLVLODHDXDPMcQfUhPNHFBJSDRGsHZNORSCPNvKOOIuZnZAmTPUCoPNlR", "output": "13" }, { "input": "MMbJIBhgFXPVpdQHLkWJkAHFIfJSpITTCRzRCzvRPRYECCheOknfINZWuKATDBOrEVKTcWXiYPjtzQMGUSGPNTMCUrvYCSWQHqAi", "output": "27" }, { "input": "ZnqXEBOABXVbHRFFqDLWpWBBLqZIagmbRAYMDKJAYyFQXnPYwvDyRXKHLQnMLHGEOnRKmXtGqyQkoBCSmgKPcEIEugwJyxDOtTVn", "output": "31" } ]
1,604,408,634
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
186
307,200
s=input() n=len(s) i=0 while(i<n and s[i]>='A' and s[i]<='Z'): i+=1 j=n while(j>=0 and s[i]>='a' and s[i]<='z'): j-=1 s=s[i:j] l=0 for i in s: if(i>='a' and i<='z'): l+=1 a=len(s) #print(l,a) print(min(a-l,l))
Title: Letter Time Limit: None seconds Memory Limit: None megabytes Problem Description: Patrick has just finished writing a message to his sweetheart Stacey when he noticed that the message didn't look fancy. Patrick was nervous while writing the message, so some of the letters there were lowercase and some of them were uppercase. Patrick believes that a message is fancy if any uppercase letter stands to the left of any lowercase one. In other words, this rule describes the strings where first go zero or more uppercase letters, and then — zero or more lowercase letters. To make the message fancy, Patrick can erase some letter and add the same letter in the same place in the opposite case (that is, he can replace an uppercase letter with the lowercase one and vice versa). Patrick got interested in the following question: what minimum number of actions do we need to make a message fancy? Changing a letter's case in the message counts as one action. Patrick cannot perform any other actions. Input Specification: The only line of the input contains a non-empty string consisting of uppercase and lowercase letters. The string's length does not exceed 105. Output Specification: Print a single number — the least number of actions needed to make the message fancy. Demo Input: ['PRuvetSTAaYA\n', 'OYPROSTIYAOPECHATALSYAPRIVETSTASYA\n', 'helloworld\n'] Demo Output: ['5\n', '0\n', '0\n'] Note: none
```python s=input() n=len(s) i=0 while(i<n and s[i]>='A' and s[i]<='Z'): i+=1 j=n while(j>=0 and s[i]>='a' and s[i]<='z'): j-=1 s=s[i:j] l=0 for i in s: if(i>='a' and i<='z'): l+=1 a=len(s) #print(l,a) print(min(a-l,l)) ```
0
337
A
Puzzles
PROGRAMMING
900
[ "greedy" ]
null
null
The end of the school year is near and Ms. Manana, the teacher, will soon have to say goodbye to a yet another class. She decided to prepare a goodbye present for her *n* students and give each of them a jigsaw puzzle (which, as wikipedia states, is a tiling puzzle that requires the assembly of numerous small, often oddly shaped, interlocking and tessellating pieces). The shop assistant told the teacher that there are *m* puzzles in the shop, but they might differ in difficulty and size. Specifically, the first jigsaw puzzle consists of *f*1 pieces, the second one consists of *f*2 pieces and so on. Ms. Manana doesn't want to upset the children, so she decided that the difference between the numbers of pieces in her presents must be as small as possible. Let *A* be the number of pieces in the largest puzzle that the teacher buys and *B* be the number of pieces in the smallest such puzzle. She wants to choose such *n* puzzles that *A*<=-<=*B* is minimum possible. Help the teacher and find the least possible value of *A*<=-<=*B*.
The first line contains space-separated integers *n* and *m* (2<=≤<=*n*<=≤<=*m*<=≤<=50). The second line contains *m* space-separated integers *f*1,<=*f*2,<=...,<=*f**m* (4<=≤<=*f**i*<=≤<=1000) — the quantities of pieces in the puzzles sold in the shop.
Print a single integer — the least possible difference the teacher can obtain.
[ "4 6\n10 12 10 7 5 22\n" ]
[ "5\n" ]
Sample 1. The class has 4 students. The shop sells 6 puzzles. If Ms. Manana buys the first four puzzles consisting of 10, 12, 10 and 7 pieces correspondingly, then the difference between the sizes of the largest and the smallest puzzle will be equal to 5. It is impossible to obtain a smaller difference. Note that the teacher can also buy puzzles 1, 3, 4 and 5 to obtain the difference 5.
500
[ { "input": "4 6\n10 12 10 7 5 22", "output": "5" }, { "input": "2 2\n4 4", "output": "0" }, { "input": "2 10\n4 5 6 7 8 9 10 11 12 12", "output": "0" }, { "input": "4 5\n818 136 713 59 946", "output": "759" }, { "input": "3 20\n446 852 783 313 549 965 40 88 86 617 479 118 768 34 47 826 366 957 463 903", "output": "13" }, { "input": "2 25\n782 633 152 416 432 825 115 97 386 357 836 310 530 413 354 373 847 882 913 682 729 582 671 674 94", "output": "3" }, { "input": "4 25\n226 790 628 528 114 64 239 279 619 39 894 763 763 847 525 93 882 697 999 643 650 244 159 884 190", "output": "31" }, { "input": "2 50\n971 889 628 39 253 157 925 694 129 516 660 272 738 319 611 816 142 717 514 392 41 105 132 676 958 118 306 768 600 685 103 857 704 346 857 309 23 718 618 161 176 379 846 834 640 468 952 878 164 997", "output": "0" }, { "input": "25 50\n582 146 750 905 313 509 402 21 488 512 32 898 282 64 579 869 37 996 377 929 975 697 666 837 311 205 116 992 533 298 648 268 54 479 792 595 152 69 267 417 184 433 894 603 988 712 24 414 301 176", "output": "412" }, { "input": "49 50\n58 820 826 960 271 294 473 102 925 318 729 672 244 914 796 646 868 6 893 882 726 203 528 498 271 195 355 459 721 680 547 147 631 116 169 804 145 996 133 559 110 257 771 476 576 251 607 314 427 886", "output": "938" }, { "input": "50 50\n374 573 323 744 190 806 485 247 628 336 491 606 702 321 991 678 337 579 86 240 993 208 668 686 855 205 363 177 719 249 896 919 782 434 59 647 787 996 286 216 636 212 546 903 958 559 544 126 608 993", "output": "937" }, { "input": "6 50\n6 8 7 8 5 4 4 5 7 8 6 5 7 4 7 7 7 8 6 4 6 6 8 8 7 7 8 7 5 8 5 4 4 7 8 4 4 6 6 6 8 7 4 7 6 6 5 8 4 7", "output": "0" }, { "input": "37 50\n14 5 11 17 8 20 19 16 20 11 17 20 16 9 14 14 13 18 11 20 8 8 8 5 19 17 6 18 10 20 9 7 12 6 14 17 4 4 10 13 7 4 11 6 20 19 12 12 15 19", "output": "12" }, { "input": "40 50\n4 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 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4", "output": "0" }, { "input": "40 50\n17 20 43 26 41 37 14 8 30 35 30 24 43 8 42 9 41 50 41 35 27 32 35 43 28 36 31 16 5 7 23 16 14 29 8 39 12 16 36 18 49 39 33 37 38 6 6 27 23 17", "output": "31" }, { "input": "2 2\n1000 4", "output": "996" }, { "input": "2 3\n4 502 1000", "output": "498" }, { "input": "3 3\n4 1000 4", "output": "996" } ]
1,696,628,802
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
6
62
0
a = list(map(int,input().split()))[0] b = list(map(int,input().split())) c = sorted(b)[0:a] d = sorted(b)[-a:] print(c[-1]-c[0]) if c[-1]-c[0] < d[-1]-d[0] else print(d[-1]-d[0])
Title: Puzzles Time Limit: None seconds Memory Limit: None megabytes Problem Description: The end of the school year is near and Ms. Manana, the teacher, will soon have to say goodbye to a yet another class. She decided to prepare a goodbye present for her *n* students and give each of them a jigsaw puzzle (which, as wikipedia states, is a tiling puzzle that requires the assembly of numerous small, often oddly shaped, interlocking and tessellating pieces). The shop assistant told the teacher that there are *m* puzzles in the shop, but they might differ in difficulty and size. Specifically, the first jigsaw puzzle consists of *f*1 pieces, the second one consists of *f*2 pieces and so on. Ms. Manana doesn't want to upset the children, so she decided that the difference between the numbers of pieces in her presents must be as small as possible. Let *A* be the number of pieces in the largest puzzle that the teacher buys and *B* be the number of pieces in the smallest such puzzle. She wants to choose such *n* puzzles that *A*<=-<=*B* is minimum possible. Help the teacher and find the least possible value of *A*<=-<=*B*. Input Specification: The first line contains space-separated integers *n* and *m* (2<=≤<=*n*<=≤<=*m*<=≤<=50). The second line contains *m* space-separated integers *f*1,<=*f*2,<=...,<=*f**m* (4<=≤<=*f**i*<=≤<=1000) — the quantities of pieces in the puzzles sold in the shop. Output Specification: Print a single integer — the least possible difference the teacher can obtain. Demo Input: ['4 6\n10 12 10 7 5 22\n'] Demo Output: ['5\n'] Note: Sample 1. The class has 4 students. The shop sells 6 puzzles. If Ms. Manana buys the first four puzzles consisting of 10, 12, 10 and 7 pieces correspondingly, then the difference between the sizes of the largest and the smallest puzzle will be equal to 5. It is impossible to obtain a smaller difference. Note that the teacher can also buy puzzles 1, 3, 4 and 5 to obtain the difference 5.
```python a = list(map(int,input().split()))[0] b = list(map(int,input().split())) c = sorted(b)[0:a] d = sorted(b)[-a:] print(c[-1]-c[0]) if c[-1]-c[0] < d[-1]-d[0] else print(d[-1]-d[0]) ```
0
664
A
Complicated GCD
PROGRAMMING
800
[ "math", "number theory" ]
null
null
Greatest common divisor *GCD*(*a*,<=*b*) of two positive integers *a* and *b* is equal to the biggest integer *d* such that both integers *a* and *b* are divisible by *d*. There are many efficient algorithms to find greatest common divisor *GCD*(*a*,<=*b*), for example, Euclid algorithm. Formally, find the biggest integer *d*, such that all integers *a*,<=*a*<=+<=1,<=*a*<=+<=2,<=...,<=*b* are divisible by *d*. To make the problem even more complicated we allow *a* and *b* to be up to googol, 10100 — such number do not fit even in 64-bit integer type!
The only line of the input contains two integers *a* and *b* (1<=≤<=*a*<=≤<=*b*<=≤<=10100).
Output one integer — greatest common divisor of all integers from *a* to *b* inclusive.
[ "1 2\n", "61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576\n" ]
[ "1\n", "61803398874989484820458683436563811772030917980576\n" ]
none
500
[ { "input": "1 2", "output": "1" }, { "input": "61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576", "output": "61803398874989484820458683436563811772030917980576" }, { "input": "1 100", "output": "1" }, { "input": "100 100000", "output": "1" }, { "input": "12345 67890123456789123457", "output": "1" }, { "input": "1 1", "output": "1" }, { "input": "2 2", "output": "2" }, { "input": "8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158 8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158", "output": "8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158" }, { "input": "1 10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000", "output": "1" }, { "input": "8328748239473982794239847237438782379810988324751 9328748239473982794239847237438782379810988324751", "output": "1" }, { "input": "1029398958432734901284327523909481928483573793 1029398958432734901284327523909481928483573794", "output": "1" }, { "input": "10000 1000000000", "output": "1" }, { "input": "10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000 10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000", "output": "10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000" }, { "input": "11210171722243 65715435710585778347", "output": "1" }, { "input": "2921881079263974825226940825843 767693191032295360887755303860323261471", "output": "1" }, { "input": "8025352957265704896940312528736939363590612908210603 96027920417708260814607687034511406492969694925539085", "output": "1" }, { "input": "23510978780782786207241069904470895053213996267165977112058175452757132930 210352653280909370107314249722987050753257161175393375412301228883856435481424", "output": "1" }, { "input": "8150070767079366215626260746398623663859344142817267779361251788637547414925170226504788118262 49924902262298336032630839998470954964895251605110946547855439236151401194070172107435992986913614", "output": "1" }, { "input": "15943150466658398903 15943150466658398903", "output": "15943150466658398903" }, { "input": "410470228200245407491525399055972 410470228200245407491525399055972", "output": "410470228200245407491525399055972" }, { "input": "51894705655711504622197349350106792045098781545973899451307 51894705655711504622197349350106792045098781545973899451307", "output": "51894705655711504622197349350106792045098781545973899451307" }, { "input": "60353594589897438036015726222485085035927634677598681595162804007836722215668410 60353594589897438036015726222485085035927634677598681595162804007836722215668410", "output": "60353594589897438036015726222485085035927634677598681595162804007836722215668410" }, { "input": "761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535 761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535", "output": "761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535" }, { "input": "1 2000000000", "output": "1" }, { "input": "13 1928834874", "output": "1" }, { "input": "87 2938984237482934238", "output": "1" }, { "input": "213 413", "output": "1" }, { "input": "3 4", "output": "1" } ]
1,681,737,405
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
3
77
0
a,b=map(str,input().split());print(a)
Title: Complicated GCD Time Limit: None seconds Memory Limit: None megabytes Problem Description: Greatest common divisor *GCD*(*a*,<=*b*) of two positive integers *a* and *b* is equal to the biggest integer *d* such that both integers *a* and *b* are divisible by *d*. There are many efficient algorithms to find greatest common divisor *GCD*(*a*,<=*b*), for example, Euclid algorithm. Formally, find the biggest integer *d*, such that all integers *a*,<=*a*<=+<=1,<=*a*<=+<=2,<=...,<=*b* are divisible by *d*. To make the problem even more complicated we allow *a* and *b* to be up to googol, 10100 — such number do not fit even in 64-bit integer type! Input Specification: The only line of the input contains two integers *a* and *b* (1<=≤<=*a*<=≤<=*b*<=≤<=10100). Output Specification: Output one integer — greatest common divisor of all integers from *a* to *b* inclusive. Demo Input: ['1 2\n', '61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576\n'] Demo Output: ['1\n', '61803398874989484820458683436563811772030917980576\n'] Note: none
```python a,b=map(str,input().split());print(a) ```
0
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 " } ]
1,693,481,810
2,147,483,647
Python 3
OK
TESTS
71
92
0
s=input() c=0 a="" if 'WUB' in s: s=s.replace('WUB',' ') print(s.strip())
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 s=input() c=0 a="" if 'WUB' in s: s=s.replace('WUB',' ') print(s.strip()) ```
3
271
A
Beautiful Year
PROGRAMMING
800
[ "brute force" ]
null
null
It seems like the year of 2013 came only yesterday. Do you know a curious fact? The year of 2013 is the first year after the old 1987 with only distinct digits. Now you are suggested to solve the following problem: given a year number, find the minimum year number which is strictly larger than the given one and has only distinct digits.
The single line contains integer *y* (1000<=≤<=*y*<=≤<=9000) — the year number.
Print a single integer — the minimum year number that is strictly larger than *y* and all it's digits are distinct. It is guaranteed that the answer exists.
[ "1987\n", "2013\n" ]
[ "2013\n", "2014\n" ]
none
500
[ { "input": "1987", "output": "2013" }, { "input": "2013", "output": "2014" }, { "input": "1000", "output": "1023" }, { "input": "1001", "output": "1023" }, { "input": "1234", "output": "1235" }, { "input": "5555", "output": "5601" }, { "input": "9000", "output": "9012" }, { "input": "1111", "output": "1203" }, { "input": "8999", "output": "9012" }, { "input": "4572", "output": "4573" }, { "input": "6666", "output": "6701" }, { "input": "2001", "output": "2013" }, { "input": "3000", "output": "3012" }, { "input": "7712", "output": "7801" }, { "input": "8088", "output": "8091" }, { "input": "1594", "output": "1596" }, { "input": "6016", "output": "6017" }, { "input": "8800", "output": "8901" }, { "input": "3331", "output": "3401" }, { "input": "5090", "output": "5091" }, { "input": "2342", "output": "2345" }, { "input": "2334", "output": "2340" }, { "input": "1123", "output": "1203" }, { "input": "8989", "output": "9012" }, { "input": "8977", "output": "9012" }, { "input": "6869", "output": "6870" }, { "input": "8999", "output": "9012" } ]
1,699,349,466
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
30
0
year = input() res_year = year + 1 is_find = False while not is_find: if len(set(str(res_year))) == 4: print(res_year) is_find = True else: res_year += 1
Title: Beautiful Year Time Limit: None seconds Memory Limit: None megabytes Problem Description: It seems like the year of 2013 came only yesterday. Do you know a curious fact? The year of 2013 is the first year after the old 1987 with only distinct digits. Now you are suggested to solve the following problem: given a year number, find the minimum year number which is strictly larger than the given one and has only distinct digits. Input Specification: The single line contains integer *y* (1000<=≤<=*y*<=≤<=9000) — the year number. Output Specification: Print a single integer — the minimum year number that is strictly larger than *y* and all it's digits are distinct. It is guaranteed that the answer exists. Demo Input: ['1987\n', '2013\n'] Demo Output: ['2013\n', '2014\n'] Note: none
```python year = input() res_year = year + 1 is_find = False while not is_find: if len(set(str(res_year))) == 4: print(res_year) is_find = True else: res_year += 1 ```
-1
624
B
Making a String
PROGRAMMING
1,100
[ "greedy", "sortings" ]
null
null
You are given an alphabet consisting of *n* letters, your task is to make a string of the maximum possible length so that the following conditions are satisfied: - the *i*-th letter occurs in the string no more than *a**i* times; - the number of occurrences of each letter in the string must be distinct for all the letters that occurred in the string at least once.
The first line of the input contains a single integer *n* (2<=<=≤<=<=*n*<=<=≤<=<=26) — the number of letters in the alphabet. The next line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — *i*-th of these integers gives the limitation on the number of occurrences of the *i*-th character in the string.
Print a single integer — the maximum length of the string that meets all the requirements.
[ "3\n2 5 5\n", "3\n1 1 2\n" ]
[ "11\n", "3\n" ]
For convenience let's consider an alphabet consisting of three letters: "a", "b", "c". In the first sample, some of the optimal strings are: "cccaabbccbb", "aabcbcbcbcb". In the second sample some of the optimal strings are: "acc", "cbc".
1,000
[ { "input": "3\n2 5 5", "output": "11" }, { "input": "3\n1 1 2", "output": "3" }, { "input": "2\n1 1", "output": "1" }, { "input": "3\n1 1000000000 2", "output": "1000000003" }, { "input": "26\n1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000", "output": "25999999675" }, { "input": "2\n559476582 796461544", "output": "1355938126" }, { "input": "2\n257775227 621811272", "output": "879586499" }, { "input": "10\n876938317 219479349 703839299 977218449 116819315 752405530 393874852 286326991 592978634 155758306", "output": "5075639042" }, { "input": "26\n72 49 87 47 94 96 36 91 43 11 19 83 36 38 10 93 95 81 4 96 60 38 97 37 36 41", "output": "1478" }, { "input": "26\n243 364 768 766 633 535 502 424 502 283 592 877 137 891 837 990 681 898 831 487 595 604 747 856 805 688", "output": "16535" }, { "input": "26\n775 517 406 364 548 951 680 984 466 141 960 513 660 849 152 250 176 601 199 370 971 554 141 224 724 543", "output": "13718" }, { "input": "26\n475 344 706 807 925 813 974 166 578 226 624 591 419 894 574 909 544 597 170 990 893 785 399 172 792 748", "output": "16115" }, { "input": "26\n130 396 985 226 487 671 188 706 106 649 38 525 210 133 298 418 953 431 577 69 12 982 264 373 283 266", "output": "10376" }, { "input": "26\n605 641 814 935 936 547 524 702 133 674 173 102 318 620 248 523 77 718 318 635 322 362 306 86 8 442", "output": "11768" }, { "input": "26\n220 675 725 888 725 654 546 806 379 182 604 667 734 394 889 731 572 193 850 651 844 734 163 671 820 887", "output": "16202" }, { "input": "26\n1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000", "output": "25675" }, { "input": "26\n1001 1001 1000 1000 1001 1000 1001 1001 1001 1000 1000 1001 1001 1000 1000 1000 1000 1001 1000 1001 1001 1000 1001 1001 1001 1000", "output": "25701" }, { "input": "26\n1000 1001 1000 1001 1000 1001 1001 1000 1001 1002 1002 1000 1001 1000 1000 1000 1001 1002 1001 1000 1000 1001 1000 1002 1001 1002", "output": "25727" }, { "input": "26\n1003 1002 1002 1003 1000 1000 1000 1003 1000 1001 1003 1003 1000 1002 1002 1002 1001 1003 1000 1001 1000 1001 1001 1000 1003 1003", "output": "25753" }, { "input": "26\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", "output": "1" }, { "input": "26\n8717 9417 1409 7205 3625 6247 8626 9486 464 4271 1698 8449 4551 1528 7456 9198 4886 2889 7534 506 7867 9410 1635 4955 2580 2580", "output": "137188" }, { "input": "26\n197464663 125058028 622449215 11119637 587496049 703992162 219591040 965159268 229879004 278894000 841629744 616893922 218779915 362575332 844188865 342411376 369680019 43823059 921419789 999588082 943769007 35365522 301907919 758302419 427454397 807507709", "output": "12776400142" }, { "input": "26\n907247856 970380443 957324066 929910532 947150618 944189007 998282297 988343406 981298600 943026596 953932265 972691398 950024048 923033790 996423650 972134755 946404759 918183059 902987271 965507679 906967700 982106487 933997242 972594441 977736332 928874832", "output": "24770753129" }, { "input": "26\n999999061 999999688 999999587 999999429 999999110 999999563 999999120 999999111 999999794 999999890 999999004 999999448 999999770 999999543 999999460 999999034 999999361 999999305 999999201 999999778 999999432 999999844 999999133 999999342 999999600 999999319", "output": "25999984927" }, { "input": "3\n587951561 282383259 612352726", "output": "1482687546" }, { "input": "4\n111637338 992238139 787658714 974622806", "output": "2866156997" }, { "input": "5\n694257603 528073418 726928894 596328666 652863391", "output": "3198451972" }, { "input": "6\n217943380 532900593 902234882 513005821 369342573 495810412", "output": "3031237661" }, { "input": "7\n446656860 478792281 77541870 429682977 85821755 826122363 563802405", "output": "2908420511" }, { "input": "8\n29278125 778590752 252847858 51388836 802299938 215370803 901540149 242074772", "output": "3273391233" }, { "input": "9\n552962902 724482439 133182550 673093696 518779120 604618242 534250189 847695567 403066553", "output": "4992131258" }, { "input": "10\n600386086 862479376 284190454 781950823 672077209 5753052 145701234 680334621 497013634 35429365", "output": "4565315854" }, { "input": "11\n183007351 103343359 164525146 698627979 388556391 926007595 483438978 580927711 659384363 201890880 920750904", "output": "5310460657" }, { "input": "12\n706692128 108170535 339831134 320333838 810063277 20284739 821176722 481520801 467848308 604388203 881959821 874133307", "output": "6436402813" }, { "input": "13\n525349200 54062222 810108418 237010994 821513756 409532178 158915465 87142595 630219037 770849718 843168738 617993222 504443485", "output": "6470309028" }, { "input": "14\n812998169 353860693 690443110 153688149 537992938 798779618 791624505 282706982 733654279 468319337 568341847 597888944 649703235 667623671", "output": "8107625477" }, { "input": "15\n336683946 299752380 865749098 775393009 959499824 893055762 365399057 419335880 896025008 575845364 529550764 341748859 30999793 464432689 19445239", "output": "7772916672" }, { "input": "16\n860368723 540615364 41056086 692070164 970950302 282304201 998108096 24957674 999460249 37279175 490759681 26673285 412295352 671298115 627182888 90740349", "output": "7766119704" }, { "input": "17\n148018692 545442539 980325266 313776023 687429485 376580345 40875544 925549764 161831978 144805202 451968598 475560904 262583806 468107133 60900936 281546097 912565045", "output": "7237867357" }, { "input": "18\n966674765 786305522 860659958 935480883 108937371 60800080 673584584 826142855 560238516 606238013 413177515 455456626 643879364 969943855 963609881 177380550 544192822 864797474", "output": "11417500634" }, { "input": "19\n490360541 496161402 330938242 852158038 120387849 686083328 247359135 431764649 427637949 8736336 843378328 435352349 494167818 766752874 161292122 368186298 470791896 813444279 170758124", "output": "8615711557" }, { "input": "20\n654616375 542649443 729213190 188364665 238384327 726353863 974350390 526804424 601329631 886592063 734805196 275562411 861801362 374466292 119830901 403120565 670982545 63210795 130397643 601611646", "output": "10304447727" }, { "input": "21\n942265343 252505322 904519178 810069524 954862509 115602302 548124942 132426218 999736168 584061682 696014113 960485837 712089816 581331718 317512142 593926314 302610323 716885305 477125514 813997503 535631456", "output": "12951783229" }, { "input": "22\n465951120 788339601 784853870 726746679 376370396 504849742 180834982 33019308 867135601 455551901 657223030 940381560 93386374 378140736 161286599 548696254 934237100 75589518 764917898 731412064 205669368 630662937", "output": "11305256638" }, { "input": "23\n989635897 498195481 255132154 643423835 387820874 894097181 223601429 228583694 265543138 153021520 618431947 684241474 943673829 174949754 358967839 444530707 801900686 965299835 347682577 648826625 406714384 129525158 958578251", "output": "12022378269" }, { "input": "24\n277285866 739058464 135466846 265129694 104300056 519381429 856310469 834204489 132942572 260547547 343605057 664137197 619941683 676786476 497713592 635336455 138557168 618975345 635474960 861212482 76752297 923357675 517046816 274123722", "output": "11607648357" }, { "input": "25\n95942939 979921447 310772834 181806850 525806942 613657573 194049213 734797579 531349109 721980358 304813974 113025815 470230137 473595494 695394833 590106396 770183946 567622150 218239639 778627043 41761505 127248600 134450869 860350034 901937574", "output": "11937672853" }, { "input": "26\n619627716 984748623 486078822 98484005 537257421 2906012 62795060 635390669 103777246 829506385 971050595 92921538 851525695 680460920 893076074 780912144 401811723 221297659 269996214 991012900 242806521 626109821 987889730 682613155 209557740 806895799", "output": "14070510187" }, { "input": "26\n10 1 20 2 23 3 14 6 7 13 26 21 11 8 16 25 12 15 19 9 17 22 24 18 5 4", "output": "351" }, { "input": "3\n1 1 1", "output": "1" }, { "input": "5\n5 3 3 3 1", "output": "11" }, { "input": "5\n2 2 2 2 2", "output": "3" }, { "input": "10\n10 10 10 10 10 10 10 10 1 1", "output": "53" }, { "input": "10\n100 100 10 10 10 10 10 1 1 1", "output": "240" }, { "input": "6\n5 3 3 3 3 1", "output": "11" }, { "input": "4\n4 3 2 1", "output": "10" }, { "input": "5\n1 1 1 1 1", "output": "1" } ]
1,634,037,792
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
51
77
6,963,200
input() a = list(map(int, input().split())) a.sort(reverse=True) sum = a[0] for i in range(1,len(a)): if min(a[i],a[i-1]-1) > 0: sum += min(a[i], a[i-1]-1) a[i] = min(a[i], a[i-1]-1) #print(sum) print(sum)
Title: Making a String Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given an alphabet consisting of *n* letters, your task is to make a string of the maximum possible length so that the following conditions are satisfied: - the *i*-th letter occurs in the string no more than *a**i* times; - the number of occurrences of each letter in the string must be distinct for all the letters that occurred in the string at least once. Input Specification: The first line of the input contains a single integer *n* (2<=<=≤<=<=*n*<=<=≤<=<=26) — the number of letters in the alphabet. The next line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — *i*-th of these integers gives the limitation on the number of occurrences of the *i*-th character in the string. Output Specification: Print a single integer — the maximum length of the string that meets all the requirements. Demo Input: ['3\n2 5 5\n', '3\n1 1 2\n'] Demo Output: ['11\n', '3\n'] Note: For convenience let's consider an alphabet consisting of three letters: "a", "b", "c". In the first sample, some of the optimal strings are: "cccaabbccbb", "aabcbcbcbcb". In the second sample some of the optimal strings are: "acc", "cbc".
```python input() a = list(map(int, input().split())) a.sort(reverse=True) sum = a[0] for i in range(1,len(a)): if min(a[i],a[i-1]-1) > 0: sum += min(a[i], a[i-1]-1) a[i] = min(a[i], a[i-1]-1) #print(sum) print(sum) ```
0
144
A
Arrival of the General
PROGRAMMING
800
[ "implementation" ]
null
null
A Ministry for Defense sent a general to inspect the Super Secret Military Squad under the command of the Colonel SuperDuper. Having learned the news, the colonel ordered to all *n* squad soldiers to line up on the parade ground. By the military charter the soldiers should stand in the order of non-increasing of their height. But as there's virtually no time to do that, the soldiers lined up in the arbitrary order. However, the general is rather short-sighted and he thinks that the soldiers lined up correctly if the first soldier in the line has the maximum height and the last soldier has the minimum height. Please note that the way other solders are positioned does not matter, including the case when there are several soldiers whose height is maximum or minimum. Only the heights of the first and the last soldier are important. For example, the general considers the sequence of heights (4, 3, 4, 2, 1, 1) correct and the sequence (4, 3, 1, 2, 2) wrong. Within one second the colonel can swap any two neighboring soldiers. Help him count the minimum time needed to form a line-up which the general will consider correct.
The first input line contains the only integer *n* (2<=≤<=*n*<=≤<=100) which represents the number of soldiers in the line. The second line contains integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100) the values of the soldiers' heights in the order of soldiers' heights' increasing in the order from the beginning of the line to its end. The numbers are space-separated. Numbers *a*1,<=*a*2,<=...,<=*a**n* are not necessarily different.
Print the only integer — the minimum number of seconds the colonel will need to form a line-up the general will like.
[ "4\n33 44 11 22\n", "7\n10 10 58 31 63 40 76\n" ]
[ "2\n", "10\n" ]
In the first sample the colonel will need to swap the first and second soldier and then the third and fourth soldier. That will take 2 seconds. The resulting position of the soldiers is (44, 33, 22, 11). In the second sample the colonel may swap the soldiers in the following sequence: 1. (10, 10, 58, 31, 63, 40, 76) 1. (10, 58, 10, 31, 63, 40, 76) 1. (10, 58, 10, 31, 63, 76, 40) 1. (10, 58, 10, 31, 76, 63, 40) 1. (10, 58, 31, 10, 76, 63, 40) 1. (10, 58, 31, 76, 10, 63, 40) 1. (10, 58, 31, 76, 63, 10, 40) 1. (10, 58, 76, 31, 63, 10, 40) 1. (10, 76, 58, 31, 63, 10, 40) 1. (76, 10, 58, 31, 63, 10, 40) 1. (76, 10, 58, 31, 63, 40, 10)
500
[ { "input": "4\n33 44 11 22", "output": "2" }, { "input": "7\n10 10 58 31 63 40 76", "output": "10" }, { "input": "2\n88 89", "output": "1" }, { "input": "5\n100 95 100 100 88", "output": "0" }, { "input": "7\n48 48 48 48 45 45 45", "output": "0" }, { "input": "10\n68 47 67 29 63 71 71 65 54 56", "output": "10" }, { "input": "15\n77 68 96 60 92 75 61 60 66 79 80 65 60 95 92", "output": "4" }, { "input": "3\n1 2 1", "output": "1" }, { "input": "20\n30 30 30 14 30 14 30 30 30 14 30 14 14 30 14 14 30 14 14 14", "output": "0" }, { "input": "35\n37 41 46 39 47 39 44 47 44 42 44 43 47 39 46 39 38 42 39 37 40 44 41 42 41 42 39 42 36 36 42 36 42 42 42", "output": "7" }, { "input": "40\n99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 99 98 99 99 99 99 99 99 99 99 100 99 99 99 99 99 99", "output": "47" }, { "input": "50\n48 52 44 54 53 56 62 49 39 41 53 39 40 64 53 50 62 48 40 52 51 48 40 52 61 62 62 61 48 64 55 57 56 40 48 58 41 60 60 56 64 50 64 45 48 45 46 63 59 57", "output": "50" }, { "input": "57\n7 24 17 19 6 19 10 11 12 22 14 5 5 11 13 10 24 19 24 24 24 11 21 20 4 14 24 24 18 13 24 3 20 3 3 3 3 9 3 9 22 22 16 3 3 3 15 11 3 3 8 17 10 13 3 14 13", "output": "3" }, { "input": "65\n58 50 35 44 35 37 36 58 38 36 58 56 56 49 48 56 58 43 40 44 52 44 58 58 57 50 43 35 55 39 38 49 53 56 50 42 41 56 34 57 49 38 34 51 56 38 58 40 53 46 48 34 38 43 49 49 58 56 41 43 44 34 38 48 36", "output": "3" }, { "input": "69\n70 48 49 48 49 71 48 53 55 69 48 53 54 58 53 63 48 48 69 67 72 75 71 75 74 74 57 63 65 60 48 48 65 48 48 51 50 49 62 53 76 68 76 56 76 76 64 76 76 57 61 76 73 51 59 76 65 50 69 50 76 67 76 63 62 74 74 58 73", "output": "73" }, { "input": "75\n70 65 64 71 71 64 71 64 68 71 65 64 65 68 71 66 66 69 68 63 69 65 71 69 68 68 71 67 71 65 65 65 71 71 65 69 63 66 62 67 64 63 62 64 67 65 62 69 62 64 69 62 67 64 67 70 64 63 64 64 69 62 62 64 70 62 62 68 67 69 62 64 66 70 68", "output": "7" }, { "input": "84\n92 95 84 85 94 80 90 86 80 92 95 84 86 83 86 83 93 91 95 92 84 88 82 84 84 84 80 94 93 80 94 80 95 83 85 80 95 95 80 84 86 92 83 81 90 87 81 89 92 93 80 87 90 85 93 85 93 94 93 89 94 83 93 91 80 83 90 94 95 80 95 92 85 84 93 94 94 82 91 95 95 89 85 94", "output": "15" }, { "input": "90\n86 87 72 77 82 71 75 78 61 67 79 90 64 94 94 74 85 87 73 76 71 71 60 69 77 73 76 80 82 57 62 57 57 83 76 72 75 87 72 94 77 85 59 82 86 69 62 80 95 73 83 94 79 85 91 68 85 74 93 95 68 75 89 93 83 78 95 78 83 77 81 85 66 92 63 65 75 78 67 91 77 74 59 86 77 76 90 67 70 64", "output": "104" }, { "input": "91\n94 98 96 94 95 98 98 95 98 94 94 98 95 95 99 97 97 94 95 98 94 98 96 98 96 98 97 95 94 94 94 97 94 96 98 98 98 94 96 95 94 95 97 97 97 98 94 98 96 95 98 96 96 98 94 97 96 98 97 95 97 98 94 95 94 94 97 94 96 97 97 93 94 95 95 94 96 98 97 96 94 98 98 96 96 96 96 96 94 96 97", "output": "33" }, { "input": "92\n44 28 32 29 41 41 36 39 40 39 41 35 41 28 35 27 41 34 28 38 43 43 41 38 27 26 28 36 30 29 39 32 35 35 32 30 39 30 37 27 41 41 28 30 43 31 35 33 36 28 44 40 41 35 31 42 37 38 37 34 39 40 27 40 33 33 44 43 34 33 34 34 35 38 38 37 30 39 35 41 45 42 41 32 33 33 31 30 43 41 43 43", "output": "145" }, { "input": "93\n46 32 52 36 39 30 57 63 63 30 32 44 27 59 46 38 40 45 44 62 35 36 51 48 39 58 36 51 51 51 48 58 59 36 29 35 31 49 64 60 34 38 42 56 33 42 52 31 63 34 45 51 35 45 33 53 33 62 31 38 66 29 51 54 28 61 32 45 57 41 36 34 47 36 31 28 67 48 52 46 32 40 64 58 27 53 43 57 34 66 43 39 26", "output": "76" }, { "input": "94\n56 55 54 31 32 42 46 29 24 54 40 40 20 45 35 56 32 33 51 39 26 56 21 56 51 27 29 39 56 52 54 43 43 55 48 51 44 49 52 49 23 19 19 28 20 26 45 33 35 51 42 36 25 25 38 23 21 35 54 50 41 20 37 28 42 20 22 43 37 34 55 21 24 38 19 41 45 34 19 33 44 54 38 31 23 53 35 32 47 40 39 31 20 34", "output": "15" }, { "input": "95\n57 71 70 77 64 64 76 81 81 58 63 75 81 77 71 71 71 60 70 70 69 67 62 64 78 64 69 62 76 76 57 70 68 77 70 68 73 77 79 73 60 57 69 60 74 65 58 75 75 74 73 73 65 75 72 57 81 62 62 70 67 58 76 57 79 81 68 64 58 77 70 59 79 64 80 58 71 59 81 71 80 64 78 80 78 65 70 68 78 80 57 63 64 76 81", "output": "11" }, { "input": "96\n96 95 95 95 96 97 95 97 96 95 98 96 97 95 98 96 98 96 98 96 98 95 96 95 95 95 97 97 95 95 98 98 95 96 96 95 97 96 98 96 95 97 97 95 97 97 95 94 96 96 97 96 97 97 96 94 94 97 95 95 95 96 95 96 95 97 97 95 97 96 95 94 97 97 97 96 97 95 96 94 94 95 97 94 94 97 97 97 95 97 97 95 94 96 95 95", "output": "13" }, { "input": "97\n14 15 12 12 13 15 12 15 12 12 12 12 12 14 15 15 13 12 15 15 12 12 12 13 14 15 15 13 14 15 14 14 14 14 12 13 12 13 13 12 15 12 13 13 15 12 15 13 12 13 13 13 14 13 12 15 14 13 14 15 13 14 14 13 14 12 15 12 14 12 13 14 15 14 13 15 13 12 15 15 15 13 15 15 13 14 16 16 16 13 15 13 15 14 15 15 15", "output": "104" }, { "input": "98\n37 69 35 70 58 69 36 47 41 63 60 54 49 35 55 50 35 53 52 43 35 41 40 49 38 35 48 70 42 35 35 65 56 54 44 59 59 48 51 49 59 67 35 60 69 35 58 50 35 44 48 69 41 58 44 45 35 47 70 61 49 47 37 39 35 51 44 70 72 65 36 41 63 63 48 66 45 50 50 71 37 52 72 67 72 39 72 39 36 64 48 72 69 49 45 72 72 67", "output": "100" }, { "input": "99\n31 31 16 15 19 31 19 22 29 27 12 22 28 30 25 33 26 25 19 22 34 21 17 33 31 22 16 26 22 30 31 17 13 33 13 17 28 25 18 33 27 22 31 22 13 27 20 22 23 15 24 32 29 13 16 20 32 33 14 33 19 27 16 28 25 17 17 28 18 26 32 33 19 23 30 13 14 23 24 28 14 28 22 20 30 14 24 23 17 29 18 28 29 21 28 18 16 24 32", "output": "107" }, { "input": "100\n37 54 39 29 32 49 21 13 34 21 16 42 34 27 16 26 7 34 51 9 11 27 16 40 36 7 48 52 30 42 42 52 51 11 32 26 6 7 28 54 48 51 6 54 42 20 51 48 46 4 4 31 47 6 9 16 8 23 36 50 49 30 47 37 45 24 48 26 8 50 18 24 27 13 39 7 37 34 5 43 42 19 34 23 52 38 35 6 29 11 53 49 21 29 36 22 45 33 51 22", "output": "50" }, { "input": "100\n41 5 20 23 5 47 28 28 64 5 12 14 34 56 22 48 6 52 39 55 62 40 24 54 39 28 56 27 35 51 14 24 38 10 55 20 39 62 52 2 30 55 49 48 15 23 59 44 31 28 66 29 62 59 31 13 28 12 50 45 41 47 29 27 64 66 14 39 62 22 44 63 24 5 63 17 42 7 25 41 49 33 31 51 63 3 37 66 19 9 2 40 16 45 56 21 34 29 39 61", "output": "59" }, { "input": "100\n66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 66 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95 95", "output": "99" }, { "input": "100\n81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 81 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "0" }, { "input": "3\n2 1 2", "output": "1" }, { "input": "2\n100 99", "output": "0" }, { "input": "100\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", "output": "197" }, { "input": "100\n87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87 87", "output": "0" }, { "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": "0" }, { "input": "2\n1 1", "output": "0" }, { "input": "3\n2 2 2", "output": "0" }, { "input": "3\n1 3 2", "output": "2" } ]
1,695,321,183
2,147,483,647
Python 3
OK
TESTS
39
92
0
n = int(input()) a = [int(i) for i in input().split()] maxn = max(a) maxn = a.index(maxn) for i in range(maxn, 0, -1): a[i], a[i-1] = a[i-1], a[i] b = [a[len(a)-1]] for i in range(len(a)-1, 0, -1): b.append(a[i-1]) minn = min(b) minn = b.index(minn) steps = maxn+minn print(steps)
Title: Arrival of the General Time Limit: None seconds Memory Limit: None megabytes Problem Description: A Ministry for Defense sent a general to inspect the Super Secret Military Squad under the command of the Colonel SuperDuper. Having learned the news, the colonel ordered to all *n* squad soldiers to line up on the parade ground. By the military charter the soldiers should stand in the order of non-increasing of their height. But as there's virtually no time to do that, the soldiers lined up in the arbitrary order. However, the general is rather short-sighted and he thinks that the soldiers lined up correctly if the first soldier in the line has the maximum height and the last soldier has the minimum height. Please note that the way other solders are positioned does not matter, including the case when there are several soldiers whose height is maximum or minimum. Only the heights of the first and the last soldier are important. For example, the general considers the sequence of heights (4, 3, 4, 2, 1, 1) correct and the sequence (4, 3, 1, 2, 2) wrong. Within one second the colonel can swap any two neighboring soldiers. Help him count the minimum time needed to form a line-up which the general will consider correct. Input Specification: The first input line contains the only integer *n* (2<=≤<=*n*<=≤<=100) which represents the number of soldiers in the line. The second line contains integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100) the values of the soldiers' heights in the order of soldiers' heights' increasing in the order from the beginning of the line to its end. The numbers are space-separated. Numbers *a*1,<=*a*2,<=...,<=*a**n* are not necessarily different. Output Specification: Print the only integer — the minimum number of seconds the colonel will need to form a line-up the general will like. Demo Input: ['4\n33 44 11 22\n', '7\n10 10 58 31 63 40 76\n'] Demo Output: ['2\n', '10\n'] Note: In the first sample the colonel will need to swap the first and second soldier and then the third and fourth soldier. That will take 2 seconds. The resulting position of the soldiers is (44, 33, 22, 11). In the second sample the colonel may swap the soldiers in the following sequence: 1. (10, 10, 58, 31, 63, 40, 76) 1. (10, 58, 10, 31, 63, 40, 76) 1. (10, 58, 10, 31, 63, 76, 40) 1. (10, 58, 10, 31, 76, 63, 40) 1. (10, 58, 31, 10, 76, 63, 40) 1. (10, 58, 31, 76, 10, 63, 40) 1. (10, 58, 31, 76, 63, 10, 40) 1. (10, 58, 76, 31, 63, 10, 40) 1. (10, 76, 58, 31, 63, 10, 40) 1. (76, 10, 58, 31, 63, 10, 40) 1. (76, 10, 58, 31, 63, 40, 10)
```python n = int(input()) a = [int(i) for i in input().split()] maxn = max(a) maxn = a.index(maxn) for i in range(maxn, 0, -1): a[i], a[i-1] = a[i-1], a[i] b = [a[len(a)-1]] for i in range(len(a)-1, 0, -1): b.append(a[i-1]) minn = min(b) minn = b.index(minn) steps = maxn+minn print(steps) ```
3
514
A
Chewbaсca and Number
PROGRAMMING
1,200
[ "greedy", "implementation" ]
null
null
Luke Skywalker gave Chewbacca an integer number *x*. Chewbacca isn't good at numbers but he loves inverting digits in them. Inverting digit *t* means replacing it with digit 9<=-<=*t*. Help Chewbacca to transform the initial number *x* to the minimum possible positive number by inverting some (possibly, zero) digits. The decimal representation of the final number shouldn't start with a zero.
The first line contains a single integer *x* (1<=≤<=*x*<=≤<=1018) — the number that Luke Skywalker gave to Chewbacca.
Print the minimum possible positive number that Chewbacca can obtain after inverting some digits. The number shouldn't contain leading zeroes.
[ "27\n", "4545\n" ]
[ "22\n", "4444\n" ]
none
500
[ { "input": "27", "output": "22" }, { "input": "4545", "output": "4444" }, { "input": "1", "output": "1" }, { "input": "9", "output": "9" }, { "input": "8772", "output": "1222" }, { "input": "81", "output": "11" }, { "input": "71723447", "output": "21223442" }, { "input": "91730629", "output": "91230320" }, { "input": "420062703497", "output": "420032203402" }, { "input": "332711047202", "output": "332211042202" }, { "input": "3395184971407775", "output": "3304114021402224" }, { "input": "8464062628894325", "output": "1434032321104324" }, { "input": "164324828731963982", "output": "134324121231033012" }, { "input": "384979173822804784", "output": "314020123122104214" }, { "input": "41312150450968417", "output": "41312140440031412" }, { "input": "2156", "output": "2143" }, { "input": "1932", "output": "1032" }, { "input": "5902", "output": "4002" }, { "input": "5728", "output": "4221" }, { "input": "8537", "output": "1432" }, { "input": "55403857", "output": "44403142" }, { "input": "270739", "output": "220230" }, { "input": "28746918", "output": "21243011" }, { "input": "10279211", "output": "10220211" }, { "input": "40289679", "output": "40210320" }, { "input": "545203238506", "output": "444203231403" }, { "input": "461117063340", "output": "431112033340" }, { "input": "658492686568", "output": "341402313431" }, { "input": "857373361868", "output": "142323331131" }, { "input": "429325660016", "output": "420324330013" }, { "input": "9894448650287940", "output": "9104441340212040" }, { "input": "6354510839296263", "output": "3344410130203233" }, { "input": "6873575462224593", "output": "3123424432224403" }, { "input": "4237951492601449", "output": "4232041402301440" }, { "input": "2680352384836991", "output": "2310342314133001" }, { "input": "606187734191890310", "output": "303112234101100310" }, { "input": "351499943576823355", "output": "341400043423123344" }, { "input": "180593481782177068", "output": "110403411212122031" }, { "input": "999999999999999999", "output": "900000000000000000" }, { "input": "1000000000000000000", "output": "1000000000000000000" }, { "input": "9999", "output": "9000" }, { "input": "99", "output": "90" }, { "input": "9991", "output": "9001" } ]
1,675,194,794
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
3
31
0
n=int(input()) num=list(map(int,str(n))) m=len(num) for x in range(m): c=0 c=abs(9-num[x]) if(c<num[x]): num[x]=c s=[str(i) for i in num] print("".join(s))
Title: Chewbaсca and Number Time Limit: None seconds Memory Limit: None megabytes Problem Description: Luke Skywalker gave Chewbacca an integer number *x*. Chewbacca isn't good at numbers but he loves inverting digits in them. Inverting digit *t* means replacing it with digit 9<=-<=*t*. Help Chewbacca to transform the initial number *x* to the minimum possible positive number by inverting some (possibly, zero) digits. The decimal representation of the final number shouldn't start with a zero. Input Specification: The first line contains a single integer *x* (1<=≤<=*x*<=≤<=1018) — the number that Luke Skywalker gave to Chewbacca. Output Specification: Print the minimum possible positive number that Chewbacca can obtain after inverting some digits. The number shouldn't contain leading zeroes. Demo Input: ['27\n', '4545\n'] Demo Output: ['22\n', '4444\n'] Note: none
```python n=int(input()) num=list(map(int,str(n))) m=len(num) for x in range(m): c=0 c=abs(9-num[x]) if(c<num[x]): num[x]=c s=[str(i) for i in num] print("".join(s)) ```
0
599
A
Patrick and Shopping
PROGRAMMING
800
[ "implementation" ]
null
null
Today Patrick waits for a visit from his friend Spongebob. To prepare for the visit, Patrick needs to buy some goodies in two stores located near his house. There is a *d*1 meter long road between his house and the first shop and a *d*2 meter long road between his house and the second shop. Also, there is a road of length *d*3 directly connecting these two shops to each other. Help Patrick calculate the minimum distance that he needs to walk in order to go to both shops and return to his house. Patrick always starts at his house. He should visit both shops moving only along the three existing roads and return back to his house. He doesn't mind visiting the same shop or passing the same road multiple times. The only goal is to minimize the total distance traveled.
The first line of the input contains three integers *d*1, *d*2, *d*3 (1<=≤<=*d*1,<=*d*2,<=*d*3<=≤<=108) — the lengths of the paths. - *d*1 is the length of the path connecting Patrick's house and the first shop; - *d*2 is the length of the path connecting Patrick's house and the second shop; - *d*3 is the length of the path connecting both shops.
Print the minimum distance that Patrick will have to walk in order to visit both shops and return to his house.
[ "10 20 30\n", "1 1 5\n" ]
[ "60\n", "4\n" ]
The first sample is shown on the picture in the problem statement. One of the optimal routes is: house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> first shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> second shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house. In the second sample one of the optimal routes is: house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> first shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> second shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house.
500
[ { "input": "10 20 30", "output": "60" }, { "input": "1 1 5", "output": "4" }, { "input": "100 33 34", "output": "134" }, { "input": "777 777 777", "output": "2331" }, { "input": "2 2 8", "output": "8" }, { "input": "12 34 56", "output": "92" }, { "input": "789 101112 131415", "output": "203802" }, { "input": "27485716 99999999 35182", "output": "55041796" }, { "input": "1 293548 5", "output": "12" }, { "input": "12059 259855 5874875", "output": "543828" }, { "input": "46981 105809 585858", "output": "305580" }, { "input": "9889 1221 2442", "output": "7326" }, { "input": "100500 200600 300700", "output": "601800" }, { "input": "318476 318476 318476", "output": "955428" }, { "input": "23985 3353 75633", "output": "54676" }, { "input": "120 1298 2222", "output": "2836" }, { "input": "98437 23487 666672", "output": "243848" }, { "input": "100000000 100000000 100000000", "output": "300000000" }, { "input": "2 5 2", "output": "8" }, { "input": "1 1000 1", "output": "4" }, { "input": "1 100000000 1", "output": "4" } ]
1,677,248,286
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
31
0
d = list(map(int, input().split())) print(min(d[0] + d[1] + d[2], 2*(d[0] + d[1])))
Title: Patrick and Shopping Time Limit: None seconds Memory Limit: None megabytes Problem Description: Today Patrick waits for a visit from his friend Spongebob. To prepare for the visit, Patrick needs to buy some goodies in two stores located near his house. There is a *d*1 meter long road between his house and the first shop and a *d*2 meter long road between his house and the second shop. Also, there is a road of length *d*3 directly connecting these two shops to each other. Help Patrick calculate the minimum distance that he needs to walk in order to go to both shops and return to his house. Patrick always starts at his house. He should visit both shops moving only along the three existing roads and return back to his house. He doesn't mind visiting the same shop or passing the same road multiple times. The only goal is to minimize the total distance traveled. Input Specification: The first line of the input contains three integers *d*1, *d*2, *d*3 (1<=≤<=*d*1,<=*d*2,<=*d*3<=≤<=108) — the lengths of the paths. - *d*1 is the length of the path connecting Patrick's house and the first shop; - *d*2 is the length of the path connecting Patrick's house and the second shop; - *d*3 is the length of the path connecting both shops. Output Specification: Print the minimum distance that Patrick will have to walk in order to visit both shops and return to his house. Demo Input: ['10 20 30\n', '1 1 5\n'] Demo Output: ['60\n', '4\n'] Note: The first sample is shown on the picture in the problem statement. One of the optimal routes is: house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> first shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> second shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house. In the second sample one of the optimal routes is: house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> first shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> second shop <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/70a0795f45d32287dba0eb83fc4a3f470c6e5537.png" style="max-width: 100.0%;max-height: 100.0%;"/> house.
```python d = list(map(int, input().split())) print(min(d[0] + d[1] + d[2], 2*(d[0] + d[1]))) ```
0
758
A
Holiday Of Equality
PROGRAMMING
800
[ "implementation", "math" ]
null
null
In Berland it is the holiday of equality. In honor of the holiday the king decided to equalize the welfare of all citizens in Berland by the expense of the state treasury. Totally in Berland there are *n* citizens, the welfare of each of them is estimated as the integer in *a**i* burles (burle is the currency in Berland). You are the royal treasurer, which needs to count the minimum charges of the kingdom on the king's present. The king can only give money, he hasn't a power to take away them.
The first line contains the integer *n* (1<=≤<=*n*<=≤<=100) — the number of citizens in the kingdom. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n*, where *a**i* (0<=≤<=*a**i*<=≤<=106) — the welfare of the *i*-th citizen.
In the only line print the integer *S* — the minimum number of burles which are had to spend.
[ "5\n0 1 2 3 4\n", "5\n1 1 0 1 1\n", "3\n1 3 1\n", "1\n12\n" ]
[ "10", "1", "4", "0" ]
In the first example if we add to the first citizen 4 burles, to the second 3, to the third 2 and to the fourth 1, then the welfare of all citizens will equal 4. In the second example it is enough to give one burle to the third citizen. In the third example it is necessary to give two burles to the first and the third citizens to make the welfare of citizens equal 3. In the fourth example it is possible to give nothing to everyone because all citizens have 12 burles.
500
[ { "input": "5\n0 1 2 3 4", "output": "10" }, { "input": "5\n1 1 0 1 1", "output": "1" }, { "input": "3\n1 3 1", "output": "4" }, { "input": "1\n12", "output": "0" }, { "input": "3\n1 2 3", "output": "3" }, { "input": "14\n52518 718438 358883 462189 853171 592966 225788 46977 814826 295697 676256 561479 56545 764281", "output": "5464380" }, { "input": "21\n842556 216391 427181 626688 775504 168309 851038 448402 880826 73697 593338 519033 135115 20128 424606 939484 846242 756907 377058 241543 29353", "output": "9535765" }, { "input": "3\n1 3 2", "output": "3" }, { "input": "3\n2 1 3", "output": "3" }, { "input": "3\n2 3 1", "output": "3" }, { "input": "3\n3 1 2", "output": "3" }, { "input": "3\n3 2 1", "output": "3" }, { "input": "1\n228503", "output": "0" }, { "input": "2\n32576 550340", "output": "517764" }, { "input": "3\n910648 542843 537125", "output": "741328" }, { "input": "4\n751720 572344 569387 893618", "output": "787403" }, { "input": "6\n433864 631347 597596 794426 713555 231193", "output": "1364575" }, { "input": "9\n31078 645168 695751 126111 375934 150495 838412 434477 993107", "output": "4647430" }, { "input": "30\n315421 772664 560686 654312 151528 356749 351486 707462 820089 226682 546700 136028 824236 842130 578079 337807 665903 764100 617900 822937 992759 591749 651310 742085 767695 695442 17967 515106 81059 186025", "output": "13488674" }, { "input": "45\n908719 394261 815134 419990 926993 383792 772842 277695 527137 655356 684956 695716 273062 550324 106247 399133 442382 33076 462920 294674 846052 817752 421365 474141 290471 358990 109812 74492 543281 169434 919692 786809 24028 197184 310029 801476 699355 429672 51343 374128 776726 850380 293868 981569 550763", "output": "21993384" }, { "input": "56\n100728 972537 13846 385421 756708 184642 259487 319707 376662 221694 675284 972837 499419 13846 38267 289898 901299 831197 954715 197515 514102 910423 127555 883934 362472 870788 538802 741008 973434 448124 391526 363321 947321 544618 68006 782313 955075 741981 815027 723297 585059 718114 700739 413489 454091 736144 308999 98065 3716 347323 9635 289003 986510 607065 60236 273351", "output": "26984185" }, { "input": "70\n644488 5444 150441 714420 602059 335330 510670 196555 546346 740011 509449 850947 692874 524857 750434 952985 223744 374727 896124 753037 367352 679050 560202 172728 569291 778616 332116 286927 843598 372698 244906 498046 900681 709791 420904 724593 864493 813094 791377 39998 296710 625656 403891 579231 706693 984045 16901 574259 562265 761104 930361 256045 124461 538980 573508 372148 988722 108592 784354 55302 232524 277205 782251 299943 436488 743389 324618 742543 266915 99642", "output": "32816391" }, { "input": "1\n0", "output": "0" }, { "input": "1\n1000000", "output": "0" }, { "input": "100\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0", "output": "0" }, { "input": "100\n1000000 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0", "output": "99000000" }, { "input": "100\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1000000", "output": "99000000" }, { "input": "100\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1000000 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0", "output": "99000000" }, { "input": "3\n0 0 0", "output": "0" }, { "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 1", "output": "0" }, { "input": "3\n5 0 0", "output": "10" }, { "input": "5\n2 10 0 0 0", "output": "38" } ]
1,680,241,952
2,147,483,647
Python 3
OK
TESTS
41
46
0
n=input() s=list(map(int,input().split())) print(max(s)*len(s)-sum(s))
Title: Holiday Of Equality Time Limit: None seconds Memory Limit: None megabytes Problem Description: In Berland it is the holiday of equality. In honor of the holiday the king decided to equalize the welfare of all citizens in Berland by the expense of the state treasury. Totally in Berland there are *n* citizens, the welfare of each of them is estimated as the integer in *a**i* burles (burle is the currency in Berland). You are the royal treasurer, which needs to count the minimum charges of the kingdom on the king's present. The king can only give money, he hasn't a power to take away them. Input Specification: The first line contains the integer *n* (1<=≤<=*n*<=≤<=100) — the number of citizens in the kingdom. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n*, where *a**i* (0<=≤<=*a**i*<=≤<=106) — the welfare of the *i*-th citizen. Output Specification: In the only line print the integer *S* — the minimum number of burles which are had to spend. Demo Input: ['5\n0 1 2 3 4\n', '5\n1 1 0 1 1\n', '3\n1 3 1\n', '1\n12\n'] Demo Output: ['10', '1', '4', '0'] Note: In the first example if we add to the first citizen 4 burles, to the second 3, to the third 2 and to the fourth 1, then the welfare of all citizens will equal 4. In the second example it is enough to give one burle to the third citizen. In the third example it is necessary to give two burles to the first and the third citizens to make the welfare of citizens equal 3. In the fourth example it is possible to give nothing to everyone because all citizens have 12 burles.
```python n=input() s=list(map(int,input().split())) print(max(s)*len(s)-sum(s)) ```
3