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| title
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1.87k
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| demo-output
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int64 1.37B
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stringclasses 9
values | passedTestCount
int64 1
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8.06k
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int64 0
514M
| code
stringlengths 11
61.4k
| prompt
stringlengths 297
7.35k
| response
stringlengths 25
61.4k
| score
float64 2.82
3.99
|
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
898
|
B
|
Proper Nutrition
|
PROGRAMMING
| 1,100
|
[
"brute force",
"implementation",
"number theory"
] | null | null |
Vasya has *n* burles. One bottle of Ber-Cola costs *a* burles and one Bars bar costs *b* burles. He can buy any non-negative integer number of bottles of Ber-Cola and any non-negative integer number of Bars bars.
Find out if it's possible to buy some amount of bottles of Ber-Cola and Bars bars and spend exactly *n* burles.
In other words, you should find two non-negative integers *x* and *y* such that Vasya can buy *x* bottles of Ber-Cola and *y* Bars bars and *x*Β·*a*<=+<=*y*Β·*b*<==<=*n* or tell that it's impossible.
|
First line contains single integer *n* (1<=β€<=*n*<=β€<=10<=000<=000)Β β amount of money, that Vasya has.
Second line contains single integer *a* (1<=β€<=*a*<=β€<=10<=000<=000)Β β cost of one bottle of Ber-Cola.
Third line contains single integer *b* (1<=β€<=*b*<=β€<=10<=000<=000)Β β cost of one Bars bar.
|
If Vasya can't buy Bars and Ber-Cola in such a way to spend exactly *n* burles print Β«NOΒ» (without quotes).
Otherwise in first line print Β«YESΒ» (without quotes). In second line print two non-negative integers *x* and *y*Β β number of bottles of Ber-Cola and number of Bars bars Vasya should buy in order to spend exactly *n* burles, i.e. *x*Β·*a*<=+<=*y*Β·*b*<==<=*n*. If there are multiple answers print any of them.
Any of numbers *x* and *y* can be equal 0.
|
[
"7\n2\n3\n",
"100\n25\n10\n",
"15\n4\n8\n",
"9960594\n2551\n2557\n"
] |
[
"YES\n2 1\n",
"YES\n0 10\n",
"NO\n",
"YES\n1951 1949\n"
] |
In first example Vasya can buy two bottles of Ber-Cola and one Bars bar. He will spend exactly 2Β·2β+β1Β·3β=β7 burles.
In second example Vasya can spend exactly *n* burles multiple ways:
- buy two bottles of Ber-Cola and five Bars bars; - buy four bottles of Ber-Cola and don't buy Bars bars; - don't buy Ber-Cola and buy 10 Bars bars.
In third example it's impossible to but Ber-Cola and Bars bars in order to spend exactly *n* burles.
| 750
|
[
{
"input": "7\n2\n3",
"output": "YES\n2 1"
},
{
"input": "100\n25\n10",
"output": "YES\n0 10"
},
{
"input": "15\n4\n8",
"output": "NO"
},
{
"input": "9960594\n2551\n2557",
"output": "YES\n1951 1949"
},
{
"input": "10000000\n1\n1",
"output": "YES\n0 10000000"
},
{
"input": "9999999\n9999\n9999",
"output": "NO"
},
{
"input": "9963629\n2591\n2593",
"output": "YES\n635 3208"
},
{
"input": "1\n7\n8",
"output": "NO"
},
{
"input": "9963630\n2591\n2593",
"output": "YES\n1931 1913"
},
{
"input": "7516066\n1601\n4793",
"output": "YES\n4027 223"
},
{
"input": "6509546\n1607\n6221",
"output": "YES\n617 887"
},
{
"input": "2756250\n8783\n29",
"output": "YES\n21 88683"
},
{
"input": "7817510\n2377\n743",
"output": "YES\n560 8730"
},
{
"input": "6087210\n1583\n1997",
"output": "YES\n1070 2200"
},
{
"input": "4\n2\n2",
"output": "YES\n0 2"
},
{
"input": "7996960\n4457\n5387",
"output": "YES\n727 883"
},
{
"input": "7988988\n4021\n3169",
"output": "YES\n1789 251"
},
{
"input": "4608528\n9059\n977",
"output": "YES\n349 1481"
},
{
"input": "8069102\n2789\n47",
"output": "YES\n3 171505"
},
{
"input": "3936174\n4783\n13",
"output": "YES\n5 300943"
},
{
"input": "10000000\n9999999\n1",
"output": "YES\n0 10000000"
},
{
"input": "10000000\n1\n9999999",
"output": "YES\n1 1"
},
{
"input": "4\n1\n3",
"output": "YES\n1 1"
},
{
"input": "4\n1\n2",
"output": "YES\n0 2"
},
{
"input": "4\n3\n1",
"output": "YES\n0 4"
},
{
"input": "4\n2\n1",
"output": "YES\n0 4"
},
{
"input": "100\n10\n20",
"output": "YES\n0 5"
},
{
"input": "101\n11\n11",
"output": "NO"
},
{
"input": "121\n11\n11",
"output": "YES\n0 11"
},
{
"input": "25\n5\n6",
"output": "YES\n5 0"
},
{
"input": "1\n1\n1",
"output": "YES\n0 1"
},
{
"input": "10000000\n2\n1",
"output": "YES\n0 10000000"
},
{
"input": "10000000\n1234523\n1",
"output": "YES\n0 10000000"
},
{
"input": "10000000\n5000000\n5000000",
"output": "YES\n0 2"
},
{
"input": "10000000\n5000001\n5000000",
"output": "YES\n0 2"
},
{
"input": "10000000\n5000000\n5000001",
"output": "YES\n2 0"
},
{
"input": "9999999\n9999999\n9999999",
"output": "YES\n0 1"
},
{
"input": "10000000\n10000000\n10000000",
"output": "YES\n0 1"
},
{
"input": "10\n1\n3",
"output": "YES\n1 3"
},
{
"input": "97374\n689\n893",
"output": "NO"
},
{
"input": "100096\n791\n524",
"output": "NO"
},
{
"input": "75916\n651\n880",
"output": "NO"
},
{
"input": "110587\n623\n806",
"output": "NO"
},
{
"input": "5600\n670\n778",
"output": "NO"
},
{
"input": "81090\n527\n614",
"output": "NO"
},
{
"input": "227718\n961\n865",
"output": "NO"
},
{
"input": "10000000\n3\n999999",
"output": "NO"
},
{
"input": "3\n4\n5",
"output": "NO"
},
{
"input": "9999999\n2\n2",
"output": "NO"
},
{
"input": "9999999\n2\n4",
"output": "NO"
},
{
"input": "9999997\n2\n5",
"output": "YES\n1 1999999"
},
{
"input": "9366189\n4326262\n8994187",
"output": "NO"
},
{
"input": "1000000\n1\n10000000",
"output": "YES\n1000000 0"
},
{
"input": "9999991\n2\n2",
"output": "NO"
},
{
"input": "10000000\n7\n7",
"output": "NO"
},
{
"input": "9999991\n2\n4",
"output": "NO"
},
{
"input": "10000000\n3\n6",
"output": "NO"
},
{
"input": "10000000\n11\n11",
"output": "NO"
},
{
"input": "4\n7\n3",
"output": "NO"
},
{
"input": "1000003\n2\n2",
"output": "NO"
},
{
"input": "1000000\n7\n7",
"output": "NO"
},
{
"input": "999999\n2\n2",
"output": "NO"
},
{
"input": "8\n13\n5",
"output": "NO"
},
{
"input": "1000003\n15\n3",
"output": "NO"
},
{
"input": "7\n7\n2",
"output": "YES\n1 0"
},
{
"input": "9999999\n2\n8",
"output": "NO"
},
{
"input": "1000000\n3\n7",
"output": "YES\n5 142855"
},
{
"input": "9999999\n1\n10000000",
"output": "YES\n9999999 0"
},
{
"input": "100\n1\n1000000",
"output": "YES\n100 0"
},
{
"input": "10000000\n9999999\n9999997",
"output": "NO"
},
{
"input": "2\n1\n3",
"output": "YES\n2 0"
},
{
"input": "3\n5\n2",
"output": "NO"
},
{
"input": "5\n2\n3",
"output": "YES\n1 1"
},
{
"input": "10000000\n7\n14",
"output": "NO"
},
{
"input": "10000000\n2\n9999999",
"output": "YES\n5000000 0"
},
{
"input": "10000000\n3\n3",
"output": "NO"
},
{
"input": "1\n3\n2",
"output": "NO"
},
{
"input": "25\n27\n2",
"output": "NO"
},
{
"input": "3\n2\n17",
"output": "NO"
},
{
"input": "999997\n4\n8",
"output": "NO"
},
{
"input": "2000000\n1\n2000001",
"output": "YES\n2000000 0"
},
{
"input": "8\n7\n3",
"output": "NO"
},
{
"input": "7005920\n5705\n28145",
"output": "NO"
},
{
"input": "2\n6\n4",
"output": "NO"
},
{
"input": "10000000\n9999999\n3",
"output": "NO"
},
{
"input": "10000000\n77\n99",
"output": "NO"
},
{
"input": "100\n8\n70",
"output": "NO"
},
{
"input": "99999\n2\n2",
"output": "NO"
},
{
"input": "5\n7\n2",
"output": "NO"
},
{
"input": "999999\n12\n14",
"output": "NO"
},
{
"input": "100\n1\n1000",
"output": "YES\n100 0"
},
{
"input": "10000000\n123\n321",
"output": "NO"
},
{
"input": "9369319\n4\n2",
"output": "NO"
},
{
"input": "9999998\n3\n3",
"output": "NO"
},
{
"input": "85\n5\n85",
"output": "YES\n0 1"
},
{
"input": "64549\n9999999\n2",
"output": "NO"
},
{
"input": "10000000\n3\n7",
"output": "YES\n1 1428571"
},
{
"input": "9999889\n2\n2",
"output": "NO"
},
{
"input": "10000000\n9999999\n123",
"output": "NO"
},
{
"input": "64549\n2\n9999999",
"output": "NO"
}
] | 1,641,759,635
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 100
| 139
| 1,228,800
|
import sys
n = int(input())
a = int(input())
b = int(input())
for i in range((n // a) + 1):
if (n - (i * a)) % b == 0:
print("YES")
print(i, (n - (i * a)) // b)
sys.exit()
print("NO")
|
Title: Proper Nutrition
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya has *n* burles. One bottle of Ber-Cola costs *a* burles and one Bars bar costs *b* burles. He can buy any non-negative integer number of bottles of Ber-Cola and any non-negative integer number of Bars bars.
Find out if it's possible to buy some amount of bottles of Ber-Cola and Bars bars and spend exactly *n* burles.
In other words, you should find two non-negative integers *x* and *y* such that Vasya can buy *x* bottles of Ber-Cola and *y* Bars bars and *x*Β·*a*<=+<=*y*Β·*b*<==<=*n* or tell that it's impossible.
Input Specification:
First line contains single integer *n* (1<=β€<=*n*<=β€<=10<=000<=000)Β β amount of money, that Vasya has.
Second line contains single integer *a* (1<=β€<=*a*<=β€<=10<=000<=000)Β β cost of one bottle of Ber-Cola.
Third line contains single integer *b* (1<=β€<=*b*<=β€<=10<=000<=000)Β β cost of one Bars bar.
Output Specification:
If Vasya can't buy Bars and Ber-Cola in such a way to spend exactly *n* burles print Β«NOΒ» (without quotes).
Otherwise in first line print Β«YESΒ» (without quotes). In second line print two non-negative integers *x* and *y*Β β number of bottles of Ber-Cola and number of Bars bars Vasya should buy in order to spend exactly *n* burles, i.e. *x*Β·*a*<=+<=*y*Β·*b*<==<=*n*. If there are multiple answers print any of them.
Any of numbers *x* and *y* can be equal 0.
Demo Input:
['7\n2\n3\n', '100\n25\n10\n', '15\n4\n8\n', '9960594\n2551\n2557\n']
Demo Output:
['YES\n2 1\n', 'YES\n0 10\n', 'NO\n', 'YES\n1951 1949\n']
Note:
In first example Vasya can buy two bottles of Ber-Cola and one Bars bar. He will spend exactly 2Β·2β+β1Β·3β=β7 burles.
In second example Vasya can spend exactly *n* burles multiple ways:
- buy two bottles of Ber-Cola and five Bars bars; - buy four bottles of Ber-Cola and don't buy Bars bars; - don't buy Ber-Cola and buy 10 Bars bars.
In third example it's impossible to but Ber-Cola and Bars bars in order to spend exactly *n* burles.
|
```python
import sys
n = int(input())
a = int(input())
b = int(input())
for i in range((n // a) + 1):
if (n - (i * a)) % b == 0:
print("YES")
print(i, (n - (i * a)) // b)
sys.exit()
print("NO")
```
| 3
|
|
44
|
A
|
Indian Summer
|
PROGRAMMING
| 900
|
[
"implementation"
] |
A. Indian Summer
|
2
|
256
|
Indian summer is such a beautiful time of the year! A girl named Alyona is walking in the forest and picking a bouquet from fallen leaves. Alyona is very choosy β she doesn't take a leaf if it matches the color and the species of the tree of one of the leaves she already has. Find out how many leaves Alyona has picked.
|
The first line contains an integer *n* (1<=β€<=*n*<=β€<=100) β the number of leaves Alyona has found. The next *n* lines contain the leaves' descriptions. Each leaf is characterized by the species of the tree it has fallen from and by the color. The species of the trees and colors are given in names, consisting of no more than 10 lowercase Latin letters. A name can not be an empty string. The species of a tree and the color are given in each line separated by a space.
|
Output the single number β the number of Alyona's leaves.
|
[
"5\nbirch yellow\nmaple red\nbirch yellow\nmaple yellow\nmaple green\n",
"3\noak yellow\noak yellow\noak yellow\n"
] |
[
"4\n",
"1\n"
] |
none
| 0
|
[
{
"input": "5\nbirch yellow\nmaple red\nbirch yellow\nmaple yellow\nmaple green",
"output": "4"
},
{
"input": "3\noak yellow\noak yellow\noak yellow",
"output": "1"
},
{
"input": "5\nxbnbkzn hp\nkaqkl vrgzbvqstu\nj aqidx\nhos gyul\nwefxmh tygpluae",
"output": "5"
},
{
"input": "1\nqvwli hz",
"output": "1"
},
{
"input": "4\nsrhk x\nsrhk x\nqfoe vnrjuab\nqfoe vnrjuab",
"output": "2"
},
{
"input": "4\nsddqllmmpk syded\nfprsq fnenjnaz\nn hdej\nsddqllmmpk syded",
"output": "3"
},
{
"input": "17\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw\njtbctslqq tosqzw",
"output": "1"
},
{
"input": "18\nb d\nrfdb esp\nrfdb esp\nb d\nrfdb esp\nrfdb esp\nb d\nb d\nrfdb esp\nrfdb esp\nb d\nrfdb esp\nb d\nrfdb esp\nb d\nb d\nrfdb esp\nrfdb esp",
"output": "2"
},
{
"input": "13\nsvpzwtwn rykzfdce\nqweiyeck jkreouy\nhk nnli\ntwxrnbbdt vtuv\nxokqjtylly sz\nesdt dbfidjslq\ng ybqgomvw\nxcpfjmf zcqvz\nifajadhj invzueip\nvdemdnxifb hckwebmi\nsdpnhipam wvowzavh\nuqdlfskhgo vunbpghae\ne dtigwnb",
"output": "13"
},
{
"input": "20\nm vkfh\nvptikamead mvx\nitu mf\nklruxckw aqega\nekqkd enjllwol\ncc uybfdh\nimrfdngvo u\ne uh\ntwt jsslcfuogk\nbljwqsag tuqbdn\nqcv q\nasx gzhvwwmajj\nqcv q\nekqkd enjllwol\nasx gzhvwwmajj\nks vv\nkzyfi cn\ncc uybfdh\nitu mf\ncjbjhtbyvk vatwfmux",
"output": "15"
},
{
"input": "2\nab ab\na bab",
"output": "2"
}
] | 1,697,896,235
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 29
| 124
| 0
|
n=int(input())
set=set()
for i in range(0,n):
set.add(input())
print(len(set))
|
Title: Indian Summer
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Indian summer is such a beautiful time of the year! A girl named Alyona is walking in the forest and picking a bouquet from fallen leaves. Alyona is very choosy β she doesn't take a leaf if it matches the color and the species of the tree of one of the leaves she already has. Find out how many leaves Alyona has picked.
Input Specification:
The first line contains an integer *n* (1<=β€<=*n*<=β€<=100) β the number of leaves Alyona has found. The next *n* lines contain the leaves' descriptions. Each leaf is characterized by the species of the tree it has fallen from and by the color. The species of the trees and colors are given in names, consisting of no more than 10 lowercase Latin letters. A name can not be an empty string. The species of a tree and the color are given in each line separated by a space.
Output Specification:
Output the single number β the number of Alyona's leaves.
Demo Input:
['5\nbirch yellow\nmaple red\nbirch yellow\nmaple yellow\nmaple green\n', '3\noak yellow\noak yellow\noak yellow\n']
Demo Output:
['4\n', '1\n']
Note:
none
|
```python
n=int(input())
set=set()
for i in range(0,n):
set.add(input())
print(len(set))
```
| 3.969
|
765
|
A
|
Neverending competitions
|
PROGRAMMING
| 900
|
[
"implementation",
"math"
] | null | null |
There are literally dozens of snooker competitions held each year, and team Jinotega tries to attend them all (for some reason they prefer name "snookah")! When a competition takes place somewhere far from their hometown, Ivan, Artsem and Konstantin take a flight to the contest and back.
Jinotega's best friends, team Base have found a list of their itinerary receipts with information about departure and arrival airports. Now they wonder, where is Jinotega now: at home or at some competition far away? They know that:
- this list contains all Jinotega's flights in this year (in arbitrary order), - Jinotega has only flown from his hometown to a snooker contest and back, - after each competition Jinotega flies back home (though they may attend a competition in one place several times), - and finally, at the beginning of the year Jinotega was at home.
Please help them to determine Jinotega's location!
|
In the first line of input there is a single integer *n*: the number of Jinotega's flights (1<=β€<=*n*<=β€<=100). In the second line there is a string of 3 capital Latin letters: the name of Jinotega's home airport. In the next *n* lines there is flight information, one flight per line, in form "XXX->YYY", where "XXX" is the name of departure airport "YYY" is the name of arrival airport. Exactly one of these airports is Jinotega's home airport.
It is guaranteed that flights information is consistent with the knowledge of Jinotega's friends, which is described in the main part of the statement.
|
If Jinotega is now at home, print "home" (without quotes), otherwise print "contest".
|
[
"4\nSVO\nSVO->CDG\nLHR->SVO\nSVO->LHR\nCDG->SVO\n",
"3\nSVO\nSVO->HKT\nHKT->SVO\nSVO->RAP\n"
] |
[
"home\n",
"contest\n"
] |
In the first sample Jinotega might first fly from SVO to CDG and back, and then from SVO to LHR and back, so now they should be at home. In the second sample Jinotega must now be at RAP because a flight from RAP back to SVO is not on the list.
| 500
|
[
{
"input": "4\nSVO\nSVO->CDG\nLHR->SVO\nSVO->LHR\nCDG->SVO",
"output": "home"
},
{
"input": "3\nSVO\nSVO->HKT\nHKT->SVO\nSVO->RAP",
"output": "contest"
},
{
"input": "1\nESJ\nESJ->TSJ",
"output": "contest"
},
{
"input": "2\nXMR\nFAJ->XMR\nXMR->FAJ",
"output": "home"
},
{
"input": "3\nZIZ\nDWJ->ZIZ\nZIZ->DWJ\nZIZ->DWJ",
"output": "contest"
},
{
"input": "10\nPVO\nDMN->PVO\nDMN->PVO\nPVO->DMN\nDMN->PVO\nPVO->DMN\nPVO->DMN\nPVO->DMN\nDMN->PVO\nPVO->DMN\nDMN->PVO",
"output": "home"
},
{
"input": "11\nIAU\nIAU->RUQ\nIAU->RUQ\nRUQ->IAU\nRUQ->IAU\nIAU->RUQ\nRUQ->IAU\nIAU->RUQ\nRUQ->IAU\nIAU->RUQ\nIAU->RUQ\nRUQ->IAU",
"output": "contest"
},
{
"input": "10\nHPN\nDFI->HPN\nHPN->KAB\nHPN->DFI\nVSO->HPN\nHPN->KZX\nHPN->VSO\nKZX->HPN\nLDW->HPN\nKAB->HPN\nHPN->LDW",
"output": "home"
},
{
"input": "11\nFGH\nFGH->BRZ\nUBK->FGH\nQRE->FGH\nFGH->KQK\nFGH->QRE\nKQK->FGH\nFGH->UBK\nBRZ->FGH\nFGH->ALX\nALX->FGH\nFGH->KQK",
"output": "contest"
},
{
"input": "50\nPFH\nJFV->PFH\nBVP->PFH\nPFH->BVP\nPFH->JFV\nPFH->ETQ\nPFH->LQJ\nZTO->PFH\nPFH->BVP\nPFH->RXO\nPFH->ZTO\nHWL->PFH\nPFH->HIV\nPFH->AFP\nPFH->HWL\nOBB->PFH\nHIV->PFH\nPFH->LSR\nAFP->PFH\nLQJ->PFH\nHWL->PFH\nETQ->PFH\nPFH->HWL\nLSR->PFH\nWBR->PFH\nBNZ->PFH\nHQR->PFH\nZTO->PFH\nPFH->WBR\nPFH->BYJ\nRXO->PFH\nFHZ->PFH\nFHZ->PFH\nPFN->PFH\nPFH->GMB\nPFH->JFV\nJFV->PFH\nGNZ->PFH\nPFH->BNZ\nPFH->GNZ\nPFH->HQR\nBYJ->PFH\nGMB->PFH\nPFH->FHZ\nPFH->FHZ\nPFH->ZTO\nPFH->UGD\nBVP->PFH\nUGD->PFH\nPFH->PFN\nPFH->OBB",
"output": "home"
},
{
"input": "1\nAAK\nAAK->ABA",
"output": "contest"
},
{
"input": "1\nXYZ\nXYZ->XYR",
"output": "contest"
}
] | 1,614,368,571
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 23
| 62
| 0
|
n = int(input())
home = input()
flights = []
be_in_home = 0
not_in_home = 0
for i in range(n):
airport_from, airport_to = map(str, input().split('->'))
flights.append([airport_from, airport_to])
for x in flights:
if x[1] == home:
be_in_home += 1
else:
not_in_home += 1
if be_in_home != not_in_home:
print('contest')
else:
print('home')
|
Title: Neverending competitions
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are literally dozens of snooker competitions held each year, and team Jinotega tries to attend them all (for some reason they prefer name "snookah")! When a competition takes place somewhere far from their hometown, Ivan, Artsem and Konstantin take a flight to the contest and back.
Jinotega's best friends, team Base have found a list of their itinerary receipts with information about departure and arrival airports. Now they wonder, where is Jinotega now: at home or at some competition far away? They know that:
- this list contains all Jinotega's flights in this year (in arbitrary order), - Jinotega has only flown from his hometown to a snooker contest and back, - after each competition Jinotega flies back home (though they may attend a competition in one place several times), - and finally, at the beginning of the year Jinotega was at home.
Please help them to determine Jinotega's location!
Input Specification:
In the first line of input there is a single integer *n*: the number of Jinotega's flights (1<=β€<=*n*<=β€<=100). In the second line there is a string of 3 capital Latin letters: the name of Jinotega's home airport. In the next *n* lines there is flight information, one flight per line, in form "XXX->YYY", where "XXX" is the name of departure airport "YYY" is the name of arrival airport. Exactly one of these airports is Jinotega's home airport.
It is guaranteed that flights information is consistent with the knowledge of Jinotega's friends, which is described in the main part of the statement.
Output Specification:
If Jinotega is now at home, print "home" (without quotes), otherwise print "contest".
Demo Input:
['4\nSVO\nSVO->CDG\nLHR->SVO\nSVO->LHR\nCDG->SVO\n', '3\nSVO\nSVO->HKT\nHKT->SVO\nSVO->RAP\n']
Demo Output:
['home\n', 'contest\n']
Note:
In the first sample Jinotega might first fly from SVO to CDG and back, and then from SVO to LHR and back, so now they should be at home. In the second sample Jinotega must now be at RAP because a flight from RAP back to SVO is not on the list.
|
```python
n = int(input())
home = input()
flights = []
be_in_home = 0
not_in_home = 0
for i in range(n):
airport_from, airport_to = map(str, input().split('->'))
flights.append([airport_from, airport_to])
for x in flights:
if x[1] == home:
be_in_home += 1
else:
not_in_home += 1
if be_in_home != not_in_home:
print('contest')
else:
print('home')
```
| 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)<=Γ<=(*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<=β€<=*n*,<=*m*<=β€<=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 '<' and '>', denoting direction of each horizontal street. If the *i*-th character is equal to '<', 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><>\nv^v\n",
"4 6\n<><>\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"
}
] | 1,608,964,339
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 81
| 233
| 307,200
|
n, m = map(int, input("").split())
row_order = [ char for char in input("")]
col_order = [char for char in input("")]
class Node():
def __init__(self, id):
self.row_id, self.col_id = id
self.children = []
def add_child(self, child_node_id):
self.children.append(child_node_id)
def add_horizontal_edge(row_dir, row_id, col_id):
if row_dir == '>' and col_id < m-1:
matrix[row_id][col_id].add_child((row_id ,col_id+1))
elif row_dir == '<' and col_id > 0:
matrix[row_id][col_id].add_child((row_id, col_id-1))
def add_vertical_edge(col_dir, row_id, col_id):
if col_dir == '^' and row_id > 0:
matrix[row_id][col_id].add_child((row_id-1, col_id))
elif col_dir == 'v'and row_id < n-1:
matrix[row_id][col_id].add_child((row_id+1, col_id))
matrix = [[Node((row_id, col_id)) for col_id in range(m)] for row_id in range(n)]
for row_id in range(n):
row_dir = row_order[row_id]
for col_id in range(m):
col_dir = col_order[col_id]
add_horizontal_edge(row_dir, row_id, col_id)
add_vertical_edge(col_dir, row_id, col_id)
def explore(row_id, col_id, visited):
if visited[row_id][col_id] == 'true':
return
else:
visited[row_id][col_id] ='true'
for child_row_id, child_col_id in matrix[row_id][col_id].children:
explore(child_row_id, child_col_id, visited)
return
answer = 'YES'
def dfs(answer):
for row_id in range(n):
for col_id in range(m):
visited = [['false' for col_id in range(m)] for row_id in range(n)]
explore(row_id, col_id, visited)
for i in range(n):
for j in range(m):
if visited[i][j] == 'false':
answer = 'NO'
return answer
return answer
answer = dfs(answer)
print(answer)
|
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)<=Γ<=(*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<=β€<=*n*,<=*m*<=β€<=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 '<' and '>', denoting direction of each horizontal street. If the *i*-th character is equal to '<', 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><>\nv^v\n', '4 6\n<><>\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 = map(int, input("").split())
row_order = [ char for char in input("")]
col_order = [char for char in input("")]
class Node():
def __init__(self, id):
self.row_id, self.col_id = id
self.children = []
def add_child(self, child_node_id):
self.children.append(child_node_id)
def add_horizontal_edge(row_dir, row_id, col_id):
if row_dir == '>' and col_id < m-1:
matrix[row_id][col_id].add_child((row_id ,col_id+1))
elif row_dir == '<' and col_id > 0:
matrix[row_id][col_id].add_child((row_id, col_id-1))
def add_vertical_edge(col_dir, row_id, col_id):
if col_dir == '^' and row_id > 0:
matrix[row_id][col_id].add_child((row_id-1, col_id))
elif col_dir == 'v'and row_id < n-1:
matrix[row_id][col_id].add_child((row_id+1, col_id))
matrix = [[Node((row_id, col_id)) for col_id in range(m)] for row_id in range(n)]
for row_id in range(n):
row_dir = row_order[row_id]
for col_id in range(m):
col_dir = col_order[col_id]
add_horizontal_edge(row_dir, row_id, col_id)
add_vertical_edge(col_dir, row_id, col_id)
def explore(row_id, col_id, visited):
if visited[row_id][col_id] == 'true':
return
else:
visited[row_id][col_id] ='true'
for child_row_id, child_col_id in matrix[row_id][col_id].children:
explore(child_row_id, child_col_id, visited)
return
answer = 'YES'
def dfs(answer):
for row_id in range(n):
for col_id in range(m):
visited = [['false' for col_id in range(m)] for row_id in range(n)]
explore(row_id, col_id, visited)
for i in range(n):
for j in range(m):
if visited[i][j] == 'false':
answer = 'NO'
return answer
return answer
answer = dfs(answer)
print(answer)
```
| 3
|
|
131
|
A
|
cAPS lOCK
|
PROGRAMMING
| 1,000
|
[
"implementation",
"strings"
] | null | null |
wHAT DO WE NEED cAPS LOCK FOR?
Caps lock is a computer keyboard key. Pressing it sets an input mode in which typed letters are capital by default. If it is pressed by accident, it leads to accidents like the one we had in the first passage.
Let's consider that a word has been typed with the Caps lock key accidentally switched on, if:
- either it only contains uppercase letters; - or all letters except for the first one are uppercase.
In this case we should automatically change the case of all letters. For example, the case of the letters that form words "hELLO", "HTTP", "z" should be changed.
Write a program that applies the rule mentioned above. If the rule cannot be applied, the program should leave the word unchanged.
|
The first line of the input data contains a word consisting of uppercase and lowercase Latin letters. The word's length is from 1 to 100 characters, inclusive.
|
Print the result of the given word's processing.
|
[
"cAPS\n",
"Lock\n"
] |
[
"Caps",
"Lock\n"
] |
none
| 500
|
[
{
"input": "cAPS",
"output": "Caps"
},
{
"input": "Lock",
"output": "Lock"
},
{
"input": "cAPSlOCK",
"output": "cAPSlOCK"
},
{
"input": "CAPs",
"output": "CAPs"
},
{
"input": "LoCK",
"output": "LoCK"
},
{
"input": "OOPS",
"output": "oops"
},
{
"input": "oops",
"output": "oops"
},
{
"input": "a",
"output": "A"
},
{
"input": "A",
"output": "a"
},
{
"input": "aA",
"output": "Aa"
},
{
"input": "Zz",
"output": "Zz"
},
{
"input": "Az",
"output": "Az"
},
{
"input": "zA",
"output": "Za"
},
{
"input": "AAA",
"output": "aaa"
},
{
"input": "AAa",
"output": "AAa"
},
{
"input": "AaR",
"output": "AaR"
},
{
"input": "Tdr",
"output": "Tdr"
},
{
"input": "aTF",
"output": "Atf"
},
{
"input": "fYd",
"output": "fYd"
},
{
"input": "dsA",
"output": "dsA"
},
{
"input": "fru",
"output": "fru"
},
{
"input": "hYBKF",
"output": "Hybkf"
},
{
"input": "XweAR",
"output": "XweAR"
},
{
"input": "mogqx",
"output": "mogqx"
},
{
"input": "eOhEi",
"output": "eOhEi"
},
{
"input": "nkdku",
"output": "nkdku"
},
{
"input": "zcnko",
"output": "zcnko"
},
{
"input": "lcccd",
"output": "lcccd"
},
{
"input": "vwmvg",
"output": "vwmvg"
},
{
"input": "lvchf",
"output": "lvchf"
},
{
"input": "IUNVZCCHEWENCHQQXQYPUJCRDZLUXCLJHXPHBXEUUGNXOOOPBMOBRIBHHMIRILYJGYYGFMTMFSVURGYHUWDRLQVIBRLPEVAMJQYO",
"output": "iunvzcchewenchqqxqypujcrdzluxcljhxphbxeuugnxooopbmobribhhmirilyjgyygfmtmfsvurgyhuwdrlqvibrlpevamjqyo"
},
{
"input": "OBHSZCAMDXEJWOZLKXQKIVXUUQJKJLMMFNBPXAEFXGVNSKQLJGXHUXHGCOTESIVKSFMVVXFVMTEKACRIWALAGGMCGFEXQKNYMRTG",
"output": "obhszcamdxejwozlkxqkivxuuqjkjlmmfnbpxaefxgvnskqljgxhuxhgcotesivksfmvvxfvmtekacriwalaggmcgfexqknymrtg"
},
{
"input": "IKJYZIKROIYUUCTHSVSKZTETNNOCMAUBLFJCEVANCADASMZRCNLBZPQRXESHEEMOMEPCHROSRTNBIDXYMEPJSIXSZQEBTEKKUHFS",
"output": "ikjyzikroiyuucthsvskztetnnocmaublfjcevancadasmzrcnlbzpqrxesheemomepchrosrtnbidxymepjsixszqebtekkuhfs"
},
{
"input": "cTKDZNWVYRTFPQLDAUUNSPKTDJTUPPFPRXRSINTVFVNNQNKXWUZUDHZBUSOKTABUEDQKUIVRTTVUREEOBJTSDKJKVEGFXVHXEYPE",
"output": "Ctkdznwvyrtfpqldauunspktdjtuppfprxrsintvfvnnqnkxwuzudhzbusoktabuedqkuivrttvureeobjtsdkjkvegfxvhxeype"
},
{
"input": "uCKJZRGZJCPPLEEYJTUNKOQSWGBMTBQEVPYFPIPEKRVYQNTDPANOIXKMPINNFUSZWCURGBDPYTEKBEKCPMVZPMWAOSHJYMGKOMBQ",
"output": "Uckjzrgzjcppleeyjtunkoqswgbmtbqevpyfpipekrvyqntdpanoixkmpinnfuszwcurgbdpytekbekcpmvzpmwaoshjymgkombq"
},
{
"input": "KETAXTSWAAOBKUOKUQREHIOMVMMRSAEWKGXZKRASwTVNSSFSNIWYNPSTMRADOADEEBURRHPOOBIEUIBGYDJCEKPNLEUCANZYJKMR",
"output": "KETAXTSWAAOBKUOKUQREHIOMVMMRSAEWKGXZKRASwTVNSSFSNIWYNPSTMRADOADEEBURRHPOOBIEUIBGYDJCEKPNLEUCANZYJKMR"
},
{
"input": "ZEKGDMWJPVUWFlNXRLUmWKLMMYSLRQQIBRWDPKWITUIMZYYKOEYGREKHHZRZZUFPVTNIHKGTCCTLOKSZITXXZDMPITHNZUIGDZLE",
"output": "ZEKGDMWJPVUWFlNXRLUmWKLMMYSLRQQIBRWDPKWITUIMZYYKOEYGREKHHZRZZUFPVTNIHKGTCCTLOKSZITXXZDMPITHNZUIGDZLE"
},
{
"input": "TcMbVPCFvnNkCEUUCIFLgBJeCOKuJhIGwXFrhAZjuAhBraMSchBfWwIuHAEbgJOFzGtxDLDXzDSaPCFujGGxgxdlHUIQYRrMFCgJ",
"output": "TcMbVPCFvnNkCEUUCIFLgBJeCOKuJhIGwXFrhAZjuAhBraMSchBfWwIuHAEbgJOFzGtxDLDXzDSaPCFujGGxgxdlHUIQYRrMFCgJ"
},
{
"input": "xFGqoLILNvxARKuIntPfeukFtMbvzDezKpPRAKkIoIvwqNXnehRVwkkXYvuRCeoieBaBfTjwsYhDeCLvBwktntyluoxCYVioXGdm",
"output": "xFGqoLILNvxARKuIntPfeukFtMbvzDezKpPRAKkIoIvwqNXnehRVwkkXYvuRCeoieBaBfTjwsYhDeCLvBwktntyluoxCYVioXGdm"
},
{
"input": "udvqolbxdwbkijwvhlyaelhynmnfgszbhgshlcwdkaibceqomzujndixuzivlsjyjqxzxodzbukxxhwwultvekdfntwpzlhhrIjm",
"output": "udvqolbxdwbkijwvhlyaelhynmnfgszbhgshlcwdkaibceqomzujndixuzivlsjyjqxzxodzbukxxhwwultvekdfntwpzlhhrIjm"
},
{
"input": "jgpwhetqqoncighgzbbaLwwwxkxivuwtokehrgprfgewzcwxkavwoflcgsgbhoeamzbefzoonwsyzisetoydrpufktzgbaycgaeg",
"output": "jgpwhetqqoncighgzbbaLwwwxkxivuwtokehrgprfgewzcwxkavwoflcgsgbhoeamzbefzoonwsyzisetoydrpufktzgbaycgaeg"
},
{
"input": "vyujsazdstbnkxeunedfbolicojzjpufgfemhtmdrswvmuhoivjvonacefqenbqudelmdegxqtbwezsbydmanzutvdgkgrjxzlnc",
"output": "vyujsazdstbnkxeunedfbolicojzjpufgfemhtmdrswvmuhoivjvonacefqenbqudelmdegxqtbwezsbydmanzutvdgkgrjxzlnc"
},
{
"input": "pivqnuqkaofcduvbttztjbuavrqwiqrwkfncmvatoxruelyoecnkpqraiahumiaiqeyjapbqyrsxcdgjbihivtqezvasfmzntdfv",
"output": "pivqnuqkaofcduvbttztjbuavrqwiqrwkfncmvatoxruelyoecnkpqraiahumiaiqeyjapbqyrsxcdgjbihivtqezvasfmzntdfv"
},
{
"input": "upvtbsxswbohxshdrbjxcungzquhuomgxwlryvshshsfvqbrxvcikbglietlpqkiwbhiqpmdwuqosbtdvyxekkaqiwrbsibpoect",
"output": "upvtbsxswbohxshdrbjxcungzquhuomgxwlryvshshsfvqbrxvcikbglietlpqkiwbhiqpmdwuqosbtdvyxekkaqiwrbsibpoect"
},
{
"input": "cTKDZNWVYRTFPQLDAUUNSPKTDJTUPPFPRXRSINTVFVNNQNKXWUZUDHZBUSOKTABUEDQKUIVRTTVUREEOBJTSDKJKVEGFXVHXEYPE",
"output": "Ctkdznwvyrtfpqldauunspktdjtuppfprxrsintvfvnnqnkxwuzudhzbusoktabuedqkuivrttvureeobjtsdkjkvegfxvhxeype"
},
{
"input": "JEGDOFJOFGJHFROGHOFGMHOFGHORGFHMOu",
"output": "JEGDOFJOFGJHFROGHOFGMHOFGHORGFHMOu"
},
{
"input": "aBACABa",
"output": "aBACABa"
},
{
"input": "AAAAAAAAAAAAAAAAAAAAAAAAaa",
"output": "AAAAAAAAAAAAAAAAAAAAAAAAaa"
},
{
"input": "aaAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA",
"output": "aaAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA"
},
{
"input": "dDDDDDDDDDDDDD",
"output": "Dddddddddddddd"
},
{
"input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa",
"output": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "z",
"output": "Z"
},
{
"input": "AZ",
"output": "az"
},
{
"input": "Z",
"output": "z"
},
{
"input": "aAAAA",
"output": "Aaaaa"
},
{
"input": "F",
"output": "f"
}
] | 1,694,537,967
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 56
| 46
| 0
|
inp = input()
if inp[0]==inp[0].lower() and inp[1:]==inp[1:].upper():
print(inp.title())
elif inp==inp.upper():
print(inp.lower())
else:
print(inp)
|
Title: cAPS lOCK
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
wHAT DO WE NEED cAPS LOCK FOR?
Caps lock is a computer keyboard key. Pressing it sets an input mode in which typed letters are capital by default. If it is pressed by accident, it leads to accidents like the one we had in the first passage.
Let's consider that a word has been typed with the Caps lock key accidentally switched on, if:
- either it only contains uppercase letters; - or all letters except for the first one are uppercase.
In this case we should automatically change the case of all letters. For example, the case of the letters that form words "hELLO", "HTTP", "z" should be changed.
Write a program that applies the rule mentioned above. If the rule cannot be applied, the program should leave the word unchanged.
Input Specification:
The first line of the input data contains a word consisting of uppercase and lowercase Latin letters. The word's length is from 1 to 100 characters, inclusive.
Output Specification:
Print the result of the given word's processing.
Demo Input:
['cAPS\n', 'Lock\n']
Demo Output:
['Caps', 'Lock\n']
Note:
none
|
```python
inp = input()
if inp[0]==inp[0].lower() and inp[1:]==inp[1:].upper():
print(inp.title())
elif inp==inp.upper():
print(inp.lower())
else:
print(inp)
```
| 3
|
|
102
|
B
|
Sum of Digits
|
PROGRAMMING
| 1,000
|
[
"implementation"
] |
B. Sum of Digits
|
2
|
265
|
Having watched the last Harry Potter film, little Gerald also decided to practice magic. He found in his father's magical book a spell that turns any number in the sum of its digits. At the moment Gerald learned that, he came across a number *n*. How many times can Gerald put a spell on it until the number becomes one-digit?
|
The first line contains the only integer *n* (0<=β€<=*n*<=β€<=10100000). It is guaranteed that *n* doesn't contain any leading zeroes.
|
Print the number of times a number can be replaced by the sum of its digits until it only contains one digit.
|
[
"0\n",
"10\n",
"991\n"
] |
[
"0\n",
"1\n",
"3\n"
] |
In the first sample the number already is one-digit β Herald can't cast a spell.
The second test contains number 10. After one casting of a spell it becomes 1, and here the process is completed. Thus, Gerald can only cast the spell once.
The third test contains number 991. As one casts a spell the following transformations take place: 991βββ19βββ10βββ1. After three transformations the number becomes one-digit.
| 1,000
|
[
{
"input": "0",
"output": "0"
},
{
"input": "10",
"output": "1"
},
{
"input": "991",
"output": "3"
},
{
"input": "99",
"output": "2"
},
{
"input": "100",
"output": "1"
},
{
"input": "123456789",
"output": "2"
},
{
"input": "32",
"output": "1"
},
{
"input": "86",
"output": "2"
},
{
"input": "2",
"output": "0"
},
{
"input": "8",
"output": "0"
},
{
"input": "34",
"output": "1"
},
{
"input": "13",
"output": "1"
},
{
"input": "28",
"output": "2"
},
{
"input": "23",
"output": "1"
},
{
"input": "57",
"output": "2"
},
{
"input": "29",
"output": "2"
},
{
"input": "353869285",
"output": "3"
},
{
"input": "549548646",
"output": "2"
},
{
"input": "858893424",
"output": "2"
},
{
"input": "644818852",
"output": "3"
},
{
"input": "360322525",
"output": "3"
},
{
"input": "122937520",
"output": "2"
},
{
"input": "288403032",
"output": "2"
},
{
"input": "677257481",
"output": "3"
},
{
"input": "58059561",
"output": "3"
},
{
"input": "211288847",
"output": "2"
},
{
"input": "339900034079539584",
"output": "2"
},
{
"input": "784084029310269952",
"output": "3"
},
{
"input": "774730557264864000",
"output": "3"
},
{
"input": "478233807148352256",
"output": "3"
},
{
"input": "165646874056812544",
"output": "3"
},
{
"input": "477533739511673792",
"output": "3"
},
{
"input": "660119944377002240",
"output": "3"
},
{
"input": "448375218506078080",
"output": "3"
},
{
"input": "77213334785795616",
"output": "3"
},
{
"input": "165767221702271872",
"output": "3"
},
{
"input": "1",
"output": "0"
},
{
"input": "5",
"output": "0"
},
{
"input": "8",
"output": "0"
},
{
"input": "156161456146164104103460452045416165146141414651641564105461465156445621465146514562146145465165145145614561465145614561",
"output": "3"
},
{
"input": "9",
"output": "0"
}
] | 1,659,867,232
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 51
| 186
| 2,150,400
|
from collections import Counter
def transform(s):
c = Counter(s)
val = 0
for k in c:
val += (ord(k)-ord('0'))*c[k]
return str(val)
s = input()
count = 0
while(len(s)>=2):
s = transform(s)
count+=1
print(count)
|
Title: Sum of Digits
Time Limit: 2 seconds
Memory Limit: 265 megabytes
Problem Description:
Having watched the last Harry Potter film, little Gerald also decided to practice magic. He found in his father's magical book a spell that turns any number in the sum of its digits. At the moment Gerald learned that, he came across a number *n*. How many times can Gerald put a spell on it until the number becomes one-digit?
Input Specification:
The first line contains the only integer *n* (0<=β€<=*n*<=β€<=10100000). It is guaranteed that *n* doesn't contain any leading zeroes.
Output Specification:
Print the number of times a number can be replaced by the sum of its digits until it only contains one digit.
Demo Input:
['0\n', '10\n', '991\n']
Demo Output:
['0\n', '1\n', '3\n']
Note:
In the first sample the number already is one-digit β Herald can't cast a spell.
The second test contains number 10. After one casting of a spell it becomes 1, and here the process is completed. Thus, Gerald can only cast the spell once.
The third test contains number 991. As one casts a spell the following transformations take place: 991βββ19βββ10βββ1. After three transformations the number becomes one-digit.
|
```python
from collections import Counter
def transform(s):
c = Counter(s)
val = 0
for k in c:
val += (ord(k)-ord('0'))*c[k]
return str(val)
s = input()
count = 0
while(len(s)>=2):
s = transform(s)
count+=1
print(count)
```
| 3.949631
|
296
|
A
|
Yaroslav and Permutations
|
PROGRAMMING
| 1,100
|
[
"greedy",
"math"
] | null | null |
Yaroslav has an array that consists of *n* integers. In one second Yaroslav can swap two neighboring array elements. Now Yaroslav is wondering if he can obtain an array where any two neighboring elements would be distinct in a finite time.
Help Yaroslav.
|
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of elements in the array. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=1000) β the array elements.
|
In the single line print "YES" (without the quotes) if Yaroslav can obtain the array he needs, and "NO" (without the quotes) otherwise.
|
[
"1\n1\n",
"3\n1 1 2\n",
"4\n7 7 7 7\n"
] |
[
"YES\n",
"YES\n",
"NO\n"
] |
In the first sample the initial array fits well.
In the second sample Yaroslav can get array: 1, 2, 1. He can swap the last and the second last elements to obtain it.
In the third sample Yarosav can't get the array he needs.
| 500
|
[
{
"input": "1\n1",
"output": "YES"
},
{
"input": "3\n1 1 2",
"output": "YES"
},
{
"input": "4\n7 7 7 7",
"output": "NO"
},
{
"input": "4\n479 170 465 146",
"output": "YES"
},
{
"input": "5\n996 437 605 996 293",
"output": "YES"
},
{
"input": "6\n727 539 896 668 36 896",
"output": "YES"
},
{
"input": "7\n674 712 674 674 674 674 674",
"output": "NO"
},
{
"input": "8\n742 742 742 742 742 289 742 742",
"output": "NO"
},
{
"input": "9\n730 351 806 806 806 630 85 757 967",
"output": "YES"
},
{
"input": "10\n324 539 83 440 834 640 440 440 440 440",
"output": "YES"
},
{
"input": "7\n925 830 925 98 987 162 356",
"output": "YES"
},
{
"input": "68\n575 32 53 351 151 942 725 967 431 108 192 8 338 458 288 754 384 946 910 210 759 222 589 423 947 507 31 414 169 901 592 763 656 411 360 625 538 549 484 596 42 603 351 292 837 375 21 597 22 349 200 669 485 282 735 54 1000 419 939 901 789 128 468 729 894 649 484 808",
"output": "YES"
},
{
"input": "22\n618 814 515 310 617 936 452 601 250 520 557 799 304 225 9 845 610 990 703 196 486 94",
"output": "YES"
},
{
"input": "44\n459 581 449 449 449 449 449 449 449 623 449 449 449 449 449 449 449 449 889 449 203 273 329 449 449 449 449 449 449 845 882 323 22 449 449 893 449 449 449 449 449 870 449 402",
"output": "NO"
},
{
"input": "90\n424 3 586 183 286 89 427 618 758 833 933 170 155 722 190 977 330 369 693 426 556 435 550 442 513 146 61 719 754 140 424 280 997 688 530 550 438 867 950 194 196 298 417 287 106 489 283 456 735 115 702 317 672 787 264 314 356 186 54 913 809 833 946 314 757 322 559 647 983 482 145 197 223 130 162 536 451 174 467 45 660 293 440 254 25 155 511 746 650 187",
"output": "YES"
},
{
"input": "14\n959 203 478 315 788 788 373 834 488 519 774 764 193 103",
"output": "YES"
},
{
"input": "81\n544 528 528 528 528 4 506 528 32 528 528 528 528 528 528 528 528 975 528 528 528 528 528 528 528 528 528 528 528 528 528 20 528 528 528 528 528 528 528 528 852 528 528 120 528 528 61 11 528 528 528 228 528 165 883 528 488 475 628 528 528 528 528 528 528 597 528 528 528 528 528 528 528 528 528 528 528 412 528 521 925",
"output": "NO"
},
{
"input": "89\n354 356 352 355 355 355 352 354 354 352 355 356 355 352 354 356 354 355 355 354 353 352 352 355 355 356 352 352 353 356 352 353 354 352 355 352 353 353 353 354 353 354 354 353 356 353 353 354 354 354 354 353 352 353 355 356 356 352 356 354 353 352 355 354 356 356 356 354 354 356 354 355 354 355 353 352 354 355 352 355 355 354 356 353 353 352 356 352 353",
"output": "YES"
},
{
"input": "71\n284 284 285 285 285 284 285 284 284 285 284 285 284 284 285 284 285 285 285 285 284 284 285 285 284 284 284 285 284 285 284 285 285 284 284 284 285 284 284 285 285 285 284 284 285 284 285 285 284 285 285 284 285 284 284 284 285 285 284 285 284 285 285 285 285 284 284 285 285 284 285",
"output": "NO"
},
{
"input": "28\n602 216 214 825 814 760 814 28 76 814 814 288 814 814 222 707 11 490 814 543 914 705 814 751 976 814 814 99",
"output": "YES"
},
{
"input": "48\n546 547 914 263 986 945 914 914 509 871 324 914 153 571 914 914 914 528 970 566 544 914 914 914 410 914 914 589 609 222 914 889 691 844 621 68 914 36 914 39 630 749 914 258 945 914 727 26",
"output": "YES"
},
{
"input": "56\n516 76 516 197 516 427 174 516 706 813 94 37 516 815 516 516 937 483 16 516 842 516 638 691 516 635 516 516 453 263 516 516 635 257 125 214 29 81 516 51 362 516 677 516 903 516 949 654 221 924 516 879 516 516 972 516",
"output": "YES"
},
{
"input": "46\n314 723 314 314 314 235 314 314 314 314 270 314 59 972 314 216 816 40 314 314 314 314 314 314 314 381 314 314 314 314 314 314 314 789 314 957 114 942 314 314 29 314 314 72 314 314",
"output": "NO"
},
{
"input": "72\n169 169 169 599 694 81 250 529 865 406 817 169 667 169 965 169 169 663 65 169 903 169 942 763 169 807 169 603 169 169 13 169 169 810 169 291 169 169 169 169 169 169 169 713 169 440 169 169 169 169 169 480 169 169 867 169 169 169 169 169 169 169 169 393 169 169 459 169 99 169 601 800",
"output": "NO"
},
{
"input": "100\n317 316 317 316 317 316 317 316 317 316 316 317 317 316 317 316 316 316 317 316 317 317 316 317 316 316 316 316 316 316 317 316 317 317 317 317 317 317 316 316 316 317 316 317 316 317 316 317 317 316 317 316 317 317 316 317 316 317 316 317 316 316 316 317 317 317 317 317 316 317 317 316 316 316 316 317 317 316 317 316 316 316 316 316 316 317 316 316 317 317 317 317 317 317 317 317 317 316 316 317",
"output": "NO"
},
{
"input": "100\n510 510 510 162 969 32 510 511 510 510 911 183 496 875 903 461 510 510 123 578 510 510 510 510 510 755 510 673 510 510 763 510 510 909 510 435 487 959 807 510 368 788 557 448 284 332 510 949 510 510 777 112 857 926 487 510 510 510 678 510 510 197 829 427 698 704 409 509 510 238 314 851 510 651 510 455 682 510 714 635 973 510 443 878 510 510 510 591 510 24 596 510 43 183 510 510 671 652 214 784",
"output": "YES"
},
{
"input": "100\n476 477 474 476 476 475 473 476 474 475 473 477 476 476 474 476 474 475 476 477 473 473 473 474 474 476 473 473 476 476 475 476 473 474 473 473 477 475 475 475 476 475 477 477 477 476 475 475 475 473 476 477 475 476 477 473 474 477 473 475 476 476 474 477 476 474 473 477 473 475 477 473 476 474 477 473 475 477 473 476 476 475 476 475 474 473 477 473 475 473 477 473 473 474 475 473 477 476 477 474",
"output": "YES"
},
{
"input": "100\n498 498 498 498 498 499 498 499 499 499 498 498 498 498 499 498 499 499 498 499 498 498 498 499 499 499 498 498 499 499 498 498 498 499 498 499 498 498 498 499 498 499 498 498 498 498 499 498 498 499 498 498 499 498 499 499 498 499 499 499 498 498 498 498 499 498 499 498 499 499 499 499 498 498 499 499 498 499 499 498 498 499 499 498 498 499 499 499 498 498 499 498 498 498 499 499 499 498 498 499",
"output": "NO"
},
{
"input": "100\n858 53 816 816 816 816 816 816 816 181 816 816 816 816 579 879 816 948 171 816 816 150 866 816 816 816 897 816 816 816 816 816 816 706 816 539 816 816 816 816 816 816 423 487 816 615 254 816 816 816 816 83 816 816 816 816 816 816 816 816 816 816 816 136 775 999 816 816 816 644 816 816 816 816 927 816 802 816 856 816 816 816 816 816 816 816 816 816 816 700 816 816 816 816 982 477 816 891 806 816",
"output": "NO"
},
{
"input": "100\n167 169 169 167 169 169 167 167 167 167 168 166 170 170 169 170 170 170 169 168 166 167 170 169 167 169 168 169 166 170 166 167 170 166 166 167 169 166 166 169 166 167 168 168 170 167 168 166 168 170 167 168 167 169 169 166 168 167 170 168 167 169 168 169 166 168 168 169 169 166 170 168 167 169 170 168 167 169 168 167 168 168 166 169 170 170 166 166 167 170 167 168 167 167 169 169 166 166 169 167",
"output": "YES"
},
{
"input": "100\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 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 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 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": "NO"
},
{
"input": "99\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 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 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 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000",
"output": "NO"
},
{
"input": "100\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 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "YES"
},
{
"input": "99\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 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "YES"
},
{
"input": "2\n1 1",
"output": "NO"
},
{
"input": "1\n1000",
"output": "YES"
},
{
"input": "12\n2 2 4 4 4 4 6 6 6 6 6 6",
"output": "YES"
}
] | 1,556,129,213
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 37
| 248
| 0
|
n = int(input())
a = list(map(int, input().split()))
ok = True
for val in a:
if a.count(val) > (n+1)//2:
ok = False
break
print('YES' if ok else 'NO')
|
Title: Yaroslav and Permutations
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Yaroslav has an array that consists of *n* integers. In one second Yaroslav can swap two neighboring array elements. Now Yaroslav is wondering if he can obtain an array where any two neighboring elements would be distinct in a finite time.
Help Yaroslav.
Input Specification:
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of elements in the array. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=1000) β the array elements.
Output Specification:
In the single line print "YES" (without the quotes) if Yaroslav can obtain the array he needs, and "NO" (without the quotes) otherwise.
Demo Input:
['1\n1\n', '3\n1 1 2\n', '4\n7 7 7 7\n']
Demo Output:
['YES\n', 'YES\n', 'NO\n']
Note:
In the first sample the initial array fits well.
In the second sample Yaroslav can get array: 1, 2, 1. He can swap the last and the second last elements to obtain it.
In the third sample Yarosav can't get the array he needs.
|
```python
n = int(input())
a = list(map(int, input().split()))
ok = True
for val in a:
if a.count(val) > (n+1)//2:
ok = False
break
print('YES' if ok else 'NO')
```
| 3
|
|
46
|
A
|
Ball Game
|
PROGRAMMING
| 800
|
[
"brute force",
"implementation"
] |
A. Ball Game
|
2
|
256
|
A kindergarten teacher Natalia Pavlovna has invented a new ball game. This game not only develops the children's physique, but also teaches them how to count.
The game goes as follows. Kids stand in circle. Let's agree to think of the children as numbered with numbers from 1 to *n* clockwise and the child number 1 is holding the ball. First the first child throws the ball to the next one clockwise, i.e. to the child number 2. Then the child number 2 throws the ball to the next but one child, i.e. to the child number 4, then the fourth child throws the ball to the child that stands two children away from him, i.e. to the child number 7, then the ball is thrown to the child who stands 3 children away from the child number 7, then the ball is thrown to the child who stands 4 children away from the last one, and so on. It should be mentioned that when a ball is thrown it may pass the beginning of the circle. For example, if *n*<==<=5, then after the third throw the child number 2 has the ball again. Overall, *n*<=-<=1 throws are made, and the game ends.
The problem is that not all the children get the ball during the game. If a child doesn't get the ball, he gets very upset and cries until Natalia Pavlovna gives him a candy. That's why Natalia Pavlovna asks you to help her to identify the numbers of the children who will get the ball after each throw.
|
The first line contains integer *n* (2<=β€<=*n*<=β€<=100) which indicates the number of kids in the circle.
|
In the single line print *n*<=-<=1 numbers which are the numbers of children who will get the ball after each throw. Separate the numbers by spaces.
|
[
"10\n",
"3\n"
] |
[
"2 4 7 1 6 2 9 7 6\n",
"2 1\n"
] |
none
| 0
|
[
{
"input": "10",
"output": "2 4 7 1 6 2 9 7 6"
},
{
"input": "3",
"output": "2 1"
},
{
"input": "4",
"output": "2 4 3"
},
{
"input": "5",
"output": "2 4 2 1"
},
{
"input": "6",
"output": "2 4 1 5 4"
},
{
"input": "7",
"output": "2 4 7 4 2 1"
},
{
"input": "8",
"output": "2 4 7 3 8 6 5"
},
{
"input": "9",
"output": "2 4 7 2 7 4 2 1"
},
{
"input": "2",
"output": "2"
},
{
"input": "11",
"output": "2 4 7 11 5 11 7 4 2 1"
},
{
"input": "12",
"output": "2 4 7 11 4 10 5 1 10 8 7"
},
{
"input": "13",
"output": "2 4 7 11 3 9 3 11 7 4 2 1"
},
{
"input": "20",
"output": "2 4 7 11 16 2 9 17 6 16 7 19 12 6 1 17 14 12 11"
},
{
"input": "25",
"output": "2 4 7 11 16 22 4 12 21 6 17 4 17 6 21 12 4 22 16 11 7 4 2 1"
},
{
"input": "30",
"output": "2 4 7 11 16 22 29 7 16 26 7 19 2 16 1 17 4 22 11 1 22 14 7 1 26 22 19 17 16"
},
{
"input": "35",
"output": "2 4 7 11 16 22 29 2 11 21 32 9 22 1 16 32 14 32 16 1 22 9 32 21 11 2 29 22 16 11 7 4 2 1"
},
{
"input": "40",
"output": "2 4 7 11 16 22 29 37 6 16 27 39 12 26 1 17 34 12 31 11 32 14 37 21 6 32 19 7 36 26 17 9 2 36 31 27 24 22 21"
},
{
"input": "45",
"output": "2 4 7 11 16 22 29 37 1 11 22 34 2 16 31 2 19 37 11 31 7 29 7 31 11 37 19 2 31 16 2 34 22 11 1 37 29 22 16 11 7 4 2 1"
},
{
"input": "50",
"output": "2 4 7 11 16 22 29 37 46 6 17 29 42 6 21 37 4 22 41 11 32 4 27 1 26 2 29 7 36 16 47 29 12 46 31 17 4 42 31 21 12 4 47 41 36 32 29 27 26"
},
{
"input": "55",
"output": "2 4 7 11 16 22 29 37 46 1 12 24 37 51 11 27 44 7 26 46 12 34 2 26 51 22 49 22 51 26 2 34 12 46 26 7 44 27 11 51 37 24 12 1 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "60",
"output": "2 4 7 11 16 22 29 37 46 56 7 19 32 46 1 17 34 52 11 31 52 14 37 1 26 52 19 47 16 46 17 49 22 56 31 7 44 22 1 41 22 4 47 31 16 2 49 37 26 16 7 59 52 46 41 37 34 32 31"
},
{
"input": "65",
"output": "2 4 7 11 16 22 29 37 46 56 2 14 27 41 56 7 24 42 61 16 37 59 17 41 1 27 54 17 46 11 42 9 42 11 46 17 54 27 1 41 17 59 37 16 61 42 24 7 56 41 27 14 2 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "70",
"output": "2 4 7 11 16 22 29 37 46 56 67 9 22 36 51 67 14 32 51 1 22 44 67 21 46 2 29 57 16 46 7 39 2 36 1 37 4 42 11 51 22 64 37 11 56 32 9 57 36 16 67 49 32 16 1 57 44 32 21 11 2 64 57 51 46 42 39 37 36"
},
{
"input": "75",
"output": "2 4 7 11 16 22 29 37 46 56 67 4 17 31 46 62 4 22 41 61 7 29 52 1 26 52 4 32 61 16 47 4 37 71 31 67 29 67 31 71 37 4 47 16 61 32 4 52 26 1 52 29 7 61 41 22 4 62 46 31 17 4 67 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "80",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 12 26 41 57 74 12 31 51 72 14 37 61 6 32 59 7 36 66 17 49 2 36 71 27 64 22 61 21 62 24 67 31 76 42 9 57 26 76 47 19 72 46 21 77 54 32 11 71 52 34 17 1 66 52 39 27 16 6 77 69 62 56 51 47 44 42 41"
},
{
"input": "85",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 7 21 36 52 69 2 21 41 62 84 22 46 71 12 39 67 11 41 72 19 52 1 36 72 24 62 16 56 12 54 12 56 16 62 24 72 36 1 52 19 72 41 11 67 39 12 71 46 22 84 62 41 21 2 69 52 36 21 7 79 67 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "90",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 2 16 31 47 64 82 11 31 52 74 7 31 56 82 19 47 76 16 47 79 22 56 1 37 74 22 61 11 52 4 47 1 46 2 49 7 56 16 67 29 82 46 11 67 34 2 61 31 2 64 37 11 76 52 29 7 76 56 37 19 2 76 61 47 34 22 11 1 82 74 67 61 56 52 49 47 46"
},
{
"input": "95",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 11 26 42 59 77 1 21 42 64 87 16 41 67 94 27 56 86 22 54 87 26 61 2 39 77 21 61 7 49 92 41 86 37 84 37 86 41 92 49 7 61 21 77 39 2 61 26 87 54 22 86 56 27 94 67 41 16 87 64 42 21 1 77 59 42 26 11 92 79 67 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "96",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 10 25 41 58 76 95 19 40 62 85 13 38 64 91 23 52 82 17 49 82 20 55 91 32 70 13 53 94 40 83 31 76 26 73 25 74 28 79 35 88 46 5 61 22 80 43 7 68 34 1 65 34 4 71 43 16 86 61 37 14 88 67 47 28 10 89 73 58 44 31 19 8 94 85 77 70 64 59 55 52 50 49"
},
{
"input": "97",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 9 24 40 57 75 94 17 38 60 83 10 35 61 88 19 48 78 12 44 77 14 49 85 25 63 5 45 86 31 74 21 66 15 62 13 62 15 66 21 74 31 86 45 5 63 25 85 49 14 77 44 12 78 48 19 88 61 35 10 83 60 38 17 94 75 57 40 24 9 92 79 67 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "98",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 8 23 39 56 74 93 15 36 58 81 7 32 58 85 15 44 74 7 39 72 8 43 79 18 56 95 37 78 22 65 11 56 4 51 1 50 2 53 7 60 16 71 29 86 46 7 67 30 92 57 23 88 56 25 93 64 36 9 81 56 32 9 85 64 44 25 7 88 72 57 43 30 18 7 95 86 78 71 65 60 56 53 51 50"
},
{
"input": "99",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 7 22 38 55 73 92 13 34 56 79 4 29 55 82 11 40 70 2 34 67 2 37 73 11 49 88 29 70 13 56 1 46 92 40 88 38 88 40 92 46 1 56 13 70 29 88 49 11 73 37 2 67 34 2 70 40 11 82 55 29 4 79 56 34 13 92 73 55 38 22 7 92 79 67 56 46 37 29 22 16 11 7 4 2 1"
},
{
"input": "100",
"output": "2 4 7 11 16 22 29 37 46 56 67 79 92 6 21 37 54 72 91 11 32 54 77 1 26 52 79 7 36 66 97 29 62 96 31 67 4 42 81 21 62 4 47 91 36 82 29 77 26 76 27 79 32 86 41 97 54 12 71 31 92 54 17 81 46 12 79 47 16 86 57 29 2 76 51 27 4 82 61 41 22 4 87 71 56 42 29 17 6 96 87 79 72 66 61 57 54 52 51"
}
] | 1,589,469,218
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 33
| 218
| 6,656,000
|
n = int(input())
q = []
c = 1
i = 1
for _ in range(1,n):
i = i+c if i+c <= n else i+c-n
q.append(i)
c+=1
print(*q)
|
Title: Ball Game
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
A kindergarten teacher Natalia Pavlovna has invented a new ball game. This game not only develops the children's physique, but also teaches them how to count.
The game goes as follows. Kids stand in circle. Let's agree to think of the children as numbered with numbers from 1 to *n* clockwise and the child number 1 is holding the ball. First the first child throws the ball to the next one clockwise, i.e. to the child number 2. Then the child number 2 throws the ball to the next but one child, i.e. to the child number 4, then the fourth child throws the ball to the child that stands two children away from him, i.e. to the child number 7, then the ball is thrown to the child who stands 3 children away from the child number 7, then the ball is thrown to the child who stands 4 children away from the last one, and so on. It should be mentioned that when a ball is thrown it may pass the beginning of the circle. For example, if *n*<==<=5, then after the third throw the child number 2 has the ball again. Overall, *n*<=-<=1 throws are made, and the game ends.
The problem is that not all the children get the ball during the game. If a child doesn't get the ball, he gets very upset and cries until Natalia Pavlovna gives him a candy. That's why Natalia Pavlovna asks you to help her to identify the numbers of the children who will get the ball after each throw.
Input Specification:
The first line contains integer *n* (2<=β€<=*n*<=β€<=100) which indicates the number of kids in the circle.
Output Specification:
In the single line print *n*<=-<=1 numbers which are the numbers of children who will get the ball after each throw. Separate the numbers by spaces.
Demo Input:
['10\n', '3\n']
Demo Output:
['2 4 7 1 6 2 9 7 6\n', '2 1\n']
Note:
none
|
```python
n = int(input())
q = []
c = 1
i = 1
for _ in range(1,n):
i = i+c if i+c <= n else i+c-n
q.append(i)
c+=1
print(*q)
```
| 3.933102
|
510
|
A
|
Fox And Snake
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Fox Ciel starts to learn programming. The first task is drawing a fox! However, that turns out to be too hard for a beginner, so she decides to draw a snake instead.
A snake is a pattern on a *n* by *m* table. Denote *c*-th cell of *r*-th row as (*r*,<=*c*). The tail of the snake is located at (1,<=1), then it's body extends to (1,<=*m*), then goes down 2 rows to (3,<=*m*), then goes left to (3,<=1) and so on.
Your task is to draw this snake for Fox Ciel: the empty cells should be represented as dot characters ('.') and the snake cells should be filled with number signs ('#').
Consider sample tests in order to understand the snake pattern.
|
The only line contains two integers: *n* and *m* (3<=β€<=*n*,<=*m*<=β€<=50).
*n* is an odd number.
|
Output *n* lines. Each line should contain a string consisting of *m* characters. Do not output spaces.
|
[
"3 3\n",
"3 4\n",
"5 3\n",
"9 9\n"
] |
[
"###\n..#\n###\n",
"####\n...#\n####\n",
"###\n..#\n###\n#..\n###\n",
"#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########\n"
] |
none
| 500
|
[
{
"input": "3 3",
"output": "###\n..#\n###"
},
{
"input": "3 4",
"output": "####\n...#\n####"
},
{
"input": "5 3",
"output": "###\n..#\n###\n#..\n###"
},
{
"input": "9 9",
"output": "#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########"
},
{
"input": "3 5",
"output": "#####\n....#\n#####"
},
{
"input": "3 6",
"output": "######\n.....#\n######"
},
{
"input": "7 3",
"output": "###\n..#\n###\n#..\n###\n..#\n###"
},
{
"input": "7 4",
"output": "####\n...#\n####\n#...\n####\n...#\n####"
},
{
"input": "49 50",
"output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................."
},
{
"input": "43 50",
"output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................."
},
{
"input": "43 27",
"output": "###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n..........................#\n###########################\n#..........................\n###########################\n....................."
},
{
"input": "11 15",
"output": "###############\n..............#\n###############\n#..............\n###############\n..............#\n###############\n#..............\n###############\n..............#\n###############"
},
{
"input": "11 3",
"output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###"
},
{
"input": "19 3",
"output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###"
},
{
"input": "23 50",
"output": "##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.................................................#\n##################################################\n#.................................................\n##################################################\n.............................................."
},
{
"input": "49 49",
"output": "#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#..."
},
{
"input": "33 43",
"output": "###########################################\n..........................................#\n###########################################\n#..........................................\n###########################################\n..........................................#\n###########################################\n#..........................................\n###########################################\n..........................................#\n###########################################\n#.................."
},
{
"input": "33 44",
"output": "############################################\n...........................................#\n############################################\n#...........................................\n############################################\n...........................................#\n############################################\n#...........................................\n############################################\n...........................................#\n############################################\n#......."
},
{
"input": "45 45",
"output": "#############################################\n............................................#\n#############################################\n#............................................\n#############################################\n............................................#\n#############################################\n#............................................\n#############################################\n............................................#\n#########################################..."
},
{
"input": "45 49",
"output": "#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#################################################\n#................................................\n#################################################\n................................................#\n#..."
},
{
"input": "45 3",
"output": "###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###\n..#\n###\n#..\n###"
},
{
"input": "45 4",
"output": "####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####\n...#\n####\n#...\n####"
},
{
"input": "5 4",
"output": "####\n...#\n####\n#...\n####"
},
{
"input": "5 5",
"output": "#####\n....#\n#####\n#....\n#####"
},
{
"input": "5 6",
"output": "######\n.....#\n######\n#.....\n######"
},
{
"input": "7 5",
"output": "#####\n....#\n#####\n#....\n#####\n....#\n#####"
},
{
"input": "7 6",
"output": "######\n.....#\n######\n#.....\n######\n.....#\n######"
},
{
"input": "7 7",
"output": "#######\n......#\n#######\n#......\n#######\n......#\n#######"
}
] | 1,685,371,669
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 28
| 46
| 0
|
def f(n,m):
snake = ""
for i in range(1,n+1):
if i%2 != 0:
snake += "#"*m+"\n"
elif i%4 == 0:
snake += "#"+(m-1)*"."+"\n"
else:
snake += (m-1)*"."+"#"+"\n"
return snake
ai = input()
ai = [int(i) for i in ai.split(" ")]
print(f(ai[0],ai[1]))
|
Title: Fox And Snake
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Fox Ciel starts to learn programming. The first task is drawing a fox! However, that turns out to be too hard for a beginner, so she decides to draw a snake instead.
A snake is a pattern on a *n* by *m* table. Denote *c*-th cell of *r*-th row as (*r*,<=*c*). The tail of the snake is located at (1,<=1), then it's body extends to (1,<=*m*), then goes down 2 rows to (3,<=*m*), then goes left to (3,<=1) and so on.
Your task is to draw this snake for Fox Ciel: the empty cells should be represented as dot characters ('.') and the snake cells should be filled with number signs ('#').
Consider sample tests in order to understand the snake pattern.
Input Specification:
The only line contains two integers: *n* and *m* (3<=β€<=*n*,<=*m*<=β€<=50).
*n* is an odd number.
Output Specification:
Output *n* lines. Each line should contain a string consisting of *m* characters. Do not output spaces.
Demo Input:
['3 3\n', '3 4\n', '5 3\n', '9 9\n']
Demo Output:
['###\n..#\n###\n', '####\n...#\n####\n', '###\n..#\n###\n#..\n###\n', '#########\n........#\n#########\n#........\n#########\n........#\n#########\n#........\n#########\n']
Note:
none
|
```python
def f(n,m):
snake = ""
for i in range(1,n+1):
if i%2 != 0:
snake += "#"*m+"\n"
elif i%4 == 0:
snake += "#"+(m-1)*"."+"\n"
else:
snake += (m-1)*"."+"#"+"\n"
return snake
ai = input()
ai = [int(i) for i in ai.split(" ")]
print(f(ai[0],ai[1]))
```
| 3
|
|
78
|
A
|
Haiku
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] |
A. Haiku
|
2
|
256
|
Haiku is a genre of Japanese traditional poetry.
A haiku poem consists of 17 syllables split into three phrases, containing 5, 7 and 5 syllables correspondingly (the first phrase should contain exactly 5 syllables, the second phrase should contain exactly 7 syllables, and the third phrase should contain exactly 5 syllables). A haiku masterpiece contains a description of a moment in those three phrases. Every word is important in a small poem, which is why haiku are rich with symbols. Each word has a special meaning, a special role. The main principle of haiku is to say much using a few words.
To simplify the matter, in the given problem we will consider that the number of syllable in the phrase is equal to the number of vowel letters there. Only the following letters are regarded as vowel letters: "a", "e", "i", "o" and "u".
Three phases from a certain poem are given. Determine whether it is haiku or not.
|
The input data consists of three lines. The length of each line is between 1 and 100, inclusive. The *i*-th line contains the *i*-th phrase of the poem. Each phrase consists of one or more words, which are separated by one or more spaces. A word is a non-empty sequence of lowercase Latin letters. Leading and/or trailing spaces in phrases are allowed. Every phrase has at least one non-space character. See the example for clarification.
|
Print "YES" (without the quotes) if the poem is a haiku. Otherwise, print "NO" (also without the quotes).
|
[
"on codeforces \nbeta round is running\n a rustling of keys \n",
"how many gallons\nof edo s rain did you drink\n cuckoo\n"
] |
[
"YES",
"NO"
] |
none
| 500
|
[
{
"input": "on codeforces \nbeta round is running\n a rustling of keys ",
"output": "YES"
},
{
"input": "how many gallons\nof edo s rain did you drink\n cuckoo",
"output": "NO"
},
{
"input": " hatsu shigure\n saru mo komino wo\nhoshige nari",
"output": "YES"
},
{
"input": "o vetus stagnum\n rana de ripa salit\n ac sonant aquae",
"output": "NO"
},
{
"input": " furuike ya\nkawazu tobikomu\nmizu no oto ",
"output": "YES"
},
{
"input": " noch da leich\na stamperl zum aufwaerma\n da pfarrer kimmt a ",
"output": "NO"
},
{
"input": " sommerfuglene \n hvorfor bruge mange ord\n et kan gore det",
"output": "YES"
},
{
"input": " ab der mittagszeit\n ist es etwas schattiger\n ein wolkenhimmel",
"output": "NO"
},
{
"input": "tornando a vederli\ni fiori di ciliegio la sera\nson divenuti frutti",
"output": "NO"
},
{
"input": "kutaburete\nyado karu koro ya\nfuji no hana",
"output": "YES"
},
{
"input": " beginnings of poetry\n the rice planting songs \n of the interior",
"output": "NO"
},
{
"input": " door zomerregens\n zijn de kraanvogelpoten\n korter geworden",
"output": "NO"
},
{
"input": " derevo na srub\na ptitsi bezzabotno\n gnezdishko tam vyut",
"output": "YES"
},
{
"input": "writing in the dark\nunaware that my pen\nhas run out of ink",
"output": "NO"
},
{
"input": "kusaaiu\nuieueua\nuo efaa",
"output": "YES"
},
{
"input": "v\nh\np",
"output": "NO"
},
{
"input": "i\ni\nu",
"output": "NO"
},
{
"input": "awmio eoj\nabdoolceegood\nwaadeuoy",
"output": "YES"
},
{
"input": "xzpnhhnqsjpxdboqojixmofawhdjcfbscq\nfoparnxnbzbveycoltwdrfbwwsuobyoz hfbrszy\nimtqryscsahrxpic agfjh wvpmczjjdrnwj mcggxcdo",
"output": "YES"
},
{
"input": "wxjcvccp cppwsjpzbd dhizbcnnllckybrnfyamhgkvkjtxxfzzzuyczmhedhztugpbgpvgh\nmdewztdoycbpxtp bsiw hknggnggykdkrlihvsaykzfiiw\ndewdztnngpsnn lfwfbvnwwmxoojknygqb hfe ibsrxsxr",
"output": "YES"
},
{
"input": "nbmtgyyfuxdvrhuhuhpcfywzrbclp znvxw synxmzymyxcntmhrjriqgdjh xkjckydbzjbvtjurnf\nhhnhxdknvamywhsrkprofnyzlcgtdyzzjdsfxyddvilnzjziz qmwfdvzckgcbrrxplxnxf mpxwxyrpesnewjrx ajxlfj\nvcczq hddzd cvefmhxwxxyqcwkr fdsndckmesqeq zyjbwbnbyhybd cta nsxzidl jpcvtzkldwd",
"output": "YES"
},
{
"input": "rvwdsgdsrutgjwscxz pkd qtpmfbqsmctuevxdj kjzknzghdvxzlaljcntg jxhvzn yciktbsbyscfypx x xhkxnfpdp\nwdfhvqgxbcts mnrwbr iqttsvigwdgvlxwhsmnyxnttedonxcfrtmdjjmacvqtkbmsnwwvvrlxwvtggeowtgsqld qj\nvsxcdhbzktrxbywpdvstr meykarwtkbm pkkbhvwvelclfmpngzxdmblhcvf qmabmweldplmczgbqgzbqnhvcdpnpjtch ",
"output": "YES"
},
{
"input": "brydyfsmtzzkpdsqvvztmprhqzbzqvgsblnz naait tdtiprjsttwusdykndwcccxfmzmrmfmzjywkpgbfnjpypgcbcfpsyfj k\nucwdfkfyxxxht lxvnovqnnsqutjsyagrplb jhvtwdptrwcqrovncdvqljjlrpxcfbxqgsfylbgmcjpvpl ccbcybmigpmjrxpu\nfgwtpcjeywgnxgbttgx htntpbk tkkpwbgxwtbxvcpkqbzetjdkcwad tftnjdxxjdvbpfibvxuglvx llyhgjvggtw jtjyphs",
"output": "YES"
},
{
"input": "nyc aqgqzjjlj mswgmjfcxlqdscheskchlzljlsbhyn iobxymwzykrsnljj\nnnebeaoiraga\nqpjximoqzswhyyszhzzrhfwhf iyxysdtcpmikkwpugwlxlhqfkn",
"output": "NO"
},
{
"input": "lzrkztgfe mlcnq ay ydmdzxh cdgcghxnkdgmgfzgahdjjmqkpdbskreswpnblnrc fmkwziiqrbskp\np oukeaz gvvy kghtrjlczyl qeqhgfgfej\nwfolhkmktvsjnrpzfxcxzqmfidtlzmuhxac wsncjgmkckrywvxmnjdpjpfydhk qlmdwphcvyngansqhl",
"output": "NO"
},
{
"input": "yxcboqmpwoevrdhvpxfzqmammak\njmhphkxppkqkszhqqtkvflarsxzla pbxlnnnafqbsnmznfj qmhoktgzix qpmrgzxqvmjxhskkksrtryehfnmrt dtzcvnvwp\nscwymuecjxhw rdgsffqywwhjpjbfcvcrnisfqllnbplpadfklayjguyvtrzhwblftclfmsr",
"output": "NO"
},
{
"input": "qfdwsr jsbrpfmn znplcx nhlselflytndzmgxqpgwhpi ghvbbxrkjdirfghcybhkkqdzmyacvrrcgsneyjlgzfvdmxyjmph\nylxlyrzs drbktzsniwcbahjkgohcghoaczsmtzhuwdryjwdijmxkmbmxv yyfrokdnsx\nyw xtwyzqlfxwxghugoyscqlx pljtz aldfskvxlsxqgbihzndhxkswkxqpwnfcxzfyvncstfpqf",
"output": "NO"
},
{
"input": "g rguhqhcrzmuqthtmwzhfyhpmqzzosa\nmhjimzvchkhejh irvzejhtjgaujkqfxhpdqjnxr dvqallgssktqvsxi\npcwbliftjcvuzrsqiswohi",
"output": "NO"
},
{
"input": " ngxtlq iehiise vgffqcpnmsoqzyseuqqtggokymol zn\nvjdjljazeujwoubkcvtsbepooxqzrueaauokhepiquuopfild\ngoabauauaeotoieufueeknudiilupouaiaexcoapapu",
"output": "NO"
},
{
"input": "ycnvnnqk mhrmhctpkfbc qbyvtjznmndqjzgbcxmvrpkfcll zwspfptmbxgrdv dsgkk nfytsqjrnfbhh pzdldzymvkdxxwh\nvnhjfwgdnyjptsmblyxmpzylsbjlmtkkwjcbqwjctqvrlqqkdsrktxlnslspvnn mdgsmzblhbnvpczmqkcffwhwljqkzmk hxcm\nrghnjvzcpprrgmtgytpkzyc mrdnnhpkwypwqbtzjyfwvrdwyjltbzxtbstzs xdjzdmx yjsqtzlrnvyssvglsdjrmsrfrcdpqt",
"output": "NO"
},
{
"input": "ioeeaioeiuoeaeieuuieooaouiuouiioaueeaiaiuoaoiioeeaauooiuuieeuaeeoauieeaiuoieiaieuoauaaoioooieueueuai\nuooaoeeaoiuuoeioaoouaououoeioiaeueoioaiouaeaoioiuuaueeuaiuoiueoiuaoeeieeouaeeaeeieioeoiiieuuueuuieuo\naeeouieeieoueaioeoioooiouaeeeiaaioueauaueiouuuaieuuioiaeiueauueaoieauauoeueuaiueuuaueeoueauaeaoieeoo",
"output": "NO"
},
{
"input": "mkgycgmrqtmlwj vddlbsgdptyfrcj nmrddjchydvbsyhgzytfzvwbhqmmhkpsyrcnknpsqrr wcnf wfvgskrnsmnrcqgcnc q\npn cclcyjjdp rqkpgyrvyyd hhynrochfa pthyffqvskazfshvzcmvhmsrxvquzkdvivlbfypwbgltfbjmhzljvgzmxjlrjdjq\nauuouieuaaauoooeoiuoaueuueauiuuuiaeuwuoiaeoeaieauieouoaeiiieiioiuuuiuauioiiuoeauueieaueiaioeuaoaaau",
"output": "NO"
},
{
"input": "ab\na\na",
"output": "NO"
},
{
"input": "on codeforcs\nbeta round is runnineg\na rustling of keys",
"output": "NO"
},
{
"input": "coooooooooooooooood\nd\nd",
"output": "NO"
},
{
"input": "on codeforces \nbeta round is runninog\n a rustling of keys",
"output": "NO"
},
{
"input": "aaaaaaaaaaaaaaa\na\na",
"output": "NO"
},
{
"input": "aaaaaccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc\naaaaaaaccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc\naaaaaccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc",
"output": "YES"
},
{
"input": "cccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc\ncccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc\ncccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccccc",
"output": "NO"
},
{
"input": "aaaaaa\naaaaaa\naaaaa",
"output": "NO"
}
] | 1,603,702,384
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 40
| 280
| 819,200
|
import math
import sys
import re
s1 = input().strip()
s2 = input().strip()
s3 = input().strip()
v1 = s1.count('a') + s1.count('e') + s1.count('i') + s1.count('o') + s1.count('u')
v2 = s2.count('a') + s2.count('e') + s2.count('i') + s2.count('o') + s2.count('u')
v3 = s3.count('a') + s3.count('e') + s3.count('i') + s3.count('o') + s3.count('u')
if v1 != 5 or v2 != 7 or v3 != 5:
print('NO')
else:
print('YES')
|
Title: Haiku
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Haiku is a genre of Japanese traditional poetry.
A haiku poem consists of 17 syllables split into three phrases, containing 5, 7 and 5 syllables correspondingly (the first phrase should contain exactly 5 syllables, the second phrase should contain exactly 7 syllables, and the third phrase should contain exactly 5 syllables). A haiku masterpiece contains a description of a moment in those three phrases. Every word is important in a small poem, which is why haiku are rich with symbols. Each word has a special meaning, a special role. The main principle of haiku is to say much using a few words.
To simplify the matter, in the given problem we will consider that the number of syllable in the phrase is equal to the number of vowel letters there. Only the following letters are regarded as vowel letters: "a", "e", "i", "o" and "u".
Three phases from a certain poem are given. Determine whether it is haiku or not.
Input Specification:
The input data consists of three lines. The length of each line is between 1 and 100, inclusive. The *i*-th line contains the *i*-th phrase of the poem. Each phrase consists of one or more words, which are separated by one or more spaces. A word is a non-empty sequence of lowercase Latin letters. Leading and/or trailing spaces in phrases are allowed. Every phrase has at least one non-space character. See the example for clarification.
Output Specification:
Print "YES" (without the quotes) if the poem is a haiku. Otherwise, print "NO" (also without the quotes).
Demo Input:
['on codeforces \nbeta round is running\n a rustling of keys \n', 'how many gallons\nof edo s rain did you drink\n cuckoo\n']
Demo Output:
['YES', 'NO']
Note:
none
|
```python
import math
import sys
import re
s1 = input().strip()
s2 = input().strip()
s3 = input().strip()
v1 = s1.count('a') + s1.count('e') + s1.count('i') + s1.count('o') + s1.count('u')
v2 = s2.count('a') + s2.count('e') + s2.count('i') + s2.count('o') + s2.count('u')
v3 = s3.count('a') + s3.count('e') + s3.count('i') + s3.count('o') + s3.count('u')
if v1 != 5 or v2 != 7 or v3 != 5:
print('NO')
else:
print('YES')
```
| 3.928474
|
735
|
C
|
Tennis Championship
|
PROGRAMMING
| 1,600
|
[
"combinatorics",
"constructive algorithms",
"greedy",
"math"
] | null | null |
Famous Brazil city Rio de Janeiro holds a tennis tournament and Ostap Bender doesn't want to miss this event. There will be *n* players participating, and the tournament will follow knockout rules from the very first game. That means, that if someone loses a game he leaves the tournament immediately.
Organizers are still arranging tournament grid (i.e. the order games will happen and who is going to play with whom) but they have already fixed one rule: two players can play against each other only if the number of games one of them has already played differs by no more than one from the number of games the other one has already played. Of course, both players had to win all their games in order to continue participating in the tournament.
Tournament hasn't started yet so the audience is a bit bored. Ostap decided to find out what is the maximum number of games the winner of the tournament can take part in (assuming the rule above is used). However, it is unlikely he can deal with this problem without your help.
|
The only line of the input contains a single integer *n* (2<=β€<=*n*<=β€<=1018)Β β the number of players to participate in the tournament.
|
Print the maximum number of games in which the winner of the tournament can take part.
|
[
"2\n",
"3\n",
"4\n",
"10\n"
] |
[
"1\n",
"2\n",
"2\n",
"4\n"
] |
In all samples we consider that player number 1 is the winner.
In the first sample, there would be only one game so the answer is 1.
In the second sample, player 1 can consequently beat players 2 and 3.
In the third sample, player 1 can't play with each other player as after he plays with players 2 and 3 he can't play against player 4, as he has 0 games played, while player 1 already played 2. Thus, the answer is 2 and to achieve we make pairs (1,β2) and (3,β4) and then clash the winners.
| 1,750
|
[
{
"input": "2",
"output": "1"
},
{
"input": "3",
"output": "2"
},
{
"input": "4",
"output": "2"
},
{
"input": "10",
"output": "4"
},
{
"input": "1000",
"output": "14"
},
{
"input": "2500",
"output": "15"
},
{
"input": "690000",
"output": "27"
},
{
"input": "3000000000",
"output": "45"
},
{
"input": "123456789123456789",
"output": "81"
},
{
"input": "5",
"output": "3"
},
{
"input": "143",
"output": "9"
},
{
"input": "144",
"output": "10"
},
{
"input": "145",
"output": "10"
},
{
"input": "232",
"output": "10"
},
{
"input": "233",
"output": "11"
},
{
"input": "234",
"output": "11"
},
{
"input": "679891637638612257",
"output": "84"
},
{
"input": "679891637638612258",
"output": "85"
},
{
"input": "679891637638612259",
"output": "85"
},
{
"input": "1000000000000000000",
"output": "85"
},
{
"input": "10235439547",
"output": "47"
},
{
"input": "1240723548",
"output": "43"
},
{
"input": "92353046212453",
"output": "66"
},
{
"input": "192403205846532",
"output": "68"
},
{
"input": "13925230525389",
"output": "62"
},
{
"input": "12048230592523",
"output": "62"
},
{
"input": "19204385325853",
"output": "63"
},
{
"input": "902353283921",
"output": "56"
},
{
"input": "793056859214355",
"output": "70"
},
{
"input": "982045466234565",
"output": "71"
},
{
"input": "126743950353465",
"output": "67"
},
{
"input": "12405430465",
"output": "47"
},
{
"input": "10238439257768",
"output": "61"
},
{
"input": "1728493055346",
"output": "58"
},
{
"input": "927553829046",
"output": "56"
},
{
"input": "62735129403",
"output": "51"
},
{
"input": "71624823950223",
"output": "65"
},
{
"input": "8902353464851212",
"output": "75"
},
{
"input": "61824012598535",
"output": "65"
},
{
"input": "1294902504603347",
"output": "71"
},
{
"input": "6",
"output": "3"
},
{
"input": "7",
"output": "3"
},
{
"input": "8",
"output": "4"
},
{
"input": "9",
"output": "4"
},
{
"input": "11",
"output": "4"
},
{
"input": "12",
"output": "4"
},
{
"input": "13",
"output": "5"
},
{
"input": "14",
"output": "5"
},
{
"input": "15",
"output": "5"
},
{
"input": "16",
"output": "5"
},
{
"input": "17",
"output": "5"
},
{
"input": "18",
"output": "5"
},
{
"input": "19",
"output": "5"
},
{
"input": "20",
"output": "5"
},
{
"input": "21",
"output": "6"
},
{
"input": "22",
"output": "6"
},
{
"input": "23",
"output": "6"
},
{
"input": "355687428096000",
"output": "69"
},
{
"input": "576460752303423488",
"output": "84"
},
{
"input": "32212254719",
"output": "49"
},
{
"input": "26388279066623",
"output": "63"
},
{
"input": "618473717761",
"output": "56"
},
{
"input": "262406072477",
"output": "54"
}
] | 1,481,170,882
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 63
| 62
| 4,608,000
|
n = int(input())
a, b = 1, 1
ans = 0
while a + b <= n:
a = a + b
a, b = b, a
ans += 1
print(ans)
|
Title: Tennis Championship
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Famous Brazil city Rio de Janeiro holds a tennis tournament and Ostap Bender doesn't want to miss this event. There will be *n* players participating, and the tournament will follow knockout rules from the very first game. That means, that if someone loses a game he leaves the tournament immediately.
Organizers are still arranging tournament grid (i.e. the order games will happen and who is going to play with whom) but they have already fixed one rule: two players can play against each other only if the number of games one of them has already played differs by no more than one from the number of games the other one has already played. Of course, both players had to win all their games in order to continue participating in the tournament.
Tournament hasn't started yet so the audience is a bit bored. Ostap decided to find out what is the maximum number of games the winner of the tournament can take part in (assuming the rule above is used). However, it is unlikely he can deal with this problem without your help.
Input Specification:
The only line of the input contains a single integer *n* (2<=β€<=*n*<=β€<=1018)Β β the number of players to participate in the tournament.
Output Specification:
Print the maximum number of games in which the winner of the tournament can take part.
Demo Input:
['2\n', '3\n', '4\n', '10\n']
Demo Output:
['1\n', '2\n', '2\n', '4\n']
Note:
In all samples we consider that player number 1 is the winner.
In the first sample, there would be only one game so the answer is 1.
In the second sample, player 1 can consequently beat players 2 and 3.
In the third sample, player 1 can't play with each other player as after he plays with players 2 and 3 he can't play against player 4, as he has 0 games played, while player 1 already played 2. Thus, the answer is 2 and to achieve we make pairs (1,β2) and (3,β4) and then clash the winners.
|
```python
n = int(input())
a, b = 1, 1
ans = 0
while a + b <= n:
a = a + b
a, b = b, a
ans += 1
print(ans)
```
| 3
|
|
747
|
A
|
Display Size
|
PROGRAMMING
| 800
|
[
"brute force",
"math"
] | null | null |
A big company decided to launch a new series of rectangular displays, and decided that the display must have exactly *n* pixels.
Your task is to determine the size of the rectangular display β the number of lines (rows) of pixels *a* and the number of columns of pixels *b*, so that:
- there are exactly *n* pixels on the display; - the number of rows does not exceed the number of columns, it means *a*<=β€<=*b*; - the difference *b*<=-<=*a* is as small as possible.
|
The first line contains the positive integer *n* (1<=β€<=*n*<=β€<=106)Β β the number of pixels display should have.
|
Print two integersΒ β the number of rows and columns on the display.
|
[
"8\n",
"64\n",
"5\n",
"999999\n"
] |
[
"2 4\n",
"8 8\n",
"1 5\n",
"999 1001\n"
] |
In the first example the minimum possible difference equals 2, so on the display should be 2 rows of 4 pixels.
In the second example the minimum possible difference equals 0, so on the display should be 8 rows of 8 pixels.
In the third example the minimum possible difference equals 4, so on the display should be 1 row of 5 pixels.
| 500
|
[
{
"input": "8",
"output": "2 4"
},
{
"input": "64",
"output": "8 8"
},
{
"input": "5",
"output": "1 5"
},
{
"input": "999999",
"output": "999 1001"
},
{
"input": "716539",
"output": "97 7387"
},
{
"input": "1",
"output": "1 1"
},
{
"input": "2",
"output": "1 2"
},
{
"input": "3",
"output": "1 3"
},
{
"input": "4",
"output": "2 2"
},
{
"input": "6",
"output": "2 3"
},
{
"input": "7",
"output": "1 7"
},
{
"input": "9",
"output": "3 3"
},
{
"input": "10",
"output": "2 5"
},
{
"input": "11",
"output": "1 11"
},
{
"input": "12",
"output": "3 4"
},
{
"input": "15",
"output": "3 5"
},
{
"input": "100",
"output": "10 10"
},
{
"input": "101",
"output": "1 101"
},
{
"input": "169",
"output": "13 13"
},
{
"input": "179",
"output": "1 179"
},
{
"input": "190",
"output": "10 19"
},
{
"input": "1000",
"output": "25 40"
},
{
"input": "10000",
"output": "100 100"
},
{
"input": "10001",
"output": "73 137"
},
{
"input": "100000",
"output": "250 400"
},
{
"input": "100001",
"output": "11 9091"
},
{
"input": "1000000",
"output": "1000 1000"
},
{
"input": "999983",
"output": "1 999983"
},
{
"input": "524288",
"output": "512 1024"
},
{
"input": "954493",
"output": "971 983"
},
{
"input": "966289",
"output": "983 983"
},
{
"input": "944663",
"output": "961 983"
},
{
"input": "912673",
"output": "97 9409"
},
{
"input": "732641",
"output": "679 1079"
},
{
"input": "232897",
"output": "343 679"
},
{
"input": "16807",
"output": "49 343"
},
{
"input": "999958",
"output": "2 499979"
},
{
"input": "990151",
"output": "1 990151"
},
{
"input": "997002",
"output": "998 999"
},
{
"input": "20",
"output": "4 5"
},
{
"input": "20261",
"output": "1 20261"
},
{
"input": "999123",
"output": "3 333041"
},
{
"input": "901841",
"output": "1 901841"
}
] | 1,587,390,050
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 43
| 155
| 0
|
from math import sqrt
num = int(input())
for factor in range(int(sqrt(num)), 0, -1):
if num % factor == 0:
print(factor, num//factor)
break
|
Title: Display Size
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
A big company decided to launch a new series of rectangular displays, and decided that the display must have exactly *n* pixels.
Your task is to determine the size of the rectangular display β the number of lines (rows) of pixels *a* and the number of columns of pixels *b*, so that:
- there are exactly *n* pixels on the display; - the number of rows does not exceed the number of columns, it means *a*<=β€<=*b*; - the difference *b*<=-<=*a* is as small as possible.
Input Specification:
The first line contains the positive integer *n* (1<=β€<=*n*<=β€<=106)Β β the number of pixels display should have.
Output Specification:
Print two integersΒ β the number of rows and columns on the display.
Demo Input:
['8\n', '64\n', '5\n', '999999\n']
Demo Output:
['2 4\n', '8 8\n', '1 5\n', '999 1001\n']
Note:
In the first example the minimum possible difference equals 2, so on the display should be 2 rows of 4 pixels.
In the second example the minimum possible difference equals 0, so on the display should be 8 rows of 8 pixels.
In the third example the minimum possible difference equals 4, so on the display should be 1 row of 5 pixels.
|
```python
from math import sqrt
num = int(input())
for factor in range(int(sqrt(num)), 0, -1):
if num % factor == 0:
print(factor, num//factor)
break
```
| 3
|
|
32
|
B
|
Borze
|
PROGRAMMING
| 800
|
[
"expression parsing",
"implementation"
] |
B. Borze
|
2
|
256
|
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
|
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
|
Output the decoded ternary number. It can have leading zeroes.
|
[
".-.--\n",
"--.\n",
"-..-.--\n"
] |
[
"012",
"20",
"1012"
] |
none
| 1,000
|
[
{
"input": ".-.--",
"output": "012"
},
{
"input": "--.",
"output": "20"
},
{
"input": "-..-.--",
"output": "1012"
},
{
"input": "---..",
"output": "210"
},
{
"input": "..--.---..",
"output": "0020210"
},
{
"input": "-.....----.",
"output": "10000220"
},
{
"input": ".",
"output": "0"
},
{
"input": "-.",
"output": "1"
},
{
"input": "--",
"output": "2"
},
{
"input": "..",
"output": "00"
},
{
"input": "--.",
"output": "20"
},
{
"input": ".--.",
"output": "020"
},
{
"input": ".-.-..",
"output": "0110"
},
{
"input": "----.-.",
"output": "2201"
},
{
"input": "-..--.-.",
"output": "10201"
},
{
"input": "..--..--.",
"output": "0020020"
},
{
"input": "-.-.---.--..-..-.-.-..-..-.--.",
"output": "112120010111010120"
},
{
"input": "---.-.-.------..-..-..-..-.-..-.--.-.-..-.-.-----..-.-.",
"output": "21112220010101011012011011221011"
},
{
"input": "-.-..--.-.-.-.-.-..-.-.-.---------.--.---..--...--.-----.-.-.-...--.-.-.---.------.--..-.--.-----.-...-..------",
"output": "11020111110111222212021020002022111100201121222020012022110010222"
},
{
"input": "-.-..-.--.---..---.-..---.-...-.-.----..-.---.-.---..-.--.---.-.-------.---.--....----.-.---.---.---.----.-----..---.-.-.-.-----.--.-------.-..",
"output": "110120210211021100112200121121012021122212120000220121212122022102111122120222110"
},
{
"input": ".-..-.-.---.-----.--.---...-.--.-.-....-..",
"output": "01011212212021001201100010"
},
{
"input": ".------.-.---..--...-..-..-.-.-.--.--.-..-.--...-.-.---.-.-.------..--..-.---..----.-..-.--.---.-.----.-.---...-.-.-.-----.-.-.---.---.-.....-.-...-----.-...-.---.-..-.-----.--...---.-.-..-.--.-.---..",
"output": "022201210200010101112020101200011211122200200121022010120211220121001112211121211000011002211001211012212000211101201210"
},
{
"input": ".-.--.---.-----.-.-----.-.-..-----..-..----..--.-.--.----..---.---..-.-.-----..-------.----..----.-..---...-----..-..-----...-..-.-.-----....---..---..-.-----...-.--...--.-.---.-.-.-.-.-...---..----.",
"output": "01202122112211102210102200201202200212101122102221220022010210022101022100101122100021021012210012000201211111100210220"
},
{
"input": "..-.-.-.---.-.-.-..-.-..-.-.---.-------.---..-----.---....-.---.--.--.-.---.---------.-..---.-.-.--..---.---.-.---.-.-..-.-..-.-.-.----.--.-....--------.-.---..----.------.-.-.--.--.-----.-----.----",
"output": "0011121111011011212221210221210001212020121222211021112002121121110110111220201000222201210220222011202022122122"
},
{
"input": "-..-------.------.-..--.-.-..--.-.-..-----..-.-.-..-..-..--.---..-----..---..-..--.-..-.-.---...-.....-------.---.-----.-...-.-...-.-.---.---.-----.--.--...-.--..-.-..-...-.-.-.-.---..---.-..-.-.-.-..",
"output": "102221222010201102011022101110101020210221021010201011210010000222121221100110011212122120200012001101001111210211011110"
},
{
"input": ".-.----.-.--..-.-.-.-..----..-.-...--.-.---.---.-------..-.--..-......--.------.--.----.--...-.--.--..-----..-.....--.--.-.-.------..--------.----------..-.---.----.---.-..--..-.....-..------.--.",
"output": "012201200111102200110020121212221012001000002022202022020001202002210100002020112220022220222220012122021102001000010222020"
},
{
"input": "------.-----.-....--.-.----.-.---.-.-..---.-.---.-----..-...-.-.---..-.-.-..-.-.-...-.-.-.----..--.------.----.-..-.--...-.-------...-.-..-.-.--.--.---..--..--------.--.-.-.---.-.-.-...----.--..-.--..",
"output": "222022110002012201211102112122101001121011101110011122002022202201012000122210011011202021020022220201121111002202001200"
},
{
"input": "-.---...----...--.--...-.--.----",
"output": "121002200020200012022"
},
{
"input": "--.--.--.---.--.-.---.-.-..-..--.-..---.-.....-..---.-----.--...-.-.-------.-.--.-.----.-..-.------.",
"output": "202020212012111010201021100001021221200011222112012201012220"
}
] | 1,685,100,561
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 92
| 0
|
n = list(input())
ans = []
i = 0
while i != len(n):
if n[i] == '.':
ans.append('0')
i += 1
elif n[i + 1] == '-':
ans.append('2')
i += 2
else:
ans.append('1')
i += 2
print(''.join(ans))
|
Title: Borze
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
Input Specification:
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
Output Specification:
Output the decoded ternary number. It can have leading zeroes.
Demo Input:
['.-.--\n', '--.\n', '-..-.--\n']
Demo Output:
['012', '20', '1012']
Note:
none
|
```python
n = list(input())
ans = []
i = 0
while i != len(n):
if n[i] == '.':
ans.append('0')
i += 1
elif n[i + 1] == '-':
ans.append('2')
i += 2
else:
ans.append('1')
i += 2
print(''.join(ans))
```
| 3.977
|
14
|
A
|
Letter
|
PROGRAMMING
| 800
|
[
"implementation"
] |
A. Letter
|
1
|
64
|
A boy Bob likes to draw. Not long ago he bought a rectangular graph (checked) sheet with *n* rows and *m* columns. Bob shaded some of the squares on the sheet. Having seen his masterpiece, he decided to share it with his elder brother, who lives in Flatland. Now Bob has to send his picture by post, but because of the world economic crisis and high oil prices, he wants to send his creation, but to spend as little money as possible. For each sent square of paper (no matter whether it is shaded or not) Bob has to pay 3.14 burles. Please, help Bob cut out of his masterpiece a rectangle of the minimum cost, that will contain all the shaded squares. The rectangle's sides should be parallel to the sheet's sides.
|
The first line of the input data contains numbers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=50), *n* β amount of lines, and *m* β amount of columns on Bob's sheet. The following *n* lines contain *m* characters each. Character Β«.Β» stands for a non-shaded square on the sheet, and Β«*Β» β for a shaded square. It is guaranteed that Bob has shaded at least one square.
|
Output the required rectangle of the minimum cost. Study the output data in the sample tests to understand the output format better.
|
[
"6 7\n.......\n..***..\n..*....\n..***..\n..*....\n..***..\n",
"3 3\n***\n*.*\n***\n"
] |
[
"***\n*..\n***\n*..\n***\n",
"***\n*.*\n***\n"
] |
none
| 0
|
[
{
"input": "6 7\n.......\n..***..\n..*....\n..***..\n..*....\n..***..",
"output": "***\n*..\n***\n*..\n***"
},
{
"input": "3 3\n***\n*.*\n***",
"output": "***\n*.*\n***"
},
{
"input": "1 1\n*",
"output": "*"
},
{
"input": "2 1\n*\n*",
"output": "*\n*"
},
{
"input": "5 1\n.\n*\n.\n.\n.",
"output": "*"
},
{
"input": "1 6\n*****.",
"output": "*****"
},
{
"input": "2 2\n..\n*.",
"output": "*"
},
{
"input": "8 2\n..\n..\n..\n..\n..\n*.\n..\n..",
"output": "*"
},
{
"input": "50 1\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n*\n.\n*\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n*\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.",
"output": "*\n.\n*\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n.\n*"
},
{
"input": "2 1\n*\n.",
"output": "*"
},
{
"input": "5 1\n*\n*\n*\n*\n*",
"output": "*\n*\n*\n*\n*"
},
{
"input": "2 2\n*.\n..",
"output": "*"
},
{
"input": "3 4\n...*\n*...\n..*.",
"output": "...*\n*...\n..*."
},
{
"input": "8 2\n**\n**\n**\n**\n**\n**\n**\n**",
"output": "**\n**\n**\n**\n**\n**\n**\n**"
},
{
"input": "50 1\n.\n*\n*\n*\n.\n.\n*\n.\n*\n*\n*\n*\n*\n*\n*\n.\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n.\n.\n.\n.\n*\n*\n.\n*\n*\n.\n.\n.\n.\n*\n*\n.\n.\n.\n.\n.\n.",
"output": "*\n*\n*\n.\n.\n*\n.\n*\n*\n*\n*\n*\n*\n*\n.\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n*\n.\n.\n.\n.\n*\n*\n.\n*\n*\n.\n.\n.\n.\n*\n*"
}
] | 1,644,226,417
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 30
| 154
| 1,331,200
|
def main():
n, m = list(map(int, input().split()))
arr = []
for _ in range(n):
arr.append(input())
mn_i, mx_i, mx_j, mn_j = n, -1, -1, m
for i in range(n):
for j in range(m):
if arr[i][j] == "*":
mn_i = min(mn_i, i)
mx_i = max(mx_i, i)
mn_j = min(mn_j, j)
mx_j = max(mx_j, j)
for i in range(mn_i, mx_i + 1):
print(arr[i][mn_j : mx_j + 1])
if __name__ == "__main__":
main()
|
Title: Letter
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
A boy Bob likes to draw. Not long ago he bought a rectangular graph (checked) sheet with *n* rows and *m* columns. Bob shaded some of the squares on the sheet. Having seen his masterpiece, he decided to share it with his elder brother, who lives in Flatland. Now Bob has to send his picture by post, but because of the world economic crisis and high oil prices, he wants to send his creation, but to spend as little money as possible. For each sent square of paper (no matter whether it is shaded or not) Bob has to pay 3.14 burles. Please, help Bob cut out of his masterpiece a rectangle of the minimum cost, that will contain all the shaded squares. The rectangle's sides should be parallel to the sheet's sides.
Input Specification:
The first line of the input data contains numbers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=50), *n* β amount of lines, and *m* β amount of columns on Bob's sheet. The following *n* lines contain *m* characters each. Character Β«.Β» stands for a non-shaded square on the sheet, and Β«*Β» β for a shaded square. It is guaranteed that Bob has shaded at least one square.
Output Specification:
Output the required rectangle of the minimum cost. Study the output data in the sample tests to understand the output format better.
Demo Input:
['6 7\n.......\n..***..\n..*....\n..***..\n..*....\n..***..\n', '3 3\n***\n*.*\n***\n']
Demo Output:
['***\n*..\n***\n*..\n***\n', '***\n*.*\n***\n']
Note:
none
|
```python
def main():
n, m = list(map(int, input().split()))
arr = []
for _ in range(n):
arr.append(input())
mn_i, mx_i, mx_j, mn_j = n, -1, -1, m
for i in range(n):
for j in range(m):
if arr[i][j] == "*":
mn_i = min(mn_i, i)
mx_i = max(mx_i, i)
mn_j = min(mn_j, j)
mx_j = max(mx_j, j)
for i in range(mn_i, mx_i + 1):
print(arr[i][mn_j : mx_j + 1])
if __name__ == "__main__":
main()
```
| 3.913082
|
1,006
|
C
|
Three Parts of the Array
|
PROGRAMMING
| 1,200
|
[
"binary search",
"data structures",
"two pointers"
] | null | null |
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
|
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
|
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
|
[
"5\n1 3 1 1 4\n",
"5\n1 3 2 1 4\n",
"3\n4 1 2\n"
] |
[
"5\n",
"4\n",
"0\n"
] |
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
| 0
|
[
{
"input": "5\n1 3 1 1 4",
"output": "5"
},
{
"input": "5\n1 3 2 1 4",
"output": "4"
},
{
"input": "3\n4 1 2",
"output": "0"
},
{
"input": "1\n1000000000",
"output": "0"
},
{
"input": "2\n1 1",
"output": "1"
},
{
"input": "5\n1 3 5 4 5",
"output": "9"
}
] | 1,593,703,244
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 27
| 436
| 38,400,000
|
n=int(input())
arr=list(map(int,input().split()))
cum=[0]*(n+1)
for i in range(n-1,-1,-1):
cum[i]=cum[i+1]+arr[i]
ma=0
s={0}
ss=0
for i in range(n-1):
ss+=arr[i]
s.add(ss)
if cum[i+1] in s:
ma=max(ma,cum[i+1])
print(ma)
|
Title: Three Parts of the Array
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
Input Specification:
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
Output Specification:
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
Demo Input:
['5\n1 3 1 1 4\n', '5\n1 3 2 1 4\n', '3\n4 1 2\n']
Demo Output:
['5\n', '4\n', '0\n']
Note:
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
|
```python
n=int(input())
arr=list(map(int,input().split()))
cum=[0]*(n+1)
for i in range(n-1,-1,-1):
cum[i]=cum[i+1]+arr[i]
ma=0
s={0}
ss=0
for i in range(n-1):
ss+=arr[i]
s.add(ss)
if cum[i+1] in s:
ma=max(ma,cum[i+1])
print(ma)
```
| 3
|
|
1,006
|
C
|
Three Parts of the Array
|
PROGRAMMING
| 1,200
|
[
"binary search",
"data structures",
"two pointers"
] | null | null |
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
|
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
|
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
|
[
"5\n1 3 1 1 4\n",
"5\n1 3 2 1 4\n",
"3\n4 1 2\n"
] |
[
"5\n",
"4\n",
"0\n"
] |
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
| 0
|
[
{
"input": "5\n1 3 1 1 4",
"output": "5"
},
{
"input": "5\n1 3 2 1 4",
"output": "4"
},
{
"input": "3\n4 1 2",
"output": "0"
},
{
"input": "1\n1000000000",
"output": "0"
},
{
"input": "2\n1 1",
"output": "1"
},
{
"input": "5\n1 3 5 4 5",
"output": "9"
}
] | 1,595,613,611
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 27
| 249
| 23,449,600
|
a=int(input())
z=list(map(int,input().split()))
i=0;j=a-1
s,s1,s2=0,0,0
while(i<=j):
if s1==s2:
s=s1
s2+=z[j]
j-=1
elif s1>s2:s2+=z[j];j-=1
else:s1+=z[i];i+=1
if s1==s2:print(max(s1,s))
else:print(s)
|
Title: Three Parts of the Array
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
Input Specification:
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
Output Specification:
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
Demo Input:
['5\n1 3 1 1 4\n', '5\n1 3 2 1 4\n', '3\n4 1 2\n']
Demo Output:
['5\n', '4\n', '0\n']
Note:
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
|
```python
a=int(input())
z=list(map(int,input().split()))
i=0;j=a-1
s,s1,s2=0,0,0
while(i<=j):
if s1==s2:
s=s1
s2+=z[j]
j-=1
elif s1>s2:s2+=z[j];j-=1
else:s1+=z[i];i+=1
if s1==s2:print(max(s1,s))
else:print(s)
```
| 3
|
|
686
|
A
|
Free Ice Cream
|
PROGRAMMING
| 800
|
[
"constructive algorithms",
"implementation"
] | null | null |
After their adventure with the magic mirror Kay and Gerda have returned home and sometimes give free ice cream to kids in the summer.
At the start of the day they have *x* ice cream packs. Since the ice cream is free, people start standing in the queue before Kay and Gerda's house even in the night. Each person in the queue wants either to take several ice cream packs for himself and his friends or to give several ice cream packs to Kay and Gerda (carriers that bring ice cream have to stand in the same queue).
If a carrier with *d* ice cream packs comes to the house, then Kay and Gerda take all his packs. If a child who wants to take *d* ice cream packs comes to the house, then Kay and Gerda will give him *d* packs if they have enough ice cream, otherwise the child will get no ice cream at all and will leave in distress.
Kay wants to find the amount of ice cream they will have after all people will leave from the queue, and Gerda wants to find the number of distressed kids.
|
The first line contains two space-separated integers *n* and *x* (1<=β€<=*n*<=β€<=1000, 0<=β€<=*x*<=β€<=109).
Each of the next *n* lines contains a character '+' or '-', and an integer *d**i*, separated by a space (1<=β€<=*d**i*<=β€<=109). Record "+ *d**i*" in *i*-th line means that a carrier with *d**i* ice cream packs occupies *i*-th place from the start of the queue, and record "- *d**i*" means that a child who wants to take *d**i* packs stands in *i*-th place.
|
Print two space-separated integersΒ β number of ice cream packs left after all operations, and number of kids that left the house in distress.
|
[
"5 7\n+ 5\n- 10\n- 20\n+ 40\n- 20\n",
"5 17\n- 16\n- 2\n- 98\n+ 100\n- 98\n"
] |
[
"22 1\n",
"3 2\n"
] |
Consider the first sample.
1. Initially Kay and Gerda have 7 packs of ice cream. 1. Carrier brings 5 more, so now they have 12 packs. 1. A kid asks for 10 packs and receives them. There are only 2 packs remaining. 1. Another kid asks for 20 packs. Kay and Gerda do not have them, so the kid goes away distressed. 1. Carrier bring 40 packs, now Kay and Gerda have 42 packs. 1. Kid asks for 20 packs and receives them. There are 22 packs remaining.
| 500
|
[
{
"input": "5 7\n+ 5\n- 10\n- 20\n+ 40\n- 20",
"output": "22 1"
},
{
"input": "5 17\n- 16\n- 2\n- 98\n+ 100\n- 98",
"output": "3 2"
},
{
"input": "6 1000000000\n+ 1000000000\n+ 1000000000\n+ 1000000000\n+ 1000000000\n+ 1000000000\n+ 1000000000",
"output": "7000000000 0"
},
{
"input": "5 12\n- 12\n+ 7\n- 6\n- 1\n+ 46",
"output": "46 0"
},
{
"input": "11 1000\n- 100\n+ 100\n+ 100\n+ 100\n+ 100\n- 100\n- 100\n- 100\n- 100\n- 100\n- 100",
"output": "700 0"
},
{
"input": "1 0\n- 526403222",
"output": "0 1"
},
{
"input": "1 897986543\n- 371188251",
"output": "526798292 0"
},
{
"input": "1 0\n+ 1",
"output": "1 0"
},
{
"input": "1 0\n- 1",
"output": "0 1"
},
{
"input": "1 10\n+ 10",
"output": "20 0"
},
{
"input": "1 3\n- 5",
"output": "3 1"
},
{
"input": "1 0\n- 5",
"output": "0 1"
},
{
"input": "1 0\n+ 5",
"output": "5 0"
}
] | 1,647,379,500
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 34
| 93
| 2,252,800
|
def free_ice_cream():
n,ice_cream = map(int,input().split())
num_distressed = 0
for _ in range(n):
operation,amount = input().split()
amount = int(amount)
if operation == '+':
ice_cream += amount
else:
if amount > ice_cream:
num_distressed += 1
else:
ice_cream -= amount
print(ice_cream,num_distressed)
free_ice_cream()
|
Title: Free Ice Cream
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
After their adventure with the magic mirror Kay and Gerda have returned home and sometimes give free ice cream to kids in the summer.
At the start of the day they have *x* ice cream packs. Since the ice cream is free, people start standing in the queue before Kay and Gerda's house even in the night. Each person in the queue wants either to take several ice cream packs for himself and his friends or to give several ice cream packs to Kay and Gerda (carriers that bring ice cream have to stand in the same queue).
If a carrier with *d* ice cream packs comes to the house, then Kay and Gerda take all his packs. If a child who wants to take *d* ice cream packs comes to the house, then Kay and Gerda will give him *d* packs if they have enough ice cream, otherwise the child will get no ice cream at all and will leave in distress.
Kay wants to find the amount of ice cream they will have after all people will leave from the queue, and Gerda wants to find the number of distressed kids.
Input Specification:
The first line contains two space-separated integers *n* and *x* (1<=β€<=*n*<=β€<=1000, 0<=β€<=*x*<=β€<=109).
Each of the next *n* lines contains a character '+' or '-', and an integer *d**i*, separated by a space (1<=β€<=*d**i*<=β€<=109). Record "+ *d**i*" in *i*-th line means that a carrier with *d**i* ice cream packs occupies *i*-th place from the start of the queue, and record "- *d**i*" means that a child who wants to take *d**i* packs stands in *i*-th place.
Output Specification:
Print two space-separated integersΒ β number of ice cream packs left after all operations, and number of kids that left the house in distress.
Demo Input:
['5 7\n+ 5\n- 10\n- 20\n+ 40\n- 20\n', '5 17\n- 16\n- 2\n- 98\n+ 100\n- 98\n']
Demo Output:
['22 1\n', '3 2\n']
Note:
Consider the first sample.
1. Initially Kay and Gerda have 7 packs of ice cream. 1. Carrier brings 5 more, so now they have 12 packs. 1. A kid asks for 10 packs and receives them. There are only 2 packs remaining. 1. Another kid asks for 20 packs. Kay and Gerda do not have them, so the kid goes away distressed. 1. Carrier bring 40 packs, now Kay and Gerda have 42 packs. 1. Kid asks for 20 packs and receives them. There are 22 packs remaining.
|
```python
def free_ice_cream():
n,ice_cream = map(int,input().split())
num_distressed = 0
for _ in range(n):
operation,amount = input().split()
amount = int(amount)
if operation == '+':
ice_cream += amount
else:
if amount > ice_cream:
num_distressed += 1
else:
ice_cream -= amount
print(ice_cream,num_distressed)
free_ice_cream()
```
| 3
|
|
450
|
A
|
Jzzhu and Children
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
There are *n* children in Jzzhu's school. Jzzhu is going to give some candies to them. Let's number all the children from 1 to *n*. The *i*-th child wants to get at least *a**i* candies.
Jzzhu asks children to line up. Initially, the *i*-th child stands at the *i*-th place of the line. Then Jzzhu start distribution of the candies. He follows the algorithm:
1. Give *m* candies to the first child of the line. 1. If this child still haven't got enough candies, then the child goes to the end of the line, else the child go home. 1. Repeat the first two steps while the line is not empty.
Consider all the children in the order they go home. Jzzhu wants to know, which child will be the last in this order?
|
The first line contains two integers *n*,<=*m* (1<=β€<=*n*<=β€<=100;Β 1<=β€<=*m*<=β€<=100). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=100).
|
Output a single integer, representing the number of the last child.
|
[
"5 2\n1 3 1 4 2\n",
"6 4\n1 1 2 2 3 3\n"
] |
[
"4\n",
"6\n"
] |
Let's consider the first sample.
Firstly child 1 gets 2 candies and go home. Then child 2 gets 2 candies and go to the end of the line. Currently the line looks like [3, 4, 5, 2] (indices of the children in order of the line). Then child 3 gets 2 candies and go home, and then child 4 gets 2 candies and goes to the end of the line. Currently the line looks like [5, 2, 4]. Then child 5 gets 2 candies and goes home. Then child 2 gets two candies and goes home, and finally child 4 gets 2 candies and goes home.
Child 4 is the last one who goes home.
| 500
|
[
{
"input": "5 2\n1 3 1 4 2",
"output": "4"
},
{
"input": "6 4\n1 1 2 2 3 3",
"output": "6"
},
{
"input": "7 3\n6 1 5 4 2 3 1",
"output": "4"
},
{
"input": "10 5\n2 7 3 6 2 5 1 3 4 5",
"output": "4"
},
{
"input": "100 1\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": "100"
},
{
"input": "9 3\n9 5 2 3 7 1 8 4 6",
"output": "7"
},
{
"input": "20 10\n58 4 32 10 73 7 30 39 47 6 59 21 24 66 79 79 46 13 29 58",
"output": "16"
},
{
"input": "50 5\n89 56 3 2 40 37 56 52 83 59 43 83 43 59 29 74 22 58 53 41 53 67 78 30 57 32 58 29 95 46 45 85 60 49 41 82 8 71 52 40 45 26 6 71 84 91 4 93 40 54",
"output": "48"
},
{
"input": "50 1\n4 3 9 7 6 8 3 7 10 9 8 8 10 2 9 3 2 4 4 10 4 6 8 10 9 9 4 2 8 9 4 4 9 5 1 5 2 4 4 9 10 2 5 10 7 2 8 6 8 1",
"output": "44"
},
{
"input": "50 5\n3 9 10 8 3 3 4 6 8 2 9 9 3 1 2 10 6 8 7 2 7 4 2 7 5 10 2 2 2 5 10 5 6 6 8 7 10 4 3 2 10 8 6 6 8 6 4 4 1 3",
"output": "46"
},
{
"input": "50 2\n56 69 72 15 95 92 51 1 74 87 100 29 46 54 18 81 84 72 84 83 20 63 71 27 45 74 50 89 48 8 21 15 47 3 39 73 80 84 6 99 17 25 56 3 74 64 71 39 89 78",
"output": "40"
},
{
"input": "50 3\n31 39 64 16 86 3 1 9 25 54 98 42 20 3 49 41 73 37 55 62 33 77 64 22 33 82 26 13 10 13 7 40 48 18 46 79 94 72 19 12 11 61 16 37 10 49 14 94 48 69",
"output": "11"
},
{
"input": "50 100\n67 67 61 68 42 29 70 77 12 61 71 27 4 73 87 52 59 38 93 90 31 27 87 47 26 57 76 6 28 72 81 68 50 84 69 79 39 93 52 6 88 12 46 13 90 68 71 38 90 95",
"output": "50"
},
{
"input": "100 3\n4 14 20 11 19 11 14 20 5 7 6 12 11 17 5 11 7 6 2 10 13 5 12 8 5 17 20 18 7 19 11 7 7 20 20 8 10 17 17 19 20 5 15 16 19 7 11 16 4 17 2 10 1 20 20 16 19 9 9 11 5 7 12 9 9 6 20 18 13 19 8 4 8 1 2 4 10 11 15 14 1 7 17 12 13 19 12 2 3 14 15 15 5 17 14 12 17 14 16 9",
"output": "86"
},
{
"input": "100 5\n16 8 14 16 12 11 17 19 19 2 8 9 5 6 19 9 11 18 6 9 14 16 14 18 17 17 17 5 15 20 19 7 7 10 10 5 14 20 5 19 11 16 16 19 17 9 7 12 14 10 2 11 14 5 20 8 10 11 19 2 14 14 19 17 5 10 8 8 4 2 1 10 20 12 14 11 7 6 6 15 1 5 9 15 3 17 16 17 5 14 11 9 16 15 1 11 10 6 15 7",
"output": "93"
},
{
"input": "100 1\n58 94 18 50 17 14 96 62 83 80 75 5 9 22 25 41 3 96 74 45 66 37 2 37 13 85 68 54 77 11 85 19 25 21 52 59 90 61 72 89 82 22 10 16 3 68 61 29 55 76 28 85 65 76 27 3 14 10 56 37 86 18 35 38 56 68 23 88 33 38 52 87 55 83 94 34 100 41 83 56 91 77 32 74 97 13 67 31 57 81 53 39 5 88 46 1 79 4 49 42",
"output": "77"
},
{
"input": "100 2\n1 51 76 62 34 93 90 43 57 59 52 78 3 48 11 60 57 48 5 54 28 81 87 23 44 77 67 61 14 73 29 53 21 89 67 41 47 9 63 37 1 71 40 85 4 14 77 40 78 75 89 74 4 70 32 65 81 95 49 90 72 41 76 55 69 83 73 84 85 93 46 6 74 90 62 37 97 7 7 37 83 30 37 88 34 16 11 59 85 19 57 63 85 20 63 97 97 65 61 48",
"output": "97"
},
{
"input": "100 3\n30 83 14 55 61 66 34 98 90 62 89 74 45 93 33 31 75 35 82 100 63 69 48 18 99 2 36 71 14 30 70 76 96 85 97 90 49 36 6 76 37 94 70 3 63 73 75 48 39 29 13 2 46 26 9 56 1 18 54 53 85 34 2 12 1 93 75 67 77 77 14 26 33 25 55 9 57 70 75 6 87 66 18 3 41 69 73 24 49 2 20 72 39 58 91 54 74 56 66 78",
"output": "20"
},
{
"input": "100 4\n69 92 76 3 32 50 15 38 21 22 14 3 67 41 95 12 10 62 83 52 78 1 18 58 94 35 62 71 58 75 13 73 60 34 50 97 50 70 19 96 53 10 100 26 20 39 62 59 88 26 24 83 70 68 66 8 6 38 16 93 2 91 81 89 78 74 21 8 31 56 28 53 77 5 81 5 94 42 77 75 92 15 59 36 61 18 55 45 69 68 81 51 12 42 85 74 98 31 17 41",
"output": "97"
},
{
"input": "100 5\n2 72 10 60 6 50 72 34 97 77 35 43 80 64 40 53 46 6 90 22 29 70 26 68 52 19 72 88 83 18 55 32 99 81 11 21 39 42 41 63 60 97 30 23 55 78 89 35 24 50 99 52 27 76 24 8 20 27 51 37 17 82 69 18 46 19 26 77 52 83 76 65 43 66 84 84 13 30 66 88 84 23 37 1 17 26 11 50 73 56 54 37 40 29 35 8 1 39 50 82",
"output": "51"
},
{
"input": "100 7\n6 73 7 54 92 33 66 65 80 47 2 53 28 59 61 16 54 89 37 48 77 40 49 59 27 52 17 22 78 80 81 80 8 93 50 7 87 57 29 16 89 55 20 7 51 54 30 98 44 96 27 70 1 1 32 61 22 92 84 98 31 89 91 90 28 56 49 25 86 49 55 16 19 1 18 8 88 47 16 18 73 86 2 96 16 91 74 49 38 98 94 25 34 85 29 27 99 31 31 58",
"output": "97"
},
{
"input": "100 9\n36 4 45 16 19 6 10 87 44 82 71 49 70 35 83 19 40 76 45 94 44 96 10 54 82 77 86 63 11 37 21 3 15 89 80 88 89 16 72 23 25 9 51 25 10 45 96 5 6 18 51 31 42 57 41 51 42 15 89 61 45 82 16 48 61 67 19 40 9 33 90 36 78 36 79 79 16 10 83 87 9 22 84 12 23 76 36 14 2 81 56 33 56 23 57 84 76 55 35 88",
"output": "47"
},
{
"input": "100 10\n75 81 39 64 90 58 92 28 75 9 96 78 92 83 77 68 76 71 14 46 58 60 80 25 78 11 13 63 22 82 65 68 47 6 33 63 90 50 85 43 73 94 80 48 67 11 83 17 22 15 94 80 66 99 66 4 46 35 52 1 62 39 96 57 37 47 97 49 64 12 36 63 90 16 4 75 85 82 85 56 13 4 92 45 44 93 17 35 22 46 18 44 29 7 52 4 100 98 87 51",
"output": "98"
},
{
"input": "100 20\n21 19 61 70 54 97 98 14 61 72 25 94 24 56 55 25 12 80 76 11 35 17 80 26 11 94 52 47 84 61 10 2 74 25 10 21 2 79 55 50 30 75 10 64 44 5 60 96 52 16 74 41 20 77 20 44 8 86 74 36 49 61 99 13 54 64 19 99 50 43 12 73 48 48 83 55 72 73 63 81 30 27 95 9 97 82 24 3 89 90 33 14 47 88 22 78 12 75 58 67",
"output": "94"
},
{
"input": "100 30\n56 79 59 23 11 23 67 82 81 80 99 79 8 58 93 36 98 81 46 39 34 67 3 50 4 68 70 71 2 21 52 30 75 23 33 21 16 100 56 43 8 27 40 8 56 24 17 40 94 10 67 49 61 36 95 87 17 41 7 94 33 19 17 50 26 11 94 54 38 46 77 9 53 35 98 42 50 20 43 6 78 6 38 24 100 45 43 16 1 50 16 46 14 91 95 88 10 1 50 19",
"output": "95"
},
{
"input": "100 40\n86 11 97 17 38 95 11 5 13 83 67 75 50 2 46 39 84 68 22 85 70 23 64 46 59 93 39 80 35 78 93 21 83 19 64 1 49 59 99 83 44 81 70 58 15 82 83 47 55 65 91 10 2 92 4 77 37 32 12 57 78 11 42 8 59 21 96 69 61 30 44 29 12 70 91 14 10 83 11 75 14 10 19 39 8 98 5 81 66 66 79 55 36 29 22 45 19 24 55 49",
"output": "88"
},
{
"input": "100 50\n22 39 95 69 94 53 80 73 33 90 40 60 2 4 84 50 70 38 92 12 36 74 87 70 51 36 57 5 54 6 35 81 52 17 55 100 95 81 32 76 21 1 100 1 95 1 40 91 98 59 84 19 11 51 79 19 47 86 45 15 62 2 59 77 31 68 71 92 17 33 10 33 85 57 5 2 88 97 91 99 63 20 63 54 79 93 24 62 46 27 30 87 3 64 95 88 16 50 79 1",
"output": "99"
},
{
"input": "100 70\n61 48 89 17 97 6 93 13 64 50 66 88 24 52 46 99 6 65 93 64 82 37 57 41 47 1 84 5 97 83 79 46 16 35 40 7 64 15 44 96 37 17 30 92 51 67 26 3 14 56 27 68 66 93 36 39 51 6 40 55 79 26 71 54 8 48 18 2 71 12 55 60 29 37 31 97 26 37 25 68 67 70 3 87 100 41 5 82 65 92 24 66 76 48 89 8 40 93 31 95",
"output": "100"
},
{
"input": "100 90\n87 32 30 15 10 52 93 63 84 1 82 41 27 51 75 32 42 94 39 53 70 13 4 22 99 35 44 38 5 23 18 100 61 80 9 12 42 93 9 77 3 7 60 95 66 78 95 42 69 8 1 88 93 66 96 20 76 63 15 36 92 52 2 72 36 57 48 63 29 20 74 88 49 47 81 61 94 74 70 93 47 3 19 52 59 41 5 40 22 3 76 97 91 37 95 88 91 99 76 15",
"output": "98"
},
{
"input": "100 100\n79 75 7 28 6 96 38 35 57 95 41 74 24 96 32 78 81 13 63 84 24 95 3 23 66 1 60 6 96 49 41 5 14 18 31 97 66 19 49 89 49 70 51 28 20 99 18 1 28 77 24 46 69 21 40 32 31 66 28 6 66 97 9 16 70 90 91 30 34 82 93 41 65 11 39 52 1 88 63 43 80 50 60 49 28 56 18 76 24 57 74 1 28 99 36 35 79 54 18 16",
"output": "100"
},
{
"input": "1 3\n5",
"output": "1"
},
{
"input": "1 1\n100",
"output": "1"
},
{
"input": "2 3\n4 2",
"output": "1"
},
{
"input": "2 5\n99 97",
"output": "2"
},
{
"input": "3 4\n7 5 2",
"output": "2"
},
{
"input": "3 50\n47 86 51",
"output": "3"
},
{
"input": "5 100\n82 100 85 1 37",
"output": "5"
},
{
"input": "5 20\n40 39 21 5 20",
"output": "3"
},
{
"input": "1 27\n81",
"output": "1"
},
{
"input": "20 13\n7 8 29 83 74 28 93 85 7 8 3 9 8 70 49 50 39 41 57 1",
"output": "7"
},
{
"input": "2 1\n100 2",
"output": "1"
},
{
"input": "2 2\n6 4",
"output": "1"
},
{
"input": "5 2\n6 4 4 1 1",
"output": "1"
},
{
"input": "1 4\n3",
"output": "1"
},
{
"input": "3 2\n1 5 3",
"output": "2"
},
{
"input": "3 1\n3 2 2",
"output": "1"
},
{
"input": "3 1\n2 3 2",
"output": "2"
},
{
"input": "5 1\n5 1 1 1 1",
"output": "1"
},
{
"input": "2 3\n7 4",
"output": "1"
}
] | 1,682,790,497
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 49
| 46
| 0
|
n, m=map(int, input().split(" "))
p=0
mx=0
a=list(map(int, input().split(" ")))
for i in range(n):
if (a[i]+m-1)//m>=mx:
p=i
mx=(a[i]+m-1)//m
print(p+1)
# Sat Apr 29 2023 20:48:17 GMT+0300 (Moscow Standard Time)
|
Title: Jzzhu and Children
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* children in Jzzhu's school. Jzzhu is going to give some candies to them. Let's number all the children from 1 to *n*. The *i*-th child wants to get at least *a**i* candies.
Jzzhu asks children to line up. Initially, the *i*-th child stands at the *i*-th place of the line. Then Jzzhu start distribution of the candies. He follows the algorithm:
1. Give *m* candies to the first child of the line. 1. If this child still haven't got enough candies, then the child goes to the end of the line, else the child go home. 1. Repeat the first two steps while the line is not empty.
Consider all the children in the order they go home. Jzzhu wants to know, which child will be the last in this order?
Input Specification:
The first line contains two integers *n*,<=*m* (1<=β€<=*n*<=β€<=100;Β 1<=β€<=*m*<=β€<=100). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=100).
Output Specification:
Output a single integer, representing the number of the last child.
Demo Input:
['5 2\n1 3 1 4 2\n', '6 4\n1 1 2 2 3 3\n']
Demo Output:
['4\n', '6\n']
Note:
Let's consider the first sample.
Firstly child 1 gets 2 candies and go home. Then child 2 gets 2 candies and go to the end of the line. Currently the line looks like [3, 4, 5, 2] (indices of the children in order of the line). Then child 3 gets 2 candies and go home, and then child 4 gets 2 candies and goes to the end of the line. Currently the line looks like [5, 2, 4]. Then child 5 gets 2 candies and goes home. Then child 2 gets two candies and goes home, and finally child 4 gets 2 candies and goes home.
Child 4 is the last one who goes home.
|
```python
n, m=map(int, input().split(" "))
p=0
mx=0
a=list(map(int, input().split(" ")))
for i in range(n):
if (a[i]+m-1)//m>=mx:
p=i
mx=(a[i]+m-1)//m
print(p+1)
# Sat Apr 29 2023 20:48:17 GMT+0300 (Moscow Standard Time)
```
| 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*Β·*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<=<=β€<=<=*k*,<=*w*<=<=β€<=<=1000, 0<=β€<=*n*<=β€<=109), the cost of the first banana, initial number of dollars the soldier has and number of bananas he wants.
|
Output one integer β 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"
}
] | 1,696,608,564
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 15
| 62
| 0
|
a, n, m = map(int, input().split())
s = a*((m*(m+1))//2)
if s-n <= 0:
print(0)
else:
print(s-n)
|
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*Β·*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<=<=β€<=<=*k*,<=*w*<=<=β€<=<=1000, 0<=β€<=*n*<=β€<=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 β 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, n, m = map(int, input().split())
s = a*((m*(m+1))//2)
if s-n <= 0:
print(0)
else:
print(s-n)
```
| 3
|
|
141
|
A
|
Amusing Joke
|
PROGRAMMING
| 800
|
[
"implementation",
"sortings",
"strings"
] | null | null |
So, the New Year holidays are over. Santa Claus and his colleagues can take a rest and have guests at last. When two "New Year and Christmas Men" meet, thear assistants cut out of cardboard the letters from the guest's name and the host's name in honor of this event. Then the hung the letters above the main entrance. One night, when everyone went to bed, someone took all the letters of our characters' names. Then he may have shuffled the letters and put them in one pile in front of the door.
The next morning it was impossible to find the culprit who had made the disorder. But everybody wondered whether it is possible to restore the names of the host and his guests from the letters lying at the door? That is, we need to verify that there are no extra letters, and that nobody will need to cut more letters.
Help the "New Year and Christmas Men" and their friends to cope with this problem. You are given both inscriptions that hung over the front door the previous night, and a pile of letters that were found at the front door next morning.
|
The input file consists of three lines: the first line contains the guest's name, the second line contains the name of the residence host and the third line contains letters in a pile that were found at the door in the morning. All lines are not empty and contain only uppercase Latin letters. The length of each line does not exceed 100.
|
Print "YES" without the quotes, if the letters in the pile could be permuted to make the names of the "New Year and Christmas Men". Otherwise, print "NO" without the quotes.
|
[
"SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS\n",
"PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI\n",
"BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER\n"
] |
[
"YES\n",
"NO\n",
"NO\n"
] |
In the first sample the letters written in the last line can be used to write the names and there won't be any extra letters left.
In the second sample letter "P" is missing from the pile and there's an extra letter "L".
In the third sample there's an extra letter "L".
| 500
|
[
{
"input": "SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS",
"output": "YES"
},
{
"input": "PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI",
"output": "NO"
},
{
"input": "BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER",
"output": "NO"
},
{
"input": "B\nA\nAB",
"output": "YES"
},
{
"input": "ONDOL\nJNPB\nONLNJBODP",
"output": "YES"
},
{
"input": "Y\nW\nYW",
"output": "YES"
},
{
"input": "OI\nM\nIMO",
"output": "YES"
},
{
"input": "VFQRWWWACX\nGHZJPOQUSXRAQDGOGMR\nOPAWDOUSGWWCGQXXQAZJRQRGHRMVF",
"output": "YES"
},
{
"input": "JUTCN\nPIGMZOPMEUFADQBW\nNWQGZMAIPUPOMCDUB",
"output": "NO"
},
{
"input": "Z\nO\nZOCNDOLTBZKQLTBOLDEGXRHZGTTPBJBLSJCVSVXISQZCSFDEBXRCSGBGTHWOVIXYHACAGBRYBKBJAEPIQZHVEGLYH",
"output": "NO"
},
{
"input": "IQ\nOQ\nQOQIGGKFNHJSGCGM",
"output": "NO"
},
{
"input": "ROUWANOPNIGTVMIITVMZ\nOQTUPZMTKUGY\nVTVNGZITGPUNPMQOOATUUIYIWMMKZOTR",
"output": "YES"
},
{
"input": "OVQELLOGFIOLEHXMEMBJDIGBPGEYFG\nJNKFPFFIJOFHRIFHXEWYZOPDJBZTJZKBWQTECNHRFSJPJOAPQT\nYAIPFFFEXJJNEJPLREIGODEGQZVMCOBDFKWTMWJSBEBTOFFQOHIQJLHFNXIGOHEZRZLFOKJBJPTPHPGY",
"output": "YES"
},
{
"input": "NBJGVNGUISUXQTBOBKYHQCOOVQWUXWPXBUDLXPKX\nNSFQDFUMQDQWQ\nWXKKVNTDQQFXCUQBIMQGQHSLVGWSBFYBUPOWPBDUUJUXQNOQDNXOX",
"output": "YES"
},
{
"input": "IJHHGKCXWDBRWJUPRDBZJLNTTNWKXLUGJSBWBOAUKWRAQWGFNL\nNJMWRMBCNPHXTDQQNZ\nWDNJRCLILNQRHWBANLTXWMJBPKUPGKJDJZAQWKTZFBRCTXHHBNXRGUQUNBNMWODGSJWW",
"output": "YES"
},
{
"input": "SRROWANGUGZHCIEFYMQVTWVOMDWPUZJFRDUMVFHYNHNTTGNXCJ\nDJYWGLBFCCECXFHOLORDGDCNRHPWXNHXFCXQCEZUHRRNAEKUIX\nWCUJDNYHNHYOPWMHLDCDYRWBVOGHFFUKOZTXJRXJHRGWICCMRNEVNEGQWTZPNFCSHDRFCFQDCXMHTLUGZAXOFNXNVGUEXIACRERU",
"output": "YES"
},
{
"input": "H\nJKFGHMIAHNDBMFXWYQLZRSVNOTEGCQSVUBYUOZBTNKTXPFQDCMKAGFITEUGOYDFIYQIORMFJEOJDNTFVIQEBICSNGKOSNLNXJWC\nBQSVDOGIHCHXSYNYTQFCHNJGYFIXTSOQINZOKSVQJMTKNTGFNXAVTUYEONMBQMGJLEWJOFGEARIOPKFUFCEMUBRBDNIIDFZDCLWK",
"output": "YES"
},
{
"input": "DSWNZRFVXQ\nPVULCZGOOU\nUOLVZXNUPOQRZGWFVDSCANQTCLEIE",
"output": "NO"
},
{
"input": "EUHTSCENIPXLTSBMLFHD\nIZAVSZPDLXOAGESUSE\nLXAELAZ",
"output": "NO"
},
{
"input": "WYSJFEREGELSKRQRXDXCGBODEFZVSI\nPEJKMGFLBFFDWRCRFSHVEFLEBTJCVCHRJTLDTISHPOGFWPLEWNYJLMXWIAOTYOXMV\nHXERTZWLEXTPIOTFRVMEJVYFFJLRPFMXDEBNSGCEOFFCWTKIDDGCFYSJKGLHBORWEPLDRXRSJYBGASSVCMHEEJFLVI",
"output": "NO"
},
{
"input": "EPBMDIUQAAUGLBIETKOKFLMTCVEPETWJRHHYKCKU\nHGMAETVPCFZYNNKDQXVXUALHYLOTCHM\nECGXACVKEYMCEDOTMKAUFHLHOMT",
"output": "NO"
},
{
"input": "NUBKQEJHALANSHEIFUZHYEZKKDRFHQKAJHLAOWTZIMOCWOVVDW\nEFVOBIGAUAUSQGVSNBKNOBDMINODMFSHDL\nKLAMKNTHBFFOHVKWICHBKNDDQNEISODUSDNLUSIOAVWY",
"output": "NO"
},
{
"input": "VXINHOMEQCATZUGAJEIUIZZLPYFGUTVLNBNWCUVMEENUXKBWBGZTMRJJVJDLVSLBABVCEUDDSQFHOYPYQTWVAGTWOLKYISAGHBMC\nZMRGXPZSHOGCSAECAPGVOIGCWEOWWOJXLGYRDMPXBLOKZVRACPYQLEQGFQCVYXAGBEBELUTDAYEAGPFKXRULZCKFHZCHVCWIRGPK\nRCVUXGQVNWFGRUDLLENNDQEJHYYVWMKTLOVIPELKPWCLSQPTAXAYEMGWCBXEVAIZGGDDRBRT",
"output": "NO"
},
{
"input": "PHBDHHWUUTZAHELGSGGOPOQXSXEZIXHZTOKYFBQLBDYWPVCNQSXHEAXRRPVHFJBVBYCJIFOTQTWSUOWXLKMVJJBNLGTVITWTCZZ\nFUPDLNVIHRWTEEEHOOEC\nLOUSUUSZCHJBPEWIILUOXEXRQNCJEGTOBRVZLTTZAHTKVEJSNGHFTAYGY",
"output": "NO"
},
{
"input": "GDSLNIIKTO\nJF\nPDQYFKDTNOLI",
"output": "NO"
},
{
"input": "AHOKHEKKPJLJIIWJRCGY\nORELJCSIX\nZVWPXVFWFSWOXXLIHJKPXIOKRELYE",
"output": "NO"
},
{
"input": "ZWCOJFORBPHXCOVJIDPKVECMHVHCOC\nTEV\nJVGTBFTLFVIEPCCHODOFOMCVZHWXVCPEH",
"output": "NO"
},
{
"input": "AGFIGYWJLVMYZGNQHEHWKJIAWBPUAQFERMCDROFN\nPMJNHMVNRGCYZAVRWNDSMLSZHFNYIUWFPUSKKIGU\nMCDVPPRXGUAYLSDRHRURZASXUWZSIIEZCPXUVEONKNGNWRYGOSFMCKESMVJZHWWUCHWDQMLASLNNMHAU",
"output": "NO"
},
{
"input": "XLOWVFCZSSXCSYQTIIDKHNTKNKEEDFMDZKXSPVLBIDIREDUAIN\nZKIWNDGBISDB\nSLPKLYFYSRNRMOSWYLJJDGFFENPOXYLPZFTQDANKBDNZDIIEWSUTTKYBKVICLG",
"output": "NO"
},
{
"input": "PMUKBTRKFIAYVGBKHZHUSJYSSEPEOEWPOSPJLWLOCTUYZODLTUAFCMVKGQKRRUSOMPAYOTBTFPXYAZXLOADDEJBDLYOTXJCJYTHA\nTWRRAJLCQJTKOKWCGUH\nEWDPNXVCXWCDQCOYKKSOYTFSZTOOPKPRDKFJDETKSRAJRVCPDOBWUGPYRJPUWJYWCBLKOOTUPBESTOFXZHTYLLMCAXDYAEBUTAHM",
"output": "NO"
},
{
"input": "QMIMGQRQDMJDPNFEFXSXQMCHEJKTWCTCVZPUAYICOIRYOWKUSIWXJLHDYWSBOITHTMINXFKBKAWZTXXBJIVYCRWKXNKIYKLDDXL\nV\nFWACCXBVDOJFIUAVYRALBYJKXXWIIFORRUHKHCXLDBZMXIYJWISFEAWTIQFIZSBXMKNOCQKVKRWDNDAMQSTKYLDNYVTUCGOJXJTW",
"output": "NO"
},
{
"input": "XJXPVOOQODELPPWUISSYVVXRJTYBPDHJNENQEVQNVFIXSESKXVYPVVHPMOSX\nLEXOPFPVPSZK\nZVXVPYEYOYXVOISVLXPOVHEQVXPNQJIOPFDTXEUNMPEPPHELNXKKWSVSOXSBPSJDPVJVSRFQ",
"output": "YES"
},
{
"input": "OSKFHGYNQLSRFSAHPXKGPXUHXTRBJNAQRBSSWJVEENLJCDDHFXVCUNPZAIVVO\nFNUOCXAGRRHNDJAHVVLGGEZQHWARYHENBKHP\nUOEFNWVXCUNERLKVTHAGPSHKHDYFPYWZHJKHQLSNFBJHVJANRXCNSDUGVDABGHVAOVHBJZXGRACHRXEGNRPQEAPORQSILNXFS",
"output": "YES"
},
{
"input": "VYXYVVACMLPDHONBUTQFZTRREERBLKUJYKAHZRCTRLRCLOZYWVPBRGDQPFPQIF\nFE\nRNRPEVDRLYUQFYRZBCQLCYZEABKLRXCJLKVZBVFUEYRATOMDRTHFPGOWQVTIFPPH",
"output": "YES"
},
{
"input": "WYXUZQJQNLASEGLHPMSARWMTTQMQLVAZLGHPIZTRVTCXDXBOLNXZPOFCTEHCXBZ\nBLQZRRWP\nGIQZXPLTTMNHQVWPPEAPLOCDMBSTHRCFLCQRRZXLVAOQEGZBRUZJXXZTMAWLZHSLWNQTYXB",
"output": "YES"
},
{
"input": "MKVJTSSTDGKPVVDPYSRJJYEVGKBMSIOKHLZQAEWLRIBINVRDAJIBCEITKDHUCCVY\nPUJJQFHOGZKTAVNUGKQUHMKTNHCCTI\nQVJKUSIGTSVYUMOMLEGHWYKSKQTGATTKBNTKCJKJPCAIRJIRMHKBIZISEGFHVUVQZBDERJCVAKDLNTHUDCHONDCVVJIYPP",
"output": "YES"
},
{
"input": "OKNJOEYVMZXJMLVJHCSPLUCNYGTDASKSGKKCRVIDGEIBEWRVBVRVZZTLMCJLXHJIA\nDJBFVRTARTFZOWN\nAGHNVUNJVCPLWSVYBJKZSVTFGLELZASLWTIXDDJXCZDICTVIJOTMVEYOVRNMJGRKKHRMEBORAKFCZJBR",
"output": "YES"
},
{
"input": "OQZACLPSAGYDWHFXDFYFRRXWGIEJGSXWUONAFWNFXDTGVNDEWNQPHUXUJNZWWLBPYL\nOHBKWRFDRQUAFRCMT\nWIQRYXRJQWWRUWCYXNXALKFZGXFTLOODWRDPGURFUFUQOHPWBASZNVWXNCAGHWEHFYESJNFBMNFDDAPLDGT",
"output": "YES"
},
{
"input": "OVIRQRFQOOWVDEPLCJETWQSINIOPLTLXHSQWUYUJNFBMKDNOSHNJQQCDHZOJVPRYVSV\nMYYDQKOOYPOOUELCRIT\nNZSOTVLJTTVQLFHDQEJONEOUOFOLYVSOIYUDNOSIQVIRMVOERCLMYSHPCQKIDRDOQPCUPQBWWRYYOXJWJQPNKH",
"output": "YES"
},
{
"input": "WGMBZWNMSJXNGDUQUJTCNXDSJJLYRDOPEGPQXYUGBESDLFTJRZDDCAAFGCOCYCQMDBWK\nYOBMOVYTUATTFGJLYUQD\nDYXVTLQCYFJUNJTUXPUYOPCBCLBWNSDUJRJGWDOJDSQAAMUOJWSYERDYDXYTMTOTMQCGQZDCGNFBALGGDFKZMEBG",
"output": "YES"
},
{
"input": "CWLRBPMEZCXAPUUQFXCUHAQTLPBTXUUKWVXKBHKNSSJFEXLZMXGVFHHVTPYAQYTIKXJJE\nMUFOSEUEXEQTOVLGDSCWM\nJUKEQCXOXWEHCGKFPBIGMWVJLXUONFXBYTUAXERYTXKCESKLXAEHVPZMMUFTHLXTTZSDMBJLQPEUWCVUHSQQVUASPF",
"output": "YES"
},
{
"input": "IDQRX\nWETHO\nODPDGBHVUVSSISROHQJTUKPUCLXABIZQQPPBPKOSEWGEHRSRRNBAVLYEMZISMWWGKHVTXKUGUXEFBSWOIWUHRJGMWBMHQLDZHBWA",
"output": "NO"
},
{
"input": "IXFDY\nJRMOU\nDF",
"output": "NO"
},
{
"input": "JPSPZ\nUGCUB\nJMZZZZZZZZ",
"output": "NO"
},
{
"input": "AC\nA\nBBA",
"output": "NO"
},
{
"input": "UIKWWKXLSHTOOZOVGXKYSOJEHAUEEG\nKZXQDWJJWRXFHKJDQHJK\nXMZHTFOGEXAUJXXJUYVJIFOTKLZHDKELJWERHMGAWGKWAQKEKHIDWGGZVYOHKXRPWSJDPESFJUMKQYWBYUTHQYEFZUGKQOBHYDWB",
"output": "NO"
},
{
"input": "PXWRXRPFLR\nPJRWWXIVHODV\nXW",
"output": "NO"
},
{
"input": "CHTAZVHGSHCVIBK\nEQINEBKXEPYJSAZIMLDF\nZCZZZZDZMCZZEZDZZEZZZZQZZBZZZOZZCZE",
"output": "NO"
},
{
"input": "GXPZFSELJJNDAXYRV\nUYBKPMVBSOVOJWMONLTJOJCNQKMTAHEWLHOWIIBH\nHCWNFWJPEJIWOVPTBMVCRJLSISSVNOHCKLBFMIUAIMASQWPXEYXBOXQGFEMYJLBKDCZIMJNHOJEDGGANIVYKQTUOSOVOPWHVJGXH",
"output": "NO"
},
{
"input": "LFGJCJJDUTUP\nOVSBILTIYCJCRHKCIXCETJQJJ\nGIJJTJCLTJJJ",
"output": "NO"
},
{
"input": "GIO\nPRL\nPRL",
"output": "NO"
},
{
"input": "A\nB\nABC",
"output": "NO"
},
{
"input": "KKK\nKKK\nZZZZZ",
"output": "NO"
},
{
"input": "ZMYGQLDBLAPN\nZFJBKWHROVNPSJQUDFTHOCGREUFLYIWYICD\nZMJZZEDAZANKZZZZZZEZZBZDZZZZZZKHZZFZZZDZNZMDZZA",
"output": "NO"
}
] | 1,681,983,384
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 54
| 312
| 0
|
s1=input()
s2=input()
s3=input()
s1sort = sorted(s1)
s2sort = sorted(s2)
s3sort = sorted(s3)
# print(s1sort)
s4 = s1sort+s2sort
s4sort=sorted(s4)
# print(s3sort)
# print(s4)
# print(s4)
ans=1
if len(s3)!=len(s4):
print("NO")
exit()
else:
for i in range(0,len(s4)):
if s3sort[i]==s4sort[i]:
continue
else:
ans=-1
break
if ans==1:
print("YES")
else:
print("NO")
|
Title: Amusing Joke
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
So, the New Year holidays are over. Santa Claus and his colleagues can take a rest and have guests at last. When two "New Year and Christmas Men" meet, thear assistants cut out of cardboard the letters from the guest's name and the host's name in honor of this event. Then the hung the letters above the main entrance. One night, when everyone went to bed, someone took all the letters of our characters' names. Then he may have shuffled the letters and put them in one pile in front of the door.
The next morning it was impossible to find the culprit who had made the disorder. But everybody wondered whether it is possible to restore the names of the host and his guests from the letters lying at the door? That is, we need to verify that there are no extra letters, and that nobody will need to cut more letters.
Help the "New Year and Christmas Men" and their friends to cope with this problem. You are given both inscriptions that hung over the front door the previous night, and a pile of letters that were found at the front door next morning.
Input Specification:
The input file consists of three lines: the first line contains the guest's name, the second line contains the name of the residence host and the third line contains letters in a pile that were found at the door in the morning. All lines are not empty and contain only uppercase Latin letters. The length of each line does not exceed 100.
Output Specification:
Print "YES" without the quotes, if the letters in the pile could be permuted to make the names of the "New Year and Christmas Men". Otherwise, print "NO" without the quotes.
Demo Input:
['SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS\n', 'PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI\n', 'BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER\n']
Demo Output:
['YES\n', 'NO\n', 'NO\n']
Note:
In the first sample the letters written in the last line can be used to write the names and there won't be any extra letters left.
In the second sample letter "P" is missing from the pile and there's an extra letter "L".
In the third sample there's an extra letter "L".
|
```python
s1=input()
s2=input()
s3=input()
s1sort = sorted(s1)
s2sort = sorted(s2)
s3sort = sorted(s3)
# print(s1sort)
s4 = s1sort+s2sort
s4sort=sorted(s4)
# print(s3sort)
# print(s4)
# print(s4)
ans=1
if len(s3)!=len(s4):
print("NO")
exit()
else:
for i in range(0,len(s4)):
if s3sort[i]==s4sort[i]:
continue
else:
ans=-1
break
if ans==1:
print("YES")
else:
print("NO")
```
| 3
|
|
165
|
A
|
Supercentral Point
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
One day Vasya painted a Cartesian coordinate system on a piece of paper and marked some set of points (*x*1,<=*y*1),<=(*x*2,<=*y*2),<=...,<=(*x**n*,<=*y**n*). Let's define neighbors for some fixed point from the given set (*x*,<=*y*):
- point (*x*',<=*y*') is (*x*,<=*y*)'s right neighbor, if *x*'<=><=*x* and *y*'<==<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s left neighbor, if *x*'<=<<=*x* and *y*'<==<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s lower neighbor, if *x*'<==<=*x* and *y*'<=<<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s upper neighbor, if *x*'<==<=*x* and *y*'<=><=*y*
We'll consider point (*x*,<=*y*) from the given set supercentral, if it has at least one upper, at least one lower, at least one left and at least one right neighbor among this set's points.
Vasya marked quite many points on the paper. Analyzing the picture manually is rather a challenge, so Vasya asked you to help him. Your task is to find the number of supercentral points in the given set.
|
The first input line contains the only integer *n* (1<=β€<=*n*<=β€<=200) β the number of points in the given set. Next *n* lines contain the coordinates of the points written as "*x* *y*" (without the quotes) (|*x*|,<=|*y*|<=β€<=1000), all coordinates are integers. The numbers in the line are separated by exactly one space. It is guaranteed that all points are different.
|
Print the only number β the number of supercentral points of the given set.
|
[
"8\n1 1\n4 2\n3 1\n1 2\n0 2\n0 1\n1 0\n1 3\n",
"5\n0 0\n0 1\n1 0\n0 -1\n-1 0\n"
] |
[
"2\n",
"1\n"
] |
In the first sample the supercentral points are only points (1,β1) and (1,β2).
In the second sample there is one supercental point β point (0,β0).
| 500
|
[
{
"input": "8\n1 1\n4 2\n3 1\n1 2\n0 2\n0 1\n1 0\n1 3",
"output": "2"
},
{
"input": "5\n0 0\n0 1\n1 0\n0 -1\n-1 0",
"output": "1"
},
{
"input": "9\n-565 -752\n-184 723\n-184 -752\n-184 1\n950 723\n-565 723\n950 -752\n950 1\n-565 1",
"output": "1"
},
{
"input": "25\n-651 897\n916 897\n-651 -808\n-748 301\n-734 414\n-651 -973\n-734 897\n916 -550\n-758 414\n916 180\n-758 -808\n-758 -973\n125 -550\n125 -973\n125 301\n916 414\n-748 -808\n-651 301\n-734 301\n-307 897\n-651 -550\n-651 414\n125 -808\n-748 -550\n916 -808",
"output": "7"
},
{
"input": "1\n487 550",
"output": "0"
},
{
"input": "10\n990 -396\n990 736\n990 646\n990 -102\n990 -570\n990 155\n990 528\n990 489\n990 268\n990 676",
"output": "0"
},
{
"input": "30\n507 836\n525 836\n-779 196\n507 -814\n525 -814\n525 42\n525 196\n525 -136\n-779 311\n507 -360\n525 300\n507 578\n507 311\n-779 836\n507 300\n525 -360\n525 311\n-779 -360\n-779 578\n-779 300\n507 42\n525 578\n-779 379\n507 196\n525 379\n507 379\n-779 -814\n-779 42\n-779 -136\n507 -136",
"output": "8"
},
{
"input": "25\n890 -756\n890 -188\n-37 -756\n-37 853\n523 998\n-261 853\n-351 853\n-351 -188\n523 -756\n-261 -188\n-37 998\n523 -212\n-351 998\n-37 -188\n-351 -756\n-37 -212\n890 998\n890 -212\n523 853\n-351 -212\n-261 -212\n-261 998\n-261 -756\n890 853\n523 -188",
"output": "9"
},
{
"input": "21\n-813 -11\n486 254\n685 254\n-708 254\n-55 -11\n-671 -191\n486 -11\n-671 -11\n685 -11\n685 -191\n486 -191\n-55 254\n-708 -11\n-813 254\n-708 -191\n41 -11\n-671 254\n-813 -191\n41 254\n-55 -191\n41 -191",
"output": "5"
},
{
"input": "4\n1 0\n2 0\n1 1\n1 -1",
"output": "0"
}
] | 1,631,696,100
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 26
| 186
| 6,963,200
|
n = int(input())
p= []
for i in range(n):
xy= list(map(int,input().split()))
p.append(xy)
c=0
for i in range(n):
low=up=right=left=0
for j in range(n):
if p[i][0]==p[j][0]:
if p[i][1]>p[j][1]:
low=1
if p[i][1]<p[j][1]:
up=1
if p[i][1]==p[j][1]:
if p[i][0]>p[j][0]:
left=1
if p[i][0]<p[j][0]:
right=1
if low&up&left&right:
c+=1
print(c)
|
Title: Supercentral Point
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day Vasya painted a Cartesian coordinate system on a piece of paper and marked some set of points (*x*1,<=*y*1),<=(*x*2,<=*y*2),<=...,<=(*x**n*,<=*y**n*). Let's define neighbors for some fixed point from the given set (*x*,<=*y*):
- point (*x*',<=*y*') is (*x*,<=*y*)'s right neighbor, if *x*'<=><=*x* and *y*'<==<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s left neighbor, if *x*'<=<<=*x* and *y*'<==<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s lower neighbor, if *x*'<==<=*x* and *y*'<=<<=*y* - point (*x*',<=*y*') is (*x*,<=*y*)'s upper neighbor, if *x*'<==<=*x* and *y*'<=><=*y*
We'll consider point (*x*,<=*y*) from the given set supercentral, if it has at least one upper, at least one lower, at least one left and at least one right neighbor among this set's points.
Vasya marked quite many points on the paper. Analyzing the picture manually is rather a challenge, so Vasya asked you to help him. Your task is to find the number of supercentral points in the given set.
Input Specification:
The first input line contains the only integer *n* (1<=β€<=*n*<=β€<=200) β the number of points in the given set. Next *n* lines contain the coordinates of the points written as "*x* *y*" (without the quotes) (|*x*|,<=|*y*|<=β€<=1000), all coordinates are integers. The numbers in the line are separated by exactly one space. It is guaranteed that all points are different.
Output Specification:
Print the only number β the number of supercentral points of the given set.
Demo Input:
['8\n1 1\n4 2\n3 1\n1 2\n0 2\n0 1\n1 0\n1 3\n', '5\n0 0\n0 1\n1 0\n0 -1\n-1 0\n']
Demo Output:
['2\n', '1\n']
Note:
In the first sample the supercentral points are only points (1,β1) and (1,β2).
In the second sample there is one supercental point β point (0,β0).
|
```python
n = int(input())
p= []
for i in range(n):
xy= list(map(int,input().split()))
p.append(xy)
c=0
for i in range(n):
low=up=right=left=0
for j in range(n):
if p[i][0]==p[j][0]:
if p[i][1]>p[j][1]:
low=1
if p[i][1]<p[j][1]:
up=1
if p[i][1]==p[j][1]:
if p[i][0]>p[j][0]:
left=1
if p[i][0]<p[j][0]:
right=1
if low&up&left&right:
c+=1
print(c)
```
| 3
|
|
1,006
|
C
|
Three Parts of the Array
|
PROGRAMMING
| 1,200
|
[
"binary search",
"data structures",
"two pointers"
] | null | null |
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
|
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
|
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
|
[
"5\n1 3 1 1 4\n",
"5\n1 3 2 1 4\n",
"3\n4 1 2\n"
] |
[
"5\n",
"4\n",
"0\n"
] |
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
| 0
|
[
{
"input": "5\n1 3 1 1 4",
"output": "5"
},
{
"input": "5\n1 3 2 1 4",
"output": "4"
},
{
"input": "3\n4 1 2",
"output": "0"
},
{
"input": "1\n1000000000",
"output": "0"
},
{
"input": "2\n1 1",
"output": "1"
},
{
"input": "5\n1 3 5 4 5",
"output": "9"
}
] | 1,622,301,125
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 27
| 717
| 36,044,800
|
#t=int(input())
import math
def binarySearch (arr, l, r, x):
# Check base case
if r >= l:
mid = l + (r - l) // 2
# If element is present at the middle itself
if arr[mid] == x:
return mid
# If element is smaller than mid, then it
# can only be present in left subarray
elif arr[mid] > x:
return binarySearch(arr, l, mid-1, x)
# Else the element can only be present
# in right subarray
else:
return binarySearch(arr, mid + 1, r, x)
else:
# Element is not present in the array
return -1
#for _ in range(t):
n=int(input())
arr=list(map(int,input().split()))
i=-1
s=0
back=[0]
while i>-n:
s+=arr[i]
back.append(s)
i-=1
i=0
s=0
front=[0]
while i<n-1:
s+=arr[i]
front.append(s)
i+=1
ans=0
for i in range(n):
if binarySearch(back,0,n-1,front[i])!=-1 and binarySearch(back,0,n-1,front[i])+i<=n:
ans=front[i]
print(ans)
|
Title: Three Parts of the Array
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given an array $d_1, d_2, \dots, d_n$ consisting of $n$ integer numbers.
Your task is to split this array into three parts (some of which may be empty) in such a way that each element of the array belongs to exactly one of the three parts, and each of the parts forms a consecutive contiguous subsegment (possibly, empty) of the original array.
Let the sum of elements of the first part be $sum_1$, the sum of elements of the second part be $sum_2$ and the sum of elements of the third part be $sum_3$. Among all possible ways to split the array you have to choose a way such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
More formally, if the first part of the array contains $a$ elements, the second part of the array contains $b$ elements and the third part contains $c$ elements, then:
$$sum_1 = \sum\limits_{1 \le i \le a}d_i,$$ $$sum_2 = \sum\limits_{a + 1 \le i \le a + b}d_i,$$ $$sum_3 = \sum\limits_{a + b + 1 \le i \le a + b + c}d_i.$$
The sum of an empty array is $0$.
Your task is to find a way to split the array such that $sum_1 = sum_3$ and $sum_1$ is maximum possible.
Input Specification:
The first line of the input contains one integer $n$ ($1 \le n \le 2 \cdot 10^5$) β the number of elements in the array $d$.
The second line of the input contains $n$ integers $d_1, d_2, \dots, d_n$ ($1 \le d_i \le 10^9$) β the elements of the array $d$.
Output Specification:
Print a single integer β the maximum possible value of $sum_1$, considering that the condition $sum_1 = sum_3$ must be met.
Obviously, at least one valid way to split the array exists (use $a=c=0$ and $b=n$).
Demo Input:
['5\n1 3 1 1 4\n', '5\n1 3 2 1 4\n', '3\n4 1 2\n']
Demo Output:
['5\n', '4\n', '0\n']
Note:
In the first example there is only one possible splitting which maximizes $sum_1$: $[1, 3, 1], [~], [1, 4]$.
In the second example the only way to have $sum_1=4$ is: $[1, 3], [2, 1], [4]$.
In the third example there is only one way to split the array: $[~], [4, 1, 2], [~]$.
|
```python
#t=int(input())
import math
def binarySearch (arr, l, r, x):
# Check base case
if r >= l:
mid = l + (r - l) // 2
# If element is present at the middle itself
if arr[mid] == x:
return mid
# If element is smaller than mid, then it
# can only be present in left subarray
elif arr[mid] > x:
return binarySearch(arr, l, mid-1, x)
# Else the element can only be present
# in right subarray
else:
return binarySearch(arr, mid + 1, r, x)
else:
# Element is not present in the array
return -1
#for _ in range(t):
n=int(input())
arr=list(map(int,input().split()))
i=-1
s=0
back=[0]
while i>-n:
s+=arr[i]
back.append(s)
i-=1
i=0
s=0
front=[0]
while i<n-1:
s+=arr[i]
front.append(s)
i+=1
ans=0
for i in range(n):
if binarySearch(back,0,n-1,front[i])!=-1 and binarySearch(back,0,n-1,front[i])+i<=n:
ans=front[i]
print(ans)
```
| 3
|
|
981
|
A
|
Antipalindrome
|
PROGRAMMING
| 900
|
[
"brute force",
"implementation",
"strings"
] | null | null |
A string is a palindrome if it reads the same from the left to the right and from the right to the left. For example, the strings "kek", "abacaba", "r" and "papicipap" are palindromes, while the strings "abb" and "iq" are not.
A substring $s[l \ldots r]$ ($1<=\leq<=l<=\leq<=r<=\leq<=|s|$) of a string $s<==<=s_{1}s_{2} \ldots s_{|s|}$ is the string $s_{l}s_{l<=+<=1} \ldots s_{r}$.
Anna does not like palindromes, so she makes her friends call her Ann. She also changes all the words she reads in a similar way. Namely, each word $s$ is changed into its longest substring that is not a palindrome. If all the substrings of $s$ are palindromes, she skips the word at all.
Some time ago Ann read the word $s$. What is the word she changed it into?
|
The first line contains a non-empty string $s$ with length at most $50$ characters, containing lowercase English letters only.
|
If there is such a substring in $s$ that is not a palindrome, print the maximum length of such a substring. Otherwise print $0$.
Note that there can be multiple longest substrings that are not palindromes, but their length is unique.
|
[
"mew\n",
"wuffuw\n",
"qqqqqqqq\n"
] |
[
"3\n",
"5\n",
"0\n"
] |
"mew" is not a palindrome, so the longest substring of it that is not a palindrome, is the string "mew" itself. Thus, the answer for the first example is $3$.
The string "uffuw" is one of the longest non-palindrome substrings (of length $5$) of the string "wuffuw", so the answer for the second example is $5$.
All substrings of the string "qqqqqqqq" consist of equal characters so they are palindromes. This way, there are no non-palindrome substrings. Thus, the answer for the third example is $0$.
| 500
|
[
{
"input": "mew",
"output": "3"
},
{
"input": "wuffuw",
"output": "5"
},
{
"input": "qqqqqqqq",
"output": "0"
},
{
"input": "ijvji",
"output": "4"
},
{
"input": "iiiiiii",
"output": "0"
},
{
"input": "wobervhvvkihcuyjtmqhaaigvvgiaahqmtjyuchikvvhvrebow",
"output": "49"
},
{
"input": "wwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwww",
"output": "0"
},
{
"input": "wobervhvvkihcuyjtmqhaaigvahheoqleromusrartldojsjvy",
"output": "50"
},
{
"input": "ijvxljt",
"output": "7"
},
{
"input": "fyhcncnchyf",
"output": "10"
},
{
"input": "ffffffffffff",
"output": "0"
},
{
"input": "fyhcncfsepqj",
"output": "12"
},
{
"input": "ybejrrlbcinttnicblrrjeby",
"output": "23"
},
{
"input": "yyyyyyyyyyyyyyyyyyyyyyyyy",
"output": "0"
},
{
"input": "ybejrrlbcintahovgjddrqatv",
"output": "25"
},
{
"input": "oftmhcmclgyqaojljoaqyglcmchmtfo",
"output": "30"
},
{
"input": "oooooooooooooooooooooooooooooooo",
"output": "0"
},
{
"input": "oftmhcmclgyqaojllbotztajglsmcilv",
"output": "32"
},
{
"input": "gxandbtgpbknxvnkjaajknvxnkbpgtbdnaxg",
"output": "35"
},
{
"input": "gggggggggggggggggggggggggggggggggggg",
"output": "0"
},
{
"input": "gxandbtgpbknxvnkjaygommzqitqzjfalfkk",
"output": "36"
},
{
"input": "fcliblymyqckxvieotjooojtoeivxkcqymylbilcf",
"output": "40"
},
{
"input": "fffffffffffffffffffffffffffffffffffffffffff",
"output": "0"
},
{
"input": "fcliblymyqckxvieotjootiqwtyznhhvuhbaixwqnsy",
"output": "43"
},
{
"input": "rrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrrr",
"output": "0"
},
{
"input": "rajccqwqnqmshmerpvjyfepxwpxyldzpzhctqjnstxyfmlhiy",
"output": "49"
},
{
"input": "a",
"output": "0"
},
{
"input": "abca",
"output": "4"
},
{
"input": "aaaaabaaaaa",
"output": "10"
},
{
"input": "aba",
"output": "2"
},
{
"input": "asaa",
"output": "4"
},
{
"input": "aabaa",
"output": "4"
},
{
"input": "aabbaa",
"output": "5"
},
{
"input": "abcdaaa",
"output": "7"
},
{
"input": "aaholaa",
"output": "7"
},
{
"input": "abcdefghijka",
"output": "12"
},
{
"input": "aaadcba",
"output": "7"
},
{
"input": "aaaabaaaa",
"output": "8"
},
{
"input": "abaa",
"output": "4"
},
{
"input": "abcbaa",
"output": "6"
},
{
"input": "ab",
"output": "2"
},
{
"input": "l",
"output": "0"
},
{
"input": "aaaabcaaaa",
"output": "10"
},
{
"input": "abbaaaaaabba",
"output": "11"
},
{
"input": "abaaa",
"output": "5"
},
{
"input": "baa",
"output": "3"
},
{
"input": "aaaaaaabbba",
"output": "11"
},
{
"input": "ccbcc",
"output": "4"
},
{
"input": "bbbaaab",
"output": "7"
},
{
"input": "abaaaaaaaa",
"output": "10"
},
{
"input": "abaaba",
"output": "5"
},
{
"input": "aabsdfaaaa",
"output": "10"
},
{
"input": "aaaba",
"output": "5"
},
{
"input": "aaabaaa",
"output": "6"
},
{
"input": "baaabbb",
"output": "7"
},
{
"input": "ccbbabbcc",
"output": "8"
},
{
"input": "cabc",
"output": "4"
},
{
"input": "aabcd",
"output": "5"
},
{
"input": "abcdea",
"output": "6"
},
{
"input": "bbabb",
"output": "4"
},
{
"input": "aaaaabababaaaaa",
"output": "14"
},
{
"input": "bbabbb",
"output": "6"
},
{
"input": "aababd",
"output": "6"
},
{
"input": "abaaaa",
"output": "6"
},
{
"input": "aaaaaaaabbba",
"output": "12"
},
{
"input": "aabca",
"output": "5"
},
{
"input": "aaabccbaaa",
"output": "9"
},
{
"input": "aaaaaaaaaaaaaaaaaaaab",
"output": "21"
},
{
"input": "babb",
"output": "4"
},
{
"input": "abcaa",
"output": "5"
},
{
"input": "qwqq",
"output": "4"
},
{
"input": "aaaaaaaaaaabbbbbbbbbbbbbbbaaaaaaaaaaaaaaaaaaaaaa",
"output": "48"
},
{
"input": "aaab",
"output": "4"
},
{
"input": "aaaaaabaaaaa",
"output": "12"
},
{
"input": "wwuww",
"output": "4"
},
{
"input": "aaaaabcbaaaaa",
"output": "12"
},
{
"input": "aaabbbaaa",
"output": "8"
},
{
"input": "aabcbaa",
"output": "6"
},
{
"input": "abccdefccba",
"output": "11"
},
{
"input": "aabbcbbaa",
"output": "8"
},
{
"input": "aaaabbaaaa",
"output": "9"
},
{
"input": "aabcda",
"output": "6"
},
{
"input": "abbca",
"output": "5"
},
{
"input": "aaaaaabbaaa",
"output": "11"
},
{
"input": "sssssspssssss",
"output": "12"
},
{
"input": "sdnmsdcs",
"output": "8"
},
{
"input": "aaabbbccbbbaaa",
"output": "13"
},
{
"input": "cbdbdc",
"output": "6"
},
{
"input": "abb",
"output": "3"
},
{
"input": "abcdefaaaa",
"output": "10"
},
{
"input": "abbbaaa",
"output": "7"
},
{
"input": "v",
"output": "0"
},
{
"input": "abccbba",
"output": "7"
},
{
"input": "axyza",
"output": "5"
},
{
"input": "abcdefgaaaa",
"output": "11"
},
{
"input": "aaabcdaaa",
"output": "9"
},
{
"input": "aaaacaaaa",
"output": "8"
},
{
"input": "aaaaaaaaaaaaaaaaaaaabaaaaaaaaaaaaaaaaaaaaa",
"output": "42"
},
{
"input": "abbbaa",
"output": "6"
},
{
"input": "abcdee",
"output": "6"
},
{
"input": "oom",
"output": "3"
},
{
"input": "aabcaa",
"output": "6"
},
{
"input": "abba",
"output": "3"
},
{
"input": "aaca",
"output": "4"
},
{
"input": "aacbca",
"output": "6"
},
{
"input": "ababa",
"output": "4"
},
{
"input": "abcda",
"output": "5"
},
{
"input": "cccaaccc",
"output": "7"
},
{
"input": "aaabcda",
"output": "7"
},
{
"input": "aa",
"output": "0"
},
{
"input": "aabaaaa",
"output": "7"
},
{
"input": "abbaaaa",
"output": "7"
},
{
"input": "aaabcbaaa",
"output": "8"
},
{
"input": "aabba",
"output": "5"
},
{
"input": "xyxx",
"output": "4"
},
{
"input": "aaaaaaaaaaaabc",
"output": "14"
},
{
"input": "bbaaaabb",
"output": "7"
},
{
"input": "aaabaa",
"output": "6"
},
{
"input": "sssssabsssss",
"output": "12"
},
{
"input": "bbbaaaabbb",
"output": "9"
},
{
"input": "abbbbaaaa",
"output": "9"
},
{
"input": "wwufuww",
"output": "6"
},
{
"input": "oowoo",
"output": "4"
},
{
"input": "cccaccc",
"output": "6"
},
{
"input": "aaa",
"output": "0"
},
{
"input": "bbbcc",
"output": "5"
},
{
"input": "abcdef",
"output": "6"
},
{
"input": "abbba",
"output": "4"
},
{
"input": "aab",
"output": "3"
},
{
"input": "aaba",
"output": "4"
},
{
"input": "azbyaaa",
"output": "7"
},
{
"input": "oooooiooooo",
"output": "10"
},
{
"input": "aabbbbbaaaaaa",
"output": "13"
}
] | 1,645,086,285
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 133
| 46
| 0
|
i = input()
if len(set(i)) == 1:
print(0)
else:
print(len(i) - (i == i[::-1]))
|
Title: Antipalindrome
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
A string is a palindrome if it reads the same from the left to the right and from the right to the left. For example, the strings "kek", "abacaba", "r" and "papicipap" are palindromes, while the strings "abb" and "iq" are not.
A substring $s[l \ldots r]$ ($1<=\leq<=l<=\leq<=r<=\leq<=|s|$) of a string $s<==<=s_{1}s_{2} \ldots s_{|s|}$ is the string $s_{l}s_{l<=+<=1} \ldots s_{r}$.
Anna does not like palindromes, so she makes her friends call her Ann. She also changes all the words she reads in a similar way. Namely, each word $s$ is changed into its longest substring that is not a palindrome. If all the substrings of $s$ are palindromes, she skips the word at all.
Some time ago Ann read the word $s$. What is the word she changed it into?
Input Specification:
The first line contains a non-empty string $s$ with length at most $50$ characters, containing lowercase English letters only.
Output Specification:
If there is such a substring in $s$ that is not a palindrome, print the maximum length of such a substring. Otherwise print $0$.
Note that there can be multiple longest substrings that are not palindromes, but their length is unique.
Demo Input:
['mew\n', 'wuffuw\n', 'qqqqqqqq\n']
Demo Output:
['3\n', '5\n', '0\n']
Note:
"mew" is not a palindrome, so the longest substring of it that is not a palindrome, is the string "mew" itself. Thus, the answer for the first example is $3$.
The string "uffuw" is one of the longest non-palindrome substrings (of length $5$) of the string "wuffuw", so the answer for the second example is $5$.
All substrings of the string "qqqqqqqq" consist of equal characters so they are palindromes. This way, there are no non-palindrome substrings. Thus, the answer for the third example is $0$.
|
```python
i = input()
if len(set(i)) == 1:
print(0)
else:
print(len(i) - (i == i[::-1]))
```
| 3
|
|
740
|
B
|
Alyona and flowers
|
PROGRAMMING
| 1,200
|
[
"constructive algorithms"
] | null | null |
Little Alyona is celebrating Happy Birthday! Her mother has an array of *n* flowers. Each flower has some mood, the mood of *i*-th flower is *a**i*. The mood can be positive, zero or negative.
Let's define a subarray as a segment of consecutive flowers. The mother suggested some set of subarrays. Alyona wants to choose several of the subarrays suggested by her mother. After that, each of the flowers will add to the girl's happiness its mood multiplied by the number of chosen subarrays the flower is in.
For example, consider the case when the mother has 5 flowers, and their moods are equal to 1,<=<=-<=2,<=1,<=3,<=<=-<=4. Suppose the mother suggested subarrays (1,<=<=-<=2), (3,<=<=-<=4), (1,<=3), (1,<=<=-<=2,<=1,<=3). Then if the girl chooses the third and the fourth subarrays then:
- the first flower adds 1Β·1<==<=1 to the girl's happiness, because he is in one of chosen subarrays, - the second flower adds (<=-<=2)Β·1<==<=<=-<=2, because he is in one of chosen subarrays, - the third flower adds 1Β·2<==<=2, because he is in two of chosen subarrays, - the fourth flower adds 3Β·2<==<=6, because he is in two of chosen subarrays, - the fifth flower adds (<=-<=4)Β·0<==<=0, because he is in no chosen subarrays.
Thus, in total 1<=+<=(<=-<=2)<=+<=2<=+<=6<=+<=0<==<=7 is added to the girl's happiness. Alyona wants to choose such subarrays from those suggested by the mother that the value added to her happiness would be as large as possible. Help her do this!
Alyona can choose any number of the subarrays, even 0 or all suggested by her mother.
|
The first line contains two integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=100)Β β the number of flowers and the number of subarrays suggested by the mother.
The second line contains the flowers moodsΒ β *n* integers *a*1,<=*a*2,<=...,<=*a**n* (<=-<=100<=β€<=*a**i*<=β€<=100).
The next *m* lines contain the description of the subarrays suggested by the mother. The *i*-th of these lines contain two integers *l**i* and *r**i* (1<=β€<=*l**i*<=β€<=*r**i*<=β€<=*n*) denoting the subarray *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*].
Each subarray can encounter more than once.
|
Print single integerΒ β the maximum possible value added to the Alyona's happiness.
|
[
"5 4\n1 -2 1 3 -4\n1 2\n4 5\n3 4\n1 4\n",
"4 3\n1 2 3 4\n1 3\n2 4\n1 1\n",
"2 2\n-1 -2\n1 1\n1 2\n"
] |
[
"7\n",
"16\n",
"0\n"
] |
The first example is the situation described in the statements.
In the second example Alyona should choose all subarrays.
The third example has answer 0 because Alyona can choose none of the subarrays.
| 1,000
|
[
{
"input": "5 4\n1 -2 1 3 -4\n1 2\n4 5\n3 4\n1 4",
"output": "7"
},
{
"input": "4 3\n1 2 3 4\n1 3\n2 4\n1 1",
"output": "16"
},
{
"input": "2 2\n-1 -2\n1 1\n1 2",
"output": "0"
},
{
"input": "5 6\n1 1 1 -1 0\n2 4\n1 3\n4 5\n1 5\n1 4\n4 5",
"output": "8"
},
{
"input": "8 3\n5 -4 -2 5 3 -4 -2 6\n3 8\n4 6\n2 3",
"output": "10"
},
{
"input": "10 10\n0 0 0 0 0 0 0 0 0 0\n5 9\n1 9\n5 7\n3 8\n1 6\n1 9\n1 6\n6 9\n1 10\n3 8",
"output": "0"
},
{
"input": "3 6\n0 0 0\n1 1\n1 1\n1 3\n3 3\n2 3\n1 2",
"output": "0"
},
{
"input": "3 3\n1 -1 3\n1 2\n2 3\n1 3",
"output": "5"
},
{
"input": "6 8\n0 6 -5 8 -3 -2\n6 6\n2 3\n5 6\n4 6\n3 4\n2 5\n3 3\n5 6",
"output": "13"
},
{
"input": "10 4\n6 5 5 -1 0 5 0 -3 5 -4\n3 6\n4 9\n1 6\n1 4",
"output": "50"
},
{
"input": "9 1\n-1 -1 -1 -1 2 -1 2 0 0\n2 5",
"output": "0"
},
{
"input": "3 8\n3 4 4\n1 2\n1 3\n2 3\n1 2\n2 2\n1 1\n2 3\n1 3",
"output": "59"
},
{
"input": "3 8\n6 7 -1\n1 1\n1 3\n2 2\n1 3\n1 3\n1 1\n2 3\n2 3",
"output": "67"
},
{
"input": "53 7\n-43 57 92 97 85 -29 28 -8 -37 -47 51 -53 -95 -50 -39 -87 43 36 60 -95 93 8 67 -22 -78 -46 99 93 27 -72 -84 77 96 -47 1 -12 21 -98 -34 -88 57 -43 5 -15 20 -66 61 -29 30 -85 52 53 82\n15 26\n34 43\n37 41\n22 34\n19 43\n2 15\n13 35",
"output": "170"
},
{
"input": "20 42\n61 86 5 -87 -33 51 -79 17 -3 65 -42 74 -94 40 -35 22 58 81 -75 5\n3 6\n12 13\n3 16\n3 16\n5 7\n5 16\n2 15\n6 18\n4 18\n10 17\n14 16\n4 15\n4 11\n13 20\n5 6\n5 15\n16 17\n3 14\n9 10\n5 19\n5 14\n2 4\n17 20\n10 11\n5 18\n10 11\n1 14\n1 6\n1 10\n8 16\n11 14\n12 20\n11 13\n4 5\n2 13\n1 5\n11 15\n1 18\n3 8\n8 20\n1 4\n10 13",
"output": "1502"
},
{
"input": "64 19\n-47 13 19 51 -25 72 38 32 54 7 -49 -50 -59 73 45 -87 -15 -72 -32 -10 -7 47 -34 35 48 -73 79 25 -80 -34 4 77 60 30 61 -25 23 17 -73 -73 69 29 -50 -55 53 15 -33 7 -46 -5 85 -86 77 -51 87 -69 -64 -24 -64 29 -20 -58 11 -26\n6 53\n13 28\n15 47\n20 52\n12 22\n6 49\n31 54\n2 39\n32 49\n27 64\n22 63\n33 48\n49 58\n39 47\n6 29\n21 44\n24 59\n20 24\n39 54",
"output": "804"
},
{
"input": "1 10\n-46\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1",
"output": "0"
},
{
"input": "10 7\n44 18 9 -22 -23 7 -25 -2 15 35\n6 8\n6 7\n3 3\n2 6\n9 10\n2 2\n1 5",
"output": "103"
},
{
"input": "4 3\n10 -2 68 35\n4 4\n1 1\n1 3",
"output": "121"
},
{
"input": "3 6\n27 -31 -81\n2 3\n2 3\n1 1\n1 2\n1 2\n2 2",
"output": "27"
},
{
"input": "7 3\n-24 -12 16 -43 -30 31 16\n3 6\n3 4\n1 7",
"output": "0"
},
{
"input": "10 7\n-33 -24 -86 -20 5 -91 38 -12 -90 -67\n7 8\n7 10\n4 7\n1 3\n6 10\n6 6\n3 5",
"output": "26"
},
{
"input": "4 4\n95 35 96 -27\n3 4\n3 3\n4 4\n3 3",
"output": "261"
},
{
"input": "7 7\n-33 26 -25 44 -20 -50 33\n4 6\n4 4\n3 7\n5 7\n1 4\n2 5\n4 6",
"output": "81"
},
{
"input": "5 3\n-35 -39 93 59 -4\n2 2\n2 3\n2 5",
"output": "163"
},
{
"input": "3 7\n0 0 0\n1 2\n1 2\n2 3\n3 3\n1 3\n1 2\n2 3",
"output": "0"
},
{
"input": "8 2\n17 32 30 -6 -39 -15 33 74\n6 6\n8 8",
"output": "74"
},
{
"input": "8 1\n-20 -15 21 -21 1 -12 -7 9\n4 7",
"output": "0"
},
{
"input": "7 9\n-23 -4 -44 -47 -35 47 25\n1 6\n3 5\n4 7\n6 7\n2 4\n2 3\n2 7\n1 2\n5 5",
"output": "72"
},
{
"input": "8 8\n0 6 -25 -15 29 -24 31 23\n2 8\n5 5\n3 3\n2 8\n6 6\n3 6\n3 4\n2 4",
"output": "79"
},
{
"input": "4 3\n-39 -63 9 -16\n1 4\n1 3\n2 4",
"output": "0"
},
{
"input": "9 1\n-3 -13 -13 -19 -4 -11 8 -11 -3\n9 9",
"output": "0"
},
{
"input": "9 6\n25 18 -62 0 33 62 -23 4 -15\n7 9\n2 3\n1 4\n2 6\n1 6\n2 3",
"output": "127"
},
{
"input": "4 5\n-12 39 8 -12\n1 4\n3 4\n1 3\n1 3\n2 3",
"output": "140"
},
{
"input": "3 9\n-9 7 3\n1 2\n1 1\n1 3\n1 2\n2 3\n1 3\n2 2\n1 2\n3 3",
"output": "22"
},
{
"input": "10 7\n0 4 3 3 -2 -2 -4 -2 -3 -2\n5 6\n1 10\n2 10\n7 10\n1 1\n6 7\n3 4",
"output": "6"
},
{
"input": "86 30\n16 -12 11 16 8 14 7 -29 18 30 -32 -10 20 29 -14 -21 23 -19 -15 17 -2 25 -22 2 26 15 -7 -12 -4 -28 21 -4 -2 22 28 -32 9 -20 23 38 -21 21 37 -13 -30 25 31 6 18 29 29 29 27 38 -15 -32 32 -7 -8 -33 -11 24 23 -19 -36 -36 -18 9 -1 32 -34 -26 1 -1 -16 -14 17 -17 15 -24 38 5 -27 -12 8 -38\n60 66\n29 48\n32 51\n38 77\n17 79\n23 74\n39 50\n14 29\n26 76\n9 76\n2 67\n23 48\n17 68\n33 75\n59 78\n46 78\n9 69\n16 83\n18 21\n17 34\n24 61\n15 79\n4 31\n62 63\n46 76\n79 82\n25 39\n5 81\n19 77\n26 71",
"output": "3076"
},
{
"input": "33 17\n11 6 -19 14 23 -23 21 15 29 19 13 -18 -19 20 16 -10 26 -22 3 17 13 -10 19 22 -5 21 12 6 28 -13 -27 25 6\n4 17\n12 16\n9 17\n25 30\n31 32\n4 28\n11 24\n16 19\n3 27\n7 17\n1 16\n15 28\n30 33\n9 31\n14 30\n13 23\n27 27",
"output": "1366"
},
{
"input": "16 44\n32 23 -27 -2 -10 -42 32 -14 -13 4 9 -2 19 35 16 22\n6 12\n8 11\n13 15\n12 12\n3 10\n9 13\n7 15\n2 11\n1 13\n5 6\n9 14\n3 16\n10 13\n3 15\n6 10\n14 16\n4 5\n7 10\n5 14\n1 16\n2 5\n1 6\n9 10\n4 7\n4 12\n2 5\n7 10\n7 9\n2 8\n9 10\n4 10\n7 12\n10 11\n6 6\n15 15\n8 12\n9 10\n3 3\n4 15\n10 12\n7 16\n4 14\n14 16\n5 6",
"output": "777"
},
{
"input": "63 24\n-23 -46 0 33 24 13 39 -6 -4 49 19 -18 -11 -38 0 -3 -33 -17 -4 -44 -22 -12 -16 42 16 -10 7 37 -6 16 -41 -18 -20 51 -49 28 -14 -22 -37 -7 -50 31 -41 -47 18 -8 -39 -29 35 -32 14 -29 44 -29 -19 -25 -47 -8 16 11 20 12 38\n21 61\n35 61\n29 61\n21 34\n12 48\n32 33\n9 27\n4 42\n4 60\n37 61\n19 44\n46 60\n51 53\n31 34\n23 32\n5 29\n43 59\n7 31\n29 48\n15 50\n19 51\n7 28\n17 41\n1 62",
"output": "82"
},
{
"input": "6 51\n45 -33 -17 -48 2 2\n2 5\n1 1\n1 3\n5 5\n4 6\n1 2\n2 3\n3 4\n1 6\n4 6\n3 5\n1 5\n2 2\n2 6\n4 6\n1 5\n1 5\n1 5\n1 6\n6 6\n3 5\n6 6\n1 6\n3 4\n3 3\n2 4\n3 3\n1 4\n2 4\n5 6\n4 5\n2 4\n1 5\n1 2\n4 5\n1 5\n5 6\n2 2\n3 4\n1 3\n1 2\n2 5\n3 6\n4 6\n3 4\n2 4\n1 4\n1 1\n4 6\n3 5\n1 4",
"output": "140"
},
{
"input": "3 5\n2 -1 3\n2 3\n2 3\n2 3\n2 3\n1 2",
"output": "9"
},
{
"input": "4 30\n1 1 1 1\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4\n1 4",
"output": "120"
}
] | 1,614,683,949
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 53
| 108
| 0
|
n,m=map(int,input().split())
arr=list(map(int,input().split()))
pre=[0]*n
pre[0]=arr[0]
re=0
for i in range(1,n):
pre[i]=pre[i-1]+arr[i]
for i in range(m):
x,y=map(int,input().split())
curr=0
if(x==1):
curr=pre[y-1]
else:
curr=pre[y-1]-pre[x-2]
if(curr>0):
re+=curr
print(re)
|
Title: Alyona and flowers
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little Alyona is celebrating Happy Birthday! Her mother has an array of *n* flowers. Each flower has some mood, the mood of *i*-th flower is *a**i*. The mood can be positive, zero or negative.
Let's define a subarray as a segment of consecutive flowers. The mother suggested some set of subarrays. Alyona wants to choose several of the subarrays suggested by her mother. After that, each of the flowers will add to the girl's happiness its mood multiplied by the number of chosen subarrays the flower is in.
For example, consider the case when the mother has 5 flowers, and their moods are equal to 1,<=<=-<=2,<=1,<=3,<=<=-<=4. Suppose the mother suggested subarrays (1,<=<=-<=2), (3,<=<=-<=4), (1,<=3), (1,<=<=-<=2,<=1,<=3). Then if the girl chooses the third and the fourth subarrays then:
- the first flower adds 1Β·1<==<=1 to the girl's happiness, because he is in one of chosen subarrays, - the second flower adds (<=-<=2)Β·1<==<=<=-<=2, because he is in one of chosen subarrays, - the third flower adds 1Β·2<==<=2, because he is in two of chosen subarrays, - the fourth flower adds 3Β·2<==<=6, because he is in two of chosen subarrays, - the fifth flower adds (<=-<=4)Β·0<==<=0, because he is in no chosen subarrays.
Thus, in total 1<=+<=(<=-<=2)<=+<=2<=+<=6<=+<=0<==<=7 is added to the girl's happiness. Alyona wants to choose such subarrays from those suggested by the mother that the value added to her happiness would be as large as possible. Help her do this!
Alyona can choose any number of the subarrays, even 0 or all suggested by her mother.
Input Specification:
The first line contains two integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=100)Β β the number of flowers and the number of subarrays suggested by the mother.
The second line contains the flowers moodsΒ β *n* integers *a*1,<=*a*2,<=...,<=*a**n* (<=-<=100<=β€<=*a**i*<=β€<=100).
The next *m* lines contain the description of the subarrays suggested by the mother. The *i*-th of these lines contain two integers *l**i* and *r**i* (1<=β€<=*l**i*<=β€<=*r**i*<=β€<=*n*) denoting the subarray *a*[*l**i*],<=*a*[*l**i*<=+<=1],<=...,<=*a*[*r**i*].
Each subarray can encounter more than once.
Output Specification:
Print single integerΒ β the maximum possible value added to the Alyona's happiness.
Demo Input:
['5 4\n1 -2 1 3 -4\n1 2\n4 5\n3 4\n1 4\n', '4 3\n1 2 3 4\n1 3\n2 4\n1 1\n', '2 2\n-1 -2\n1 1\n1 2\n']
Demo Output:
['7\n', '16\n', '0\n']
Note:
The first example is the situation described in the statements.
In the second example Alyona should choose all subarrays.
The third example has answer 0 because Alyona can choose none of the subarrays.
|
```python
n,m=map(int,input().split())
arr=list(map(int,input().split()))
pre=[0]*n
pre[0]=arr[0]
re=0
for i in range(1,n):
pre[i]=pre[i-1]+arr[i]
for i in range(m):
x,y=map(int,input().split())
curr=0
if(x==1):
curr=pre[y-1]
else:
curr=pre[y-1]-pre[x-2]
if(curr>0):
re+=curr
print(re)
```
| 3
|
|
749
|
A
|
Bachgold Problem
|
PROGRAMMING
| 800
|
[
"greedy",
"implementation",
"math",
"number theory"
] | null | null |
Bachgold problem is very easy to formulate. Given a positive integer *n* represent it as a sum of maximum possible number of prime numbers. One can prove that such representation exists for any integer greater than 1.
Recall that integer *k* is called prime if it is greater than 1 and has exactly two positive integer divisorsΒ β 1 and *k*.
|
The only line of the input contains a single integer *n* (2<=β€<=*n*<=β€<=100<=000).
|
The first line of the output contains a single integer *k*Β β maximum possible number of primes in representation.
The second line should contain *k* primes with their sum equal to *n*. You can print them in any order. If there are several optimal solution, print any of them.
|
[
"5\n",
"6\n"
] |
[
"2\n2 3\n",
"3\n2 2 2\n"
] |
none
| 500
|
[
{
"input": "5",
"output": "2\n2 3"
},
{
"input": "6",
"output": "3\n2 2 2"
},
{
"input": "2",
"output": "1\n2"
},
{
"input": "3",
"output": "1\n3"
},
{
"input": "99999",
"output": "49999\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "100000",
"output": "50000\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "7",
"output": "3\n2 2 3"
},
{
"input": "4",
"output": "2\n2 2"
},
{
"input": "8",
"output": "4\n2 2 2 2"
},
{
"input": "9",
"output": "4\n2 2 2 3"
},
{
"input": "99995",
"output": "49997\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99996",
"output": "49998\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "10",
"output": "5\n2 2 2 2 2"
},
{
"input": "11",
"output": "5\n2 2 2 2 3"
},
{
"input": "99997",
"output": "49998\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99998",
"output": "49999\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "12",
"output": "6\n2 2 2 2 2 2"
},
{
"input": "13",
"output": "6\n2 2 2 2 2 3"
},
{
"input": "99993",
"output": "49996\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99994",
"output": "49997\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "14",
"output": "7\n2 2 2 2 2 2 2"
},
{
"input": "15",
"output": "7\n2 2 2 2 2 2 3"
},
{
"input": "53",
"output": "26\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "57",
"output": "28\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "61",
"output": "30\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "774",
"output": "387\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "202",
"output": "101\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2"
},
{
"input": "530",
"output": "265\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "7166",
"output": "3583\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "9294",
"output": "4647\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "2422",
"output": "1211\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "15326",
"output": "7663\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "11454",
"output": "5727\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "14878",
"output": "7439\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "90672",
"output": "45336\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99544",
"output": "49772\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "90472",
"output": "45236\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "23",
"output": "11\n2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "93",
"output": "46\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "19",
"output": "9\n2 2 2 2 2 2 2 2 3"
},
{
"input": "11110",
"output": "5555\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
}
] | 1,674,535,769
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 41
| 62
| 4,096,000
|
n=int(input())
out=[]
if n&1:
n-=3
out.append(3)
for _ in range(n//2):
out.append(2)
print(len(out))
print(' '.join(map(str,out)))
|
Title: Bachgold Problem
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Bachgold problem is very easy to formulate. Given a positive integer *n* represent it as a sum of maximum possible number of prime numbers. One can prove that such representation exists for any integer greater than 1.
Recall that integer *k* is called prime if it is greater than 1 and has exactly two positive integer divisorsΒ β 1 and *k*.
Input Specification:
The only line of the input contains a single integer *n* (2<=β€<=*n*<=β€<=100<=000).
Output Specification:
The first line of the output contains a single integer *k*Β β maximum possible number of primes in representation.
The second line should contain *k* primes with their sum equal to *n*. You can print them in any order. If there are several optimal solution, print any of them.
Demo Input:
['5\n', '6\n']
Demo Output:
['2\n2 3\n', '3\n2 2 2\n']
Note:
none
|
```python
n=int(input())
out=[]
if n&1:
n-=3
out.append(3)
for _ in range(n//2):
out.append(2)
print(len(out))
print(' '.join(map(str,out)))
```
| 3
|
|
272
|
A
|
Dima and Friends
|
PROGRAMMING
| 1,000
|
[
"implementation",
"math"
] | null | null |
Dima and his friends have been playing hide and seek at Dima's place all night. As a result, Dima's place got messy. In the morning they decided that they need to clean the place.
To decide who exactly would clean the apartment, the friends want to play a counting-out game. First, all the guys stand in a circle, and then each of them shows some number of fingers on one hand (one to five), and then the boys count in a circle, starting from Dima, the number of people, respective to the total number of fingers shown. The person on who the countdown stops will clean the apartment.
For example, if Dima and one of his friends played hide and seek, and 7 fingers were shown during the counting-out, then Dima would clean the place. If there were 2 or say, 8 fingers shown, then his friend would clean the place.
Dima knows how many fingers each of his friends will show during the counting-out. Now he is interested in the number of ways to show some number of fingers on one hand (one to five), so that he did not have to clean the place. Help Dima.
|
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of Dima's friends. Dima himself isn't considered to be his own friend. The second line contains *n* positive integers, not exceeding 5, representing, how many fingers the Dima's friends will show.
The numbers in the lines are separated by a single space.
|
In a single line print the answer to the problem.
|
[
"1\n1\n",
"1\n2\n",
"2\n3 5\n"
] |
[
"3\n",
"2\n",
"3\n"
] |
In the first sample Dima can show 1, 3 or 5 fingers. If Dima shows 3 fingers, then the counting-out will go like that: Dima, his friend, Dima, his friend.
In the second sample Dima can show 2 or 4 fingers.
| 500
|
[
{
"input": "1\n1",
"output": "3"
},
{
"input": "1\n2",
"output": "2"
},
{
"input": "2\n3 5",
"output": "3"
},
{
"input": "2\n3 5",
"output": "3"
},
{
"input": "1\n5",
"output": "3"
},
{
"input": "5\n4 4 3 5 1",
"output": "4"
},
{
"input": "6\n2 3 2 2 1 3",
"output": "4"
},
{
"input": "8\n2 2 5 3 4 3 3 2",
"output": "4"
},
{
"input": "7\n4 1 3 2 2 4 5",
"output": "4"
},
{
"input": "3\n3 5 1",
"output": "4"
},
{
"input": "95\n4 2 3 4 4 5 2 2 4 4 3 5 3 3 3 5 4 2 5 4 2 1 1 3 4 2 1 3 5 4 2 1 1 5 1 1 2 2 4 4 5 4 5 5 2 1 2 2 2 4 5 5 2 4 3 4 4 3 5 2 4 1 5 4 5 1 3 2 4 2 2 1 5 3 1 5 3 4 3 3 2 1 2 2 1 3 1 5 2 3 1 1 2 5 2",
"output": "5"
},
{
"input": "31\n3 2 3 3 3 3 4 4 1 5 5 4 2 4 3 2 2 1 4 4 1 2 3 1 1 5 5 3 4 4 1",
"output": "4"
},
{
"input": "42\n3 1 2 2 5 1 2 2 4 5 4 5 2 5 4 5 4 4 1 4 3 3 4 4 4 4 3 2 1 3 4 5 5 2 1 2 1 5 5 2 4 4",
"output": "5"
},
{
"input": "25\n4 5 5 5 3 1 1 4 4 4 3 5 4 4 1 4 4 1 2 4 2 5 4 5 3",
"output": "5"
},
{
"input": "73\n3 4 3 4 5 1 3 4 2 1 4 2 2 3 5 3 1 4 2 3 2 1 4 5 3 5 2 2 4 3 2 2 5 3 2 3 5 1 3 1 1 4 5 2 4 2 5 1 4 3 1 3 1 4 2 3 3 3 3 5 5 2 5 2 5 4 3 1 1 5 5 2 3",
"output": "4"
},
{
"input": "46\n1 4 4 5 4 5 2 3 5 5 3 2 5 4 1 3 2 2 1 4 3 1 5 5 2 2 2 2 4 4 1 1 4 3 4 3 1 4 2 2 4 2 3 2 5 2",
"output": "4"
},
{
"input": "23\n5 2 1 1 4 2 5 5 3 5 4 5 5 1 1 5 2 4 5 3 4 4 3",
"output": "5"
},
{
"input": "6\n4 2 3 1 3 5",
"output": "4"
},
{
"input": "15\n5 5 5 3 5 4 1 3 3 4 3 4 1 4 4",
"output": "5"
},
{
"input": "93\n1 3 1 4 3 3 5 3 1 4 5 4 3 2 2 4 3 1 4 1 2 3 3 3 2 5 1 3 1 4 5 1 1 1 4 2 1 2 3 1 1 1 5 1 5 5 1 2 5 4 3 2 2 4 4 2 5 4 5 5 3 1 3 1 2 1 3 1 1 2 3 4 4 5 5 3 2 1 3 3 5 1 3 5 4 4 1 3 3 4 2 3 2",
"output": "5"
},
{
"input": "96\n1 5 1 3 2 1 2 2 2 2 3 4 1 1 5 4 4 1 2 3 5 1 4 4 4 1 3 3 1 4 5 4 1 3 5 3 4 4 3 2 1 1 4 4 5 1 1 2 5 1 2 3 1 4 1 2 2 2 3 2 3 3 2 5 2 2 3 3 3 3 2 1 2 4 5 5 1 5 3 2 1 4 3 5 5 5 3 3 5 3 4 3 4 2 1 3",
"output": "5"
},
{
"input": "49\n1 4 4 3 5 2 2 1 5 1 2 1 2 5 1 4 1 4 5 2 4 5 3 5 2 4 2 1 3 4 2 1 4 2 1 1 3 3 2 3 5 4 3 4 2 4 1 4 1",
"output": "5"
},
{
"input": "73\n4 1 3 3 3 1 5 2 1 4 1 1 3 5 1 1 4 5 2 1 5 4 1 5 3 1 5 2 4 5 1 4 3 3 5 2 2 3 3 2 5 1 4 5 2 3 1 4 4 3 5 2 3 5 1 4 3 5 1 2 4 1 3 3 5 4 2 4 2 4 1 2 5",
"output": "5"
},
{
"input": "41\n5 3 5 4 2 5 4 3 1 1 1 5 4 3 4 3 5 4 2 5 4 1 1 3 2 4 5 3 5 1 5 5 1 1 1 4 4 1 2 4 3",
"output": "5"
},
{
"input": "100\n3 3 1 4 2 4 4 3 1 5 1 1 4 4 3 4 4 3 5 4 5 2 4 3 4 1 2 4 5 4 2 1 5 4 1 1 4 3 2 4 1 2 1 4 4 5 5 4 4 5 3 2 5 1 4 2 2 1 1 2 5 2 5 1 5 3 1 4 3 2 4 3 2 2 4 5 5 1 2 3 1 4 1 2 2 2 5 5 2 3 2 4 3 1 1 2 1 2 1 2",
"output": "5"
},
{
"input": "100\n2 1 1 3 5 4 4 2 3 4 3 4 5 4 5 4 2 4 5 3 4 5 4 1 1 4 4 1 1 2 5 4 2 4 5 3 2 5 4 3 4 5 1 3 4 2 5 4 5 4 5 2 4 1 2 5 3 1 4 4 5 3 4 3 1 2 5 4 2 5 4 1 5 3 5 4 1 2 5 3 1 1 1 1 5 3 4 3 5 1 1 5 5 1 1 2 2 1 5 1",
"output": "5"
},
{
"input": "100\n4 4 3 3 2 5 4 4 2 1 4 4 4 5 4 1 2 1 5 2 4 3 4 1 4 1 2 5 1 4 5 4 2 1 2 5 3 4 5 5 2 1 2 2 2 2 2 3 2 5 1 2 2 3 2 5 5 1 3 4 5 2 1 3 4 2 2 4 4 3 3 3 2 3 2 1 5 5 5 2 1 4 2 3 5 1 4 4 2 3 2 5 5 4 3 5 1 3 5 5",
"output": "5"
},
{
"input": "100\n4 4 2 5 4 2 2 3 4 4 3 2 3 3 1 3 4 3 3 4 1 3 1 4 5 3 4 3 1 1 1 3 3 2 3 4 3 4 2 2 1 5 1 4 5 1 1 1 3 3 1 1 3 2 5 4 2 5 2 4 5 4 4 1 1 2 1 1 4 5 1 1 5 3 3 2 5 5 5 1 4 1 4 1 1 3 2 3 4 4 2 5 5 2 5 1 1 3 5 3",
"output": "5"
},
{
"input": "100\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 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 4",
"output": "4"
},
{
"input": "100\n5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5",
"output": "5"
}
] | 1,608,268,878
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 30
| 312
| 0
|
n = int(input())
arr_n = list(map(int, input().strip().split()))
fr = n + 1
rem = sum(arr_n) % fr
count = 0
for x in range(1,6):
if (rem + x) % fr != 1:
count += 1
print(count)
|
Title: Dima and Friends
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Dima and his friends have been playing hide and seek at Dima's place all night. As a result, Dima's place got messy. In the morning they decided that they need to clean the place.
To decide who exactly would clean the apartment, the friends want to play a counting-out game. First, all the guys stand in a circle, and then each of them shows some number of fingers on one hand (one to five), and then the boys count in a circle, starting from Dima, the number of people, respective to the total number of fingers shown. The person on who the countdown stops will clean the apartment.
For example, if Dima and one of his friends played hide and seek, and 7 fingers were shown during the counting-out, then Dima would clean the place. If there were 2 or say, 8 fingers shown, then his friend would clean the place.
Dima knows how many fingers each of his friends will show during the counting-out. Now he is interested in the number of ways to show some number of fingers on one hand (one to five), so that he did not have to clean the place. Help Dima.
Input Specification:
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of Dima's friends. Dima himself isn't considered to be his own friend. The second line contains *n* positive integers, not exceeding 5, representing, how many fingers the Dima's friends will show.
The numbers in the lines are separated by a single space.
Output Specification:
In a single line print the answer to the problem.
Demo Input:
['1\n1\n', '1\n2\n', '2\n3 5\n']
Demo Output:
['3\n', '2\n', '3\n']
Note:
In the first sample Dima can show 1, 3 or 5 fingers. If Dima shows 3 fingers, then the counting-out will go like that: Dima, his friend, Dima, his friend.
In the second sample Dima can show 2 or 4 fingers.
|
```python
n = int(input())
arr_n = list(map(int, input().strip().split()))
fr = n + 1
rem = sum(arr_n) % fr
count = 0
for x in range(1,6):
if (rem + x) % fr != 1:
count += 1
print(count)
```
| 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" β 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<=β€<=*n*<=β€<=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<=β€<=*x**i*,<=*y**i*,<=*z**i*<=β€<=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"
}
] | 1,579,645,577
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 81
| 372
| 0
|
n = int(input())
a = []
b = []
c = []
for i in range(n):
s = list(map(int,input().split()))
a.append(s[0])
b.append(s[1])
c.append(s[2])
if sum(a)==0 and sum(b)==0 and sum(c)==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" β 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<=β€<=*n*<=β€<=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<=β€<=*x**i*,<=*y**i*,<=*z**i*<=β€<=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())
a = []
b = []
c = []
for i in range(n):
s = list(map(int,input().split()))
a.append(s[0])
b.append(s[1])
c.append(s[2])
if sum(a)==0 and sum(b)==0 and sum(c)==0:
print('YES')
else:
print('NO')
```
| 3.907
|
699
|
A
|
Launch of Collider
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
There will be a launch of a new, powerful and unusual collider very soon, which located along a straight line. *n* particles will be launched inside it. All of them are located in a straight line and there can not be two or more particles located in the same point. The coordinates of the particles coincide with the distance in meters from the center of the collider, *x**i* is the coordinate of the *i*-th particle and its position in the collider at the same time. All coordinates of particle positions are even integers.
You know the direction of each particle movementΒ β it will move to the right or to the left after the collider's launch start. All particles begin to move simultaneously at the time of the collider's launch start. Each particle will move straight to the left or straight to the right with the constant speed of 1 meter per microsecond. The collider is big enough so particles can not leave it in the foreseeable time.
Write the program which finds the moment of the first collision of any two particles of the collider. In other words, find the number of microseconds before the first moment when any two particles are at the same point.
|
The first line contains the positive integer *n* (1<=β€<=*n*<=β€<=200<=000)Β β the number of particles.
The second line contains *n* symbols "L" and "R". If the *i*-th symbol equals "L", then the *i*-th particle will move to the left, otherwise the *i*-th symbol equals "R" and the *i*-th particle will move to the right.
The third line contains the sequence of pairwise distinct even integers *x*1,<=*x*2,<=...,<=*x**n* (0<=β€<=*x**i*<=β€<=109)Β β the coordinates of particles in the order from the left to the right. It is guaranteed that the coordinates of particles are given in the increasing order.
|
In the first line print the only integerΒ β the first moment (in microseconds) when two particles are at the same point and there will be an explosion.
Print the only integer -1, if the collision of particles doesn't happen.
|
[
"4\nRLRL\n2 4 6 10\n",
"3\nLLR\n40 50 60\n"
] |
[
"1\n",
"-1\n"
] |
In the first sample case the first explosion will happen in 1 microsecond because the particles number 1 and 2 will simultaneously be at the same point with the coordinate 3.
In the second sample case there will be no explosion because there are no particles which will simultaneously be at the same point.
| 500
|
[
{
"input": "4\nRLRL\n2 4 6 10",
"output": "1"
},
{
"input": "3\nLLR\n40 50 60",
"output": "-1"
},
{
"input": "4\nRLLR\n46 230 264 470",
"output": "92"
},
{
"input": "6\nLLRLLL\n446 492 650 844 930 970",
"output": "97"
},
{
"input": "8\nRRLLLLLL\n338 478 512 574 594 622 834 922",
"output": "17"
},
{
"input": "10\nLRLRLLRRLR\n82 268 430 598 604 658 670 788 838 1000",
"output": "3"
},
{
"input": "2\nRL\n0 1000000000",
"output": "500000000"
},
{
"input": "12\nLRLLRRRRLRLL\n254 1260 1476 1768 2924 4126 4150 4602 5578 7142 8134 9082",
"output": "108"
},
{
"input": "14\nRLLRRLRLLRLLLR\n698 2900 3476 3724 3772 3948 4320 4798 5680 6578 7754 8034 8300 8418",
"output": "88"
},
{
"input": "16\nRRLLLRLRLLLLRLLR\n222 306 968 1060 1636 1782 2314 2710 3728 4608 5088 6790 6910 7156 7418 7668",
"output": "123"
},
{
"input": "18\nRLRLLRRRLLLRLRRLRL\n1692 2028 2966 3008 3632 4890 5124 5838 6596 6598 6890 8294 8314 8752 8868 9396 9616 9808",
"output": "10"
},
{
"input": "20\nRLLLLLLLRRRRLRRLRRLR\n380 902 1400 1834 2180 2366 2562 2596 2702 2816 3222 3238 3742 5434 6480 7220 7410 8752 9708 9970",
"output": "252"
},
{
"input": "22\nLRRRRRRRRRRRLLRRRRRLRL\n1790 2150 2178 2456 2736 3282 3622 4114 4490 4772 5204 5240 5720 5840 5910 5912 6586 7920 8584 9404 9734 9830",
"output": "48"
},
{
"input": "24\nLLRLRRLLRLRRRRLLRRLRLRRL\n100 360 864 1078 1360 1384 1438 2320 2618 3074 3874 3916 3964 5178 5578 6278 6630 6992 8648 8738 8922 8930 9276 9720",
"output": "27"
},
{
"input": "26\nRLLLLLLLRLRRLRLRLRLRLLLRRR\n908 1826 2472 2474 2728 3654 3716 3718 3810 3928 4058 4418 4700 5024 5768 6006 6128 6386 6968 7040 7452 7774 7822 8726 9338 9402",
"output": "59"
},
{
"input": "28\nRRLRLRRRRRRLLLRRLRRLLLRRLLLR\n156 172 1120 1362 2512 3326 3718 4804 4990 5810 6242 6756 6812 6890 6974 7014 7088 7724 8136 8596 8770 8840 9244 9250 9270 9372 9400 9626",
"output": "10"
},
{
"input": "30\nRLLRLRLLRRRLRRRLLLLLLRRRLRRLRL\n128 610 1680 2436 2896 2994 3008 3358 3392 4020 4298 4582 4712 4728 5136 5900 6088 6232 6282 6858 6934 7186 7224 7256 7614 8802 8872 9170 9384 9794",
"output": "7"
},
{
"input": "10\nLLLLRRRRRR\n0 2 4 6 8 10 12 14 16 18",
"output": "-1"
},
{
"input": "5\nLLLLL\n0 10 20 30 40",
"output": "-1"
},
{
"input": "6\nRRRRRR\n40 50 60 70 80 100",
"output": "-1"
},
{
"input": "1\nR\n0",
"output": "-1"
},
{
"input": "2\nRL\n2 1000000000",
"output": "499999999"
},
{
"input": "2\nRL\n0 400000",
"output": "200000"
},
{
"input": "2\nRL\n0 200002",
"output": "100001"
},
{
"input": "2\nRL\n2 20000000",
"output": "9999999"
},
{
"input": "4\nLLRL\n2 4 10 100",
"output": "45"
},
{
"input": "4\nRLRL\n2 10 12 14",
"output": "1"
},
{
"input": "2\nRL\n0 100000000",
"output": "50000000"
},
{
"input": "2\nRL\n2 600002",
"output": "300000"
},
{
"input": "1\nL\n0",
"output": "-1"
},
{
"input": "2\nRL\n0 600000",
"output": "300000"
},
{
"input": "5\nRRRRR\n0 2 4 6 8",
"output": "-1"
},
{
"input": "2\nRL\n2 200000000",
"output": "99999999"
},
{
"input": "2\nRL\n0 267382766",
"output": "133691383"
},
{
"input": "3\nRRL\n4 8 999999998",
"output": "499999995"
},
{
"input": "2\nRL\n0 2",
"output": "1"
},
{
"input": "2\nRL\n2 400002",
"output": "200000"
},
{
"input": "2\nLL\n2 4",
"output": "-1"
},
{
"input": "2\nLL\n0 2",
"output": "-1"
},
{
"input": "2\nRL\n0 100000",
"output": "50000"
},
{
"input": "2\nRL\n2 200000020",
"output": "100000009"
},
{
"input": "2\nRL\n2000000 4000000",
"output": "1000000"
},
{
"input": "2\nRL\n0 199998",
"output": "99999"
},
{
"input": "3\nLRR\n40 50 60",
"output": "-1"
},
{
"input": "2\nRL\n200 400400",
"output": "200100"
},
{
"input": "2\nRL\n2 400004",
"output": "200001"
},
{
"input": "2\nRL\n0 200000000",
"output": "100000000"
}
] | 1,669,872,829
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 85
| 264
| 18,636,800
|
import sys
input = sys.stdin.readline
n = int(input())
s = input()
a = list(map(int, input().split()))
ans = 1e10
for i in range(n-1):
if s[i] == 'R' and s[i+1] == 'L':
ans = min(ans, (a[i+1] - a[i])//2)
if ans != 1e10:
print(ans)
else:
print(-1)
|
Title: Launch of Collider
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There will be a launch of a new, powerful and unusual collider very soon, which located along a straight line. *n* particles will be launched inside it. All of them are located in a straight line and there can not be two or more particles located in the same point. The coordinates of the particles coincide with the distance in meters from the center of the collider, *x**i* is the coordinate of the *i*-th particle and its position in the collider at the same time. All coordinates of particle positions are even integers.
You know the direction of each particle movementΒ β it will move to the right or to the left after the collider's launch start. All particles begin to move simultaneously at the time of the collider's launch start. Each particle will move straight to the left or straight to the right with the constant speed of 1 meter per microsecond. The collider is big enough so particles can not leave it in the foreseeable time.
Write the program which finds the moment of the first collision of any two particles of the collider. In other words, find the number of microseconds before the first moment when any two particles are at the same point.
Input Specification:
The first line contains the positive integer *n* (1<=β€<=*n*<=β€<=200<=000)Β β the number of particles.
The second line contains *n* symbols "L" and "R". If the *i*-th symbol equals "L", then the *i*-th particle will move to the left, otherwise the *i*-th symbol equals "R" and the *i*-th particle will move to the right.
The third line contains the sequence of pairwise distinct even integers *x*1,<=*x*2,<=...,<=*x**n* (0<=β€<=*x**i*<=β€<=109)Β β the coordinates of particles in the order from the left to the right. It is guaranteed that the coordinates of particles are given in the increasing order.
Output Specification:
In the first line print the only integerΒ β the first moment (in microseconds) when two particles are at the same point and there will be an explosion.
Print the only integer -1, if the collision of particles doesn't happen.
Demo Input:
['4\nRLRL\n2 4 6 10\n', '3\nLLR\n40 50 60\n']
Demo Output:
['1\n', '-1\n']
Note:
In the first sample case the first explosion will happen in 1 microsecond because the particles number 1 and 2 will simultaneously be at the same point with the coordinate 3.
In the second sample case there will be no explosion because there are no particles which will simultaneously be at the same point.
|
```python
import sys
input = sys.stdin.readline
n = int(input())
s = input()
a = list(map(int, input().split()))
ans = 1e10
for i in range(n-1):
if s[i] == 'R' and s[i+1] == 'L':
ans = min(ans, (a[i+1] - a[i])//2)
if ans != 1e10:
print(ans)
else:
print(-1)
```
| 3
|
|
61
|
A
|
Ultra-Fast Mathematician
|
PROGRAMMING
| 800
|
[
"implementation"
] |
A. Ultra-Fast Mathematician
|
2
|
256
|
Shapur was an extremely gifted student. He was great at everything including Combinatorics, Algebra, Number Theory, Geometry, Calculus, etc. He was not only smart but extraordinarily fast! He could manage to sum 1018 numbers in a single second.
One day in 230 AD Shapur was trying to find out if any one can possibly do calculations faster than him. As a result he made a very great contest and asked every one to come and take part.
In his contest he gave the contestants many different pairs of numbers. Each number is made from digits 0 or 1. The contestants should write a new number corresponding to the given pair of numbers. The rule is simple: The *i*-th digit of the answer is 1 if and only if the *i*-th digit of the two given numbers differ. In the other case the *i*-th digit of the answer is 0.
Shapur made many numbers and first tried his own speed. He saw that he can perform these operations on numbers of length β (length of a number is number of digits in it) in a glance! He always gives correct answers so he expects the contestants to give correct answers, too. He is a good fellow so he won't give anyone very big numbers and he always gives one person numbers of same length.
Now you are going to take part in Shapur's contest. See if you are faster and more accurate.
|
There are two lines in each input. Each of them contains a single number. It is guaranteed that the numbers are made from 0 and 1 only and that their length is same. The numbers may start with 0. The length of each number doesn't exceed 100.
|
Write one line β the corresponding answer. Do not omit the leading 0s.
|
[
"1010100\n0100101\n",
"000\n111\n",
"1110\n1010\n",
"01110\n01100\n"
] |
[
"1110001\n",
"111\n",
"0100\n",
"00010\n"
] |
none
| 500
|
[
{
"input": "1010100\n0100101",
"output": "1110001"
},
{
"input": "000\n111",
"output": "111"
},
{
"input": "1110\n1010",
"output": "0100"
},
{
"input": "01110\n01100",
"output": "00010"
},
{
"input": "011101\n000001",
"output": "011100"
},
{
"input": "10\n01",
"output": "11"
},
{
"input": "00111111\n11011101",
"output": "11100010"
},
{
"input": "011001100\n101001010",
"output": "110000110"
},
{
"input": "1100100001\n0110101100",
"output": "1010001101"
},
{
"input": "00011101010\n10010100101",
"output": "10001001111"
},
{
"input": "100000101101\n111010100011",
"output": "011010001110"
},
{
"input": "1000001111010\n1101100110001",
"output": "0101101001011"
},
{
"input": "01011111010111\n10001110111010",
"output": "11010001101101"
},
{
"input": "110010000111100\n001100101011010",
"output": "111110101100110"
},
{
"input": "0010010111110000\n0000000011010110",
"output": "0010010100100110"
},
{
"input": "00111110111110000\n01111100001100000",
"output": "01000010110010000"
},
{
"input": "101010101111010001\n001001111101111101",
"output": "100011010010101100"
},
{
"input": "0110010101111100000\n0011000101000000110",
"output": "0101010000111100110"
},
{
"input": "11110100011101010111\n00001000011011000000",
"output": "11111100000110010111"
},
{
"input": "101010101111101101001\n111010010010000011111",
"output": "010000111101101110110"
},
{
"input": "0000111111100011000010\n1110110110110000001010",
"output": "1110001001010011001000"
},
{
"input": "10010010101000110111000\n00101110100110111000111",
"output": "10111100001110001111111"
},
{
"input": "010010010010111100000111\n100100111111100011001110",
"output": "110110101101011111001001"
},
{
"input": "0101110100100111011010010\n0101100011010111001010001",
"output": "0000010111110000010000011"
},
{
"input": "10010010100011110111111011\n10000110101100000001000100",
"output": "00010100001111110110111111"
},
{
"input": "000001111000000100001000000\n011100111101111001110110001",
"output": "011101000101111101111110001"
},
{
"input": "0011110010001001011001011100\n0000101101000011101011001010",
"output": "0011011111001010110010010110"
},
{
"input": "11111000000000010011001101111\n11101110011001010100010000000",
"output": "00010110011001000111011101111"
},
{
"input": "011001110000110100001100101100\n001010000011110000001000101001",
"output": "010011110011000100000100000101"
},
{
"input": "1011111010001100011010110101111\n1011001110010000000101100010101",
"output": "0000110100011100011111010111010"
},
{
"input": "10111000100001000001010110000001\n10111000001100101011011001011000",
"output": "00000000101101101010001111011001"
},
{
"input": "000001010000100001000000011011100\n111111111001010100100001100000111",
"output": "111110101001110101100001111011011"
},
{
"input": "1101000000000010011011101100000110\n1110000001100010011010000011011110",
"output": "0011000001100000000001101111011000"
},
{
"input": "01011011000010100001100100011110001\n01011010111000001010010100001110000",
"output": "00000001111010101011110000010000001"
},
{
"input": "000011111000011001000110111100000100\n011011000110000111101011100111000111",
"output": "011000111110011110101101011011000011"
},
{
"input": "1001000010101110001000000011111110010\n0010001011010111000011101001010110000",
"output": "1011001001111001001011101010101000010"
},
{
"input": "00011101011001100101111111000000010101\n10010011011011001011111000000011101011",
"output": "10001110000010101110000111000011111110"
},
{
"input": "111011100110001001101111110010111001010\n111111101101111001110010000101101000100",
"output": "000100001011110000011101110111010001110"
},
{
"input": "1111001001101000001000000010010101001010\n0010111100111110001011000010111110111001",
"output": "1101110101010110000011000000101011110011"
},
{
"input": "00100101111000000101011111110010100011010\n11101110001010010101001000111110101010100",
"output": "11001011110010010000010111001100001001110"
},
{
"input": "101011001110110100101001000111010101101111\n100111100110101011010100111100111111010110",
"output": "001100101000011111111101111011101010111001"
},
{
"input": "1111100001100101000111101001001010011100001\n1000110011000011110010001011001110001000001",
"output": "0111010010100110110101100010000100010100000"
},
{
"input": "01100111011111010101000001101110000001110101\n10011001011111110000000101011001001101101100",
"output": "11111110000000100101000100110111001100011001"
},
{
"input": "110010100111000100100101100000011100000011001\n011001111011100110000110111001110110100111011",
"output": "101011011100100010100011011001101010100100010"
},
{
"input": "0001100111111011010110100100111000000111000110\n1100101011000000000001010010010111001100110001",
"output": "1101001100111011010111110110101111001011110111"
},
{
"input": "00000101110110110001110010100001110100000100000\n10010000110011110001101000111111101010011010001",
"output": "10010101000101000000011010011110011110011110001"
},
{
"input": "110000100101011100100011001111110011111110010001\n101011111001011100110110111101110011010110101100",
"output": "011011011100000000010101110010000000101000111101"
},
{
"input": "0101111101011111010101011101000011101100000000111\n0000101010110110001110101011011110111001010100100",
"output": "0101010111101001011011110110011101010101010100011"
},
{
"input": "11000100010101110011101000011111001010110111111100\n00001111000111001011111110000010101110111001000011",
"output": "11001011010010111000010110011101100100001110111111"
},
{
"input": "101000001101111101101111111000001110110010101101010\n010011100111100001100000010001100101000000111011011",
"output": "111011101010011100001111101001101011110010010110001"
},
{
"input": "0011111110010001010100010110111000110011001101010100\n0111000000100010101010000100101000000100101000111001",
"output": "0100111110110011111110010010010000110111100101101101"
},
{
"input": "11101010000110000011011010000001111101000111011111100\n10110011110001010100010110010010101001010111100100100",
"output": "01011001110111010111001100010011010100010000111011000"
},
{
"input": "011000100001000001101000010110100110011110100111111011\n111011001000001001110011001111011110111110110011011111",
"output": "100011101001001000011011011001111000100000010100100100"
},
{
"input": "0111010110010100000110111011010110100000000111110110000\n1011100100010001101100000100111111101001110010000100110",
"output": "1100110010000101101010111111101001001001110101110010110"
},
{
"input": "10101000100111000111010001011011011011110100110101100011\n11101111000000001100100011111000100100000110011001101110",
"output": "01000111100111001011110010100011111111110010101100001101"
},
{
"input": "000000111001010001000000110001001011100010011101010011011\n110001101000010010000101000100001111101001100100001010010",
"output": "110001010001000011000101110101000100001011111001011001001"
},
{
"input": "0101011100111010000111110010101101111111000000111100011100\n1011111110000010101110111001000011100000100111111111000111",
"output": "1110100010111000101001001011101110011111100111000011011011"
},
{
"input": "11001000001100100111100111100100101011000101001111001001101\n10111110100010000011010100110100100011101001100000001110110",
"output": "01110110101110100100110011010000001000101100101111000111011"
},
{
"input": "010111011011101000000110000110100110001110100001110110111011\n101011110011101011101101011111010100100001100111100100111011",
"output": "111100101000000011101011011001110010101111000110010010000000"
},
{
"input": "1001011110110110000100011001010110000100011010010111010101110\n1101111100001000010111110011010101111010010100000001000010111",
"output": "0100100010111110010011101010000011111110001110010110010111001"
},
{
"input": "10000010101111100111110101111000010100110111101101111111111010\n10110110101100101010011001011010100110111011101100011001100111",
"output": "00110100000011001101101100100010110010001100000001100110011101"
},
{
"input": "011111010011111000001010101001101001000010100010111110010100001\n011111001011000011111001000001111001010110001010111101000010011",
"output": "000000011000111011110011101000010000010100101000000011010110010"
},
{
"input": "1111000000110001011101000100100100001111011100001111001100011111\n1101100110000101100001100000001001011011111011010101000101001010",
"output": "0010100110110100111100100100101101010100100111011010001001010101"
},
{
"input": "01100000101010010011001110100110110010000110010011011001100100011\n10110110010110111100100111000111000110010000000101101110000010111",
"output": "11010110111100101111101001100001110100010110010110110111100110100"
},
{
"input": "001111111010000100001100001010011001111110011110010111110001100111\n110000101001011000100010101100100110000111100000001101001110010111",
"output": "111111010011011100101110100110111111111001111110011010111111110000"
},
{
"input": "1011101011101101011110101101011101011000010011100101010101000100110\n0001000001001111010111100100111101100000000001110001000110000000110",
"output": "1010101010100010001001001001100000111000010010010100010011000100000"
},
{
"input": "01000001011001010011011100010000100100110101111011011011110000001110\n01011110000110011011000000000011000111100001010000000011111001110000",
"output": "00011111011111001000011100010011100011010100101011011000001001111110"
},
{
"input": "110101010100110101000001111110110100010010000100111110010100110011100\n111010010111111011100110101011001011001110110111110100000110110100111",
"output": "001111000011001110100111010101111111011100110011001010010010000111011"
},
{
"input": "1001101011000001011111100110010010000011010001001111011100010100110001\n1111100111110101001111010001010000011001001001010110001111000000100101",
"output": "0110001100110100010000110111000010011010011000011001010011010100010100"
},
{
"input": "00000111110010110001110110001010010101000111011001111111100110011110010\n00010111110100000100110101000010010001100001100011100000001100010100010",
"output": "00010000000110110101000011001000000100100110111010011111101010001010000"
},
{
"input": "100101011100101101000011010001011001101110101110001100010001010111001110\n100001111100101011011111110000001111000111001011111110000010101110111001",
"output": "000100100000000110011100100001010110101001100101110010010011111001110111"
},
{
"input": "1101100001000111001101001011101000111000011110000001001101101001111011010\n0101011101010100011011010110101000010010110010011110101100000110110001000",
"output": "1000111100010011010110011101000000101010101100011111100001101111001010010"
},
{
"input": "01101101010011110101100001110101111011100010000010001101111000011110111111\n00101111001101001100111010000101110000100101101111100111101110010100011011",
"output": "01000010011110111001011011110000001011000111101101101010010110001010100100"
},
{
"input": "101100101100011001101111110110110010100110110010100001110010110011001101011\n000001011010101011110011111101001110000111000010001101000010010000010001101",
"output": "101101110110110010011100001011111100100001110000101100110000100011011100110"
},
{
"input": "0010001011001010001100000010010011110110011000100000000100110000101111001110\n1100110100111000110100001110111001011101001100001010100001010011100110110001",
"output": "1110111111110010111000001100101010101011010100101010100101100011001001111111"
},
{
"input": "00101101010000000101011001101011001100010001100000101011101110000001111001000\n10010110010111000000101101000011101011001010000011011101101011010000000011111",
"output": "10111011000111000101110100101000100111011011100011110110000101010001111010111"
},
{
"input": "111100000100100000101001100001001111001010001000001000000111010000010101101011\n001000100010100101111011111011010110101100001111011000010011011011100010010110",
"output": "110100100110000101010010011010011001100110000111010000010100001011110111111101"
},
{
"input": "0110001101100100001111110101101000100101010010101010011001101001001101110000000\n0111011000000010010111011110010000000001000110001000011001101000000001110100111",
"output": "0001010101100110011000101011111000100100010100100010000000000001001100000100111"
},
{
"input": "10001111111001000101001011110101111010100001011010101100111001010001010010001000\n10000111010010011110111000111010101100000011110001101111001000111010100000000001",
"output": "00001000101011011011110011001111010110100010101011000011110001101011110010001001"
},
{
"input": "100110001110110000100101001110000011110110000110000000100011110100110110011001101\n110001110101110000000100101001101011111100100100001001000110000001111100011110110",
"output": "010111111011000000100001100111101000001010100010001001100101110101001010000111011"
},
{
"input": "0000010100100000010110111100011111111010011101000000100000011001001101101100111010\n0100111110011101010110101011110110010111001111000110101100101110111100101000111111",
"output": "0100101010111101000000010111101001101101010010000110001100110111110001000100000101"
},
{
"input": "11000111001010100001110000001001011010010010110000001110100101000001010101100110111\n11001100100100100001101010110100000111100011101110011010110100001001000011011011010",
"output": "00001011101110000000011010111101011101110001011110010100010001001000010110111101101"
},
{
"input": "010110100010001000100010101001101010011010111110100001000100101000111011100010100001\n110000011111101101010011111000101010111010100001001100001001100101000000111000000000",
"output": "100110111101100101110001010001000000100000011111101101001101001101111011011010100001"
},
{
"input": "0000011110101110010101110110110101100001011001101010101001000010000010000000101001101\n1100111111011100000110000111101110011111100111110001011001000010011111100001001100011",
"output": "1100100001110010010011110001011011111110111110011011110000000000011101100001100101110"
},
{
"input": "10100000101101110001100010010010100101100011010010101000110011100000101010110010000000\n10001110011011010010111011011101101111000111110000111000011010010101001100000001010011",
"output": "00101110110110100011011001001111001010100100100010010000101001110101100110110011010011"
},
{
"input": "001110000011111101101010011111000101010111010100001001100001001100101000000111000000000\n111010000000000000101001110011001000111011001100101010011001000011101001001011110000011",
"output": "110100000011111101000011101100001101101100011000100011111000001111000001001100110000011"
},
{
"input": "1110111100111011010101011011001110001010010010110011110010011111000010011111010101100001\n1001010101011001001010100010101100000110111101011000100010101111111010111100001110010010",
"output": "0111101001100010011111111001100010001100101111101011010000110000111000100011011011110011"
},
{
"input": "11100010001100010011001100001100010011010001101110011110100101110010101101011101000111111\n01110000000110111010110100001010000101011110100101010011000110101110101101110111011110001",
"output": "10010010001010101001111000000110010110001111001011001101100011011100000000101010011001110"
},
{
"input": "001101011001100101101100110000111000101011001001100100000100101000100000110100010111111101\n101001111110000010111101111110001001111001111101111010000110111000100100110010010001011111",
"output": "100100100111100111010001001110110001010010110100011110000010010000000100000110000110100010"
},
{
"input": "1010110110010101000110010010110101011101010100011001101011000110000000100011100100011000000\n0011011111100010001111101101000111001011101110100000110111100100101111010110101111011100011",
"output": "1001101001110111001001111111110010010110111010111001011100100010101111110101001011000100011"
},
{
"input": "10010010000111010111011111110010100101100000001100011100111011100010000010010001011100001100\n00111010100010110010000100010111010001111110100100100011101000101111111111001101101100100100",
"output": "10101000100101100101011011100101110100011110101000111111010011001101111101011100110000101000"
},
{
"input": "010101110001010101100000010111010000000111110011001101100011001000000011001111110000000010100\n010010111011100101010101111110110000000111000100001101101001001000001100101110001010000100001",
"output": "000111001010110000110101101001100000000000110111000000001010000000001111100001111010000110101"
},
{
"input": "1100111110011001000111101001001011000110011010111111100010111111001100111111011101100111101011\n1100000011001000110100110111000001011001010111101000010010100011000001100100111101101000010110",
"output": "0000111101010001110011011110001010011111001101010111110000011100001101011011100000001111111101"
},
{
"input": "00011000100100110111100101100100000000010011110111110010101110110011100001010111010011110100101\n00011011111011111011100101100111100101001110010111000010000111000100100100000001110101111011011",
"output": "00000011011111001100000000000011100101011101100000110000101001110111000101010110100110001111110"
},
{
"input": "000101011001001100000111100010110101111011110101111101000110001101011010111110110011100100000001\n011000101010011111011000111000100000000011011000000001111110001000001111101010110000011100001111",
"output": "011101110011010011011111011010010101111000101101111100111000000101010101010100000011111000001110"
},
{
"input": "1000101001011010000100100100010010011101011001110101111011101111111110010101001101010001010101001\n0110110010011100011111011111110111000000010001110100001010111110101011010011111011111110000110000",
"output": "1110011011000110011011111011100101011101001000000001110001010001010101000110110110101111010011001"
},
{
"input": "01111010010101100111110111111011011010100001011101010000111100101101101110111011001100101011100111\n00001100110110100001111011000010001001001100000010111101000001111011100000010111010010000011000010",
"output": "01110110100011000110001100111001010011101101011111101101111101010110001110101100011110101000100101"
},
{
"input": "111101011101111000001011001101111010110111001101110100100011111011011101001101010101011010111000110\n101111100101101101001100110011000001111010011101110111110110101110011011110011111100001001110101101",
"output": "010010111000010101000111111110111011001101010000000011010101010101000110111110101001010011001101011"
},
{
"input": "1010000011010110011101001101110001110010000111011101110010110110111111001001110100101100010101010001\n0111101000111100101100000101111010100100001000011101010100110011100011010011010101000100101011100011",
"output": "1101101011101010110001001000001011010110001111000000100110000101011100011010100001101000111110110010"
},
{
"input": "0000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000001\n1111111010111111101011111110101111111010111111101011111110101111111010111111101011111110101111111010",
"output": "1111111010111111101011111110101111111010111111101011111110101111111010111111101011111110101111111011"
},
{
"input": "0\n0",
"output": "0"
},
{
"input": "0\n1",
"output": "1"
}
] | 1,603,338,481
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 102
| 140
| 0
|
n1=input();n2=input();lis1=list(n1);lis2=list(n2)
i = 0
res = []
while(i!=len(lis1)):
if lis1[i] == lis2[i]:
res.append(0)
else:
res.append(1)
i=i+1
print(*res, sep='')
|
Title: Ultra-Fast Mathematician
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Shapur was an extremely gifted student. He was great at everything including Combinatorics, Algebra, Number Theory, Geometry, Calculus, etc. He was not only smart but extraordinarily fast! He could manage to sum 1018 numbers in a single second.
One day in 230 AD Shapur was trying to find out if any one can possibly do calculations faster than him. As a result he made a very great contest and asked every one to come and take part.
In his contest he gave the contestants many different pairs of numbers. Each number is made from digits 0 or 1. The contestants should write a new number corresponding to the given pair of numbers. The rule is simple: The *i*-th digit of the answer is 1 if and only if the *i*-th digit of the two given numbers differ. In the other case the *i*-th digit of the answer is 0.
Shapur made many numbers and first tried his own speed. He saw that he can perform these operations on numbers of length β (length of a number is number of digits in it) in a glance! He always gives correct answers so he expects the contestants to give correct answers, too. He is a good fellow so he won't give anyone very big numbers and he always gives one person numbers of same length.
Now you are going to take part in Shapur's contest. See if you are faster and more accurate.
Input Specification:
There are two lines in each input. Each of them contains a single number. It is guaranteed that the numbers are made from 0 and 1 only and that their length is same. The numbers may start with 0. The length of each number doesn't exceed 100.
Output Specification:
Write one line β the corresponding answer. Do not omit the leading 0s.
Demo Input:
['1010100\n0100101\n', '000\n111\n', '1110\n1010\n', '01110\n01100\n']
Demo Output:
['1110001\n', '111\n', '0100\n', '00010\n']
Note:
none
|
```python
n1=input();n2=input();lis1=list(n1);lis2=list(n2)
i = 0
res = []
while(i!=len(lis1)):
if lis1[i] == lis2[i]:
res.append(0)
else:
res.append(1)
i=i+1
print(*res, sep='')
```
| 3.965
|
964
|
B
|
Messages
|
PROGRAMMING
| 1,300
|
[
"math"
] | null | null |
There are *n* incoming messages for Vasya. The *i*-th message is going to be received after *t**i* minutes. Each message has a cost, which equals to *A* initially. After being received, the cost of a message decreases by *B* each minute (it can become negative). Vasya can read any message after receiving it at any moment of time. After reading the message, Vasya's bank account receives the current cost of this message. Initially, Vasya's bank account is at 0.
Also, each minute Vasya's bank account receives *C*Β·*k*, where *k* is the amount of received but unread messages.
Vasya's messages are very important to him, and because of that he wants to have all messages read after *T* minutes.
Determine the maximum amount of money Vasya's bank account can hold after *T* minutes.
|
The first line contains five integers *n*, *A*, *B*, *C* and *T* (1<=β€<=*n*,<=*A*,<=*B*,<=*C*,<=*T*<=β€<=1000).
The second string contains *n* integers *t**i* (1<=β€<=*t**i*<=β€<=*T*).
|
Output one integer Β β the answer to the problem.
|
[
"4 5 5 3 5\n1 5 5 4\n",
"5 3 1 1 3\n2 2 2 1 1\n",
"5 5 3 4 5\n1 2 3 4 5\n"
] |
[
"20\n",
"15\n",
"35\n"
] |
In the first sample the messages must be read immediately after receiving, Vasya receives *A* points for each message, *n*Β·*A*β=β20 in total.
In the second sample the messages can be read at any integer moment.
In the third sample messages must be read at the moment T. This way Vasya has 1, 2, 3, 4 and 0 unread messages at the corresponding minutes, he gets 40 points for them. When reading messages, he receives (5β-β4Β·3)β+β(5β-β3Β·3)β+β(5β-β2Β·3)β+β(5β-β1Β·3)β+β5β=ββ-β5 points. This is 35 in total.
| 1,000
|
[
{
"input": "4 5 5 3 5\n1 5 5 4",
"output": "20"
},
{
"input": "5 3 1 1 3\n2 2 2 1 1",
"output": "15"
},
{
"input": "5 5 3 4 5\n1 2 3 4 5",
"output": "35"
},
{
"input": "1 6 4 3 9\n2",
"output": "6"
},
{
"input": "10 9 7 5 3\n3 3 3 3 2 3 2 2 3 3",
"output": "90"
},
{
"input": "44 464 748 420 366\n278 109 293 161 336 9 194 203 13 226 303 303 300 131 134 47 235 110 263 67 185 337 360 253 270 97 162 190 143 267 18 311 329 138 322 167 324 33 3 104 290 260 349 89",
"output": "20416"
},
{
"input": "80 652 254 207 837\n455 540 278 38 19 781 686 110 733 40 434 581 77 381 818 236 444 615 302 251 762 676 771 483 767 479 326 214 316 551 544 95 157 828 813 201 103 502 751 410 84 733 431 90 261 326 731 374 730 748 303 83 302 673 50 822 46 590 248 751 345 579 689 616 331 593 428 344 754 777 178 80 602 268 776 234 637 780 712 539",
"output": "52160"
},
{
"input": "62 661 912 575 6\n3 5 6 6 5 6 6 6 3 2 3 1 4 3 2 5 3 6 1 4 2 5 1 2 6 4 6 6 5 5 4 3 4 1 4 2 4 4 2 6 4 6 3 5 3 4 1 5 3 6 5 6 4 1 2 1 6 5 5 4 2 3",
"output": "40982"
},
{
"input": "49 175 330 522 242\n109 81 215 5 134 185 60 242 154 148 14 221 146 229 45 120 142 43 202 176 231 105 212 69 109 219 58 103 53 211 128 138 157 95 96 122 69 109 35 46 122 118 132 135 224 150 178 134 28",
"output": "1083967"
},
{
"input": "27 27 15 395 590\n165 244 497 107 546 551 232 177 428 237 209 186 135 162 511 514 408 132 11 364 16 482 279 246 30 103 152",
"output": "3347009"
},
{
"input": "108 576 610 844 573\n242 134 45 515 430 354 405 179 174 366 155 4 300 176 96 36 508 70 75 316 118 563 55 340 128 214 138 511 507 437 454 478 341 443 421 573 270 362 208 107 256 471 436 378 336 507 383 352 450 411 297 34 179 551 119 524 141 288 387 9 283 241 304 214 503 559 416 447 495 61 169 228 479 568 368 441 467 401 467 542 370 243 371 315 65 67 161 383 19 144 283 5 369 242 122 396 276 488 401 387 256 128 87 425 124 226 335 238",
"output": "6976440"
},
{
"input": "67 145 951 829 192\n2 155 41 125 20 70 43 47 120 190 141 8 37 183 72 141 52 168 185 71 36 12 31 3 151 98 95 82 148 110 64 10 67 54 176 130 116 5 61 90 24 43 156 49 70 186 165 109 56 11 148 119 139 120 138 124 3 159 75 173 4 101 190 64 90 176 176",
"output": "9715"
},
{
"input": "67 322 317 647 99\n68 33 75 39 10 60 93 40 77 71 90 14 67 26 54 87 91 67 60 76 83 7 20 47 39 79 54 43 35 9 19 39 77 56 83 31 95 15 40 37 56 88 7 89 11 49 72 48 85 95 50 78 12 1 81 53 94 97 9 26 78 62 57 23 18 19 4",
"output": "1066024"
},
{
"input": "32 2 74 772 674\n598 426 358 191 471 667 412 44 183 358 436 654 572 489 79 191 374 33 1 627 154 132 101 236 443 112 77 93 553 53 260 498",
"output": "8161080"
},
{
"input": "111 907 98 340 279\n187 200 223 12 179 57 81 195 250 139 2 190 21 91 145 251 113 41 18 55 235 123 99 154 179 81 59 20 145 244 131 210 76 6 198 43 71 267 60 92 101 265 55 63 231 232 74 233 246 265 102 92 78 111 107 37 51 135 38 62 156 112 70 37 227 25 111 263 175 114 4 128 50 276 226 119 130 33 134 38 48 229 108 88 53 142 233 86 214 173 136 68 2 202 132 49 73 205 208 224 99 96 116 5 74 179 63 197 58 68 50",
"output": "4297441"
}
] | 1,524,380,399
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 60
| 93
| 7,372,800
|
n, A, B, C, T = list(map(int, input().split()))
t = list(map(int, input().split()))
t.sort()
if C-B > 0:
res = sum(map(lambda x: A+(C-B)*(T-x), t))
else:
res = A*len(t)
print(res)
|
Title: Messages
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* incoming messages for Vasya. The *i*-th message is going to be received after *t**i* minutes. Each message has a cost, which equals to *A* initially. After being received, the cost of a message decreases by *B* each minute (it can become negative). Vasya can read any message after receiving it at any moment of time. After reading the message, Vasya's bank account receives the current cost of this message. Initially, Vasya's bank account is at 0.
Also, each minute Vasya's bank account receives *C*Β·*k*, where *k* is the amount of received but unread messages.
Vasya's messages are very important to him, and because of that he wants to have all messages read after *T* minutes.
Determine the maximum amount of money Vasya's bank account can hold after *T* minutes.
Input Specification:
The first line contains five integers *n*, *A*, *B*, *C* and *T* (1<=β€<=*n*,<=*A*,<=*B*,<=*C*,<=*T*<=β€<=1000).
The second string contains *n* integers *t**i* (1<=β€<=*t**i*<=β€<=*T*).
Output Specification:
Output one integer Β β the answer to the problem.
Demo Input:
['4 5 5 3 5\n1 5 5 4\n', '5 3 1 1 3\n2 2 2 1 1\n', '5 5 3 4 5\n1 2 3 4 5\n']
Demo Output:
['20\n', '15\n', '35\n']
Note:
In the first sample the messages must be read immediately after receiving, Vasya receives *A* points for each message, *n*Β·*A*β=β20 in total.
In the second sample the messages can be read at any integer moment.
In the third sample messages must be read at the moment T. This way Vasya has 1, 2, 3, 4 and 0 unread messages at the corresponding minutes, he gets 40 points for them. When reading messages, he receives (5β-β4Β·3)β+β(5β-β3Β·3)β+β(5β-β2Β·3)β+β(5β-β1Β·3)β+β5β=ββ-β5 points. This is 35 in total.
|
```python
n, A, B, C, T = list(map(int, input().split()))
t = list(map(int, input().split()))
t.sort()
if C-B > 0:
res = sum(map(lambda x: A+(C-B)*(T-x), t))
else:
res = A*len(t)
print(res)
```
| 3
|
|
567
|
A
|
Lineland Mail
|
PROGRAMMING
| 900
|
[
"greedy",
"implementation"
] | null | null |
All cities of Lineland are located on the *Ox* coordinate axis. Thus, each city is associated with its position *x**i* β a coordinate on the *Ox* axis. No two cities are located at a single point.
Lineland residents love to send letters to each other. A person may send a letter only if the recipient lives in another city (because if they live in the same city, then it is easier to drop in).
Strange but true, the cost of sending the letter is exactly equal to the distance between the sender's city and the recipient's city.
For each city calculate two values ββ*min**i* and *max**i*, where *min**i* is the minimum cost of sending a letter from the *i*-th city to some other city, and *max**i* is the the maximum cost of sending a letter from the *i*-th city to some other city
|
The first line of the input contains integer *n* (2<=β€<=*n*<=β€<=105) β the number of cities in Lineland. The second line contains the sequence of *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (<=-<=109<=β€<=*x**i*<=β€<=109), where *x**i* is the *x*-coordinate of the *i*-th city. All the *x**i*'s are distinct and follow in ascending order.
|
Print *n* lines, the *i*-th line must contain two integers *min**i*,<=*max**i*, separated by a space, where *min**i* is the minimum cost of sending a letter from the *i*-th city, and *max**i* is the maximum cost of sending a letter from the *i*-th city.
|
[
"4\n-5 -2 2 7\n",
"2\n-1 1\n"
] |
[
"3 12\n3 9\n4 7\n5 12\n",
"2 2\n2 2\n"
] |
none
| 500
|
[
{
"input": "4\n-5 -2 2 7",
"output": "3 12\n3 9\n4 7\n5 12"
},
{
"input": "2\n-1 1",
"output": "2 2\n2 2"
},
{
"input": "3\n-1 0 1",
"output": "1 2\n1 1\n1 2"
},
{
"input": "4\n-1 0 1 3",
"output": "1 4\n1 3\n1 2\n2 4"
},
{
"input": "3\n-1000000000 0 1000000000",
"output": "1000000000 2000000000\n1000000000 1000000000\n1000000000 2000000000"
},
{
"input": "2\n-1000000000 1000000000",
"output": "2000000000 2000000000\n2000000000 2000000000"
},
{
"input": "10\n1 10 12 15 59 68 130 912 1239 9123",
"output": "9 9122\n2 9113\n2 9111\n3 9108\n9 9064\n9 9055\n62 8993\n327 8211\n327 7884\n7884 9122"
},
{
"input": "5\n-2 -1 0 1 2",
"output": "1 4\n1 3\n1 2\n1 3\n1 4"
},
{
"input": "5\n-2 -1 0 1 3",
"output": "1 5\n1 4\n1 3\n1 3\n2 5"
},
{
"input": "3\n-10000 1 10000",
"output": "10001 20000\n9999 10001\n9999 20000"
},
{
"input": "5\n-1000000000 -999999999 -999999998 -999999997 -999999996",
"output": "1 4\n1 3\n1 2\n1 3\n1 4"
},
{
"input": "10\n-857422304 -529223472 82412729 145077145 188538640 265299215 527377039 588634631 592896147 702473706",
"output": "328198832 1559896010\n328198832 1231697178\n62664416 939835033\n43461495 1002499449\n43461495 1045960944\n76760575 1122721519\n61257592 1384799343\n4261516 1446056935\n4261516 1450318451\n109577559 1559896010"
},
{
"input": "10\n-876779400 -829849659 -781819137 -570920213 18428128 25280705 121178189 219147240 528386329 923854124",
"output": "46929741 1800633524\n46929741 1753703783\n48030522 1705673261\n210898924 1494774337\n6852577 905425996\n6852577 902060105\n95897484 997957589\n97969051 1095926640\n309239089 1405165729\n395467795 1800633524"
},
{
"input": "30\n-15 1 21 25 30 40 59 60 77 81 97 100 103 123 139 141 157 158 173 183 200 215 226 231 244 256 267 279 289 292",
"output": "16 307\n16 291\n4 271\n4 267\n5 262\n10 252\n1 233\n1 232\n4 215\n4 211\n3 195\n3 192\n3 189\n16 169\n2 154\n2 156\n1 172\n1 173\n10 188\n10 198\n15 215\n11 230\n5 241\n5 246\n12 259\n11 271\n11 282\n10 294\n3 304\n3 307"
},
{
"input": "10\n-1000000000 -999999999 -999999997 -999999996 -999999995 -999999994 -999999992 -999999990 -999999988 -999999986",
"output": "1 14\n1 13\n1 11\n1 10\n1 9\n1 8\n2 8\n2 10\n2 12\n2 14"
},
{
"input": "50\n-50000 -49459 -48875 -48456 -48411 -48096 -47901 -47500 -47150 -46808 -46687 -46679 -46337 -45747 -45604 -45194 -44752 -44242 -44231 -44122 -43636 -43274 -42916 -42881 -42386 -42095 -41830 -41618 -41145 -40897 -40534 -40007 -39761 -39389 -39104 -38909 -38630 -38561 -38364 -38255 -38214 -38084 -37959 -37607 -37202 -36890 -36681 -36136 -36123 -35886",
"output": "541 14114\n541 13573\n419 12989\n45 12570\n45 12525\n195 12210\n195 12015\n350 11614\n342 11264\n121 10922\n8 10801\n8 10793\n342 10451\n143 9861\n143 9718\n410 9308\n442 8866\n11 8356\n11 8345\n109 8236\n362 7750\n358 7388\n35 7084\n35 7119\n291 7614\n265 7905\n212 8170\n212 8382\n248 8855\n248 9103\n363 9466\n246 9993\n246 10239\n285 10611\n195 10896\n195 11091\n69 11370\n69 11439\n109 11636\n41 11745\n41 11786\n125 11916\n125 12041\n352 12393\n312 12798\n209 13110\n209 13319\n13 13864\n13 13877\n237 141..."
},
{
"input": "3\n-1000000000 999999999 1000000000",
"output": "1999999999 2000000000\n1 1999999999\n1 2000000000"
}
] | 1,630,528,209
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 54
| 390
| 32,358,400
|
n = int(input())
x = [int(x) for x in input().split()]
number_leftmost = x[0]
number_rightmost = x[-1]
# print(farthest_left, farthest_right)
chota_bhai = [0]*n
chota_bhai[0] = abs(x[0]-x[1])
chota_bhai[-1] = abs(x[-1]-x[-2])
for i in range(1,n-1):
chota_bhai[i] = min(abs(x[i]-x[i-1]), abs(x[i+1]-x[i]))
mota_bhai = [0]*n
mota_bhai[0] = abs(number_leftmost-number_rightmost)
mota_bhai[-1] = mota_bhai[0]
for i in range(1,n-1):
mota_bhai[i] = max(abs(x[i]-number_rightmost), abs(x[i]-number_leftmost))
for i in range(n):
print(chota_bhai[i], mota_bhai[i])
|
Title: Lineland Mail
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
All cities of Lineland are located on the *Ox* coordinate axis. Thus, each city is associated with its position *x**i* β a coordinate on the *Ox* axis. No two cities are located at a single point.
Lineland residents love to send letters to each other. A person may send a letter only if the recipient lives in another city (because if they live in the same city, then it is easier to drop in).
Strange but true, the cost of sending the letter is exactly equal to the distance between the sender's city and the recipient's city.
For each city calculate two values ββ*min**i* and *max**i*, where *min**i* is the minimum cost of sending a letter from the *i*-th city to some other city, and *max**i* is the the maximum cost of sending a letter from the *i*-th city to some other city
Input Specification:
The first line of the input contains integer *n* (2<=β€<=*n*<=β€<=105) β the number of cities in Lineland. The second line contains the sequence of *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (<=-<=109<=β€<=*x**i*<=β€<=109), where *x**i* is the *x*-coordinate of the *i*-th city. All the *x**i*'s are distinct and follow in ascending order.
Output Specification:
Print *n* lines, the *i*-th line must contain two integers *min**i*,<=*max**i*, separated by a space, where *min**i* is the minimum cost of sending a letter from the *i*-th city, and *max**i* is the maximum cost of sending a letter from the *i*-th city.
Demo Input:
['4\n-5 -2 2 7\n', '2\n-1 1\n']
Demo Output:
['3 12\n3 9\n4 7\n5 12\n', '2 2\n2 2\n']
Note:
none
|
```python
n = int(input())
x = [int(x) for x in input().split()]
number_leftmost = x[0]
number_rightmost = x[-1]
# print(farthest_left, farthest_right)
chota_bhai = [0]*n
chota_bhai[0] = abs(x[0]-x[1])
chota_bhai[-1] = abs(x[-1]-x[-2])
for i in range(1,n-1):
chota_bhai[i] = min(abs(x[i]-x[i-1]), abs(x[i+1]-x[i]))
mota_bhai = [0]*n
mota_bhai[0] = abs(number_leftmost-number_rightmost)
mota_bhai[-1] = mota_bhai[0]
for i in range(1,n-1):
mota_bhai[i] = max(abs(x[i]-number_rightmost), abs(x[i]-number_leftmost))
for i in range(n):
print(chota_bhai[i], mota_bhai[i])
```
| 3
|
|
177
|
A1
|
Good Matrix Elements
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
The Smart Beaver from ABBYY got hooked on square matrices. Now he is busy studying an *n*<=Γ<=*n* size matrix, where *n* is odd. The Smart Beaver considers the following matrix elements good:
- Elements of the main diagonal. - Elements of the secondary diagonal. - Elements of the "middle" row β the row which has exactly rows above it and the same number of rows below it. - Elements of the "middle" column β the column that has exactly columns to the left of it and the same number of columns to the right of it.
Help the Smart Beaver count the sum of good elements of the given matrix.
|
The first line of input data contains a single odd integer *n*. Each of the next *n* lines contains *n* integers *a**ij* (0<=β€<=*a**ij*<=β€<=100) separated by single spaces β the elements of the given matrix.
The input limitations for getting 30 points are:
- 1<=β€<=*n*<=β€<=5
The input limitations for getting 100 points are:
- 1<=β€<=*n*<=β€<=101
|
Print a single integer β the sum of good matrix elements.
|
[
"3\n1 2 3\n4 5 6\n7 8 9\n",
"5\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n"
] |
[
"45\n",
"17\n"
] |
In the first sample all matrix elements will be good. Good elements in the second sample are shown on the figure.
| 30
|
[
{
"input": "3\n1 2 3\n4 5 6\n7 8 9",
"output": "45"
},
{
"input": "5\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1",
"output": "17"
},
{
"input": "1\n3",
"output": "3"
},
{
"input": "5\n27 7 3 11 72\n19 49 68 19 59\n41 25 37 64 65\n8 39 96 62 90\n13 37 43 26 33",
"output": "756"
},
{
"input": "3\n19 7 16\n12 15 5\n15 15 5",
"output": "109"
},
{
"input": "3\n36 4 33\n11 46 32\n20 49 34",
"output": "265"
},
{
"input": "3\n79 91 74\n33 82 22\n18 28 54",
"output": "481"
},
{
"input": "5\n7 0 8 1 7\n5 1 1 0 4\n4 2 8 1 6\n1 2 3 2 7\n6 0 1 9 6",
"output": "65"
},
{
"input": "5\n27 20 28 11 17\n25 21 1 20 14\n14 22 28 1 6\n1 2 23 2 7\n6 0 1 29 6",
"output": "225"
},
{
"input": "5\n57 50 58 41 17\n25 21 1 50 44\n44 22 28 31 36\n31 32 23 32 37\n6 0 31 59 6",
"output": "495"
},
{
"input": "5\n57 80 28 41 47\n85 51 61 50 74\n44 82 28 31 36\n31 32 23 32 37\n66 60 31 59 6",
"output": "705"
},
{
"input": "5\n13 58 10 17 43\n61 73 100 0 9\n52 38 16 22 96\n11 4 14 67 62\n70 89 7 98 83",
"output": "708"
},
{
"input": "5\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0\n0 0 0 0 0",
"output": "0"
},
{
"input": "5\n0 0 0 0 0\n1 0 0 0 0\n0 0 0 0 0\n1 0 0 0 0\n0 0 0 0 0",
"output": "0"
},
{
"input": "5\n0 1 0 1 0\n0 0 0 0 1\n0 0 5 0 0\n0 0 0 0 1\n0 0 0 0 0",
"output": "5"
},
{
"input": "5\n0 0 0 0 1\n0 1 0 0 0\n0 0 0 0 0\n0 1 0 0 0\n0 1 0 0 0",
"output": "3"
},
{
"input": "3\n0 0 0\n0 0 0\n0 0 0",
"output": "0"
}
] | 1,561,674,736
| 2,147,483,647
|
Python 3
|
OK
|
TESTS1
| 17
| 248
| 0
|
n = int(input())
a = [0] * n
res = 0
for i in range(n):
a[i] = list(map(int, input().split()))
res += sum(a[n//2][:n])
t = 0
for _ in range(n//2):
res += (a[t][t] + a[t][n-t-1] + a[t][n//2])
res += (a[n-t-1][t] + a[n-t-1][n-t-1] + a[n-t-1][n//2])
t += 1
print(res)
|
Title: Good Matrix Elements
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
The Smart Beaver from ABBYY got hooked on square matrices. Now he is busy studying an *n*<=Γ<=*n* size matrix, where *n* is odd. The Smart Beaver considers the following matrix elements good:
- Elements of the main diagonal. - Elements of the secondary diagonal. - Elements of the "middle" row β the row which has exactly rows above it and the same number of rows below it. - Elements of the "middle" column β the column that has exactly columns to the left of it and the same number of columns to the right of it.
Help the Smart Beaver count the sum of good elements of the given matrix.
Input Specification:
The first line of input data contains a single odd integer *n*. Each of the next *n* lines contains *n* integers *a**ij* (0<=β€<=*a**ij*<=β€<=100) separated by single spaces β the elements of the given matrix.
The input limitations for getting 30 points are:
- 1<=β€<=*n*<=β€<=5
The input limitations for getting 100 points are:
- 1<=β€<=*n*<=β€<=101
Output Specification:
Print a single integer β the sum of good matrix elements.
Demo Input:
['3\n1 2 3\n4 5 6\n7 8 9\n', '5\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n1 1 1 1 1\n']
Demo Output:
['45\n', '17\n']
Note:
In the first sample all matrix elements will be good. Good elements in the second sample are shown on the figure.
|
```python
n = int(input())
a = [0] * n
res = 0
for i in range(n):
a[i] = list(map(int, input().split()))
res += sum(a[n//2][:n])
t = 0
for _ in range(n//2):
res += (a[t][t] + a[t][n-t-1] + a[t][n//2])
res += (a[n-t-1][t] + a[n-t-1][n-t-1] + a[n-t-1][n//2])
t += 1
print(res)
```
| 3
|
|
272
|
A
|
Dima and Friends
|
PROGRAMMING
| 1,000
|
[
"implementation",
"math"
] | null | null |
Dima and his friends have been playing hide and seek at Dima's place all night. As a result, Dima's place got messy. In the morning they decided that they need to clean the place.
To decide who exactly would clean the apartment, the friends want to play a counting-out game. First, all the guys stand in a circle, and then each of them shows some number of fingers on one hand (one to five), and then the boys count in a circle, starting from Dima, the number of people, respective to the total number of fingers shown. The person on who the countdown stops will clean the apartment.
For example, if Dima and one of his friends played hide and seek, and 7 fingers were shown during the counting-out, then Dima would clean the place. If there were 2 or say, 8 fingers shown, then his friend would clean the place.
Dima knows how many fingers each of his friends will show during the counting-out. Now he is interested in the number of ways to show some number of fingers on one hand (one to five), so that he did not have to clean the place. Help Dima.
|
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of Dima's friends. Dima himself isn't considered to be his own friend. The second line contains *n* positive integers, not exceeding 5, representing, how many fingers the Dima's friends will show.
The numbers in the lines are separated by a single space.
|
In a single line print the answer to the problem.
|
[
"1\n1\n",
"1\n2\n",
"2\n3 5\n"
] |
[
"3\n",
"2\n",
"3\n"
] |
In the first sample Dima can show 1, 3 or 5 fingers. If Dima shows 3 fingers, then the counting-out will go like that: Dima, his friend, Dima, his friend.
In the second sample Dima can show 2 or 4 fingers.
| 500
|
[
{
"input": "1\n1",
"output": "3"
},
{
"input": "1\n2",
"output": "2"
},
{
"input": "2\n3 5",
"output": "3"
},
{
"input": "2\n3 5",
"output": "3"
},
{
"input": "1\n5",
"output": "3"
},
{
"input": "5\n4 4 3 5 1",
"output": "4"
},
{
"input": "6\n2 3 2 2 1 3",
"output": "4"
},
{
"input": "8\n2 2 5 3 4 3 3 2",
"output": "4"
},
{
"input": "7\n4 1 3 2 2 4 5",
"output": "4"
},
{
"input": "3\n3 5 1",
"output": "4"
},
{
"input": "95\n4 2 3 4 4 5 2 2 4 4 3 5 3 3 3 5 4 2 5 4 2 1 1 3 4 2 1 3 5 4 2 1 1 5 1 1 2 2 4 4 5 4 5 5 2 1 2 2 2 4 5 5 2 4 3 4 4 3 5 2 4 1 5 4 5 1 3 2 4 2 2 1 5 3 1 5 3 4 3 3 2 1 2 2 1 3 1 5 2 3 1 1 2 5 2",
"output": "5"
},
{
"input": "31\n3 2 3 3 3 3 4 4 1 5 5 4 2 4 3 2 2 1 4 4 1 2 3 1 1 5 5 3 4 4 1",
"output": "4"
},
{
"input": "42\n3 1 2 2 5 1 2 2 4 5 4 5 2 5 4 5 4 4 1 4 3 3 4 4 4 4 3 2 1 3 4 5 5 2 1 2 1 5 5 2 4 4",
"output": "5"
},
{
"input": "25\n4 5 5 5 3 1 1 4 4 4 3 5 4 4 1 4 4 1 2 4 2 5 4 5 3",
"output": "5"
},
{
"input": "73\n3 4 3 4 5 1 3 4 2 1 4 2 2 3 5 3 1 4 2 3 2 1 4 5 3 5 2 2 4 3 2 2 5 3 2 3 5 1 3 1 1 4 5 2 4 2 5 1 4 3 1 3 1 4 2 3 3 3 3 5 5 2 5 2 5 4 3 1 1 5 5 2 3",
"output": "4"
},
{
"input": "46\n1 4 4 5 4 5 2 3 5 5 3 2 5 4 1 3 2 2 1 4 3 1 5 5 2 2 2 2 4 4 1 1 4 3 4 3 1 4 2 2 4 2 3 2 5 2",
"output": "4"
},
{
"input": "23\n5 2 1 1 4 2 5 5 3 5 4 5 5 1 1 5 2 4 5 3 4 4 3",
"output": "5"
},
{
"input": "6\n4 2 3 1 3 5",
"output": "4"
},
{
"input": "15\n5 5 5 3 5 4 1 3 3 4 3 4 1 4 4",
"output": "5"
},
{
"input": "93\n1 3 1 4 3 3 5 3 1 4 5 4 3 2 2 4 3 1 4 1 2 3 3 3 2 5 1 3 1 4 5 1 1 1 4 2 1 2 3 1 1 1 5 1 5 5 1 2 5 4 3 2 2 4 4 2 5 4 5 5 3 1 3 1 2 1 3 1 1 2 3 4 4 5 5 3 2 1 3 3 5 1 3 5 4 4 1 3 3 4 2 3 2",
"output": "5"
},
{
"input": "96\n1 5 1 3 2 1 2 2 2 2 3 4 1 1 5 4 4 1 2 3 5 1 4 4 4 1 3 3 1 4 5 4 1 3 5 3 4 4 3 2 1 1 4 4 5 1 1 2 5 1 2 3 1 4 1 2 2 2 3 2 3 3 2 5 2 2 3 3 3 3 2 1 2 4 5 5 1 5 3 2 1 4 3 5 5 5 3 3 5 3 4 3 4 2 1 3",
"output": "5"
},
{
"input": "49\n1 4 4 3 5 2 2 1 5 1 2 1 2 5 1 4 1 4 5 2 4 5 3 5 2 4 2 1 3 4 2 1 4 2 1 1 3 3 2 3 5 4 3 4 2 4 1 4 1",
"output": "5"
},
{
"input": "73\n4 1 3 3 3 1 5 2 1 4 1 1 3 5 1 1 4 5 2 1 5 4 1 5 3 1 5 2 4 5 1 4 3 3 5 2 2 3 3 2 5 1 4 5 2 3 1 4 4 3 5 2 3 5 1 4 3 5 1 2 4 1 3 3 5 4 2 4 2 4 1 2 5",
"output": "5"
},
{
"input": "41\n5 3 5 4 2 5 4 3 1 1 1 5 4 3 4 3 5 4 2 5 4 1 1 3 2 4 5 3 5 1 5 5 1 1 1 4 4 1 2 4 3",
"output": "5"
},
{
"input": "100\n3 3 1 4 2 4 4 3 1 5 1 1 4 4 3 4 4 3 5 4 5 2 4 3 4 1 2 4 5 4 2 1 5 4 1 1 4 3 2 4 1 2 1 4 4 5 5 4 4 5 3 2 5 1 4 2 2 1 1 2 5 2 5 1 5 3 1 4 3 2 4 3 2 2 4 5 5 1 2 3 1 4 1 2 2 2 5 5 2 3 2 4 3 1 1 2 1 2 1 2",
"output": "5"
},
{
"input": "100\n2 1 1 3 5 4 4 2 3 4 3 4 5 4 5 4 2 4 5 3 4 5 4 1 1 4 4 1 1 2 5 4 2 4 5 3 2 5 4 3 4 5 1 3 4 2 5 4 5 4 5 2 4 1 2 5 3 1 4 4 5 3 4 3 1 2 5 4 2 5 4 1 5 3 5 4 1 2 5 3 1 1 1 1 5 3 4 3 5 1 1 5 5 1 1 2 2 1 5 1",
"output": "5"
},
{
"input": "100\n4 4 3 3 2 5 4 4 2 1 4 4 4 5 4 1 2 1 5 2 4 3 4 1 4 1 2 5 1 4 5 4 2 1 2 5 3 4 5 5 2 1 2 2 2 2 2 3 2 5 1 2 2 3 2 5 5 1 3 4 5 2 1 3 4 2 2 4 4 3 3 3 2 3 2 1 5 5 5 2 1 4 2 3 5 1 4 4 2 3 2 5 5 4 3 5 1 3 5 5",
"output": "5"
},
{
"input": "100\n4 4 2 5 4 2 2 3 4 4 3 2 3 3 1 3 4 3 3 4 1 3 1 4 5 3 4 3 1 1 1 3 3 2 3 4 3 4 2 2 1 5 1 4 5 1 1 1 3 3 1 1 3 2 5 4 2 5 2 4 5 4 4 1 1 2 1 1 4 5 1 1 5 3 3 2 5 5 5 1 4 1 4 1 1 3 2 3 4 4 2 5 5 2 5 1 1 3 5 3",
"output": "5"
},
{
"input": "100\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 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 4",
"output": "4"
},
{
"input": "100\n5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5",
"output": "5"
}
] | 1,591,038,718
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 218
| 0
|
n=int(input())
a=list(map(int,input().split(" ")))
m=sum(a)
c=0
for x in range(1,6):
if (m+x)%(n+1)!=1:
c+=1
print(c)
|
Title: Dima and Friends
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Dima and his friends have been playing hide and seek at Dima's place all night. As a result, Dima's place got messy. In the morning they decided that they need to clean the place.
To decide who exactly would clean the apartment, the friends want to play a counting-out game. First, all the guys stand in a circle, and then each of them shows some number of fingers on one hand (one to five), and then the boys count in a circle, starting from Dima, the number of people, respective to the total number of fingers shown. The person on who the countdown stops will clean the apartment.
For example, if Dima and one of his friends played hide and seek, and 7 fingers were shown during the counting-out, then Dima would clean the place. If there were 2 or say, 8 fingers shown, then his friend would clean the place.
Dima knows how many fingers each of his friends will show during the counting-out. Now he is interested in the number of ways to show some number of fingers on one hand (one to five), so that he did not have to clean the place. Help Dima.
Input Specification:
The first line contains integer *n* (1<=β€<=*n*<=β€<=100) β the number of Dima's friends. Dima himself isn't considered to be his own friend. The second line contains *n* positive integers, not exceeding 5, representing, how many fingers the Dima's friends will show.
The numbers in the lines are separated by a single space.
Output Specification:
In a single line print the answer to the problem.
Demo Input:
['1\n1\n', '1\n2\n', '2\n3 5\n']
Demo Output:
['3\n', '2\n', '3\n']
Note:
In the first sample Dima can show 1, 3 or 5 fingers. If Dima shows 3 fingers, then the counting-out will go like that: Dima, his friend, Dima, his friend.
In the second sample Dima can show 2 or 4 fingers.
|
```python
n=int(input())
a=list(map(int,input().split(" ")))
m=sum(a)
c=0
for x in range(1,6):
if (m+x)%(n+1)!=1:
c+=1
print(c)
```
| 3
|
|
32
|
B
|
Borze
|
PROGRAMMING
| 800
|
[
"expression parsing",
"implementation"
] |
B. Borze
|
2
|
256
|
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
|
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
|
Output the decoded ternary number. It can have leading zeroes.
|
[
".-.--\n",
"--.\n",
"-..-.--\n"
] |
[
"012",
"20",
"1012"
] |
none
| 1,000
|
[
{
"input": ".-.--",
"output": "012"
},
{
"input": "--.",
"output": "20"
},
{
"input": "-..-.--",
"output": "1012"
},
{
"input": "---..",
"output": "210"
},
{
"input": "..--.---..",
"output": "0020210"
},
{
"input": "-.....----.",
"output": "10000220"
},
{
"input": ".",
"output": "0"
},
{
"input": "-.",
"output": "1"
},
{
"input": "--",
"output": "2"
},
{
"input": "..",
"output": "00"
},
{
"input": "--.",
"output": "20"
},
{
"input": ".--.",
"output": "020"
},
{
"input": ".-.-..",
"output": "0110"
},
{
"input": "----.-.",
"output": "2201"
},
{
"input": "-..--.-.",
"output": "10201"
},
{
"input": "..--..--.",
"output": "0020020"
},
{
"input": "-.-.---.--..-..-.-.-..-..-.--.",
"output": "112120010111010120"
},
{
"input": "---.-.-.------..-..-..-..-.-..-.--.-.-..-.-.-----..-.-.",
"output": "21112220010101011012011011221011"
},
{
"input": "-.-..--.-.-.-.-.-..-.-.-.---------.--.---..--...--.-----.-.-.-...--.-.-.---.------.--..-.--.-----.-...-..------",
"output": "11020111110111222212021020002022111100201121222020012022110010222"
},
{
"input": "-.-..-.--.---..---.-..---.-...-.-.----..-.---.-.---..-.--.---.-.-------.---.--....----.-.---.---.---.----.-----..---.-.-.-.-----.--.-------.-..",
"output": "110120210211021100112200121121012021122212120000220121212122022102111122120222110"
},
{
"input": ".-..-.-.---.-----.--.---...-.--.-.-....-..",
"output": "01011212212021001201100010"
},
{
"input": ".------.-.---..--...-..-..-.-.-.--.--.-..-.--...-.-.---.-.-.------..--..-.---..----.-..-.--.---.-.----.-.---...-.-.-.-----.-.-.---.---.-.....-.-...-----.-...-.---.-..-.-----.--...---.-.-..-.--.-.---..",
"output": "022201210200010101112020101200011211122200200121022010120211220121001112211121211000011002211001211012212000211101201210"
},
{
"input": ".-.--.---.-----.-.-----.-.-..-----..-..----..--.-.--.----..---.---..-.-.-----..-------.----..----.-..---...-----..-..-----...-..-.-.-----....---..---..-.-----...-.--...--.-.---.-.-.-.-.-...---..----.",
"output": "01202122112211102210102200201202200212101122102221220022010210022101022100101122100021021012210012000201211111100210220"
},
{
"input": "..-.-.-.---.-.-.-..-.-..-.-.---.-------.---..-----.---....-.---.--.--.-.---.---------.-..---.-.-.--..---.---.-.---.-.-..-.-..-.-.-.----.--.-....--------.-.---..----.------.-.-.--.--.-----.-----.----",
"output": "0011121111011011212221210221210001212020121222211021112002121121110110111220201000222201210220222011202022122122"
},
{
"input": "-..-------.------.-..--.-.-..--.-.-..-----..-.-.-..-..-..--.---..-----..---..-..--.-..-.-.---...-.....-------.---.-----.-...-.-...-.-.---.---.-----.--.--...-.--..-.-..-...-.-.-.-.---..---.-..-.-.-.-..",
"output": "102221222010201102011022101110101020210221021010201011210010000222121221100110011212122120200012001101001111210211011110"
},
{
"input": ".-.----.-.--..-.-.-.-..----..-.-...--.-.---.---.-------..-.--..-......--.------.--.----.--...-.--.--..-----..-.....--.--.-.-.------..--------.----------..-.---.----.---.-..--..-.....-..------.--.",
"output": "012201200111102200110020121212221012001000002022202022020001202002210100002020112220022220222220012122021102001000010222020"
},
{
"input": "------.-----.-....--.-.----.-.---.-.-..---.-.---.-----..-...-.-.---..-.-.-..-.-.-...-.-.-.----..--.------.----.-..-.--...-.-------...-.-..-.-.--.--.---..--..--------.--.-.-.---.-.-.-...----.--..-.--..",
"output": "222022110002012201211102112122101001121011101110011122002022202201012000122210011011202021020022220201121111002202001200"
},
{
"input": "-.---...----...--.--...-.--.----",
"output": "121002200020200012022"
},
{
"input": "--.--.--.---.--.-.---.-.-..-..--.-..---.-.....-..---.-----.--...-.-.-------.-.--.-.----.-..-.------.",
"output": "202020212012111010201021100001021221200011222112012201012220"
}
] | 1,619,460,617
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 124
| 0
|
code = input()
i = 0
ans = ""
while i < (len(code)):
if(code[i] == '.'):
ans += '0'
i+=1
else:
if(i < len(code) and code[i+1] == '.'):
ans+= '1'
else:
ans += '2'
i+=2
print(ans)
|
Title: Borze
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
Input Specification:
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
Output Specification:
Output the decoded ternary number. It can have leading zeroes.
Demo Input:
['.-.--\n', '--.\n', '-..-.--\n']
Demo Output:
['012', '20', '1012']
Note:
none
|
```python
code = input()
i = 0
ans = ""
while i < (len(code)):
if(code[i] == '.'):
ans += '0'
i+=1
else:
if(i < len(code) and code[i+1] == '.'):
ans+= '1'
else:
ans += '2'
i+=2
print(ans)
```
| 3.969
|
157
|
B
|
Trace
|
PROGRAMMING
| 1,000
|
[
"geometry",
"sortings"
] | null | null |
One day, as Sherlock Holmes was tracking down one very important criminal, he found a wonderful painting on the wall. This wall could be represented as a plane. The painting had several concentric circles that divided the wall into several parts. Some parts were painted red and all the other were painted blue. Besides, any two neighboring parts were painted different colors, that is, the red and the blue color were alternating, i. e. followed one after the other. The outer area of the wall (the area that lied outside all circles) was painted blue. Help Sherlock Holmes determine the total area of red parts of the wall.
Let us remind you that two circles are called concentric if their centers coincide. Several circles are called concentric if any two of them are concentric.
|
The first line contains the single integer *n* (1<=β€<=*n*<=β€<=100). The second line contains *n* space-separated integers *r**i* (1<=β€<=*r**i*<=β€<=1000) β the circles' radii. It is guaranteed that all circles are different.
|
Print the single real number β total area of the part of the wall that is painted red. The answer is accepted if absolute or relative error doesn't exceed 10<=-<=4.
|
[
"1\n1\n",
"3\n1 4 2\n"
] |
[
"3.1415926536\n",
"40.8407044967\n"
] |
In the first sample the picture is just one circle of radius 1. Inner part of the circle is painted red. The area of the red part equals ΟβΓβ1<sup class="upper-index">2</sup>β=βΟ.
In the second sample there are three circles of radii 1, 4 and 2. Outside part of the second circle is painted blue. Part between the second and the third circles is painted red. Part between the first and the third is painted blue. And, finally, the inner part of the first circle is painted red. Overall there are two red parts: the ring between the second and the third circles and the inner part of the first circle. Total area of the red parts is equal (ΟβΓβ4<sup class="upper-index">2</sup>β-βΟβΓβ2<sup class="upper-index">2</sup>)β+βΟβΓβ1<sup class="upper-index">2</sup>β=βΟβΓβ12β+βΟβ=β13Ο
| 1,000
|
[
{
"input": "1\n1",
"output": "3.1415926536"
},
{
"input": "3\n1 4 2",
"output": "40.8407044967"
},
{
"input": "4\n4 1 3 2",
"output": "31.4159265359"
},
{
"input": "4\n100 10 2 1",
"output": "31111.1920484997"
},
{
"input": "10\n10 9 8 7 6 5 4 3 2 1",
"output": "172.7875959474"
},
{
"input": "1\n1000",
"output": "3141592.6535897931"
},
{
"input": "8\n8 1 7 2 6 3 5 4",
"output": "113.0973355292"
},
{
"input": "100\n1000 999 998 997 996 995 994 993 992 991 990 989 988 987 986 985 984 983 982 981 980 979 978 977 976 975 974 973 972 971 970 969 968 967 966 965 964 963 962 961 960 959 958 957 956 955 954 953 952 951 950 949 948 947 946 945 944 943 942 941 940 939 938 937 936 935 934 933 932 931 930 929 928 927 926 925 924 923 922 921 920 919 918 917 916 915 914 913 912 911 910 909 908 907 906 905 904 903 902 901",
"output": "298608.3817237098"
},
{
"input": "6\n109 683 214 392 678 10",
"output": "397266.9574170437"
},
{
"input": "2\n151 400",
"output": "431023.3704798660"
},
{
"input": "6\n258 877 696 425 663 934",
"output": "823521.3902487604"
},
{
"input": "9\n635 707 108 234 52 180 910 203 782",
"output": "1100144.9065826489"
},
{
"input": "8\n885 879 891 428 522 176 135 983",
"output": "895488.9947571954"
},
{
"input": "3\n269 918 721",
"output": "1241695.6467754442"
},
{
"input": "7\n920 570 681 428 866 935 795",
"output": "1469640.1849419588"
},
{
"input": "2\n517 331",
"output": "495517.1260654109"
},
{
"input": "2\n457 898",
"output": "1877274.3981158488"
},
{
"input": "8\n872 704 973 612 183 274 739 253",
"output": "1780774.0965755312"
},
{
"input": "74\n652 446 173 457 760 847 670 25 196 775 998 279 656 809 883 148 969 884 792 502 641 800 663 938 362 339 545 608 107 184 834 666 149 458 864 72 199 658 618 987 126 723 806 643 689 958 626 904 944 415 427 498 628 331 636 261 281 276 478 220 513 595 510 384 354 561 469 462 799 449 747 109 903 456",
"output": "1510006.5089479341"
},
{
"input": "76\n986 504 673 158 87 332 124 218 714 235 212 122 878 370 938 81 686 323 386 348 410 468 875 107 50 960 82 834 234 663 651 422 794 633 294 771 945 607 146 913 950 858 297 88 882 725 247 872 645 749 799 987 115 394 380 382 971 429 593 426 652 353 351 233 868 598 889 116 71 376 916 464 414 976 138 903",
"output": "1528494.7817143100"
},
{
"input": "70\n12 347 748 962 514 686 192 159 990 4 10 788 602 542 946 215 523 727 799 717 955 796 529 465 897 103 181 515 495 153 710 179 747 145 16 585 943 998 923 708 156 399 770 547 775 285 9 68 713 722 570 143 913 416 663 624 925 218 64 237 797 138 942 213 188 818 780 840 480 758",
"output": "1741821.4892636713"
},
{
"input": "26\n656 508 45 189 561 366 96 486 547 386 703 570 780 689 264 26 11 74 466 76 421 48 982 886 215 650",
"output": "1818821.9252031571"
},
{
"input": "52\n270 658 808 249 293 707 700 78 791 167 92 772 807 502 830 991 945 102 968 376 556 578 326 980 688 368 280 853 646 256 666 638 424 737 321 996 925 405 199 680 953 541 716 481 727 143 577 919 892 355 346 298",
"output": "1272941.9273080483"
},
{
"input": "77\n482 532 200 748 692 697 171 863 586 547 301 149 326 812 147 698 303 691 527 805 681 387 619 947 598 453 167 799 840 508 893 688 643 974 998 341 804 230 538 669 271 404 477 759 943 596 949 235 880 160 151 660 832 82 969 539 708 889 258 81 224 655 790 144 462 582 646 256 445 52 456 920 67 819 631 484 534",
"output": "2045673.1891262225"
},
{
"input": "27\n167 464 924 575 775 97 944 390 297 315 668 296 533 829 851 406 702 366 848 512 71 197 321 900 544 529 116",
"output": "1573959.9105970615"
},
{
"input": "38\n488 830 887 566 720 267 583 102 65 200 884 220 263 858 510 481 316 804 754 568 412 166 374 869 356 977 145 421 500 58 664 252 745 70 381 927 670 772",
"output": "1479184.3434235646"
},
{
"input": "64\n591 387 732 260 840 397 563 136 571 876 831 953 799 493 579 13 559 872 53 678 256 232 969 993 847 14 837 365 547 997 604 199 834 529 306 443 739 49 19 276 343 835 904 588 900 870 439 576 975 955 518 117 131 347 800 83 432 882 869 709 32 950 314 450",
"output": "1258248.6984672088"
},
{
"input": "37\n280 281 169 68 249 389 977 101 360 43 448 447 368 496 125 507 747 392 338 270 916 150 929 428 118 266 589 470 774 852 263 644 187 817 808 58 637",
"output": "1495219.0323274869"
},
{
"input": "97\n768 569 306 968 437 779 227 561 412 60 44 807 234 645 169 858 580 396 343 145 842 723 416 80 456 247 81 150 297 116 760 964 312 558 101 850 549 650 299 868 121 435 579 705 118 424 302 812 970 397 659 565 916 183 933 459 6 593 518 717 326 305 744 470 75 981 824 221 294 324 194 293 251 446 481 215 338 861 528 829 921 945 540 89 450 178 24 460 990 392 148 219 934 615 932 340 937",
"output": "1577239.7333274092"
},
{
"input": "94\n145 703 874 425 277 652 239 496 458 658 339 842 564 699 893 352 625 980 432 121 798 872 499 859 850 721 414 825 543 843 304 111 342 45 219 311 50 748 465 902 781 822 504 985 919 656 280 310 917 438 464 527 491 713 906 329 635 777 223 810 501 535 156 252 806 112 971 719 103 443 165 98 579 554 244 996 221 560 301 51 977 422 314 858 528 772 448 626 185 194 536 66 577 677",
"output": "1624269.3753516484"
},
{
"input": "97\n976 166 649 81 611 927 480 231 998 711 874 91 969 521 531 414 993 790 317 981 9 261 437 332 173 573 904 777 882 990 658 878 965 64 870 896 271 732 431 53 761 943 418 602 708 949 930 130 512 240 363 458 673 319 131 784 224 48 919 126 208 212 911 59 677 535 450 273 479 423 79 807 336 18 72 290 724 28 123 605 287 228 350 897 250 392 885 655 746 417 643 114 813 378 355 635 905",
"output": "1615601.7212203942"
},
{
"input": "91\n493 996 842 9 748 178 1 807 841 519 796 998 84 670 778 143 707 208 165 893 154 943 336 150 761 881 434 112 833 55 412 682 552 945 758 189 209 600 354 325 440 844 410 20 136 665 88 791 688 17 539 821 133 236 94 606 483 446 429 60 960 476 915 134 137 852 754 908 276 482 117 252 297 903 981 203 829 811 471 135 188 667 710 393 370 302 874 872 551 457 692",
"output": "1806742.5014501044"
},
{
"input": "95\n936 736 17 967 229 607 589 291 242 244 29 698 800 566 630 667 90 416 11 94 812 838 668 520 678 111 490 823 199 973 681 676 683 721 262 896 682 713 402 691 874 44 95 704 56 322 822 887 639 433 406 35 988 61 176 496 501 947 440 384 372 959 577 370 754 802 1 945 427 116 746 408 308 391 397 730 493 183 203 871 831 862 461 565 310 344 504 378 785 137 279 123 475 138 415",
"output": "1611115.5269110680"
},
{
"input": "90\n643 197 42 218 582 27 66 704 195 445 641 675 285 639 503 686 242 327 57 955 848 287 819 992 756 749 363 48 648 736 580 117 752 921 923 372 114 313 202 337 64 497 399 25 883 331 24 871 917 8 517 486 323 529 325 92 891 406 864 402 263 773 931 253 625 31 17 271 140 131 232 586 893 525 846 54 294 562 600 801 214 55 768 683 389 738 314 284 328 804",
"output": "1569819.2914796301"
},
{
"input": "98\n29 211 984 75 333 96 840 21 352 168 332 433 130 944 215 210 620 442 363 877 91 491 513 955 53 82 351 19 998 706 702 738 770 453 344 117 893 590 723 662 757 16 87 546 312 669 568 931 224 374 927 225 751 962 651 587 361 250 256 240 282 600 95 64 384 589 813 783 39 918 412 648 506 283 886 926 443 173 946 241 310 33 622 565 261 360 547 339 943 367 354 25 479 743 385 485 896 741",
"output": "2042921.1539616778"
},
{
"input": "93\n957 395 826 67 185 4 455 880 683 654 463 84 258 878 553 592 124 585 9 133 20 609 43 452 725 125 801 537 700 685 771 155 566 376 19 690 383 352 174 208 177 416 304 1000 533 481 87 509 358 233 681 22 507 659 36 859 952 259 138 271 594 779 576 782 119 69 608 758 283 616 640 523 710 751 34 106 774 92 874 568 864 660 998 992 474 679 180 409 15 297 990 689 501",
"output": "1310703.8710041976"
},
{
"input": "97\n70 611 20 30 904 636 583 262 255 501 604 660 212 128 199 138 545 576 506 528 12 410 77 888 783 972 431 188 338 485 148 793 907 678 281 922 976 680 252 724 253 920 177 361 721 798 960 572 99 622 712 466 608 49 612 345 266 751 63 594 40 695 532 789 520 930 825 929 48 59 405 135 109 735 508 186 495 772 375 587 201 324 447 610 230 947 855 318 856 956 313 810 931 175 668 183 688",
"output": "1686117.9099228707"
},
{
"input": "96\n292 235 391 180 840 172 218 997 166 287 329 20 886 325 400 471 182 356 448 337 417 319 58 106 366 764 393 614 90 831 924 314 667 532 64 874 3 434 350 352 733 795 78 640 967 63 47 879 635 272 145 569 468 792 153 761 770 878 281 467 209 208 298 37 700 18 334 93 5 750 412 779 523 517 360 649 447 328 311 653 57 578 767 460 647 663 50 670 151 13 511 580 625 907 227 89",
"output": "1419726.5608617242"
},
{
"input": "100\n469 399 735 925 62 153 707 723 819 529 200 624 57 708 245 384 889 11 639 638 260 419 8 142 403 298 204 169 887 388 241 983 885 267 643 943 417 237 452 562 6 839 149 742 832 896 100 831 712 754 679 743 135 222 445 680 210 955 220 63 960 487 514 824 481 584 441 997 795 290 10 45 510 678 844 503 407 945 850 84 858 934 500 320 936 663 736 592 161 670 606 465 864 969 293 863 868 393 899 744",
"output": "1556458.0979239127"
},
{
"input": "100\n321 200 758 415 190 710 920 992 873 898 814 259 359 66 971 210 838 545 663 652 684 277 36 756 963 459 335 484 462 982 532 423 131 703 307 229 391 938 253 847 542 975 635 928 220 980 222 567 557 181 366 824 900 180 107 979 112 564 525 413 300 422 876 615 737 343 902 8 654 628 469 913 967 785 893 314 909 215 912 262 20 709 363 915 997 954 986 454 596 124 74 159 660 550 787 418 895 786 293 50",
"output": "1775109.8050211088"
},
{
"input": "100\n859 113 290 762 701 63 188 431 810 485 671 673 99 658 194 227 511 435 941 212 551 124 89 222 42 321 657 815 898 171 216 482 707 567 724 491 414 942 820 351 48 653 685 312 586 24 20 627 602 498 533 173 463 262 621 466 119 299 580 964 510 987 40 698 521 998 847 651 746 215 808 563 785 837 631 772 404 923 682 244 232 214 390 350 968 771 517 900 70 543 934 554 681 368 642 575 891 728 478 317",
"output": "1447969.4788174964"
},
{
"input": "100\n941 283 349 457 52 837 299 284 796 305 893 624 101 972 738 204 121 70 17 704 836 791 95 111 162 952 472 724 733 580 878 177 705 804 11 211 463 417 288 409 410 485 896 755 921 267 164 656 505 765 539 439 535 19 991 689 220 474 114 944 884 144 926 849 486 566 117 35 749 499 797 303 362 905 690 890 976 66 590 183 234 683 39 297 769 787 376 541 571 759 495 200 261 352 73 493 831 442 273 339",
"output": "1597889.4218394549"
},
{
"input": "100\n110 868 147 888 291 282 916 542 917 337 235 595 498 621 814 249 261 713 445 666 142 275 319 49 900 543 333 606 487 670 620 769 852 258 230 867 603 491 714 839 879 37 21 74 590 190 397 506 499 967 152 862 200 107 145 23 614 167 857 475 79 598 270 906 626 116 89 59 651 846 723 201 50 699 522 408 634 132 226 414 824 764 513 586 526 238 556 162 667 173 684 415 527 743 10 442 552 274 350 822",
"output": "1567230.6191330721"
},
{
"input": "100\n901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000",
"output": "298608.3817237098"
}
] | 1,368,135,612
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 44
| 78
| 0
|
from math import pi
input()
lst = [int(x) for x in input().split()]
lst.sort(reverse=True)
area = 0
l = len(lst)
for i in range(0, l, 2):
area += lst[i]*lst[i]
for i in range(1, l, 2):
area -= lst[i]*lst[i]
print(area*pi)
|
Title: Trace
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day, as Sherlock Holmes was tracking down one very important criminal, he found a wonderful painting on the wall. This wall could be represented as a plane. The painting had several concentric circles that divided the wall into several parts. Some parts were painted red and all the other were painted blue. Besides, any two neighboring parts were painted different colors, that is, the red and the blue color were alternating, i. e. followed one after the other. The outer area of the wall (the area that lied outside all circles) was painted blue. Help Sherlock Holmes determine the total area of red parts of the wall.
Let us remind you that two circles are called concentric if their centers coincide. Several circles are called concentric if any two of them are concentric.
Input Specification:
The first line contains the single integer *n* (1<=β€<=*n*<=β€<=100). The second line contains *n* space-separated integers *r**i* (1<=β€<=*r**i*<=β€<=1000) β the circles' radii. It is guaranteed that all circles are different.
Output Specification:
Print the single real number β total area of the part of the wall that is painted red. The answer is accepted if absolute or relative error doesn't exceed 10<=-<=4.
Demo Input:
['1\n1\n', '3\n1 4 2\n']
Demo Output:
['3.1415926536\n', '40.8407044967\n']
Note:
In the first sample the picture is just one circle of radius 1. Inner part of the circle is painted red. The area of the red part equals ΟβΓβ1<sup class="upper-index">2</sup>β=βΟ.
In the second sample there are three circles of radii 1, 4 and 2. Outside part of the second circle is painted blue. Part between the second and the third circles is painted red. Part between the first and the third is painted blue. And, finally, the inner part of the first circle is painted red. Overall there are two red parts: the ring between the second and the third circles and the inner part of the first circle. Total area of the red parts is equal (ΟβΓβ4<sup class="upper-index">2</sup>β-βΟβΓβ2<sup class="upper-index">2</sup>)β+βΟβΓβ1<sup class="upper-index">2</sup>β=βΟβΓβ12β+βΟβ=β13Ο
|
```python
from math import pi
input()
lst = [int(x) for x in input().split()]
lst.sort(reverse=True)
area = 0
l = len(lst)
for i in range(0, l, 2):
area += lst[i]*lst[i]
for i in range(1, l, 2):
area -= lst[i]*lst[i]
print(area*pi)
```
| 3
|
|
764
|
A
|
Taymyr is calling you
|
PROGRAMMING
| 800
|
[
"brute force",
"implementation",
"math"
] | null | null |
Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist.
Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute.
|
The only string contains three integersΒ β *n*, *m* and *z* (1<=β€<=*n*,<=*m*,<=*z*<=β€<=104).
|
Print single integerΒ β the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
|
[
"1 1 10\n",
"1 2 5\n",
"2 3 9\n"
] |
[
"10\n",
"2\n",
"1\n"
] |
Taymyr is a place in the north of Russia.
In the first test the artists come each minute, as well as the calls, so we need to kill all of them.
In the second test we need to kill artists which come on the second and the fourth minutes.
In the third testΒ β only the artist which comes on the sixth minute.
| 500
|
[
{
"input": "1 1 10",
"output": "10"
},
{
"input": "1 2 5",
"output": "2"
},
{
"input": "2 3 9",
"output": "1"
},
{
"input": "4 8 9",
"output": "1"
},
{
"input": "7 9 2",
"output": "0"
},
{
"input": "10000 10000 10000",
"output": "1"
},
{
"input": "24 22 9235",
"output": "34"
},
{
"input": "74 8 417",
"output": "1"
},
{
"input": "972 1 203",
"output": "0"
},
{
"input": "550 1 754",
"output": "1"
},
{
"input": "860 1 884",
"output": "1"
},
{
"input": "358 2 809",
"output": "2"
},
{
"input": "33 27 216",
"output": "0"
},
{
"input": "2940 1 9311",
"output": "3"
},
{
"input": "4624 1 1953",
"output": "0"
},
{
"input": "2696 2 7345",
"output": "2"
},
{
"input": "3443 2 6701",
"output": "0"
},
{
"input": "3 613 2275",
"output": "1"
},
{
"input": "1 10000 10000",
"output": "1"
},
{
"input": "10000 1 10000",
"output": "1"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "1 1 10000",
"output": "10000"
},
{
"input": "34 27 10000",
"output": "10"
},
{
"input": "2 2 9999",
"output": "4999"
},
{
"input": "2 2 1",
"output": "0"
},
{
"input": "6 4 36",
"output": "3"
},
{
"input": "33 6 3005",
"output": "45"
},
{
"input": "5 1 20",
"output": "4"
},
{
"input": "1 2 10",
"output": "5"
},
{
"input": "2 1 100",
"output": "50"
},
{
"input": "10 20 10000",
"output": "500"
},
{
"input": "8 12 12",
"output": "0"
}
] | 1,523,354,212
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 32
| 374
| 30,822,400
|
from fractions import gcd
n, m, z = [int(i) for i in input().split()]
c = int((n / gcd(n, m)) * m)
print(z // c)
|
Title: Taymyr is calling you
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist.
Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute.
Input Specification:
The only string contains three integersΒ β *n*, *m* and *z* (1<=β€<=*n*,<=*m*,<=*z*<=β€<=104).
Output Specification:
Print single integerΒ β the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
Demo Input:
['1 1 10\n', '1 2 5\n', '2 3 9\n']
Demo Output:
['10\n', '2\n', '1\n']
Note:
Taymyr is a place in the north of Russia.
In the first test the artists come each minute, as well as the calls, so we need to kill all of them.
In the second test we need to kill artists which come on the second and the fourth minutes.
In the third testΒ β only the artist which comes on the sixth minute.
|
```python
from fractions import gcd
n, m, z = [int(i) for i in input().split()]
c = int((n / gcd(n, m)) * m)
print(z // c)
```
| 3
|
|
1
|
A
|
Theatre Square
|
PROGRAMMING
| 1,000
|
[
"math"
] |
A. Theatre Square
|
1
|
256
|
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=Γ<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=Γ<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
|
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=β€<=<=*n*,<=*m*,<=*a*<=β€<=109).
|
Write the needed number of flagstones.
|
[
"6 6 4\n"
] |
[
"4\n"
] |
none
| 0
|
[
{
"input": "6 6 4",
"output": "4"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "2 1 1",
"output": "2"
},
{
"input": "1 2 1",
"output": "2"
},
{
"input": "2 2 1",
"output": "4"
},
{
"input": "2 1 2",
"output": "1"
},
{
"input": "1 1 3",
"output": "1"
},
{
"input": "2 3 4",
"output": "1"
},
{
"input": "1000000000 1000000000 1",
"output": "1000000000000000000"
},
{
"input": "12 13 4",
"output": "12"
},
{
"input": "222 332 5",
"output": "3015"
},
{
"input": "1000 1000 10",
"output": "10000"
},
{
"input": "1001 1000 10",
"output": "10100"
},
{
"input": "100 10001 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 999999999",
"output": "4"
},
{
"input": "1000000000 1000000000 192",
"output": "27126743055556"
},
{
"input": "1000000000 987654321 1",
"output": "987654321000000000"
},
{
"input": "456784567 1000000000 51",
"output": "175618850864484"
},
{
"input": "39916800 134217728 40320",
"output": "3295710"
}
] | 1,693,674,225
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 20
| 31
| 0
|
import math
def calculate_flagstones(n, m, a):
length_flagstones = math.ceil(n / a)
width_flagstones = math.ceil(m / a)
total_flagstones = length_flagstones * width_flagstones
return total_flagstones
n, m, a = map(int, input().split())
print(calculate_flagstones(n, m, a))
|
Title: Theatre Square
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=Γ<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=Γ<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
Input Specification:
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=β€<=<=*n*,<=*m*,<=*a*<=β€<=109).
Output Specification:
Write the needed number of flagstones.
Demo Input:
['6 6 4\n']
Demo Output:
['4\n']
Note:
none
|
```python
import math
def calculate_flagstones(n, m, a):
length_flagstones = math.ceil(n / a)
width_flagstones = math.ceil(m / a)
total_flagstones = length_flagstones * width_flagstones
return total_flagstones
n, m, a = map(int, input().split())
print(calculate_flagstones(n, m, a))
```
| 3.9845
|
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" β 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<=β€<=*n*<=β€<=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<=β€<=*x**i*,<=*y**i*,<=*z**i*<=β€<=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"
}
] | 1,673,975,847
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 81
| 124
| 614,400
|
import fileinput
import operator
from itertools import islice, starmap
def main() -> None:
"""Main function"""
with fileinput.input() as f:
n = int(next(f))
v = (0, 0, 0)
for line in islice(f, n):
w = tuple(map(int, line.split()))
v = tuple(starmap(operator.add, zip(v, w)))
print("YES" if v == (0, 0, 0) else "NO")
if __name__ == "__main__":
main()
|
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" β 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<=β€<=*n*<=β€<=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<=β€<=*x**i*,<=*y**i*,<=*z**i*<=β€<=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
import fileinput
import operator
from itertools import islice, starmap
def main() -> None:
"""Main function"""
with fileinput.input() as f:
n = int(next(f))
v = (0, 0, 0)
for line in islice(f, n):
w = tuple(map(int, line.split()))
v = tuple(starmap(operator.add, zip(v, w)))
print("YES" if v == (0, 0, 0) else "NO")
if __name__ == "__main__":
main()
```
| 3.967856
|
954
|
A
|
Diagonal Walking
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible.
In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left.
Your problem is to print the minimum possible length of the sequence of moves after the replacements.
|
The first line of the input contains one integer *n* (1<=β€<=*n*<=β€<=100)Β β the length of the sequence. The second line contains the sequence consisting of *n* characters U and R.
|
Print the minimum possible length of the sequence of moves after all replacements are done.
|
[
"5\nRUURU\n",
"17\nUUURRRRRUUURURUUU\n"
] |
[
"3\n",
"13\n"
] |
In the first test the shortened sequence of moves may be DUD (its length is 3).
In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
| 0
|
[
{
"input": "5\nRUURU",
"output": "3"
},
{
"input": "17\nUUURRRRRUUURURUUU",
"output": "13"
},
{
"input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUU",
"output": "100"
},
{
"input": "100\nRRURRUUUURURRRURRRRURRRRRRURRUURRRUUURUURURRURUURUURRUURUURRURURUUUUURUUUUUURRUUURRRURRURRRUURRUUUUR",
"output": "67"
},
{
"input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUURUUUUUUUUUUUUUUUUUUUUU",
"output": "99"
},
{
"input": "3\nRUR",
"output": "2"
},
{
"input": "1\nR",
"output": "1"
},
{
"input": "5\nRURUU",
"output": "3"
},
{
"input": "1\nU",
"output": "1"
},
{
"input": "2\nUR",
"output": "1"
},
{
"input": "23\nUUUUUUUUUUUUUUUUUUUUUUU",
"output": "23"
}
] | 1,638,583,178
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 11
| 78
| 0
|
n=int(input())
s=input()
c=[]
for i in range(n):
c.append(s[i])
for i in range(n-1):
if c[i]=="U" and c[i+1]=="R":
c[i]="D"
c[i+1]="D"
if c[i]=="R" and c[i+1]=="U":
c[i]="D"
c[i+1]="D"
print(n-((c.count("D"))//2))
|
Title: Diagonal Walking
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible.
In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left.
Your problem is to print the minimum possible length of the sequence of moves after the replacements.
Input Specification:
The first line of the input contains one integer *n* (1<=β€<=*n*<=β€<=100)Β β the length of the sequence. The second line contains the sequence consisting of *n* characters U and R.
Output Specification:
Print the minimum possible length of the sequence of moves after all replacements are done.
Demo Input:
['5\nRUURU\n', '17\nUUURRRRRUUURURUUU\n']
Demo Output:
['3\n', '13\n']
Note:
In the first test the shortened sequence of moves may be DUD (its length is 3).
In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
|
```python
n=int(input())
s=input()
c=[]
for i in range(n):
c.append(s[i])
for i in range(n-1):
if c[i]=="U" and c[i+1]=="R":
c[i]="D"
c[i+1]="D"
if c[i]=="R" and c[i+1]=="U":
c[i]="D"
c[i+1]="D"
print(n-((c.count("D"))//2))
```
| 3
|
|
143
|
A
|
Help Vasilisa the Wise 2
|
PROGRAMMING
| 1,000
|
[
"brute force",
"math"
] | null | null |
Vasilisa the Wise from the Kingdom of Far Far Away got a magic box with a secret as a present from her friend Hellawisa the Wise from the Kingdom of A Little Closer. However, Vasilisa the Wise does not know what the box's secret is, since she cannot open it again. She hopes that you will help her one more time with that.
The box's lock looks as follows: it contains 4 identical deepenings for gems as a 2<=Γ<=2 square, and some integer numbers are written at the lock's edge near the deepenings. The example of a lock is given on the picture below.
The box is accompanied with 9 gems. Their shapes match the deepenings' shapes and each gem contains one number from 1 to 9 (each number is written on exactly one gem). The box will only open after it is decorated with gems correctly: that is, each deepening in the lock should be filled with exactly one gem. Also, the sums of numbers in the square's rows, columns and two diagonals of the square should match the numbers written at the lock's edge. For example, the above lock will open if we fill the deepenings with gems with numbers as is shown on the picture below.
Now Vasilisa the Wise wants to define, given the numbers on the box's lock, which gems she should put in the deepenings to open the box. Help Vasilisa to solve this challenging task.
|
The input contains numbers written on the edges of the lock of the box. The first line contains space-separated integers *r*1 and *r*2 that define the required sums of numbers in the rows of the square. The second line contains space-separated integers *c*1 and *c*2 that define the required sums of numbers in the columns of the square. The third line contains space-separated integers *d*1 and *d*2 that define the required sums of numbers on the main and on the side diagonals of the square (1<=β€<=*r*1,<=*r*2,<=*c*1,<=*c*2,<=*d*1,<=*d*2<=β€<=20). Correspondence between the above 6 variables and places where they are written is shown on the picture below. For more clarifications please look at the second sample test that demonstrates the example given in the problem statement.
|
Print the scheme of decorating the box with stones: two lines containing two space-separated integers from 1 to 9. The numbers should be pairwise different. If there is no solution for the given lock, then print the single number "-1" (without the quotes).
If there are several solutions, output any.
|
[
"3 7\n4 6\n5 5\n",
"11 10\n13 8\n5 16\n",
"1 2\n3 4\n5 6\n",
"10 10\n10 10\n10 10\n"
] |
[
"1 2\n3 4\n",
"4 7\n9 1\n",
"-1\n",
"-1\n"
] |
Pay attention to the last test from the statement: it is impossible to open the box because for that Vasilisa the Wise would need 4 identical gems containing number "5". However, Vasilisa only has one gem with each number from 1 to 9.
| 500
|
[
{
"input": "3 7\n4 6\n5 5",
"output": "1 2\n3 4"
},
{
"input": "11 10\n13 8\n5 16",
"output": "4 7\n9 1"
},
{
"input": "1 2\n3 4\n5 6",
"output": "-1"
},
{
"input": "10 10\n10 10\n10 10",
"output": "-1"
},
{
"input": "5 13\n8 10\n11 7",
"output": "3 2\n5 8"
},
{
"input": "12 17\n10 19\n13 16",
"output": "-1"
},
{
"input": "11 11\n17 5\n12 10",
"output": "9 2\n8 3"
},
{
"input": "12 11\n11 12\n16 7",
"output": "-1"
},
{
"input": "5 9\n7 7\n8 6",
"output": "3 2\n4 5"
},
{
"input": "10 7\n4 13\n11 6",
"output": "-1"
},
{
"input": "18 10\n16 12\n12 16",
"output": "-1"
},
{
"input": "13 6\n10 9\n6 13",
"output": "-1"
},
{
"input": "14 16\n16 14\n18 12",
"output": "-1"
},
{
"input": "16 10\n16 10\n12 14",
"output": "-1"
},
{
"input": "11 9\n12 8\n11 9",
"output": "-1"
},
{
"input": "5 14\n10 9\n10 9",
"output": "-1"
},
{
"input": "2 4\n1 5\n3 3",
"output": "-1"
},
{
"input": "17 16\n14 19\n18 15",
"output": "-1"
},
{
"input": "12 12\n14 10\n16 8",
"output": "9 3\n5 7"
},
{
"input": "15 11\n16 10\n9 17",
"output": "7 8\n9 2"
},
{
"input": "8 10\n9 9\n13 5",
"output": "6 2\n3 7"
},
{
"input": "13 7\n10 10\n5 15",
"output": "4 9\n6 1"
},
{
"input": "14 11\n9 16\n16 9",
"output": "-1"
},
{
"input": "12 8\n14 6\n8 12",
"output": "-1"
},
{
"input": "10 6\n6 10\n4 12",
"output": "-1"
},
{
"input": "10 8\n10 8\n4 14",
"output": "-1"
},
{
"input": "14 13\n9 18\n14 13",
"output": "-1"
},
{
"input": "9 14\n8 15\n8 15",
"output": "-1"
},
{
"input": "3 8\n2 9\n6 5",
"output": "-1"
},
{
"input": "14 17\n18 13\n15 16",
"output": "-1"
},
{
"input": "16 14\n15 15\n17 13",
"output": "9 7\n6 8"
},
{
"input": "14 11\n16 9\n13 12",
"output": "9 5\n7 4"
},
{
"input": "13 10\n11 12\n7 16",
"output": "4 9\n7 3"
},
{
"input": "14 8\n11 11\n13 9",
"output": "8 6\n3 5"
},
{
"input": "12 11\n13 10\n10 13",
"output": "-1"
},
{
"input": "6 5\n2 9\n5 6",
"output": "-1"
},
{
"input": "7 8\n8 7\n12 3",
"output": "-1"
},
{
"input": "7 11\n7 11\n6 12",
"output": "-1"
},
{
"input": "8 5\n11 2\n8 5",
"output": "-1"
},
{
"input": "10 16\n14 12\n14 12",
"output": "-1"
},
{
"input": "7 9\n4 12\n5 11",
"output": "-1"
},
{
"input": "11 13\n19 5\n12 12",
"output": "-1"
},
{
"input": "8 12\n5 15\n11 9",
"output": "2 6\n3 9"
},
{
"input": "16 5\n13 8\n10 11",
"output": "9 7\n4 1"
},
{
"input": "3 14\n8 9\n10 7",
"output": "2 1\n6 8"
},
{
"input": "12 14\n11 15\n9 17",
"output": "3 9\n8 6"
},
{
"input": "13 7\n9 11\n14 6",
"output": "8 5\n1 6"
},
{
"input": "13 8\n15 6\n11 10",
"output": "9 4\n6 2"
},
{
"input": "9 6\n5 10\n3 12",
"output": "1 8\n4 2"
},
{
"input": "12 7\n5 14\n8 11",
"output": "3 9\n2 5"
},
{
"input": "9 12\n3 17\n10 10",
"output": "-1"
},
{
"input": "3 8\n4 6\n5 5",
"output": "-1"
}
] | 1,682,349,806
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 52
| 92
| 0
|
row1 , row2 = map(int,input().split())
col1 , col2 = map(int,input().split())
dia1 , dia2 = map(int,input().split())
message=1
b1 , b2 = 0,0
b3 , b4 = 0,0
for a in range(1,10):
b1 = a
for b in range(1,10):
b2 = b
for c in range(1,10):
b3 = c
for d in range(1,10):
b4 = d
if b1!=b2 and b1!=b3 and b1!=b4 and b2!=b3 and b2!=b4 and b3!=b4:
if b1+b4==dia1 and b1+b2==row1 and b1+b3==col1 and b2+b4==col2 and b2+b3==dia2 and b3+b4==row2:
print(b1,b2)
print(b3,b4)
message=0
if message==1:
print(-1)
|
Title: Help Vasilisa the Wise 2
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasilisa the Wise from the Kingdom of Far Far Away got a magic box with a secret as a present from her friend Hellawisa the Wise from the Kingdom of A Little Closer. However, Vasilisa the Wise does not know what the box's secret is, since she cannot open it again. She hopes that you will help her one more time with that.
The box's lock looks as follows: it contains 4 identical deepenings for gems as a 2<=Γ<=2 square, and some integer numbers are written at the lock's edge near the deepenings. The example of a lock is given on the picture below.
The box is accompanied with 9 gems. Their shapes match the deepenings' shapes and each gem contains one number from 1 to 9 (each number is written on exactly one gem). The box will only open after it is decorated with gems correctly: that is, each deepening in the lock should be filled with exactly one gem. Also, the sums of numbers in the square's rows, columns and two diagonals of the square should match the numbers written at the lock's edge. For example, the above lock will open if we fill the deepenings with gems with numbers as is shown on the picture below.
Now Vasilisa the Wise wants to define, given the numbers on the box's lock, which gems she should put in the deepenings to open the box. Help Vasilisa to solve this challenging task.
Input Specification:
The input contains numbers written on the edges of the lock of the box. The first line contains space-separated integers *r*1 and *r*2 that define the required sums of numbers in the rows of the square. The second line contains space-separated integers *c*1 and *c*2 that define the required sums of numbers in the columns of the square. The third line contains space-separated integers *d*1 and *d*2 that define the required sums of numbers on the main and on the side diagonals of the square (1<=β€<=*r*1,<=*r*2,<=*c*1,<=*c*2,<=*d*1,<=*d*2<=β€<=20). Correspondence between the above 6 variables and places where they are written is shown on the picture below. For more clarifications please look at the second sample test that demonstrates the example given in the problem statement.
Output Specification:
Print the scheme of decorating the box with stones: two lines containing two space-separated integers from 1 to 9. The numbers should be pairwise different. If there is no solution for the given lock, then print the single number "-1" (without the quotes).
If there are several solutions, output any.
Demo Input:
['3 7\n4 6\n5 5\n', '11 10\n13 8\n5 16\n', '1 2\n3 4\n5 6\n', '10 10\n10 10\n10 10\n']
Demo Output:
['1 2\n3 4\n', '4 7\n9 1\n', '-1\n', '-1\n']
Note:
Pay attention to the last test from the statement: it is impossible to open the box because for that Vasilisa the Wise would need 4 identical gems containing number "5". However, Vasilisa only has one gem with each number from 1 to 9.
|
```python
row1 , row2 = map(int,input().split())
col1 , col2 = map(int,input().split())
dia1 , dia2 = map(int,input().split())
message=1
b1 , b2 = 0,0
b3 , b4 = 0,0
for a in range(1,10):
b1 = a
for b in range(1,10):
b2 = b
for c in range(1,10):
b3 = c
for d in range(1,10):
b4 = d
if b1!=b2 and b1!=b3 and b1!=b4 and b2!=b3 and b2!=b4 and b3!=b4:
if b1+b4==dia1 and b1+b2==row1 and b1+b3==col1 and b2+b4==col2 and b2+b3==dia2 and b3+b4==row2:
print(b1,b2)
print(b3,b4)
message=0
if message==1:
print(-1)
```
| 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<=β€<=*n*<=β€<=100) β the number of USB flash drives.
The second line contains positive integer *m* (1<=β€<=*m*<=β€<=105) β the size of Sean's file.
Each of the next *n* lines contains positive integer *a**i* (1<=β€<=*a**i*<=β€<=1000) β 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 β 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 β 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"
}
] | 1,591,077,012
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 34
| 109
| 0
|
n = int(input())
m = int(input())
l = []
for i in range(n):
s = int(input())
l.append(s)
a =0
while(m>0):
a+=1
k = max(l)
c = l.index(k)
m -=k
l.pop(c)
if(m<=0):
break
print(a)
|
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<=β€<=*n*<=β€<=100) β the number of USB flash drives.
The second line contains positive integer *m* (1<=β€<=*m*<=β€<=105) β the size of Sean's file.
Each of the next *n* lines contains positive integer *a**i* (1<=β€<=*a**i*<=β€<=1000) β 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 β 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 β the first or the second.
|
```python
n = int(input())
m = int(input())
l = []
for i in range(n):
s = int(input())
l.append(s)
a =0
while(m>0):
a+=1
k = max(l)
c = l.index(k)
m -=k
l.pop(c)
if(m<=0):
break
print(a)
```
| 3
|
|
25
|
A
|
IQ test
|
PROGRAMMING
| 1,300
|
[
"brute force"
] |
A. IQ test
|
2
|
256
|
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
|
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
|
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
|
[
"5\n2 4 7 8 10\n",
"4\n1 2 1 1\n"
] |
[
"3\n",
"2\n"
] |
none
| 0
|
[
{
"input": "5\n2 4 7 8 10",
"output": "3"
},
{
"input": "4\n1 2 1 1",
"output": "2"
},
{
"input": "3\n1 2 2",
"output": "1"
},
{
"input": "3\n100 99 100",
"output": "2"
},
{
"input": "3\n5 3 2",
"output": "3"
},
{
"input": "4\n43 28 1 91",
"output": "2"
},
{
"input": "4\n75 13 94 77",
"output": "3"
},
{
"input": "4\n97 8 27 3",
"output": "2"
},
{
"input": "10\n95 51 12 91 85 3 1 31 25 7",
"output": "3"
},
{
"input": "20\n88 96 66 51 14 88 2 92 18 72 18 88 20 30 4 82 90 100 24 46",
"output": "4"
},
{
"input": "30\n20 94 56 50 10 98 52 32 14 22 24 60 4 8 98 46 34 68 82 82 98 90 50 20 78 49 52 94 64 36",
"output": "26"
},
{
"input": "50\n79 27 77 57 37 45 27 49 65 33 57 21 71 19 75 85 65 61 23 97 85 9 23 1 9 3 99 77 77 21 79 69 15 37 15 7 93 81 13 89 91 31 45 93 15 97 55 80 85 83",
"output": "48"
},
{
"input": "60\n46 11 73 65 3 69 3 53 43 53 97 47 55 93 31 75 35 3 9 73 23 31 3 81 91 79 61 21 15 11 11 11 81 7 83 75 39 87 83 59 89 55 93 27 49 67 67 29 1 93 11 17 9 19 35 21 63 31 31 25",
"output": "1"
},
{
"input": "70\n28 42 42 92 64 54 22 38 38 78 62 38 4 38 14 66 4 92 66 58 94 26 4 44 41 88 48 82 44 26 74 44 48 4 16 92 34 38 26 64 94 4 30 78 50 54 12 90 8 16 80 98 28 100 74 50 36 42 92 18 76 98 8 22 2 50 58 50 64 46",
"output": "25"
},
{
"input": "100\n43 35 79 53 13 91 91 45 65 83 57 9 42 39 85 45 71 51 61 59 31 13 63 39 25 21 79 39 91 67 21 61 97 75 93 83 29 79 59 97 11 37 63 51 39 55 91 23 21 17 47 23 35 75 49 5 69 99 5 7 41 17 25 89 15 79 21 63 53 81 43 91 59 91 69 99 85 15 91 51 49 37 65 7 89 81 21 93 61 63 97 93 45 17 13 69 57 25 75 73",
"output": "13"
},
{
"input": "100\n50 24 68 60 70 30 52 22 18 74 68 98 20 82 4 46 26 68 100 78 84 58 74 98 38 88 68 86 64 80 82 100 20 22 98 98 52 6 94 10 48 68 2 18 38 22 22 82 44 20 66 72 36 58 64 6 36 60 4 96 76 64 12 90 10 58 64 60 74 28 90 26 24 60 40 58 2 16 76 48 58 36 82 60 24 44 4 78 28 38 8 12 40 16 38 6 66 24 31 76",
"output": "99"
},
{
"input": "100\n47 48 94 48 14 18 94 36 96 22 12 30 94 20 48 98 40 58 2 94 8 36 98 18 98 68 2 60 76 38 18 100 8 72 100 68 2 86 92 72 58 16 48 14 6 58 72 76 6 88 80 66 20 28 74 62 86 68 90 86 2 56 34 38 56 90 4 8 76 44 32 86 12 98 38 34 54 92 70 94 10 24 82 66 90 58 62 2 32 58 100 22 58 72 2 22 68 72 42 14",
"output": "1"
},
{
"input": "99\n38 20 68 60 84 16 28 88 60 48 80 28 4 92 70 60 46 46 20 34 12 100 76 2 40 10 8 86 6 80 50 66 12 34 14 28 26 70 46 64 34 96 10 90 98 96 56 88 50 74 70 94 2 94 24 66 68 46 22 30 6 10 64 32 88 14 98 100 64 58 50 18 50 50 8 38 8 16 54 2 60 54 62 84 92 98 4 72 66 26 14 88 99 16 10 6 88 56 22",
"output": "93"
},
{
"input": "99\n50 83 43 89 53 47 69 1 5 37 63 87 95 15 55 95 75 89 33 53 89 75 93 75 11 85 49 29 11 97 49 67 87 11 25 37 97 73 67 49 87 43 53 97 43 29 53 33 45 91 37 73 39 49 59 5 21 43 87 35 5 63 89 57 63 47 29 99 19 85 13 13 3 13 43 19 5 9 61 51 51 57 15 89 13 97 41 13 99 79 13 27 97 95 73 33 99 27 23",
"output": "1"
},
{
"input": "98\n61 56 44 30 58 14 20 24 88 28 46 56 96 52 58 42 94 50 46 30 46 80 72 88 68 16 6 60 26 90 10 98 76 20 56 40 30 16 96 20 88 32 62 30 74 58 36 76 60 4 24 36 42 54 24 92 28 14 2 74 86 90 14 52 34 82 40 76 8 64 2 56 10 8 78 16 70 86 70 42 70 74 22 18 76 98 88 28 62 70 36 72 20 68 34 48 80 98",
"output": "1"
},
{
"input": "98\n66 26 46 42 78 32 76 42 26 82 8 12 4 10 24 26 64 44 100 46 94 64 30 18 88 28 8 66 30 82 82 28 74 52 62 80 80 60 94 86 64 32 44 88 92 20 12 74 94 28 34 58 4 22 16 10 94 76 82 58 40 66 22 6 30 32 92 54 16 76 74 98 18 48 48 30 92 2 16 42 84 74 30 60 64 52 50 26 16 86 58 96 79 60 20 62 82 94",
"output": "93"
},
{
"input": "95\n9 31 27 93 17 77 75 9 9 53 89 39 51 99 5 1 11 39 27 49 91 17 27 79 81 71 37 75 35 13 93 4 99 55 85 11 23 57 5 43 5 61 15 35 23 91 3 81 99 85 43 37 39 27 5 67 7 33 75 59 13 71 51 27 15 93 51 63 91 53 43 99 25 47 17 71 81 15 53 31 59 83 41 23 73 25 91 91 13 17 25 13 55 57 29",
"output": "32"
},
{
"input": "100\n91 89 81 45 53 1 41 3 77 93 55 97 55 97 87 27 69 95 73 41 93 21 75 35 53 56 5 51 87 59 91 67 33 3 99 45 83 17 97 47 75 97 7 89 17 99 23 23 81 25 55 97 27 35 69 5 77 35 93 19 55 59 37 21 31 37 49 41 91 53 73 69 7 37 37 39 17 71 7 97 55 17 47 23 15 73 31 39 57 37 9 5 61 41 65 57 77 79 35 47",
"output": "26"
},
{
"input": "99\n38 56 58 98 80 54 26 90 14 16 78 92 52 74 40 30 84 14 44 80 16 90 98 68 26 24 78 72 42 16 84 40 14 44 2 52 50 2 12 96 58 66 8 80 44 52 34 34 72 98 74 4 66 74 56 21 8 38 76 40 10 22 48 32 98 34 12 62 80 68 64 82 22 78 58 74 20 22 48 56 12 38 32 72 6 16 74 24 94 84 26 38 18 24 76 78 98 94 72",
"output": "56"
},
{
"input": "100\n44 40 6 40 56 90 98 8 36 64 76 86 98 76 36 92 6 30 98 70 24 98 96 60 24 82 88 68 86 96 34 42 58 10 40 26 56 10 88 58 70 32 24 28 14 82 52 12 62 36 70 60 52 34 74 30 78 76 10 16 42 94 66 90 70 38 52 12 58 22 98 96 14 68 24 70 4 30 84 98 8 50 14 52 66 34 100 10 28 100 56 48 38 12 38 14 91 80 70 86",
"output": "97"
},
{
"input": "100\n96 62 64 20 90 46 56 90 68 36 30 56 70 28 16 64 94 34 6 32 34 50 94 22 90 32 40 2 72 10 88 38 28 92 20 26 56 80 4 100 100 90 16 74 74 84 8 2 30 20 80 32 16 46 92 56 42 12 96 64 64 42 64 58 50 42 74 28 2 4 36 32 70 50 54 92 70 16 45 76 28 16 18 50 48 2 62 94 4 12 52 52 4 100 70 60 82 62 98 42",
"output": "79"
},
{
"input": "99\n14 26 34 68 90 58 50 36 8 16 18 6 2 74 54 20 36 84 32 50 52 2 26 24 3 64 20 10 54 26 66 44 28 72 4 96 78 90 96 86 68 28 94 4 12 46 100 32 22 36 84 32 44 94 76 94 4 52 12 30 74 4 34 64 58 72 44 16 70 56 54 8 14 74 8 6 58 62 98 54 14 40 80 20 36 72 28 98 20 58 40 52 90 64 22 48 54 70 52",
"output": "25"
},
{
"input": "95\n82 86 30 78 6 46 80 66 74 72 16 24 18 52 52 38 60 36 86 26 62 28 22 46 96 26 94 84 20 46 66 88 76 32 12 86 74 18 34 88 4 48 94 6 58 6 100 82 4 24 88 32 54 98 34 48 6 76 42 88 42 28 100 4 22 2 10 66 82 54 98 20 60 66 38 98 32 47 86 58 6 100 12 46 2 42 8 84 78 28 24 70 34 28 86",
"output": "78"
},
{
"input": "90\n40 50 8 42 76 24 58 42 26 68 20 48 54 12 34 84 14 36 32 88 6 50 96 56 20 92 48 16 40 34 96 46 20 84 30 50 20 98 8 44 96 42 8 76 70 38 84 30 40 88 84 72 2 22 52 58 16 62 100 66 80 40 50 32 14 62 88 72 22 99 76 50 84 82 8 82 98 46 26 40 2 98 18 78 30 72 70 18 34 68",
"output": "70"
},
{
"input": "80\n81 43 87 1 55 43 53 61 27 19 43 13 89 9 33 83 75 55 97 71 91 37 95 5 21 69 81 93 95 69 31 83 55 7 97 7 79 57 8 61 27 85 49 1 15 97 63 79 29 73 41 85 5 41 31 93 67 11 63 59 15 99 91 77 43 69 23 23 81 73 19 1 67 51 1 75 99 67 3 81",
"output": "39"
},
{
"input": "98\n13 83 61 27 35 1 85 95 97 73 95 65 73 45 5 43 27 83 91 19 11 3 85 59 9 39 69 23 45 7 51 85 5 71 5 95 1 51 75 3 43 57 3 11 33 71 21 99 47 41 87 39 71 87 31 85 91 49 83 5 49 85 47 91 55 99 33 23 31 23 23 73 29 77 55 31 25 5 81 49 91 15 15 39 87 5 9 40 69 47 29 33 11 21 49 79 51 83",
"output": "88"
},
{
"input": "3\n100 100 1",
"output": "3"
}
] | 1,673,033,681
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 32
| 124
| 0
|
n=int(input())
a=list(map(int,input().split()))
for i in range(1,n):
if a[i-1]%2!=a[i]%2:
if i>=2:
l=a[i-2]
else:
l=a[i+1]
if l%2!=a[i-1]%2:
print(i)
else:
print(i+1)
break
|
Title: IQ test
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
Input Specification:
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
Output Specification:
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
Demo Input:
['5\n2 4 7 8 10\n', '4\n1 2 1 1\n']
Demo Output:
['3\n', '2\n']
Note:
none
|
```python
n=int(input())
a=list(map(int,input().split()))
for i in range(1,n):
if a[i-1]%2!=a[i]%2:
if i>=2:
l=a[i-2]
else:
l=a[i+1]
if l%2!=a[i-1]%2:
print(i)
else:
print(i+1)
break
```
| 3.969
|
224
|
A
|
Parallelepiped
|
PROGRAMMING
| 1,100
|
[
"brute force",
"geometry",
"math"
] | null | null |
You've got a rectangular parallelepiped with integer edge lengths. You know the areas of its three faces that have a common vertex. Your task is to find the sum of lengths of all 12 edges of this parallelepiped.
|
The first and the single line contains three space-separated integers β the areas of the parallelepiped's faces. The area's values are positive (<=><=0) and do not exceed 104. It is guaranteed that there exists at least one parallelepiped that satisfies the problem statement.
|
Print a single number β the sum of all edges of the parallelepiped.
|
[
"1 1 1\n",
"4 6 6\n"
] |
[
"12\n",
"28\n"
] |
In the first sample the parallelepiped has sizes 1βΓβ1βΓβ1, in the second oneΒ β 2βΓβ2βΓβ3.
| 500
|
[
{
"input": "1 1 1",
"output": "12"
},
{
"input": "4 6 6",
"output": "28"
},
{
"input": "20 10 50",
"output": "68"
},
{
"input": "9 4 36",
"output": "56"
},
{
"input": "324 9 36",
"output": "184"
},
{
"input": "1333 93 129",
"output": "308"
},
{
"input": "1022 584 112",
"output": "380"
},
{
"input": "66 174 319",
"output": "184"
},
{
"input": "912 276 1748",
"output": "444"
},
{
"input": "65 156 60",
"output": "120"
},
{
"input": "1 10000 10000",
"output": "40008"
},
{
"input": "1485 55 27",
"output": "332"
},
{
"input": "152 108 4104",
"output": "528"
},
{
"input": "1656 6900 1350",
"output": "740"
},
{
"input": "12 14 42",
"output": "60"
},
{
"input": "615 18 1230",
"output": "856"
},
{
"input": "680 60 408",
"output": "336"
},
{
"input": "644 966 6",
"output": "1308"
},
{
"input": "1 432 432",
"output": "1736"
},
{
"input": "2239 2239 1",
"output": "8964"
},
{
"input": "4106 8212 2",
"output": "16436"
},
{
"input": "10000 10000 10000",
"output": "1200"
},
{
"input": "3623 3623 1",
"output": "14500"
},
{
"input": "9801 9801 9801",
"output": "1188"
},
{
"input": "10000 1 10000",
"output": "40008"
},
{
"input": "9 9 9",
"output": "36"
},
{
"input": "9801 9702 9702",
"output": "1184"
}
] | 1,619,619,756
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 27
| 124
| 0
|
from itertools import permutations
def solve(arr):
perm = permutations(arr)
for i in list(perm):
v = (i[1]*i[2]/i[0])**.5
if v.is_integer() :
return int(4*v + 4*i[1]//v + 4*i[2]//v)
def main():
arr = list(map(int, input().split(" ")))
print(solve(arr))
main()
|
Title: Parallelepiped
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You've got a rectangular parallelepiped with integer edge lengths. You know the areas of its three faces that have a common vertex. Your task is to find the sum of lengths of all 12 edges of this parallelepiped.
Input Specification:
The first and the single line contains three space-separated integers β the areas of the parallelepiped's faces. The area's values are positive (<=><=0) and do not exceed 104. It is guaranteed that there exists at least one parallelepiped that satisfies the problem statement.
Output Specification:
Print a single number β the sum of all edges of the parallelepiped.
Demo Input:
['1 1 1\n', '4 6 6\n']
Demo Output:
['12\n', '28\n']
Note:
In the first sample the parallelepiped has sizes 1βΓβ1βΓβ1, in the second oneΒ β 2βΓβ2βΓβ3.
|
```python
from itertools import permutations
def solve(arr):
perm = permutations(arr)
for i in list(perm):
v = (i[1]*i[2]/i[0])**.5
if v.is_integer() :
return int(4*v + 4*i[1]//v + 4*i[2]//v)
def main():
arr = list(map(int, input().split(" ")))
print(solve(arr))
main()
```
| 3
|
|
285
|
C
|
Building Permutation
|
PROGRAMMING
| 1,200
|
[
"greedy",
"implementation",
"sortings"
] | null | null |
Permutation *p* is an ordered set of integers *p*1,<=<=*p*2,<=<=...,<=<=*p**n*, consisting of *n* distinct positive integers, each of them doesn't exceed *n*. We'll denote the *i*-th element of permutation *p* as *p**i*. We'll call number *n* the size or the length of permutation *p*1,<=<=*p*2,<=<=...,<=<=*p**n*.
You have a sequence of integers *a*1,<=*a*2,<=...,<=*a**n*. In one move, you are allowed to decrease or increase any number by one. Count the minimum number of moves, needed to build a permutation from this sequence.
|
The first line contains integer *n* (1<=β€<=*n*<=β€<=3Β·105) β the size of the sought permutation. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (<=-<=109<=β€<=*a**i*<=β€<=109).
|
Print a single number β the minimum number of moves.
Please, do not use the %lld specifier to read or write 64-bit integers in C++. It is preferred to use the cin, cout streams or the %I64d specifier.
|
[
"2\n3 0\n",
"3\n-1 -1 2\n"
] |
[
"2\n",
"6\n"
] |
In the first sample you should decrease the first number by one and then increase the second number by one. The resulting permutation is (2,β1).
In the second sample you need 6 moves to build permutation (1,β3,β2).
| 1,500
|
[
{
"input": "2\n3 0",
"output": "2"
},
{
"input": "3\n-1 -1 2",
"output": "6"
},
{
"input": "5\n-3 5 -3 3 3",
"output": "10"
},
{
"input": "10\n9 6 -2 4 1 1 1 9 6 2",
"output": "18"
},
{
"input": "9\n2 0 0 6 5 4 1 9 3",
"output": "15"
},
{
"input": "100\n-77 57 -95 -23 53 -28 82 -83 38 -73 85 28 25 6 -43 4 -10 -30 -9 -92 14 34 -93 61 36 -100 90 -68 28 16 100 -3 97 30 36 -55 62 -62 53 74 -50 -23 67 11 22 -30 -19 83 7 84 43 90 -65 -75 -15 97 90 15 66 2 13 -91 91 -44 46 51 51 -58 95 77 20 30 76 79 91 60 76 2 82 42 -93 94 -57 88 65 -95 -66 100 -9 33 -67 54 -99 97 53 13 54 66 60 -48",
"output": "3459"
}
] | 1,611,476,233
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 33
| 436
| 24,473,600
|
def solve (n,seq) :
seq.sort()
start = 1
moves = 0
while start <= n :
if seq[start-1] != start :
moves += abs(seq[start-1] - start)
start += 1
return moves
n = int(input())
seq = list(map(int,input().split()))
print (solve(n,seq))
|
Title: Building Permutation
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Permutation *p* is an ordered set of integers *p*1,<=<=*p*2,<=<=...,<=<=*p**n*, consisting of *n* distinct positive integers, each of them doesn't exceed *n*. We'll denote the *i*-th element of permutation *p* as *p**i*. We'll call number *n* the size or the length of permutation *p*1,<=<=*p*2,<=<=...,<=<=*p**n*.
You have a sequence of integers *a*1,<=*a*2,<=...,<=*a**n*. In one move, you are allowed to decrease or increase any number by one. Count the minimum number of moves, needed to build a permutation from this sequence.
Input Specification:
The first line contains integer *n* (1<=β€<=*n*<=β€<=3Β·105) β the size of the sought permutation. The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (<=-<=109<=β€<=*a**i*<=β€<=109).
Output Specification:
Print a single number β the minimum number of moves.
Please, do not use the %lld specifier to read or write 64-bit integers in C++. It is preferred to use the cin, cout streams or the %I64d specifier.
Demo Input:
['2\n3 0\n', '3\n-1 -1 2\n']
Demo Output:
['2\n', '6\n']
Note:
In the first sample you should decrease the first number by one and then increase the second number by one. The resulting permutation is (2,β1).
In the second sample you need 6 moves to build permutation (1,β3,β2).
|
```python
def solve (n,seq) :
seq.sort()
start = 1
moves = 0
while start <= n :
if seq[start-1] != start :
moves += abs(seq[start-1] - start)
start += 1
return moves
n = int(input())
seq = list(map(int,input().split()))
print (solve(n,seq))
```
| 3
|
|
9
|
D
|
How many trees?
|
PROGRAMMING
| 1,900
|
[
"combinatorics",
"divide and conquer",
"dp"
] |
D. How many trees?
|
1
|
64
|
In one very old text file there was written Great Wisdom. This Wisdom was so Great that nobody could decipher it, even Phong β the oldest among the inhabitants of Mainframe. But still he managed to get some information from there. For example, he managed to learn that User launches games for pleasure β and then terrible Game Cubes fall down on the city, bringing death to those modules, who cannot win the game...
For sure, as guard Bob appeared in Mainframe many modules stopped fearing Game Cubes. Because Bob (as he is alive yet) has never been defeated by User, and he always meddles with Game Cubes, because he is programmed to this.
However, unpleasant situations can happen, when a Game Cube falls down on Lost Angles. Because there lives a nasty virus β Hexadecimal, who is... mmm... very strange. And she likes to play very much. So, willy-nilly, Bob has to play with her first, and then with User.
This time Hexadecimal invented the following entertainment: Bob has to leap over binary search trees with *n* nodes. We should remind you that a binary search tree is a binary tree, each node has a distinct key, for each node the following is true: the left sub-tree of a node contains only nodes with keys less than the node's key, the right sub-tree of a node contains only nodes with keys greater than the node's key. All the keys are different positive integer numbers from 1 to *n*. Each node of such a tree can have up to two children, or have no children at all (in the case when a node is a leaf).
In Hexadecimal's game all the trees are different, but the height of each is not lower than *h*. In this problem Β«heightΒ» stands for the maximum amount of nodes on the way from the root to the remotest leaf, the root node and the leaf itself included. When Bob leaps over a tree, it disappears. Bob gets the access to a Cube, when there are no trees left. He knows how many trees he will have to leap over in the worst case. And you?
|
The input data contains two space-separated positive integer numbers *n* and *h* (*n*<=β€<=35, *h*<=β€<=*n*).
|
Output one number β the answer to the problem. It is guaranteed that it does not exceed 9Β·1018.
|
[
"3 2\n",
"3 3\n"
] |
[
"5",
"4"
] |
none
| 0
|
[
{
"input": "3 2",
"output": "5"
},
{
"input": "3 3",
"output": "4"
},
{
"input": "1 1",
"output": "1"
},
{
"input": "2 1",
"output": "2"
},
{
"input": "2 2",
"output": "2"
},
{
"input": "27 11",
"output": "61162698256896"
},
{
"input": "32 27",
"output": "22643872890880"
},
{
"input": "4 1",
"output": "14"
},
{
"input": "9 1",
"output": "4862"
},
{
"input": "33 4",
"output": "212336130412243110"
},
{
"input": "4 4",
"output": "8"
},
{
"input": "8 5",
"output": "1336"
},
{
"input": "12 8",
"output": "127200"
},
{
"input": "15 5",
"output": "9694844"
},
{
"input": "19 18",
"output": "2424832"
},
{
"input": "23 17",
"output": "19649347584"
},
{
"input": "27 15",
"output": "25162319484928"
},
{
"input": "29 14",
"output": "577801978306560"
},
{
"input": "33 18",
"output": "54307238601375744"
},
{
"input": "7 7",
"output": "64"
},
{
"input": "23 21",
"output": "275251200"
},
{
"input": "7 3",
"output": "429"
},
{
"input": "21 18",
"output": "211156992"
},
{
"input": "4 1",
"output": "14"
},
{
"input": "21 12",
"output": "12153990144"
},
{
"input": "35 13",
"output": "2690352397519398400"
},
{
"input": "19 2",
"output": "1767263190"
},
{
"input": "33 26",
"output": "434871797284864"
},
{
"input": "16 9",
"output": "25607552"
},
{
"input": "16 14",
"output": "1032192"
},
{
"input": "10 2",
"output": "16796"
},
{
"input": "4 4",
"output": "8"
},
{
"input": "33 17",
"output": "75307983624118272"
},
{
"input": "27 25",
"output": "6081740800"
},
{
"input": "20 14",
"output": "1094473728"
},
{
"input": "16 11",
"output": "11819008"
},
{
"input": "10 10",
"output": "512"
},
{
"input": "4 3",
"output": "14"
},
{
"input": "33 21",
"output": "14830955929665536"
},
{
"input": "24 20",
"output": "8171945984"
},
{
"input": "30 16",
"output": "1375710400053248"
},
{
"input": "3 2",
"output": "5"
},
{
"input": "9 4",
"output": "4862"
},
{
"input": "16 5",
"output": "35357670"
},
{
"input": "22 22",
"output": "2097152"
},
{
"input": "28 23",
"output": "739948625920"
},
{
"input": "34 1",
"output": "812944042149730764"
},
{
"input": "7 4",
"output": "428"
},
{
"input": "14 11",
"output": "488448"
},
{
"input": "35 1",
"output": "3116285494907301262"
},
{
"input": "35 35",
"output": "17179869184"
}
] | 1,505,727,052
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 51
| 154
| 4,608,000
|
n, h = map(int, input().split())
t = s = [1] * (n + 1)
for m in range(1, n + 1): s[m] = sum(s[m - 1 - k] * s[k] for k in range(m))
for j in range(h): t = [sum((s[k] - t[k]) * t[m - 1 - k] + s[m - 1 - k] * t[k] for k in range(m)) for m in range(n + 1)]
print(t[n])
|
Title: How many trees?
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
In one very old text file there was written Great Wisdom. This Wisdom was so Great that nobody could decipher it, even Phong β the oldest among the inhabitants of Mainframe. But still he managed to get some information from there. For example, he managed to learn that User launches games for pleasure β and then terrible Game Cubes fall down on the city, bringing death to those modules, who cannot win the game...
For sure, as guard Bob appeared in Mainframe many modules stopped fearing Game Cubes. Because Bob (as he is alive yet) has never been defeated by User, and he always meddles with Game Cubes, because he is programmed to this.
However, unpleasant situations can happen, when a Game Cube falls down on Lost Angles. Because there lives a nasty virus β Hexadecimal, who is... mmm... very strange. And she likes to play very much. So, willy-nilly, Bob has to play with her first, and then with User.
This time Hexadecimal invented the following entertainment: Bob has to leap over binary search trees with *n* nodes. We should remind you that a binary search tree is a binary tree, each node has a distinct key, for each node the following is true: the left sub-tree of a node contains only nodes with keys less than the node's key, the right sub-tree of a node contains only nodes with keys greater than the node's key. All the keys are different positive integer numbers from 1 to *n*. Each node of such a tree can have up to two children, or have no children at all (in the case when a node is a leaf).
In Hexadecimal's game all the trees are different, but the height of each is not lower than *h*. In this problem Β«heightΒ» stands for the maximum amount of nodes on the way from the root to the remotest leaf, the root node and the leaf itself included. When Bob leaps over a tree, it disappears. Bob gets the access to a Cube, when there are no trees left. He knows how many trees he will have to leap over in the worst case. And you?
Input Specification:
The input data contains two space-separated positive integer numbers *n* and *h* (*n*<=β€<=35, *h*<=β€<=*n*).
Output Specification:
Output one number β the answer to the problem. It is guaranteed that it does not exceed 9Β·1018.
Demo Input:
['3 2\n', '3 3\n']
Demo Output:
['5', '4']
Note:
none
|
```python
n, h = map(int, input().split())
t = s = [1] * (n + 1)
for m in range(1, n + 1): s[m] = sum(s[m - 1 - k] * s[k] for k in range(m))
for j in range(h): t = [sum((s[k] - t[k]) * t[m - 1 - k] + s[m - 1 - k] * t[k] for k in range(m)) for m in range(n + 1)]
print(t[n])
```
| 3.888668
|
514
|
A
|
ChewbaΡca 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<=β€<=*x*<=β€<=1018) β 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"
}
] | 1,695,577,743
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 43
| 31
| 0
|
a = int(input())
t = 0
b = a
c = 1
r = 0
while a > 0:
t = a % 10
if t > 4 and t != 9:
r = b % c
b //= c
b -= t
t = 9 - t
b += t
b *= c
b += r
elif t == 9 and b // c >= 10:
r = b % c
b //= c
b -= t
t = 9 - t
b += t
b *= c
b += r
a //= 10
c *= 10
print(b)
|
Title: ChewbaΡca 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<=β€<=*x*<=β€<=1018) β 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
a = int(input())
t = 0
b = a
c = 1
r = 0
while a > 0:
t = a % 10
if t > 4 and t != 9:
r = b % c
b //= c
b -= t
t = 9 - t
b += t
b *= c
b += r
elif t == 9 and b // c >= 10:
r = b % c
b //= c
b -= t
t = 9 - t
b += t
b *= c
b += r
a //= 10
c *= 10
print(b)
```
| 3
|
|
702
|
A
|
Maximum Increase
|
PROGRAMMING
| 800
|
[
"dp",
"greedy",
"implementation"
] | null | null |
You are given array consisting of *n* integers. Your task is to find the maximum length of an increasing subarray of the given array.
A subarray is the sequence of consecutive elements of the array. Subarray is called increasing if each element of this subarray strictly greater than previous.
|
The first line contains single positive integer *n* (1<=β€<=*n*<=β€<=105) β the number of integers.
The second line contains *n* positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=109).
|
Print the maximum length of an increasing subarray of the given array.
|
[
"5\n1 7 2 11 15\n",
"6\n100 100 100 100 100 100\n",
"3\n1 2 3\n"
] |
[
"3\n",
"1\n",
"3\n"
] |
none
| 0
|
[
{
"input": "5\n1 7 2 11 15",
"output": "3"
},
{
"input": "6\n100 100 100 100 100 100",
"output": "1"
},
{
"input": "3\n1 2 3",
"output": "3"
},
{
"input": "1\n1000000000",
"output": "1"
},
{
"input": "10\n802030518 598196518 640274071 983359971 71550121 96204862 799843967 446173607 796619138 402690754",
"output": "3"
},
{
"input": "2\n2 1",
"output": "1"
},
{
"input": "5\n1 2 3 3 4",
"output": "3"
},
{
"input": "4\n1 2 2 3",
"output": "2"
},
{
"input": "3\n2 1 1",
"output": "1"
},
{
"input": "3\n1 2 1",
"output": "2"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "2\n1 2",
"output": "2"
},
{
"input": "3\n1 1 2",
"output": "2"
},
{
"input": "11\n1 2 3 1 2 3 2 1 2 3 4",
"output": "4"
},
{
"input": "9\n1 2 3 4 5 6 7 8 9",
"output": "9"
},
{
"input": "9\n1 1 1 1 1 1 1 1 1",
"output": "1"
},
{
"input": "3\n3 2 1",
"output": "1"
},
{
"input": "7\n1 2 3 4 5 6 7",
"output": "7"
},
{
"input": "1\n1234394",
"output": "1"
}
] | 1,687,970,079
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 32
| 78
| 12,800,000
|
from sys import stdin
len_l = int(stdin.readline()[:-1])
l = list(map(int, list(input().split(" "))))
prev = 0
best = 0
res = 0
for elem in l:
if prev < elem:
res += 1
prev = elem
else:
best = max(best, res)
prev = elem
res = 1
print(max(best, res))
|
Title: Maximum Increase
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given array consisting of *n* integers. Your task is to find the maximum length of an increasing subarray of the given array.
A subarray is the sequence of consecutive elements of the array. Subarray is called increasing if each element of this subarray strictly greater than previous.
Input Specification:
The first line contains single positive integer *n* (1<=β€<=*n*<=β€<=105) β the number of integers.
The second line contains *n* positive integers *a*1,<=*a*2,<=...,<=*a**n* (1<=β€<=*a**i*<=β€<=109).
Output Specification:
Print the maximum length of an increasing subarray of the given array.
Demo Input:
['5\n1 7 2 11 15\n', '6\n100 100 100 100 100 100\n', '3\n1 2 3\n']
Demo Output:
['3\n', '1\n', '3\n']
Note:
none
|
```python
from sys import stdin
len_l = int(stdin.readline()[:-1])
l = list(map(int, list(input().split(" "))))
prev = 0
best = 0
res = 0
for elem in l:
if prev < elem:
res += 1
prev = elem
else:
best = max(best, res)
prev = elem
res = 1
print(max(best, res))
```
| 3
|
|
58
|
A
|
Chat room
|
PROGRAMMING
| 1,000
|
[
"greedy",
"strings"
] |
A. Chat room
|
1
|
256
|
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
|
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
|
If Vasya managed to say hello, print "YES", otherwise print "NO".
|
[
"ahhellllloou\n",
"hlelo\n"
] |
[
"YES\n",
"NO\n"
] |
none
| 500
|
[
{
"input": "ahhellllloou",
"output": "YES"
},
{
"input": "hlelo",
"output": "NO"
},
{
"input": "helhcludoo",
"output": "YES"
},
{
"input": "hehwelloho",
"output": "YES"
},
{
"input": "pnnepelqomhhheollvlo",
"output": "YES"
},
{
"input": "tymbzjyqhymedasloqbq",
"output": "NO"
},
{
"input": "yehluhlkwo",
"output": "NO"
},
{
"input": "hatlevhhalrohairnolsvocafgueelrqmlqlleello",
"output": "YES"
},
{
"input": "hhhtehdbllnhwmbyhvelqqyoulretpbfokflhlhreeflxeftelziclrwllrpflflbdtotvlqgoaoqldlroovbfsq",
"output": "YES"
},
{
"input": "rzlvihhghnelqtwlexmvdjjrliqllolhyewgozkuovaiezgcilelqapuoeglnwmnlftxxiigzczlouooi",
"output": "YES"
},
{
"input": "pfhhwctyqdlkrwhebfqfelhyebwllhemtrmeblgrynmvyhioesqklclocxmlffuormljszllpoo",
"output": "YES"
},
{
"input": "lqllcolohwflhfhlnaow",
"output": "NO"
},
{
"input": "heheeellollvoo",
"output": "YES"
},
{
"input": "hellooo",
"output": "YES"
},
{
"input": "o",
"output": "NO"
},
{
"input": "hhqhzeclohlehljlhtesllylrolmomvuhcxsobtsckogdv",
"output": "YES"
},
{
"input": "yoegfuzhqsihygnhpnukluutocvvwuldiighpogsifealtgkfzqbwtmgghmythcxflebrkctlldlkzlagovwlstsghbouk",
"output": "YES"
},
{
"input": "uatqtgbvrnywfacwursctpagasnhydvmlinrcnqrry",
"output": "NO"
},
{
"input": "tndtbldbllnrwmbyhvqaqqyoudrstpbfokfoclnraefuxtftmgzicorwisrpfnfpbdtatvwqgyalqtdtrjqvbfsq",
"output": "NO"
},
{
"input": "rzlvirhgemelnzdawzpaoqtxmqucnahvqnwldklrmjiiyageraijfivigvozgwngiulttxxgzczptusoi",
"output": "YES"
},
{
"input": "kgyelmchocojsnaqdsyeqgnllytbqietpdlgknwwumqkxrexgdcnwoldicwzwofpmuesjuxzrasscvyuqwspm",
"output": "YES"
},
{
"input": "pnyvrcotjvgynbeldnxieghfltmexttuxzyac",
"output": "NO"
},
{
"input": "dtwhbqoumejligbenxvzhjlhosqojetcqsynlzyhfaevbdpekgbtjrbhlltbceobcok",
"output": "YES"
},
{
"input": "crrfpfftjwhhikwzeedrlwzblckkteseofjuxjrktcjfsylmlsvogvrcxbxtffujqshslemnixoeezivksouefeqlhhokwbqjz",
"output": "YES"
},
{
"input": "jhfbndhyzdvhbvhmhmefqllujdflwdpjbehedlsqfdsqlyelwjtyloxwsvasrbqosblzbowlqjmyeilcvotdlaouxhdpoeloaovb",
"output": "YES"
},
{
"input": "hwlghueoemiqtjhhpashjsouyegdlvoyzeunlroypoprnhlyiwiuxrghekaylndhrhllllwhbebezoglydcvykllotrlaqtvmlla",
"output": "YES"
},
{
"input": "wshiaunnqnqxodholbipwhhjmyeblhgpeleblklpzwhdunmpqkbuzloetmwwxmeltkrcomulxauzlwmlklldjodozxryghsnwgcz",
"output": "YES"
},
{
"input": "shvksednttggehroewuiptvvxtrzgidravtnjwuqrlnnkxbplctzkckinpkgjopjfoxdbojtcvsuvablcbkrzajrlhgobkcxeqti",
"output": "YES"
},
{
"input": "hyyhddqhxhekehkwfhlnlsihzefwchzerevcjtokefplholrbvxlltdlafjxrfhleglrvlolojoqaolagtbeyogxlbgfolllslli",
"output": "YES"
},
{
"input": "iaagrdhhelxpdegueiulflquvlzidoprzkehthkldaytrjwhyhprwjxlltinxvuilxohqgjqcvkkdcuoliekcnlilwgqlnlzouoo",
"output": "YES"
},
{
"input": "wfluaeseldgxyvxpwuhkptdmlflnlhktwxiabsvkolsquymrmhzczzoybvlilhmvsuunggvgxzgyyffk",
"output": "NO"
},
{
"input": "loee",
"output": "NO"
},
{
"input": "izdipwylefqmjbuoznfglgcfvedeouflkeehxbasaqmiooppfsqlhprospqgxvzrcpwlfdddngoqvpwvggsnvvxhmjoslwjudjlo",
"output": "NO"
},
{
"input": "pplynflbjlseflaegzqpdxswgunhnlglqhycrbcwdfhclmcrwekkzsoosmfblljeenwfjyifcvxihhhbyhmhlkvtskeglaovjnsi",
"output": "YES"
},
{
"input": "xqjqmenkodmlhzyzmmvofdngktygbbxbzpluzcohohmalkoeuwfikblltaaigv",
"output": "NO"
},
{
"input": "hello",
"output": "YES"
},
{
"input": "oohell",
"output": "NO"
},
{
"input": "hell",
"output": "NO"
},
{
"input": "eloellohoelo",
"output": "NO"
},
{
"input": "helllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllo",
"output": "YES"
}
] | 1,590,214,216
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 40
| 139
| 0
|
p=input()
#
r=[]
for k in range (0,len(p),1):
r.append(p[k])
#r.pop(0,3)
#del r[0:3]
#ss=[]
l=0;
for i in range (0,len(p),1):
k=0;
if((r[k]=="h")&(l==0)):
#ss.append("h")
l=1;
elif((r[k]=="e")&(l==1)):
#ss.append("e")
l=2;
elif((r[k]=="l")&(l==2)):
#ss.append("l")
l=3;
elif((r[k]=="l")&(l==3)):
#ss.append("l")
l=4;
elif((r[k]=="o")&(l==4)):
#ss.append("o")
l=5;
r.pop(0)
if(l==5):
print("YES")
else:
print("NO")
|
Title: Chat room
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
Input Specification:
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
Output Specification:
If Vasya managed to say hello, print "YES", otherwise print "NO".
Demo Input:
['ahhellllloou\n', 'hlelo\n']
Demo Output:
['YES\n', 'NO\n']
Note:
none
|
```python
p=input()
#
r=[]
for k in range (0,len(p),1):
r.append(p[k])
#r.pop(0,3)
#del r[0:3]
#ss=[]
l=0;
for i in range (0,len(p),1):
k=0;
if((r[k]=="h")&(l==0)):
#ss.append("h")
l=1;
elif((r[k]=="e")&(l==1)):
#ss.append("e")
l=2;
elif((r[k]=="l")&(l==2)):
#ss.append("l")
l=3;
elif((r[k]=="l")&(l==3)):
#ss.append("l")
l=4;
elif((r[k]=="o")&(l==4)):
#ss.append("o")
l=5;
r.pop(0)
if(l==5):
print("YES")
else:
print("NO")
```
| 3.9305
|
977
|
A
|
Wrong Subtraction
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Little girl Tanya is learning how to decrease a number by one, but she does it wrong with a number consisting of two or more digits. Tanya subtracts one from a number by the following algorithm:
- if the last digit of the number is non-zero, she decreases the number by one; - if the last digit of the number is zero, she divides the number by 10 (i.e. removes the last digit).
You are given an integer number $n$. Tanya will subtract one from it $k$ times. Your task is to print the result after all $k$ subtractions.
It is guaranteed that the result will be positive integer number.
|
The first line of the input contains two integer numbers $n$ and $k$ ($2 \le n \le 10^9$, $1 \le k \le 50$) β the number from which Tanya will subtract and the number of subtractions correspondingly.
|
Print one integer number β the result of the decreasing $n$ by one $k$ times.
It is guaranteed that the result will be positive integer number.
|
[
"512 4\n",
"1000000000 9\n"
] |
[
"50\n",
"1\n"
] |
The first example corresponds to the following sequence: $512 \rightarrow 511 \rightarrow 510 \rightarrow 51 \rightarrow 50$.
| 0
|
[
{
"input": "512 4",
"output": "50"
},
{
"input": "1000000000 9",
"output": "1"
},
{
"input": "131203 11",
"output": "12"
},
{
"input": "999999999 50",
"output": "9999"
},
{
"input": "999999999 49",
"output": "99990"
},
{
"input": "131203 9",
"output": "130"
},
{
"input": "900000000 16",
"output": "1"
},
{
"input": "909090909 50",
"output": "3"
},
{
"input": "1001 2",
"output": "100"
},
{
"input": "5 2",
"output": "3"
},
{
"input": "2 1",
"output": "1"
}
] | 1,695,387,089
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 11
| 31
| 0
|
value = list(map(int, input().split(' ')))
n = value[0]
k = value[1]
while k > 0:
if n % 10 == 0:
n = n // 10
k -= 1
else:
if k > (n % 10):
k -= n % 10
n -= n % 10
else:
n -= k
k = 0
print(n)
|
Title: Wrong Subtraction
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little girl Tanya is learning how to decrease a number by one, but she does it wrong with a number consisting of two or more digits. Tanya subtracts one from a number by the following algorithm:
- if the last digit of the number is non-zero, she decreases the number by one; - if the last digit of the number is zero, she divides the number by 10 (i.e. removes the last digit).
You are given an integer number $n$. Tanya will subtract one from it $k$ times. Your task is to print the result after all $k$ subtractions.
It is guaranteed that the result will be positive integer number.
Input Specification:
The first line of the input contains two integer numbers $n$ and $k$ ($2 \le n \le 10^9$, $1 \le k \le 50$) β the number from which Tanya will subtract and the number of subtractions correspondingly.
Output Specification:
Print one integer number β the result of the decreasing $n$ by one $k$ times.
It is guaranteed that the result will be positive integer number.
Demo Input:
['512 4\n', '1000000000 9\n']
Demo Output:
['50\n', '1\n']
Note:
The first example corresponds to the following sequence: $512 \rightarrow 511 \rightarrow 510 \rightarrow 51 \rightarrow 50$.
|
```python
value = list(map(int, input().split(' ')))
n = value[0]
k = value[1]
while k > 0:
if n % 10 == 0:
n = n // 10
k -= 1
else:
if k > (n % 10):
k -= n % 10
n -= n % 10
else:
n -= k
k = 0
print(n)
```
| 3
|
|
989
|
A
|
A Blend of Springtime
|
PROGRAMMING
| 900
|
[
"implementation",
"strings"
] | null | null |
"What a pity it's already late spring," sighs Mino with regret, "one more drizzling night and they'd be gone."
"But these blends are at their best, aren't they?" Absorbed in the landscape, Kanno remains optimistic.
The landscape can be expressed as a row of consecutive cells, each of which either contains a flower of colour amber or buff or canary yellow, or is empty.
When a flower withers, it disappears from the cell that it originally belonged to, and it spreads petals of its colour in its two neighbouring cells (or outside the field if the cell is on the side of the landscape). In case petals fall outside the given cells, they simply become invisible.
You are to help Kanno determine whether it's possible that after some (possibly none or all) flowers shed their petals, at least one of the cells contains all three colours, considering both petals and flowers. Note that flowers can wither in arbitrary order.
|
The first and only line of input contains a non-empty string $s$ consisting of uppercase English letters 'A', 'B', 'C' and characters '.' (dots) only ($\lvert s \rvert \leq 100$)Β β denoting cells containing an amber flower, a buff one, a canary yellow one, and no flowers, respectively.
|
Output "Yes" if it's possible that all three colours appear in some cell, and "No" otherwise.
You can print each letter in any case (upper or lower).
|
[
".BAC.\n",
"AA..CB\n"
] |
[
"Yes\n",
"No\n"
] |
In the first example, the buff and canary yellow flowers can leave their petals in the central cell, blending all three colours in it.
In the second example, it's impossible to satisfy the requirement because there is no way that amber and buff meet in any cell.
| 500
|
[
{
"input": ".BAC.",
"output": "Yes"
},
{
"input": "AA..CB",
"output": "No"
},
{
"input": ".",
"output": "No"
},
{
"input": "ACB.AAAAAA",
"output": "Yes"
},
{
"input": "B.BC.BBBCA",
"output": "Yes"
},
{
"input": "BA..CAB..B",
"output": "Yes"
},
{
"input": "CACCBAA.BC",
"output": "Yes"
},
{
"input": ".CAACCBBA.CBB.AC..BABCCBCCB..B.BC..CBC.CA.CC.C.CC.B.A.CC.BBCCBB..ACAACAC.CBCCB.AABAAC.CBCC.BA..CCBC.",
"output": "Yes"
},
{
"input": "A",
"output": "No"
},
{
"input": "..",
"output": "No"
},
{
"input": "BC",
"output": "No"
},
{
"input": "CAB",
"output": "Yes"
},
{
"input": "A.CB",
"output": "No"
},
{
"input": "B.ACAA.CA..CBCBBAA.B.CCBCB.CAC.ABC...BC.BCCC.BC.CB",
"output": "Yes"
},
{
"input": "B.B...CC.B..CCCB.CB..CBCB..CBCC.CCBC.B.CB..CA.C.C.",
"output": "No"
},
{
"input": "AA.CBAABABCCC..B..B.ABBABAB.B.B.CCA..CB.B...A..CBC",
"output": "Yes"
},
{
"input": "CA.ABB.CC.B.C.BBBABAAB.BBBAACACAAA.C.AACA.AAC.C.BCCB.CCBC.C..CCACA.CBCCB.CCAABAAB.AACAA..A.AAA.",
"output": "No"
},
{
"input": "CBC...AC.BBBB.BBABABA.CAAACC.AAABB..A.BA..BC.CBBBC.BBBBCCCAA.ACCBB.AB.C.BA..CC..AAAC...AB.A.AAABBA.A",
"output": "No"
},
{
"input": "CC.AAAC.BA.BBB.AABABBCCAA.A.CBCCB.B.BC.ABCBCBBAA.CACA.CCCA.CB.CCB.A.BCCCB...C.A.BCCBC..B.ABABB.C.BCB",
"output": "Yes"
},
{
"input": "CCC..A..CACACCA.CA.ABAAB.BBA..C.AAA...ACB.ACA.CA.B.AB.A..C.BC.BC.A.C....ABBCCACCCBCC.BBBAA.ACCACB.BB",
"output": "Yes"
},
{
"input": "BC.ABACAACC..AC.A..CCCAABBCCACAC.AA.CC.BAABABABBCBB.BA..C.C.C.A.BBA.C..BC.ACACCC.AAAACCCCC.AAC.AC.AB",
"output": "Yes"
},
{
"input": "ACAC.BAA.C..CAAC..ABBAACC..BAA...CC...ACCBBCA.BAABABAACCAC.A.BBCACCC..BCB.BABAAAACCBCB.BCAABBC.C.BBB",
"output": "Yes"
},
{
"input": "CCAC.BCBC.A.ABBAB.C.C.BC.CCABBCBCCBC..B.AA.C.BC...B..BAA.ACCCCBBB.AAAACA.CAACCB.CCB.CC.BCCAB.BBBBABB",
"output": "Yes"
},
{
"input": ".AACAA.AAAAC.BBBB.BC...CCACCACAAA.A..CCA..BCC.AB.ABAAB..AABA...B.C.CBAB.BAAB.A.C.AAC.BBBA.ACAAA.BB.C",
"output": "Yes"
},
{
"input": "CC.ACCC.BCCCCAA.BBAACB.ABABAAAA.A.CBAB.CBACBBC..C.CA.AAA..AA..ABBB.A.C..CBBCAAACC.B..CC.AC..CAABACB.",
"output": "Yes"
},
{
"input": ".BAB.",
"output": "No"
},
{
"input": "BBBBBBBBB",
"output": "No"
},
{
"input": "..AAC..",
"output": "No"
},
{
"input": ".AAABBBCCC.",
"output": "No"
},
{
"input": "AAABC",
"output": "Yes"
},
{
"input": "BBB",
"output": "No"
},
{
"input": "AAAAABABAAAAA",
"output": "No"
},
{
"input": "AABBCC",
"output": "No"
},
{
"input": ".BA",
"output": "No"
},
{
"input": "CAAAAB",
"output": "No"
}
] | 1,528,984,103
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 37
| 78
| 0
|
a = input()
length = len(a)
for i in range(length-2):
dilim = a[i:i+3]
if ('A' in dilim and 'B' in dilim and 'C' in dilim):
print('Yes')
exit()
print('No')
|
Title: A Blend of Springtime
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
"What a pity it's already late spring," sighs Mino with regret, "one more drizzling night and they'd be gone."
"But these blends are at their best, aren't they?" Absorbed in the landscape, Kanno remains optimistic.
The landscape can be expressed as a row of consecutive cells, each of which either contains a flower of colour amber or buff or canary yellow, or is empty.
When a flower withers, it disappears from the cell that it originally belonged to, and it spreads petals of its colour in its two neighbouring cells (or outside the field if the cell is on the side of the landscape). In case petals fall outside the given cells, they simply become invisible.
You are to help Kanno determine whether it's possible that after some (possibly none or all) flowers shed their petals, at least one of the cells contains all three colours, considering both petals and flowers. Note that flowers can wither in arbitrary order.
Input Specification:
The first and only line of input contains a non-empty string $s$ consisting of uppercase English letters 'A', 'B', 'C' and characters '.' (dots) only ($\lvert s \rvert \leq 100$)Β β denoting cells containing an amber flower, a buff one, a canary yellow one, and no flowers, respectively.
Output Specification:
Output "Yes" if it's possible that all three colours appear in some cell, and "No" otherwise.
You can print each letter in any case (upper or lower).
Demo Input:
['.BAC.\n', 'AA..CB\n']
Demo Output:
['Yes\n', 'No\n']
Note:
In the first example, the buff and canary yellow flowers can leave their petals in the central cell, blending all three colours in it.
In the second example, it's impossible to satisfy the requirement because there is no way that amber and buff meet in any cell.
|
```python
a = input()
length = len(a)
for i in range(length-2):
dilim = a[i:i+3]
if ('A' in dilim and 'B' in dilim and 'C' in dilim):
print('Yes')
exit()
print('No')
```
| 3
|
|
1
|
A
|
Theatre Square
|
PROGRAMMING
| 1,000
|
[
"math"
] |
A. Theatre Square
|
1
|
256
|
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=Γ<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=Γ<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
|
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=β€<=<=*n*,<=*m*,<=*a*<=β€<=109).
|
Write the needed number of flagstones.
|
[
"6 6 4\n"
] |
[
"4\n"
] |
none
| 0
|
[
{
"input": "6 6 4",
"output": "4"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "2 1 1",
"output": "2"
},
{
"input": "1 2 1",
"output": "2"
},
{
"input": "2 2 1",
"output": "4"
},
{
"input": "2 1 2",
"output": "1"
},
{
"input": "1 1 3",
"output": "1"
},
{
"input": "2 3 4",
"output": "1"
},
{
"input": "1000000000 1000000000 1",
"output": "1000000000000000000"
},
{
"input": "12 13 4",
"output": "12"
},
{
"input": "222 332 5",
"output": "3015"
},
{
"input": "1000 1000 10",
"output": "10000"
},
{
"input": "1001 1000 10",
"output": "10100"
},
{
"input": "100 10001 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 999999999",
"output": "4"
},
{
"input": "1000000000 1000000000 192",
"output": "27126743055556"
},
{
"input": "1000000000 987654321 1",
"output": "987654321000000000"
},
{
"input": "456784567 1000000000 51",
"output": "175618850864484"
},
{
"input": "39916800 134217728 40320",
"output": "3295710"
}
] | 1,681,436,459
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 20
| 93
| 0
|
import math
n,m,a = [int (i) for i in input().split()]
result = math.ceil(n/a)*math.ceil(m/a)
print(result)
|
Title: Theatre Square
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=Γ<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=Γ<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
Input Specification:
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=β€<=<=*n*,<=*m*,<=*a*<=β€<=109).
Output Specification:
Write the needed number of flagstones.
Demo Input:
['6 6 4\n']
Demo Output:
['4\n']
Note:
none
|
```python
import math
n,m,a = [int (i) for i in input().split()]
result = math.ceil(n/a)*math.ceil(m/a)
print(result)
```
| 3.9535
|
677
|
A
|
Vanya and Fence
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Vanya and his friends are walking along the fence of height *h* and they do not want the guard to notice them. In order to achieve this the height of each of the friends should not exceed *h*. If the height of some person is greater than *h* he can bend down and then he surely won't be noticed by the guard. The height of the *i*-th person is equal to *a**i*.
Consider the width of the person walking as usual to be equal to 1, while the width of the bent person is equal to 2. Friends want to talk to each other while walking, so they would like to walk in a single row. What is the minimum width of the road, such that friends can walk in a row and remain unattended by the guard?
|
The first line of the input contains two integers *n* and *h* (1<=β€<=*n*<=β€<=1000, 1<=β€<=*h*<=β€<=1000)Β β the number of friends and the height of the fence, respectively.
The second line contains *n* integers *a**i* (1<=β€<=*a**i*<=β€<=2*h*), the *i*-th of them is equal to the height of the *i*-th person.
|
Print a single integerΒ β the minimum possible valid width of the road.
|
[
"3 7\n4 5 14\n",
"6 1\n1 1 1 1 1 1\n",
"6 5\n7 6 8 9 10 5\n"
] |
[
"4\n",
"6\n",
"11\n"
] |
In the first sample, only person number 3 must bend down, so the required width is equal to 1β+β1β+β2β=β4.
In the second sample, all friends are short enough and no one has to bend, so the width 1β+β1β+β1β+β1β+β1β+β1β=β6 is enough.
In the third sample, all the persons have to bend, except the last one. The required minimum width of the road is equal to 2β+β2β+β2β+β2β+β2β+β1β=β11.
| 500
|
[
{
"input": "3 7\n4 5 14",
"output": "4"
},
{
"input": "6 1\n1 1 1 1 1 1",
"output": "6"
},
{
"input": "6 5\n7 6 8 9 10 5",
"output": "11"
},
{
"input": "10 420\n214 614 297 675 82 740 174 23 255 15",
"output": "13"
},
{
"input": "10 561\n657 23 1096 487 785 66 481 554 1000 821",
"output": "15"
},
{
"input": "100 342\n478 143 359 336 162 333 385 515 117 496 310 538 469 539 258 676 466 677 1 296 150 560 26 213 627 221 255 126 617 174 279 178 24 435 70 145 619 46 669 566 300 67 576 251 58 176 441 564 569 194 24 669 73 262 457 259 619 78 400 579 222 626 269 47 80 315 160 194 455 186 315 424 197 246 683 220 68 682 83 233 290 664 273 598 362 305 674 614 321 575 362 120 14 534 62 436 294 351 485 396",
"output": "144"
},
{
"input": "100 290\n244 49 276 77 449 261 468 458 201 424 9 131 300 88 432 394 104 77 13 289 435 259 111 453 168 394 156 412 351 576 178 530 81 271 228 564 125 328 42 372 205 61 180 471 33 360 567 331 222 318 241 117 529 169 188 484 202 202 299 268 246 343 44 364 333 494 59 236 84 485 50 8 428 8 571 227 205 310 210 9 324 472 368 490 114 84 296 305 411 351 569 393 283 120 510 171 232 151 134 366",
"output": "145"
},
{
"input": "1 1\n1",
"output": "1"
},
{
"input": "1 1\n2",
"output": "2"
},
{
"input": "46 71\n30 26 56 138 123 77 60 122 73 45 79 10 130 3 14 1 38 46 128 50 82 16 32 68 28 98 62 106 2 49 131 11 114 39 139 70 40 50 45 137 33 30 35 136 135 19",
"output": "63"
},
{
"input": "20 723\n212 602 293 591 754 91 1135 640 80 495 845 928 1399 498 926 1431 1226 869 814 1386",
"output": "31"
},
{
"input": "48 864\n843 1020 751 1694 18 1429 1395 1174 272 1158 1628 1233 1710 441 765 561 778 748 1501 1200 563 1263 1398 1687 1518 1640 1591 839 500 466 1603 1587 1201 1209 432 868 1159 639 649 628 9 91 1036 147 896 1557 941 518",
"output": "75"
},
{
"input": "26 708\n549 241 821 734 945 1161 566 1268 216 30 1142 730 529 1014 255 168 796 1148 89 113 1328 286 743 871 1259 1397",
"output": "41"
},
{
"input": "75 940\n1620 1745 1599 441 64 1466 1496 1239 1716 1475 778 106 1136 1212 1261 444 781 257 1071 747 626 232 609 1544 682 1326 469 1361 1460 1450 1207 1319 922 625 1737 1057 1698 592 692 80 1016 541 1254 201 682 1007 847 206 1066 809 259 109 240 1611 219 1455 1326 1377 1827 786 42 1002 1382 1592 543 1866 1198 334 1524 1760 340 1566 955 257 1118",
"output": "116"
}
] | 1,691,924,185
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 29
| 46
| 0
|
n,h=map(int,input().split())
heights=list(map(int,input().split()))
total_width=0
for height in heights:
if height<=h:
total_width+=1
else:
total_width+=2
print(total_width)
|
Title: Vanya and Fence
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vanya and his friends are walking along the fence of height *h* and they do not want the guard to notice them. In order to achieve this the height of each of the friends should not exceed *h*. If the height of some person is greater than *h* he can bend down and then he surely won't be noticed by the guard. The height of the *i*-th person is equal to *a**i*.
Consider the width of the person walking as usual to be equal to 1, while the width of the bent person is equal to 2. Friends want to talk to each other while walking, so they would like to walk in a single row. What is the minimum width of the road, such that friends can walk in a row and remain unattended by the guard?
Input Specification:
The first line of the input contains two integers *n* and *h* (1<=β€<=*n*<=β€<=1000, 1<=β€<=*h*<=β€<=1000)Β β the number of friends and the height of the fence, respectively.
The second line contains *n* integers *a**i* (1<=β€<=*a**i*<=β€<=2*h*), the *i*-th of them is equal to the height of the *i*-th person.
Output Specification:
Print a single integerΒ β the minimum possible valid width of the road.
Demo Input:
['3 7\n4 5 14\n', '6 1\n1 1 1 1 1 1\n', '6 5\n7 6 8 9 10 5\n']
Demo Output:
['4\n', '6\n', '11\n']
Note:
In the first sample, only person number 3 must bend down, so the required width is equal to 1β+β1β+β2β=β4.
In the second sample, all friends are short enough and no one has to bend, so the width 1β+β1β+β1β+β1β+β1β+β1β=β6 is enough.
In the third sample, all the persons have to bend, except the last one. The required minimum width of the road is equal to 2β+β2β+β2β+β2β+β2β+β1β=β11.
|
```python
n,h=map(int,input().split())
heights=list(map(int,input().split()))
total_width=0
for height in heights:
if height<=h:
total_width+=1
else:
total_width+=2
print(total_width)
```
| 3
|
|
71
|
A
|
Way Too Long Words
|
PROGRAMMING
| 800
|
[
"strings"
] |
A. Way Too Long Words
|
1
|
256
|
Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome.
Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation.
This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes.
Thus, "localization" will be spelt as "l10n", and "internationalizationΒ» will be spelt as "i18n".
You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
|
The first line contains an integer *n* (1<=β€<=*n*<=β€<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
|
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
|
[
"4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n"
] |
[
"word\nl10n\ni18n\np43s\n"
] |
none
| 500
|
[
{
"input": "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis",
"output": "word\nl10n\ni18n\np43s"
},
{
"input": "5\nabcdefgh\nabcdefghi\nabcdefghij\nabcdefghijk\nabcdefghijklm",
"output": "abcdefgh\nabcdefghi\nabcdefghij\na9k\na11m"
},
{
"input": "3\nnjfngnrurunrgunrunvurn\njfvnjfdnvjdbfvsbdubruvbubvkdb\nksdnvidnviudbvibd",
"output": "n20n\nj27b\nk15d"
},
{
"input": "1\ntcyctkktcctrcyvbyiuhihhhgyvyvyvyvjvytchjckt",
"output": "t41t"
},
{
"input": "24\nyou\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nunofficially\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings",
"output": "you\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nu10y\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings"
},
{
"input": "1\na",
"output": "a"
},
{
"input": "26\na\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz",
"output": "a\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz"
},
{
"input": "1\nabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghij",
"output": "a98j"
},
{
"input": "10\ngyartjdxxlcl\nfzsck\nuidwu\nxbymclornemdmtj\nilppyoapitawgje\ncibzc\ndrgbeu\nhezplmsdekhhbo\nfeuzlrimbqbytdu\nkgdco",
"output": "g10l\nfzsck\nuidwu\nx13j\ni13e\ncibzc\ndrgbeu\nh12o\nf13u\nkgdco"
},
{
"input": "20\nlkpmx\nkovxmxorlgwaomlswjxlpnbvltfv\nhykasjxqyjrmybejnmeumzha\ntuevlumpqbbhbww\nqgqsphvrmupxxc\ntrissbaf\nqfgrlinkzvzqdryckaizutd\nzzqtoaxkvwoscyx\noswytrlnhpjvvnwookx\nlpuzqgec\ngyzqfwxggtvpjhzmzmdw\nrlxjgmvdftvrmvbdwudra\nvsntnjpepnvdaxiporggmglhagv\nxlvcqkqgcrbgtgglj\nlyxwxbiszyhlsrgzeedzprbmcpduvq\nyrmqqvrkqskqukzqrwukpsifgtdc\nxpuohcsjhhuhvr\nvvlfrlxpvqejngwrbfbpmqeirxlw\nsvmasocxdvadmaxtrpakysmeaympy\nyuflqboqfdt",
"output": "lkpmx\nk26v\nh22a\nt13w\nq12c\ntrissbaf\nq21d\nz13x\no17x\nlpuzqgec\ng18w\nr19a\nv25v\nx15j\nl28q\ny26c\nx12r\nv26w\ns27y\ny9t"
},
{
"input": "100\nm\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr",
"output": "m\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr"
}
] | 1,690,352,240
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 20
| 46
| 0
|
t = int(input())
for i in range(t):
s = input()
n = len(s)
if n <= 10:
print(s)
else:
print(s[0] + str(n-2) + s[n-1])
|
Title: Way Too Long Words
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome.
Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation.
This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes.
Thus, "localization" will be spelt as "l10n", and "internationalizationΒ» will be spelt as "i18n".
You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
Input Specification:
The first line contains an integer *n* (1<=β€<=*n*<=β€<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
Output Specification:
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
Demo Input:
['4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n']
Demo Output:
['word\nl10n\ni18n\np43s\n']
Note:
none
|
```python
t = int(input())
for i in range(t):
s = input()
n = len(s)
if n <= 10:
print(s)
else:
print(s[0] + str(n-2) + s[n-1])
```
| 3.977
|
386
|
A
|
Second-Price Auction
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
|
The first line of the input contains *n* (2<=β€<=*n*<=β€<=1000) β number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=β€<=*p**i*<=β€<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
|
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
|
[
"2\n5 7\n",
"3\n10 2 8\n",
"6\n3 8 2 9 4 14\n"
] |
[
"2 5\n",
"1 8\n",
"6 9\n"
] |
none
| 500
|
[
{
"input": "2\n5 7",
"output": "2 5"
},
{
"input": "3\n10 2 8",
"output": "1 8"
},
{
"input": "6\n3 8 2 9 4 14",
"output": "6 9"
},
{
"input": "4\n4707 7586 4221 5842",
"output": "2 5842"
},
{
"input": "5\n3304 4227 4869 6937 6002",
"output": "4 6002"
},
{
"input": "6\n5083 3289 7708 5362 9031 7458",
"output": "5 7708"
},
{
"input": "7\n9038 6222 3392 1706 3778 1807 2657",
"output": "1 6222"
},
{
"input": "8\n7062 2194 4481 3864 7470 1814 8091 733",
"output": "7 7470"
},
{
"input": "9\n2678 5659 9199 2628 7906 7496 4524 2663 3408",
"output": "3 7906"
},
{
"input": "2\n3458 1504",
"output": "1 1504"
},
{
"input": "50\n9237 3904 407 9052 6657 9229 9752 3888 7732 2512 4614 1055 2355 7108 6506 6849 2529 8862 159 8630 7906 7941 960 8470 333 8659 54 9475 3163 5625 6393 6814 2656 3388 169 7918 4881 8468 9983 6281 6340 280 5108 2996 101 7617 3313 8172 326 1991",
"output": "39 9752"
},
{
"input": "100\n2515 3324 7975 6171 4240 1217 4829 5203 8603 6900 3031 4699 4732 6070 4221 3228 6497 7359 9130 4346 4619 1109 3945 5442 3271 16 9711 2045 6410 2301 3406 8125 6003 1892 1260 9661 3940 6692 4708 7027 4930 6925 1979 5361 4263 3144 867 8639 6230 5562 9714 3676 4231 3347 4733 4920 4881 3431 1059 7313 8912 3038 9308 72 9583 7009 3034 7425 2398 6141 3245 2495 2933 6710 8289 9806 1226 8393 7349 6462 1618 9613 3546 6012 2964 9995 1578 210 2123 4874 1252 8625 348 8020 803 7244 9080 5088 706 2602",
"output": "86 9806"
},
{
"input": "2\n2 1",
"output": "1 1"
},
{
"input": "2\n1 2",
"output": "2 1"
},
{
"input": "3\n10 20 30",
"output": "3 20"
},
{
"input": "3\n10 30 20",
"output": "2 20"
},
{
"input": "3\n20 10 30",
"output": "3 20"
},
{
"input": "3\n20 30 10",
"output": "2 20"
},
{
"input": "3\n30 10 20",
"output": "1 20"
},
{
"input": "3\n30 20 10",
"output": "1 20"
},
{
"input": "2\n1 10000",
"output": "2 1"
},
{
"input": "2\n10000 999",
"output": "1 999"
},
{
"input": "3\n3 4 1",
"output": "2 3"
},
{
"input": "6\n1 2 24 6 5 7",
"output": "3 7"
}
] | 1,596,180,077
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 42
| 140
| 20,172,800
|
n=int(input())
lst=list(map(int,input().split()))
q=lst.index(max(lst))+1
lst.sort()
p=lst[-2]
print(q,p)
|
Title: Second-Price Auction
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
Input Specification:
The first line of the input contains *n* (2<=β€<=*n*<=β€<=1000) β number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=β€<=*p**i*<=β€<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
Output Specification:
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
Demo Input:
['2\n5 7\n', '3\n10 2 8\n', '6\n3 8 2 9 4 14\n']
Demo Output:
['2 5\n', '1 8\n', '6 9\n']
Note:
none
|
```python
n=int(input())
lst=list(map(int,input().split()))
q=lst.index(max(lst))+1
lst.sort()
p=lst[-2]
print(q,p)
```
| 3
|
|
25
|
A
|
IQ test
|
PROGRAMMING
| 1,300
|
[
"brute force"
] |
A. IQ test
|
2
|
256
|
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
|
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
|
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
|
[
"5\n2 4 7 8 10\n",
"4\n1 2 1 1\n"
] |
[
"3\n",
"2\n"
] |
none
| 0
|
[
{
"input": "5\n2 4 7 8 10",
"output": "3"
},
{
"input": "4\n1 2 1 1",
"output": "2"
},
{
"input": "3\n1 2 2",
"output": "1"
},
{
"input": "3\n100 99 100",
"output": "2"
},
{
"input": "3\n5 3 2",
"output": "3"
},
{
"input": "4\n43 28 1 91",
"output": "2"
},
{
"input": "4\n75 13 94 77",
"output": "3"
},
{
"input": "4\n97 8 27 3",
"output": "2"
},
{
"input": "10\n95 51 12 91 85 3 1 31 25 7",
"output": "3"
},
{
"input": "20\n88 96 66 51 14 88 2 92 18 72 18 88 20 30 4 82 90 100 24 46",
"output": "4"
},
{
"input": "30\n20 94 56 50 10 98 52 32 14 22 24 60 4 8 98 46 34 68 82 82 98 90 50 20 78 49 52 94 64 36",
"output": "26"
},
{
"input": "50\n79 27 77 57 37 45 27 49 65 33 57 21 71 19 75 85 65 61 23 97 85 9 23 1 9 3 99 77 77 21 79 69 15 37 15 7 93 81 13 89 91 31 45 93 15 97 55 80 85 83",
"output": "48"
},
{
"input": "60\n46 11 73 65 3 69 3 53 43 53 97 47 55 93 31 75 35 3 9 73 23 31 3 81 91 79 61 21 15 11 11 11 81 7 83 75 39 87 83 59 89 55 93 27 49 67 67 29 1 93 11 17 9 19 35 21 63 31 31 25",
"output": "1"
},
{
"input": "70\n28 42 42 92 64 54 22 38 38 78 62 38 4 38 14 66 4 92 66 58 94 26 4 44 41 88 48 82 44 26 74 44 48 4 16 92 34 38 26 64 94 4 30 78 50 54 12 90 8 16 80 98 28 100 74 50 36 42 92 18 76 98 8 22 2 50 58 50 64 46",
"output": "25"
},
{
"input": "100\n43 35 79 53 13 91 91 45 65 83 57 9 42 39 85 45 71 51 61 59 31 13 63 39 25 21 79 39 91 67 21 61 97 75 93 83 29 79 59 97 11 37 63 51 39 55 91 23 21 17 47 23 35 75 49 5 69 99 5 7 41 17 25 89 15 79 21 63 53 81 43 91 59 91 69 99 85 15 91 51 49 37 65 7 89 81 21 93 61 63 97 93 45 17 13 69 57 25 75 73",
"output": "13"
},
{
"input": "100\n50 24 68 60 70 30 52 22 18 74 68 98 20 82 4 46 26 68 100 78 84 58 74 98 38 88 68 86 64 80 82 100 20 22 98 98 52 6 94 10 48 68 2 18 38 22 22 82 44 20 66 72 36 58 64 6 36 60 4 96 76 64 12 90 10 58 64 60 74 28 90 26 24 60 40 58 2 16 76 48 58 36 82 60 24 44 4 78 28 38 8 12 40 16 38 6 66 24 31 76",
"output": "99"
},
{
"input": "100\n47 48 94 48 14 18 94 36 96 22 12 30 94 20 48 98 40 58 2 94 8 36 98 18 98 68 2 60 76 38 18 100 8 72 100 68 2 86 92 72 58 16 48 14 6 58 72 76 6 88 80 66 20 28 74 62 86 68 90 86 2 56 34 38 56 90 4 8 76 44 32 86 12 98 38 34 54 92 70 94 10 24 82 66 90 58 62 2 32 58 100 22 58 72 2 22 68 72 42 14",
"output": "1"
},
{
"input": "99\n38 20 68 60 84 16 28 88 60 48 80 28 4 92 70 60 46 46 20 34 12 100 76 2 40 10 8 86 6 80 50 66 12 34 14 28 26 70 46 64 34 96 10 90 98 96 56 88 50 74 70 94 2 94 24 66 68 46 22 30 6 10 64 32 88 14 98 100 64 58 50 18 50 50 8 38 8 16 54 2 60 54 62 84 92 98 4 72 66 26 14 88 99 16 10 6 88 56 22",
"output": "93"
},
{
"input": "99\n50 83 43 89 53 47 69 1 5 37 63 87 95 15 55 95 75 89 33 53 89 75 93 75 11 85 49 29 11 97 49 67 87 11 25 37 97 73 67 49 87 43 53 97 43 29 53 33 45 91 37 73 39 49 59 5 21 43 87 35 5 63 89 57 63 47 29 99 19 85 13 13 3 13 43 19 5 9 61 51 51 57 15 89 13 97 41 13 99 79 13 27 97 95 73 33 99 27 23",
"output": "1"
},
{
"input": "98\n61 56 44 30 58 14 20 24 88 28 46 56 96 52 58 42 94 50 46 30 46 80 72 88 68 16 6 60 26 90 10 98 76 20 56 40 30 16 96 20 88 32 62 30 74 58 36 76 60 4 24 36 42 54 24 92 28 14 2 74 86 90 14 52 34 82 40 76 8 64 2 56 10 8 78 16 70 86 70 42 70 74 22 18 76 98 88 28 62 70 36 72 20 68 34 48 80 98",
"output": "1"
},
{
"input": "98\n66 26 46 42 78 32 76 42 26 82 8 12 4 10 24 26 64 44 100 46 94 64 30 18 88 28 8 66 30 82 82 28 74 52 62 80 80 60 94 86 64 32 44 88 92 20 12 74 94 28 34 58 4 22 16 10 94 76 82 58 40 66 22 6 30 32 92 54 16 76 74 98 18 48 48 30 92 2 16 42 84 74 30 60 64 52 50 26 16 86 58 96 79 60 20 62 82 94",
"output": "93"
},
{
"input": "95\n9 31 27 93 17 77 75 9 9 53 89 39 51 99 5 1 11 39 27 49 91 17 27 79 81 71 37 75 35 13 93 4 99 55 85 11 23 57 5 43 5 61 15 35 23 91 3 81 99 85 43 37 39 27 5 67 7 33 75 59 13 71 51 27 15 93 51 63 91 53 43 99 25 47 17 71 81 15 53 31 59 83 41 23 73 25 91 91 13 17 25 13 55 57 29",
"output": "32"
},
{
"input": "100\n91 89 81 45 53 1 41 3 77 93 55 97 55 97 87 27 69 95 73 41 93 21 75 35 53 56 5 51 87 59 91 67 33 3 99 45 83 17 97 47 75 97 7 89 17 99 23 23 81 25 55 97 27 35 69 5 77 35 93 19 55 59 37 21 31 37 49 41 91 53 73 69 7 37 37 39 17 71 7 97 55 17 47 23 15 73 31 39 57 37 9 5 61 41 65 57 77 79 35 47",
"output": "26"
},
{
"input": "99\n38 56 58 98 80 54 26 90 14 16 78 92 52 74 40 30 84 14 44 80 16 90 98 68 26 24 78 72 42 16 84 40 14 44 2 52 50 2 12 96 58 66 8 80 44 52 34 34 72 98 74 4 66 74 56 21 8 38 76 40 10 22 48 32 98 34 12 62 80 68 64 82 22 78 58 74 20 22 48 56 12 38 32 72 6 16 74 24 94 84 26 38 18 24 76 78 98 94 72",
"output": "56"
},
{
"input": "100\n44 40 6 40 56 90 98 8 36 64 76 86 98 76 36 92 6 30 98 70 24 98 96 60 24 82 88 68 86 96 34 42 58 10 40 26 56 10 88 58 70 32 24 28 14 82 52 12 62 36 70 60 52 34 74 30 78 76 10 16 42 94 66 90 70 38 52 12 58 22 98 96 14 68 24 70 4 30 84 98 8 50 14 52 66 34 100 10 28 100 56 48 38 12 38 14 91 80 70 86",
"output": "97"
},
{
"input": "100\n96 62 64 20 90 46 56 90 68 36 30 56 70 28 16 64 94 34 6 32 34 50 94 22 90 32 40 2 72 10 88 38 28 92 20 26 56 80 4 100 100 90 16 74 74 84 8 2 30 20 80 32 16 46 92 56 42 12 96 64 64 42 64 58 50 42 74 28 2 4 36 32 70 50 54 92 70 16 45 76 28 16 18 50 48 2 62 94 4 12 52 52 4 100 70 60 82 62 98 42",
"output": "79"
},
{
"input": "99\n14 26 34 68 90 58 50 36 8 16 18 6 2 74 54 20 36 84 32 50 52 2 26 24 3 64 20 10 54 26 66 44 28 72 4 96 78 90 96 86 68 28 94 4 12 46 100 32 22 36 84 32 44 94 76 94 4 52 12 30 74 4 34 64 58 72 44 16 70 56 54 8 14 74 8 6 58 62 98 54 14 40 80 20 36 72 28 98 20 58 40 52 90 64 22 48 54 70 52",
"output": "25"
},
{
"input": "95\n82 86 30 78 6 46 80 66 74 72 16 24 18 52 52 38 60 36 86 26 62 28 22 46 96 26 94 84 20 46 66 88 76 32 12 86 74 18 34 88 4 48 94 6 58 6 100 82 4 24 88 32 54 98 34 48 6 76 42 88 42 28 100 4 22 2 10 66 82 54 98 20 60 66 38 98 32 47 86 58 6 100 12 46 2 42 8 84 78 28 24 70 34 28 86",
"output": "78"
},
{
"input": "90\n40 50 8 42 76 24 58 42 26 68 20 48 54 12 34 84 14 36 32 88 6 50 96 56 20 92 48 16 40 34 96 46 20 84 30 50 20 98 8 44 96 42 8 76 70 38 84 30 40 88 84 72 2 22 52 58 16 62 100 66 80 40 50 32 14 62 88 72 22 99 76 50 84 82 8 82 98 46 26 40 2 98 18 78 30 72 70 18 34 68",
"output": "70"
},
{
"input": "80\n81 43 87 1 55 43 53 61 27 19 43 13 89 9 33 83 75 55 97 71 91 37 95 5 21 69 81 93 95 69 31 83 55 7 97 7 79 57 8 61 27 85 49 1 15 97 63 79 29 73 41 85 5 41 31 93 67 11 63 59 15 99 91 77 43 69 23 23 81 73 19 1 67 51 1 75 99 67 3 81",
"output": "39"
},
{
"input": "98\n13 83 61 27 35 1 85 95 97 73 95 65 73 45 5 43 27 83 91 19 11 3 85 59 9 39 69 23 45 7 51 85 5 71 5 95 1 51 75 3 43 57 3 11 33 71 21 99 47 41 87 39 71 87 31 85 91 49 83 5 49 85 47 91 55 99 33 23 31 23 23 73 29 77 55 31 25 5 81 49 91 15 15 39 87 5 9 40 69 47 29 33 11 21 49 79 51 83",
"output": "88"
},
{
"input": "3\n100 100 1",
"output": "3"
}
] | 1,473,801,605
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 32
| 154
| 0
|
a = input()
b = list(map(int,input().split()))
c = []
d = []
for i in b:
if i/2 == i//2:
c.append(i)
else:
d.append(i)
if len(c) == 1:
print(b.index(c[0])+1)
else:
print(b.index(d[0])+1)
|
Title: IQ test
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
Input Specification:
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
Output Specification:
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
Demo Input:
['5\n2 4 7 8 10\n', '4\n1 2 1 1\n']
Demo Output:
['3\n', '2\n']
Note:
none
|
```python
a = input()
b = list(map(int,input().split()))
c = []
d = []
for i in b:
if i/2 == i//2:
c.append(i)
else:
d.append(i)
if len(c) == 1:
print(b.index(c[0])+1)
else:
print(b.index(d[0])+1)
```
| 3.9615
|
559
|
A
|
Gerald's Hexagon
|
PROGRAMMING
| 1,600
|
[
"brute force",
"geometry",
"math"
] | null | null |
Gerald got a very curious hexagon for his birthday. The boy found out that all the angles of the hexagon are equal to . Then he measured the length of its sides, and found that each of them is equal to an integer number of centimeters. There the properties of the hexagon ended and Gerald decided to draw on it.
He painted a few lines, parallel to the sides of the hexagon. The lines split the hexagon into regular triangles with sides of 1 centimeter. Now Gerald wonders how many triangles he has got. But there were so many of them that Gerald lost the track of his counting. Help the boy count the triangles.
|
The first and the single line of the input contains 6 space-separated integers *a*1,<=*a*2,<=*a*3,<=*a*4,<=*a*5 and *a*6 (1<=β€<=*a**i*<=β€<=1000) β the lengths of the sides of the hexagons in centimeters in the clockwise order. It is guaranteed that the hexagon with the indicated properties and the exactly such sides exists.
|
Print a single integer β the number of triangles with the sides of one 1 centimeter, into which the hexagon is split.
|
[
"1 1 1 1 1 1\n",
"1 2 1 2 1 2\n"
] |
[
"6\n",
"13\n"
] |
This is what Gerald's hexagon looks like in the first sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/84d193e27b02c38eb1eadc536602a2ec0b9f9519.png" style="max-width: 100.0%;max-height: 100.0%;"/>
And that's what it looks like in the second sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/e29076a96da8ca864654cc6195654d9bf07d31ce.png" style="max-width: 100.0%;max-height: 100.0%;"/>
| 500
|
[
{
"input": "1 1 1 1 1 1",
"output": "6"
},
{
"input": "1 2 1 2 1 2",
"output": "13"
},
{
"input": "2 4 5 3 3 6",
"output": "83"
},
{
"input": "45 19 48 18 46 21",
"output": "6099"
},
{
"input": "66 6 65 6 66 5",
"output": "5832"
},
{
"input": "7 5 4 8 4 5",
"output": "175"
},
{
"input": "3 2 1 4 1 2",
"output": "25"
},
{
"input": "7 1 7 3 5 3",
"output": "102"
},
{
"input": "9 2 9 3 8 3",
"output": "174"
},
{
"input": "1 6 1 5 2 5",
"output": "58"
},
{
"input": "41 64 48 61 44 68",
"output": "17488"
},
{
"input": "1 59 2 59 1 60",
"output": "3838"
},
{
"input": "30 36 36 32 34 38",
"output": "7052"
},
{
"input": "50 40 46 38 52 34",
"output": "11176"
},
{
"input": "4 60 4 60 4 60",
"output": "4576"
},
{
"input": "718 466 729 470 714 481",
"output": "2102808"
},
{
"input": "131 425 143 461 95 473",
"output": "441966"
},
{
"input": "125 7 128 8 124 11",
"output": "20215"
},
{
"input": "677 303 685 288 692 296",
"output": "1365807"
},
{
"input": "1 577 7 576 2 582",
"output": "342171"
},
{
"input": "1000 1000 1000 1000 1000 1000",
"output": "6000000"
},
{
"input": "1 1 1000 1 1 1000",
"output": "4002"
},
{
"input": "1000 1000 1 1000 1000 1",
"output": "2004000"
},
{
"input": "1000 1 1000 999 2 999",
"output": "2003997"
},
{
"input": "1 1000 1 1 1000 1",
"output": "4002"
},
{
"input": "888 888 888 887 889 887",
"output": "4729487"
}
] | 1,559,806,849
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 26
| 109
| 0
|
def input_ints():
return list(map(int, input().split()))
def output_list(v):
print(' '.join(str(x) for x in v))
def main():
a = input_ints()
ans = 0
x = a[0]
for i in range(a[1] + a[2]):
d = 0
d += (1 if i < a[1] else -1)
d += (1 if i < a[5] else -1)
d //= 2
ans += 2 * x + d
x += d
print(ans)
if __name__ == '__main__':
main()
|
Title: Gerald's Hexagon
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Gerald got a very curious hexagon for his birthday. The boy found out that all the angles of the hexagon are equal to . Then he measured the length of its sides, and found that each of them is equal to an integer number of centimeters. There the properties of the hexagon ended and Gerald decided to draw on it.
He painted a few lines, parallel to the sides of the hexagon. The lines split the hexagon into regular triangles with sides of 1 centimeter. Now Gerald wonders how many triangles he has got. But there were so many of them that Gerald lost the track of his counting. Help the boy count the triangles.
Input Specification:
The first and the single line of the input contains 6 space-separated integers *a*1,<=*a*2,<=*a*3,<=*a*4,<=*a*5 and *a*6 (1<=β€<=*a**i*<=β€<=1000) β the lengths of the sides of the hexagons in centimeters in the clockwise order. It is guaranteed that the hexagon with the indicated properties and the exactly such sides exists.
Output Specification:
Print a single integer β the number of triangles with the sides of one 1 centimeter, into which the hexagon is split.
Demo Input:
['1 1 1 1 1 1\n', '1 2 1 2 1 2\n']
Demo Output:
['6\n', '13\n']
Note:
This is what Gerald's hexagon looks like in the first sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/84d193e27b02c38eb1eadc536602a2ec0b9f9519.png" style="max-width: 100.0%;max-height: 100.0%;"/>
And that's what it looks like in the second sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/e29076a96da8ca864654cc6195654d9bf07d31ce.png" style="max-width: 100.0%;max-height: 100.0%;"/>
|
```python
def input_ints():
return list(map(int, input().split()))
def output_list(v):
print(' '.join(str(x) for x in v))
def main():
a = input_ints()
ans = 0
x = a[0]
for i in range(a[1] + a[2]):
d = 0
d += (1 if i < a[1] else -1)
d += (1 if i < a[5] else -1)
d //= 2
ans += 2 * x + d
x += d
print(ans)
if __name__ == '__main__':
main()
```
| 3
|
|
955
|
A
|
Feed the cat
|
PROGRAMMING
| 1,100
|
[
"greedy",
"math"
] | null | null |
After waking up at *hh*:*mm*, Andrew realised that he had forgotten to feed his only cat for yet another time (guess why there's only one cat). The cat's current hunger level is *H* points, moreover each minute without food increases his hunger by *D* points.
At any time Andrew can visit the store where tasty buns are sold (you can assume that is doesn't take time to get to the store and back). One such bun costs *C* roubles and decreases hunger by *N* points. Since the demand for bakery drops heavily in the evening, there is a special 20% discount for buns starting from 20:00 (note that the cost might become rational). Of course, buns cannot be sold by parts.
Determine the minimum amount of money Andrew has to spend in order to feed his cat. The cat is considered fed if its hunger level is less than or equal to zero.
|
The first line contains two integers *hh* and *mm* (00<=β€<=*hh*<=β€<=23,<=00<=β€<=*mm*<=β€<=59) β the time of Andrew's awakening.
The second line contains four integers *H*, *D*, *C* and *N* (1<=β€<=*H*<=β€<=105,<=1<=β€<=*D*,<=*C*,<=*N*<=β€<=102).
|
Output the minimum amount of money to within three decimal digits. You answer is considered correct, if its absolute or relative error does not exceed 10<=-<=4.
Formally, let your answer be *a*, and the jury's answer be *b*. Your answer is considered correct if .
|
[
"19 00\n255 1 100 1\n",
"17 41\n1000 6 15 11\n"
] |
[
"25200.0000\n",
"1365.0000\n"
] |
In the first sample Andrew can visit the store at exactly 20:00. The cat's hunger will be equal to 315, hence it will be necessary to purchase 315 buns. The discount makes the final answer 25200 roubles.
In the second sample it's optimal to visit the store right after he wakes up. Then he'll have to buy 91 bins per 15 roubles each and spend a total of 1365 roubles.
| 500
|
[
{
"input": "19 00\n255 1 100 1",
"output": "25200.0000"
},
{
"input": "17 41\n1000 6 15 11",
"output": "1365.0000"
},
{
"input": "16 34\n61066 14 50 59",
"output": "43360.0000"
},
{
"input": "18 18\n23331 86 87 41",
"output": "49590.0000"
},
{
"input": "10 48\n68438 8 18 29",
"output": "36187.2000"
},
{
"input": "08 05\n63677 9 83 25",
"output": "186252.0000"
},
{
"input": "00 00\n100000 100 100 100",
"output": "100000.0000"
},
{
"input": "20 55\n100000 100 100 100",
"output": "80000.0000"
},
{
"input": "23 59\n100000 100 100 100",
"output": "80000.0000"
},
{
"input": "00 00\n1 100 100 100",
"output": "100.0000"
},
{
"input": "21 26\n33193 54 97 66",
"output": "39032.8000"
},
{
"input": "20 45\n33756 24 21 1",
"output": "567100.8000"
},
{
"input": "14 33\n92062 59 89 72",
"output": "110146.4000"
},
{
"input": "01 24\n92730 5 35 29",
"output": "94920.0000"
},
{
"input": "20 58\n93398 43 86 99",
"output": "64947.2000"
},
{
"input": "23 04\n37170 81 32 64",
"output": "14873.6000"
},
{
"input": "01 38\n70542 27 74 26",
"output": "200836.0000"
},
{
"input": "04 28\n38505 65 25 95",
"output": "10150.0000"
},
{
"input": "00 10\n33077 21 40 22",
"output": "60160.0000"
},
{
"input": "10 44\n66449 67 90 83",
"output": "72090.0000"
},
{
"input": "05 51\n10220 5 33 48",
"output": "7029.0000"
},
{
"input": "20 19\n68886 28 48 94",
"output": "28147.2000"
},
{
"input": "01 49\n11621 55 78 46",
"output": "19734.0000"
},
{
"input": "21 28\n78549 91 4 98",
"output": "2566.4000"
},
{
"input": "18 06\n88580 22 35 59",
"output": "43232.0000"
},
{
"input": "22 28\n55507 53 61 11",
"output": "246293.6000"
},
{
"input": "18 58\n22434 84 91 59",
"output": "34143.2000"
},
{
"input": "15 36\n32466 27 22 15",
"output": "46464.0000"
},
{
"input": "17 31\n9603 53 73 74",
"output": "9490.0000"
},
{
"input": "14 53\n76530 92 4 22",
"output": "13916.0000"
},
{
"input": "18 31\n10753 23 30 74",
"output": "4152.0000"
},
{
"input": "17 43\n16290 46 90 94",
"output": "15660.0000"
},
{
"input": "18 38\n3652 11 53 94",
"output": "2067.0000"
},
{
"input": "19 57\n3 4 7 6",
"output": "7.0000"
}
] | 1,522,237,906
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 34
| 78
| 7,372,800
|
from math import ceil
H,M=input().split()
h,d,c,n=input().split()
H,M,h,d,c,n=int(H),int(M),int(h),int(d),int(c),int(n)
if H<20:
print(min(ceil(h/n)*c,ceil((h+d*(1200-H*60-M))/n)*0.8*c))
else:
print(ceil(h/n)*0.8*c)
|
Title: Feed the cat
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
After waking up at *hh*:*mm*, Andrew realised that he had forgotten to feed his only cat for yet another time (guess why there's only one cat). The cat's current hunger level is *H* points, moreover each minute without food increases his hunger by *D* points.
At any time Andrew can visit the store where tasty buns are sold (you can assume that is doesn't take time to get to the store and back). One such bun costs *C* roubles and decreases hunger by *N* points. Since the demand for bakery drops heavily in the evening, there is a special 20% discount for buns starting from 20:00 (note that the cost might become rational). Of course, buns cannot be sold by parts.
Determine the minimum amount of money Andrew has to spend in order to feed his cat. The cat is considered fed if its hunger level is less than or equal to zero.
Input Specification:
The first line contains two integers *hh* and *mm* (00<=β€<=*hh*<=β€<=23,<=00<=β€<=*mm*<=β€<=59) β the time of Andrew's awakening.
The second line contains four integers *H*, *D*, *C* and *N* (1<=β€<=*H*<=β€<=105,<=1<=β€<=*D*,<=*C*,<=*N*<=β€<=102).
Output Specification:
Output the minimum amount of money to within three decimal digits. You answer is considered correct, if its absolute or relative error does not exceed 10<=-<=4.
Formally, let your answer be *a*, and the jury's answer be *b*. Your answer is considered correct if .
Demo Input:
['19 00\n255 1 100 1\n', '17 41\n1000 6 15 11\n']
Demo Output:
['25200.0000\n', '1365.0000\n']
Note:
In the first sample Andrew can visit the store at exactly 20:00. The cat's hunger will be equal to 315, hence it will be necessary to purchase 315 buns. The discount makes the final answer 25200 roubles.
In the second sample it's optimal to visit the store right after he wakes up. Then he'll have to buy 91 bins per 15 roubles each and spend a total of 1365 roubles.
|
```python
from math import ceil
H,M=input().split()
h,d,c,n=input().split()
H,M,h,d,c,n=int(H),int(M),int(h),int(d),int(c),int(n)
if H<20:
print(min(ceil(h/n)*c,ceil((h+d*(1200-H*60-M))/n)*0.8*c))
else:
print(ceil(h/n)*0.8*c)
```
| 3
|
|
867
|
A
|
Between the Offices
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
As you may know, MemSQL has American offices in both San Francisco and Seattle. Being a manager in the company, you travel a lot between the two cities, always by plane.
You prefer flying from Seattle to San Francisco than in the other direction, because it's warmer in San Francisco. You are so busy that you don't remember the number of flights you have made in either direction. However, for each of the last *n* days you know whether you were in San Francisco office or in Seattle office. You always fly at nights, so you never were at both offices on the same day. Given this information, determine if you flew more times from Seattle to San Francisco during the last *n* days, or not.
|
The first line of input contains single integer *n* (2<=β€<=*n*<=β€<=100)Β β the number of days.
The second line contains a string of length *n* consisting of only capital 'S' and 'F' letters. If the *i*-th letter is 'S', then you were in Seattle office on that day. Otherwise you were in San Francisco. The days are given in chronological order, i.e. today is the last day in this sequence.
|
Print "YES" if you flew more times from Seattle to San Francisco, and "NO" otherwise.
You can print each letter in any case (upper or lower).
|
[
"4\nFSSF\n",
"2\nSF\n",
"10\nFFFFFFFFFF\n",
"10\nSSFFSFFSFF\n"
] |
[
"NO\n",
"YES\n",
"NO\n",
"YES\n"
] |
In the first example you were initially at San Francisco, then flew to Seattle, were there for two days and returned to San Francisco. You made one flight in each direction, so the answer is "NO".
In the second example you just flew from Seattle to San Francisco, so the answer is "YES".
In the third example you stayed the whole period in San Francisco, so the answer is "NO".
In the fourth example if you replace 'S' with ones, and 'F' with zeros, you'll get the first few digits of Ο in binary representation. Not very useful information though.
| 500
|
[
{
"input": "4\nFSSF",
"output": "NO"
},
{
"input": "2\nSF",
"output": "YES"
},
{
"input": "10\nFFFFFFFFFF",
"output": "NO"
},
{
"input": "10\nSSFFSFFSFF",
"output": "YES"
},
{
"input": "20\nSFSFFFFSSFFFFSSSSFSS",
"output": "NO"
},
{
"input": "20\nSSFFFFFSFFFFFFFFFFFF",
"output": "YES"
},
{
"input": "20\nSSFSFSFSFSFSFSFSSFSF",
"output": "YES"
},
{
"input": "20\nSSSSFSFSSFSFSSSSSSFS",
"output": "NO"
},
{
"input": "100\nFFFSFSFSFSSFSFFSSFFFFFSSSSFSSFFFFSFFFFFSFFFSSFSSSFFFFSSFFSSFSFFSSFSSSFSFFSFSFFSFSFFSSFFSFSSSSFSFSFSS",
"output": "NO"
},
{
"input": "100\nFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF",
"output": "NO"
},
{
"input": "100\nFFFFFFFFFFFFFFFFFFFFFFFFFFSFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFSFFFFFFFFFFFFFFFFFSS",
"output": "NO"
},
{
"input": "100\nFFFFFFFFFFFFFSFFFFFFFFFSFSSFFFFFFFFFFFFFFFFFFFFFFSFFSFFFFFSFFFFFFFFSFFFFFFFFFFFFFSFFFFFFFFSFFFFFFFSF",
"output": "NO"
},
{
"input": "100\nSFFSSFFFFFFSSFFFSSFSFFFFFSSFFFSFFFFFFSFSSSFSFSFFFFSFSSFFFFFFFFSFFFFFSFFFFFSSFFFSFFSFSFFFFSFFSFFFFFFF",
"output": "YES"
},
{
"input": "100\nFFFFSSSSSFFSSSFFFSFFFFFSFSSFSFFSFFSSFFSSFSFFFFFSFSFSFSFFFFFFFFFSFSFFSFFFFSFSFFFFFFFFFFFFSFSSFFSSSSFF",
"output": "NO"
},
{
"input": "100\nFFFFFFFFFFFFSSFFFFSFSFFFSFSSSFSSSSSFSSSSFFSSFFFSFSFSSFFFSSSFFSFSFSSFSFSSFSFFFSFFFFFSSFSFFFSSSFSSSFFS",
"output": "NO"
},
{
"input": "100\nFFFSSSFSFSSSSFSSFSFFSSSFFSSFSSFFSSFFSFSSSSFFFSFFFSFSFSSSFSSFSFSFSFFSSSSSFSSSFSFSFFSSFSFSSFFSSFSFFSFS",
"output": "NO"
},
{
"input": "100\nFFSSSSFSSSFSSSSFSSSFFSFSSFFSSFSSSFSSSFFSFFSSSSSSSSSSSSFSSFSSSSFSFFFSSFFFFFFSFSFSSSSSSFSSSFSFSSFSSFSS",
"output": "NO"
},
{
"input": "100\nSSSFFFSSSSFFSSSSSFSSSSFSSSFSSSSSFSSSSSSSSFSFFSSSFFSSFSSSSFFSSSSSSFFSSSSFSSSSSSFSSSFSSSSSSSFSSSSFSSSS",
"output": "NO"
},
{
"input": "100\nFSSSSSSSSSSSFSSSSSSSSSSSSSSSSFSSSSSSFSSSSSSSSSSSSSFSSFSSSSSFSSFSSSSSSSSSFFSSSSSFSFSSSFFSSSSSSSSSSSSS",
"output": "NO"
},
{
"input": "100\nSSSSSSSSSSSSSFSSSSSSSSSSSSFSSSFSSSSSSSSSSSSSSSSSSSSSSSSSSSSSFSSSSSSSSSSSSSSSSFSFSSSSSSSSSSSSSSSSSSFS",
"output": "NO"
},
{
"input": "100\nSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSS",
"output": "NO"
},
{
"input": "100\nSFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF",
"output": "YES"
},
{
"input": "100\nSFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFSFSFFFFFFFFFFFSFSFFFFFFFFFFFFFSFFFFFFFFFFFFFFFFFFFFFFFFF",
"output": "YES"
},
{
"input": "100\nSFFFFFFFFFFFFSSFFFFSFFFFFFFFFFFFFFFFFFFSFFFSSFFFFSFSFFFSFFFFFFFFFFFFFFFSSFFFFFFFFSSFFFFFFFFFFFFFFSFF",
"output": "YES"
},
{
"input": "100\nSFFSSSFFSFSFSFFFFSSFFFFSFFFFFFFFSFSFFFSFFFSFFFSFFFFSFSFFFFFFFSFFFFFFFFFFSFFSSSFFSSFFFFSFFFFSFFFFSFFF",
"output": "YES"
},
{
"input": "100\nSFFFSFFFFSFFFSSFFFSFSFFFSFFFSSFSFFFFFSFFFFFFFFSFSFSFFSFFFSFSSFSFFFSFSFFSSFSFSSSFFFFFFSSFSFFSFFFFFFFF",
"output": "YES"
},
{
"input": "100\nSSSSFFFFSFFFFFFFSFFFFSFSFFFFSSFFFFFFFFFSFFSSFFFFFFSFSFSSFSSSFFFFFFFSFSFFFSSSFFFFFFFSFFFSSFFFFSSFFFSF",
"output": "YES"
},
{
"input": "100\nSSSFSSFFFSFSSSSFSSFSSSSFSSFFFFFSFFSSSSFFSSSFSSSFSSSSFSSSSFSSSSSSSFSFSSFFFSSFFSFFSSSSFSSFFSFSSFSFFFSF",
"output": "YES"
},
{
"input": "100\nSFFSFSSSSSSSFFSSSFSSSSFSFSSFFFSSSSSSFSSSSFSSFSSSFSSSSSSSFSSFSFFFSSFSSFSFSFSSSSSSSSSSSSFFFFSSSSSFSFFF",
"output": "YES"
},
{
"input": "100\nSSSFSFFSFSFFSSSSSFSSSFSSSFFFSSSSSSSSSFSFSFSSSSFSFSSFFFFFSSSSSSSSSSSSSSSSSSSFFSSSSSFSFSSSSFFSSSSFSSSF",
"output": "YES"
},
{
"input": "100\nSSSFSSSSSSSSSSFSSSSFSSSSSSFSSSSSSFSSSSSSSSSSSSSSFSSSFSSSFSSSSSSSSSSSFSSSSSSFSFSSSSFSSSSSSFSSSSSSSSFF",
"output": "YES"
},
{
"input": "100\nSSSSSSSSSSSSSSSFSFSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSFFSSSSSSSSSFSSSSSSSSSSSSSSSSSF",
"output": "YES"
},
{
"input": "100\nSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSSF",
"output": "YES"
},
{
"input": "2\nSS",
"output": "NO"
}
] | 1,587,919,152
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 34
| 108
| 0
|
n=int(input())
stroka=input()
SF=0
FS=0
plusiki=0
while plusiki<n-1:
if stroka[plusiki]=='S' and stroka[plusiki+1]=='F':
SF=SF+1
if stroka[plusiki]=='F' and stroka[plusiki+1]=='S':
FS=FS+1
plusiki=plusiki+1
if SF>FS:
print('YES')
else:
print('NO')
|
Title: Between the Offices
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
As you may know, MemSQL has American offices in both San Francisco and Seattle. Being a manager in the company, you travel a lot between the two cities, always by plane.
You prefer flying from Seattle to San Francisco than in the other direction, because it's warmer in San Francisco. You are so busy that you don't remember the number of flights you have made in either direction. However, for each of the last *n* days you know whether you were in San Francisco office or in Seattle office. You always fly at nights, so you never were at both offices on the same day. Given this information, determine if you flew more times from Seattle to San Francisco during the last *n* days, or not.
Input Specification:
The first line of input contains single integer *n* (2<=β€<=*n*<=β€<=100)Β β the number of days.
The second line contains a string of length *n* consisting of only capital 'S' and 'F' letters. If the *i*-th letter is 'S', then you were in Seattle office on that day. Otherwise you were in San Francisco. The days are given in chronological order, i.e. today is the last day in this sequence.
Output Specification:
Print "YES" if you flew more times from Seattle to San Francisco, and "NO" otherwise.
You can print each letter in any case (upper or lower).
Demo Input:
['4\nFSSF\n', '2\nSF\n', '10\nFFFFFFFFFF\n', '10\nSSFFSFFSFF\n']
Demo Output:
['NO\n', 'YES\n', 'NO\n', 'YES\n']
Note:
In the first example you were initially at San Francisco, then flew to Seattle, were there for two days and returned to San Francisco. You made one flight in each direction, so the answer is "NO".
In the second example you just flew from Seattle to San Francisco, so the answer is "YES".
In the third example you stayed the whole period in San Francisco, so the answer is "NO".
In the fourth example if you replace 'S' with ones, and 'F' with zeros, you'll get the first few digits of Ο in binary representation. Not very useful information though.
|
```python
n=int(input())
stroka=input()
SF=0
FS=0
plusiki=0
while plusiki<n-1:
if stroka[plusiki]=='S' and stroka[plusiki+1]=='F':
SF=SF+1
if stroka[plusiki]=='F' and stroka[plusiki+1]=='S':
FS=FS+1
plusiki=plusiki+1
if SF>FS:
print('YES')
else:
print('NO')
```
| 3
|
|
841
|
A
|
Generous Kefa
|
PROGRAMMING
| 900
|
[
"brute force",
"implementation"
] | null | null |
One day Kefa found *n* baloons. For convenience, we denote color of *i*-th baloon as *s**i* β lowercase letter of the Latin alphabet. Also Kefa has *k* friends. Friend will be upset, If he get two baloons of the same color. Kefa want to give out all baloons to his friends. Help Kefa to find out, can he give out all his baloons, such that no one of his friens will be upset β print Β«YESΒ», if he can, and Β«NOΒ», otherwise. Note, that Kefa's friend will not upset, if he doesn't get baloons at all.
|
The first line contains two integers *n* and *k* (1<=β€<=*n*,<=*k*<=β€<=100) β the number of baloons and friends.
Next line contains string *s* β colors of baloons.
|
Answer to the task β Β«YESΒ» or Β«NOΒ» in a single line.
You can choose the case (lower or upper) for each letter arbitrary.
|
[
"4 2\naabb\n",
"6 3\naacaab\n"
] |
[
"YES\n",
"NO\n"
] |
In the first sample Kefa can give 1-st and 3-rd baloon to the first friend, and 2-nd and 4-th to the second.
In the second sample Kefa needs to give to all his friends baloons of color a, but one baloon will stay, thats why answer is Β«NOΒ».
| 500
|
[
{
"input": "4 2\naabb",
"output": "YES"
},
{
"input": "6 3\naacaab",
"output": "NO"
},
{
"input": "2 2\nlu",
"output": "YES"
},
{
"input": "5 3\novvoo",
"output": "YES"
},
{
"input": "36 13\nbzbzcffczzcbcbzzfzbbfzfzzbfbbcbfccbf",
"output": "YES"
},
{
"input": "81 3\nooycgmvvrophvcvpoupepqllqttwcocuilvyxbyumdmmfapvpnxhjhxfuagpnntonibicaqjvwfhwxhbv",
"output": "NO"
},
{
"input": "100 100\nxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx",
"output": "YES"
},
{
"input": "100 1\nnubcvvjvbjgnjsdkajimdcxvewbcytvfkihunycdrlconddlwgzjasjlsrttlrzsumzpyumpveglfqzmaofbshbojmwuwoxxvrod",
"output": "NO"
},
{
"input": "100 13\nvyldolgryldqrvoldvzvrdrgorlorszddtgqvrlisxxrxdxlqtvtgsrqlzixoyrozxzogqxlsgzdddzqrgitxxritoolzolgrtvl",
"output": "YES"
},
{
"input": "18 6\njzwtnkvmscqhmdlsxy",
"output": "YES"
},
{
"input": "21 2\nfscegcqgzesefghhwcexs",
"output": "NO"
},
{
"input": "32 22\ncduamsptaklqtxlyoutlzepxgyfkvngc",
"output": "YES"
},
{
"input": "49 27\noxyorfnkzwsfllnyvdhdanppuzrnbxehugvmlkgeymqjlmfxd",
"output": "YES"
},
{
"input": "50 24\nxxutzjwbggcwvxztttkmzovtmuwttzcbwoztttohzzxghuuthv",
"output": "YES"
},
{
"input": "57 35\nglxshztrqqfyxthqamagvtmrdparhelnzrqvcwqxjytkbuitovkdxueul",
"output": "YES"
},
{
"input": "75 23\nittttiiuitutuiiuuututiuttiuiuutuuuiuiuuuuttuuttuutuiiuiuiiuiitttuututuiuuii",
"output": "NO"
},
{
"input": "81 66\nfeqevfqfebhvubhuuvfuqheuqhbeeuebehuvhffvbqvqvfbqqvvhevqffbqqhvvqhfeehuhqeqhueuqqq",
"output": "YES"
},
{
"input": "93 42\npqeiafraiavfcteumflpcbpozcomlvpovlzdbldvoopnhdoeqaopzthiuzbzmeieiatthdeqovaqfipqlddllmfcrrnhb",
"output": "YES"
},
{
"input": "100 53\nizszyqyndzwzyzgsdagdwdazadiawizinagqqgczaqqnawgijziziawzszdjdcqjdjqiwgadydcnqisaayjiqqsscwwzjzaycwwc",
"output": "YES"
},
{
"input": "100 14\nvkrdcqbvkwuckpmnbydmczdxoagdsgtqxvhaxntdcxhjcrjyvukhugoglbmyoaqexgtcfdgemmizoniwtmisqqwcwfusmygollab",
"output": "YES"
},
{
"input": "100 42\naaaaaiiiiaiiiaaiaiiaaiiiiiaaaaaiaiiiaiiiiaiiiaaaaaiiiaaaiiaaiiiaiiiaiaaaiaiiiiaaiiiaiiaiaiiaiiiaaaia",
"output": "NO"
},
{
"input": "100 89\ntjbkmydejporbqhcbztkcumxjjgsrvxpuulbhzeeckkbchpbxwhedrlhjsabcexcohgdzouvsgphjdthpuqrlkgzxvqbuhqxdsmf",
"output": "YES"
},
{
"input": "100 100\njhpyiuuzizhubhhpxbbhpyxzhbpjphzppuhiahihiappbhuypyauhizpbibzixjbzxzpbphuiaypyujappuxiyuyaajaxjupbahb",
"output": "YES"
},
{
"input": "100 3\nsszoovvzysavsvzsozzvoozvysozsaszayaszasaysszzzysosyayyvzozovavzoyavsooaoyvoozvvozsaosvayyovazzszzssa",
"output": "NO"
},
{
"input": "100 44\ndluthkxwnorabqsukgnxnvhmsmzilyulpursnxkdsavgemiuizbyzebhyjejgqrvuckhaqtuvdmpziesmpmewpvozdanjyvwcdgo",
"output": "YES"
},
{
"input": "100 90\ntljonbnwnqounictqqctgonktiqoqlocgoblngijqokuquoolciqwnctgoggcbojtwjlculoikbggquqncittwnjbkgkgubnioib",
"output": "YES"
},
{
"input": "100 79\nykxptzgvbqxlregvkvucewtydvnhqhuggdsyqlvcfiuaiddnrrnstityyehiamrggftsqyduwxpuldztyzgmfkehprrneyvtknmf",
"output": "YES"
},
{
"input": "100 79\naagwekyovbviiqeuakbqbqifwavkfkutoriovgfmittulhwojaptacekdirgqoovlleeoqkkdukpadygfwavppohgdrmymmulgci",
"output": "YES"
},
{
"input": "100 93\nearrehrehenaddhdnrdddhdahnadndheeennrearrhraharddreaeraddhehhhrdnredanndneheddrraaneerreedhnadnerhdn",
"output": "YES"
},
{
"input": "100 48\nbmmaebaebmmmbbmxvmammbvvebvaemvbbaxvbvmaxvvmveaxmbbxaaemxmxvxxxvxbmmxaaaevvaxmvamvvmaxaxavexbmmbmmev",
"output": "YES"
},
{
"input": "100 55\nhsavbkehaaesffaeeffakhkhfehbbvbeasahbbbvkesbfvkefeesesevbsvfkbffakvshsbkahfkfakebsvafkbvsskfhfvaasss",
"output": "YES"
},
{
"input": "100 2\ncscffcffsccffsfsfffccssfsscfsfsssffcffsscfccssfffcfscfsscsccccfsssffffcfcfsfffcsfsccffscffcfccccfffs",
"output": "NO"
},
{
"input": "100 3\nzrgznxgdpgfoiifrrrsjfuhvtqxjlgochhyemismjnanfvvpzzvsgajcbsulxyeoepjfwvhkqogiiwqxjkrpsyaqdlwffoockxnc",
"output": "NO"
},
{
"input": "100 5\njbltyyfjakrjeodqepxpkjideulofbhqzxjwlarufwzwsoxhaexpydpqjvhybmvjvntuvhvflokhshpicbnfgsqsmrkrfzcrswwi",
"output": "NO"
},
{
"input": "100 1\nfnslnqktlbmxqpvcvnemxcutebdwepoxikifkzaaixzzydffpdxodmsxjribmxuqhueifdlwzytxkklwhljswqvlejedyrgguvah",
"output": "NO"
},
{
"input": "100 21\nddjenetwgwmdtjbpzssyoqrtirvoygkjlqhhdcjgeurqpunxpupwaepcqkbjjfhnvgpyqnozhhrmhfwararmlcvpgtnopvjqsrka",
"output": "YES"
},
{
"input": "100 100\nnjrhiauqlgkkpkuvciwzivjbbplipvhslqgdkfnmqrxuxnycmpheenmnrglotzuyxycosfediqcuadklsnzjqzfxnbjwvfljnlvq",
"output": "YES"
},
{
"input": "100 100\nbbbbbbbtbbttbtbbbttbttbtbbttttbbbtbttbbbtbttbtbbttttbbbbbtbbttbtbbtbttbbbtbtbtbtbtbtbbbttbbtbtbtbbtb",
"output": "YES"
},
{
"input": "14 5\nfssmmsfffmfmmm",
"output": "NO"
},
{
"input": "2 1\nff",
"output": "NO"
},
{
"input": "2 1\nhw",
"output": "YES"
},
{
"input": "2 2\nss",
"output": "YES"
},
{
"input": "1 1\nl",
"output": "YES"
},
{
"input": "100 50\nfffffttttttjjjuuuvvvvvdddxxxxwwwwgggbsssncccczzyyyyyhhhhhkrreeeeeeaaaaaiiillllllllooooqqqqqqmmpppppp",
"output": "YES"
},
{
"input": "100 50\nbbbbbbbbgggggggggggaaaaaaaahhhhhhhhhhpppppppppsssssssrrrrrrrrllzzzzzzzeeeeeeekkkkkkkwwwwwwwwjjjjjjjj",
"output": "YES"
},
{
"input": "100 50\nwwwwwwwwwwwwwwxxxxxxxxxxxxxxxxxxxxxxxxzzzzzzzzzzzzzzzzzzbbbbbbbbbbbbbbbbbbbbjjjjjjjjjjjjjjjjjjjjjjjj",
"output": "YES"
},
{
"input": "100 80\nbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmm",
"output": "YES"
},
{
"input": "100 10\nbbttthhhhiiiiiiijjjjjvvvvpppssssseeeeeeewwwwgggkkkkkkkkmmmddddduuuzzzzllllnnnnnxxyyyffffccraaaaooooq",
"output": "YES"
},
{
"input": "100 20\nssssssssssbbbbbbbhhhhhhhyyyyyyyzzzzzzzzzzzzcccccxxxxxxxxxxddddmmmmmmmeeeeeeejjjjjjjjjwwwwwwwtttttttt",
"output": "YES"
},
{
"input": "1 2\na",
"output": "YES"
},
{
"input": "3 1\nabb",
"output": "NO"
},
{
"input": "2 1\naa",
"output": "NO"
},
{
"input": "2 1\nab",
"output": "YES"
},
{
"input": "6 2\naaaaaa",
"output": "NO"
},
{
"input": "8 4\naaaaaaaa",
"output": "NO"
},
{
"input": "4 2\naaaa",
"output": "NO"
},
{
"input": "4 3\naaaa",
"output": "NO"
},
{
"input": "1 3\na",
"output": "YES"
},
{
"input": "4 3\nzzzz",
"output": "NO"
},
{
"input": "4 1\naaaa",
"output": "NO"
},
{
"input": "3 4\nabc",
"output": "YES"
},
{
"input": "2 5\nab",
"output": "YES"
},
{
"input": "2 4\nab",
"output": "YES"
},
{
"input": "1 10\na",
"output": "YES"
},
{
"input": "5 2\nzzzzz",
"output": "NO"
},
{
"input": "53 26\naaaaaaaaaaaaaaaaaaaaaaaaaabbbbbbbbbbbbbbbbbbbbbbbbbbb",
"output": "NO"
},
{
"input": "4 1\nabab",
"output": "NO"
},
{
"input": "4 1\nabcb",
"output": "NO"
},
{
"input": "4 2\nabbb",
"output": "NO"
},
{
"input": "5 2\nabccc",
"output": "NO"
},
{
"input": "2 3\nab",
"output": "YES"
},
{
"input": "4 3\nbbbs",
"output": "YES"
},
{
"input": "10 2\nazzzzzzzzz",
"output": "NO"
},
{
"input": "1 2\nb",
"output": "YES"
},
{
"input": "1 3\nb",
"output": "YES"
},
{
"input": "4 5\nabcd",
"output": "YES"
},
{
"input": "4 6\naabb",
"output": "YES"
},
{
"input": "5 2\naaaab",
"output": "NO"
},
{
"input": "3 5\naaa",
"output": "YES"
},
{
"input": "5 3\nazzzz",
"output": "NO"
},
{
"input": "4 100\naabb",
"output": "YES"
},
{
"input": "3 10\naaa",
"output": "YES"
},
{
"input": "3 4\naaa",
"output": "YES"
},
{
"input": "12 5\naaaaabbbbbbb",
"output": "NO"
},
{
"input": "5 2\naabbb",
"output": "NO"
},
{
"input": "10 5\nzzzzzzzzzz",
"output": "NO"
},
{
"input": "2 4\naa",
"output": "YES"
},
{
"input": "1 5\na",
"output": "YES"
},
{
"input": "10 5\naaaaaaaaaa",
"output": "NO"
},
{
"input": "6 3\naaaaaa",
"output": "NO"
},
{
"input": "7 1\nabcdeee",
"output": "NO"
},
{
"input": "18 3\naaaaaabbbbbbcccccc",
"output": "NO"
},
{
"input": "8 2\naabbccdd",
"output": "YES"
},
{
"input": "4 2\nzzzz",
"output": "NO"
},
{
"input": "4 2\nabaa",
"output": "NO"
},
{
"input": "3 2\naaa",
"output": "NO"
},
{
"input": "3 1\nzzz",
"output": "NO"
},
{
"input": "5 4\nzzzzz",
"output": "NO"
},
{
"input": "6 2\naabbbc",
"output": "NO"
},
{
"input": "3 6\naaa",
"output": "YES"
},
{
"input": "2 1\nzz",
"output": "NO"
},
{
"input": "10 3\naaaeeeeeee",
"output": "NO"
},
{
"input": "4 5\naabb",
"output": "YES"
},
{
"input": "3 1\naaa",
"output": "NO"
},
{
"input": "5 2\naazzz",
"output": "NO"
},
{
"input": "6 2\nabbbbc",
"output": "NO"
},
{
"input": "4 2\nxxxx",
"output": "NO"
},
{
"input": "6 3\nzzzzzz",
"output": "NO"
},
{
"input": "3 2\nabb",
"output": "YES"
},
{
"input": "3 2\nzzz",
"output": "NO"
},
{
"input": "6 5\nzzzzzz",
"output": "NO"
},
{
"input": "6 3\nbcaaaa",
"output": "NO"
},
{
"input": "100 100\naaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa",
"output": "YES"
},
{
"input": "3 6\nabc",
"output": "YES"
}
] | 1,623,923,671
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 114
| 62
| 0
|
n, k = map(int, input().split())
s, a = input(), []
b = [x for x in s]
for i in set(b):
a.append(s.count(i))
print("YES" if k >= max(a) else "NO")
|
Title: Generous Kefa
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day Kefa found *n* baloons. For convenience, we denote color of *i*-th baloon as *s**i* β lowercase letter of the Latin alphabet. Also Kefa has *k* friends. Friend will be upset, If he get two baloons of the same color. Kefa want to give out all baloons to his friends. Help Kefa to find out, can he give out all his baloons, such that no one of his friens will be upset β print Β«YESΒ», if he can, and Β«NOΒ», otherwise. Note, that Kefa's friend will not upset, if he doesn't get baloons at all.
Input Specification:
The first line contains two integers *n* and *k* (1<=β€<=*n*,<=*k*<=β€<=100) β the number of baloons and friends.
Next line contains string *s* β colors of baloons.
Output Specification:
Answer to the task β Β«YESΒ» or Β«NOΒ» in a single line.
You can choose the case (lower or upper) for each letter arbitrary.
Demo Input:
['4 2\naabb\n', '6 3\naacaab\n']
Demo Output:
['YES\n', 'NO\n']
Note:
In the first sample Kefa can give 1-st and 3-rd baloon to the first friend, and 2-nd and 4-th to the second.
In the second sample Kefa needs to give to all his friends baloons of color a, but one baloon will stay, thats why answer is Β«NOΒ».
|
```python
n, k = map(int, input().split())
s, a = input(), []
b = [x for x in s]
for i in set(b):
a.append(s.count(i))
print("YES" if k >= max(a) else "NO")
```
| 3
|
|
595
|
A
|
Vitaly and Night
|
PROGRAMMING
| 800
|
[
"constructive algorithms",
"implementation"
] | null | null |
One day Vitaly was going home late at night and wondering: how many people aren't sleeping at that moment? To estimate, Vitaly decided to look which windows are lit in the house he was passing by at that moment.
Vitaly sees a building of *n* floors and 2Β·*m* windows on each floor. On each floor there are *m* flats numbered from 1 to *m*, and two consecutive windows correspond to each flat. If we number the windows from 1 to 2Β·*m* from left to right, then the *j*-th flat of the *i*-th floor has windows 2Β·*j*<=-<=1 and 2Β·*j* in the corresponding row of windows (as usual, floors are enumerated from the bottom). Vitaly thinks that people in the flat aren't sleeping at that moment if at least one of the windows corresponding to this flat has lights on.
Given the information about the windows of the given house, your task is to calculate the number of flats where, according to Vitaly, people aren't sleeping.
|
The first line of the input contains two integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=100)Β β the number of floors in the house and the number of flats on each floor respectively.
Next *n* lines describe the floors from top to bottom and contain 2Β·*m* characters each. If the *i*-th window of the given floor has lights on, then the *i*-th character of this line is '1', otherwise it is '0'.
|
Print a single integerΒ β the number of flats that have lights on in at least one window, that is, the flats where, according to Vitaly, people aren't sleeping.
|
[
"2 2\n0 0 0 1\n1 0 1 1\n",
"1 3\n1 1 0 1 0 0\n"
] |
[
"3\n",
"2\n"
] |
In the first test case the house has two floors, two flats on each floor. That is, in total there are 4 flats. The light isn't on only on the second floor in the left flat. That is, in both rooms of the flat the light is off.
In the second test case the house has one floor and the first floor has three flats. The light is on in the leftmost flat (in both windows) and in the middle flat (in one window). In the right flat the light is off.
| 500
|
[
{
"input": "2 2\n0 0 0 1\n1 0 1 1",
"output": "3"
},
{
"input": "1 3\n1 1 0 1 0 0",
"output": "2"
},
{
"input": "3 3\n1 1 1 1 1 1\n1 1 0 1 1 0\n1 0 0 0 1 1",
"output": "8"
},
{
"input": "1 5\n1 0 1 1 1 0 1 1 1 1",
"output": "5"
},
{
"input": "1 100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 1 1 1 1 0 1 1 1 1 1 1 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 1 1 1 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 1 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": "99"
},
{
"input": "1 100\n0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "6"
},
{
"input": "1 100\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 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 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 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 0\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n0 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 0\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 0\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n0 1\n1 1\n1 1\n1 0\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1",
"output": "100"
},
{
"input": "100 1\n0 0\n0 0\n0 1\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\n1 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 1\n0 0\n0 0\n0 0\n1 0\n0 0\n0 0\n0 0\n1 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 1\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 1\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\n1 0",
"output": "8"
},
{
"input": "100 1\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": "1 1\n0 0",
"output": "0"
},
{
"input": "1 1\n0 1",
"output": "1"
},
{
"input": "1 1\n1 0",
"output": "1"
},
{
"input": "1 1\n1 1",
"output": "1"
}
] | 1,447,002,745
| 2,545
|
Python 3
|
OK
|
TESTS
| 36
| 62
| 102,400
|
n,m=map(int,input().split())
c=0
for i in range(n):
a=list(map(int,input().split()))
for i in range(m):
if a[2*i]+a[2*i+1]>0:
c+=1
print(c)
|
Title: Vitaly and Night
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day Vitaly was going home late at night and wondering: how many people aren't sleeping at that moment? To estimate, Vitaly decided to look which windows are lit in the house he was passing by at that moment.
Vitaly sees a building of *n* floors and 2Β·*m* windows on each floor. On each floor there are *m* flats numbered from 1 to *m*, and two consecutive windows correspond to each flat. If we number the windows from 1 to 2Β·*m* from left to right, then the *j*-th flat of the *i*-th floor has windows 2Β·*j*<=-<=1 and 2Β·*j* in the corresponding row of windows (as usual, floors are enumerated from the bottom). Vitaly thinks that people in the flat aren't sleeping at that moment if at least one of the windows corresponding to this flat has lights on.
Given the information about the windows of the given house, your task is to calculate the number of flats where, according to Vitaly, people aren't sleeping.
Input Specification:
The first line of the input contains two integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=100)Β β the number of floors in the house and the number of flats on each floor respectively.
Next *n* lines describe the floors from top to bottom and contain 2Β·*m* characters each. If the *i*-th window of the given floor has lights on, then the *i*-th character of this line is '1', otherwise it is '0'.
Output Specification:
Print a single integerΒ β the number of flats that have lights on in at least one window, that is, the flats where, according to Vitaly, people aren't sleeping.
Demo Input:
['2 2\n0 0 0 1\n1 0 1 1\n', '1 3\n1 1 0 1 0 0\n']
Demo Output:
['3\n', '2\n']
Note:
In the first test case the house has two floors, two flats on each floor. That is, in total there are 4 flats. The light isn't on only on the second floor in the left flat. That is, in both rooms of the flat the light is off.
In the second test case the house has one floor and the first floor has three flats. The light is on in the leftmost flat (in both windows) and in the middle flat (in one window). In the right flat the light is off.
|
```python
n,m=map(int,input().split())
c=0
for i in range(n):
a=list(map(int,input().split()))
for i in range(m):
if a[2*i]+a[2*i+1]>0:
c+=1
print(c)
```
| 3
|
|
604
|
B
|
More Cowbell
|
PROGRAMMING
| 1,400
|
[
"binary search",
"greedy"
] | null | null |
Kevin Sun wants to move his precious collection of *n* cowbells from Naperthrill to Exeter, where there is actually grass instead of corn. Before moving, he must pack his cowbells into *k* boxes of a fixed size. In order to keep his collection safe during transportation, he won't place more than two cowbells into a single box. Since Kevin wishes to minimize expenses, he is curious about the smallest size box he can use to pack his entire collection.
Kevin is a meticulous cowbell collector and knows that the size of his *i*-th (1<=β€<=*i*<=β€<=*n*) cowbell is an integer *s**i*. In fact, he keeps his cowbells sorted by size, so *s**i*<=-<=1<=β€<=*s**i* for any *i*<=><=1. Also an expert packer, Kevin can fit one or two cowbells into a box of size *s* if and only if the sum of their sizes does not exceed *s*. Given this information, help Kevin determine the smallest *s* for which it is possible to put all of his cowbells into *k* boxes of size *s*.
|
The first line of the input contains two space-separated integers *n* and *k* (1<=β€<=*n*<=β€<=2Β·*k*<=β€<=100<=000), denoting the number of cowbells and the number of boxes, respectively.
The next line contains *n* space-separated integers *s*1,<=*s*2,<=...,<=*s**n* (1<=β€<=*s*1<=β€<=*s*2<=β€<=...<=β€<=*s**n*<=β€<=1<=000<=000), the sizes of Kevin's cowbells. It is guaranteed that the sizes *s**i* are given in non-decreasing order.
|
Print a single integer, the smallest *s* for which it is possible for Kevin to put all of his cowbells into *k* boxes of size *s*.
|
[
"2 1\n2 5\n",
"4 3\n2 3 5 9\n",
"3 2\n3 5 7\n"
] |
[
"7\n",
"9\n",
"8\n"
] |
In the first sample, Kevin must pack his two cowbells into the same box.
In the second sample, Kevin can pack together the following sets of cowbells: {2,β3}, {5} and {9}.
In the third sample, the optimal solution is {3,β5} and {7}.
| 1,000
|
[
{
"input": "2 1\n2 5",
"output": "7"
},
{
"input": "4 3\n2 3 5 9",
"output": "9"
},
{
"input": "3 2\n3 5 7",
"output": "8"
},
{
"input": "20 11\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "2"
},
{
"input": "10 10\n3 15 31 61 63 63 68 94 98 100",
"output": "100"
},
{
"input": "100 97\n340 402 415 466 559 565 649 689 727 771 774 776 789 795 973 1088 1212 1293 1429 1514 1587 1599 1929 1997 2278 2529 2656 2677 2839 2894 2951 3079 3237 3250 3556 3568 3569 3578 3615 3641 3673 3892 4142 4418 4515 4766 4846 4916 5225 5269 5352 5460 5472 5635 5732 5886 5941 5976 5984 6104 6113 6402 6409 6460 6550 6563 6925 7006 7289 7401 7441 7451 7709 7731 7742 7750 7752 7827 8101 8154 8376 8379 8432 8534 8578 8630 8706 8814 8882 8972 9041 9053 9109 9173 9473 9524 9547 9775 9791 9983",
"output": "9983"
},
{
"input": "10 9\n7 29 35 38 41 47 54 56 73 74",
"output": "74"
},
{
"input": "1 2342\n12345",
"output": "12345"
},
{
"input": "10 5\n15 15 20 28 38 44 46 52 69 94",
"output": "109"
},
{
"input": "10 9\n6 10 10 32 36 38 69 80 82 93",
"output": "93"
},
{
"input": "10 10\n4 19 22 24 25 43 49 56 78 88",
"output": "88"
},
{
"input": "100 89\n474 532 759 772 803 965 1043 1325 1342 1401 1411 1452 1531 1707 1906 1928 2034 2222 2335 2606 2757 2968 2978 3211 3513 3734 3772 3778 3842 3948 3976 4038 4055 4113 4182 4267 4390 4408 4478 4595 4668 4792 4919 5133 5184 5255 5312 5341 5476 5628 5683 5738 5767 5806 5973 6051 6134 6254 6266 6279 6314 6342 6599 6676 6747 6777 6827 6842 7057 7097 7259 7340 7378 7405 7510 7520 7698 7796 8148 8351 8507 8601 8805 8814 8826 8978 9116 9140 9174 9338 9394 9403 9407 9423 9429 9519 9764 9784 9838 9946",
"output": "9946"
},
{
"input": "100 74\n10 211 323 458 490 592 979 981 1143 1376 1443 1499 1539 1612 1657 1874 2001 2064 2123 2274 2346 2471 2522 2589 2879 2918 2933 2952 3160 3164 3167 3270 3382 3404 3501 3522 3616 3802 3868 3985 4007 4036 4101 4580 4687 4713 4714 4817 4955 5257 5280 5343 5428 5461 5566 5633 5727 5874 5925 6233 6309 6389 6500 6701 6731 6847 6916 7088 7088 7278 7296 7328 7564 7611 7646 7887 7887 8065 8075 8160 8300 8304 8316 8355 8404 8587 8758 8794 8890 9038 9163 9235 9243 9339 9410 9587 9868 9916 9923 9986",
"output": "9986"
},
{
"input": "100 61\n82 167 233 425 432 456 494 507 562 681 683 921 1218 1323 1395 1531 1586 1591 1675 1766 1802 1842 2116 2625 2697 2735 2739 3337 3349 3395 3406 3596 3610 3721 4059 4078 4305 4330 4357 4379 4558 4648 4651 4784 4819 4920 5049 5312 5361 5418 5440 5463 5547 5594 5821 5951 5972 6141 6193 6230 6797 6842 6853 6854 7017 7026 7145 7322 7391 7460 7599 7697 7756 7768 7872 7889 8094 8215 8408 8440 8462 8714 8756 8760 8881 9063 9111 9184 9281 9373 9406 9417 9430 9511 9563 9634 9660 9788 9883 9927",
"output": "9927"
},
{
"input": "100 84\n53 139 150 233 423 570 786 861 995 1017 1072 1196 1276 1331 1680 1692 1739 1748 1826 2067 2280 2324 2368 2389 2607 2633 2760 2782 2855 2996 3030 3093 3513 3536 3557 3594 3692 3707 3823 3832 4009 4047 4088 4095 4408 4537 4565 4601 4784 4878 4935 5029 5252 5322 5389 5407 5511 5567 5857 6182 6186 6198 6280 6290 6353 6454 6458 6567 6843 7166 7216 7257 7261 7375 7378 7539 7542 7762 7771 7797 7980 8363 8606 8612 8663 8801 8808 8823 8918 8975 8997 9240 9245 9259 9356 9755 9759 9760 9927 9970",
"output": "9970"
},
{
"input": "100 50\n130 248 312 312 334 589 702 916 921 1034 1047 1346 1445 1500 1585 1744 1951 2123 2273 2362 2400 2455 2496 2530 2532 2944 3074 3093 3094 3134 3698 3967 4047 4102 4109 4260 4355 4466 4617 4701 4852 4892 4915 4917 4936 4981 4999 5106 5152 5203 5214 5282 5412 5486 5525 5648 5897 5933 5969 6251 6400 6421 6422 6558 6805 6832 6908 6924 6943 6980 7092 7206 7374 7417 7479 7546 7672 7756 7973 8020 8028 8079 8084 8085 8137 8153 8178 8239 8639 8667 8829 9263 9333 9370 9420 9579 9723 9784 9841 9993",
"output": "11103"
},
{
"input": "100 50\n156 182 208 409 496 515 659 761 772 794 827 912 1003 1236 1305 1388 1412 1422 1428 1465 1613 2160 2411 2440 2495 2684 2724 2925 3033 3035 3155 3260 3378 3442 3483 3921 4031 4037 4091 4113 4119 4254 4257 4442 4559 4614 4687 4839 4896 5054 5246 5316 5346 5859 5928 5981 6148 6250 6422 6433 6448 6471 6473 6485 6503 6779 6812 7050 7064 7074 7141 7378 7424 7511 7574 7651 7808 7858 8286 8291 8446 8536 8599 8628 8636 8768 8900 8981 9042 9055 9114 9146 9186 9411 9480 9590 9681 9749 9757 9983",
"output": "10676"
},
{
"input": "100 50\n145 195 228 411 577 606 629 775 1040 1040 1058 1187 1307 1514 1784 1867 1891 2042 2042 2236 2549 2555 2560 2617 2766 2807 2829 2917 3070 3072 3078 3095 3138 3147 3149 3196 3285 3287 3309 3435 3531 3560 3563 3769 3830 3967 4081 4158 4315 4387 4590 4632 4897 4914 5128 5190 5224 5302 5402 5416 5420 5467 5517 5653 5820 5862 5941 6053 6082 6275 6292 6316 6490 6530 6619 6632 6895 7071 7234 7323 7334 7412 7626 7743 8098 8098 8136 8158 8264 8616 8701 8718 8770 8803 8809 8983 9422 9530 9811 9866",
"output": "10011"
},
{
"input": "100 50\n56 298 387 456 518 532 589 792 870 1041 1055 1122 1141 1166 1310 1329 1523 1548 1626 1730 1780 1833 1850 1911 2006 2157 2303 2377 2403 2442 2450 2522 2573 2822 2994 3200 3238 3252 3280 3311 3345 3422 3429 3506 3526 3617 3686 3791 4134 4467 4525 4614 4633 4792 5017 5220 5243 5338 5445 5536 5639 5675 5763 5875 6129 6220 6228 6287 6385 6616 6789 6822 6940 6959 6985 7297 7304 7391 7443 7580 7824 7884 7981 8055 8063 8223 8280 8322 8346 8473 8688 8986 9087 9323 9477 9489 9518 9621 9699 9804",
"output": "10009"
},
{
"input": "100 49990\n221 257 543 613 818 855 884 1195 1233 1293 1327 1474 1567 1568 1728 1789 1809 1957 1994 2198 2217 2289 2298 2360 2441 2454 2517 2519 2597 2652 2909 2958 2970 3271 3310 3409 3450 3646 3950 3965 4016 4116 4134 4159 4462 4624 4631 4783 4804 5031 5276 5538 5729 5845 5880 5894 5959 5961 6028 6105 6184 6335 6370 6523 6532 6677 6762 6868 6998 7066 7245 7360 7490 7492 7645 7677 7786 7804 8038 8131 8207 8400 8507 8556 8575 8599 8673 8676 8712 8816 9123 9158 9216 9369 9628 9707 9768 9800 9876 9934",
"output": "9934"
},
{
"input": "1 50000\n2",
"output": "2"
},
{
"input": "1 40000\n23456",
"output": "23456"
},
{
"input": "1 2\n10",
"output": "10"
},
{
"input": "1 1\n1",
"output": "1"
},
{
"input": "2 2\n2 3",
"output": "3"
},
{
"input": "4 2\n1 2 8 9",
"output": "10"
}
] | 1,581,269,919
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 54
| 202
| 10,547,200
|
no_of_cowbell,no_of_boxe=map(int,input().split())
li1=list(map(int,input().split()))
cows_packed=no_of_boxe*2
if(no_of_cowbell<=no_of_boxe):
print(li1[no_of_cowbell-1])
else:
j=no_of_cowbell-1
ans=li1[no_of_cowbell-1]
if(no_of_cowbell-no_of_boxe>0):
j=(no_of_cowbell-no_of_boxe)*2-1
i=0
while(i<j):
if(li1[i]+li1[j]>ans):
ans=li1[i]+li1[j]
i+=1
j-=1
print(ans)
|
Title: More Cowbell
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Kevin Sun wants to move his precious collection of *n* cowbells from Naperthrill to Exeter, where there is actually grass instead of corn. Before moving, he must pack his cowbells into *k* boxes of a fixed size. In order to keep his collection safe during transportation, he won't place more than two cowbells into a single box. Since Kevin wishes to minimize expenses, he is curious about the smallest size box he can use to pack his entire collection.
Kevin is a meticulous cowbell collector and knows that the size of his *i*-th (1<=β€<=*i*<=β€<=*n*) cowbell is an integer *s**i*. In fact, he keeps his cowbells sorted by size, so *s**i*<=-<=1<=β€<=*s**i* for any *i*<=><=1. Also an expert packer, Kevin can fit one or two cowbells into a box of size *s* if and only if the sum of their sizes does not exceed *s*. Given this information, help Kevin determine the smallest *s* for which it is possible to put all of his cowbells into *k* boxes of size *s*.
Input Specification:
The first line of the input contains two space-separated integers *n* and *k* (1<=β€<=*n*<=β€<=2Β·*k*<=β€<=100<=000), denoting the number of cowbells and the number of boxes, respectively.
The next line contains *n* space-separated integers *s*1,<=*s*2,<=...,<=*s**n* (1<=β€<=*s*1<=β€<=*s*2<=β€<=...<=β€<=*s**n*<=β€<=1<=000<=000), the sizes of Kevin's cowbells. It is guaranteed that the sizes *s**i* are given in non-decreasing order.
Output Specification:
Print a single integer, the smallest *s* for which it is possible for Kevin to put all of his cowbells into *k* boxes of size *s*.
Demo Input:
['2 1\n2 5\n', '4 3\n2 3 5 9\n', '3 2\n3 5 7\n']
Demo Output:
['7\n', '9\n', '8\n']
Note:
In the first sample, Kevin must pack his two cowbells into the same box.
In the second sample, Kevin can pack together the following sets of cowbells: {2,β3}, {5} and {9}.
In the third sample, the optimal solution is {3,β5} and {7}.
|
```python
no_of_cowbell,no_of_boxe=map(int,input().split())
li1=list(map(int,input().split()))
cows_packed=no_of_boxe*2
if(no_of_cowbell<=no_of_boxe):
print(li1[no_of_cowbell-1])
else:
j=no_of_cowbell-1
ans=li1[no_of_cowbell-1]
if(no_of_cowbell-no_of_boxe>0):
j=(no_of_cowbell-no_of_boxe)*2-1
i=0
while(i<j):
if(li1[i]+li1[j]>ans):
ans=li1[i]+li1[j]
i+=1
j-=1
print(ans)
```
| 3
|
|
474
|
A
|
Keyboard
|
PROGRAMMING
| 900
|
[
"implementation"
] | null | null |
Our good friend Mole is trying to code a big message. He is typing on an unusual keyboard with characters arranged in following way:
Unfortunately Mole is blind, so sometimes it is problem for him to put his hands accurately. He accidentally moved both his hands with one position to the left or to the right. That means that now he presses not a button he wants, but one neighboring button (left or right, as specified in input).
We have a sequence of characters he has typed and we want to find the original message.
|
First line of the input contains one letter describing direction of shifting ('L' or 'R' respectively for left or right).
Second line contains a sequence of characters written by Mole. The size of this sequence will be no more than 100. Sequence contains only symbols that appear on Mole's keyboard. It doesn't contain spaces as there is no space on Mole's keyboard.
It is guaranteed that even though Mole hands are moved, he is still pressing buttons on keyboard and not hitting outside it.
|
Print a line that contains the original message.
|
[
"R\ns;;upimrrfod;pbr\n"
] |
[
"allyouneedislove\n"
] |
none
| 500
|
[
{
"input": "R\ns;;upimrrfod;pbr",
"output": "allyouneedislove"
},
{
"input": "R\nwertyuiop;lkjhgfdsxcvbnm,.",
"output": "qwertyuiolkjhgfdsazxcvbnm,"
},
{
"input": "L\nzxcvbnm,kjhgfdsaqwertyuio",
"output": "xcvbnm,.lkjhgfdswertyuiop"
},
{
"input": "R\nbubbuduppudup",
"output": "vyvvysyooysyo"
},
{
"input": "L\ngggggggggggggggggggggggggggggggggggggggggg",
"output": "hhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhh"
},
{
"input": "R\ngggggggggggggggggggggggggggggggggggggggggg",
"output": "ffffffffffffffffffffffffffffffffffffffffff"
},
{
"input": "L\nggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggg",
"output": "hhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhhh"
},
{
"input": "R\nggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggggg",
"output": "fffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffff"
},
{
"input": "L\nxgwurenkxkiau,c,vonei.zltazmnkhqtwuogkgvgckvja,z.rhanuy.ybebmzcfwozkwvuuiolaqlgvvvewnbuinrncgjwjdsfw",
"output": "cheitrmlclosi.v.bpmro/x;ysx,mljwyeiphlhbhvlbks.x/tjsmiu/unrn,xvgepxlebiiop;sw;hbbbremniomtmvhkekfdge"
},
{
"input": "L\nuoz.vmks,wxrb,nwcvdzh.m,hwsios.lvu,ktes,,ythddhm.sh,d,c,cfj.wqam,bowofbyx,jathqayhreqvixvbmgdokofmym",
"output": "ipx/b,ld.ectn.mevbfxj/,.jedopd/;bi.lyrd..uyjffj,/dj.f.v.vgk/ews,.npepgnuc.ksyjwsujtrwbocbn,hfplpg,u,"
},
{
"input": "R\noedjyrvuw/rn.v.hdwndbiposiewgsn.pnyf;/tsdohp,hrtd/mx,;coj./billd..mwbneohcikrdes/ucjr,wspthleyp,..f,",
"output": "iwshtecyq.eb,c,gsqbsvuoiauwqfab,obtdl.rasigomgers.nzmlxih,.vukks,,nqvbwigxujeswa.yxhemqaorgkwtom,,dm"
},
{
"input": "R\nvgj;o;ijrtfyck,dthccioltcx,crub;oceooognsuvfx/kgo.fbsudv,yod.erdrxhbeiyltxhnrobbb;ydrgroefcr/f;uvdjd",
"output": "cfhliluherdtxjmsrgxxuikrxzmxeyvlixwiiifbaycdz.jfi,dvayscmtis,wesezgvwutkrzgbeivvvltsefeiwdxe.dlycshs"
},
{
"input": "L\nqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqq",
"output": "wwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwww"
},
{
"input": "L\noooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo",
"output": "pppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppppp"
},
{
"input": "L\n,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,",
"output": "...................................................................................................."
},
{
"input": "L\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "xxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx"
},
{
"input": "R\noooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo",
"output": "iiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiii"
},
{
"input": "R\nwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwwww",
"output": "qqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqqq"
},
{
"input": "R\nxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx",
"output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz"
},
{
"input": "L\nq",
"output": "w"
},
{
"input": "L\no",
"output": "p"
},
{
"input": "L\n,",
"output": "."
},
{
"input": "L\nz",
"output": "x"
},
{
"input": "R\n.",
"output": ","
},
{
"input": "R\no",
"output": "i"
},
{
"input": "R\nw",
"output": "q"
},
{
"input": "R\nx",
"output": "z"
},
{
"input": "R\n,./",
"output": "m,."
},
{
"input": "R\nwertuk;;/",
"output": "qweryjll."
},
{
"input": "L\n..",
"output": "//"
}
] | 1,690,985,843
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 31
| 46
| 0
|
kd = dict()
kd[0] = 'qwertyuiop'
kd[1] = 'asdfghjkl;'
kd[2] = 'zxcvbnm,./'
ld = dict()
rd = dict()
for i in range(3):
for j in range(1,len(kd[i])):
ld[kd[i][j]] = kd[i][j-1]
for j in range(len(kd[i])-1):
rd[kd[i][j]] = kd[i][j+1]
q = input()
w = input()
if q == 'L':
for x in w:
print(rd[x],end='')
print()
if q == 'R':
for x in w:
print(ld[x],end='')
print()
|
Title: Keyboard
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Our good friend Mole is trying to code a big message. He is typing on an unusual keyboard with characters arranged in following way:
Unfortunately Mole is blind, so sometimes it is problem for him to put his hands accurately. He accidentally moved both his hands with one position to the left or to the right. That means that now he presses not a button he wants, but one neighboring button (left or right, as specified in input).
We have a sequence of characters he has typed and we want to find the original message.
Input Specification:
First line of the input contains one letter describing direction of shifting ('L' or 'R' respectively for left or right).
Second line contains a sequence of characters written by Mole. The size of this sequence will be no more than 100. Sequence contains only symbols that appear on Mole's keyboard. It doesn't contain spaces as there is no space on Mole's keyboard.
It is guaranteed that even though Mole hands are moved, he is still pressing buttons on keyboard and not hitting outside it.
Output Specification:
Print a line that contains the original message.
Demo Input:
['R\ns;;upimrrfod;pbr\n']
Demo Output:
['allyouneedislove\n']
Note:
none
|
```python
kd = dict()
kd[0] = 'qwertyuiop'
kd[1] = 'asdfghjkl;'
kd[2] = 'zxcvbnm,./'
ld = dict()
rd = dict()
for i in range(3):
for j in range(1,len(kd[i])):
ld[kd[i][j]] = kd[i][j-1]
for j in range(len(kd[i])-1):
rd[kd[i][j]] = kd[i][j+1]
q = input()
w = input()
if q == 'L':
for x in w:
print(rd[x],end='')
print()
if q == 'R':
for x in w:
print(ld[x],end='')
print()
```
| 3
|
|
841
|
A
|
Generous Kefa
|
PROGRAMMING
| 900
|
[
"brute force",
"implementation"
] | null | null |
One day Kefa found *n* baloons. For convenience, we denote color of *i*-th baloon as *s**i* β lowercase letter of the Latin alphabet. Also Kefa has *k* friends. Friend will be upset, If he get two baloons of the same color. Kefa want to give out all baloons to his friends. Help Kefa to find out, can he give out all his baloons, such that no one of his friens will be upset β print Β«YESΒ», if he can, and Β«NOΒ», otherwise. Note, that Kefa's friend will not upset, if he doesn't get baloons at all.
|
The first line contains two integers *n* and *k* (1<=β€<=*n*,<=*k*<=β€<=100) β the number of baloons and friends.
Next line contains string *s* β colors of baloons.
|
Answer to the task β Β«YESΒ» or Β«NOΒ» in a single line.
You can choose the case (lower or upper) for each letter arbitrary.
|
[
"4 2\naabb\n",
"6 3\naacaab\n"
] |
[
"YES\n",
"NO\n"
] |
In the first sample Kefa can give 1-st and 3-rd baloon to the first friend, and 2-nd and 4-th to the second.
In the second sample Kefa needs to give to all his friends baloons of color a, but one baloon will stay, thats why answer is Β«NOΒ».
| 500
|
[
{
"input": "4 2\naabb",
"output": "YES"
},
{
"input": "6 3\naacaab",
"output": "NO"
},
{
"input": "2 2\nlu",
"output": "YES"
},
{
"input": "5 3\novvoo",
"output": "YES"
},
{
"input": "36 13\nbzbzcffczzcbcbzzfzbbfzfzzbfbbcbfccbf",
"output": "YES"
},
{
"input": "81 3\nooycgmvvrophvcvpoupepqllqttwcocuilvyxbyumdmmfapvpnxhjhxfuagpnntonibicaqjvwfhwxhbv",
"output": "NO"
},
{
"input": "100 100\nxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx",
"output": "YES"
},
{
"input": "100 1\nnubcvvjvbjgnjsdkajimdcxvewbcytvfkihunycdrlconddlwgzjasjlsrttlrzsumzpyumpveglfqzmaofbshbojmwuwoxxvrod",
"output": "NO"
},
{
"input": "100 13\nvyldolgryldqrvoldvzvrdrgorlorszddtgqvrlisxxrxdxlqtvtgsrqlzixoyrozxzogqxlsgzdddzqrgitxxritoolzolgrtvl",
"output": "YES"
},
{
"input": "18 6\njzwtnkvmscqhmdlsxy",
"output": "YES"
},
{
"input": "21 2\nfscegcqgzesefghhwcexs",
"output": "NO"
},
{
"input": "32 22\ncduamsptaklqtxlyoutlzepxgyfkvngc",
"output": "YES"
},
{
"input": "49 27\noxyorfnkzwsfllnyvdhdanppuzrnbxehugvmlkgeymqjlmfxd",
"output": "YES"
},
{
"input": "50 24\nxxutzjwbggcwvxztttkmzovtmuwttzcbwoztttohzzxghuuthv",
"output": "YES"
},
{
"input": "57 35\nglxshztrqqfyxthqamagvtmrdparhelnzrqvcwqxjytkbuitovkdxueul",
"output": "YES"
},
{
"input": "75 23\nittttiiuitutuiiuuututiuttiuiuutuuuiuiuuuuttuuttuutuiiuiuiiuiitttuututuiuuii",
"output": "NO"
},
{
"input": "81 66\nfeqevfqfebhvubhuuvfuqheuqhbeeuebehuvhffvbqvqvfbqqvvhevqffbqqhvvqhfeehuhqeqhueuqqq",
"output": "YES"
},
{
"input": "93 42\npqeiafraiavfcteumflpcbpozcomlvpovlzdbldvoopnhdoeqaopzthiuzbzmeieiatthdeqovaqfipqlddllmfcrrnhb",
"output": "YES"
},
{
"input": "100 53\nizszyqyndzwzyzgsdagdwdazadiawizinagqqgczaqqnawgijziziawzszdjdcqjdjqiwgadydcnqisaayjiqqsscwwzjzaycwwc",
"output": "YES"
},
{
"input": "100 14\nvkrdcqbvkwuckpmnbydmczdxoagdsgtqxvhaxntdcxhjcrjyvukhugoglbmyoaqexgtcfdgemmizoniwtmisqqwcwfusmygollab",
"output": "YES"
},
{
"input": "100 42\naaaaaiiiiaiiiaaiaiiaaiiiiiaaaaaiaiiiaiiiiaiiiaaaaaiiiaaaiiaaiiiaiiiaiaaaiaiiiiaaiiiaiiaiaiiaiiiaaaia",
"output": "NO"
},
{
"input": "100 89\ntjbkmydejporbqhcbztkcumxjjgsrvxpuulbhzeeckkbchpbxwhedrlhjsabcexcohgdzouvsgphjdthpuqrlkgzxvqbuhqxdsmf",
"output": "YES"
},
{
"input": "100 100\njhpyiuuzizhubhhpxbbhpyxzhbpjphzppuhiahihiappbhuypyauhizpbibzixjbzxzpbphuiaypyujappuxiyuyaajaxjupbahb",
"output": "YES"
},
{
"input": "100 3\nsszoovvzysavsvzsozzvoozvysozsaszayaszasaysszzzysosyayyvzozovavzoyavsooaoyvoozvvozsaosvayyovazzszzssa",
"output": "NO"
},
{
"input": "100 44\ndluthkxwnorabqsukgnxnvhmsmzilyulpursnxkdsavgemiuizbyzebhyjejgqrvuckhaqtuvdmpziesmpmewpvozdanjyvwcdgo",
"output": "YES"
},
{
"input": "100 90\ntljonbnwnqounictqqctgonktiqoqlocgoblngijqokuquoolciqwnctgoggcbojtwjlculoikbggquqncittwnjbkgkgubnioib",
"output": "YES"
},
{
"input": "100 79\nykxptzgvbqxlregvkvucewtydvnhqhuggdsyqlvcfiuaiddnrrnstityyehiamrggftsqyduwxpuldztyzgmfkehprrneyvtknmf",
"output": "YES"
},
{
"input": "100 79\naagwekyovbviiqeuakbqbqifwavkfkutoriovgfmittulhwojaptacekdirgqoovlleeoqkkdukpadygfwavppohgdrmymmulgci",
"output": "YES"
},
{
"input": "100 93\nearrehrehenaddhdnrdddhdahnadndheeennrearrhraharddreaeraddhehhhrdnredanndneheddrraaneerreedhnadnerhdn",
"output": "YES"
},
{
"input": "100 48\nbmmaebaebmmmbbmxvmammbvvebvaemvbbaxvbvmaxvvmveaxmbbxaaemxmxvxxxvxbmmxaaaevvaxmvamvvmaxaxavexbmmbmmev",
"output": "YES"
},
{
"input": "100 55\nhsavbkehaaesffaeeffakhkhfehbbvbeasahbbbvkesbfvkefeesesevbsvfkbffakvshsbkahfkfakebsvafkbvsskfhfvaasss",
"output": "YES"
},
{
"input": "100 2\ncscffcffsccffsfsfffccssfsscfsfsssffcffsscfccssfffcfscfsscsccccfsssffffcfcfsfffcsfsccffscffcfccccfffs",
"output": "NO"
},
{
"input": "100 3\nzrgznxgdpgfoiifrrrsjfuhvtqxjlgochhyemismjnanfvvpzzvsgajcbsulxyeoepjfwvhkqogiiwqxjkrpsyaqdlwffoockxnc",
"output": "NO"
},
{
"input": "100 5\njbltyyfjakrjeodqepxpkjideulofbhqzxjwlarufwzwsoxhaexpydpqjvhybmvjvntuvhvflokhshpicbnfgsqsmrkrfzcrswwi",
"output": "NO"
},
{
"input": "100 1\nfnslnqktlbmxqpvcvnemxcutebdwepoxikifkzaaixzzydffpdxodmsxjribmxuqhueifdlwzytxkklwhljswqvlejedyrgguvah",
"output": "NO"
},
{
"input": "100 21\nddjenetwgwmdtjbpzssyoqrtirvoygkjlqhhdcjgeurqpunxpupwaepcqkbjjfhnvgpyqnozhhrmhfwararmlcvpgtnopvjqsrka",
"output": "YES"
},
{
"input": "100 100\nnjrhiauqlgkkpkuvciwzivjbbplipvhslqgdkfnmqrxuxnycmpheenmnrglotzuyxycosfediqcuadklsnzjqzfxnbjwvfljnlvq",
"output": "YES"
},
{
"input": "100 100\nbbbbbbbtbbttbtbbbttbttbtbbttttbbbtbttbbbtbttbtbbttttbbbbbtbbttbtbbtbttbbbtbtbtbtbtbtbbbttbbtbtbtbbtb",
"output": "YES"
},
{
"input": "14 5\nfssmmsfffmfmmm",
"output": "NO"
},
{
"input": "2 1\nff",
"output": "NO"
},
{
"input": "2 1\nhw",
"output": "YES"
},
{
"input": "2 2\nss",
"output": "YES"
},
{
"input": "1 1\nl",
"output": "YES"
},
{
"input": "100 50\nfffffttttttjjjuuuvvvvvdddxxxxwwwwgggbsssncccczzyyyyyhhhhhkrreeeeeeaaaaaiiillllllllooooqqqqqqmmpppppp",
"output": "YES"
},
{
"input": "100 50\nbbbbbbbbgggggggggggaaaaaaaahhhhhhhhhhpppppppppsssssssrrrrrrrrllzzzzzzzeeeeeeekkkkkkkwwwwwwwwjjjjjjjj",
"output": "YES"
},
{
"input": "100 50\nwwwwwwwwwwwwwwxxxxxxxxxxxxxxxxxxxxxxxxzzzzzzzzzzzzzzzzzzbbbbbbbbbbbbbbbbbbbbjjjjjjjjjjjjjjjjjjjjjjjj",
"output": "YES"
},
{
"input": "100 80\nbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbbmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmm",
"output": "YES"
},
{
"input": "100 10\nbbttthhhhiiiiiiijjjjjvvvvpppssssseeeeeeewwwwgggkkkkkkkkmmmddddduuuzzzzllllnnnnnxxyyyffffccraaaaooooq",
"output": "YES"
},
{
"input": "100 20\nssssssssssbbbbbbbhhhhhhhyyyyyyyzzzzzzzzzzzzcccccxxxxxxxxxxddddmmmmmmmeeeeeeejjjjjjjjjwwwwwwwtttttttt",
"output": "YES"
},
{
"input": "1 2\na",
"output": "YES"
},
{
"input": "3 1\nabb",
"output": "NO"
},
{
"input": "2 1\naa",
"output": "NO"
},
{
"input": "2 1\nab",
"output": "YES"
},
{
"input": "6 2\naaaaaa",
"output": "NO"
},
{
"input": "8 4\naaaaaaaa",
"output": "NO"
},
{
"input": "4 2\naaaa",
"output": "NO"
},
{
"input": "4 3\naaaa",
"output": "NO"
},
{
"input": "1 3\na",
"output": "YES"
},
{
"input": "4 3\nzzzz",
"output": "NO"
},
{
"input": "4 1\naaaa",
"output": "NO"
},
{
"input": "3 4\nabc",
"output": "YES"
},
{
"input": "2 5\nab",
"output": "YES"
},
{
"input": "2 4\nab",
"output": "YES"
},
{
"input": "1 10\na",
"output": "YES"
},
{
"input": "5 2\nzzzzz",
"output": "NO"
},
{
"input": "53 26\naaaaaaaaaaaaaaaaaaaaaaaaaabbbbbbbbbbbbbbbbbbbbbbbbbbb",
"output": "NO"
},
{
"input": "4 1\nabab",
"output": "NO"
},
{
"input": "4 1\nabcb",
"output": "NO"
},
{
"input": "4 2\nabbb",
"output": "NO"
},
{
"input": "5 2\nabccc",
"output": "NO"
},
{
"input": "2 3\nab",
"output": "YES"
},
{
"input": "4 3\nbbbs",
"output": "YES"
},
{
"input": "10 2\nazzzzzzzzz",
"output": "NO"
},
{
"input": "1 2\nb",
"output": "YES"
},
{
"input": "1 3\nb",
"output": "YES"
},
{
"input": "4 5\nabcd",
"output": "YES"
},
{
"input": "4 6\naabb",
"output": "YES"
},
{
"input": "5 2\naaaab",
"output": "NO"
},
{
"input": "3 5\naaa",
"output": "YES"
},
{
"input": "5 3\nazzzz",
"output": "NO"
},
{
"input": "4 100\naabb",
"output": "YES"
},
{
"input": "3 10\naaa",
"output": "YES"
},
{
"input": "3 4\naaa",
"output": "YES"
},
{
"input": "12 5\naaaaabbbbbbb",
"output": "NO"
},
{
"input": "5 2\naabbb",
"output": "NO"
},
{
"input": "10 5\nzzzzzzzzzz",
"output": "NO"
},
{
"input": "2 4\naa",
"output": "YES"
},
{
"input": "1 5\na",
"output": "YES"
},
{
"input": "10 5\naaaaaaaaaa",
"output": "NO"
},
{
"input": "6 3\naaaaaa",
"output": "NO"
},
{
"input": "7 1\nabcdeee",
"output": "NO"
},
{
"input": "18 3\naaaaaabbbbbbcccccc",
"output": "NO"
},
{
"input": "8 2\naabbccdd",
"output": "YES"
},
{
"input": "4 2\nzzzz",
"output": "NO"
},
{
"input": "4 2\nabaa",
"output": "NO"
},
{
"input": "3 2\naaa",
"output": "NO"
},
{
"input": "3 1\nzzz",
"output": "NO"
},
{
"input": "5 4\nzzzzz",
"output": "NO"
},
{
"input": "6 2\naabbbc",
"output": "NO"
},
{
"input": "3 6\naaa",
"output": "YES"
},
{
"input": "2 1\nzz",
"output": "NO"
},
{
"input": "10 3\naaaeeeeeee",
"output": "NO"
},
{
"input": "4 5\naabb",
"output": "YES"
},
{
"input": "3 1\naaa",
"output": "NO"
},
{
"input": "5 2\naazzz",
"output": "NO"
},
{
"input": "6 2\nabbbbc",
"output": "NO"
},
{
"input": "4 2\nxxxx",
"output": "NO"
},
{
"input": "6 3\nzzzzzz",
"output": "NO"
},
{
"input": "3 2\nabb",
"output": "YES"
},
{
"input": "3 2\nzzz",
"output": "NO"
},
{
"input": "6 5\nzzzzzz",
"output": "NO"
},
{
"input": "6 3\nbcaaaa",
"output": "NO"
},
{
"input": "100 100\naaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa",
"output": "YES"
},
{
"input": "3 6\nabc",
"output": "YES"
}
] | 1,653,152,248
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 114
| 46
| 0
|
baloons, friends = map(int,input().split())
colors = input()
a = {}
for i in colors:
a[i] = a.get(i, 0) + 1
if max(a.values()) > friends:
print('NO')
else:
print('YES')
|
Title: Generous Kefa
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day Kefa found *n* baloons. For convenience, we denote color of *i*-th baloon as *s**i* β lowercase letter of the Latin alphabet. Also Kefa has *k* friends. Friend will be upset, If he get two baloons of the same color. Kefa want to give out all baloons to his friends. Help Kefa to find out, can he give out all his baloons, such that no one of his friens will be upset β print Β«YESΒ», if he can, and Β«NOΒ», otherwise. Note, that Kefa's friend will not upset, if he doesn't get baloons at all.
Input Specification:
The first line contains two integers *n* and *k* (1<=β€<=*n*,<=*k*<=β€<=100) β the number of baloons and friends.
Next line contains string *s* β colors of baloons.
Output Specification:
Answer to the task β Β«YESΒ» or Β«NOΒ» in a single line.
You can choose the case (lower or upper) for each letter arbitrary.
Demo Input:
['4 2\naabb\n', '6 3\naacaab\n']
Demo Output:
['YES\n', 'NO\n']
Note:
In the first sample Kefa can give 1-st and 3-rd baloon to the first friend, and 2-nd and 4-th to the second.
In the second sample Kefa needs to give to all his friends baloons of color a, but one baloon will stay, thats why answer is Β«NOΒ».
|
```python
baloons, friends = map(int,input().split())
colors = input()
a = {}
for i in colors:
a[i] = a.get(i, 0) + 1
if max(a.values()) > friends:
print('NO')
else:
print('YES')
```
| 3
|
|
690
|
D1
|
The Wall (easy)
|
PROGRAMMING
| 1,200
|
[] | null | null |
"The zombies are lurking outside. Waiting. Moaning. And when they come..."
"When they come?"
"I hope the Wall is high enough."
Zombie attacks have hit the Wall, our line of defense in the North. Its protection is failing, and cracks are showing. In places, gaps have appeared, splitting the wall into multiple segments. We call on you for help. Go forth and explore the wall! Report how many disconnected segments there are.
The wall is a two-dimensional structure made of bricks. Each brick is one unit wide and one unit high. Bricks are stacked on top of each other to form columns that are up to *R* bricks high. Each brick is placed either on the ground or directly on top of another brick. Consecutive non-empty columns form a wall segment. The entire wall, all the segments and empty columns in-between, is *C* columns wide.
|
The first line of the input consists of two space-separated integers *R* and *C*, 1<=β€<=*R*,<=*C*<=β€<=100. The next *R* lines provide a description of the columns as follows:
- each of the *R* lines contains a string of length *C*, - the *c*-th character of line *r* is B if there is a brick in column *c* and row *R*<=-<=*r*<=+<=1, and . otherwise.
|
The number of wall segments in the input configuration.
|
[
"3 7\n.......\n.......\n.BB.B..\n",
"4 5\n..B..\n..B..\nB.B.B\nBBB.B\n",
"4 6\n..B...\nB.B.BB\nBBB.BB\nBBBBBB\n",
"1 1\nB\n",
"10 7\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n...B...\nB.BB.B.\n",
"8 8\n........\n........\n........\n........\n.B......\n.B.....B\n.B.....B\n.BB...BB\n"
] |
[
"2\n",
"2\n",
"1\n",
"1\n",
"3\n",
"2\n"
] |
In the first sample case, the 2nd and 3rd columns define the first wall segment, and the 5th column defines the second.
| 0
|
[
{
"input": "3 7\n.......\n.......\n.BB.B..",
"output": "2"
},
{
"input": "4 5\n..B..\n..B..\nB.B.B\nBBB.B",
"output": "2"
},
{
"input": "4 6\n..B...\nB.B.BB\nBBB.BB\nBBBBBB",
"output": "1"
},
{
"input": "1 1\nB",
"output": "1"
},
{
"input": "10 7\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n...B...\nB.BB.B.",
"output": "3"
},
{
"input": "8 8\n........\n........\n........\n........\n.B......\n.B.....B\n.B.....B\n.BB...BB",
"output": "2"
}
] | 1,468,160,299
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 119
| 62
| 0
|
n,m=map(int,input().split())
for i in range(n):
k=input()
f=1
ans=0
for i in k:
if i=='B' and f:
ans+=1
f=0
if i=='.':
f=1
print(ans)
|
Title: The Wall (easy)
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
"The zombies are lurking outside. Waiting. Moaning. And when they come..."
"When they come?"
"I hope the Wall is high enough."
Zombie attacks have hit the Wall, our line of defense in the North. Its protection is failing, and cracks are showing. In places, gaps have appeared, splitting the wall into multiple segments. We call on you for help. Go forth and explore the wall! Report how many disconnected segments there are.
The wall is a two-dimensional structure made of bricks. Each brick is one unit wide and one unit high. Bricks are stacked on top of each other to form columns that are up to *R* bricks high. Each brick is placed either on the ground or directly on top of another brick. Consecutive non-empty columns form a wall segment. The entire wall, all the segments and empty columns in-between, is *C* columns wide.
Input Specification:
The first line of the input consists of two space-separated integers *R* and *C*, 1<=β€<=*R*,<=*C*<=β€<=100. The next *R* lines provide a description of the columns as follows:
- each of the *R* lines contains a string of length *C*, - the *c*-th character of line *r* is B if there is a brick in column *c* and row *R*<=-<=*r*<=+<=1, and . otherwise.
Output Specification:
The number of wall segments in the input configuration.
Demo Input:
['3 7\n.......\n.......\n.BB.B..\n', '4 5\n..B..\n..B..\nB.B.B\nBBB.B\n', '4 6\n..B...\nB.B.BB\nBBB.BB\nBBBBBB\n', '1 1\nB\n', '10 7\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n.......\n...B...\nB.BB.B.\n', '8 8\n........\n........\n........\n........\n.B......\n.B.....B\n.B.....B\n.BB...BB\n']
Demo Output:
['2\n', '2\n', '1\n', '1\n', '3\n', '2\n']
Note:
In the first sample case, the 2nd and 3rd columns define the first wall segment, and the 5th column defines the second.
|
```python
n,m=map(int,input().split())
for i in range(n):
k=input()
f=1
ans=0
for i in k:
if i=='B' and f:
ans+=1
f=0
if i=='.':
f=1
print(ans)
```
| 3
|
|
334
|
B
|
Eight Point Sets
|
PROGRAMMING
| 1,400
|
[
"sortings"
] | null | null |
Gerald is very particular to eight point sets. He thinks that any decent eight point set must consist of all pairwise intersections of three distinct integer vertical straight lines and three distinct integer horizontal straight lines, except for the average of these nine points. In other words, there must be three integers *x*1,<=*x*2,<=*x*3 and three more integers *y*1,<=*y*2,<=*y*3, such that *x*1<=<<=*x*2<=<<=*x*3, *y*1<=<<=*y*2<=<<=*y*3 and the eight point set consists of all points (*x**i*,<=*y**j*) (1<=β€<=*i*,<=*j*<=β€<=3), except for point (*x*2,<=*y*2).
You have a set of eight points. Find out if Gerald can use this set?
|
The input consists of eight lines, the *i*-th line contains two space-separated integers *x**i* and *y**i* (0<=β€<=*x**i*,<=*y**i*<=β€<=106). You do not have any other conditions for these points.
|
In a single line print word "respectable", if the given set of points corresponds to Gerald's decency rules, and "ugly" otherwise.
|
[
"0 0\n0 1\n0 2\n1 0\n1 2\n2 0\n2 1\n2 2\n",
"0 0\n1 0\n2 0\n3 0\n4 0\n5 0\n6 0\n7 0\n",
"1 1\n1 2\n1 3\n2 1\n2 2\n2 3\n3 1\n3 2\n"
] |
[
"respectable\n",
"ugly\n",
"ugly\n"
] |
none
| 1,000
|
[
{
"input": "0 0\n0 1\n0 2\n1 0\n1 2\n2 0\n2 1\n2 2",
"output": "respectable"
},
{
"input": "0 0\n1 0\n2 0\n3 0\n4 0\n5 0\n6 0\n7 0",
"output": "ugly"
},
{
"input": "1 1\n1 2\n1 3\n2 1\n2 2\n2 3\n3 1\n3 2",
"output": "ugly"
},
{
"input": "0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0",
"output": "ugly"
},
{
"input": "1000000 1000000\n1000000 999999\n1000000 999998\n999999 1000000\n999999 999998\n999998 1000000\n999998 999999\n999998 999998",
"output": "respectable"
},
{
"input": "0 0\n1 0\n0 1\n1 1\n0 2\n1 2\n0 3\n1 3",
"output": "ugly"
},
{
"input": "0 0\n2 1\n1 0\n0 2\n2 2\n1 0\n2 1\n0 2",
"output": "ugly"
},
{
"input": "0 0\n2 1\n1 0\n0 2\n2 2\n1 0\n2 1\n0 2",
"output": "ugly"
},
{
"input": "791649 383826\n10864 260573\n504506 185571\n899991 511500\n503197 876976\n688727 569035\n343255 961333\n439355 759581",
"output": "ugly"
},
{
"input": "750592 335292\n226387 434036\n299976 154633\n593197 600998\n62014 689355\n566268 571630\n381455 222817\n50555 288617",
"output": "ugly"
},
{
"input": "716334 42808\n211710 645370\n515258 96837\n14392 766713\n439265 939607\n430602 918570\n845044 187545\n957977 441674",
"output": "ugly"
},
{
"input": "337873 813442\n995185 863182\n375545 263618\n310042 130019\n358572 560779\n305725 729179\n377381 267545\n41376 312626",
"output": "ugly"
},
{
"input": "803784 428886\n995691 328351\n211844 386054\n375491 74073\n692402 660275\n366073 536431\n485832 941417\n96032 356022",
"output": "ugly"
},
{
"input": "999231 584954\n246553 267441\n697080 920011\n173593 403511\n58535 101909\n131124 924182\n779830 204560\n684576 533111",
"output": "ugly"
},
{
"input": "666888 741208\n685852 578759\n211123 826453\n244759 601804\n670436 748132\n976425 387060\n587850 804554\n430242 805528",
"output": "ugly"
},
{
"input": "71768 834717\n13140 834717\n13140 991083\n880763 386898\n71768 386898\n880763 991083\n880763 834717\n13140 386898",
"output": "ugly"
},
{
"input": "941532 913025\n941532 862399\n686271 913025\n686271 862399\n686271 461004\n941532 461004\n908398 862399\n908398 913025",
"output": "ugly"
},
{
"input": "251515 680236\n761697 669947\n251515 669947\n761697 680236\n251515 476629\n761697 476629\n453296 669947\n453296 476629",
"output": "ugly"
},
{
"input": "612573 554036\n195039 655769\n472305 655769\n612573 655769\n195039 160740\n472305 160740\n472305 554036\n612573 160740",
"output": "ugly"
},
{
"input": "343395 788566\n171702 674699\n171702 788566\n971214 788566\n343395 9278\n971214 9278\n343395 674699\n971214 674699",
"output": "ugly"
},
{
"input": "38184 589856\n281207 447136\n281207 42438\n38184 42438\n38184 447136\n880488 589856\n281207 589856\n880488 42438",
"output": "ugly"
},
{
"input": "337499 89260\n337499 565883\n603778 89260\n603778 565883\n234246 89260\n603778 17841\n337499 17841\n234246 17841",
"output": "ugly"
},
{
"input": "180952 311537\n180952 918548\n126568 918548\n180952 268810\n732313 918548\n126568 311537\n126568 268810\n732313 311537",
"output": "ugly"
},
{
"input": "323728 724794\n265581 165113\n323728 146453\n265581 146453\n591097 146453\n265581 724794\n323728 165113\n591097 165113",
"output": "ugly"
},
{
"input": "642921 597358\n922979 597358\n127181 616833\n642921 828316\n922979 828316\n127181 597358\n922979 616833\n127181 828316",
"output": "respectable"
},
{
"input": "69586 260253\n74916 203798\n985457 203798\n74916 943932\n985457 943932\n69586 943932\n985457 260253\n69586 203798",
"output": "respectable"
},
{
"input": "57930 637387\n883991 573\n57930 573\n57930 499963\n399327 573\n399327 637387\n883991 637387\n883991 499963",
"output": "respectable"
},
{
"input": "52820 216139\n52820 999248\n290345 216139\n290345 999248\n308639 216139\n308639 999248\n52820 477113\n308639 477113",
"output": "respectable"
},
{
"input": "581646 464672\n493402 649074\n581646 649074\n214619 649074\n581646 252709\n214619 252709\n214619 464672\n493402 252709",
"output": "respectable"
},
{
"input": "787948 77797\n421941 615742\n421941 77797\n400523 77797\n400523 111679\n787948 615742\n400523 615742\n787948 111679",
"output": "respectable"
},
{
"input": "583956 366985\n759621 567609\n756846 567609\n759621 176020\n583956 567609\n583956 176020\n759621 366985\n756846 176020",
"output": "respectable"
},
{
"input": "0 50000\n0 0\n0 1000000\n50000 0\n50000 1000000\n1000000 0\n1000000 50000\n1000000 1000000",
"output": "respectable"
},
{
"input": "0 8\n0 9\n0 10\n1 8\n3 8\n3 8\n3 9\n3 10",
"output": "ugly"
},
{
"input": "0 1\n0 1\n0 2\n1 1\n1 2\n2 1\n2 1\n2 2",
"output": "ugly"
},
{
"input": "1 2\n1 3\n1 4\n2 2\n2 4\n4 2\n4 2\n4 4",
"output": "ugly"
},
{
"input": "0 0\n0 1\n0 2\n0 0\n1 2\n2 0\n2 1\n2 2",
"output": "ugly"
},
{
"input": "0 0\n0 0\n0 0\n1 1\n1 1\n2 2\n2 2\n2 2",
"output": "ugly"
},
{
"input": "0 0\n0 0\n0 2\n1 1\n1 2\n2 0\n2 1\n2 2",
"output": "ugly"
},
{
"input": "0 0\n0 1\n0 3\n1 0\n1 3\n2 0\n2 2\n2 3",
"output": "ugly"
},
{
"input": "0 0\n0 1\n0 2\n1 0\n1 2\n3 0\n3 1\n3 2",
"output": "respectable"
},
{
"input": "1 1\n1 2\n1 5\n2 1\n2 5\n5 1\n5 2\n5 5",
"output": "respectable"
},
{
"input": "1 1\n1 2\n1 2\n2 3\n2 1\n3 3\n3 1\n3 3",
"output": "ugly"
},
{
"input": "0 0\n0 0\n1 0\n0 1\n2 1\n1 2\n2 2\n2 2",
"output": "ugly"
},
{
"input": "1 1\n1 1\n1 3\n2 1\n2 3\n3 2\n3 2\n3 3",
"output": "ugly"
},
{
"input": "1 0\n1 0\n1 0\n2 3\n2 3\n3 4\n3 4\n3 4",
"output": "ugly"
}
] | 1,606,496,815
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 45
| 216
| 307,200
|
a = []
xDistinct = []
yDistinct = []
for i in range(0, 8):
[n1, n2] = map(int, input().split())
a.append([n1, n2])
if(n1 not in xDistinct):
xDistinct.append(n1)
if(n2 not in yDistinct):
yDistinct.append(n2)
countDistinctX = len(xDistinct)
countDistinctY = len(yDistinct)
if(countDistinctX != 3 and countDistinctY != 3):
print("ugly")
exit()
xDistinct.sort()
yDistinct.sort()
a.sort()
index = 0
for i in range(3):
for j in range(3):
if i == j == 1:
continue
if xDistinct[i] != a[index][0] or yDistinct[j] != a[index][1]:
print('ugly')
exit()
index = index + 1
print('respectable')
|
Title: Eight Point Sets
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Gerald is very particular to eight point sets. He thinks that any decent eight point set must consist of all pairwise intersections of three distinct integer vertical straight lines and three distinct integer horizontal straight lines, except for the average of these nine points. In other words, there must be three integers *x*1,<=*x*2,<=*x*3 and three more integers *y*1,<=*y*2,<=*y*3, such that *x*1<=<<=*x*2<=<<=*x*3, *y*1<=<<=*y*2<=<<=*y*3 and the eight point set consists of all points (*x**i*,<=*y**j*) (1<=β€<=*i*,<=*j*<=β€<=3), except for point (*x*2,<=*y*2).
You have a set of eight points. Find out if Gerald can use this set?
Input Specification:
The input consists of eight lines, the *i*-th line contains two space-separated integers *x**i* and *y**i* (0<=β€<=*x**i*,<=*y**i*<=β€<=106). You do not have any other conditions for these points.
Output Specification:
In a single line print word "respectable", if the given set of points corresponds to Gerald's decency rules, and "ugly" otherwise.
Demo Input:
['0 0\n0 1\n0 2\n1 0\n1 2\n2 0\n2 1\n2 2\n', '0 0\n1 0\n2 0\n3 0\n4 0\n5 0\n6 0\n7 0\n', '1 1\n1 2\n1 3\n2 1\n2 2\n2 3\n3 1\n3 2\n']
Demo Output:
['respectable\n', 'ugly\n', 'ugly\n']
Note:
none
|
```python
a = []
xDistinct = []
yDistinct = []
for i in range(0, 8):
[n1, n2] = map(int, input().split())
a.append([n1, n2])
if(n1 not in xDistinct):
xDistinct.append(n1)
if(n2 not in yDistinct):
yDistinct.append(n2)
countDistinctX = len(xDistinct)
countDistinctY = len(yDistinct)
if(countDistinctX != 3 and countDistinctY != 3):
print("ugly")
exit()
xDistinct.sort()
yDistinct.sort()
a.sort()
index = 0
for i in range(3):
for j in range(3):
if i == j == 1:
continue
if xDistinct[i] != a[index][0] or yDistinct[j] != a[index][1]:
print('ugly')
exit()
index = index + 1
print('respectable')
```
| 3
|
|
472
|
A
|
Design Tutorial: Learn from Math
|
PROGRAMMING
| 800
|
[
"math",
"number theory"
] | null | null |
One way to create a task is to learn from math. You can generate some random math statement or modify some theorems to get something new and build a new task from that.
For example, there is a statement called the "Goldbach's conjecture". It says: "each even number no less than four can be expressed as the sum of two primes". Let's modify it. How about a statement like that: "each integer no less than 12 can be expressed as the sum of two composite numbers." Not like the Goldbach's conjecture, I can prove this theorem.
You are given an integer *n* no less than 12, express it as a sum of two composite numbers.
|
The only line contains an integer *n* (12<=β€<=*n*<=β€<=106).
|
Output two composite integers *x* and *y* (1<=<<=*x*,<=*y*<=<<=*n*) such that *x*<=+<=*y*<==<=*n*. If there are multiple solutions, you can output any of them.
|
[
"12\n",
"15\n",
"23\n",
"1000000\n"
] |
[
"4 8\n",
"6 9\n",
"8 15\n",
"500000 500000\n"
] |
In the first example, 12 = 4 + 8 and both 4, 8 are composite numbers. You can output "6 6" or "8 4" as well.
In the second example, 15 = 6 + 9. Note that you can't output "1 14" because 1 is not a composite number.
| 500
|
[
{
"input": "12",
"output": "4 8"
},
{
"input": "15",
"output": "6 9"
},
{
"input": "23",
"output": "8 15"
},
{
"input": "1000000",
"output": "500000 500000"
},
{
"input": "63874",
"output": "4 63870"
},
{
"input": "14568",
"output": "4 14564"
},
{
"input": "192",
"output": "4 188"
},
{
"input": "86",
"output": "4 82"
},
{
"input": "46220",
"output": "4 46216"
},
{
"input": "57114",
"output": "4 57110"
},
{
"input": "869",
"output": "4 865"
},
{
"input": "738457",
"output": "4 738453"
},
{
"input": "58113",
"output": "6 58107"
},
{
"input": "4864",
"output": "4 4860"
},
{
"input": "15",
"output": "6 9"
},
{
"input": "74752",
"output": "4 74748"
},
{
"input": "6073",
"output": "4 6069"
},
{
"input": "1289",
"output": "4 1285"
},
{
"input": "20",
"output": "4 16"
},
{
"input": "58134",
"output": "4 58130"
},
{
"input": "57756",
"output": "4 57752"
},
{
"input": "765",
"output": "6 759"
},
{
"input": "59",
"output": "4 55"
},
{
"input": "991666",
"output": "4 991662"
},
{
"input": "70761",
"output": "4 70757"
},
{
"input": "13",
"output": "4 9"
},
{
"input": "999999",
"output": "4 999995"
},
{
"input": "17",
"output": "8 9"
},
{
"input": "21",
"output": "6 15"
},
{
"input": "19",
"output": "4 15"
},
{
"input": "100007",
"output": "6 100001"
},
{
"input": "999987",
"output": "6 999981"
},
{
"input": "22",
"output": "4 18"
}
] | 1,696,751,753
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 33
| 46
| 0
|
def prime(n):
d = 2
while d * d <= n and n % d != 0:
d += 1
return d * d > n
n = int(input())
a = 0
b = 0
for i in range(4, n):
if prime(i) is not True and prime(n - i) is not True:
a = i
b = n - i
break
print(a, b)
|
Title: Design Tutorial: Learn from Math
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One way to create a task is to learn from math. You can generate some random math statement or modify some theorems to get something new and build a new task from that.
For example, there is a statement called the "Goldbach's conjecture". It says: "each even number no less than four can be expressed as the sum of two primes". Let's modify it. How about a statement like that: "each integer no less than 12 can be expressed as the sum of two composite numbers." Not like the Goldbach's conjecture, I can prove this theorem.
You are given an integer *n* no less than 12, express it as a sum of two composite numbers.
Input Specification:
The only line contains an integer *n* (12<=β€<=*n*<=β€<=106).
Output Specification:
Output two composite integers *x* and *y* (1<=<<=*x*,<=*y*<=<<=*n*) such that *x*<=+<=*y*<==<=*n*. If there are multiple solutions, you can output any of them.
Demo Input:
['12\n', '15\n', '23\n', '1000000\n']
Demo Output:
['4 8\n', '6 9\n', '8 15\n', '500000 500000\n']
Note:
In the first example, 12 = 4 + 8 and both 4, 8 are composite numbers. You can output "6 6" or "8 4" as well.
In the second example, 15 = 6 + 9. Note that you can't output "1 14" because 1 is not a composite number.
|
```python
def prime(n):
d = 2
while d * d <= n and n % d != 0:
d += 1
return d * d > n
n = int(input())
a = 0
b = 0
for i in range(4, n):
if prime(i) is not True and prime(n - i) is not True:
a = i
b = n - i
break
print(a, b)
```
| 3
|
|
471
|
A
|
MUH and Sticks
|
PROGRAMMING
| 1,100
|
[
"implementation"
] | null | null |
Two polar bears Menshykov and Uslada from the St.Petersburg zoo and elephant Horace from the Kiev zoo got six sticks to play with and assess the animals' creativity. Menshykov, Uslada and Horace decided to make either an elephant or a bear from those sticks. They can make an animal from sticks in the following way:
- Four sticks represent the animal's legs, these sticks should have the same length. - Two remaining sticks represent the animal's head and body. The bear's head stick must be shorter than the body stick. The elephant, however, has a long trunk, so his head stick must be as long as the body stick. Note that there are no limits on the relations between the leg sticks and the head and body sticks.
Your task is to find out which animal can be made from the given stick set. The zoo keeper wants the sticks back after the game, so they must never be broken, even bears understand it.
|
The single line contains six space-separated integers *l**i* (1<=β€<=*l**i*<=β€<=9) β the lengths of the six sticks. It is guaranteed that the input is such that you cannot make both animals from the sticks.
|
If you can make a bear from the given set, print string "Bear" (without the quotes). If you can make an elephant, print string "Elephant" (wΔ±thout the quotes). If you can make neither a bear nor an elephant, print string "Alien" (without the quotes).
|
[
"4 2 5 4 4 4\n",
"4 4 5 4 4 5\n",
"1 2 3 4 5 6\n"
] |
[
"Bear",
"Elephant",
"Alien"
] |
If you're out of creative ideas, see instructions below which show how to make a bear and an elephant in the first two samples. The stick of length 2 is in red, the sticks of length 4 are in green, the sticks of length 5 are in blue.
| 500
|
[
{
"input": "4 2 5 4 4 4",
"output": "Bear"
},
{
"input": "4 4 5 4 4 5",
"output": "Elephant"
},
{
"input": "1 2 3 4 5 6",
"output": "Alien"
},
{
"input": "5 5 5 5 5 5",
"output": "Elephant"
},
{
"input": "1 1 1 2 3 5",
"output": "Alien"
},
{
"input": "1 1 1 1 1 1",
"output": "Elephant"
},
{
"input": "9 9 9 9 9 9",
"output": "Elephant"
},
{
"input": "1 8 9 1 1 1",
"output": "Bear"
},
{
"input": "9 9 9 1 9 9",
"output": "Bear"
},
{
"input": "1 2 3 8 9 7",
"output": "Alien"
},
{
"input": "5 5 5 6 6 6",
"output": "Alien"
},
{
"input": "1 1 2 2 3 4",
"output": "Alien"
},
{
"input": "4 4 4 4 4 2",
"output": "Bear"
},
{
"input": "2 2 3 3 4 4",
"output": "Alien"
},
{
"input": "4 4 4 4 4 5",
"output": "Bear"
},
{
"input": "1 1 2 2 2 2",
"output": "Elephant"
},
{
"input": "1 2 5 5 5 5",
"output": "Bear"
},
{
"input": "4 4 2 2 2 2",
"output": "Elephant"
},
{
"input": "1 1 1 1 1 2",
"output": "Bear"
},
{
"input": "2 2 4 4 4 4",
"output": "Elephant"
},
{
"input": "4 4 4 4 4 3",
"output": "Bear"
},
{
"input": "4 4 5 6 7 8",
"output": "Alien"
},
{
"input": "4 4 4 4 2 2",
"output": "Elephant"
},
{
"input": "1 1 1 1 2 2",
"output": "Elephant"
},
{
"input": "1 1 3 3 3 5",
"output": "Alien"
},
{
"input": "1 2 2 3 3 3",
"output": "Alien"
},
{
"input": "1 2 2 2 2 2",
"output": "Bear"
},
{
"input": "1 3 3 3 4 5",
"output": "Alien"
},
{
"input": "5 1 1 1 1 1",
"output": "Bear"
}
] | 1,596,298,382
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 29
| 108
| 6,656,000
|
a = list(map(int, input().split()))
x = set(a)
o1 = False
o2 = False
for i in x:
if a.count(i) >= 4:
for _ in range(4):
a.remove(i)
o1 = True
break
if o1:
if a[0]==a[1]:
print("Elephant")
else:
print("Bear")
else:
print("Alien")
|
Title: MUH and Sticks
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Two polar bears Menshykov and Uslada from the St.Petersburg zoo and elephant Horace from the Kiev zoo got six sticks to play with and assess the animals' creativity. Menshykov, Uslada and Horace decided to make either an elephant or a bear from those sticks. They can make an animal from sticks in the following way:
- Four sticks represent the animal's legs, these sticks should have the same length. - Two remaining sticks represent the animal's head and body. The bear's head stick must be shorter than the body stick. The elephant, however, has a long trunk, so his head stick must be as long as the body stick. Note that there are no limits on the relations between the leg sticks and the head and body sticks.
Your task is to find out which animal can be made from the given stick set. The zoo keeper wants the sticks back after the game, so they must never be broken, even bears understand it.
Input Specification:
The single line contains six space-separated integers *l**i* (1<=β€<=*l**i*<=β€<=9) β the lengths of the six sticks. It is guaranteed that the input is such that you cannot make both animals from the sticks.
Output Specification:
If you can make a bear from the given set, print string "Bear" (without the quotes). If you can make an elephant, print string "Elephant" (wΔ±thout the quotes). If you can make neither a bear nor an elephant, print string "Alien" (without the quotes).
Demo Input:
['4 2 5 4 4 4\n', '4 4 5 4 4 5\n', '1 2 3 4 5 6\n']
Demo Output:
['Bear', 'Elephant', 'Alien']
Note:
If you're out of creative ideas, see instructions below which show how to make a bear and an elephant in the first two samples. The stick of length 2 is in red, the sticks of length 4 are in green, the sticks of length 5 are in blue.
|
```python
a = list(map(int, input().split()))
x = set(a)
o1 = False
o2 = False
for i in x:
if a.count(i) >= 4:
for _ in range(4):
a.remove(i)
o1 = True
break
if o1:
if a[0]==a[1]:
print("Elephant")
else:
print("Bear")
else:
print("Alien")
```
| 3
|
|
25
|
A
|
IQ test
|
PROGRAMMING
| 1,300
|
[
"brute force"
] |
A. IQ test
|
2
|
256
|
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
|
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
|
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
|
[
"5\n2 4 7 8 10\n",
"4\n1 2 1 1\n"
] |
[
"3\n",
"2\n"
] |
none
| 0
|
[
{
"input": "5\n2 4 7 8 10",
"output": "3"
},
{
"input": "4\n1 2 1 1",
"output": "2"
},
{
"input": "3\n1 2 2",
"output": "1"
},
{
"input": "3\n100 99 100",
"output": "2"
},
{
"input": "3\n5 3 2",
"output": "3"
},
{
"input": "4\n43 28 1 91",
"output": "2"
},
{
"input": "4\n75 13 94 77",
"output": "3"
},
{
"input": "4\n97 8 27 3",
"output": "2"
},
{
"input": "10\n95 51 12 91 85 3 1 31 25 7",
"output": "3"
},
{
"input": "20\n88 96 66 51 14 88 2 92 18 72 18 88 20 30 4 82 90 100 24 46",
"output": "4"
},
{
"input": "30\n20 94 56 50 10 98 52 32 14 22 24 60 4 8 98 46 34 68 82 82 98 90 50 20 78 49 52 94 64 36",
"output": "26"
},
{
"input": "50\n79 27 77 57 37 45 27 49 65 33 57 21 71 19 75 85 65 61 23 97 85 9 23 1 9 3 99 77 77 21 79 69 15 37 15 7 93 81 13 89 91 31 45 93 15 97 55 80 85 83",
"output": "48"
},
{
"input": "60\n46 11 73 65 3 69 3 53 43 53 97 47 55 93 31 75 35 3 9 73 23 31 3 81 91 79 61 21 15 11 11 11 81 7 83 75 39 87 83 59 89 55 93 27 49 67 67 29 1 93 11 17 9 19 35 21 63 31 31 25",
"output": "1"
},
{
"input": "70\n28 42 42 92 64 54 22 38 38 78 62 38 4 38 14 66 4 92 66 58 94 26 4 44 41 88 48 82 44 26 74 44 48 4 16 92 34 38 26 64 94 4 30 78 50 54 12 90 8 16 80 98 28 100 74 50 36 42 92 18 76 98 8 22 2 50 58 50 64 46",
"output": "25"
},
{
"input": "100\n43 35 79 53 13 91 91 45 65 83 57 9 42 39 85 45 71 51 61 59 31 13 63 39 25 21 79 39 91 67 21 61 97 75 93 83 29 79 59 97 11 37 63 51 39 55 91 23 21 17 47 23 35 75 49 5 69 99 5 7 41 17 25 89 15 79 21 63 53 81 43 91 59 91 69 99 85 15 91 51 49 37 65 7 89 81 21 93 61 63 97 93 45 17 13 69 57 25 75 73",
"output": "13"
},
{
"input": "100\n50 24 68 60 70 30 52 22 18 74 68 98 20 82 4 46 26 68 100 78 84 58 74 98 38 88 68 86 64 80 82 100 20 22 98 98 52 6 94 10 48 68 2 18 38 22 22 82 44 20 66 72 36 58 64 6 36 60 4 96 76 64 12 90 10 58 64 60 74 28 90 26 24 60 40 58 2 16 76 48 58 36 82 60 24 44 4 78 28 38 8 12 40 16 38 6 66 24 31 76",
"output": "99"
},
{
"input": "100\n47 48 94 48 14 18 94 36 96 22 12 30 94 20 48 98 40 58 2 94 8 36 98 18 98 68 2 60 76 38 18 100 8 72 100 68 2 86 92 72 58 16 48 14 6 58 72 76 6 88 80 66 20 28 74 62 86 68 90 86 2 56 34 38 56 90 4 8 76 44 32 86 12 98 38 34 54 92 70 94 10 24 82 66 90 58 62 2 32 58 100 22 58 72 2 22 68 72 42 14",
"output": "1"
},
{
"input": "99\n38 20 68 60 84 16 28 88 60 48 80 28 4 92 70 60 46 46 20 34 12 100 76 2 40 10 8 86 6 80 50 66 12 34 14 28 26 70 46 64 34 96 10 90 98 96 56 88 50 74 70 94 2 94 24 66 68 46 22 30 6 10 64 32 88 14 98 100 64 58 50 18 50 50 8 38 8 16 54 2 60 54 62 84 92 98 4 72 66 26 14 88 99 16 10 6 88 56 22",
"output": "93"
},
{
"input": "99\n50 83 43 89 53 47 69 1 5 37 63 87 95 15 55 95 75 89 33 53 89 75 93 75 11 85 49 29 11 97 49 67 87 11 25 37 97 73 67 49 87 43 53 97 43 29 53 33 45 91 37 73 39 49 59 5 21 43 87 35 5 63 89 57 63 47 29 99 19 85 13 13 3 13 43 19 5 9 61 51 51 57 15 89 13 97 41 13 99 79 13 27 97 95 73 33 99 27 23",
"output": "1"
},
{
"input": "98\n61 56 44 30 58 14 20 24 88 28 46 56 96 52 58 42 94 50 46 30 46 80 72 88 68 16 6 60 26 90 10 98 76 20 56 40 30 16 96 20 88 32 62 30 74 58 36 76 60 4 24 36 42 54 24 92 28 14 2 74 86 90 14 52 34 82 40 76 8 64 2 56 10 8 78 16 70 86 70 42 70 74 22 18 76 98 88 28 62 70 36 72 20 68 34 48 80 98",
"output": "1"
},
{
"input": "98\n66 26 46 42 78 32 76 42 26 82 8 12 4 10 24 26 64 44 100 46 94 64 30 18 88 28 8 66 30 82 82 28 74 52 62 80 80 60 94 86 64 32 44 88 92 20 12 74 94 28 34 58 4 22 16 10 94 76 82 58 40 66 22 6 30 32 92 54 16 76 74 98 18 48 48 30 92 2 16 42 84 74 30 60 64 52 50 26 16 86 58 96 79 60 20 62 82 94",
"output": "93"
},
{
"input": "95\n9 31 27 93 17 77 75 9 9 53 89 39 51 99 5 1 11 39 27 49 91 17 27 79 81 71 37 75 35 13 93 4 99 55 85 11 23 57 5 43 5 61 15 35 23 91 3 81 99 85 43 37 39 27 5 67 7 33 75 59 13 71 51 27 15 93 51 63 91 53 43 99 25 47 17 71 81 15 53 31 59 83 41 23 73 25 91 91 13 17 25 13 55 57 29",
"output": "32"
},
{
"input": "100\n91 89 81 45 53 1 41 3 77 93 55 97 55 97 87 27 69 95 73 41 93 21 75 35 53 56 5 51 87 59 91 67 33 3 99 45 83 17 97 47 75 97 7 89 17 99 23 23 81 25 55 97 27 35 69 5 77 35 93 19 55 59 37 21 31 37 49 41 91 53 73 69 7 37 37 39 17 71 7 97 55 17 47 23 15 73 31 39 57 37 9 5 61 41 65 57 77 79 35 47",
"output": "26"
},
{
"input": "99\n38 56 58 98 80 54 26 90 14 16 78 92 52 74 40 30 84 14 44 80 16 90 98 68 26 24 78 72 42 16 84 40 14 44 2 52 50 2 12 96 58 66 8 80 44 52 34 34 72 98 74 4 66 74 56 21 8 38 76 40 10 22 48 32 98 34 12 62 80 68 64 82 22 78 58 74 20 22 48 56 12 38 32 72 6 16 74 24 94 84 26 38 18 24 76 78 98 94 72",
"output": "56"
},
{
"input": "100\n44 40 6 40 56 90 98 8 36 64 76 86 98 76 36 92 6 30 98 70 24 98 96 60 24 82 88 68 86 96 34 42 58 10 40 26 56 10 88 58 70 32 24 28 14 82 52 12 62 36 70 60 52 34 74 30 78 76 10 16 42 94 66 90 70 38 52 12 58 22 98 96 14 68 24 70 4 30 84 98 8 50 14 52 66 34 100 10 28 100 56 48 38 12 38 14 91 80 70 86",
"output": "97"
},
{
"input": "100\n96 62 64 20 90 46 56 90 68 36 30 56 70 28 16 64 94 34 6 32 34 50 94 22 90 32 40 2 72 10 88 38 28 92 20 26 56 80 4 100 100 90 16 74 74 84 8 2 30 20 80 32 16 46 92 56 42 12 96 64 64 42 64 58 50 42 74 28 2 4 36 32 70 50 54 92 70 16 45 76 28 16 18 50 48 2 62 94 4 12 52 52 4 100 70 60 82 62 98 42",
"output": "79"
},
{
"input": "99\n14 26 34 68 90 58 50 36 8 16 18 6 2 74 54 20 36 84 32 50 52 2 26 24 3 64 20 10 54 26 66 44 28 72 4 96 78 90 96 86 68 28 94 4 12 46 100 32 22 36 84 32 44 94 76 94 4 52 12 30 74 4 34 64 58 72 44 16 70 56 54 8 14 74 8 6 58 62 98 54 14 40 80 20 36 72 28 98 20 58 40 52 90 64 22 48 54 70 52",
"output": "25"
},
{
"input": "95\n82 86 30 78 6 46 80 66 74 72 16 24 18 52 52 38 60 36 86 26 62 28 22 46 96 26 94 84 20 46 66 88 76 32 12 86 74 18 34 88 4 48 94 6 58 6 100 82 4 24 88 32 54 98 34 48 6 76 42 88 42 28 100 4 22 2 10 66 82 54 98 20 60 66 38 98 32 47 86 58 6 100 12 46 2 42 8 84 78 28 24 70 34 28 86",
"output": "78"
},
{
"input": "90\n40 50 8 42 76 24 58 42 26 68 20 48 54 12 34 84 14 36 32 88 6 50 96 56 20 92 48 16 40 34 96 46 20 84 30 50 20 98 8 44 96 42 8 76 70 38 84 30 40 88 84 72 2 22 52 58 16 62 100 66 80 40 50 32 14 62 88 72 22 99 76 50 84 82 8 82 98 46 26 40 2 98 18 78 30 72 70 18 34 68",
"output": "70"
},
{
"input": "80\n81 43 87 1 55 43 53 61 27 19 43 13 89 9 33 83 75 55 97 71 91 37 95 5 21 69 81 93 95 69 31 83 55 7 97 7 79 57 8 61 27 85 49 1 15 97 63 79 29 73 41 85 5 41 31 93 67 11 63 59 15 99 91 77 43 69 23 23 81 73 19 1 67 51 1 75 99 67 3 81",
"output": "39"
},
{
"input": "98\n13 83 61 27 35 1 85 95 97 73 95 65 73 45 5 43 27 83 91 19 11 3 85 59 9 39 69 23 45 7 51 85 5 71 5 95 1 51 75 3 43 57 3 11 33 71 21 99 47 41 87 39 71 87 31 85 91 49 83 5 49 85 47 91 55 99 33 23 31 23 23 73 29 77 55 31 25 5 81 49 91 15 15 39 87 5 9 40 69 47 29 33 11 21 49 79 51 83",
"output": "88"
},
{
"input": "3\n100 100 1",
"output": "3"
}
] | 1,599,665,172
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 32
| 218
| 0
|
n=int(input())
s=input().split()
t=""
for i in range(n):
if int(s[i])%2==1:
t+='0'
else:
t+='1'
k=t.count("1")
f=t.count("0")
if k>f:
print(t.find('0')+1)
else:
print(t.find('1')+1)
|
Title: IQ test
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob β to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
Input Specification:
The first line contains integer *n* (3<=β€<=*n*<=β€<=100) β amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
Output Specification:
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
Demo Input:
['5\n2 4 7 8 10\n', '4\n1 2 1 1\n']
Demo Output:
['3\n', '2\n']
Note:
none
|
```python
n=int(input())
s=input().split()
t=""
for i in range(n):
if int(s[i])%2==1:
t+='0'
else:
t+='1'
k=t.count("1")
f=t.count("0")
if k>f:
print(t.find('0')+1)
else:
print(t.find('1')+1)
```
| 3.9455
|
386
|
A
|
Second-Price Auction
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
|
The first line of the input contains *n* (2<=β€<=*n*<=β€<=1000) β number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=β€<=*p**i*<=β€<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
|
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
|
[
"2\n5 7\n",
"3\n10 2 8\n",
"6\n3 8 2 9 4 14\n"
] |
[
"2 5\n",
"1 8\n",
"6 9\n"
] |
none
| 500
|
[
{
"input": "2\n5 7",
"output": "2 5"
},
{
"input": "3\n10 2 8",
"output": "1 8"
},
{
"input": "6\n3 8 2 9 4 14",
"output": "6 9"
},
{
"input": "4\n4707 7586 4221 5842",
"output": "2 5842"
},
{
"input": "5\n3304 4227 4869 6937 6002",
"output": "4 6002"
},
{
"input": "6\n5083 3289 7708 5362 9031 7458",
"output": "5 7708"
},
{
"input": "7\n9038 6222 3392 1706 3778 1807 2657",
"output": "1 6222"
},
{
"input": "8\n7062 2194 4481 3864 7470 1814 8091 733",
"output": "7 7470"
},
{
"input": "9\n2678 5659 9199 2628 7906 7496 4524 2663 3408",
"output": "3 7906"
},
{
"input": "2\n3458 1504",
"output": "1 1504"
},
{
"input": "50\n9237 3904 407 9052 6657 9229 9752 3888 7732 2512 4614 1055 2355 7108 6506 6849 2529 8862 159 8630 7906 7941 960 8470 333 8659 54 9475 3163 5625 6393 6814 2656 3388 169 7918 4881 8468 9983 6281 6340 280 5108 2996 101 7617 3313 8172 326 1991",
"output": "39 9752"
},
{
"input": "100\n2515 3324 7975 6171 4240 1217 4829 5203 8603 6900 3031 4699 4732 6070 4221 3228 6497 7359 9130 4346 4619 1109 3945 5442 3271 16 9711 2045 6410 2301 3406 8125 6003 1892 1260 9661 3940 6692 4708 7027 4930 6925 1979 5361 4263 3144 867 8639 6230 5562 9714 3676 4231 3347 4733 4920 4881 3431 1059 7313 8912 3038 9308 72 9583 7009 3034 7425 2398 6141 3245 2495 2933 6710 8289 9806 1226 8393 7349 6462 1618 9613 3546 6012 2964 9995 1578 210 2123 4874 1252 8625 348 8020 803 7244 9080 5088 706 2602",
"output": "86 9806"
},
{
"input": "2\n2 1",
"output": "1 1"
},
{
"input": "2\n1 2",
"output": "2 1"
},
{
"input": "3\n10 20 30",
"output": "3 20"
},
{
"input": "3\n10 30 20",
"output": "2 20"
},
{
"input": "3\n20 10 30",
"output": "3 20"
},
{
"input": "3\n20 30 10",
"output": "2 20"
},
{
"input": "3\n30 10 20",
"output": "1 20"
},
{
"input": "3\n30 20 10",
"output": "1 20"
},
{
"input": "2\n1 10000",
"output": "2 1"
},
{
"input": "2\n10000 999",
"output": "1 999"
},
{
"input": "3\n3 4 1",
"output": "2 3"
},
{
"input": "6\n1 2 24 6 5 7",
"output": "3 7"
}
] | 1,627,444,727
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 42
| 77
| 6,963,200
|
n = int(input())
a = list(map(int, input().split()))
largest = max(a)
b = []
for i in range(n):
if a[i] == max(a):
winner = i + 1
for x in a:
if x != largest:
b.append(x)
print(winner, max(b))
|
Title: Second-Price Auction
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
Input Specification:
The first line of the input contains *n* (2<=β€<=*n*<=β€<=1000) β number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=β€<=*p**i*<=β€<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
Output Specification:
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
Demo Input:
['2\n5 7\n', '3\n10 2 8\n', '6\n3 8 2 9 4 14\n']
Demo Output:
['2 5\n', '1 8\n', '6 9\n']
Note:
none
|
```python
n = int(input())
a = list(map(int, input().split()))
largest = max(a)
b = []
for i in range(n):
if a[i] == max(a):
winner = i + 1
for x in a:
if x != largest:
b.append(x)
print(winner, max(b))
```
| 3
|
|
26
|
A
|
Almost Prime
|
PROGRAMMING
| 900
|
[
"number theory"
] |
A. Almost Prime
|
2
|
256
|
A number is called almost prime if it has exactly two distinct prime divisors. For example, numbers 6, 18, 24 are almost prime, while 4, 8, 9, 42 are not. Find the amount of almost prime numbers which are between 1 and *n*, inclusive.
|
Input contains one integer number *n* (1<=β€<=*n*<=β€<=3000).
|
Output the amount of almost prime numbers between 1 and *n*, inclusive.
|
[
"10\n",
"21\n"
] |
[
"2\n",
"8\n"
] |
none
| 500
|
[
{
"input": "10",
"output": "2"
},
{
"input": "21",
"output": "8"
},
{
"input": "1",
"output": "0"
},
{
"input": "2",
"output": "0"
},
{
"input": "4",
"output": "0"
},
{
"input": "3",
"output": "0"
},
{
"input": "8",
"output": "1"
},
{
"input": "19",
"output": "6"
},
{
"input": "40",
"output": "19"
},
{
"input": "77",
"output": "41"
},
{
"input": "222",
"output": "125"
},
{
"input": "987",
"output": "501"
},
{
"input": "1000",
"output": "508"
},
{
"input": "2000",
"output": "958"
},
{
"input": "3000",
"output": "1375"
},
{
"input": "2999",
"output": "1375"
},
{
"input": "2998",
"output": "1375"
},
{
"input": "2997",
"output": "1374"
},
{
"input": "1429",
"output": "706"
},
{
"input": "1673",
"output": "808"
},
{
"input": "1500",
"output": "732"
},
{
"input": "500",
"output": "266"
},
{
"input": "856",
"output": "439"
}
] | 1,688,576,437
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 23
| 810
| 0
|
def is_prime(n):
c = 0
if n == 1:
return False
for k in range(2,n):
if n % k == 0:
c = 1
return False
if c == 0:
return True
r = 0
n = int(input())
for i in range(1, n + 1):
c = 0
for j in range(1, i):
if i % j == 0:
if is_prime(j):
c += 1
if c == 2:
r += 1
print(r)
|
Title: Almost Prime
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
A number is called almost prime if it has exactly two distinct prime divisors. For example, numbers 6, 18, 24 are almost prime, while 4, 8, 9, 42 are not. Find the amount of almost prime numbers which are between 1 and *n*, inclusive.
Input Specification:
Input contains one integer number *n* (1<=β€<=*n*<=β€<=3000).
Output Specification:
Output the amount of almost prime numbers between 1 and *n*, inclusive.
Demo Input:
['10\n', '21\n']
Demo Output:
['2\n', '8\n']
Note:
none
|
```python
def is_prime(n):
c = 0
if n == 1:
return False
for k in range(2,n):
if n % k == 0:
c = 1
return False
if c == 0:
return True
r = 0
n = int(input())
for i in range(1, n + 1):
c = 0
for j in range(1, i):
if i % j == 0:
if is_prime(j):
c += 1
if c == 2:
r += 1
print(r)
```
| 3.7975
|
518
|
A
|
Vitaly and Strings
|
PROGRAMMING
| 1,600
|
[
"constructive algorithms",
"strings"
] | null | null |
Vitaly is a diligent student who never missed a lesson in his five years of studying in the university. He always does his homework on time and passes his exams in time.
During the last lesson the teacher has provided two strings *s* and *t* to Vitaly. The strings have the same length, they consist of lowercase English letters, string *s* is lexicographically smaller than string *t*. Vitaly wondered if there is such string that is lexicographically larger than string *s* and at the same is lexicographically smaller than string *t*. This string should also consist of lowercase English letters and have the length equal to the lengths of strings *s* and *t*.
Let's help Vitaly solve this easy problem!
|
The first line contains string *s* (1<=β€<=|*s*|<=β€<=100), consisting of lowercase English letters. Here, |*s*| denotes the length of the string.
The second line contains string *t* (|*t*|<==<=|*s*|), consisting of lowercase English letters.
It is guaranteed that the lengths of strings *s* and *t* are the same and string *s* is lexicographically less than string *t*.
|
If the string that meets the given requirements doesn't exist, print a single string "No such string" (without the quotes).
If such string exists, print it. If there are multiple valid strings, you may print any of them.
|
[
"a\nc\n",
"aaa\nzzz\n",
"abcdefg\nabcdefh\n"
] |
[
"b\n",
"kkk\n",
"No such string\n"
] |
String *s*β=β*s*<sub class="lower-index">1</sub>*s*<sub class="lower-index">2</sub>... *s*<sub class="lower-index">*n*</sub> is said to be lexicographically smaller than *t*β=β*t*<sub class="lower-index">1</sub>*t*<sub class="lower-index">2</sub>... *t*<sub class="lower-index">*n*</sub>, if there exists such *i*, that *s*<sub class="lower-index">1</sub>β=β*t*<sub class="lower-index">1</sub>,β*s*<sub class="lower-index">2</sub>β=β*t*<sub class="lower-index">2</sub>,β... *s*<sub class="lower-index">*i*β-β1</sub>β=β*t*<sub class="lower-index">*i*β-β1</sub>,β*s*<sub class="lower-index">*i*</sub>β<β*t*<sub class="lower-index">*i*</sub>.
| 500
|
[
{
"input": "a\nc",
"output": "b"
},
{
"input": "aaa\nzzz",
"output": "kkk"
},
{
"input": "abcdefg\nabcdefh",
"output": "No such string"
},
{
"input": "abcdefg\nabcfefg",
"output": "abcdefh"
},
{
"input": "frt\nfru",
"output": "No such string"
},
{
"input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaab"
},
{
"input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzx\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzy"
},
{
"input": "q\nz",
"output": "r"
},
{
"input": "pnzcl\npnzdf",
"output": "pnzcm"
},
{
"input": "vklldrxnfgyorgfpfezvhbouyzzzzz\nvklldrxnfgyorgfpfezvhbouzaaadv",
"output": "vklldrxnfgyorgfpfezvhbouzaaaaa"
},
{
"input": "pkjlxzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\npkjlyaaaaaaaaaaaaaaaaaaaaaaaaaaaahr",
"output": "pkjlyaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "exoudpymnspkocwszzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\nexoudpymnspkocwtaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaabml",
"output": "exoudpymnspkocwtaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "anarzvsklmwvovozwnmhklkpcseeogdgauoppmzrukynbjjoxytuvsiecuzfquxnowewebhtuoxepocyeamqfrblpwqiokbcubil\nanarzvsklmwvovozwnmhklkpcseeogdgauoppmzrukynbjjoxytuvsiecuzfquxnowewebhtuoxepocyeamqfrblpwqiokbcubim",
"output": "No such string"
},
{
"input": "uqyugulumzwlxsjnxxkutzqayskrbjoaaekbhckjryhjjllzzz\nuqyugulumzwlxsjnxxkutzqayskrbjoaaekbhckjryhjjlmaaa",
"output": "No such string"
},
{
"input": "esfaeyxpblcrriizhnhfrxnbopqvhwtetgjqavlqdlxexaifgvkqfwzneibhxxdacbzzzzzzzzzzzzzz\nesfaeyxpblcrriizhnhfrxnbopqvhwtetgjqavlqdlxexaifgvkqfwzneibhxxdaccaaaaaaaaaaaatf",
"output": "esfaeyxpblcrriizhnhfrxnbopqvhwtetgjqavlqdlxexaifgvkqfwzneibhxxdaccaaaaaaaaaaaaaa"
},
{
"input": "oisjtilteipnzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\noisjtilteipoaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaao",
"output": "oisjtilteipoaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "svpoxbsudndfnnpugbouawegyxgtmvqzbewxpcwhopdbwscimgzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\nsvpoxbsudndfnnpugbouawegyxgtmvqzbewxpcwhopdbwscimhaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa",
"output": "No such string"
},
{
"input": "ddzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\ndeaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaao",
"output": "deaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "xqzbhslocdbifnyzyjenlpctocieaccsycmwlcebkqqkeibatfvylbqlutvjijgjhdetqsjqnoipqbmjhhzxggdobyvpczdavdzz\nxqzbhslocdbifnyzyjenlpctocieaccsycmwlcebkqqkeibatfvylbqlutvjijgjhdetqsjqnoipqbmjhhzxggdobyvpczdavilj",
"output": "xqzbhslocdbifnyzyjenlpctocieaccsycmwlcebkqqkeibatfvylbqlutvjijgjhdetqsjqnoipqbmjhhzxggdobyvpczdaveaa"
},
{
"input": "poflpxucohdobeisxfsnkbdzwizjjhgngufssqhmfgmydmmrnuminrvxxamoebhczlwsfefdtnchaisfxkfcovxmvppxnrfawfoq\npoflpxucohdobeisxfsnkbdzwizjjhgngufssqhmfgmydmmrnuminrvxxamoebhczlwsfefdtnchaisfxkfcovxmvppxnrfawujg",
"output": "poflpxucohdobeisxfsnkbdzwizjjhgngufssqhmfgmydmmrnuminrvxxamoebhczlwsfefdtnchaisfxkfcovxmvppxnrfawfor"
},
{
"input": "vonggnmokmvmguwtobkxoqgxkuxtyjmxrygyliohlhwxuxjmlkqcfuxboxjnzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\nvonggnmokmvmguwtobkxoqgxkuxtyjmxrygyliohlhwxuxjmlkqcfuxboxjoaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaac",
"output": "vonggnmokmvmguwtobkxoqgxkuxtyjmxrygyliohlhwxuxjmlkqcfuxboxjoaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "bqycw\nquhod",
"output": "bqycx"
},
{
"input": "hceslswecf\nnmxshuymaa",
"output": "hceslswecg"
},
{
"input": "awqtzslxowuaefe\nvujscakjpvxviki",
"output": "awqtzslxowuaeff"
},
{
"input": "lerlcnaogdravnogfogcyoxgi\nojrbithvjdqtempegvqxmgmmw",
"output": "lerlcnaogdravnogfogcyoxgj"
},
{
"input": "jbrhvicytqaivheqeourrlosvnsujsxdinryyawgalidsaufxv\noevvkhujmhagaholrmsatdjjyfmyblvgetpnxgjcilugjsncjs",
"output": "jbrhvicytqaivheqeourrlosvnsujsxdinryyawgalidsaufxw"
},
{
"input": "jrpogrcuhqdpmyzpuabuhaptlxaeiqjxhqkmuzsjbhqxvdtoocrkusaeasqdwlunomwzww\nspvgaswympzlscnumemgiznngnxqgccbubmxgqmaakbnyngkxlxjjsafricchhpecdjgxw",
"output": "jrpogrcuhqdpmyzpuabuhaptlxaeiqjxhqkmuzsjbhqxvdtoocrkusaeasqdwlunomwzwx"
},
{
"input": "mzmhjmfxaxaplzjmjkbyadeweltagyyuzpvrmnyvirjpdmebxyzjvdoezhnayfrvtnccryhkvhcvakcf\nohhhhkujfpjbgouebtmmbzizuhuumvrsqfniwpmxdtzhyiaivdyxhywnqzagicydixjtvbqbevhbqttu",
"output": "mzmhjmfxaxaplzjmjkbyadeweltagyyuzpvrmnyvirjpdmebxyzjvdoezhnayfrvtnccryhkvhcvakcg"
},
{
"input": "cdmwmzutsicpzhcokbbhwktqbomozxvvjlhwdgtiledgurxsfreisgczdwgupzxmjnfyjxcpdwzkggludkcmgppndl\nuvuqvyrnhtyubpevizhjxdvmpueittksrnosmfuuzbimnqussasdjufrthrgjbyzomauaxbvwferfvtmydmwmjaoxg",
"output": "cdmwmzutsicpzhcokbbhwktqbomozxvvjlhwdgtiledgurxsfreisgczdwgupzxmjnfyjxcpdwzkggludkcmgppndm"
},
{
"input": "dpnmrwpbgzvcmrcodwgvvfwpyagdwlngmhrazyvalszhruprxzmwltftxmujfyrrnwzvphgqlcphreumqkytswxziugburwrlyay\nqibcfxdfovoejutaeetbbwrgexdrvqywwmhipxgfrvhzovxkfawpfnpjvlhkyahessodqcclangxefcaixysqijnitevwmpalkzd",
"output": "dpnmrwpbgzvcmrcodwgvvfwpyagdwlngmhrazyvalszhruprxzmwltftxmujfyrrnwzvphgqlcphreumqkytswxziugburwrlyaz"
},
{
"input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\naaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaab",
"output": "No such string"
},
{
"input": "phdvmuwqmvzyurtnshitcypuzbhpceovkibzbhhjwxkdtvqmbpoumeoiztxtvkvsjrlnhowsdmgftuiulzebdigmun\nphdvmuwqmvzyurtnshitcypuzbhpceovkibzbhhjwxkdtvqmbpoumeoiztxtvkvsjrlnhowsdmgftuiulzebdigmuo",
"output": "No such string"
},
{
"input": "hrsantdquixzjyjtqytcmnflnyehzbibkbgkqffgqpkgeuqmbmxzhbjwsnfkizvbcyoghyvnxxjavoahlqjxomtsouzoog\nhrsantdquixzjyjtqytcmnflnyehzbibkbgkqffgqpkgeuqmbmxzhbjwsnfkizvbcyoghyvnxxjavoahlqjxomtsouzooh",
"output": "No such string"
},
{
"input": "kexdbtpkjbwwyibjndbtmwqzolopqitgkomqggojevoankiepxirrcidxldlzsppehmoazdywltmjbxgsxgihwnwpmczjrcwpywl\nkexdbtpkjbwwyibjndbtmwqzolopqitgkomqggojevoankiepxirrcidxldlzsppehmoazdywltmjbxgsxgihwnwpmczjrcwpywm",
"output": "No such string"
},
{
"input": "yijdysvzfcnaedvnecswgoylhzgguxecmucepgstjbdkbjyfdlxxxejkrrxfiuwjpdmdhhqhlqeqzjwudtdryrfkpwfxdjlkowmk\nyijdysvzfcnaedvnecswgoylhzgguxecmucepgstjbdkbjyfdlxxxejkrrxfiuwjpdmdhhqhlqeqzjwudtdryrfkpwfxdjlkowml",
"output": "No such string"
},
{
"input": "a\nb",
"output": "No such string"
},
{
"input": "x\nz",
"output": "y"
},
{
"input": "a\nz",
"output": "b"
},
{
"input": "y\nz",
"output": "No such string"
},
{
"input": "zzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzy\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "No such string"
},
{
"input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\naaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaac",
"output": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaab"
},
{
"input": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa\nzaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa",
"output": "aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaab"
},
{
"input": "yzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "zaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa"
},
{
"input": "yyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyy\nzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzzz",
"output": "yyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyyz"
},
{
"input": "aaa\naac",
"output": "aab"
},
{
"input": "aaa\naab",
"output": "No such string"
},
{
"input": "zzx\nzzz",
"output": "zzy"
},
{
"input": "zzy\nzzz",
"output": "No such string"
},
{
"input": "aba\naca",
"output": "abb"
},
{
"input": "aaa\nbbb",
"output": "aab"
},
{
"input": "azzz\ncaaa",
"output": "baaa"
}
] | 1,674,912,925
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 51
| 93
| 5,222,400
|
from bisect import bisect_left, bisect_right
from collections import Counter, deque
from functools import lru_cache
from math import factorial, comb, sqrt, gcd, lcm
from copy import deepcopy
import heapq
def num_to_str(n):
chushu = (n - 1) // 26
yushu = (n - 1) % 26
if chushu == 0:
return chr(yushu + ord("a"))
else:
return num_to_str(chushu) + chr(yushu + ord("a"))
def main():
t = input()
s = input()
t_num = 0
s_num = 0
index = 0
for i in range(len(t) - 1, -1, -1):
t_num += (ord(t[i]) - ord("a") + 1) * 26**index
s_num += (ord(s[i]) - ord("a") + 1) * 26**index
index += 1
if s_num > t_num + 1:
print(num_to_str(t_num + 1))
else:
print("No such string")
if __name__ == "__main__":
main()
|
Title: Vitaly and Strings
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vitaly is a diligent student who never missed a lesson in his five years of studying in the university. He always does his homework on time and passes his exams in time.
During the last lesson the teacher has provided two strings *s* and *t* to Vitaly. The strings have the same length, they consist of lowercase English letters, string *s* is lexicographically smaller than string *t*. Vitaly wondered if there is such string that is lexicographically larger than string *s* and at the same is lexicographically smaller than string *t*. This string should also consist of lowercase English letters and have the length equal to the lengths of strings *s* and *t*.
Let's help Vitaly solve this easy problem!
Input Specification:
The first line contains string *s* (1<=β€<=|*s*|<=β€<=100), consisting of lowercase English letters. Here, |*s*| denotes the length of the string.
The second line contains string *t* (|*t*|<==<=|*s*|), consisting of lowercase English letters.
It is guaranteed that the lengths of strings *s* and *t* are the same and string *s* is lexicographically less than string *t*.
Output Specification:
If the string that meets the given requirements doesn't exist, print a single string "No such string" (without the quotes).
If such string exists, print it. If there are multiple valid strings, you may print any of them.
Demo Input:
['a\nc\n', 'aaa\nzzz\n', 'abcdefg\nabcdefh\n']
Demo Output:
['b\n', 'kkk\n', 'No such string\n']
Note:
String *s*β=β*s*<sub class="lower-index">1</sub>*s*<sub class="lower-index">2</sub>... *s*<sub class="lower-index">*n*</sub> is said to be lexicographically smaller than *t*β=β*t*<sub class="lower-index">1</sub>*t*<sub class="lower-index">2</sub>... *t*<sub class="lower-index">*n*</sub>, if there exists such *i*, that *s*<sub class="lower-index">1</sub>β=β*t*<sub class="lower-index">1</sub>,β*s*<sub class="lower-index">2</sub>β=β*t*<sub class="lower-index">2</sub>,β... *s*<sub class="lower-index">*i*β-β1</sub>β=β*t*<sub class="lower-index">*i*β-β1</sub>,β*s*<sub class="lower-index">*i*</sub>β<β*t*<sub class="lower-index">*i*</sub>.
|
```python
from bisect import bisect_left, bisect_right
from collections import Counter, deque
from functools import lru_cache
from math import factorial, comb, sqrt, gcd, lcm
from copy import deepcopy
import heapq
def num_to_str(n):
chushu = (n - 1) // 26
yushu = (n - 1) % 26
if chushu == 0:
return chr(yushu + ord("a"))
else:
return num_to_str(chushu) + chr(yushu + ord("a"))
def main():
t = input()
s = input()
t_num = 0
s_num = 0
index = 0
for i in range(len(t) - 1, -1, -1):
t_num += (ord(t[i]) - ord("a") + 1) * 26**index
s_num += (ord(s[i]) - ord("a") + 1) * 26**index
index += 1
if s_num > t_num + 1:
print(num_to_str(t_num + 1))
else:
print("No such string")
if __name__ == "__main__":
main()
```
| 3
|
|
114
|
A
|
Cifera
|
PROGRAMMING
| 1,000
|
[
"math"
] | null | null |
When Petya went to school, he got interested in large numbers and what they were called in ancient times. For instance, he learned that the Russian word "tma" (which now means "too much to be counted") used to stand for a thousand and "tma tmyschaya" (which literally means "the tma of tmas") used to stand for a million.
Petya wanted to modernize the words we use for numbers and invented a word petricium that represents number *k*. Moreover, petricium la petricium stands for number *k*2, petricium la petricium la petricium stands for *k*3 and so on. All numbers of this form are called petriciumus cifera, and the number's importance is the number of articles la in its title.
Petya's invention brought on a challenge that needed to be solved quickly: does some number *l* belong to the set petriciumus cifera? As Petya is a very busy schoolboy he needs to automate the process, he asked you to solve it.
|
The first input line contains integer number *k*, the second line contains integer number *l* (2<=β€<=*k*,<=*l*<=β€<=231<=-<=1).
|
You should print in the first line of the output "YES", if the number belongs to the set petriciumus cifera and otherwise print "NO". If the number belongs to the set, then print on the seconds line the only number β the importance of number *l*.
|
[
"5\n25\n",
"3\n8\n"
] |
[
"YES\n1\n",
"NO\n"
] |
none
| 500
|
[
{
"input": "5\n25",
"output": "YES\n1"
},
{
"input": "3\n8",
"output": "NO"
},
{
"input": "123\n123",
"output": "YES\n0"
},
{
"input": "99\n970300",
"output": "NO"
},
{
"input": "1000\n6666666",
"output": "NO"
},
{
"input": "59\n3571",
"output": "NO"
},
{
"input": "256\n16777217",
"output": "NO"
},
{
"input": "4638\n21511044",
"output": "YES\n1"
},
{
"input": "24\n191102976",
"output": "YES\n5"
},
{
"input": "52010\n557556453",
"output": "NO"
},
{
"input": "61703211\n1750753082",
"output": "NO"
},
{
"input": "137\n2571353",
"output": "YES\n2"
},
{
"input": "8758\n1746157336",
"output": "NO"
},
{
"input": "2\n64",
"output": "YES\n5"
},
{
"input": "96\n884736",
"output": "YES\n2"
},
{
"input": "1094841453\n1656354409",
"output": "NO"
},
{
"input": "1154413\n1229512809",
"output": "NO"
},
{
"input": "2442144\n505226241",
"output": "NO"
},
{
"input": "11548057\n1033418098",
"output": "NO"
},
{
"input": "581\n196122941",
"output": "YES\n2"
},
{
"input": "146\n1913781536",
"output": "NO"
},
{
"input": "945916\n1403881488",
"output": "NO"
},
{
"input": "68269\n365689065",
"output": "NO"
},
{
"input": "30\n900",
"output": "YES\n1"
},
{
"input": "6\n1296",
"output": "YES\n3"
},
{
"input": "1470193122\n1420950405",
"output": "NO"
},
{
"input": "90750\n1793111557",
"output": "NO"
},
{
"input": "1950054\n1664545956",
"output": "NO"
},
{
"input": "6767692\n123762320",
"output": "NO"
},
{
"input": "1437134\n1622348229",
"output": "NO"
},
{
"input": "444103\n1806462642",
"output": "NO"
},
{
"input": "2592\n6718464",
"output": "YES\n1"
},
{
"input": "50141\n366636234",
"output": "NO"
},
{
"input": "835\n582182875",
"output": "YES\n2"
},
{
"input": "156604\n902492689",
"output": "NO"
},
{
"input": "27385965\n1742270058",
"output": "NO"
},
{
"input": "3\n9",
"output": "YES\n1"
},
{
"input": "35\n1838265625",
"output": "YES\n5"
},
{
"input": "8\n4096",
"output": "YES\n3"
},
{
"input": "85955\n945811082",
"output": "NO"
},
{
"input": "54958832\n956670209",
"output": "NO"
},
{
"input": "1475381\n1348159738",
"output": "NO"
},
{
"input": "7313241\n413670642",
"output": "NO"
},
{
"input": "582470\n2116368165",
"output": "NO"
},
{
"input": "26859739\n595086170",
"output": "NO"
},
{
"input": "249766393\n1582130",
"output": "NO"
},
{
"input": "11734\n137686756",
"output": "YES\n1"
},
{
"input": "925093\n1098566745",
"output": "NO"
},
{
"input": "40\n1600",
"output": "YES\n1"
},
{
"input": "2147483647\n2147483647",
"output": "YES\n0"
},
{
"input": "2147483646\n2147483647",
"output": "NO"
},
{
"input": "2147483647\n2147483646",
"output": "NO"
},
{
"input": "2\n2147483647",
"output": "NO"
},
{
"input": "2\n1073741825",
"output": "NO"
},
{
"input": "2\n1073741824",
"output": "YES\n29"
},
{
"input": "10000\n10",
"output": "NO"
},
{
"input": "10\n10000",
"output": "YES\n3"
},
{
"input": "10\n2000000000",
"output": "NO"
},
{
"input": "10\n1000000000",
"output": "YES\n8"
},
{
"input": "5\n1808548329",
"output": "NO"
},
{
"input": "2\n2147483646",
"output": "NO"
},
{
"input": "25\n125",
"output": "NO"
},
{
"input": "6\n18",
"output": "NO"
},
{
"input": "5\n30",
"output": "NO"
}
] | 1,619,776,699
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 64
| 154
| 0
|
m=int(input())
n=int(input())
c=0
while n!=1:
if n%m!=0:
break
n=n//m
c+=1
if n==1:
print("YES")
print(c-1)
else:
print("NO")
|
Title: Cifera
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
When Petya went to school, he got interested in large numbers and what they were called in ancient times. For instance, he learned that the Russian word "tma" (which now means "too much to be counted") used to stand for a thousand and "tma tmyschaya" (which literally means "the tma of tmas") used to stand for a million.
Petya wanted to modernize the words we use for numbers and invented a word petricium that represents number *k*. Moreover, petricium la petricium stands for number *k*2, petricium la petricium la petricium stands for *k*3 and so on. All numbers of this form are called petriciumus cifera, and the number's importance is the number of articles la in its title.
Petya's invention brought on a challenge that needed to be solved quickly: does some number *l* belong to the set petriciumus cifera? As Petya is a very busy schoolboy he needs to automate the process, he asked you to solve it.
Input Specification:
The first input line contains integer number *k*, the second line contains integer number *l* (2<=β€<=*k*,<=*l*<=β€<=231<=-<=1).
Output Specification:
You should print in the first line of the output "YES", if the number belongs to the set petriciumus cifera and otherwise print "NO". If the number belongs to the set, then print on the seconds line the only number β the importance of number *l*.
Demo Input:
['5\n25\n', '3\n8\n']
Demo Output:
['YES\n1\n', 'NO\n']
Note:
none
|
```python
m=int(input())
n=int(input())
c=0
while n!=1:
if n%m!=0:
break
n=n//m
c+=1
if n==1:
print("YES")
print(c-1)
else:
print("NO")
```
| 3
|
|
0
|
none
|
none
|
none
| 0
|
[
"none"
] | null | null |
You are given several queries. In the *i*-th query you are given a single positive integer *n**i*. You are to represent *n**i* as a sum of maximum possible number of composite summands and print this maximum number, or print -1, if there are no such splittings.
An integer greater than 1 is composite, if it is not prime, i.e. if it has positive divisors not equal to 1 and the integer itself.
|
The first line contains single integer *q* (1<=β€<=*q*<=β€<=105)Β β the number of queries.
*q* lines follow. The (*i*<=+<=1)-th line contains single integer *n**i* (1<=β€<=*n**i*<=β€<=109)Β β the *i*-th query.
|
For each query print the maximum possible number of summands in a valid splitting to composite summands, or -1, if there are no such splittings.
|
[
"1\n12\n",
"2\n6\n8\n",
"3\n1\n2\n3\n"
] |
[
"3\n",
"1\n2\n",
"-1\n-1\n-1\n"
] |
12β=β4β+β4β+β4β=β4β+β8β=β6β+β6β=β12, but the first splitting has the maximum possible number of summands.
8β=β4β+β4, 6 can't be split into several composite summands.
1,β2,β3 are less than any composite number, so they do not have valid splittings.
| 0
|
[
{
"input": "1\n12",
"output": "3"
},
{
"input": "2\n6\n8",
"output": "1\n2"
},
{
"input": "3\n1\n2\n3",
"output": "-1\n-1\n-1"
},
{
"input": "6\n1\n2\n3\n5\n7\n11",
"output": "-1\n-1\n-1\n-1\n-1\n-1"
},
{
"input": "3\n4\n6\n9",
"output": "1\n1\n1"
},
{
"input": "20\n8\n13\n20\n12\n9\n16\n4\n19\n7\n15\n10\n6\n14\n11\n3\n2\n5\n17\n18\n1",
"output": "2\n2\n5\n3\n1\n4\n1\n3\n-1\n2\n2\n1\n3\n-1\n-1\n-1\n-1\n3\n4\n-1"
},
{
"input": "100\n611\n513\n544\n463\n38\n778\n347\n317\n848\n664\n382\n108\n718\n33\n334\n876\n234\n22\n944\n305\n159\n245\n513\n691\n639\n135\n308\n324\n813\n459\n304\n116\n331\n993\n184\n224\n853\n769\n121\n687\n93\n930\n751\n308\n485\n914\n400\n695\n95\n981\n175\n972\n121\n654\n242\n610\n617\n999\n237\n548\n742\n767\n613\n172\n223\n391\n102\n907\n673\n116\n230\n355\n189\n552\n399\n493\n903\n201\n985\n459\n776\n641\n693\n919\n253\n540\n427\n394\n655\n101\n461\n854\n417\n249\n66\n380\n213\n906\n212\n528",
"output": "151\n127\n136\n114\n9\n194\n85\n78\n212\n166\n95\n27\n179\n7\n83\n219\n58\n5\n236\n75\n38\n60\n127\n171\n158\n32\n77\n81\n202\n113\n76\n29\n81\n247\n46\n56\n212\n191\n29\n170\n22\n232\n186\n77\n120\n228\n100\n172\n22\n244\n42\n243\n29\n163\n60\n152\n153\n248\n58\n137\n185\n190\n152\n43\n54\n96\n25\n225\n167\n29\n57\n87\n46\n138\n98\n122\n224\n49\n245\n113\n194\n159\n172\n228\n62\n135\n105\n98\n162\n24\n114\n213\n103\n61\n16\n95\n52\n226\n53\n132"
},
{
"input": "1\n10000001",
"output": "2499999"
}
] | 1,508,148,940
| 5,740
|
Python 3
|
OK
|
TESTS
| 20
| 1,278
| 5,529,600
|
q = int(input().strip())
for _ in range(q):
n = int(input().strip())
primes = [1,3,5,7,11]
#if n is odd..
if n&1:
if n in primes:
print(-1)
else:
print(((n-9)//4)+1)
else:
if n==2:
print(-1)
else:
print(n//4)
|
Title: none
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given several queries. In the *i*-th query you are given a single positive integer *n**i*. You are to represent *n**i* as a sum of maximum possible number of composite summands and print this maximum number, or print -1, if there are no such splittings.
An integer greater than 1 is composite, if it is not prime, i.e. if it has positive divisors not equal to 1 and the integer itself.
Input Specification:
The first line contains single integer *q* (1<=β€<=*q*<=β€<=105)Β β the number of queries.
*q* lines follow. The (*i*<=+<=1)-th line contains single integer *n**i* (1<=β€<=*n**i*<=β€<=109)Β β the *i*-th query.
Output Specification:
For each query print the maximum possible number of summands in a valid splitting to composite summands, or -1, if there are no such splittings.
Demo Input:
['1\n12\n', '2\n6\n8\n', '3\n1\n2\n3\n']
Demo Output:
['3\n', '1\n2\n', '-1\n-1\n-1\n']
Note:
12β=β4β+β4β+β4β=β4β+β8β=β6β+β6β=β12, but the first splitting has the maximum possible number of summands.
8β=β4β+β4, 6 can't be split into several composite summands.
1,β2,β3 are less than any composite number, so they do not have valid splittings.
|
```python
q = int(input().strip())
for _ in range(q):
n = int(input().strip())
primes = [1,3,5,7,11]
#if n is odd..
if n&1:
if n in primes:
print(-1)
else:
print(((n-9)//4)+1)
else:
if n==2:
print(-1)
else:
print(n//4)
```
| 3
|
|
390
|
A
|
Inna and Alarm Clock
|
PROGRAMMING
| 0
|
[
"implementation"
] | null | null |
Inna loves sleeping very much, so she needs *n* alarm clocks in total to wake up. Let's suppose that Inna's room is a 100<=Γ<=100 square with the lower left corner at point (0,<=0) and with the upper right corner at point (100,<=100). Then the alarm clocks are points with integer coordinates in this square.
The morning has come. All *n* alarm clocks in Inna's room are ringing, so Inna wants to turn them off. For that Inna has come up with an amusing game:
- First Inna chooses a type of segments that she will use throughout the game. The segments can be either vertical or horizontal. - Then Inna makes multiple moves. In a single move, Inna can paint a segment of any length on the plane, she chooses its type at the beginning of the game (either vertical or horizontal), then all alarm clocks that are on this segment switch off. The game ends when all the alarm clocks are switched off.
Inna is very sleepy, so she wants to get through the alarm clocks as soon as possible. Help her, find the minimum number of moves in the game that she needs to turn off all the alarm clocks!
|
The first line of the input contains integer *n* (1<=β€<=*n*<=β€<=105) β the number of the alarm clocks. The next *n* lines describe the clocks: the *i*-th line contains two integers *x**i*, *y**i* β the coordinates of the *i*-th alarm clock (0<=β€<=*x**i*,<=*y**i*<=β€<=100).
Note that a single point in the room can contain any number of alarm clocks and the alarm clocks can lie on the sides of the square that represents the room.
|
In a single line print a single integer β the minimum number of segments Inna will have to draw if she acts optimally.
|
[
"4\n0 0\n0 1\n0 2\n1 0\n",
"4\n0 0\n0 1\n1 0\n1 1\n",
"4\n1 1\n1 2\n2 3\n3 3\n"
] |
[
"2\n",
"2\n",
"3\n"
] |
In the first sample, Inna first chooses type "vertical segments", and then she makes segments with ends at : (0,β0), (0,β2); and, for example, (1,β0), (1,β1). If she paints horizontal segments, she will need at least 3 segments.
In the third sample it is important to note that Inna doesn't have the right to change the type of the segments during the game. That's why she will need 3 horizontal or 3 vertical segments to end the game.
| 500
|
[
{
"input": "4\n0 0\n0 1\n0 2\n1 0",
"output": "2"
},
{
"input": "4\n0 0\n0 1\n1 0\n1 1",
"output": "2"
},
{
"input": "4\n1 1\n1 2\n2 3\n3 3",
"output": "3"
},
{
"input": "1\n0 0",
"output": "1"
},
{
"input": "42\n28 87\n26 16\n59 90\n47 61\n28 83\n36 30\n67 10\n6 95\n9 49\n86 94\n52 24\n74 9\n86 24\n28 51\n25 99\n40 98\n57 33\n18 96\n43 36\n3 79\n4 86\n38 61\n25 61\n6 100\n58 81\n28 19\n64 4\n3 40\n2 56\n41 49\n97 100\n86 34\n42 36\n44 40\n14 85\n21 60\n76 99\n64 47\n69 13\n49 37\n97 37\n3 70",
"output": "31"
},
{
"input": "21\n54 85\n69 37\n42 87\n53 18\n28 22\n13 3\n62 97\n38 91\n67 19\n100 79\n29 18\n48 40\n68 84\n44 20\n37 34\n73 53\n21 5\n20 73\n24 94\n23 52\n7 55",
"output": "20"
},
{
"input": "19\n1 1\n1 2\n1 3\n1 4\n1 5\n1 6\n1 7\n1 8\n1 9\n1 10\n1 11\n1 12\n1 13\n1 14\n1 15\n1 16\n1 17\n1 18\n1 19",
"output": "1"
},
{
"input": "12\n1 1\n1 3\n1 5\n2 1\n2 2\n2 4\n3 1\n3 3\n3 5\n4 1\n4 2\n4 3",
"output": "4"
}
] | 1,611,646,525
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 19
| 764
| 9,216,000
|
n = int(input())
x = []
y = []
for i in range(n):
xt, yt = list(map(int, input().split()))
x.append(xt)
y.append(yt)
x = list(set(x))
y = list(set(y))
print(min(len(x), len(y)))
|
Title: Inna and Alarm Clock
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Inna loves sleeping very much, so she needs *n* alarm clocks in total to wake up. Let's suppose that Inna's room is a 100<=Γ<=100 square with the lower left corner at point (0,<=0) and with the upper right corner at point (100,<=100). Then the alarm clocks are points with integer coordinates in this square.
The morning has come. All *n* alarm clocks in Inna's room are ringing, so Inna wants to turn them off. For that Inna has come up with an amusing game:
- First Inna chooses a type of segments that she will use throughout the game. The segments can be either vertical or horizontal. - Then Inna makes multiple moves. In a single move, Inna can paint a segment of any length on the plane, she chooses its type at the beginning of the game (either vertical or horizontal), then all alarm clocks that are on this segment switch off. The game ends when all the alarm clocks are switched off.
Inna is very sleepy, so she wants to get through the alarm clocks as soon as possible. Help her, find the minimum number of moves in the game that she needs to turn off all the alarm clocks!
Input Specification:
The first line of the input contains integer *n* (1<=β€<=*n*<=β€<=105) β the number of the alarm clocks. The next *n* lines describe the clocks: the *i*-th line contains two integers *x**i*, *y**i* β the coordinates of the *i*-th alarm clock (0<=β€<=*x**i*,<=*y**i*<=β€<=100).
Note that a single point in the room can contain any number of alarm clocks and the alarm clocks can lie on the sides of the square that represents the room.
Output Specification:
In a single line print a single integer β the minimum number of segments Inna will have to draw if she acts optimally.
Demo Input:
['4\n0 0\n0 1\n0 2\n1 0\n', '4\n0 0\n0 1\n1 0\n1 1\n', '4\n1 1\n1 2\n2 3\n3 3\n']
Demo Output:
['2\n', '2\n', '3\n']
Note:
In the first sample, Inna first chooses type "vertical segments", and then she makes segments with ends at : (0,β0), (0,β2); and, for example, (1,β0), (1,β1). If she paints horizontal segments, she will need at least 3 segments.
In the third sample it is important to note that Inna doesn't have the right to change the type of the segments during the game. That's why she will need 3 horizontal or 3 vertical segments to end the game.
|
```python
n = int(input())
x = []
y = []
for i in range(n):
xt, yt = list(map(int, input().split()))
x.append(xt)
y.append(yt)
x = list(set(x))
y = list(set(y))
print(min(len(x), len(y)))
```
| 3
|
|
200
|
B
|
Drinks
|
PROGRAMMING
| 800
|
[
"implementation",
"math"
] | null | null |
Little Vasya loves orange juice very much. That's why any food and drink in his kitchen necessarily contains orange juice. There are *n* drinks in his fridge, the volume fraction of orange juice in the *i*-th drink equals *p**i* percent.
One day Vasya decided to make himself an orange cocktail. He took equal proportions of each of the *n* drinks and mixed them. Then he wondered, how much orange juice the cocktail has.
Find the volume fraction of orange juice in the final drink.
|
The first input line contains a single integer *n* (1<=β€<=*n*<=β€<=100) β the number of orange-containing drinks in Vasya's fridge. The second line contains *n* integers *p**i* (0<=β€<=*p**i*<=β€<=100) β the volume fraction of orange juice in the *i*-th drink, in percent. The numbers are separated by a space.
|
Print the volume fraction in percent of orange juice in Vasya's cocktail. The answer will be considered correct if the absolute or relative error does not exceed 10<=<=-<=4.
|
[
"3\n50 50 100\n",
"4\n0 25 50 75\n"
] |
[
"66.666666666667\n",
"37.500000000000\n"
] |
Note to the first sample: let's assume that Vasya takes *x* milliliters of each drink from the fridge. Then the volume of pure juice in the cocktail will equal <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/c1fac6e64d3a8ee6a5ac138cbe51e60039b22473.png" style="max-width: 100.0%;max-height: 100.0%;"/> milliliters. The total cocktail's volume equals 3Β·*x* milliliters, so the volume fraction of the juice in the cocktail equals <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/ceb0664e55a1f9f5fa1243ec74680a4665a4d58d.png" style="max-width: 100.0%;max-height: 100.0%;"/>, that is, 66.(6) percent.
| 500
|
[
{
"input": "3\n50 50 100",
"output": "66.666666666667"
},
{
"input": "4\n0 25 50 75",
"output": "37.500000000000"
},
{
"input": "3\n0 1 8",
"output": "3.000000000000"
},
{
"input": "5\n96 89 93 95 70",
"output": "88.600000000000"
},
{
"input": "7\n62 41 78 4 38 39 75",
"output": "48.142857142857"
},
{
"input": "13\n2 22 7 0 1 17 3 17 11 2 21 26 22",
"output": "11.615384615385"
},
{
"input": "21\n5 4 11 7 0 5 45 21 0 14 51 6 0 16 10 19 8 9 7 12 18",
"output": "12.761904761905"
},
{
"input": "26\n95 70 93 74 94 70 91 70 39 79 80 57 87 75 37 93 48 67 51 90 85 26 23 64 66 84",
"output": "69.538461538462"
},
{
"input": "29\n84 99 72 96 83 92 95 98 97 93 76 84 99 93 81 76 93 99 99 100 95 100 96 95 97 100 71 98 94",
"output": "91.551724137931"
},
{
"input": "33\n100 99 100 100 99 99 99 100 100 100 99 99 99 100 100 100 100 99 100 99 100 100 97 100 100 100 100 100 100 100 98 98 100",
"output": "99.515151515152"
},
{
"input": "34\n14 9 10 5 4 26 18 23 0 1 0 20 18 15 2 2 3 5 14 1 9 4 2 15 7 1 7 19 10 0 0 11 0 2",
"output": "8.147058823529"
},
{
"input": "38\n99 98 100 100 99 92 99 99 98 84 88 94 86 99 93 100 98 99 65 98 85 84 64 97 96 89 79 96 91 84 99 93 72 96 94 97 96 93",
"output": "91.921052631579"
},
{
"input": "52\n100 94 99 98 99 99 99 95 97 97 98 100 100 98 97 100 98 90 100 99 97 94 90 98 100 100 90 99 100 95 98 95 94 85 97 94 96 94 99 99 99 98 100 100 94 99 99 100 98 87 100 100",
"output": "97.019230769231"
},
{
"input": "58\n10 70 12 89 1 82 100 53 40 100 21 69 92 91 67 66 99 77 25 48 8 63 93 39 46 79 82 14 44 42 1 79 0 69 56 73 67 17 59 4 65 80 20 60 77 52 3 61 16 76 33 18 46 100 28 59 9 6",
"output": "50.965517241379"
},
{
"input": "85\n7 8 1 16 0 15 1 7 0 11 15 6 2 12 2 8 9 8 2 0 3 7 15 7 1 8 5 7 2 26 0 3 11 1 8 10 31 0 7 6 1 8 1 0 9 14 4 8 7 16 9 1 0 16 10 9 6 1 1 4 2 7 4 5 4 1 20 6 16 16 1 1 10 17 8 12 14 19 3 8 1 7 10 23 10",
"output": "7.505882352941"
},
{
"input": "74\n5 3 0 7 13 10 12 10 18 5 0 18 2 13 7 17 2 7 5 2 40 19 0 2 2 3 0 45 4 20 0 4 2 8 1 19 3 9 17 1 15 0 16 1 9 4 0 9 32 2 6 18 11 18 1 15 16 12 7 19 5 3 9 28 26 8 3 10 33 29 4 13 28 6",
"output": "10.418918918919"
},
{
"input": "98\n42 9 21 11 9 11 22 12 52 20 10 6 56 9 26 27 1 29 29 14 38 17 41 21 7 45 15 5 29 4 51 20 6 8 34 17 13 53 30 45 0 10 16 41 4 5 6 4 14 2 31 6 0 11 13 3 3 43 13 36 51 0 7 16 28 23 8 36 30 22 8 54 21 45 39 4 50 15 1 30 17 8 18 10 2 20 16 50 6 68 15 6 38 7 28 8 29 41",
"output": "20.928571428571"
},
{
"input": "99\n60 65 40 63 57 44 30 84 3 10 39 53 40 45 72 20 76 11 61 32 4 26 97 55 14 57 86 96 34 69 52 22 26 79 31 4 21 35 82 47 81 28 72 70 93 84 40 4 69 39 83 58 30 7 32 73 74 12 92 23 61 88 9 58 70 32 75 40 63 71 46 55 39 36 14 97 32 16 95 41 28 20 85 40 5 50 50 50 75 6 10 64 38 19 77 91 50 72 96",
"output": "49.191919191919"
},
{
"input": "99\n100 88 40 30 81 80 91 98 69 73 88 96 79 58 14 100 87 84 52 91 83 88 72 83 99 35 54 80 46 79 52 72 85 32 99 39 79 79 45 83 88 50 75 75 50 59 65 75 97 63 92 58 89 46 93 80 89 33 69 86 99 99 66 85 72 74 79 98 85 95 46 63 77 97 49 81 89 39 70 76 68 91 90 56 31 93 51 87 73 95 74 69 87 95 57 68 49 95 92",
"output": "73.484848484848"
},
{
"input": "100\n18 15 17 0 3 3 0 4 1 8 2 22 7 21 5 0 0 8 3 16 1 0 2 9 9 3 10 8 17 20 5 4 8 12 2 3 1 1 3 2 23 0 1 0 5 7 4 0 1 3 3 4 25 2 2 14 8 4 9 3 0 11 0 3 12 3 14 16 7 7 14 1 17 9 0 35 42 12 3 1 25 9 3 8 5 3 2 8 22 14 11 6 3 9 6 8 7 7 4 6",
"output": "7.640000000000"
},
{
"input": "100\n88 77 65 87 100 63 91 96 92 89 77 95 76 80 84 83 100 71 85 98 26 54 74 78 69 59 96 86 88 91 95 26 52 88 64 70 84 81 76 84 94 82 100 66 97 98 43 94 59 94 100 80 98 73 69 83 94 70 74 79 91 31 62 88 69 55 62 97 40 64 62 83 87 85 50 90 69 72 67 49 100 51 69 96 81 90 83 91 86 34 79 69 100 66 97 98 47 97 74 100",
"output": "77.660000000000"
},
{
"input": "100\n91 92 90 91 98 84 85 96 83 98 99 87 94 70 87 75 86 90 89 88 82 83 91 94 88 86 90 99 100 98 97 75 95 99 95 100 91 92 76 93 95 97 88 93 95 81 96 89 88 100 98 87 90 96 100 99 58 90 96 77 92 82 100 100 93 93 98 99 79 88 97 95 98 66 96 83 96 100 99 92 98 98 92 93 100 97 98 100 98 97 100 100 94 90 99 100 98 79 80 81",
"output": "91.480000000000"
},
{
"input": "1\n0",
"output": "0.000000000000"
},
{
"input": "1\n100",
"output": "100.000000000000"
},
{
"input": "1\n78",
"output": "78.000000000000"
},
{
"input": "2\n0 100",
"output": "50.000000000000"
},
{
"input": "2\n100 100",
"output": "100.000000000000"
},
{
"input": "5\n0 0 0 0 1",
"output": "0.200000000000"
},
{
"input": "100\n100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 100 99",
"output": "99.990000000000"
},
{
"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 1",
"output": "0.010000000000"
},
{
"input": "5\n100 100 100 100 100",
"output": "100.000000000000"
}
] | 1,694,045,725
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 31
| 92
| 0
|
# -*- coding: utf-8 -*-
"""
Created on Thu Sep 7 08:11:37 2023
@author: HyFlu
"""
bottle=int(input())
data=input().split()
orange=0
data=[float(data[i]) for i in range(bottle)]
for i in range(bottle):
orange+=data[i]
print(orange/bottle)
|
Title: Drinks
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little Vasya loves orange juice very much. That's why any food and drink in his kitchen necessarily contains orange juice. There are *n* drinks in his fridge, the volume fraction of orange juice in the *i*-th drink equals *p**i* percent.
One day Vasya decided to make himself an orange cocktail. He took equal proportions of each of the *n* drinks and mixed them. Then he wondered, how much orange juice the cocktail has.
Find the volume fraction of orange juice in the final drink.
Input Specification:
The first input line contains a single integer *n* (1<=β€<=*n*<=β€<=100) β the number of orange-containing drinks in Vasya's fridge. The second line contains *n* integers *p**i* (0<=β€<=*p**i*<=β€<=100) β the volume fraction of orange juice in the *i*-th drink, in percent. The numbers are separated by a space.
Output Specification:
Print the volume fraction in percent of orange juice in Vasya's cocktail. The answer will be considered correct if the absolute or relative error does not exceed 10<=<=-<=4.
Demo Input:
['3\n50 50 100\n', '4\n0 25 50 75\n']
Demo Output:
['66.666666666667\n', '37.500000000000\n']
Note:
Note to the first sample: let's assume that Vasya takes *x* milliliters of each drink from the fridge. Then the volume of pure juice in the cocktail will equal <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/c1fac6e64d3a8ee6a5ac138cbe51e60039b22473.png" style="max-width: 100.0%;max-height: 100.0%;"/> milliliters. The total cocktail's volume equals 3Β·*x* milliliters, so the volume fraction of the juice in the cocktail equals <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/ceb0664e55a1f9f5fa1243ec74680a4665a4d58d.png" style="max-width: 100.0%;max-height: 100.0%;"/>, that is, 66.(6) percent.
|
```python
# -*- coding: utf-8 -*-
"""
Created on Thu Sep 7 08:11:37 2023
@author: HyFlu
"""
bottle=int(input())
data=input().split()
orange=0
data=[float(data[i]) for i in range(bottle)]
for i in range(bottle):
orange+=data[i]
print(orange/bottle)
```
| 3
|
|
18
|
D
|
Seller Bob
|
PROGRAMMING
| 2,000
|
[
"brute force",
"dp",
"greedy"
] |
D. Seller Bob
|
2
|
128
|
Last year Bob earned by selling memory sticks. During each of *n* days of his work one of the two following events took place:
- A customer came to Bob and asked to sell him a 2*x* MB memory stick. If Bob had such a stick, he sold it and got 2*x* berllars. - Bob won some programming competition and got a 2*x* MB memory stick as a prize. Bob could choose whether to present this memory stick to one of his friends, or keep it.
Bob never kept more than one memory stick, as he feared to mix up their capacities, and deceive a customer unintentionally. It is also known that for each memory stick capacity there was at most one customer, who wanted to buy that memory stick. Now, knowing all the customers' demands and all the prizes won at programming competitions during the last *n* days, Bob wants to know, how much money he could have earned, if he had acted optimally.
|
The first input line contains number *n* (1<=β€<=*n*<=β€<=5000) β amount of Bob's working days. The following *n* lines contain the description of the days. Line sell x stands for a day when a customer came to Bob to buy a 2*x* MB memory stick (0<=β€<=*x*<=β€<=2000). It's guaranteed that for each *x* there is not more than one line sell x. Line win x stands for a day when Bob won a 2*x* MB memory stick (0<=β€<=*x*<=β€<=2000).
|
Output the maximum possible earnings for Bob in berllars, that he would have had if he had known all the events beforehand. Don't forget, please, that Bob can't keep more than one memory stick at a time.
|
[
"7\nwin 10\nwin 5\nwin 3\nsell 5\nsell 3\nwin 10\nsell 10\n",
"3\nwin 5\nsell 6\nsell 4\n"
] |
[
"1056\n",
"0\n"
] |
none
| 0
|
[
{
"input": "7\nwin 10\nwin 5\nwin 3\nsell 5\nsell 3\nwin 10\nsell 10",
"output": "1056"
},
{
"input": "3\nwin 5\nsell 6\nsell 4",
"output": "0"
},
{
"input": "60\nwin 30\nsell 30\nwin 29\nsell 29\nwin 28\nsell 28\nwin 27\nsell 27\nwin 26\nsell 26\nwin 25\nsell 25\nwin 24\nsell 24\nwin 23\nsell 23\nwin 22\nsell 22\nwin 21\nsell 21\nwin 20\nsell 20\nwin 19\nsell 19\nwin 18\nsell 18\nwin 17\nsell 17\nwin 16\nsell 16\nwin 15\nsell 15\nwin 14\nsell 14\nwin 13\nsell 13\nwin 12\nsell 12\nwin 11\nsell 11\nwin 10\nsell 10\nwin 9\nsell 9\nwin 8\nsell 8\nwin 7\nsell 7\nwin 6\nsell 6\nwin 5\nsell 5\nwin 4\nsell 4\nwin 3\nsell 3\nwin 2\nsell 2\nwin 1\nsell 1",
"output": "2147483646"
},
{
"input": "10\nsell 179\nwin 1278\nsell 1278\nwin 179\nwin 788\nsell 788\nwin 1819\nwin 1278\nsell 1454\nsell 1819",
"output": "3745951177859672748085876072016755224158263650470541376602416977749506433342393741012551962469399005106980957564747771946546075632634156222832360666586993197712597743102870994304893421406288896658113922358079050393796282759740479830789771109056742931607432542704338811780614109483471170758503563410473205320757445249359340913055427891395101189449739249593088482768598397566812797391842205760535689034164783939977837838115215972505331175064745799973957898910533590618104893265678599370512439216359131269814745054..."
},
{
"input": "10\nsell 573\nwin 1304\nsell 278\nwin 1631\nsell 1225\nsell 1631\nsell 177\nwin 1631\nwin 177\nsell 1304",
"output": "95482312335125227379668481690754940528280513838693267460502082967052005332103697568042408703168913727303170456338425853153094403747135188778307041838920404959089576368946137708987138986696495077466398994298434148881715073638178666201165545650953479735059082316661443204882826188032944866093372620219104327689636641547141835841165681118172603993695103043804276669836594061369229043451067647935298287687852302215923887110435577776767805943668204998410716005202198549540411238299513630278811648"
},
{
"input": "10\nwin 1257\nwin 1934\nsell 1934\nsell 1257\nwin 1934\nwin 1257\nsell 495\nwin 495\nwin 495\nwin 1257",
"output": "1556007242642049292787218246793379348327505438878680952714050868520307364441227819009733220897932984584977593931988662671459594674963394056587723382487766303981362587048873128400436836690128983570130687310221668877557121158055843621982630476422478413285775826498536883275291967793661985813155062733063913176306327509625594121241472451054995889483447103432414676059872469910105149496451402271546454282618581884282152530090816240540173251729211604658704990425330422792556824836640431985211146197816770068601144273..."
},
{
"input": "10\nsell 1898\nsell 173\nsell 1635\nsell 29\nsell 881\nsell 434\nsell 1236\nsell 14\nwin 29\nsell 1165",
"output": "0"
},
{
"input": "50\nwin 1591\nwin 312\nwin 1591\nwin 1277\nwin 1732\nwin 1277\nwin 312\nwin 1591\nwin 210\nwin 1591\nwin 210\nsell 1732\nwin 312\nwin 1732\nwin 210\nwin 1591\nwin 312\nwin 210\nwin 1732\nwin 1732\nwin 1591\nwin 1732\nwin 312\nwin 1732\nsell 1277\nwin 1732\nwin 210\nwin 1277\nwin 1277\nwin 312\nwin 1732\nsell 312\nsell 1591\nwin 312\nsell 210\nwin 1732\nwin 312\nwin 210\nwin 1591\nwin 1591\nwin 1732\nwin 210\nwin 1591\nwin 312\nwin 1277\nwin 1591\nwin 210\nwin 1277\nwin 1732\nwin 312",
"output": "2420764210856015331214801822295882718446835865177072936070024961324113887299407742968459201784200628346247573017634417460105466317641563795817074771860850712020768123310899251645626280515264270127874292153603360689565451372953171008749749476807656127914801962353129980445541683621172887240439496869443980760905844921588668701053404581445092887732985786593080332302468009347364906506742888063949158794894756704243685813947581549214136427388148927087858952333440295415050590550479915766637705353193400817849524933..."
},
{
"input": "50\nwin 596\nwin 1799\nwin 1462\nsell 460\nwin 731\nwin 723\nwin 731\nwin 329\nwin 838\nsell 728\nwin 728\nwin 460\nwin 723\nwin 1462\nwin 1462\nwin 460\nwin 329\nwin 1462\nwin 460\nwin 460\nwin 723\nwin 731\nwin 723\nwin 596\nwin 731\nwin 596\nwin 329\nwin 728\nwin 715\nwin 329\nwin 1799\nwin 715\nwin 723\nwin 728\nwin 1462\nwin 596\nwin 728\nsell 1462\nsell 731\nsell 723\nsell 596\nsell 1799\nwin 715\nsell 329\nsell 715\nwin 731\nwin 596\nwin 596\nwin 1799\nsell 838",
"output": "3572417428836510418020130226151232933195365572424451233484665849446779664366143933308174097508811001879673917355296871134325099594720989439804421106898301313126179907518635998806895566124222305730664245219198882158809677890894851351153171006242601699481340338225456896495739360268670655803862712132671163869311331357956008411198419420320449558787147867731519734760711196755523479867536729489438488681378976579126837971468043235641314636566999618274861697304906262004280314028540891222536060126170572182168995779..."
},
{
"input": "50\nwin 879\nwin 1153\nwin 1469\nwin 157\nwin 827\nwin 679\nsell 1229\nwin 454\nsell 879\nsell 1222\nwin 924\nwin 827\nsell 1366\nwin 879\nsell 754\nwin 1153\nwin 679\nwin 1185\nsell 1469\nsell 454\nsell 679\nsell 1153\nwin 1469\nwin 827\nwin 1469\nwin 1024\nwin 1222\nsell 157\nsell 1185\nsell 827\nwin 1469\nsell 1569\nwin 754\nsell 1024\nwin 924\nwin 924\nsell 1876\nsell 479\nsell 435\nwin 754\nwin 174\nsell 174\nsell 147\nsell 924\nwin 1469\nwin 1876\nwin 1229\nwin 1469\nwin 1222\nwin 157",
"output": "16332912310228701097717316802721870128775022868221080314403305773060286348016616983179506327297989866534783694332203603069900790667846028602603898749788769867206327097934433881603593880774778104853105937620753202513845830781396468839434689035327911539335925798473899153215505268301939672678983012311225261177070282290958328569587449928340374890197297462448526671963786572758011646874155763250281850311510811863346015732742889066278088442118144"
},
{
"input": "50\nsell 1549\nwin 1168\nsell 1120\nwin 741\nsell 633\nwin 274\nsell 1936\nwin 1168\nsell 614\nwin 33\nsell 1778\nwin 127\nsell 1168\nwin 33\nwin 633\nsell 1474\nwin 518\nwin 1685\nsell 1796\nsell 741\nsell 485\nwin 747\nsell 588\nsell 1048\nwin 1580\nwin 60\nsell 1685\nsell 1580\nsell 1535\nwin 485\nsell 31\nsell 747\nsell 1473\nsell 518\nwin 633\nsell 1313\nwin 1580\nsell 1560\nsell 127\nsell 274\nwin 123\nwin 31\nsell 123\nsell 33\nwin 1778\nsell 1834\nsell 60\nsell 1751\nsell 1287\nwin 1549",
"output": "1720056425011773151265118871077591733216276990085092619030835675616738576936900493041118761959770055340668032173576279597675976622004777210845027112875371906527379337573212312341811682481516081119925150514042583039122963732518350292624889782510925425243478590699982487521431988980734651291693696303059520879874887472437061826782122289965998009474317347011699360401227487786089319043200666474560882786695043543699741809763479940250459103751744852630592882730442346682844070898735881280272505893611419620868096"
},
{
"input": "1\nsell 2000",
"output": "0"
},
{
"input": "1\nwin 2000",
"output": "0"
},
{
"input": "2\nwin 2000\nsell 2000",
"output": "1148130695274254524232833201177681984022317702088695200477642736825766261392370313856659486316506269918445964638987462773447118960863055331425931356166653185391299891453122800006887791482400448714289269900634862447816154636463883639473170260404663539709049965581623988089446296056233116495361642219703326813441689089844585056023794848079140589009347765004290027167066258305220081322362812917612678833172065989953964181270217798584040421598531832515408894339020919205549577835896720391600819572166305827553804255..."
}
] | 1,521,970,346
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 45
| 1,746
| 8,089,600
|
n = int(input())
dp_things = [0]*n;
dp_price = [0]*n;
for i in range(n):
if (i > 0):
dp_price[i] = dp_price[i-1];
(s, num) = input().split();
num = pow(2, int(num));
if (s == 'win'):
dp_things[i] = num;
if (s == 'sell'):
for j in range(i):
if (dp_things[j] == num and dp_price[j] + num > dp_price[i]):
dp_price[i] = dp_price[j] + num;
print (dp_price[n - 1]);
# Sun Mar 25 2018 12:32:25 GMT+0300 (MSK)
|
Title: Seller Bob
Time Limit: 2 seconds
Memory Limit: 128 megabytes
Problem Description:
Last year Bob earned by selling memory sticks. During each of *n* days of his work one of the two following events took place:
- A customer came to Bob and asked to sell him a 2*x* MB memory stick. If Bob had such a stick, he sold it and got 2*x* berllars. - Bob won some programming competition and got a 2*x* MB memory stick as a prize. Bob could choose whether to present this memory stick to one of his friends, or keep it.
Bob never kept more than one memory stick, as he feared to mix up their capacities, and deceive a customer unintentionally. It is also known that for each memory stick capacity there was at most one customer, who wanted to buy that memory stick. Now, knowing all the customers' demands and all the prizes won at programming competitions during the last *n* days, Bob wants to know, how much money he could have earned, if he had acted optimally.
Input Specification:
The first input line contains number *n* (1<=β€<=*n*<=β€<=5000) β amount of Bob's working days. The following *n* lines contain the description of the days. Line sell x stands for a day when a customer came to Bob to buy a 2*x* MB memory stick (0<=β€<=*x*<=β€<=2000). It's guaranteed that for each *x* there is not more than one line sell x. Line win x stands for a day when Bob won a 2*x* MB memory stick (0<=β€<=*x*<=β€<=2000).
Output Specification:
Output the maximum possible earnings for Bob in berllars, that he would have had if he had known all the events beforehand. Don't forget, please, that Bob can't keep more than one memory stick at a time.
Demo Input:
['7\nwin 10\nwin 5\nwin 3\nsell 5\nsell 3\nwin 10\nsell 10\n', '3\nwin 5\nsell 6\nsell 4\n']
Demo Output:
['1056\n', '0\n']
Note:
none
|
```python
n = int(input())
dp_things = [0]*n;
dp_price = [0]*n;
for i in range(n):
if (i > 0):
dp_price[i] = dp_price[i-1];
(s, num) = input().split();
num = pow(2, int(num));
if (s == 'win'):
dp_things[i] = num;
if (s == 'sell'):
for j in range(i):
if (dp_things[j] == num and dp_price[j] + num > dp_price[i]):
dp_price[i] = dp_price[j] + num;
print (dp_price[n - 1]);
# Sun Mar 25 2018 12:32:25 GMT+0300 (MSK)
```
| 3.533364
|
888
|
B
|
Buggy Robot
|
PROGRAMMING
| 1,000
|
[
"greedy"
] | null | null |
Ivan has a robot which is situated on an infinite grid. Initially the robot is standing in the starting cell (0,<=0). The robot can process commands. There are four types of commands it can perform:
- U β move from the cell (*x*,<=*y*) to (*x*,<=*y*<=+<=1); - D β move from (*x*,<=*y*) to (*x*,<=*y*<=-<=1); - L β move from (*x*,<=*y*) to (*x*<=-<=1,<=*y*); - R β move from (*x*,<=*y*) to (*x*<=+<=1,<=*y*).
Ivan entered a sequence of *n* commands, and the robot processed it. After this sequence the robot ended up in the starting cell (0,<=0), but Ivan doubts that the sequence is such that after performing it correctly the robot ends up in the same cell. He thinks that some commands were ignored by robot. To acknowledge whether the robot is severely bugged, he needs to calculate the maximum possible number of commands that were performed correctly. Help Ivan to do the calculations!
|
The first line contains one number *n* β the length of sequence of commands entered by Ivan (1<=β€<=*n*<=β€<=100).
The second line contains the sequence itself β a string consisting of *n* characters. Each character can be U, D, L or R.
|
Print the maximum possible number of commands from the sequence the robot could perform to end up in the starting cell.
|
[
"4\nLDUR\n",
"5\nRRRUU\n",
"6\nLLRRRR\n"
] |
[
"4\n",
"0\n",
"4\n"
] |
none
| 0
|
[
{
"input": "4\nLDUR",
"output": "4"
},
{
"input": "5\nRRRUU",
"output": "0"
},
{
"input": "6\nLLRRRR",
"output": "4"
},
{
"input": "88\nLLUUULRDRRURDDLURRLRDRLLRULRUUDDLLLLRRDDURDURRLDURRLDRRRUULDDLRRRDDRRLUULLURDURUDDDDDLDR",
"output": "76"
},
{
"input": "89\nLDLLLDRDUDURRRRRUDULDDDLLUDLRLRLRLDLDUULRDUDLRRDLUDLURRDDRRDLDUDUUURUUUDRLUDUDLURDLDLLDDU",
"output": "80"
},
{
"input": "90\nRRRDUULLLRDUUDDRLDLRLUDURDRDUUURUURDDRRRURLDDDUUDRLLLULURDRDRURLDRRRRUULDULDDLLLRRLRDLLLLR",
"output": "84"
},
{
"input": "91\nRLDRLRRLLDLULULLURULLRRULUDUULLUDULDUULURUDRUDUURDULDUDDUUUDRRUUDLLRULRULURLDRDLDRURLLLRDDD",
"output": "76"
},
{
"input": "92\nRLRDDLULRLLUURRDDDLDDDLDDUURRRULLRDULDULLLUUULDUDLRLRRDRDRDDULDRLUDRDULDRURUDUULLRDRRLLDRLRR",
"output": "86"
},
{
"input": "93\nRLLURLULRURDDLUURLUDDRDLUURLRDLRRRDUULLRDRRLRLDURRDLLRDDLLLDDDLDRRURLLDRUDULDDRRULRRULRLDRDLR",
"output": "84"
},
{
"input": "94\nRDULDDDLULRDRUDRUUDUUDRRRULDRRUDURUULRDUUDLULLLUDURRDRDLUDRULRRRULUURUDDDDDUDLLRDLDRLLRUUURLUL",
"output": "86"
},
{
"input": "95\nRDLUUULLUURDDRLDLLRRRULRLRDULULRULRUDURLULDDDRLURLDRULDUDUUULLRDDURUULULLDDLDRDRLLLURLRDLLDDDDU",
"output": "86"
},
{
"input": "96\nRDDRLRLLDDULRLRURUDLRLDUDRURLLUUDLLURDLRRUURDRRUDRURLLDLLRDURDURLRLUDURULLLRDUURULUUULRRURRDLURL",
"output": "84"
},
{
"input": "97\nRURDDLRLLRULUDURDLRLLUUDURRLLUDLLLDUDRUULDRUUURURULRDLDRRLLUUUDLLLDDLLLLRLLDUDRRDLLUDLRURUDULRLUR",
"output": "82"
},
{
"input": "98\nRUDURLULLDDLLRDLLRDDLLLLRLDDDDRRRDDRRURLDRLLRUUUDLUUUDDDUDRUURLURUUDUUDRULRRULLRRLRULLULDLUURLULRD",
"output": "92"
},
{
"input": "99\nRRULLDULRRDRULLDUDRUDDDRLLUUDRDDUDURLDDRUUDRRUUURRRURDDLDUURDLRLURRDDLUDDLUDURDRUDDURLURURLRUDRURLD",
"output": "86"
},
{
"input": "100\nUDRLRRLLRRLRRRDDLLDDDLULLDDLURUURUULUDDDRDDLLRDLLUURLRDRLRRLRLLLULDUDDUURRLRDULDRDURRRRRRULDRRDLDRRL",
"output": "88"
},
{
"input": "1\nU",
"output": "0"
},
{
"input": "5\nUUULD",
"output": "2"
},
{
"input": "1\nD",
"output": "0"
},
{
"input": "5\nURLUL",
"output": "2"
},
{
"input": "5\nDDDRU",
"output": "2"
},
{
"input": "2\nLR",
"output": "2"
},
{
"input": "8\nDDRDLDUR",
"output": "4"
},
{
"input": "6\nLLLLUD",
"output": "2"
},
{
"input": "13\nRRRLLLLLLLLLL",
"output": "6"
}
] | 1,585,401,411
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 25
| 124
| 0
|
n=int(input())
s=input()
V=['U','D','L','R']
C=[0,0,0,0]
for l in s:
C[V.index(l)]+=1
print(2*min(C[0],C[1])+2*min(C[2],C[3]))
|
Title: Buggy Robot
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Ivan has a robot which is situated on an infinite grid. Initially the robot is standing in the starting cell (0,<=0). The robot can process commands. There are four types of commands it can perform:
- U β move from the cell (*x*,<=*y*) to (*x*,<=*y*<=+<=1); - D β move from (*x*,<=*y*) to (*x*,<=*y*<=-<=1); - L β move from (*x*,<=*y*) to (*x*<=-<=1,<=*y*); - R β move from (*x*,<=*y*) to (*x*<=+<=1,<=*y*).
Ivan entered a sequence of *n* commands, and the robot processed it. After this sequence the robot ended up in the starting cell (0,<=0), but Ivan doubts that the sequence is such that after performing it correctly the robot ends up in the same cell. He thinks that some commands were ignored by robot. To acknowledge whether the robot is severely bugged, he needs to calculate the maximum possible number of commands that were performed correctly. Help Ivan to do the calculations!
Input Specification:
The first line contains one number *n* β the length of sequence of commands entered by Ivan (1<=β€<=*n*<=β€<=100).
The second line contains the sequence itself β a string consisting of *n* characters. Each character can be U, D, L or R.
Output Specification:
Print the maximum possible number of commands from the sequence the robot could perform to end up in the starting cell.
Demo Input:
['4\nLDUR\n', '5\nRRRUU\n', '6\nLLRRRR\n']
Demo Output:
['4\n', '0\n', '4\n']
Note:
none
|
```python
n=int(input())
s=input()
V=['U','D','L','R']
C=[0,0,0,0]
for l in s:
C[V.index(l)]+=1
print(2*min(C[0],C[1])+2*min(C[2],C[3]))
```
| 3
|
|
58
|
A
|
Chat room
|
PROGRAMMING
| 1,000
|
[
"greedy",
"strings"
] |
A. Chat room
|
1
|
256
|
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
|
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
|
If Vasya managed to say hello, print "YES", otherwise print "NO".
|
[
"ahhellllloou\n",
"hlelo\n"
] |
[
"YES\n",
"NO\n"
] |
none
| 500
|
[
{
"input": "ahhellllloou",
"output": "YES"
},
{
"input": "hlelo",
"output": "NO"
},
{
"input": "helhcludoo",
"output": "YES"
},
{
"input": "hehwelloho",
"output": "YES"
},
{
"input": "pnnepelqomhhheollvlo",
"output": "YES"
},
{
"input": "tymbzjyqhymedasloqbq",
"output": "NO"
},
{
"input": "yehluhlkwo",
"output": "NO"
},
{
"input": "hatlevhhalrohairnolsvocafgueelrqmlqlleello",
"output": "YES"
},
{
"input": "hhhtehdbllnhwmbyhvelqqyoulretpbfokflhlhreeflxeftelziclrwllrpflflbdtotvlqgoaoqldlroovbfsq",
"output": "YES"
},
{
"input": "rzlvihhghnelqtwlexmvdjjrliqllolhyewgozkuovaiezgcilelqapuoeglnwmnlftxxiigzczlouooi",
"output": "YES"
},
{
"input": "pfhhwctyqdlkrwhebfqfelhyebwllhemtrmeblgrynmvyhioesqklclocxmlffuormljszllpoo",
"output": "YES"
},
{
"input": "lqllcolohwflhfhlnaow",
"output": "NO"
},
{
"input": "heheeellollvoo",
"output": "YES"
},
{
"input": "hellooo",
"output": "YES"
},
{
"input": "o",
"output": "NO"
},
{
"input": "hhqhzeclohlehljlhtesllylrolmomvuhcxsobtsckogdv",
"output": "YES"
},
{
"input": "yoegfuzhqsihygnhpnukluutocvvwuldiighpogsifealtgkfzqbwtmgghmythcxflebrkctlldlkzlagovwlstsghbouk",
"output": "YES"
},
{
"input": "uatqtgbvrnywfacwursctpagasnhydvmlinrcnqrry",
"output": "NO"
},
{
"input": "tndtbldbllnrwmbyhvqaqqyoudrstpbfokfoclnraefuxtftmgzicorwisrpfnfpbdtatvwqgyalqtdtrjqvbfsq",
"output": "NO"
},
{
"input": "rzlvirhgemelnzdawzpaoqtxmqucnahvqnwldklrmjiiyageraijfivigvozgwngiulttxxgzczptusoi",
"output": "YES"
},
{
"input": "kgyelmchocojsnaqdsyeqgnllytbqietpdlgknwwumqkxrexgdcnwoldicwzwofpmuesjuxzrasscvyuqwspm",
"output": "YES"
},
{
"input": "pnyvrcotjvgynbeldnxieghfltmexttuxzyac",
"output": "NO"
},
{
"input": "dtwhbqoumejligbenxvzhjlhosqojetcqsynlzyhfaevbdpekgbtjrbhlltbceobcok",
"output": "YES"
},
{
"input": "crrfpfftjwhhikwzeedrlwzblckkteseofjuxjrktcjfsylmlsvogvrcxbxtffujqshslemnixoeezivksouefeqlhhokwbqjz",
"output": "YES"
},
{
"input": "jhfbndhyzdvhbvhmhmefqllujdflwdpjbehedlsqfdsqlyelwjtyloxwsvasrbqosblzbowlqjmyeilcvotdlaouxhdpoeloaovb",
"output": "YES"
},
{
"input": "hwlghueoemiqtjhhpashjsouyegdlvoyzeunlroypoprnhlyiwiuxrghekaylndhrhllllwhbebezoglydcvykllotrlaqtvmlla",
"output": "YES"
},
{
"input": "wshiaunnqnqxodholbipwhhjmyeblhgpeleblklpzwhdunmpqkbuzloetmwwxmeltkrcomulxauzlwmlklldjodozxryghsnwgcz",
"output": "YES"
},
{
"input": "shvksednttggehroewuiptvvxtrzgidravtnjwuqrlnnkxbplctzkckinpkgjopjfoxdbojtcvsuvablcbkrzajrlhgobkcxeqti",
"output": "YES"
},
{
"input": "hyyhddqhxhekehkwfhlnlsihzefwchzerevcjtokefplholrbvxlltdlafjxrfhleglrvlolojoqaolagtbeyogxlbgfolllslli",
"output": "YES"
},
{
"input": "iaagrdhhelxpdegueiulflquvlzidoprzkehthkldaytrjwhyhprwjxlltinxvuilxohqgjqcvkkdcuoliekcnlilwgqlnlzouoo",
"output": "YES"
},
{
"input": "wfluaeseldgxyvxpwuhkptdmlflnlhktwxiabsvkolsquymrmhzczzoybvlilhmvsuunggvgxzgyyffk",
"output": "NO"
},
{
"input": "loee",
"output": "NO"
},
{
"input": "izdipwylefqmjbuoznfglgcfvedeouflkeehxbasaqmiooppfsqlhprospqgxvzrcpwlfdddngoqvpwvggsnvvxhmjoslwjudjlo",
"output": "NO"
},
{
"input": "pplynflbjlseflaegzqpdxswgunhnlglqhycrbcwdfhclmcrwekkzsoosmfblljeenwfjyifcvxihhhbyhmhlkvtskeglaovjnsi",
"output": "YES"
},
{
"input": "xqjqmenkodmlhzyzmmvofdngktygbbxbzpluzcohohmalkoeuwfikblltaaigv",
"output": "NO"
},
{
"input": "hello",
"output": "YES"
},
{
"input": "oohell",
"output": "NO"
},
{
"input": "hell",
"output": "NO"
},
{
"input": "eloellohoelo",
"output": "NO"
},
{
"input": "helllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllo",
"output": "YES"
}
] | 1,601,317,468
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 40
| 109
| 0
|
import sys
a = input()
cx = 'hello'
for i in range(len(a)):
if a[i] == cx[0]:
while i<len(a) and a[i] == cx[0]:
i+=1
cx = cx[1:]
if len(cx) == 0:
print("YES")
sys.exit()
print("NO")
|
Title: Chat room
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
Input Specification:
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
Output Specification:
If Vasya managed to say hello, print "YES", otherwise print "NO".
Demo Input:
['ahhellllloou\n', 'hlelo\n']
Demo Output:
['YES\n', 'NO\n']
Note:
none
|
```python
import sys
a = input()
cx = 'hello'
for i in range(len(a)):
if a[i] == cx[0]:
while i<len(a) and a[i] == cx[0]:
i+=1
cx = cx[1:]
if len(cx) == 0:
print("YES")
sys.exit()
print("NO")
```
| 3.9455
|
450
|
B
|
Jzzhu and Sequences
|
PROGRAMMING
| 1,300
|
[
"implementation",
"math"
] | null | null |
Jzzhu has invented a kind of sequences, they meet the following property:
You are given *x* and *y*, please calculate *f**n* modulo 1000000007 (109<=+<=7).
|
The first line contains two integers *x* and *y* (|*x*|,<=|*y*|<=β€<=109). The second line contains a single integer *n* (1<=β€<=*n*<=β€<=2Β·109).
|
Output a single integer representing *f**n* modulo 1000000007 (109<=+<=7).
|
[
"2 3\n3\n",
"0 -1\n2\n"
] |
[
"1\n",
"1000000006\n"
] |
In the first sample, *f*<sub class="lower-index">2</sub>β=β*f*<sub class="lower-index">1</sub>β+β*f*<sub class="lower-index">3</sub>, 3β=β2β+β*f*<sub class="lower-index">3</sub>, *f*<sub class="lower-index">3</sub>β=β1.
In the second sample, *f*<sub class="lower-index">2</sub>β=ββ-β1; β-β1 modulo (10<sup class="upper-index">9</sup>β+β7) equals (10<sup class="upper-index">9</sup>β+β6).
| 1,000
|
[
{
"input": "2 3\n3",
"output": "1"
},
{
"input": "0 -1\n2",
"output": "1000000006"
},
{
"input": "-9 -11\n12345",
"output": "1000000005"
},
{
"input": "0 0\n1000000000",
"output": "0"
},
{
"input": "-1000000000 1000000000\n2000000000",
"output": "1000000000"
},
{
"input": "-12345678 12345678\n1912345678",
"output": "12345678"
},
{
"input": "728374857 678374857\n1928374839",
"output": "950000007"
},
{
"input": "278374837 992837483\n1000000000",
"output": "721625170"
},
{
"input": "-693849384 502938493\n982838498",
"output": "502938493"
},
{
"input": "-783928374 983738273\n992837483",
"output": "16261734"
},
{
"input": "-872837483 -682738473\n999999999",
"output": "190099010"
},
{
"input": "-892837483 -998273847\n999283948",
"output": "892837483"
},
{
"input": "-283938494 738473848\n1999999999",
"output": "716061513"
},
{
"input": "-278374857 819283838\n1",
"output": "721625150"
},
{
"input": "-1000000000 123456789\n1",
"output": "7"
},
{
"input": "-529529529 -524524524\n2",
"output": "475475483"
},
{
"input": "1 2\n2000000000",
"output": "2"
},
{
"input": "-1 -2\n2000000000",
"output": "1000000005"
},
{
"input": "1 2\n1999999999",
"output": "1"
},
{
"input": "1 2\n1999999998",
"output": "1000000006"
},
{
"input": "1 2\n1999999997",
"output": "1000000005"
},
{
"input": "1 2\n1999999996",
"output": "1000000006"
},
{
"input": "69975122 366233206\n1189460676",
"output": "703741923"
},
{
"input": "812229413 904420051\n806905621",
"output": "812229413"
},
{
"input": "872099024 962697902\n1505821695",
"output": "90598878"
},
{
"input": "887387283 909670917\n754835014",
"output": "112612724"
},
{
"input": "37759824 131342932\n854621399",
"output": "868657075"
},
{
"input": "-246822123 800496170\n626323615",
"output": "753177884"
},
{
"input": "-861439463 974126967\n349411083",
"output": "835566423"
},
{
"input": "-69811049 258093841\n1412447",
"output": "741906166"
},
{
"input": "844509330 -887335829\n123329059",
"output": "844509330"
},
{
"input": "83712471 -876177148\n1213284777",
"output": "40110388"
},
{
"input": "598730524 -718984219\n1282749880",
"output": "401269483"
},
{
"input": "-474244697 -745885656\n1517883612",
"output": "271640959"
},
{
"input": "-502583588 -894906953\n1154189557",
"output": "497416419"
},
{
"input": "-636523651 -873305815\n154879215",
"output": "763217843"
},
{
"input": "721765550 594845720\n78862386",
"output": "126919830"
},
{
"input": "364141461 158854993\n1337196589",
"output": "364141461"
},
{
"input": "878985260 677031952\n394707801",
"output": "798046699"
},
{
"input": "439527072 -24854079\n1129147002",
"output": "464381151"
},
{
"input": "840435009 -612103127\n565968986",
"output": "387896880"
},
{
"input": "875035447 -826471373\n561914518",
"output": "124964560"
},
{
"input": "-342526698 305357084\n70776744",
"output": "352116225"
},
{
"input": "-903244186 899202229\n1527859274",
"output": "899202229"
},
{
"input": "-839482546 815166320\n1127472130",
"output": "839482546"
},
{
"input": "-976992569 -958313041\n1686580818",
"output": "981320479"
},
{
"input": "-497338894 -51069176\n737081851",
"output": "502661113"
},
{
"input": "-697962643 -143148799\n1287886520",
"output": "856851208"
},
{
"input": "-982572938 -482658433\n1259858332",
"output": "982572938"
},
{
"input": "123123 78817\n2000000000",
"output": "78817"
},
{
"input": "1000000000 -1000000000\n3",
"output": "14"
},
{
"input": "-1000000000 1000000000\n6",
"output": "14"
},
{
"input": "2 3\n6",
"output": "1000000006"
},
{
"input": "0 -1\n6",
"output": "1"
},
{
"input": "500000000 -1000000000\n600000003",
"output": "500000014"
},
{
"input": "-1000000000 1000000000\n3",
"output": "999999993"
},
{
"input": "1 3\n6",
"output": "1000000005"
},
{
"input": "1 2\n12",
"output": "1000000006"
},
{
"input": "7 -1000000000\n3",
"output": "0"
},
{
"input": "-999999997 999999997\n6",
"output": "20"
},
{
"input": "3 4\n6",
"output": "1000000006"
},
{
"input": "-1 2\n6",
"output": "1000000004"
},
{
"input": "2 3\n12",
"output": "1000000006"
},
{
"input": "4 18\n6",
"output": "999999993"
},
{
"input": "1 2\n6",
"output": "1000000006"
},
{
"input": "1000000000 -1000000000\n6",
"output": "999999993"
},
{
"input": "999999999 -999999999\n3",
"output": "16"
},
{
"input": "-1 0\n1",
"output": "1000000006"
},
{
"input": "1000000000 -1000000000\n9",
"output": "14"
},
{
"input": "999999999 -1000000000\n12",
"output": "999999992"
},
{
"input": "1000000000 -7\n3",
"output": "0"
},
{
"input": "-5 5\n6",
"output": "999999997"
},
{
"input": "5 9\n6",
"output": "1000000003"
},
{
"input": "-15 -10\n1",
"output": "999999992"
}
] | 1,678,844,784
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 74
| 93
| 0
|
n,m=map(int,input().split())
a=int(input())
l=[n,m,m-n,n*-1,m*-1,n-m]
r=l[((a-1)%6)]
print(r%1000000007)
|
Title: Jzzhu and Sequences
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Jzzhu has invented a kind of sequences, they meet the following property:
You are given *x* and *y*, please calculate *f**n* modulo 1000000007 (109<=+<=7).
Input Specification:
The first line contains two integers *x* and *y* (|*x*|,<=|*y*|<=β€<=109). The second line contains a single integer *n* (1<=β€<=*n*<=β€<=2Β·109).
Output Specification:
Output a single integer representing *f**n* modulo 1000000007 (109<=+<=7).
Demo Input:
['2 3\n3\n', '0 -1\n2\n']
Demo Output:
['1\n', '1000000006\n']
Note:
In the first sample, *f*<sub class="lower-index">2</sub>β=β*f*<sub class="lower-index">1</sub>β+β*f*<sub class="lower-index">3</sub>, 3β=β2β+β*f*<sub class="lower-index">3</sub>, *f*<sub class="lower-index">3</sub>β=β1.
In the second sample, *f*<sub class="lower-index">2</sub>β=ββ-β1; β-β1 modulo (10<sup class="upper-index">9</sup>β+β7) equals (10<sup class="upper-index">9</sup>β+β6).
|
```python
n,m=map(int,input().split())
a=int(input())
l=[n,m,m-n,n*-1,m*-1,n-m]
r=l[((a-1)%6)]
print(r%1000000007)
```
| 3
|
|
803
|
B
|
Distances to Zero
|
PROGRAMMING
| 1,200
|
[
"constructive algorithms"
] | null | null |
You are given the array of integer numbers *a*0,<=*a*1,<=...,<=*a**n*<=-<=1. For each element find the distance to the nearest zero (to the element which equals to zero). There is at least one zero element in the given array.
|
The first line contains integer *n* (1<=β€<=*n*<=β€<=2Β·105) β length of the array *a*. The second line contains integer elements of the array separated by single spaces (<=-<=109<=β€<=*a**i*<=β€<=109).
|
Print the sequence *d*0,<=*d*1,<=...,<=*d**n*<=-<=1, where *d**i* is the difference of indices between *i* and nearest *j* such that *a**j*<==<=0. It is possible that *i*<==<=*j*.
|
[
"9\n2 1 0 3 0 0 3 2 4\n",
"5\n0 1 2 3 4\n",
"7\n5 6 0 1 -2 3 4\n"
] |
[
"2 1 0 1 0 0 1 2 3 ",
"0 1 2 3 4 ",
"2 1 0 1 2 3 4 "
] |
none
| 0
|
[
{
"input": "9\n2 1 0 3 0 0 3 2 4",
"output": "2 1 0 1 0 0 1 2 3 "
},
{
"input": "5\n0 1 2 3 4",
"output": "0 1 2 3 4 "
},
{
"input": "7\n5 6 0 1 -2 3 4",
"output": "2 1 0 1 2 3 4 "
},
{
"input": "1\n0",
"output": "0 "
},
{
"input": "2\n0 0",
"output": "0 0 "
},
{
"input": "2\n0 1",
"output": "0 1 "
},
{
"input": "2\n1 0",
"output": "1 0 "
},
{
"input": "5\n0 1000000000 1000000000 1000000000 1000000000",
"output": "0 1 2 3 4 "
},
{
"input": "5\n-1000000000 -1000000000 0 1000000000 1000000000",
"output": "2 1 0 1 2 "
},
{
"input": "5\n-1000000000 1000000000 1000000000 1000000000 0",
"output": "4 3 2 1 0 "
},
{
"input": "15\n1000000000 -1000000000 -1000000000 1000000000 -1000000000 -1000000000 -1000000000 1000000000 1000000000 -1000000000 -1000000000 -1000000000 -1000000000 1000000000 0",
"output": "14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 "
},
{
"input": "15\n0 0 0 0 1000000000 -1000000000 -1000000000 -1000000000 -1000000000 1000000000 1000000000 1000000000 -1000000000 -1000000000 1000000000",
"output": "0 0 0 0 1 2 3 4 5 6 7 8 9 10 11 "
},
{
"input": "15\n-1000000000 1000000000 1000000000 -1000000000 -1000000000 1000000000 0 -1000000000 -1000000000 0 0 1000000000 -1000000000 0 -1000000000",
"output": "6 5 4 3 2 1 0 1 1 0 0 1 1 0 1 "
},
{
"input": "15\n-1000000000 -1000000000 1000000000 1000000000 -1000000000 1000000000 1000000000 -1000000000 1000000000 1000000000 1000000000 0 0 0 0",
"output": "11 10 9 8 7 6 5 4 3 2 1 0 0 0 0 "
},
{
"input": "4\n0 0 2 0",
"output": "0 0 1 0 "
},
{
"input": "15\n1 2 3 4 0 1 2 3 -5 -4 -3 -1 0 5 4",
"output": "4 3 2 1 0 1 2 3 4 3 2 1 0 1 2 "
},
{
"input": "2\n0 -1",
"output": "0 1 "
},
{
"input": "5\n0 -1 -1 -1 0",
"output": "0 1 2 1 0 "
},
{
"input": "5\n0 0 0 -1 0",
"output": "0 0 0 1 0 "
},
{
"input": "3\n0 0 -1",
"output": "0 0 1 "
},
{
"input": "3\n0 -1 -1",
"output": "0 1 2 "
},
{
"input": "12\n0 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 0",
"output": "0 1 2 3 4 5 5 4 3 2 1 0 "
},
{
"input": "18\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 -1",
"output": "0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 "
},
{
"input": "30\n0 0 0 0 0 0 0 0 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1 -1",
"output": "0 0 0 0 0 0 0 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 "
},
{
"input": "1\n0",
"output": "0 "
},
{
"input": "1\n0",
"output": "0 "
},
{
"input": "1\n0",
"output": "0 "
},
{
"input": "2\n0 -1000000000",
"output": "0 1 "
},
{
"input": "2\n0 1000000000",
"output": "0 1 "
},
{
"input": "2\n-1000000000 0",
"output": "1 0 "
},
{
"input": "2\n0 0",
"output": "0 0 "
},
{
"input": "2\n0 0",
"output": "0 0 "
},
{
"input": "2\n0 0",
"output": "0 0 "
},
{
"input": "3\n0 -1000000000 -1000000000",
"output": "0 1 2 "
},
{
"input": "3\n0 1000000000 1000000000",
"output": "0 1 2 "
},
{
"input": "3\n1000000000 1000000000 0",
"output": "2 1 0 "
},
{
"input": "3\n0 0 -1000000000",
"output": "0 0 1 "
},
{
"input": "3\n0 1000000000 0",
"output": "0 1 0 "
},
{
"input": "3\n-1000000000 0 0",
"output": "1 0 0 "
},
{
"input": "3\n0 0 0",
"output": "0 0 0 "
},
{
"input": "3\n0 0 0",
"output": "0 0 0 "
},
{
"input": "3\n0 0 0",
"output": "0 0 0 "
},
{
"input": "4\n0 -1000000000 -1000000000 -1000000000",
"output": "0 1 2 3 "
},
{
"input": "4\n1000000000 -1000000000 0 -1000000000",
"output": "2 1 0 1 "
},
{
"input": "4\n1000000000 -1000000000 1000000000 0",
"output": "3 2 1 0 "
},
{
"input": "4\n0 0 -1000000000 1000000000",
"output": "0 0 1 2 "
},
{
"input": "4\n0 0 1000000000 -1000000000",
"output": "0 0 1 2 "
},
{
"input": "4\n-1000000000 1000000000 0 0",
"output": "2 1 0 0 "
},
{
"input": "4\n0 0 0 -1000000000",
"output": "0 0 0 1 "
},
{
"input": "4\n1000000000 0 0 0",
"output": "1 0 0 0 "
},
{
"input": "4\n1000000000 0 0 0",
"output": "1 0 0 0 "
},
{
"input": "4\n0 0 0 0",
"output": "0 0 0 0 "
},
{
"input": "4\n0 0 0 0",
"output": "0 0 0 0 "
},
{
"input": "4\n0 0 0 0",
"output": "0 0 0 0 "
},
{
"input": "5\n0 1000000000 1000000000 1000000000 1000000000",
"output": "0 1 2 3 4 "
},
{
"input": "5\n1000000000 -1000000000 -1000000000 1000000000 0",
"output": "4 3 2 1 0 "
},
{
"input": "5\n1000000000 -1000000000 1000000000 -1000000000 0",
"output": "4 3 2 1 0 "
},
{
"input": "5\n0 0 -1000000000 -1000000000 -1000000000",
"output": "0 0 1 2 3 "
},
{
"input": "5\n1000000000 0 -1000000000 0 -1000000000",
"output": "1 0 1 0 1 "
},
{
"input": "5\n1000000000 1000000000 1000000000 0 0",
"output": "3 2 1 0 0 "
},
{
"input": "5\n0 0 0 -1000000000 -1000000000",
"output": "0 0 0 1 2 "
},
{
"input": "5\n-1000000000 1000000000 0 0 0",
"output": "2 1 0 0 0 "
},
{
"input": "5\n1000000000 1000000000 0 0 0",
"output": "2 1 0 0 0 "
},
{
"input": "5\n0 0 0 0 -1000000000",
"output": "0 0 0 0 1 "
},
{
"input": "5\n0 0 1000000000 0 0",
"output": "0 0 1 0 0 "
},
{
"input": "5\n1000000000 0 0 0 0",
"output": "1 0 0 0 0 "
},
{
"input": "5\n0 0 0 0 0",
"output": "0 0 0 0 0 "
},
{
"input": "5\n0 0 0 0 0",
"output": "0 0 0 0 0 "
},
{
"input": "5\n0 0 0 0 0",
"output": "0 0 0 0 0 "
},
{
"input": "6\n0 1000000000 -1000000000 1000000000 -1000000000 1000000000",
"output": "0 1 2 3 4 5 "
},
{
"input": "6\n-1000000000 -1000000000 1000000000 1000000000 1000000000 0",
"output": "5 4 3 2 1 0 "
},
{
"input": "6\n-1000000000 1000000000 -1000000000 1000000000 -1000000000 0",
"output": "5 4 3 2 1 0 "
},
{
"input": "6\n0 0 1000000000 1000000000 -1000000000 -1000000000",
"output": "0 0 1 2 3 4 "
},
{
"input": "6\n0 0 1000000000 1000000000 -1000000000 -1000000000",
"output": "0 0 1 2 3 4 "
},
{
"input": "6\n-1000000000 1000000000 -1000000000 -1000000000 0 0",
"output": "4 3 2 1 0 0 "
},
{
"input": "6\n0 0 0 -1000000000 1000000000 1000000000",
"output": "0 0 0 1 2 3 "
},
{
"input": "6\n-1000000000 1000000000 -1000000000 0 0 0",
"output": "3 2 1 0 0 0 "
},
{
"input": "6\n-1000000000 -1000000000 1000000000 0 0 0",
"output": "3 2 1 0 0 0 "
},
{
"input": "6\n0 0 0 0 -1000000000 1000000000",
"output": "0 0 0 0 1 2 "
},
{
"input": "6\n0 0 0 -1000000000 1000000000 0",
"output": "0 0 0 1 1 0 "
},
{
"input": "6\n1000000000 1000000000 0 0 0 0",
"output": "2 1 0 0 0 0 "
},
{
"input": "6\n0 0 0 0 0 -1000000000",
"output": "0 0 0 0 0 1 "
},
{
"input": "6\n0 0 0 1000000000 0 0",
"output": "0 0 0 1 0 0 "
},
{
"input": "6\n1000000000 0 0 0 0 0",
"output": "1 0 0 0 0 0 "
},
{
"input": "6\n0 0 0 0 0 0",
"output": "0 0 0 0 0 0 "
},
{
"input": "6\n0 0 0 0 0 0",
"output": "0 0 0 0 0 0 "
},
{
"input": "6\n0 0 0 0 0 0",
"output": "0 0 0 0 0 0 "
},
{
"input": "7\n0 -1000000000 1000000000 -1000000000 -1000000000 -1000000000 -1000000000",
"output": "0 1 2 3 4 5 6 "
},
{
"input": "7\n1000000000 1000000000 -1000000000 0 -1000000000 1000000000 -1000000000",
"output": "3 2 1 0 1 2 3 "
},
{
"input": "7\n1000000000 1000000000 -1000000000 1000000000 -1000000000 -1000000000 0",
"output": "6 5 4 3 2 1 0 "
},
{
"input": "7\n0 0 1000000000 1000000000 1000000000 1000000000 -1000000000",
"output": "0 0 1 2 3 4 5 "
},
{
"input": "7\n0 1000000000 1000000000 -1000000000 1000000000 1000000000 0",
"output": "0 1 2 3 2 1 0 "
},
{
"input": "7\n1000000000 -1000000000 -1000000000 1000000000 -1000000000 0 0",
"output": "5 4 3 2 1 0 0 "
},
{
"input": "7\n0 0 0 1000000000 -1000000000 -1000000000 1000000000",
"output": "0 0 0 1 2 3 4 "
},
{
"input": "7\n-1000000000 0 0 -1000000000 0 -1000000000 1000000000",
"output": "1 0 0 1 0 1 2 "
},
{
"input": "7\n1000000000 1000000000 1000000000 -1000000000 0 0 0",
"output": "4 3 2 1 0 0 0 "
},
{
"input": "7\n0 0 0 0 -1000000000 -1000000000 1000000000",
"output": "0 0 0 0 1 2 3 "
},
{
"input": "7\n0 -1000000000 0 0 0 -1000000000 1000000000",
"output": "0 1 0 0 0 1 2 "
},
{
"input": "7\n1000000000 1000000000 1000000000 0 0 0 0",
"output": "3 2 1 0 0 0 0 "
},
{
"input": "7\n0 0 0 0 0 -1000000000 1000000000",
"output": "0 0 0 0 0 1 2 "
},
{
"input": "7\n0 -1000000000 0 0 0 0 -1000000000",
"output": "0 1 0 0 0 0 1 "
},
{
"input": "7\n-1000000000 1000000000 0 0 0 0 0",
"output": "2 1 0 0 0 0 0 "
},
{
"input": "7\n0 0 0 0 0 0 -1000000000",
"output": "0 0 0 0 0 0 1 "
},
{
"input": "7\n0 0 0 0 0 1000000000 0",
"output": "0 0 0 0 0 1 0 "
},
{
"input": "7\n1000000000 0 0 0 0 0 0",
"output": "1 0 0 0 0 0 0 "
},
{
"input": "7\n0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 "
},
{
"input": "7\n0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 "
},
{
"input": "7\n0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 "
},
{
"input": "8\n0 -1000000000 -1000000000 1000000000 1000000000 1000000000 1000000000 -1000000000",
"output": "0 1 2 3 4 5 6 7 "
},
{
"input": "8\n0 -1000000000 1000000000 1000000000 1000000000 -1000000000 1000000000 1000000000",
"output": "0 1 2 3 4 5 6 7 "
},
{
"input": "8\n1000000000 -1000000000 -1000000000 -1000000000 1000000000 1000000000 1000000000 0",
"output": "7 6 5 4 3 2 1 0 "
},
{
"input": "8\n0 0 -1000000000 -1000000000 1000000000 1000000000 1000000000 -1000000000",
"output": "0 0 1 2 3 4 5 6 "
},
{
"input": "8\n1000000000 0 0 -1000000000 -1000000000 1000000000 -1000000000 -1000000000",
"output": "1 0 0 1 2 3 4 5 "
},
{
"input": "8\n1000000000 -1000000000 1000000000 -1000000000 -1000000000 -1000000000 0 0",
"output": "6 5 4 3 2 1 0 0 "
},
{
"input": "8\n0 0 0 1000000000 1000000000 -1000000000 -1000000000 -1000000000",
"output": "0 0 0 1 2 3 4 5 "
},
{
"input": "8\n-1000000000 0 0 1000000000 1000000000 0 -1000000000 1000000000",
"output": "1 0 0 1 1 0 1 2 "
},
{
"input": "8\n1000000000 1000000000 1000000000 -1000000000 -1000000000 0 0 0",
"output": "5 4 3 2 1 0 0 0 "
},
{
"input": "8\n0 0 0 0 1000000000 1000000000 1000000000 -1000000000",
"output": "0 0 0 0 1 2 3 4 "
},
{
"input": "8\n1000000000 0 1000000000 -1000000000 0 -1000000000 0 0",
"output": "1 0 1 1 0 1 0 0 "
},
{
"input": "8\n-1000000000 -1000000000 -1000000000 -1000000000 0 0 0 0",
"output": "4 3 2 1 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 1000000000 1000000000 -1000000000",
"output": "0 0 0 0 0 1 2 3 "
},
{
"input": "8\n-1000000000 0 -1000000000 0 0 1000000000 0 0",
"output": "1 0 1 0 0 1 0 0 "
},
{
"input": "8\n1000000000 1000000000 1000000000 0 0 0 0 0",
"output": "3 2 1 0 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 0 -1000000000 -1000000000",
"output": "0 0 0 0 0 0 1 2 "
},
{
"input": "8\n0 0 0 1000000000 -1000000000 0 0 0",
"output": "0 0 0 1 1 0 0 0 "
},
{
"input": "8\n1000000000 1000000000 0 0 0 0 0 0",
"output": "2 1 0 0 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 0 0 -1000000000",
"output": "0 0 0 0 0 0 0 1 "
},
{
"input": "8\n0 1000000000 0 0 0 0 0 0",
"output": "0 1 0 0 0 0 0 0 "
},
{
"input": "8\n1000000000 0 0 0 0 0 0 0",
"output": "1 0 0 0 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 0 "
},
{
"input": "8\n0 0 0 0 0 0 0 0",
"output": "0 0 0 0 0 0 0 0 "
}
] | 1,688,766,338
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 164
| 405
| 27,136,000
|
n = int(input())
ln = list(map(int, input().split()))
zeros = []
zeros.append(10**6)
for i, item in enumerate(ln):
if item == 0:
zeros.append(i)
zeros.append(10**6)
# 1 4 0 5
j = 0
res = [0]*n
for i in range(n):
if ln[i] == 0:
j += 1
res[i] = min(abs(i-zeros[j]), abs(i-zeros[j+1]))
print(*res)
|
Title: Distances to Zero
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given the array of integer numbers *a*0,<=*a*1,<=...,<=*a**n*<=-<=1. For each element find the distance to the nearest zero (to the element which equals to zero). There is at least one zero element in the given array.
Input Specification:
The first line contains integer *n* (1<=β€<=*n*<=β€<=2Β·105) β length of the array *a*. The second line contains integer elements of the array separated by single spaces (<=-<=109<=β€<=*a**i*<=β€<=109).
Output Specification:
Print the sequence *d*0,<=*d*1,<=...,<=*d**n*<=-<=1, where *d**i* is the difference of indices between *i* and nearest *j* such that *a**j*<==<=0. It is possible that *i*<==<=*j*.
Demo Input:
['9\n2 1 0 3 0 0 3 2 4\n', '5\n0 1 2 3 4\n', '7\n5 6 0 1 -2 3 4\n']
Demo Output:
['2 1 0 1 0 0 1 2 3 ', '0 1 2 3 4 ', '2 1 0 1 2 3 4 ']
Note:
none
|
```python
n = int(input())
ln = list(map(int, input().split()))
zeros = []
zeros.append(10**6)
for i, item in enumerate(ln):
if item == 0:
zeros.append(i)
zeros.append(10**6)
# 1 4 0 5
j = 0
res = [0]*n
for i in range(n):
if ln[i] == 0:
j += 1
res[i] = min(abs(i-zeros[j]), abs(i-zeros[j+1]))
print(*res)
```
| 3
|
|
989
|
A
|
A Blend of Springtime
|
PROGRAMMING
| 900
|
[
"implementation",
"strings"
] | null | null |
"What a pity it's already late spring," sighs Mino with regret, "one more drizzling night and they'd be gone."
"But these blends are at their best, aren't they?" Absorbed in the landscape, Kanno remains optimistic.
The landscape can be expressed as a row of consecutive cells, each of which either contains a flower of colour amber or buff or canary yellow, or is empty.
When a flower withers, it disappears from the cell that it originally belonged to, and it spreads petals of its colour in its two neighbouring cells (or outside the field if the cell is on the side of the landscape). In case petals fall outside the given cells, they simply become invisible.
You are to help Kanno determine whether it's possible that after some (possibly none or all) flowers shed their petals, at least one of the cells contains all three colours, considering both petals and flowers. Note that flowers can wither in arbitrary order.
|
The first and only line of input contains a non-empty string $s$ consisting of uppercase English letters 'A', 'B', 'C' and characters '.' (dots) only ($\lvert s \rvert \leq 100$)Β β denoting cells containing an amber flower, a buff one, a canary yellow one, and no flowers, respectively.
|
Output "Yes" if it's possible that all three colours appear in some cell, and "No" otherwise.
You can print each letter in any case (upper or lower).
|
[
".BAC.\n",
"AA..CB\n"
] |
[
"Yes\n",
"No\n"
] |
In the first example, the buff and canary yellow flowers can leave their petals in the central cell, blending all three colours in it.
In the second example, it's impossible to satisfy the requirement because there is no way that amber and buff meet in any cell.
| 500
|
[
{
"input": ".BAC.",
"output": "Yes"
},
{
"input": "AA..CB",
"output": "No"
},
{
"input": ".",
"output": "No"
},
{
"input": "ACB.AAAAAA",
"output": "Yes"
},
{
"input": "B.BC.BBBCA",
"output": "Yes"
},
{
"input": "BA..CAB..B",
"output": "Yes"
},
{
"input": "CACCBAA.BC",
"output": "Yes"
},
{
"input": ".CAACCBBA.CBB.AC..BABCCBCCB..B.BC..CBC.CA.CC.C.CC.B.A.CC.BBCCBB..ACAACAC.CBCCB.AABAAC.CBCC.BA..CCBC.",
"output": "Yes"
},
{
"input": "A",
"output": "No"
},
{
"input": "..",
"output": "No"
},
{
"input": "BC",
"output": "No"
},
{
"input": "CAB",
"output": "Yes"
},
{
"input": "A.CB",
"output": "No"
},
{
"input": "B.ACAA.CA..CBCBBAA.B.CCBCB.CAC.ABC...BC.BCCC.BC.CB",
"output": "Yes"
},
{
"input": "B.B...CC.B..CCCB.CB..CBCB..CBCC.CCBC.B.CB..CA.C.C.",
"output": "No"
},
{
"input": "AA.CBAABABCCC..B..B.ABBABAB.B.B.CCA..CB.B...A..CBC",
"output": "Yes"
},
{
"input": "CA.ABB.CC.B.C.BBBABAAB.BBBAACACAAA.C.AACA.AAC.C.BCCB.CCBC.C..CCACA.CBCCB.CCAABAAB.AACAA..A.AAA.",
"output": "No"
},
{
"input": "CBC...AC.BBBB.BBABABA.CAAACC.AAABB..A.BA..BC.CBBBC.BBBBCCCAA.ACCBB.AB.C.BA..CC..AAAC...AB.A.AAABBA.A",
"output": "No"
},
{
"input": "CC.AAAC.BA.BBB.AABABBCCAA.A.CBCCB.B.BC.ABCBCBBAA.CACA.CCCA.CB.CCB.A.BCCCB...C.A.BCCBC..B.ABABB.C.BCB",
"output": "Yes"
},
{
"input": "CCC..A..CACACCA.CA.ABAAB.BBA..C.AAA...ACB.ACA.CA.B.AB.A..C.BC.BC.A.C....ABBCCACCCBCC.BBBAA.ACCACB.BB",
"output": "Yes"
},
{
"input": "BC.ABACAACC..AC.A..CCCAABBCCACAC.AA.CC.BAABABABBCBB.BA..C.C.C.A.BBA.C..BC.ACACCC.AAAACCCCC.AAC.AC.AB",
"output": "Yes"
},
{
"input": "ACAC.BAA.C..CAAC..ABBAACC..BAA...CC...ACCBBCA.BAABABAACCAC.A.BBCACCC..BCB.BABAAAACCBCB.BCAABBC.C.BBB",
"output": "Yes"
},
{
"input": "CCAC.BCBC.A.ABBAB.C.C.BC.CCABBCBCCBC..B.AA.C.BC...B..BAA.ACCCCBBB.AAAACA.CAACCB.CCB.CC.BCCAB.BBBBABB",
"output": "Yes"
},
{
"input": ".AACAA.AAAAC.BBBB.BC...CCACCACAAA.A..CCA..BCC.AB.ABAAB..AABA...B.C.CBAB.BAAB.A.C.AAC.BBBA.ACAAA.BB.C",
"output": "Yes"
},
{
"input": "CC.ACCC.BCCCCAA.BBAACB.ABABAAAA.A.CBAB.CBACBBC..C.CA.AAA..AA..ABBB.A.C..CBBCAAACC.B..CC.AC..CAABACB.",
"output": "Yes"
},
{
"input": ".BAB.",
"output": "No"
},
{
"input": "BBBBBBBBB",
"output": "No"
},
{
"input": "..AAC..",
"output": "No"
},
{
"input": ".AAABBBCCC.",
"output": "No"
},
{
"input": "AAABC",
"output": "Yes"
},
{
"input": "BBB",
"output": "No"
},
{
"input": "AAAAABABAAAAA",
"output": "No"
},
{
"input": "AABBCC",
"output": "No"
},
{
"input": ".BA",
"output": "No"
},
{
"input": "CAAAAB",
"output": "No"
}
] | 1,536,240,348
| 228
|
Python 3
|
OK
|
TESTS
| 37
| 140
| 0
|
s = input()
res = False
for i in range(1, len(s) - 1):
res = res or set(s[i-1 : i+2]).issuperset(set(['A', 'B', 'C']))
print(['No', 'Yes'][res])
|
Title: A Blend of Springtime
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
"What a pity it's already late spring," sighs Mino with regret, "one more drizzling night and they'd be gone."
"But these blends are at their best, aren't they?" Absorbed in the landscape, Kanno remains optimistic.
The landscape can be expressed as a row of consecutive cells, each of which either contains a flower of colour amber or buff or canary yellow, or is empty.
When a flower withers, it disappears from the cell that it originally belonged to, and it spreads petals of its colour in its two neighbouring cells (or outside the field if the cell is on the side of the landscape). In case petals fall outside the given cells, they simply become invisible.
You are to help Kanno determine whether it's possible that after some (possibly none or all) flowers shed their petals, at least one of the cells contains all three colours, considering both petals and flowers. Note that flowers can wither in arbitrary order.
Input Specification:
The first and only line of input contains a non-empty string $s$ consisting of uppercase English letters 'A', 'B', 'C' and characters '.' (dots) only ($\lvert s \rvert \leq 100$)Β β denoting cells containing an amber flower, a buff one, a canary yellow one, and no flowers, respectively.
Output Specification:
Output "Yes" if it's possible that all three colours appear in some cell, and "No" otherwise.
You can print each letter in any case (upper or lower).
Demo Input:
['.BAC.\n', 'AA..CB\n']
Demo Output:
['Yes\n', 'No\n']
Note:
In the first example, the buff and canary yellow flowers can leave their petals in the central cell, blending all three colours in it.
In the second example, it's impossible to satisfy the requirement because there is no way that amber and buff meet in any cell.
|
```python
s = input()
res = False
for i in range(1, len(s) - 1):
res = res or set(s[i-1 : i+2]).issuperset(set(['A', 'B', 'C']))
print(['No', 'Yes'][res])
```
| 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<=β€<=*w*<=β€<=100) β 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 β 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"
}
] | 1,688,575,100
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 20
| 92
| 0
|
n=int(input())
if 2**n % 24 > 9:
print("YES")
else:
print("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<=β€<=*w*<=β€<=100) β 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 β two parts of 4 and 4 kilos).
|
```python
n=int(input())
if 2**n % 24 > 9:
print("YES")
else:
print("NO")
```
| 3.954
|
719
|
A
|
Vitya in the Countryside
|
PROGRAMMING
| 1,100
|
[
"implementation"
] | null | null |
Every summer Vitya comes to visit his grandmother in the countryside. This summer, he got a huge wart. Every grandma knows that one should treat warts when the moon goes down. Thus, Vitya has to catch the moment when the moon is down.
Moon cycle lasts 30 days. The size of the visible part of the moon (in Vitya's units) for each day is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, and then cycle repeats, thus after the second 1 again goes 0.
As there is no internet in the countryside, Vitya has been watching the moon for *n* consecutive days and for each of these days he wrote down the size of the visible part of the moon. Help him find out whether the moon will be up or down next day, or this cannot be determined by the data he has.
|
The first line of the input contains a single integer *n* (1<=β€<=*n*<=β€<=92)Β β the number of consecutive days Vitya was watching the size of the visible part of the moon.
The second line contains *n* integers *a**i* (0<=β€<=*a**i*<=β€<=15)Β β Vitya's records.
It's guaranteed that the input data is consistent.
|
If Vitya can be sure that the size of visible part of the moon on day *n*<=+<=1 will be less than the size of the visible part on day *n*, then print "DOWN" at the only line of the output. If he might be sure that the size of the visible part will increase, then print "UP". If it's impossible to determine what exactly will happen with the moon, print -1.
|
[
"5\n3 4 5 6 7\n",
"7\n12 13 14 15 14 13 12\n",
"1\n8\n"
] |
[
"UP\n",
"DOWN\n",
"-1\n"
] |
In the first sample, the size of the moon on the next day will be equal to 8, thus the answer is "UP".
In the second sample, the size of the moon on the next day will be 11, thus the answer is "DOWN".
In the third sample, there is no way to determine whether the size of the moon on the next day will be 7 or 9, thus the answer is -1.
| 500
|
[
{
"input": "5\n3 4 5 6 7",
"output": "UP"
},
{
"input": "7\n12 13 14 15 14 13 12",
"output": "DOWN"
},
{
"input": "1\n8",
"output": "-1"
},
{
"input": "44\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10",
"output": "DOWN"
},
{
"input": "92\n3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4",
"output": "UP"
},
{
"input": "6\n10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "27\n11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "6\n8 7 6 5 4 3",
"output": "DOWN"
},
{
"input": "27\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10",
"output": "UP"
},
{
"input": "79\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5",
"output": "DOWN"
},
{
"input": "25\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7",
"output": "DOWN"
},
{
"input": "21\n3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7",
"output": "DOWN"
},
{
"input": "56\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6",
"output": "DOWN"
},
{
"input": "19\n4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14",
"output": "UP"
},
{
"input": "79\n5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13",
"output": "UP"
},
{
"input": "87\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10",
"output": "UP"
},
{
"input": "13\n10 9 8 7 6 5 4 3 2 1 0 1 2",
"output": "UP"
},
{
"input": "2\n8 9",
"output": "UP"
},
{
"input": "3\n10 11 12",
"output": "UP"
},
{
"input": "1\n1",
"output": "-1"
},
{
"input": "1\n2",
"output": "-1"
},
{
"input": "1\n3",
"output": "-1"
},
{
"input": "1\n4",
"output": "-1"
},
{
"input": "1\n5",
"output": "-1"
},
{
"input": "1\n6",
"output": "-1"
},
{
"input": "1\n7",
"output": "-1"
},
{
"input": "1\n9",
"output": "-1"
},
{
"input": "1\n10",
"output": "-1"
},
{
"input": "1\n11",
"output": "-1"
},
{
"input": "1\n12",
"output": "-1"
},
{
"input": "1\n13",
"output": "-1"
},
{
"input": "1\n14",
"output": "-1"
},
{
"input": "1\n15",
"output": "DOWN"
},
{
"input": "1\n0",
"output": "UP"
},
{
"input": "3\n11 12 13",
"output": "UP"
},
{
"input": "2\n10 9",
"output": "DOWN"
},
{
"input": "92\n10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11",
"output": "UP"
},
{
"input": "92\n7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6",
"output": "DOWN"
},
{
"input": "2\n14 15",
"output": "DOWN"
},
{
"input": "2\n1 0",
"output": "UP"
},
{
"input": "2\n15 14",
"output": "DOWN"
},
{
"input": "92\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8",
"output": "UP"
},
{
"input": "92\n13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12",
"output": "DOWN"
},
{
"input": "92\n4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3",
"output": "DOWN"
},
{
"input": "92\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "92\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0",
"output": "UP"
},
{
"input": "2\n2 1",
"output": "DOWN"
},
{
"input": "3\n2 1 0",
"output": "UP"
},
{
"input": "5\n4 3 2 1 0",
"output": "UP"
},
{
"input": "2\n5 4",
"output": "DOWN"
},
{
"input": "4\n3 2 1 0",
"output": "UP"
},
{
"input": "3\n13 12 11",
"output": "DOWN"
},
{
"input": "2\n1 2",
"output": "UP"
},
{
"input": "2\n0 1",
"output": "UP"
},
{
"input": "2\n13 14",
"output": "UP"
},
{
"input": "14\n13 12 11 10 9 8 7 6 5 4 3 2 1 0",
"output": "UP"
}
] | 1,482,847,906
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 56
| 77
| 4,608,000
|
from sys import exit
n=int(input())
d=[int(z) for z in input().split()]
if d[-1]==0:
print("UP")
exit(0)
if d[-1]==15:
print("DOWN")
exit(0)
if n==1:
print(-1)
exit(0)
if d[-1]>d[-2]:
print("UP")
exit(0)
print("DOWN")
|
Title: Vitya in the Countryside
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Every summer Vitya comes to visit his grandmother in the countryside. This summer, he got a huge wart. Every grandma knows that one should treat warts when the moon goes down. Thus, Vitya has to catch the moment when the moon is down.
Moon cycle lasts 30 days. The size of the visible part of the moon (in Vitya's units) for each day is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, and then cycle repeats, thus after the second 1 again goes 0.
As there is no internet in the countryside, Vitya has been watching the moon for *n* consecutive days and for each of these days he wrote down the size of the visible part of the moon. Help him find out whether the moon will be up or down next day, or this cannot be determined by the data he has.
Input Specification:
The first line of the input contains a single integer *n* (1<=β€<=*n*<=β€<=92)Β β the number of consecutive days Vitya was watching the size of the visible part of the moon.
The second line contains *n* integers *a**i* (0<=β€<=*a**i*<=β€<=15)Β β Vitya's records.
It's guaranteed that the input data is consistent.
Output Specification:
If Vitya can be sure that the size of visible part of the moon on day *n*<=+<=1 will be less than the size of the visible part on day *n*, then print "DOWN" at the only line of the output. If he might be sure that the size of the visible part will increase, then print "UP". If it's impossible to determine what exactly will happen with the moon, print -1.
Demo Input:
['5\n3 4 5 6 7\n', '7\n12 13 14 15 14 13 12\n', '1\n8\n']
Demo Output:
['UP\n', 'DOWN\n', '-1\n']
Note:
In the first sample, the size of the moon on the next day will be equal to 8, thus the answer is "UP".
In the second sample, the size of the moon on the next day will be 11, thus the answer is "DOWN".
In the third sample, there is no way to determine whether the size of the moon on the next day will be 7 or 9, thus the answer is -1.
|
```python
from sys import exit
n=int(input())
d=[int(z) for z in input().split()]
if d[-1]==0:
print("UP")
exit(0)
if d[-1]==15:
print("DOWN")
exit(0)
if n==1:
print(-1)
exit(0)
if d[-1]>d[-2]:
print("UP")
exit(0)
print("DOWN")
```
| 3
|
|
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<=β€<=*l**i*<=<<=*r**i*<=β€<=*n*). The answer to the query *l**i*,<=*r**i* is the number of such integers *i* (*l**i*<=β€<=*i*<=<<=*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<=β€<=*n*<=β€<=105). It is guaranteed that the given string only consists of characters "." and "#".
The next line contains integer *m* (1<=β€<=*m*<=β€<=105) β 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<=β€<=*l**i*<=<<=*r**i*<=β€<=*n*).
|
Print *m* integers β 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"
}
] | 1,695,102,154
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 37
| 342
| 10,137,600
|
from sys import stdin
s=input()
list1=[0]*len(s)
for i in range(1,len(s)):
list1[i]=list1[i-1]+(s[i]==s[i-1])
for i in range(int(input())):
l,r=map(int,stdin.readline().split())
print(list1[r-1]-list1[l-1])
|
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<=β€<=*l**i*<=<<=*r**i*<=β€<=*n*). The answer to the query *l**i*,<=*r**i* is the number of such integers *i* (*l**i*<=β€<=*i*<=<<=*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<=β€<=*n*<=β€<=105). It is guaranteed that the given string only consists of characters "." and "#".
The next line contains integer *m* (1<=β€<=*m*<=β€<=105) β 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<=β€<=*l**i*<=<<=*r**i*<=β€<=*n*).
Output Specification:
Print *m* integers β 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
from sys import stdin
s=input()
list1=[0]*len(s)
for i in range(1,len(s)):
list1[i]=list1[i-1]+(s[i]==s[i-1])
for i in range(int(input())):
l,r=map(int,stdin.readline().split())
print(list1[r-1]-list1[l-1])
```
| 3
|
|
716
|
B
|
Complete the Word
|
PROGRAMMING
| 1,300
|
[
"greedy",
"two pointers"
] | null | null |
ZS the Coder loves to read the dictionary. He thinks that a word is nice if there exists a substring (contiguous segment of letters) of it of length 26 where each letter of English alphabet appears exactly once. In particular, if the string has length strictly less than 26, no such substring exists and thus it is not nice.
Now, ZS the Coder tells you a word, where some of its letters are missing as he forgot them. He wants to determine if it is possible to fill in the missing letters so that the resulting word is nice. If it is possible, he needs you to find an example of such a word as well. Can you help him?
|
The first and only line of the input contains a single string *s* (1<=β€<=|*s*|<=β€<=50<=000), the word that ZS the Coder remembers. Each character of the string is the uppercase letter of English alphabet ('A'-'Z') or is a question mark ('?'), where the question marks denotes the letters that ZS the Coder can't remember.
|
If there is no way to replace all the question marks with uppercase letters such that the resulting word is nice, then print <=-<=1 in the only line.
Otherwise, print a string which denotes a possible nice word that ZS the Coder learned. This string should match the string from the input, except for the question marks replaced with uppercase English letters.
If there are multiple solutions, you may print any of them.
|
[
"ABC??FGHIJK???OPQR?TUVWXY?\n",
"WELCOMETOCODEFORCESROUNDTHREEHUNDREDANDSEVENTYTWO\n",
"??????????????????????????\n",
"AABCDEFGHIJKLMNOPQRSTUVW??M\n"
] |
[
"ABCDEFGHIJKLMNOPQRZTUVWXYS",
"-1",
"MNBVCXZLKJHGFDSAQPWOEIRUYT",
"-1"
] |
In the first sample case, ABCDEFGHIJKLMNOPQRZTUVWXYS is a valid answer beacuse it contains a substring of length 26 (the whole string in this case) which contains all the letters of the English alphabet exactly once. Note that there are many possible solutions, such as ABCDEFGHIJKLMNOPQRSTUVWXYZ or ABCEDFGHIJKLMNOPQRZTUVWXYS.
In the second sample case, there are no missing letters. In addition, the given string does not have a substring of length 26 that contains all the letters of the alphabet, so the answer is β-β1.
In the third sample case, any string of length 26 that contains all letters of the English alphabet fits as an answer.
| 1,000
|
[
{
"input": "ABC??FGHIJK???OPQR?TUVWXY?",
"output": "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "WELCOMETOCODEFORCESROUNDTHREEHUNDREDANDSEVENTYTWO",
"output": "-1"
},
{
"input": "??????????????????????????",
"output": "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "AABCDEFGHIJKLMNOPQRSTUVW??M",
"output": "-1"
},
{
"input": "QWERTYUIOPASDFGHJKL???????",
"output": "QWERTYUIOPASDFGHJKLBCMNVXZ"
},
{
"input": "ABABABBAB????????????ABABABABA???????????ABABABABA?????????KLCSJB?????????Z",
"output": "ABABABBABAAAAAAAAAAAAABABABABAAAAAAAAAAAAABABABABADEFGHIMNOKLCSJBPQRTUVWXYZ"
},
{
"input": "Q?E?T?U?O?A?D?G?J?L?X?V?MMQ?E?T?U?O?A?D?G?J?L?X?V?N",
"output": "QAEATAUAOAAADAGAJALAXAVAMMQBECTFUHOIAKDPGRJSLWXYVZN"
},
{
"input": "???????????????????????????",
"output": "ABCDEFGHIJKLMNOPQRSTUVWXYZA"
},
{
"input": "EJMGJAXCHXYIKZSQKUGRCLSTWDLNCVZIGXGWILAVFBEIGOHWGVEPRJTHWEDQRPOVZUQOSRVTIHFFHJMCLOWGHCIGJBCAAVBJFMJEFTEGFXZFVRZOXAFOFVXRAIZEWIKILFLYDZVDADYWYWYJXAGDFGNZBQKKKTGWPINLCDBZVULROGAKEKXXTWNYKQBMLQMQRUYOWUTWMNTJVGUXENHXWMFWMSBKVNGXSNFFTRTTGEGBBHMFZTKNJQDYUQOXVDWTDHZCCQNYYIOFPMKYQIGEEYBCKBAYVCTWARVMHIENKXKFXNXEFUHUNRQPEDFUBMKNQOYCQHGTLRHLWUAVZJDRBRTSVQHBKRDJFKKYEZAJWJKATRFZLNELPYGFUIWBXLIWVTHUILJHTQKDGRNCFTFELCOQPJDBYSPYJOUDKIFRCKEMJPUXTTAMHVENEVMNTZLUYSUALQOUPPRLZHCYICXAQFFRQZAAJNFKVRJDMDXFTBRJSAAHTSVG",
"output": "-1"
},
{
"input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
"output": "-1"
},
{
"input": "DMWSBHPGSJJD?EEV?CYAXQCCGNNQWNN?OMEDD?VC?CTKNQQPYXKKJFAYMJ?FMPXXCLKOL?OTRCE",
"output": "-1"
},
{
"input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
"output": "-1"
},
{
"input": "E?BIVQUPQQEJNMINFD?NKV?IROHPTGUIPMEVYPII?LZJMRI?FTKKKBHPOVQZZSAPDDWVSPVHOBT",
"output": "-1"
},
{
"input": "FDQHJSNDDXHJLWVZVXJZUGKVHWCZVRWVZTIURLMJNGAMCUBDGVSIDEYRJZOLDISDNTOEKLSNLBSOQZLJVPAMLEBAVUNBXNKMLZBGJJQCGCSKBFSEEDXEVSWGZHFJIZJESPZIKIONJWTFFYYZKIDBSDNPJVAUHQMRFKIJWCEGTBVZHWZEKLPHGZVKZFAFAQRNKHGACNRTSXQKKCYBMEMKNKKSURKHOSMEVUXNGOCVCLVVSKULGBKFPCEKVRAJMBWCFFFSCCNDOSEKXEFFZETTUZHMQETWCVZASTTULYOPBNMOMXMVUEEEYZHSMRPAEIHUKNPNJTARJKQKIOXDJASSQPQQHEQIQJQLVPIJRCFVOVECHBOCRYWQEDXZLJXUDZUBFTRWEWNYTSKGDBEBWFFLMUYWELNVAAXSMKYEZXQFKKHJTZKMKMYOBTVXAOVBRMAMHTBDDYMDGQYEEBYZUBMUCKLKXCZGTWVZAYJOXZVGUYNXOVAPXQVE",
"output": "-1"
},
{
"input": "KMNTIOJTLEKZW?JALAZYWYMKWRXTLAKNMDJLICZMETAKHVPTDOLAPCGHOEYSNIUJZVLPBTZ?YSR",
"output": "-1"
},
{
"input": "?MNURVAKIVSOGITVJZEZCAOZEFVNZERAHVNCVCYKTJVEHK?ZMDL?CROLIDFSG?EIFHYKELMQRBVLE?CERELHDVFODJ?LBGJVFPO?CVMPBW?DPGZMVA?BKPXQQCRMKHJWDNAJSGOTGLBNSWMXMKAQ?MWMXCNRSGHTL?LGLAHSDHAGZRGTNDFI?KJ?GSAWOEPOENXTJCVJGMYOFIQKKDWOCIKPGCMFEKNEUPFGBCBYQCM?EQSAX?HZ?MFKAUHOHRKZZSIVZCAKYIKBDJYOCZJRYNLSOKGAEGQRQ?TBURXXLHAFCNVGAUVWBXZILMHWSBYJTIMWPNEGATPURPTJYFWKHRL?QPYUQ?HKDDHWAHOWUSONQKSZFIYFMFUJAMIYAMPNBGVPJSDFDFSAHDWWGEAKXLHBURNTIMCUZIAFAOCVNKPJRNLNGSJVMGKQ?IFQSRHTZGKHGXFJBDGPLCUUMEWNOSCONIVCLAOAPPSFFLCPRIXTKNBSSOVM",
"output": "-1"
},
{
"input": "MRHKVVRBFEIFWIZGWCATJPBSZWNYANEWSSEVFQUUVNJKQOKVIGYBPFSZFTBUCNQEJEYVOWSPYER",
"output": "-1"
},
{
"input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
"output": "-1"
},
{
"input": "KSRVTPFVRJWNPYUZMXBRLKVXIQPPBYVSYKRQPNGKTKRPFMKLIYFACFKBIQGPAXLEUESVGPBBXLY",
"output": "-1"
},
{
"input": "LLVYUOXHBHUZSAPUMQEKWSQAFRKSMEENXDQYOPQFXNNFXSRBGXFUIRBFJDSDKQIDMCPPTWRJOZCRHZYZPBVUJPQXHNALAOCJDTTBDZWYDBVPMNSQNVMLHHUJAOIWFSEJEJSRBYREOZKHEXTBAXPTISPGIPOYBFFEJNAKKXAEPNGKWYGEJTNEZIXAWRSCEIRTKNEWSKSGKNIKDEOVXGYVEVFRGTNDFNWIFDRZQEJQZYIWNZXCONVZAKKKETPTPPXZMIVDWPGXOFODRNJZBATKGXAPXYHTUUFFASCHOLSMVSWBIJBAENEGNQTWKKOJUYQNXWDCDXBXBJOOWETWLQMGKHAJEMGXMYNVEHRAEGZOJJQPZGYRHXRNKMSWFYDIZLIBUTSKIKGQJZLGZQFJVIMNOHNZJKWVVPFMFACVXKJKTBZRXRZDJKSWSXBBKWIKEICSZEIPTOJCKJQYYPNUPRNPQNNCVITNXPLAKQBYAIQGNAHXDUQWQLYN",
"output": "-1"
},
{
"input": "PVCKCT?KLTFPIBBIHODCAABEQLJKQECRUJUSHSXPMBEVBKHQTIKQLBLTIRQZPOGPWMMNWWCUKAD",
"output": "-1"
},
{
"input": "BRTYNUVBBWMFDSRXAMLNSBIN???WDDQVPCSWGJTHLRAKTPFKGVLHAKNRIEYIDDRDZLLTBRKXRVRSPBSLXIZRRBEVMHJSAFPLZAIHFVTTEKDO?DYWKILEYRM?VHSEQCBYZZRZMICVZRYA?ONCSZOPGZUMIHJQJPIFX?YJMIERCMKTSFTDZIKEZPLDEOOCJLQIZ?RPHUEQHPNNSBRQRTDGLWNSCZ?WQVIZPTOETEXYI?DRQUOMREPUTOAJKFNBGYNWMGCAOELXEPLLZEYHTVLT?ETJJXLHJMAUDQESNQ?ZCGNDGI?JSGUXQV?QAWQIYKXBKCCSWNRTGHPZF?CSWDQSAZIWQNHOWHYAEZNXRMPAZEQQPPIBQQJEDHJEDHVXNEDETEN?ZHEPJJ?VVDYGPJUWGCBMB?ANFJHJXQVAJWCAZEZXZX?BACPPXORNENMCRMQPIYKNPHX?NSKGEABWWVLHQ?ESWLJUPQJSFIUEGMGHEYVLYEDWJG?L",
"output": "-1"
},
{
"input": "TESTEIGHTYFOUR",
"output": "-1"
},
{
"input": "ABCDEFGHIJKLMNOPQRSTUVWXY",
"output": "-1"
},
{
"input": "?????????????????????????",
"output": "-1"
},
{
"input": "Q?RYJPGLNQ",
"output": "-1"
},
{
"input": "ABCDEFGHIJKLMNOPQRZTUVWXYS",
"output": "ABCDEFGHIJKLMNOPQRZTUVWXYS"
},
{
"input": "AACDEFGHIJKLMNOPQRZTUVWXYS",
"output": "-1"
},
{
"input": "ZA?ABCDEFGHIJKLMNOPQRSTUVWXY",
"output": "ZAZABCDEFGHIJKLMNOPQRSTUVWXY"
},
{
"input": "AABBCCDDEEFFGGHHIIJJKKLLMMNNOOPPQQRRSSTTUUVVWWXXYYZZ",
"output": "-1"
},
{
"input": "ABCDEFGHIJKLMNOPQRSTUVWXYYYZABC",
"output": "-1"
},
{
"input": "????",
"output": "-1"
},
{
"input": "ABCDEFGHIJKLMNOPQRZTUVWXYS??",
"output": "ABCDEFGHIJKLMNOPQRZTUVWXYSAA"
},
{
"input": "A",
"output": "-1"
},
{
"input": "NKBDABACEFGGGIJLLLLMMMOMPQWZSSRHHTTUWUWVXYY",
"output": "-1"
},
{
"input": "AA",
"output": "-1"
},
{
"input": "BAAAAAAAAAAAAAAAAAAAAAAAAAAAXA?CDEFGHIJKLMNOPQRSTUVWXYZ",
"output": "BAAAAAAAAAAAAAAAAAAAAAAAAAAAXABCDEFGHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "???DEFGHIJKL??L?PQRSTUVW???",
"output": "-1"
},
{
"input": "?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A?A",
"output": "-1"
},
{
"input": "A?AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA?????????????AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA???????????AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA??????????",
"output": "-1"
},
{
"input": "ZXXCVBNMLKJHGFDSAQWWERTYUIOP",
"output": "-1"
},
{
"input": "ABCA???????????????????????",
"output": "ABCADEFGHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "AB",
"output": "-1"
},
{
"input": "ABCDEFGHIJKLMNOPQRSTUVWXYZ",
"output": "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "BCDEFGHIAJKLMNOPQARSTUVWXYZ",
"output": "-1"
},
{
"input": "AABBCDEFGHIJKLMNOPQRSTUVWXYZ",
"output": "-1"
},
{
"input": "???AA????????????????????BB???",
"output": "-1"
},
{
"input": "ABC??FGAHIJ??MNOPQRST??WXYZ",
"output": "ABCDEFGAHIJKLMNOPQRSTUVWXYZ"
},
{
"input": "QWERTYUIOPASDFGHJKLZXCVBN",
"output": "-1"
},
{
"input": "??????AAAAAAAAAAAAAAAAAAAABBBBB??????????AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAABBBBB????????????AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA??????????AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAASSSSSSSSFFFFFFF?????????DDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDDD??????WWWWWWWWWWEEEEEEEEEEERRRRRRRRRRRRRRRRRRRRRRRRRHHHHHHHHHH?????",
"output": "-1"
}
] | 1,650,303,787
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 115
| 156
| 7,680,000
|
from sys import exit
word = [x for x in input()]
for i in range(len(word) - 25):
if len(word[i:i+26]) == 26 and \
len(set([x for x in word[i:i+26] if x != '?'])) == len([x for x in word[i:i+26] if x != '?']): #checking if there are no duplicated letters apart from the question mark
segment = word[i:i+26]
segmentcopy = ''.join(segment)
unusedletters = [x for x in 'ABCDEFGHIJKLMNOPQRSTUVWXYZ']
counter = 0
for i in list([x for x in segment if x != '?']):
unusedletters.pop(unusedletters.index(i))
for i in range(len(segment)):
if segment[i] == '?':
segment[i] = unusedletters[counter]
counter += 1
word = ''.join(word)
word = word[:word.index(segmentcopy)] + ''.join(segment) + word[word.index(segmentcopy) + len(segment):]
word = [x for x in word]
for i in range(len(word)):
if word[i] == '?':
word[i] = 'A'
print(''.join(word))
exit(0)
else:
continue
print(-1)
|
Title: Complete the Word
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
ZS the Coder loves to read the dictionary. He thinks that a word is nice if there exists a substring (contiguous segment of letters) of it of length 26 where each letter of English alphabet appears exactly once. In particular, if the string has length strictly less than 26, no such substring exists and thus it is not nice.
Now, ZS the Coder tells you a word, where some of its letters are missing as he forgot them. He wants to determine if it is possible to fill in the missing letters so that the resulting word is nice. If it is possible, he needs you to find an example of such a word as well. Can you help him?
Input Specification:
The first and only line of the input contains a single string *s* (1<=β€<=|*s*|<=β€<=50<=000), the word that ZS the Coder remembers. Each character of the string is the uppercase letter of English alphabet ('A'-'Z') or is a question mark ('?'), where the question marks denotes the letters that ZS the Coder can't remember.
Output Specification:
If there is no way to replace all the question marks with uppercase letters such that the resulting word is nice, then print <=-<=1 in the only line.
Otherwise, print a string which denotes a possible nice word that ZS the Coder learned. This string should match the string from the input, except for the question marks replaced with uppercase English letters.
If there are multiple solutions, you may print any of them.
Demo Input:
['ABC??FGHIJK???OPQR?TUVWXY?\n', 'WELCOMETOCODEFORCESROUNDTHREEHUNDREDANDSEVENTYTWO\n', '??????????????????????????\n', 'AABCDEFGHIJKLMNOPQRSTUVW??M\n']
Demo Output:
['ABCDEFGHIJKLMNOPQRZTUVWXYS', '-1', 'MNBVCXZLKJHGFDSAQPWOEIRUYT', '-1']
Note:
In the first sample case, ABCDEFGHIJKLMNOPQRZTUVWXYS is a valid answer beacuse it contains a substring of length 26 (the whole string in this case) which contains all the letters of the English alphabet exactly once. Note that there are many possible solutions, such as ABCDEFGHIJKLMNOPQRSTUVWXYZ or ABCEDFGHIJKLMNOPQRZTUVWXYS.
In the second sample case, there are no missing letters. In addition, the given string does not have a substring of length 26 that contains all the letters of the alphabet, so the answer is β-β1.
In the third sample case, any string of length 26 that contains all letters of the English alphabet fits as an answer.
|
```python
from sys import exit
word = [x for x in input()]
for i in range(len(word) - 25):
if len(word[i:i+26]) == 26 and \
len(set([x for x in word[i:i+26] if x != '?'])) == len([x for x in word[i:i+26] if x != '?']): #checking if there are no duplicated letters apart from the question mark
segment = word[i:i+26]
segmentcopy = ''.join(segment)
unusedletters = [x for x in 'ABCDEFGHIJKLMNOPQRSTUVWXYZ']
counter = 0
for i in list([x for x in segment if x != '?']):
unusedletters.pop(unusedletters.index(i))
for i in range(len(segment)):
if segment[i] == '?':
segment[i] = unusedletters[counter]
counter += 1
word = ''.join(word)
word = word[:word.index(segmentcopy)] + ''.join(segment) + word[word.index(segmentcopy) + len(segment):]
word = [x for x in word]
for i in range(len(word)):
if word[i] == '?':
word[i] = 'A'
print(''.join(word))
exit(0)
else:
continue
print(-1)
```
| 3
|
|
32
|
B
|
Borze
|
PROGRAMMING
| 800
|
[
"expression parsing",
"implementation"
] |
B. Borze
|
2
|
256
|
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
|
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
|
Output the decoded ternary number. It can have leading zeroes.
|
[
".-.--\n",
"--.\n",
"-..-.--\n"
] |
[
"012",
"20",
"1012"
] |
none
| 1,000
|
[
{
"input": ".-.--",
"output": "012"
},
{
"input": "--.",
"output": "20"
},
{
"input": "-..-.--",
"output": "1012"
},
{
"input": "---..",
"output": "210"
},
{
"input": "..--.---..",
"output": "0020210"
},
{
"input": "-.....----.",
"output": "10000220"
},
{
"input": ".",
"output": "0"
},
{
"input": "-.",
"output": "1"
},
{
"input": "--",
"output": "2"
},
{
"input": "..",
"output": "00"
},
{
"input": "--.",
"output": "20"
},
{
"input": ".--.",
"output": "020"
},
{
"input": ".-.-..",
"output": "0110"
},
{
"input": "----.-.",
"output": "2201"
},
{
"input": "-..--.-.",
"output": "10201"
},
{
"input": "..--..--.",
"output": "0020020"
},
{
"input": "-.-.---.--..-..-.-.-..-..-.--.",
"output": "112120010111010120"
},
{
"input": "---.-.-.------..-..-..-..-.-..-.--.-.-..-.-.-----..-.-.",
"output": "21112220010101011012011011221011"
},
{
"input": "-.-..--.-.-.-.-.-..-.-.-.---------.--.---..--...--.-----.-.-.-...--.-.-.---.------.--..-.--.-----.-...-..------",
"output": "11020111110111222212021020002022111100201121222020012022110010222"
},
{
"input": "-.-..-.--.---..---.-..---.-...-.-.----..-.---.-.---..-.--.---.-.-------.---.--....----.-.---.---.---.----.-----..---.-.-.-.-----.--.-------.-..",
"output": "110120210211021100112200121121012021122212120000220121212122022102111122120222110"
},
{
"input": ".-..-.-.---.-----.--.---...-.--.-.-....-..",
"output": "01011212212021001201100010"
},
{
"input": ".------.-.---..--...-..-..-.-.-.--.--.-..-.--...-.-.---.-.-.------..--..-.---..----.-..-.--.---.-.----.-.---...-.-.-.-----.-.-.---.---.-.....-.-...-----.-...-.---.-..-.-----.--...---.-.-..-.--.-.---..",
"output": "022201210200010101112020101200011211122200200121022010120211220121001112211121211000011002211001211012212000211101201210"
},
{
"input": ".-.--.---.-----.-.-----.-.-..-----..-..----..--.-.--.----..---.---..-.-.-----..-------.----..----.-..---...-----..-..-----...-..-.-.-----....---..---..-.-----...-.--...--.-.---.-.-.-.-.-...---..----.",
"output": "01202122112211102210102200201202200212101122102221220022010210022101022100101122100021021012210012000201211111100210220"
},
{
"input": "..-.-.-.---.-.-.-..-.-..-.-.---.-------.---..-----.---....-.---.--.--.-.---.---------.-..---.-.-.--..---.---.-.---.-.-..-.-..-.-.-.----.--.-....--------.-.---..----.------.-.-.--.--.-----.-----.----",
"output": "0011121111011011212221210221210001212020121222211021112002121121110110111220201000222201210220222011202022122122"
},
{
"input": "-..-------.------.-..--.-.-..--.-.-..-----..-.-.-..-..-..--.---..-----..---..-..--.-..-.-.---...-.....-------.---.-----.-...-.-...-.-.---.---.-----.--.--...-.--..-.-..-...-.-.-.-.---..---.-..-.-.-.-..",
"output": "102221222010201102011022101110101020210221021010201011210010000222121221100110011212122120200012001101001111210211011110"
},
{
"input": ".-.----.-.--..-.-.-.-..----..-.-...--.-.---.---.-------..-.--..-......--.------.--.----.--...-.--.--..-----..-.....--.--.-.-.------..--------.----------..-.---.----.---.-..--..-.....-..------.--.",
"output": "012201200111102200110020121212221012001000002022202022020001202002210100002020112220022220222220012122021102001000010222020"
},
{
"input": "------.-----.-....--.-.----.-.---.-.-..---.-.---.-----..-...-.-.---..-.-.-..-.-.-...-.-.-.----..--.------.----.-..-.--...-.-------...-.-..-.-.--.--.---..--..--------.--.-.-.---.-.-.-...----.--..-.--..",
"output": "222022110002012201211102112122101001121011101110011122002022202201012000122210011011202021020022220201121111002202001200"
},
{
"input": "-.---...----...--.--...-.--.----",
"output": "121002200020200012022"
},
{
"input": "--.--.--.---.--.-.---.-.-..-..--.-..---.-.....-..---.-----.--...-.-.-------.-.--.-.----.-..-.------.",
"output": "202020212012111010201021100001021221200011222112012201012220"
}
] | 1,674,585,071
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 30
| 154
| 0
|
n=input()
l=[]
p=0
for i in n:
if i=='-' :
if p==1 :
l.append(2)
p=0
else:
p=1
elif i=='.' :
if p==1:
p=0
l.append(1)
else:
l.append(0)
p=0
for i in l :
print(i,end="")
|
Title: Borze
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as Β«.Β», 1 as Β«-.Β» and 2 as Β«--Β». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
Input Specification:
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
Output Specification:
Output the decoded ternary number. It can have leading zeroes.
Demo Input:
['.-.--\n', '--.\n', '-..-.--\n']
Demo Output:
['012', '20', '1012']
Note:
none
|
```python
n=input()
l=[]
p=0
for i in n:
if i=='-' :
if p==1 :
l.append(2)
p=0
else:
p=1
elif i=='.' :
if p==1:
p=0
l.append(1)
else:
l.append(0)
p=0
for i in l :
print(i,end="")
```
| 3.9615
|
25
|
B
|
Phone numbers
|
PROGRAMMING
| 1,100
|
[
"implementation"
] |
B. Phone numbers
|
2
|
256
|
Phone number in Berland is a sequence of *n* digits. Often, to make it easier to memorize the number, it is divided into groups of two or three digits. For example, the phone number 1198733 is easier to remember as 11-987-33. Your task is to find for a given phone number any of its divisions into groups of two or three digits.
|
The first line contains integer *n* (2<=β€<=*n*<=β€<=100) β amount of digits in the phone number. The second line contains *n* digits β the phone number to divide into groups.
|
Output any of divisions of the given phone number into groups of two or three digits. Separate groups by single character -. If the answer is not unique, output any.
|
[
"6\n549871\n",
"7\n1198733\n"
] |
[
"54-98-71",
"11-987-33\n"
] |
none
| 0
|
[
{
"input": "6\n549871",
"output": "54-98-71"
},
{
"input": "7\n1198733",
"output": "119-87-33"
},
{
"input": "2\n74",
"output": "74"
},
{
"input": "2\n33",
"output": "33"
},
{
"input": "3\n074",
"output": "074"
},
{
"input": "3\n081",
"output": "081"
},
{
"input": "4\n3811",
"output": "38-11"
},
{
"input": "5\n21583",
"output": "215-83"
},
{
"input": "8\n33408349",
"output": "33-40-83-49"
},
{
"input": "9\n988808426",
"output": "988-80-84-26"
},
{
"input": "10\n0180990956",
"output": "01-80-99-09-56"
},
{
"input": "15\n433488906230138",
"output": "433-48-89-06-23-01-38"
},
{
"input": "22\n7135498415686025907059",
"output": "71-35-49-84-15-68-60-25-90-70-59"
},
{
"input": "49\n2429965524999668169991253653390090510755018570235",
"output": "242-99-65-52-49-99-66-81-69-99-12-53-65-33-90-09-05-10-75-50-18-57-02-35"
},
{
"input": "72\n491925337784111770500147619881727525570039735507439360627744863794794290",
"output": "49-19-25-33-77-84-11-17-70-50-01-47-61-98-81-72-75-25-57-00-39-73-55-07-43-93-60-62-77-44-86-37-94-79-42-90"
},
{
"input": "95\n32543414456047900690980198395035321172843693417425457554204776648220562494524275489599199209210",
"output": "325-43-41-44-56-04-79-00-69-09-80-19-83-95-03-53-21-17-28-43-69-34-17-42-54-57-55-42-04-77-66-48-22-05-62-49-45-24-27-54-89-59-91-99-20-92-10"
},
{
"input": "97\n9362344595153688016434451101547661156123505108492010669557671355055642365998461003851354321478898",
"output": "936-23-44-59-51-53-68-80-16-43-44-51-10-15-47-66-11-56-12-35-05-10-84-92-01-06-69-55-76-71-35-50-55-64-23-65-99-84-61-00-38-51-35-43-21-47-88-98"
},
{
"input": "98\n65521815795893886057122984634320900545031770769333931308009346017867969790810907868670369236928568",
"output": "65-52-18-15-79-58-93-88-60-57-12-29-84-63-43-20-90-05-45-03-17-70-76-93-33-93-13-08-00-93-46-01-78-67-96-97-90-81-09-07-86-86-70-36-92-36-92-85-68"
},
{
"input": "99\n455213856470326729480192345541970106407563996625458559297407682539801838244443866898560852503660390",
"output": "455-21-38-56-47-03-26-72-94-80-19-23-45-54-19-70-10-64-07-56-39-96-62-54-58-55-92-97-40-76-82-53-98-01-83-82-44-44-38-66-89-85-60-85-25-03-66-03-90"
},
{
"input": "100\n4004223124942730640235383244438257614581534320356060987241659784249551110165034719443327659510644224",
"output": "40-04-22-31-24-94-27-30-64-02-35-38-32-44-43-82-57-61-45-81-53-43-20-35-60-60-98-72-41-65-97-84-24-95-51-11-01-65-03-47-19-44-33-27-65-95-10-64-42-24"
}
] | 1,418,407,850
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 20
| 154
| 0
|
import sys
import math
n = int(sys.stdin.readline())
st = sys.stdin.readline()
res = []
for i in range(0, n, 2):
res.append(st[i:i + 2])
if(n % 2 != 0):
print("-".join(res[:int(n/2)]) + st[n - 1])
else:
print("-".join(res))
|
Title: Phone numbers
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Phone number in Berland is a sequence of *n* digits. Often, to make it easier to memorize the number, it is divided into groups of two or three digits. For example, the phone number 1198733 is easier to remember as 11-987-33. Your task is to find for a given phone number any of its divisions into groups of two or three digits.
Input Specification:
The first line contains integer *n* (2<=β€<=*n*<=β€<=100) β amount of digits in the phone number. The second line contains *n* digits β the phone number to divide into groups.
Output Specification:
Output any of divisions of the given phone number into groups of two or three digits. Separate groups by single character -. If the answer is not unique, output any.
Demo Input:
['6\n549871\n', '7\n1198733\n']
Demo Output:
['54-98-71', '11-987-33\n']
Note:
none
|
```python
import sys
import math
n = int(sys.stdin.readline())
st = sys.stdin.readline()
res = []
for i in range(0, n, 2):
res.append(st[i:i + 2])
if(n % 2 != 0):
print("-".join(res[:int(n/2)]) + st[n - 1])
else:
print("-".join(res))
```
| 3.9615
|
63
|
A
|
Sinking Ship
|
PROGRAMMING
| 900
|
[
"implementation",
"sortings",
"strings"
] |
A. Sinking Ship
|
2
|
256
|
The ship crashed into a reef and is sinking. Now the entire crew must be evacuated. All *n* crew members have already lined up in a row (for convenience let's label them all from left to right with positive integers from 1 to *n*) and await further instructions. However, one should evacuate the crew properly, in a strict order. Specifically:
The first crew members to leave the ship are rats. Then women and children (both groups have the same priority) leave the ship. After that all men are evacuated from the ship. The captain leaves the sinking ship last.
If we cannot determine exactly who should leave the ship first for any two members of the crew by the rules from the previous paragraph, then the one who stands to the left in the line leaves the ship first (or in other words, the one whose number in the line is less).
For each crew member we know his status as a crew member, and also his name. All crew members have different names. Determine the order in which to evacuate the crew.
|
The first line contains an integer *n*, which is the number of people in the crew (1<=β€<=*n*<=β€<=100). Then follow *n* lines. The *i*-th of those lines contains two words β the name of the crew member who is *i*-th in line, and his status on the ship. The words are separated by exactly one space. There are no other spaces in the line. The names consist of Latin letters, the first letter is uppercase, the rest are lowercase. The length of any name is from 1 to 10 characters. The status can have the following values: rat for a rat, woman for a woman, child for a child, man for a man, captain for the captain. The crew contains exactly one captain.
|
Print *n* lines. The *i*-th of them should contain the name of the crew member who must be the *i*-th one to leave the ship.
|
[
"6\nJack captain\nAlice woman\nCharlie man\nTeddy rat\nBob child\nJulia woman\n"
] |
[
"Teddy\nAlice\nBob\nJulia\nCharlie\nJack\n"
] |
none
| 500
|
[
{
"input": "6\nJack captain\nAlice woman\nCharlie man\nTeddy rat\nBob child\nJulia woman",
"output": "Teddy\nAlice\nBob\nJulia\nCharlie\nJack"
},
{
"input": "1\nA captain",
"output": "A"
},
{
"input": "1\nAbcdefjhij captain",
"output": "Abcdefjhij"
},
{
"input": "5\nA captain\nB man\nD woman\nC child\nE rat",
"output": "E\nD\nC\nB\nA"
},
{
"input": "10\nCap captain\nD child\nC woman\nA woman\nE child\nMan man\nB child\nF woman\nRat rat\nRatt rat",
"output": "Rat\nRatt\nD\nC\nA\nE\nB\nF\nMan\nCap"
},
{
"input": "5\nJoyxnkypf captain\nDxssgr woman\nKeojmnpd rat\nGdv man\nHnw man",
"output": "Keojmnpd\nDxssgr\nGdv\nHnw\nJoyxnkypf"
},
{
"input": "11\nJue rat\nWyglbyphk rat\nGjlgu child\nGi man\nAttx rat\nTheorpkgx man\nYm rat\nX child\nB captain\nEnualf rat\nKktsgyuyv woman",
"output": "Jue\nWyglbyphk\nAttx\nYm\nEnualf\nGjlgu\nX\nKktsgyuyv\nGi\nTheorpkgx\nB"
},
{
"input": "22\nWswwcvvm woman\nBtmfats rat\nI rat\nOcmtsnwx man\nUrcqv rat\nYghnogt woman\nWtyfc man\nWqle child\nUjfrelpu rat\nDstixj man\nAhksnio woman\nKhkvaap woman\nSjppvwm rat\nEgdmsv rat\nDank rat\nNquicjnw rat\nLh captain\nTdyaqaqln rat\nQtj rat\nTfgwijvq rat\nNbiso child\nNqthvbf woman",
"output": "Btmfats\nI\nUrcqv\nUjfrelpu\nSjppvwm\nEgdmsv\nDank\nNquicjnw\nTdyaqaqln\nQtj\nTfgwijvq\nWswwcvvm\nYghnogt\nWqle\nAhksnio\nKhkvaap\nNbiso\nNqthvbf\nOcmtsnwx\nWtyfc\nDstixj\nLh"
},
{
"input": "36\nKqxmtwmsf child\nIze woman\nDlpr child\nK woman\nF captain\nRjwfeuhba rat\nBbv rat\nS rat\nMnmg woman\nSmzyx woman\nSr man\nQmhroracn rat\nSoqpuqock rat\nPibdq man\nIlrkrptx rat\nZaecfyqka man\nMmersfs child\nVvvocqi man\nHjeqxvq rat\nMpmb woman\nWmgu woman\nCerelmhoxi child\nA man\nDylv man\nXrdgmmtcpq woman\nXj woman\nCeh child\nOfccguo man\nNevr man\nAknkwdkq child\nBmo man\nLqo woman\nVej child\nT child\nRlijc man\nNsdtpdg woman",
"output": "Rjwfeuhba\nBbv\nS\nQmhroracn\nSoqpuqock\nIlrkrptx\nHjeqxvq\nKqxmtwmsf\nIze\nDlpr\nK\nMnmg\nSmzyx\nMmersfs\nMpmb\nWmgu\nCerelmhoxi\nXrdgmmtcpq\nXj\nCeh\nAknkwdkq\nLqo\nVej\nT\nNsdtpdg\nSr\nPibdq\nZaecfyqka\nVvvocqi\nA\nDylv\nOfccguo\nNevr\nBmo\nRlijc\nF"
},
{
"input": "2\nA captain\nB man",
"output": "B\nA"
},
{
"input": "2\nB woman\nA captain",
"output": "B\nA"
},
{
"input": "2\nX child\nY captain",
"output": "X\nY"
},
{
"input": "2\nX captain\nY rat",
"output": "Y\nX"
},
{
"input": "6\nAbdelrhman captain\nAlice woman\nCharlie man\nTeddy rat\nBob child\nJulia woman",
"output": "Teddy\nAlice\nBob\nJulia\nCharlie\nAbdelrhman"
},
{
"input": "4\nAratos captain\nMind child\nAman woman\nCarrot man",
"output": "Mind\nAman\nCarrot\nAratos"
}
] | 1,585,436,943
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 26
| 248
| 307,200
|
numero = int(input())
nombres = []
tipo = []
orden = []
for i in range(numero):
datos = list(str(input()).split())
nombres.append(datos[0])
tipo.append(datos[1])
for i in range(len(tipo)):
if tipo[i] == 'rat':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'woman' or tipo[i]=='child':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'man':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'captain':
orden.append(nombres[i])
for j in orden:
print(j)
|
Title: Sinking Ship
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
The ship crashed into a reef and is sinking. Now the entire crew must be evacuated. All *n* crew members have already lined up in a row (for convenience let's label them all from left to right with positive integers from 1 to *n*) and await further instructions. However, one should evacuate the crew properly, in a strict order. Specifically:
The first crew members to leave the ship are rats. Then women and children (both groups have the same priority) leave the ship. After that all men are evacuated from the ship. The captain leaves the sinking ship last.
If we cannot determine exactly who should leave the ship first for any two members of the crew by the rules from the previous paragraph, then the one who stands to the left in the line leaves the ship first (or in other words, the one whose number in the line is less).
For each crew member we know his status as a crew member, and also his name. All crew members have different names. Determine the order in which to evacuate the crew.
Input Specification:
The first line contains an integer *n*, which is the number of people in the crew (1<=β€<=*n*<=β€<=100). Then follow *n* lines. The *i*-th of those lines contains two words β the name of the crew member who is *i*-th in line, and his status on the ship. The words are separated by exactly one space. There are no other spaces in the line. The names consist of Latin letters, the first letter is uppercase, the rest are lowercase. The length of any name is from 1 to 10 characters. The status can have the following values: rat for a rat, woman for a woman, child for a child, man for a man, captain for the captain. The crew contains exactly one captain.
Output Specification:
Print *n* lines. The *i*-th of them should contain the name of the crew member who must be the *i*-th one to leave the ship.
Demo Input:
['6\nJack captain\nAlice woman\nCharlie man\nTeddy rat\nBob child\nJulia woman\n']
Demo Output:
['Teddy\nAlice\nBob\nJulia\nCharlie\nJack\n']
Note:
none
|
```python
numero = int(input())
nombres = []
tipo = []
orden = []
for i in range(numero):
datos = list(str(input()).split())
nombres.append(datos[0])
tipo.append(datos[1])
for i in range(len(tipo)):
if tipo[i] == 'rat':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'woman' or tipo[i]=='child':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'man':
orden.append(nombres[i])
for i in range(len(tipo)):
if tipo[i] == 'captain':
orden.append(nombres[i])
for j in orden:
print(j)
```
| 3.937428
|
334
|
A
|
Candy Bags
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
Gerald has *n* younger brothers and their number happens to be even. One day he bought *n*2 candy bags. One bag has one candy, one bag has two candies, one bag has three candies and so on. In fact, for each integer *k* from 1 to *n*2 he has exactly one bag with *k* candies.
Help him give *n* bags of candies to each brother so that all brothers got the same number of candies.
|
The single line contains a single integer *n* (*n* is even, 2<=β€<=*n*<=β€<=100) β the number of Gerald's brothers.
|
Let's assume that Gerald indexes his brothers with numbers from 1 to *n*. You need to print *n* lines, on the *i*-th line print *n* integers β the numbers of candies in the bags for the *i*-th brother. Naturally, all these numbers should be distinct and be within limits from 1 to *n*2. You can print the numbers in the lines in any order.
It is guaranteed that the solution exists at the given limits.
|
[
"2\n"
] |
[
"1 4\n2 3\n"
] |
The sample shows Gerald's actions if he has two brothers. In this case, his bags contain 1, 2, 3 and 4 candies. He can give the bags with 1 and 4 candies to one brother and the bags with 2 and 3 to the other brother.
| 500
|
[
{
"input": "2",
"output": "1 4\n2 3"
},
{
"input": "4",
"output": "1 16 2 15\n3 14 4 13\n5 12 6 11\n7 10 8 9"
},
{
"input": "6",
"output": "1 36 2 35 3 34\n4 33 5 32 6 31\n7 30 8 29 9 28\n10 27 11 26 12 25\n13 24 14 23 15 22\n16 21 17 20 18 19"
},
{
"input": "8",
"output": "1 64 2 63 3 62 4 61\n5 60 6 59 7 58 8 57\n9 56 10 55 11 54 12 53\n13 52 14 51 15 50 16 49\n17 48 18 47 19 46 20 45\n21 44 22 43 23 42 24 41\n25 40 26 39 27 38 28 37\n29 36 30 35 31 34 32 33"
},
{
"input": "10",
"output": "1 100 2 99 3 98 4 97 5 96\n6 95 7 94 8 93 9 92 10 91\n11 90 12 89 13 88 14 87 15 86\n16 85 17 84 18 83 19 82 20 81\n21 80 22 79 23 78 24 77 25 76\n26 75 27 74 28 73 29 72 30 71\n31 70 32 69 33 68 34 67 35 66\n36 65 37 64 38 63 39 62 40 61\n41 60 42 59 43 58 44 57 45 56\n46 55 47 54 48 53 49 52 50 51"
},
{
"input": "100",
"output": "1 10000 2 9999 3 9998 4 9997 5 9996 6 9995 7 9994 8 9993 9 9992 10 9991 11 9990 12 9989 13 9988 14 9987 15 9986 16 9985 17 9984 18 9983 19 9982 20 9981 21 9980 22 9979 23 9978 24 9977 25 9976 26 9975 27 9974 28 9973 29 9972 30 9971 31 9970 32 9969 33 9968 34 9967 35 9966 36 9965 37 9964 38 9963 39 9962 40 9961 41 9960 42 9959 43 9958 44 9957 45 9956 46 9955 47 9954 48 9953 49 9952 50 9951\n51 9950 52 9949 53 9948 54 9947 55 9946 56 9945 57 9944 58 9943 59 9942 60 9941 61 9940 62 9939 63 9938 64 9937 65 993..."
},
{
"input": "62",
"output": "1 3844 2 3843 3 3842 4 3841 5 3840 6 3839 7 3838 8 3837 9 3836 10 3835 11 3834 12 3833 13 3832 14 3831 15 3830 16 3829 17 3828 18 3827 19 3826 20 3825 21 3824 22 3823 23 3822 24 3821 25 3820 26 3819 27 3818 28 3817 29 3816 30 3815 31 3814\n32 3813 33 3812 34 3811 35 3810 36 3809 37 3808 38 3807 39 3806 40 3805 41 3804 42 3803 43 3802 44 3801 45 3800 46 3799 47 3798 48 3797 49 3796 50 3795 51 3794 52 3793 53 3792 54 3791 55 3790 56 3789 57 3788 58 3787 59 3786 60 3785 61 3784 62 3783\n63 3782 64 3781 65 378..."
},
{
"input": "66",
"output": "1 4356 2 4355 3 4354 4 4353 5 4352 6 4351 7 4350 8 4349 9 4348 10 4347 11 4346 12 4345 13 4344 14 4343 15 4342 16 4341 17 4340 18 4339 19 4338 20 4337 21 4336 22 4335 23 4334 24 4333 25 4332 26 4331 27 4330 28 4329 29 4328 30 4327 31 4326 32 4325 33 4324\n34 4323 35 4322 36 4321 37 4320 38 4319 39 4318 40 4317 41 4316 42 4315 43 4314 44 4313 45 4312 46 4311 47 4310 48 4309 49 4308 50 4307 51 4306 52 4305 53 4304 54 4303 55 4302 56 4301 57 4300 58 4299 59 4298 60 4297 61 4296 62 4295 63 4294 64 4293 65 4292..."
},
{
"input": "18",
"output": "1 324 2 323 3 322 4 321 5 320 6 319 7 318 8 317 9 316\n10 315 11 314 12 313 13 312 14 311 15 310 16 309 17 308 18 307\n19 306 20 305 21 304 22 303 23 302 24 301 25 300 26 299 27 298\n28 297 29 296 30 295 31 294 32 293 33 292 34 291 35 290 36 289\n37 288 38 287 39 286 40 285 41 284 42 283 43 282 44 281 45 280\n46 279 47 278 48 277 49 276 50 275 51 274 52 273 53 272 54 271\n55 270 56 269 57 268 58 267 59 266 60 265 61 264 62 263 63 262\n64 261 65 260 66 259 67 258 68 257 69 256 70 255 71 254 72 253\n73 252 7..."
},
{
"input": "68",
"output": "1 4624 2 4623 3 4622 4 4621 5 4620 6 4619 7 4618 8 4617 9 4616 10 4615 11 4614 12 4613 13 4612 14 4611 15 4610 16 4609 17 4608 18 4607 19 4606 20 4605 21 4604 22 4603 23 4602 24 4601 25 4600 26 4599 27 4598 28 4597 29 4596 30 4595 31 4594 32 4593 33 4592 34 4591\n35 4590 36 4589 37 4588 38 4587 39 4586 40 4585 41 4584 42 4583 43 4582 44 4581 45 4580 46 4579 47 4578 48 4577 49 4576 50 4575 51 4574 52 4573 53 4572 54 4571 55 4570 56 4569 57 4568 58 4567 59 4566 60 4565 61 4564 62 4563 63 4562 64 4561 65 4560..."
},
{
"input": "86",
"output": "1 7396 2 7395 3 7394 4 7393 5 7392 6 7391 7 7390 8 7389 9 7388 10 7387 11 7386 12 7385 13 7384 14 7383 15 7382 16 7381 17 7380 18 7379 19 7378 20 7377 21 7376 22 7375 23 7374 24 7373 25 7372 26 7371 27 7370 28 7369 29 7368 30 7367 31 7366 32 7365 33 7364 34 7363 35 7362 36 7361 37 7360 38 7359 39 7358 40 7357 41 7356 42 7355 43 7354\n44 7353 45 7352 46 7351 47 7350 48 7349 49 7348 50 7347 51 7346 52 7345 53 7344 54 7343 55 7342 56 7341 57 7340 58 7339 59 7338 60 7337 61 7336 62 7335 63 7334 64 7333 65 7332..."
},
{
"input": "96",
"output": "1 9216 2 9215 3 9214 4 9213 5 9212 6 9211 7 9210 8 9209 9 9208 10 9207 11 9206 12 9205 13 9204 14 9203 15 9202 16 9201 17 9200 18 9199 19 9198 20 9197 21 9196 22 9195 23 9194 24 9193 25 9192 26 9191 27 9190 28 9189 29 9188 30 9187 31 9186 32 9185 33 9184 34 9183 35 9182 36 9181 37 9180 38 9179 39 9178 40 9177 41 9176 42 9175 43 9174 44 9173 45 9172 46 9171 47 9170 48 9169\n49 9168 50 9167 51 9166 52 9165 53 9164 54 9163 55 9162 56 9161 57 9160 58 9159 59 9158 60 9157 61 9156 62 9155 63 9154 64 9153 65 9152..."
},
{
"input": "12",
"output": "1 144 2 143 3 142 4 141 5 140 6 139\n7 138 8 137 9 136 10 135 11 134 12 133\n13 132 14 131 15 130 16 129 17 128 18 127\n19 126 20 125 21 124 22 123 23 122 24 121\n25 120 26 119 27 118 28 117 29 116 30 115\n31 114 32 113 33 112 34 111 35 110 36 109\n37 108 38 107 39 106 40 105 41 104 42 103\n43 102 44 101 45 100 46 99 47 98 48 97\n49 96 50 95 51 94 52 93 53 92 54 91\n55 90 56 89 57 88 58 87 59 86 60 85\n61 84 62 83 63 82 64 81 65 80 66 79\n67 78 68 77 69 76 70 75 71 74 72 73"
},
{
"input": "88",
"output": "1 7744 2 7743 3 7742 4 7741 5 7740 6 7739 7 7738 8 7737 9 7736 10 7735 11 7734 12 7733 13 7732 14 7731 15 7730 16 7729 17 7728 18 7727 19 7726 20 7725 21 7724 22 7723 23 7722 24 7721 25 7720 26 7719 27 7718 28 7717 29 7716 30 7715 31 7714 32 7713 33 7712 34 7711 35 7710 36 7709 37 7708 38 7707 39 7706 40 7705 41 7704 42 7703 43 7702 44 7701\n45 7700 46 7699 47 7698 48 7697 49 7696 50 7695 51 7694 52 7693 53 7692 54 7691 55 7690 56 7689 57 7688 58 7687 59 7686 60 7685 61 7684 62 7683 63 7682 64 7681 65 7680..."
},
{
"input": "28",
"output": "1 784 2 783 3 782 4 781 5 780 6 779 7 778 8 777 9 776 10 775 11 774 12 773 13 772 14 771\n15 770 16 769 17 768 18 767 19 766 20 765 21 764 22 763 23 762 24 761 25 760 26 759 27 758 28 757\n29 756 30 755 31 754 32 753 33 752 34 751 35 750 36 749 37 748 38 747 39 746 40 745 41 744 42 743\n43 742 44 741 45 740 46 739 47 738 48 737 49 736 50 735 51 734 52 733 53 732 54 731 55 730 56 729\n57 728 58 727 59 726 60 725 61 724 62 723 63 722 64 721 65 720 66 719 67 718 68 717 69 716 70 715\n71 714 72 713 73 712 74 7..."
},
{
"input": "80",
"output": "1 6400 2 6399 3 6398 4 6397 5 6396 6 6395 7 6394 8 6393 9 6392 10 6391 11 6390 12 6389 13 6388 14 6387 15 6386 16 6385 17 6384 18 6383 19 6382 20 6381 21 6380 22 6379 23 6378 24 6377 25 6376 26 6375 27 6374 28 6373 29 6372 30 6371 31 6370 32 6369 33 6368 34 6367 35 6366 36 6365 37 6364 38 6363 39 6362 40 6361\n41 6360 42 6359 43 6358 44 6357 45 6356 46 6355 47 6354 48 6353 49 6352 50 6351 51 6350 52 6349 53 6348 54 6347 55 6346 56 6345 57 6344 58 6343 59 6342 60 6341 61 6340 62 6339 63 6338 64 6337 65 6336..."
},
{
"input": "48",
"output": "1 2304 2 2303 3 2302 4 2301 5 2300 6 2299 7 2298 8 2297 9 2296 10 2295 11 2294 12 2293 13 2292 14 2291 15 2290 16 2289 17 2288 18 2287 19 2286 20 2285 21 2284 22 2283 23 2282 24 2281\n25 2280 26 2279 27 2278 28 2277 29 2276 30 2275 31 2274 32 2273 33 2272 34 2271 35 2270 36 2269 37 2268 38 2267 39 2266 40 2265 41 2264 42 2263 43 2262 44 2261 45 2260 46 2259 47 2258 48 2257\n49 2256 50 2255 51 2254 52 2253 53 2252 54 2251 55 2250 56 2249 57 2248 58 2247 59 2246 60 2245 61 2244 62 2243 63 2242 64 2241 65 224..."
},
{
"input": "54",
"output": "1 2916 2 2915 3 2914 4 2913 5 2912 6 2911 7 2910 8 2909 9 2908 10 2907 11 2906 12 2905 13 2904 14 2903 15 2902 16 2901 17 2900 18 2899 19 2898 20 2897 21 2896 22 2895 23 2894 24 2893 25 2892 26 2891 27 2890\n28 2889 29 2888 30 2887 31 2886 32 2885 33 2884 34 2883 35 2882 36 2881 37 2880 38 2879 39 2878 40 2877 41 2876 42 2875 43 2874 44 2873 45 2872 46 2871 47 2870 48 2869 49 2868 50 2867 51 2866 52 2865 53 2864 54 2863\n55 2862 56 2861 57 2860 58 2859 59 2858 60 2857 61 2856 62 2855 63 2854 64 2853 65 285..."
},
{
"input": "58",
"output": "1 3364 2 3363 3 3362 4 3361 5 3360 6 3359 7 3358 8 3357 9 3356 10 3355 11 3354 12 3353 13 3352 14 3351 15 3350 16 3349 17 3348 18 3347 19 3346 20 3345 21 3344 22 3343 23 3342 24 3341 25 3340 26 3339 27 3338 28 3337 29 3336\n30 3335 31 3334 32 3333 33 3332 34 3331 35 3330 36 3329 37 3328 38 3327 39 3326 40 3325 41 3324 42 3323 43 3322 44 3321 45 3320 46 3319 47 3318 48 3317 49 3316 50 3315 51 3314 52 3313 53 3312 54 3311 55 3310 56 3309 57 3308 58 3307\n59 3306 60 3305 61 3304 62 3303 63 3302 64 3301 65 330..."
},
{
"input": "64",
"output": "1 4096 2 4095 3 4094 4 4093 5 4092 6 4091 7 4090 8 4089 9 4088 10 4087 11 4086 12 4085 13 4084 14 4083 15 4082 16 4081 17 4080 18 4079 19 4078 20 4077 21 4076 22 4075 23 4074 24 4073 25 4072 26 4071 27 4070 28 4069 29 4068 30 4067 31 4066 32 4065\n33 4064 34 4063 35 4062 36 4061 37 4060 38 4059 39 4058 40 4057 41 4056 42 4055 43 4054 44 4053 45 4052 46 4051 47 4050 48 4049 49 4048 50 4047 51 4046 52 4045 53 4044 54 4043 55 4042 56 4041 57 4040 58 4039 59 4038 60 4037 61 4036 62 4035 63 4034 64 4033\n65 403..."
},
{
"input": "44",
"output": "1 1936 2 1935 3 1934 4 1933 5 1932 6 1931 7 1930 8 1929 9 1928 10 1927 11 1926 12 1925 13 1924 14 1923 15 1922 16 1921 17 1920 18 1919 19 1918 20 1917 21 1916 22 1915\n23 1914 24 1913 25 1912 26 1911 27 1910 28 1909 29 1908 30 1907 31 1906 32 1905 33 1904 34 1903 35 1902 36 1901 37 1900 38 1899 39 1898 40 1897 41 1896 42 1895 43 1894 44 1893\n45 1892 46 1891 47 1890 48 1889 49 1888 50 1887 51 1886 52 1885 53 1884 54 1883 55 1882 56 1881 57 1880 58 1879 59 1878 60 1877 61 1876 62 1875 63 1874 64 1873 65 187..."
}
] | 1,524,056,058
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 21
| 216
| 7,577,600
|
n=int(input())
mtx=[]
for i in range(1,n+1):
v=[i for i in range((i-1)*n+1,(i-1)*n+n+1)]
mtx.append(v)
for i in range(0,n):
for j in range(0,n):
print(mtx[j][(j+i)%n],end=' ')
print('')
|
Title: Candy Bags
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Gerald has *n* younger brothers and their number happens to be even. One day he bought *n*2 candy bags. One bag has one candy, one bag has two candies, one bag has three candies and so on. In fact, for each integer *k* from 1 to *n*2 he has exactly one bag with *k* candies.
Help him give *n* bags of candies to each brother so that all brothers got the same number of candies.
Input Specification:
The single line contains a single integer *n* (*n* is even, 2<=β€<=*n*<=β€<=100) β the number of Gerald's brothers.
Output Specification:
Let's assume that Gerald indexes his brothers with numbers from 1 to *n*. You need to print *n* lines, on the *i*-th line print *n* integers β the numbers of candies in the bags for the *i*-th brother. Naturally, all these numbers should be distinct and be within limits from 1 to *n*2. You can print the numbers in the lines in any order.
It is guaranteed that the solution exists at the given limits.
Demo Input:
['2\n']
Demo Output:
['1 4\n2 3\n']
Note:
The sample shows Gerald's actions if he has two brothers. In this case, his bags contain 1, 2, 3 and 4 candies. He can give the bags with 1 and 4 candies to one brother and the bags with 2 and 3 to the other brother.
|
```python
n=int(input())
mtx=[]
for i in range(1,n+1):
v=[i for i in range((i-1)*n+1,(i-1)*n+n+1)]
mtx.append(v)
for i in range(0,n):
for j in range(0,n):
print(mtx[j][(j+i)%n],end=' ')
print('')
```
| 3
|
|
652
|
B
|
z-sort
|
PROGRAMMING
| 1,000
|
[
"sortings"
] | null | null |
A student of *z*-school found a kind of sorting called *z*-sort. The array *a* with *n* elements are *z*-sorted if two conditions hold:
1. *a**i*<=β₯<=*a**i*<=-<=1 for all even *i*, 1. *a**i*<=β€<=*a**i*<=-<=1 for all odd *i*<=><=1.
For example the arrays [1,2,1,2] and [1,1,1,1] are *z*-sorted while the array [1,2,3,4] isnβt *z*-sorted.
Can you make the array *z*-sorted?
|
The first line contains a single integer *n* (1<=β€<=*n*<=β€<=1000) β the number of elements in the array *a*.
The second line contains *n* integers *a**i* (1<=β€<=*a**i*<=β€<=109) β the elements of the array *a*.
|
If it's possible to make the array *a* *z*-sorted print *n* space separated integers *a**i* β the elements after *z*-sort. Otherwise print the only word "Impossible".
|
[
"4\n1 2 2 1\n",
"5\n1 3 2 2 5\n"
] |
[
"1 2 1 2\n",
"1 5 2 3 2\n"
] |
none
| 0
|
[
{
"input": "4\n1 2 2 1",
"output": "1 2 1 2"
},
{
"input": "5\n1 3 2 2 5",
"output": "1 5 2 3 2"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "10\n1 1 1 1 1 1 1 1 1 1",
"output": "1 1 1 1 1 1 1 1 1 1"
},
{
"input": "10\n1 9 7 6 2 4 7 8 1 3",
"output": "1 9 1 8 2 7 3 7 4 6"
},
{
"input": "100\n82 51 81 14 37 17 78 92 64 15 8 86 89 8 87 77 66 10 15 12 100 25 92 47 21 78 20 63 13 49 41 36 41 79 16 87 87 69 3 76 80 60 100 49 70 59 72 8 38 71 45 97 71 14 76 54 81 4 59 46 39 29 92 3 49 22 53 99 59 52 74 31 92 43 42 23 44 9 82 47 7 40 12 9 3 55 37 85 46 22 84 52 98 41 21 77 63 17 62 91",
"output": "3 100 3 100 3 99 4 98 7 97 8 92 8 92 8 92 9 92 9 91 10 89 12 87 12 87 13 87 14 86 14 85 15 84 15 82 16 82 17 81 17 81 20 80 21 79 21 78 22 78 22 77 23 77 25 76 29 76 31 74 36 72 37 71 37 71 38 70 39 69 40 66 41 64 41 63 41 63 42 62 43 60 44 59 45 59 46 59 46 55 47 54 47 53 49 52 49 52 49 51"
},
{
"input": "3\n1 2 6",
"output": "1 6 2"
},
{
"input": "136\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 1 1 1 1 1 1 1 1 1 1 1 1 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 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1"
},
{
"input": "3\n1 2 3",
"output": "1 3 2"
},
{
"input": "7\n999999998 999999999 999999999 999999999 999999999 999999999 1000000000",
"output": "999999998 1000000000 999999999 999999999 999999999 999999999 999999999"
},
{
"input": "3\n100 1 2",
"output": "1 100 2"
}
] | 1,595,337,756
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 16
| 93
| 6,963,200
|
n = int(input())
xs = sorted([int(x) for x in input().split()])
r = [0] * n
for i in range(0, n, 2):
r[i] = xs[i // 2]
if i != n - 1:
r[i + 1] = xs[-(i // 2 + 1)]
print(*r)
|
Title: z-sort
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
A student of *z*-school found a kind of sorting called *z*-sort. The array *a* with *n* elements are *z*-sorted if two conditions hold:
1. *a**i*<=β₯<=*a**i*<=-<=1 for all even *i*, 1. *a**i*<=β€<=*a**i*<=-<=1 for all odd *i*<=><=1.
For example the arrays [1,2,1,2] and [1,1,1,1] are *z*-sorted while the array [1,2,3,4] isnβt *z*-sorted.
Can you make the array *z*-sorted?
Input Specification:
The first line contains a single integer *n* (1<=β€<=*n*<=β€<=1000) β the number of elements in the array *a*.
The second line contains *n* integers *a**i* (1<=β€<=*a**i*<=β€<=109) β the elements of the array *a*.
Output Specification:
If it's possible to make the array *a* *z*-sorted print *n* space separated integers *a**i* β the elements after *z*-sort. Otherwise print the only word "Impossible".
Demo Input:
['4\n1 2 2 1\n', '5\n1 3 2 2 5\n']
Demo Output:
['1 2 1 2\n', '1 5 2 3 2\n']
Note:
none
|
```python
n = int(input())
xs = sorted([int(x) for x in input().split()])
r = [0] * n
for i in range(0, n, 2):
r[i] = xs[i // 2]
if i != n - 1:
r[i + 1] = xs[-(i // 2 + 1)]
print(*r)
```
| 3
|
|
603
|
A
|
Alternative Thinking
|
PROGRAMMING
| 1,600
|
[
"dp",
"greedy",
"math"
] | null | null |
Kevin has just recevied his disappointing results on the USA Identification of Cows Olympiad (USAICO) in the form of a binary string of length *n*. Each character of Kevin's string represents Kevin's score on one of the *n* questions of the olympiadβ'1' for a correctly identified cow and '0' otherwise.
However, all is not lost. Kevin is a big proponent of alternative thinking and believes that his score, instead of being the sum of his points, should be the length of the longest alternating subsequence of his string. Here, we define an alternating subsequence of a string as a not-necessarily contiguous subsequence where no two consecutive elements are equal. For example, {0,<=1,<=0,<=1}, {1,<=0,<=1}, and {1,<=0,<=1,<=0} are alternating sequences, while {1,<=0,<=0} and {0,<=1,<=0,<=1,<=1} are not.
Kevin, being the sneaky little puffball that he is, is willing to hack into the USAICO databases to improve his score. In order to be subtle, he decides that he will flip exactly one substringβthat is, take a contiguous non-empty substring of his score and change all '0's in that substring to '1's and vice versa. After such an operation, Kevin wants to know the length of the longest possible alternating subsequence that his string could have.
|
The first line contains the number of questions on the olympiad *n* (1<=β€<=*n*<=β€<=100<=000).
The following line contains a binary string of length *n* representing Kevin's results on the USAICO.
|
Output a single integer, the length of the longest possible alternating subsequence that Kevin can create in his string after flipping a single substring.
|
[
"8\n10000011\n",
"2\n01\n"
] |
[
"5\n",
"2\n"
] |
In the first sample, Kevin can flip the bolded substring '10000011' and turn his string into '10011011', which has an alternating subsequence of length 5: '10011011'.
In the second sample, Kevin can flip the entire string and still have the same score.
| 500
|
[
{
"input": "8\n10000011",
"output": "5"
},
{
"input": "2\n01",
"output": "2"
},
{
"input": "5\n10101",
"output": "5"
},
{
"input": "75\n010101010101010101010101010101010101010101010101010101010101010101010101010",
"output": "75"
},
{
"input": "11\n00000000000",
"output": "3"
},
{
"input": "56\n10101011010101010101010101010101010101011010101010101010",
"output": "56"
},
{
"input": "50\n01011010110101010101010101010101010101010101010100",
"output": "49"
},
{
"input": "7\n0110100",
"output": "7"
},
{
"input": "8\n11011111",
"output": "5"
},
{
"input": "6\n000000",
"output": "3"
},
{
"input": "5\n01000",
"output": "5"
},
{
"input": "59\n10101010101010101010101010101010101010101010101010101010101",
"output": "59"
},
{
"input": "88\n1010101010101010101010101010101010101010101010101010101010101010101010101010101010101010",
"output": "88"
},
{
"input": "93\n010101010101010101010101010101010101010101010101010101010101010101010101010101010101010101010",
"output": "93"
},
{
"input": "70\n0101010101010101010101010101010101010101010101010101010101010101010101",
"output": "70"
},
{
"input": "78\n010101010101010101010101010101101010101010101010101010101010101010101010101010",
"output": "78"
},
{
"input": "83\n10101010101010101010101010101010101010101010101010110101010101010101010101010101010",
"output": "83"
},
{
"input": "87\n101010101010101010101010101010101010101010101010101010101010101010101010101010010101010",
"output": "87"
},
{
"input": "65\n01010101101010101010101010101010101010101010101010101010101010101",
"output": "65"
},
{
"input": "69\n010101010101010101101010101010101010101010101010101010101010101010101",
"output": "69"
},
{
"input": "74\n01010101010101010101010101010101010101010101010101010101010101000101010101",
"output": "74"
},
{
"input": "77\n01010101010101001010101010101010100101010101010101010101010101010101010101010",
"output": "77"
},
{
"input": "60\n101010110101010101010101010110101010101010101010101010101010",
"output": "60"
},
{
"input": "89\n01010101010101010101010101010101010101010101010101010101101010101010101010100101010101010",
"output": "89"
},
{
"input": "68\n01010101010101010101010101010101010100101010100101010101010100101010",
"output": "67"
},
{
"input": "73\n0101010101010101010101010101010101010101010111011010101010101010101010101",
"output": "72"
},
{
"input": "55\n1010101010101010010101010101101010101010101010100101010",
"output": "54"
},
{
"input": "85\n1010101010101010101010101010010101010101010101101010101010101010101011010101010101010",
"output": "84"
},
{
"input": "1\n0",
"output": "1"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "10\n1111111111",
"output": "3"
},
{
"input": "2\n10",
"output": "2"
},
{
"input": "2\n11",
"output": "2"
},
{
"input": "2\n00",
"output": "2"
},
{
"input": "3\n000",
"output": "3"
},
{
"input": "3\n001",
"output": "3"
},
{
"input": "3\n010",
"output": "3"
},
{
"input": "3\n011",
"output": "3"
},
{
"input": "3\n100",
"output": "3"
},
{
"input": "3\n101",
"output": "3"
},
{
"input": "3\n110",
"output": "3"
},
{
"input": "3\n111",
"output": "3"
},
{
"input": "4\n0000",
"output": "3"
},
{
"input": "4\n0001",
"output": "4"
},
{
"input": "4\n0010",
"output": "4"
},
{
"input": "4\n0011",
"output": "4"
},
{
"input": "4\n0100",
"output": "4"
},
{
"input": "4\n0101",
"output": "4"
},
{
"input": "4\n0110",
"output": "4"
},
{
"input": "4\n0111",
"output": "4"
},
{
"input": "4\n1000",
"output": "4"
},
{
"input": "4\n1001",
"output": "4"
},
{
"input": "4\n1010",
"output": "4"
},
{
"input": "4\n1011",
"output": "4"
},
{
"input": "4\n1100",
"output": "4"
},
{
"input": "4\n1101",
"output": "4"
},
{
"input": "4\n1110",
"output": "4"
},
{
"input": "4\n1111",
"output": "3"
},
{
"input": "5\n00000",
"output": "3"
},
{
"input": "5\n00001",
"output": "4"
},
{
"input": "5\n00010",
"output": "5"
},
{
"input": "5\n00011",
"output": "4"
},
{
"input": "5\n00100",
"output": "5"
},
{
"input": "5\n00101",
"output": "5"
},
{
"input": "5\n00110",
"output": "5"
},
{
"input": "5\n00111",
"output": "4"
},
{
"input": "5\n01000",
"output": "5"
},
{
"input": "5\n01001",
"output": "5"
},
{
"input": "5\n01010",
"output": "5"
},
{
"input": "5\n01011",
"output": "5"
},
{
"input": "5\n01100",
"output": "5"
},
{
"input": "5\n01101",
"output": "5"
},
{
"input": "5\n01110",
"output": "5"
},
{
"input": "5\n01111",
"output": "4"
},
{
"input": "5\n10000",
"output": "4"
},
{
"input": "5\n10001",
"output": "5"
},
{
"input": "5\n10010",
"output": "5"
},
{
"input": "5\n10100",
"output": "5"
},
{
"input": "5\n10101",
"output": "5"
},
{
"input": "5\n10110",
"output": "5"
},
{
"input": "5\n10111",
"output": "5"
},
{
"input": "5\n11000",
"output": "4"
},
{
"input": "5\n11001",
"output": "5"
},
{
"input": "5\n11010",
"output": "5"
},
{
"input": "5\n11011",
"output": "5"
},
{
"input": "5\n11100",
"output": "4"
},
{
"input": "5\n11101",
"output": "5"
},
{
"input": "5\n11110",
"output": "4"
},
{
"input": "5\n11111",
"output": "3"
}
] | 1,683,431,896
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 116
| 61
| 102,400
|
n,s=int(input()),input()
print(min(n,s.count('01')+s.count('10')+3))
|
Title: Alternative Thinking
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Kevin has just recevied his disappointing results on the USA Identification of Cows Olympiad (USAICO) in the form of a binary string of length *n*. Each character of Kevin's string represents Kevin's score on one of the *n* questions of the olympiadβ'1' for a correctly identified cow and '0' otherwise.
However, all is not lost. Kevin is a big proponent of alternative thinking and believes that his score, instead of being the sum of his points, should be the length of the longest alternating subsequence of his string. Here, we define an alternating subsequence of a string as a not-necessarily contiguous subsequence where no two consecutive elements are equal. For example, {0,<=1,<=0,<=1}, {1,<=0,<=1}, and {1,<=0,<=1,<=0} are alternating sequences, while {1,<=0,<=0} and {0,<=1,<=0,<=1,<=1} are not.
Kevin, being the sneaky little puffball that he is, is willing to hack into the USAICO databases to improve his score. In order to be subtle, he decides that he will flip exactly one substringβthat is, take a contiguous non-empty substring of his score and change all '0's in that substring to '1's and vice versa. After such an operation, Kevin wants to know the length of the longest possible alternating subsequence that his string could have.
Input Specification:
The first line contains the number of questions on the olympiad *n* (1<=β€<=*n*<=β€<=100<=000).
The following line contains a binary string of length *n* representing Kevin's results on the USAICO.
Output Specification:
Output a single integer, the length of the longest possible alternating subsequence that Kevin can create in his string after flipping a single substring.
Demo Input:
['8\n10000011\n', '2\n01\n']
Demo Output:
['5\n', '2\n']
Note:
In the first sample, Kevin can flip the bolded substring '10000011' and turn his string into '10011011', which has an alternating subsequence of length 5: '10011011'.
In the second sample, Kevin can flip the entire string and still have the same score.
|
```python
n,s=int(input()),input()
print(min(n,s.count('01')+s.count('10')+3))
```
| 3
|
|
863
|
A
|
Quasi-palindrome
|
PROGRAMMING
| 900
|
[
"brute force",
"implementation"
] | null | null |
Let quasi-palindromic number be such number that adding some leading zeros (possible none) to it produces a palindromic string.
String *t* is called a palindrome, if it reads the same from left to right and from right to left.
For example, numbers 131 and 2010200 are quasi-palindromic, they can be transformed to strings "131" and "002010200", respectively, which are palindromes.
You are given some integer number *x*. Check if it's a quasi-palindromic number.
|
The first line contains one integer number *x* (1<=β€<=*x*<=β€<=109). This number is given without any leading zeroes.
|
Print "YES" if number *x* is quasi-palindromic. Otherwise, print "NO" (without quotes).
|
[
"131\n",
"320\n",
"2010200\n"
] |
[
"YES\n",
"NO\n",
"YES\n"
] |
none
| 0
|
[
{
"input": "131",
"output": "YES"
},
{
"input": "320",
"output": "NO"
},
{
"input": "2010200",
"output": "YES"
},
{
"input": "1",
"output": "YES"
},
{
"input": "1000000000",
"output": "YES"
},
{
"input": "999999999",
"output": "YES"
},
{
"input": "999999998",
"output": "NO"
},
{
"input": "102000",
"output": "NO"
},
{
"input": "210000000",
"output": "NO"
},
{
"input": "213443120",
"output": "YES"
},
{
"input": "99",
"output": "YES"
},
{
"input": "22002",
"output": "NO"
},
{
"input": "1010",
"output": "YES"
},
{
"input": "1201",
"output": "NO"
},
{
"input": "6460046",
"output": "NO"
},
{
"input": "503435",
"output": "NO"
},
{
"input": "21002",
"output": "NO"
},
{
"input": "101001",
"output": "NO"
},
{
"input": "200102",
"output": "NO"
},
{
"input": "20010002",
"output": "NO"
},
{
"input": "33003",
"output": "NO"
},
{
"input": "100101",
"output": "NO"
},
{
"input": "1021",
"output": "NO"
},
{
"input": "1101",
"output": "NO"
},
{
"input": "10101100",
"output": "NO"
},
{
"input": "101",
"output": "YES"
},
{
"input": "1011",
"output": "NO"
},
{
"input": "11010",
"output": "NO"
},
{
"input": "10110",
"output": "NO"
},
{
"input": "110000",
"output": "YES"
},
{
"input": "2011",
"output": "NO"
},
{
"input": "10020001",
"output": "NO"
},
{
"input": "12505021",
"output": "NO"
},
{
"input": "12310",
"output": "NO"
},
{
"input": "100501",
"output": "NO"
},
{
"input": "11001",
"output": "NO"
},
{
"input": "20020002",
"output": "NO"
},
{
"input": "202002",
"output": "NO"
},
{
"input": "1001",
"output": "YES"
},
{
"input": "1020021",
"output": "NO"
},
{
"input": "60660",
"output": "NO"
},
{
"input": "98809",
"output": "NO"
},
{
"input": "11000000",
"output": "YES"
},
{
"input": "807008",
"output": "NO"
}
] | 1,548,445,389
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 44
| 109
| 0
|
Number = input()
while Number[0] == '0':
Number = Number[1:]
Number = "".join(reversed(Number))
while Number[0] == '0':
Number = Number[1:]
print("YES" if Number=="".join(reversed(Number)) else "NO")
|
Title: Quasi-palindrome
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Let quasi-palindromic number be such number that adding some leading zeros (possible none) to it produces a palindromic string.
String *t* is called a palindrome, if it reads the same from left to right and from right to left.
For example, numbers 131 and 2010200 are quasi-palindromic, they can be transformed to strings "131" and "002010200", respectively, which are palindromes.
You are given some integer number *x*. Check if it's a quasi-palindromic number.
Input Specification:
The first line contains one integer number *x* (1<=β€<=*x*<=β€<=109). This number is given without any leading zeroes.
Output Specification:
Print "YES" if number *x* is quasi-palindromic. Otherwise, print "NO" (without quotes).
Demo Input:
['131\n', '320\n', '2010200\n']
Demo Output:
['YES\n', 'NO\n', 'YES\n']
Note:
none
|
```python
Number = input()
while Number[0] == '0':
Number = Number[1:]
Number = "".join(reversed(Number))
while Number[0] == '0':
Number = Number[1:]
print("YES" if Number=="".join(reversed(Number)) else "NO")
```
| 3
|
|
831
|
B
|
Keyboard Layouts
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] | null | null |
There are two popular keyboard layouts in Berland, they differ only in letters positions. All the other keys are the same. In Berland they use alphabet with 26 letters which coincides with English alphabet.
You are given two strings consisting of 26 distinct letters each: all keys of the first and the second layouts in the same order.
You are also given some text consisting of small and capital English letters and digits. It is known that it was typed in the first layout, but the writer intended to type it in the second layout. Print the text if the same keys were pressed in the second layout.
Since all keys but letters are the same in both layouts, the capitalization of the letters should remain the same, as well as all other characters.
|
The first line contains a string of length 26 consisting of distinct lowercase English letters. This is the first layout.
The second line contains a string of length 26 consisting of distinct lowercase English letters. This is the second layout.
The third line contains a non-empty string *s* consisting of lowercase and uppercase English letters and digits. This is the text typed in the first layout. The length of *s* does not exceed 1000.
|
Print the text if the same keys were pressed in the second layout.
|
[
"qwertyuiopasdfghjklzxcvbnm\nveamhjsgqocnrbfxdtwkylupzi\nTwccpQZAvb2017\n",
"mnbvcxzlkjhgfdsapoiuytrewq\nasdfghjklqwertyuiopzxcvbnm\n7abaCABAABAcaba7\n"
] |
[
"HelloVKCup2017\n",
"7uduGUDUUDUgudu7\n"
] |
none
| 750
|
[
{
"input": "qwertyuiopasdfghjklzxcvbnm\nveamhjsgqocnrbfxdtwkylupzi\nTwccpQZAvb2017",
"output": "HelloVKCup2017"
},
{
"input": "mnbvcxzlkjhgfdsapoiuytrewq\nasdfghjklqwertyuiopzxcvbnm\n7abaCABAABAcaba7",
"output": "7uduGUDUUDUgudu7"
},
{
"input": "ayvguplhjsoiencbkxdrfwmqtz\nkhzvtbspcndierqumlojyagfwx\n3",
"output": "3"
},
{
"input": "oaihbljgekzsxucwnqyrvfdtmp\nwznqcfvrthjibokeglmudpayxs\ntZ8WI33UZZytE8A99EvJjck228LxUQtL5A8q7O217KrmdhpmdhN7JEdVXc8CRm07TFidlIou9AKW9cCl1c4289rfU87oXoSCwHpZO7ggC2GmmDl0KGuA2IimDco2iKaBKl46H089r2tw16mhzI44d2X6g3cnoD0OU5GvA8l89nhNpzTbY9FtZ2wE3Y2a5EC7zXryudTZhXFr9EEcX8P71fp6694aa02B4T0w1pDaVml8FM3N2qB78DBrS723Vpku105sbTJEdBpZu77b1C47DujdoR7rjm5k2nsaPBqX93EfhW95Mm0sBnFtgo12gS87jegSR5u88tM5l420dkt1l1b18UjatzU7P2i9KNJA528caiEpE3JtRw4m4TJ7M1zchxO53skt3Fqvxk2C51gD8XEY7YJC2xmTUqyEUFmPX581Gow2HWq4jaP8FK87",
"output": "yJ8EN33OJJmyT8Z99TdVvkh228FbOLyF5Z8l7W217HuxaqsxaqG7VTaDBk8KUx07YPnafNwo9ZHE9kKf1k4289upO87wBwIKeQsJW7rrK2RxxAf0HRoZ2NnxAkw2nHzCHf46Q089u2ye16xqjN44a2B6r3kgwA0WO5RdZ8f89gqGsjYcM9PyJ2eT3M2z5TK7jBumoaYJqBPu9TTkB8S71ps6694zz02C4Y0e1sAzDxf8PX3G2lC78ACuI723Dsho105icYVTaCsJo77c1K47AovawU7uvx5h2gizSClB93TpqE95Xx0iCgPyrw12rI87vtrIU5o88yX5f420ahy1f1c18OvzyjO7S2n9HGVZ528kznTsT3VyUe4x4YV7X1jkqbW53ihy3Pldbh2K51rA8BTM7MVK2bxYOlmTOPxSB581Rwe2QEl4vzS8PH87"
},
{
"input": "aymrnptzhklcbuxfdvjsgqweio\nwzsavqryltmjnfgcedxpiokbuh\nB5",
"output": "N5"
},
{
"input": "unbclszprgiqjodxeawkymvfth\ncxfwbdvuqlotkgparmhsyinjze\nk081O",
"output": "s081G"
},
{
"input": "evfsnczuiodgbhqmlypkjatxrw\nhvsockwjxtgreqmyanlzidpbuf\n306QMPpaqZ",
"output": "306MYLldmW"
},
{
"input": "pbfjtvryklwmuhxnqsoceiadgz\ntaipfdvlzemhjsnkwyocqgrxbu\nTm9H66Ux59PuGe3lEG94q18u11Dda6w59q1hAAIvHR1qquKI2Xf5ZFdKAPhcEnqKT6BF6Oh16P48YvrIKWGDlRcx9BZwwEF64o0As",
"output": "Fh9S66Jn59TjBq3eQB94w18j11Xxr6m59w1sRRGdSV1wwjZG2Ni5UIxZRTscQkwZF6AI6Os16T48LdvGZMBXeVcn9AUmmQI64o0Ry"
},
{
"input": "rtqgahmkeoldsiynjbuwpvcxfz\noxqiuwflvebnapyrmcghtkdjzs\nJqNskelr3FNjbDhfKPfPXxlqOw72p9BVBwf0tN8Ucs48Vlfjxqo9V3ruU5205UgTYi3JKFbW91NLQ1683315VJ4RSLFW7s26s6uZKs5cO2wAT4JS8rCytZVlPWXdNXaCTq06F1v1Fj2zq7DeJbBSfM5Eko6vBndR75d46mf5Pq7Ark9NARTtQ176ukljBdaqXRsYxrBYl7hda1V7sy38hfbjz59HYM9U55P9eh1CX7tUE44NFlQu7zSjSBHyS3Tte2XaXD3O470Q8U20p8W5rViIh8lsn2TvmcdFdxrF3Ye26J2ZK0BR3KShN597WSJmHJTl4ZZ88IMhzHi6vFyr7MuGYNFGebTB573e6Crwj8P18h344yd8sR2NPge36Y3QC8Y2uW577CO2w4fz",
"output": "MqRalvbo3ZRmcNwzLTzTJjbqEh72t9CKChz0xR8Gda48Kbzmjqe9K3ogG5205GiXYp3MLZcH91RBQ1683315KM4OABZH7a26a6gSLa5dE2hUX4MA8oDyxSKbTHJnRJuDXq06Z1k1Zm2sq7NvMcCAzF5Vle6kCrnO75n46fz5Tq7Uol9RUOXxQ176glbmCnuqJOaYjoCYb7wnu1K7ay38wzcms59WYF9G55T9vw1DJ7xGV44RZbQg7sAmACWyA3Xxv2JuJN3E470Q8G20t8H5oKpPw8bar2XkfdnZnjoZ3Yv26M2SL0CO3LAwR597HAMfWMXb4SS88PFwsWp6kZyo7FgIYRZIvcXC573v6Dohm8T18w344yn8aO2RTiv36Y3QD8Y2gH577DE2h4zs"
},
{
"input": "buneohqdgxjsafrmwtzickvlpy\nzblwamjxifyuqtnrgdkchpoves\n4RZf8YivG6414X1GdDfcCbc10GA0Wz8514LI9D647XzPb66UNh7lX1rDQv0hQvJ7aqhyh1Z39yABGKn24g185Y85ER5q9UqPFaQ2JeK97wHZ78CMSuU8Zf091mePl2OX61BLe5KdmUWodt4BXPiseOZkZ4SZ27qtBM4hT499mCirjy6nB0ZqjQie4Wr3uhW2mGqBlHyEZbW7A6QnsNX9d3j5aHQN0H6GF8J0365KWuAmcroutnJD6l6HI3kSSq17Sdo2htt9y967y8sc98ZAHbutH1m9MOVT1E9Mb5UIK3qNatk9A0m2i1fQl9A65204Q4z4O4rQf374YEq0s2sfmQNW9K7E1zSbj51sGINJVr5736Gw8aW6u9Cjr0sjffXctLopJ0YQ47xD1yEP6bB3odG7slgiM8hJ9BuwfGUwN8tbAgJU8wMI2L0P446MO",
"output": "4NKt8ScoI6414F1IxXthHzh10IQ0Gk8514VC9X647FkEz66BLm7vF1nXJo0mJoY7qjmsm1K39sQZIPl24i185S85WN5j9BjETqJ2YwP97gMK78HRUbB8Kt091rwEv2AF61ZVw5PxrBGaxd4ZFEcuwAKpK4UK27jdZR4mD499rHcnys6lZ0KjyJcw4Gn3bmG2rIjZvMsWKzG7Q6JluLF9x3y5qMJL0M6IT8Y0365PGbQrhnabdlYX6v6MC3pUUj17Uxa2mdd9s967s8uh98KQMzbdM1r9RAOD1W9Rz5BCP3jLqdp9Q0r2c1tJv9Q65204J4k4A4nJt374SWj0u2utrJLG9P7W1kUzy51uICLYOn5736Ig8qG6b9Hyn0uyttFhdVaeY0SJ47fX1sWE6zZ3axI7uvicR8mY9ZbgtIBgL8dzQiYB8gRC2V0E446RA"
},
{
"input": "qwertyuiopasdfghjklzxcvbnm\nqwertyuiopasdfghjklzxcvbnm\nqwertyuiopasdfghjklzxcvbnmPOIUYTREWQLKJHGFDSAMNBVCXZ12345678900987654321ASDFGHJKLqwertyuiopZXCVBNM",
"output": "qwertyuiopasdfghjklzxcvbnmPOIUYTREWQLKJHGFDSAMNBVCXZ12345678900987654321ASDFGHJKLqwertyuiopZXCVBNM"
},
{
"input": "qwertyuiopasdfghjklzxcvbnm\nmnbvcxzlkjhgfdsapoiuytrewq\nasdfghjklzxcvbnmqwertyuiopASDFGHJKLQWERTYUIOPZXCVBNM12345678900987654321QWSDFGVBNxcvghjkoWQEDFGHNJMzxcfghjkl",
"output": "hgfdsapoiuytrewqmnbvcxzlkjHGFDSAPOIMNBVCXZLKJUYTREWQ12345678900987654321MNGFDSREWytrsapokNMBFDSAWPQuytdsapoi"
}
] | 1,639,080,001
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 19
| 124
| 1,433,600
|
first=str(input())
second=str(input())
sent=str(input())
variant=[0]*len(sent)
numbers="0123456789"
for i in range(0,26):
for j in range(0,len(sent)):
if (sent[j]==first[i]):
variant[j]=second[i]
elif (sent[j]==first[i].upper()):
variant[j]=second[i].upper()
elif (i<10 and sent[j]==numbers[i]):
variant[j]=numbers[i]
print(''.join(variant))
|
Title: Keyboard Layouts
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are two popular keyboard layouts in Berland, they differ only in letters positions. All the other keys are the same. In Berland they use alphabet with 26 letters which coincides with English alphabet.
You are given two strings consisting of 26 distinct letters each: all keys of the first and the second layouts in the same order.
You are also given some text consisting of small and capital English letters and digits. It is known that it was typed in the first layout, but the writer intended to type it in the second layout. Print the text if the same keys were pressed in the second layout.
Since all keys but letters are the same in both layouts, the capitalization of the letters should remain the same, as well as all other characters.
Input Specification:
The first line contains a string of length 26 consisting of distinct lowercase English letters. This is the first layout.
The second line contains a string of length 26 consisting of distinct lowercase English letters. This is the second layout.
The third line contains a non-empty string *s* consisting of lowercase and uppercase English letters and digits. This is the text typed in the first layout. The length of *s* does not exceed 1000.
Output Specification:
Print the text if the same keys were pressed in the second layout.
Demo Input:
['qwertyuiopasdfghjklzxcvbnm\nveamhjsgqocnrbfxdtwkylupzi\nTwccpQZAvb2017\n', 'mnbvcxzlkjhgfdsapoiuytrewq\nasdfghjklqwertyuiopzxcvbnm\n7abaCABAABAcaba7\n']
Demo Output:
['HelloVKCup2017\n', '7uduGUDUUDUgudu7\n']
Note:
none
|
```python
first=str(input())
second=str(input())
sent=str(input())
variant=[0]*len(sent)
numbers="0123456789"
for i in range(0,26):
for j in range(0,len(sent)):
if (sent[j]==first[i]):
variant[j]=second[i]
elif (sent[j]==first[i].upper()):
variant[j]=second[i].upper()
elif (i<10 and sent[j]==numbers[i]):
variant[j]=numbers[i]
print(''.join(variant))
```
| 3
|
|
275
|
A
|
Lights Out
|
PROGRAMMING
| 900
|
[
"implementation"
] | null | null |
Lenny is playing a game on a 3<=Γ<=3 grid of lights. In the beginning of the game all lights are switched on. Pressing any of the lights will toggle it and all side-adjacent lights. The goal of the game is to switch all the lights off. We consider the toggling as follows: if the light was switched on then it will be switched off, if it was switched off then it will be switched on.
Lenny has spent some time playing with the grid and by now he has pressed each light a certain number of times. Given the number of times each light is pressed, you have to print the current state of each light.
|
The input consists of three rows. Each row contains three integers each between 0 to 100 inclusive. The *j*-th number in the *i*-th row is the number of times the *j*-th light of the *i*-th row of the grid is pressed.
|
Print three lines, each containing three characters. The *j*-th character of the *i*-th line is "1" if and only if the corresponding light is switched on, otherwise it's "0".
|
[
"1 0 0\n0 0 0\n0 0 1\n",
"1 0 1\n8 8 8\n2 0 3\n"
] |
[
"001\n010\n100\n",
"010\n011\n100\n"
] |
none
| 500
|
[
{
"input": "1 0 0\n0 0 0\n0 0 1",
"output": "001\n010\n100"
},
{
"input": "1 0 1\n8 8 8\n2 0 3",
"output": "010\n011\n100"
},
{
"input": "13 85 77\n25 50 45\n65 79 9",
"output": "000\n010\n000"
},
{
"input": "96 95 5\n8 84 74\n67 31 61",
"output": "011\n011\n101"
},
{
"input": "24 54 37\n60 63 6\n1 84 26",
"output": "110\n101\n011"
},
{
"input": "23 10 40\n15 6 40\n92 80 77",
"output": "101\n100\n000"
},
{
"input": "62 74 80\n95 74 93\n2 47 95",
"output": "010\n001\n110"
},
{
"input": "80 83 48\n26 0 66\n47 76 37",
"output": "000\n000\n010"
},
{
"input": "32 15 65\n7 54 36\n5 51 3",
"output": "111\n101\n001"
},
{
"input": "22 97 12\n71 8 24\n100 21 64",
"output": "100\n001\n100"
},
{
"input": "46 37 13\n87 0 50\n90 8 55",
"output": "111\n011\n000"
},
{
"input": "57 43 58\n20 82 83\n66 16 52",
"output": "111\n010\n110"
},
{
"input": "45 56 93\n47 51 59\n18 51 63",
"output": "101\n011\n100"
},
{
"input": "47 66 67\n14 1 37\n27 81 69",
"output": "001\n001\n110"
},
{
"input": "26 69 69\n85 18 23\n14 22 74",
"output": "110\n001\n010"
},
{
"input": "10 70 65\n94 27 25\n74 66 30",
"output": "111\n010\n100"
},
{
"input": "97 1 74\n15 99 1\n88 68 86",
"output": "001\n011\n000"
},
{
"input": "36 48 42\n45 41 66\n26 64 1",
"output": "001\n111\n010"
},
{
"input": "52 81 97\n29 77 71\n66 11 2",
"output": "100\n100\n111"
},
{
"input": "18 66 33\n19 49 49\n48 46 26",
"output": "011\n100\n000"
},
{
"input": "68 79 52\n51 39 100\n29 14 26",
"output": "110\n000\n111"
},
{
"input": "91 69 77\n91 26 64\n91 88 57",
"output": "001\n011\n110"
},
{
"input": "16 69 64\n48 21 80\n81 51 51",
"output": "010\n101\n111"
},
{
"input": "96 14 2\n100 18 12\n65 34 89",
"output": "111\n010\n010"
},
{
"input": "93 95 90\n8 59 42\n53 13 19",
"output": "100\n001\n111"
},
{
"input": "71 84 18\n100 19 67\n9 76 15",
"output": "010\n010\n001"
},
{
"input": "38 93 85\n21 88 64\n4 96 25",
"output": "111\n011\n000"
},
{
"input": "75 20 20\n60 5 78\n77 4 69",
"output": "011\n001\n000"
},
{
"input": "65 70 96\n19 6 83\n33 37 82",
"output": "100\n000\n011"
},
{
"input": "11 13 60\n17 13 46\n42 21 39",
"output": "000\n011\n101"
},
{
"input": "0 0 0\n0 0 0\n0 0 0",
"output": "111\n111\n111"
},
{
"input": "0 0 0\n0 1 0\n0 0 0",
"output": "101\n000\n101"
},
{
"input": "0 0 0\n0 0 0\n0 0 1",
"output": "111\n110\n100"
}
] | 1,693,154,606
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 33
| 46
| 0
|
def final_state(lights) :
state = [[1 for i in range(3)]for j in range(3)]
drow,dcol = [-1,0,1,0],[0,-1,0,1]
for i in range(3) :
for j in range(3) :
time = lights[i][j]
for t in range(time) :
state[i][j] = 1 - state[i][j]
for k in range(4) :
nrow,ncol = drow[k] + i, dcol[k] + j
if nrow >= 0 and ncol >= 0 and nrow < 3 and ncol < 3 :
state[nrow][ncol] = 1 - state[nrow][ncol]
return state
def get_input() :
lights = []
for i in range(3) :
x,y,z = map(int,input().split())
lights.append([x,y,z])
return lights
def print_output(op) :
for i in range(3) :
for j in range(3) :
print(op[i][j],end = '')
print()
print_output(final_state(get_input()))
|
Title: Lights Out
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Lenny is playing a game on a 3<=Γ<=3 grid of lights. In the beginning of the game all lights are switched on. Pressing any of the lights will toggle it and all side-adjacent lights. The goal of the game is to switch all the lights off. We consider the toggling as follows: if the light was switched on then it will be switched off, if it was switched off then it will be switched on.
Lenny has spent some time playing with the grid and by now he has pressed each light a certain number of times. Given the number of times each light is pressed, you have to print the current state of each light.
Input Specification:
The input consists of three rows. Each row contains three integers each between 0 to 100 inclusive. The *j*-th number in the *i*-th row is the number of times the *j*-th light of the *i*-th row of the grid is pressed.
Output Specification:
Print three lines, each containing three characters. The *j*-th character of the *i*-th line is "1" if and only if the corresponding light is switched on, otherwise it's "0".
Demo Input:
['1 0 0\n0 0 0\n0 0 1\n', '1 0 1\n8 8 8\n2 0 3\n']
Demo Output:
['001\n010\n100\n', '010\n011\n100\n']
Note:
none
|
```python
def final_state(lights) :
state = [[1 for i in range(3)]for j in range(3)]
drow,dcol = [-1,0,1,0],[0,-1,0,1]
for i in range(3) :
for j in range(3) :
time = lights[i][j]
for t in range(time) :
state[i][j] = 1 - state[i][j]
for k in range(4) :
nrow,ncol = drow[k] + i, dcol[k] + j
if nrow >= 0 and ncol >= 0 and nrow < 3 and ncol < 3 :
state[nrow][ncol] = 1 - state[nrow][ncol]
return state
def get_input() :
lights = []
for i in range(3) :
x,y,z = map(int,input().split())
lights.append([x,y,z])
return lights
def print_output(op) :
for i in range(3) :
for j in range(3) :
print(op[i][j],end = '')
print()
print_output(final_state(get_input()))
```
| 3
|
|
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<=β€<=*n*<=β€<=2000) β the number of employees.
The next *n* lines contain the integers *p**i* (1<=β€<=*p**i*<=β€<=*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*<=β <=*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"
}
] | 1,660,050,317
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 106
| 92
| 409,600
|
#bfs solution
from collections import defaultdict,deque
n = int(input())
adj_list = defaultdict(list)
for i in range(1,n+1):
adj_list[int(input())].append(i)
def bfs(queue):
depth = 0
while queue:
depth += 1
k = len(queue)
for j in range(k):
temp = queue.popleft()
for child in adj_list[temp]:
queue.append(child)
return depth
print(bfs(deque(adj_list[-1])))
#dfs solution
# import sys
# from collections import defaultdict
# sys.setrecursionlimit(3000)
# n = int(input())
# adj_list = defaultdict(list)
# for i in range(1,n+1):
# adj_list[int(input())].append(i)
# def dfs(employ, depth):
# if not adj_list[employ]:
# return depth
# _max = 0
# for e in adj_list[employ]:
# _max = max(_max, dfs(e,depth + 1))
# return _max
# depth = 0
# ans = 0
# for employ in adj_list[-1]:
# ans = max(ans,dfs(employ,depth + 1))
# 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<=β€<=*n*<=β€<=2000) β the number of employees.
The next *n* lines contain the integers *p**i* (1<=β€<=*p**i*<=β€<=*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*<=β <=*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
#bfs solution
from collections import defaultdict,deque
n = int(input())
adj_list = defaultdict(list)
for i in range(1,n+1):
adj_list[int(input())].append(i)
def bfs(queue):
depth = 0
while queue:
depth += 1
k = len(queue)
for j in range(k):
temp = queue.popleft()
for child in adj_list[temp]:
queue.append(child)
return depth
print(bfs(deque(adj_list[-1])))
#dfs solution
# import sys
# from collections import defaultdict
# sys.setrecursionlimit(3000)
# n = int(input())
# adj_list = defaultdict(list)
# for i in range(1,n+1):
# adj_list[int(input())].append(i)
# def dfs(employ, depth):
# if not adj_list[employ]:
# return depth
# _max = 0
# for e in adj_list[employ]:
# _max = max(_max, dfs(e,depth + 1))
# return _max
# depth = 0
# ans = 0
# for employ in adj_list[-1]:
# ans = max(ans,dfs(employ,depth + 1))
# print(ans)
```
| 3
|
|
399
|
A
|
Pages
|
PROGRAMMING
| 0
|
[
"implementation"
] | null | null |
User ainta is making a web site. This time he is going to make a navigation of the pages. In his site, there are *n* pages numbered by integers from 1 to *n*. Assume that somebody is on the *p*-th page now. The navigation will look like this:
When someone clicks the button "<<" he is redirected to page 1, and when someone clicks the button ">>" he is redirected to page *n*. Of course if someone clicks on a number, he is redirected to the corresponding page.
There are some conditions in the navigation:
- If page 1 is in the navigation, the button "<<" must not be printed. - If page *n* is in the navigation, the button ">>" must not be printed. - If the page number is smaller than 1 or greater than *n*, it must not be printed.
You can see some examples of the navigations. Make a program that prints the navigation.
|
The first and the only line contains three integers *n*, *p*, *k* (3<=β€<=*n*<=β€<=100; 1<=β€<=*p*<=β€<=*n*; 1<=β€<=*k*<=β€<=*n*)
|
Print the proper navigation. Follow the format of the output from the test samples.
|
[
"17 5 2\n",
"6 5 2\n",
"6 1 2\n",
"6 2 2\n",
"9 6 3\n",
"10 6 3\n",
"8 5 4\n"
] |
[
"<< 3 4 (5) 6 7 >> ",
"<< 3 4 (5) 6 ",
"(1) 2 3 >> ",
"1 (2) 3 4 >>",
"<< 3 4 5 (6) 7 8 9",
"<< 3 4 5 (6) 7 8 9 >>",
"1 2 3 4 (5) 6 7 8 "
] |
none
| 500
|
[
{
"input": "17 5 2",
"output": "<< 3 4 (5) 6 7 >> "
},
{
"input": "6 5 2",
"output": "<< 3 4 (5) 6 "
},
{
"input": "6 1 2",
"output": "(1) 2 3 >> "
},
{
"input": "6 2 2",
"output": "1 (2) 3 4 >> "
},
{
"input": "9 6 3",
"output": "<< 3 4 5 (6) 7 8 9 "
},
{
"input": "10 6 3",
"output": "<< 3 4 5 (6) 7 8 9 >> "
},
{
"input": "8 5 4",
"output": "1 2 3 4 (5) 6 7 8 "
},
{
"input": "100 10 20",
"output": "1 2 3 4 5 6 7 8 9 (10) 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 >> "
},
{
"input": "100 25 11",
"output": "<< 14 15 16 17 18 19 20 21 22 23 24 (25) 26 27 28 29 30 31 32 33 34 35 36 >> "
},
{
"input": "5 2 1",
"output": "1 (2) 3 >> "
},
{
"input": "5 3 1",
"output": "<< 2 (3) 4 >> "
},
{
"input": "79 35 12",
"output": "<< 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 >> "
},
{
"input": "100 99 5",
"output": "<< 94 95 96 97 98 (99) 100 "
},
{
"input": "100 99 15",
"output": "<< 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 (99) 100 "
},
{
"input": "100 100 17",
"output": "<< 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 (100) "
},
{
"input": "100 35 28",
"output": "<< 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 >> "
},
{
"input": "100 46 38",
"output": "<< 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 >> "
},
{
"input": "100 46 48",
"output": "1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 (46) 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 >> "
},
{
"input": "100 10 100",
"output": "1 2 3 4 5 6 7 8 9 (10) 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 "
},
{
"input": "3 1 1",
"output": "(1) 2 >> "
},
{
"input": "3 2 1",
"output": "1 (2) 3 "
},
{
"input": "17 5 3",
"output": "<< 2 3 4 (5) 6 7 8 >> "
},
{
"input": "3 1 3",
"output": "(1) 2 3 "
},
{
"input": "7 5 1",
"output": "<< 4 (5) 6 >> "
},
{
"input": "5 5 5",
"output": "1 2 3 4 (5) "
},
{
"input": "5 3 5",
"output": "1 2 (3) 4 5 "
}
] | 1,559,855,575
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 26
| 109
| 307,200
|
n, p, k = map(int, input().split())
string = ''
if p != 1 and p != n:
if p - k <= 1:
string += ' '.join(map(str, [i for i in range(1, p)]))
string += ' ({}) '.format(p)
else:
string += '<< '
string += ' '.join(map(str, [i for i in range(p - k, p)]))
string += ' ({}) '.format(p)
if p + k >= n:
string += ' '.join(map(str, [i for i in range(p + 1, n + 1)]))
else:
string += ' '.join(map(str, [i for i in range(p + 1, p + k + 1)]))
string += ' >>'
elif p == 1:
string += '(1) '
if p + k >= n:
string += ' '.join(map(str, [i for i in range(p + 1, n + 1)]))
else:
string += ' '.join(map(str, [i for i in range(p + 1, p + k + 1)]))
string += ' >>'
else:
if p - k <= 1:
string += ' '.join(map(str, [i for i in range(1, p)]))
else:
string += '<< '
string += ' '.join(map(str, [i for i in range(p - k, p)]))
string += ' ({})'.format(n)
print(string)
|
Title: Pages
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
User ainta is making a web site. This time he is going to make a navigation of the pages. In his site, there are *n* pages numbered by integers from 1 to *n*. Assume that somebody is on the *p*-th page now. The navigation will look like this:
When someone clicks the button "<<" he is redirected to page 1, and when someone clicks the button ">>" he is redirected to page *n*. Of course if someone clicks on a number, he is redirected to the corresponding page.
There are some conditions in the navigation:
- If page 1 is in the navigation, the button "<<" must not be printed. - If page *n* is in the navigation, the button ">>" must not be printed. - If the page number is smaller than 1 or greater than *n*, it must not be printed.
You can see some examples of the navigations. Make a program that prints the navigation.
Input Specification:
The first and the only line contains three integers *n*, *p*, *k* (3<=β€<=*n*<=β€<=100; 1<=β€<=*p*<=β€<=*n*; 1<=β€<=*k*<=β€<=*n*)
Output Specification:
Print the proper navigation. Follow the format of the output from the test samples.
Demo Input:
['17 5 2\n', '6 5 2\n', '6 1 2\n', '6 2 2\n', '9 6 3\n', '10 6 3\n', '8 5 4\n']
Demo Output:
['<< 3 4 (5) 6 7 >> ', '<< 3 4 (5) 6 ', '(1) 2 3 >> ', '1 (2) 3 4 >>', '<< 3 4 5 (6) 7 8 9', '<< 3 4 5 (6) 7 8 9 >>', '1 2 3 4 (5) 6 7 8 ']
Note:
none
|
```python
n, p, k = map(int, input().split())
string = ''
if p != 1 and p != n:
if p - k <= 1:
string += ' '.join(map(str, [i for i in range(1, p)]))
string += ' ({}) '.format(p)
else:
string += '<< '
string += ' '.join(map(str, [i for i in range(p - k, p)]))
string += ' ({}) '.format(p)
if p + k >= n:
string += ' '.join(map(str, [i for i in range(p + 1, n + 1)]))
else:
string += ' '.join(map(str, [i for i in range(p + 1, p + k + 1)]))
string += ' >>'
elif p == 1:
string += '(1) '
if p + k >= n:
string += ' '.join(map(str, [i for i in range(p + 1, n + 1)]))
else:
string += ' '.join(map(str, [i for i in range(p + 1, p + k + 1)]))
string += ' >>'
else:
if p - k <= 1:
string += ' '.join(map(str, [i for i in range(1, p)]))
else:
string += '<< '
string += ' '.join(map(str, [i for i in range(p - k, p)]))
string += ' ({})'.format(n)
print(string)
```
| 3
|
|
884
|
A
|
Book Reading
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Recently Luba bought a very interesting book. She knows that it will take *t* seconds to read the book. Luba wants to finish reading as fast as she can.
But she has some work to do in each of *n* next days. The number of seconds that Luba has to spend working during *i*-th day is *a**i*. If some free time remains, she can spend it on reading.
Help Luba to determine the minimum number of day when she finishes reading.
It is guaranteed that the answer doesn't exceed *n*.
Remember that there are 86400 seconds in a day.
|
The first line contains two integers *n* and *t* (1<=β€<=*n*<=β€<=100, 1<=β€<=*t*<=β€<=106) β the number of days and the time required to read the book.
The second line contains *n* integers *a**i* (0<=β€<=*a**i*<=β€<=86400) β the time Luba has to spend on her work during *i*-th day.
|
Print the minimum day Luba can finish reading the book.
It is guaranteed that answer doesn't exceed *n*.
|
[
"2 2\n86400 86398\n",
"2 86400\n0 86400\n"
] |
[
"2\n",
"1\n"
] |
none
| 0
|
[
{
"input": "2 2\n86400 86398",
"output": "2"
},
{
"input": "2 86400\n0 86400",
"output": "1"
},
{
"input": "2 86400\n1 86399",
"output": "2"
},
{
"input": "100 1000000\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": "12"
},
{
"input": "1 1\n86399",
"output": "1"
},
{
"input": "6 1200\n86400 86400 86000 86000 86000 86400",
"output": "5"
},
{
"input": "6 1200\n86400 86400 86000 86000 86001 86399",
"output": "6"
},
{
"input": "4 172799\n1 1 86400 0",
"output": "4"
},
{
"input": "4 172799\n0 86400 86399 0",
"output": "4"
},
{
"input": "6 1\n1 1 86400 1 86399 1",
"output": "1"
},
{
"input": "4 1\n86400 86399 86400 86400",
"output": "2"
},
{
"input": "4 1\n86400 86400 0 86400",
"output": "3"
}
] | 1,612,905,149
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 16
| 93
| 0
|
n, t = map(int, input().split())
a = [int(i) for i in input().split()]
ans = 0
s = 0
for i in a:
ans += 1
s += 86400 - i
if s >= t:
print(ans)
break
|
Title: Book Reading
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Recently Luba bought a very interesting book. She knows that it will take *t* seconds to read the book. Luba wants to finish reading as fast as she can.
But she has some work to do in each of *n* next days. The number of seconds that Luba has to spend working during *i*-th day is *a**i*. If some free time remains, she can spend it on reading.
Help Luba to determine the minimum number of day when she finishes reading.
It is guaranteed that the answer doesn't exceed *n*.
Remember that there are 86400 seconds in a day.
Input Specification:
The first line contains two integers *n* and *t* (1<=β€<=*n*<=β€<=100, 1<=β€<=*t*<=β€<=106) β the number of days and the time required to read the book.
The second line contains *n* integers *a**i* (0<=β€<=*a**i*<=β€<=86400) β the time Luba has to spend on her work during *i*-th day.
Output Specification:
Print the minimum day Luba can finish reading the book.
It is guaranteed that answer doesn't exceed *n*.
Demo Input:
['2 2\n86400 86398\n', '2 86400\n0 86400\n']
Demo Output:
['2\n', '1\n']
Note:
none
|
```python
n, t = map(int, input().split())
a = [int(i) for i in input().split()]
ans = 0
s = 0
for i in a:
ans += 1
s += 86400 - i
if s >= t:
print(ans)
break
```
| 3
|
|
520
|
B
|
Two Buttons
|
PROGRAMMING
| 1,400
|
[
"dfs and similar",
"graphs",
"greedy",
"implementation",
"math",
"shortest paths"
] | null | null |
Vasya has found a strange device. On the front panel of a device there are: a red button, a blue button and a display showing some positive integer. After clicking the red button, device multiplies the displayed number by two. After clicking the blue button, device subtracts one from the number on the display. If at some point the number stops being positive, the device breaks down. The display can show arbitrarily large numbers. Initially, the display shows number *n*.
Bob wants to get number *m* on the display. What minimum number of clicks he has to make in order to achieve this result?
|
The first and the only line of the input contains two distinct integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=104), separated by a space .
|
Print a single number β the minimum number of times one needs to push the button required to get the number *m* out of number *n*.
|
[
"4 6\n",
"10 1\n"
] |
[
"2\n",
"9\n"
] |
In the first example you need to push the blue button once, and then push the red button once.
In the second example, doubling the number is unnecessary, so we need to push the blue button nine times.
| 1,000
|
[
{
"input": "4 6",
"output": "2"
},
{
"input": "10 1",
"output": "9"
},
{
"input": "1 2",
"output": "1"
},
{
"input": "2 1",
"output": "1"
},
{
"input": "1 3",
"output": "3"
},
{
"input": "3 1",
"output": "2"
},
{
"input": "2 10",
"output": "5"
},
{
"input": "100 99",
"output": "1"
},
{
"input": "99 100",
"output": "50"
},
{
"input": "10 17",
"output": "3"
},
{
"input": "666 6666",
"output": "255"
},
{
"input": "6666 666",
"output": "6000"
},
{
"input": "1 8192",
"output": "13"
},
{
"input": "1 8193",
"output": "27"
},
{
"input": "9999 10000",
"output": "5000"
},
{
"input": "10000 9999",
"output": "1"
},
{
"input": "10000 1",
"output": "9999"
},
{
"input": "1234 5678",
"output": "528"
},
{
"input": "9102 9103",
"output": "4552"
},
{
"input": "8192 1",
"output": "8191"
},
{
"input": "9912 1023",
"output": "8889"
},
{
"input": "100 500",
"output": "41"
},
{
"input": "9997 9999",
"output": "4999"
},
{
"input": "5000 10000",
"output": "1"
},
{
"input": "4000 7997",
"output": "3"
},
{
"input": "1 10000",
"output": "20"
},
{
"input": "1 8191",
"output": "14"
},
{
"input": "9999 10000",
"output": "5000"
},
{
"input": "9097 9998",
"output": "4099"
},
{
"input": "886 9383",
"output": "305"
},
{
"input": "1 9",
"output": "7"
},
{
"input": "1918 10000",
"output": "671"
},
{
"input": "1 3",
"output": "3"
},
{
"input": "1 4",
"output": "2"
},
{
"input": "2 10000",
"output": "19"
},
{
"input": "3 10000",
"output": "17"
},
{
"input": "4 10000",
"output": "18"
},
{
"input": "9998 10000",
"output": "4999"
},
{
"input": "5000 10000",
"output": "1"
},
{
"input": "5001 10000",
"output": "2"
},
{
"input": "10000 1",
"output": "9999"
},
{
"input": "1 9999",
"output": "21"
},
{
"input": "7777 9999",
"output": "2779"
},
{
"input": "2 100",
"output": "9"
},
{
"input": "10 8722",
"output": "18"
},
{
"input": "848 4561",
"output": "283"
},
{
"input": "9967 9973",
"output": "4982"
},
{
"input": "5555 10000",
"output": "556"
},
{
"input": "999 10000",
"output": "378"
},
{
"input": "3 6",
"output": "1"
},
{
"input": "9 38",
"output": "8"
}
] | 1,694,726,000
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 51
| 46
| 0
|
def Two_Buttons(n, m):
if n >= m:
return n - m
elif m % 2 == 0:
return 1 + Two_Buttons(n, m // 2)
else:
return 1 + Two_Buttons(n, m + 1)
n, m = map(int, input().split())
print(Two_Buttons(n, m))
|
Title: Two Buttons
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya has found a strange device. On the front panel of a device there are: a red button, a blue button and a display showing some positive integer. After clicking the red button, device multiplies the displayed number by two. After clicking the blue button, device subtracts one from the number on the display. If at some point the number stops being positive, the device breaks down. The display can show arbitrarily large numbers. Initially, the display shows number *n*.
Bob wants to get number *m* on the display. What minimum number of clicks he has to make in order to achieve this result?
Input Specification:
The first and the only line of the input contains two distinct integers *n* and *m* (1<=β€<=*n*,<=*m*<=β€<=104), separated by a space .
Output Specification:
Print a single number β the minimum number of times one needs to push the button required to get the number *m* out of number *n*.
Demo Input:
['4 6\n', '10 1\n']
Demo Output:
['2\n', '9\n']
Note:
In the first example you need to push the blue button once, and then push the red button once.
In the second example, doubling the number is unnecessary, so we need to push the blue button nine times.
|
```python
def Two_Buttons(n, m):
if n >= m:
return n - m
elif m % 2 == 0:
return 1 + Two_Buttons(n, m // 2)
else:
return 1 + Two_Buttons(n, m + 1)
n, m = map(int, input().split())
print(Two_Buttons(n, m))
```
| 3
|
|
602
|
A
|
Two Bases
|
PROGRAMMING
| 1,100
|
[
"brute force",
"implementation"
] | null | null |
After seeing the "ALL YOUR BASE ARE BELONG TO US" meme for the first time, numbers *X* and *Y* realised that they have different bases, which complicated their relations.
You're given a number *X* represented in base *b**x* and a number *Y* represented in base *b**y*. Compare those two numbers.
|
The first line of the input contains two space-separated integers *n* and *b**x* (1<=β€<=*n*<=β€<=10, 2<=β€<=*b**x*<=β€<=40), where *n* is the number of digits in the *b**x*-based representation of *X*.
The second line contains *n* space-separated integers *x*1,<=*x*2,<=...,<=*x**n* (0<=β€<=*x**i*<=<<=*b**x*) β the digits of *X*. They are given in the order from the most significant digit to the least significant one.
The following two lines describe *Y* in the same way: the third line contains two space-separated integers *m* and *b**y* (1<=β€<=*m*<=β€<=10, 2<=β€<=*b**y*<=β€<=40, *b**x*<=β <=*b**y*), where *m* is the number of digits in the *b**y*-based representation of *Y*, and the fourth line contains *m* space-separated integers *y*1,<=*y*2,<=...,<=*y**m* (0<=β€<=*y**i*<=<<=*b**y*) β the digits of *Y*.
There will be no leading zeroes. Both *X* and *Y* will be positive. All digits of both numbers are given in the standard decimal numeral system.
|
Output a single character (quotes for clarity):
- '<' if *X*<=<<=*Y* - '>' if *X*<=><=*Y* - '=' if *X*<==<=*Y*
|
[
"6 2\n1 0 1 1 1 1\n2 10\n4 7\n",
"3 3\n1 0 2\n2 5\n2 4\n",
"7 16\n15 15 4 0 0 7 10\n7 9\n4 8 0 3 1 5 0\n"
] |
[
"=\n",
"<\n",
">\n"
] |
In the first sample, *X*β=β101111<sub class="lower-index">2</sub>β=β47<sub class="lower-index">10</sub>β=β*Y*.
In the second sample, *X*β=β102<sub class="lower-index">3</sub>β=β21<sub class="lower-index">5</sub> and *Y*β=β24<sub class="lower-index">5</sub>β=β112<sub class="lower-index">3</sub>, thus *X*β<β*Y*.
In the third sample, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/603a342b0ae3e56fed542d1c50c0a5ff6ce2cbaa.png" style="max-width: 100.0%;max-height: 100.0%;"/> and *Y*β=β4803150<sub class="lower-index">9</sub>. We may notice that *X* starts with much larger digits and *b*<sub class="lower-index">*x*</sub> is much larger than *b*<sub class="lower-index">*y*</sub>, so *X* is clearly larger than *Y*.
| 500
|
[
{
"input": "6 2\n1 0 1 1 1 1\n2 10\n4 7",
"output": "="
},
{
"input": "3 3\n1 0 2\n2 5\n2 4",
"output": "<"
},
{
"input": "7 16\n15 15 4 0 0 7 10\n7 9\n4 8 0 3 1 5 0",
"output": ">"
},
{
"input": "2 2\n1 0\n2 3\n1 0",
"output": "<"
},
{
"input": "2 2\n1 0\n1 3\n1",
"output": ">"
},
{
"input": "10 2\n1 0 1 0 1 0 1 0 1 0\n10 3\n2 2 2 2 2 2 2 2 2 2",
"output": "<"
},
{
"input": "10 16\n15 15 4 0 0 0 0 7 10 9\n7 9\n4 8 0 3 1 5 0",
"output": ">"
},
{
"input": "5 5\n4 4 4 4 4\n4 6\n5 5 5 5",
"output": ">"
},
{
"input": "2 8\n1 0\n4 2\n1 0 0 0",
"output": "="
},
{
"input": "5 2\n1 0 0 0 1\n6 8\n1 4 7 2 0 0",
"output": "<"
},
{
"input": "6 7\n1 1 2 1 2 1\n6 6\n2 3 2 2 2 2",
"output": "="
},
{
"input": "9 35\n34 3 20 29 27 30 2 8 5\n7 33\n17 3 22 31 1 11 6",
"output": ">"
},
{
"input": "1 8\n5\n9 27\n23 23 23 23 23 23 23 23 23",
"output": "<"
},
{
"input": "4 7\n3 0 6 6\n3 11\n7 10 10",
"output": ">"
},
{
"input": "1 40\n1\n2 5\n1 0",
"output": "<"
},
{
"input": "1 36\n35\n4 5\n2 4 4 1",
"output": "<"
},
{
"input": "1 30\n1\n1 31\n1",
"output": "="
},
{
"input": "1 3\n1\n1 2\n1",
"output": "="
},
{
"input": "1 2\n1\n1 40\n1",
"output": "="
},
{
"input": "6 29\n1 1 1 1 1 1\n10 21\n1 1 1 1 1 1 1 1 1 1",
"output": "<"
},
{
"input": "3 5\n1 0 0\n3 3\n2 2 2",
"output": "<"
},
{
"input": "2 8\n1 0\n2 3\n2 2",
"output": "="
},
{
"input": "2 4\n3 3\n2 15\n1 0",
"output": "="
},
{
"input": "2 35\n1 0\n2 6\n5 5",
"output": "="
},
{
"input": "2 6\n5 5\n2 34\n1 0",
"output": ">"
},
{
"input": "2 7\n1 0\n2 3\n2 2",
"output": "<"
},
{
"input": "2 2\n1 0\n1 3\n2",
"output": "="
},
{
"input": "2 9\n5 5\n4 3\n1 0 0 0",
"output": ">"
},
{
"input": "1 24\n6\n3 9\n1 1 1",
"output": "<"
},
{
"input": "5 37\n9 9 9 9 9\n6 27\n13 0 0 0 0 0",
"output": "<"
},
{
"input": "10 2\n1 1 1 1 1 1 1 1 1 1\n10 34\n14 14 14 14 14 14 14 14 14 14",
"output": "<"
},
{
"input": "7 26\n8 0 0 0 0 0 0\n9 9\n3 3 3 3 3 3 3 3 3",
"output": ">"
},
{
"input": "2 40\n2 0\n5 13\n4 0 0 0 0",
"output": "<"
},
{
"input": "1 22\n15\n10 14\n3 3 3 3 3 3 3 3 3 3",
"output": "<"
},
{
"input": "10 22\n3 3 3 3 3 3 3 3 3 3\n3 40\n19 19 19",
"output": ">"
},
{
"input": "2 29\n11 11\n6 26\n11 11 11 11 11 11",
"output": "<"
},
{
"input": "5 3\n1 0 0 0 0\n4 27\n1 0 0 0",
"output": "<"
},
{
"input": "10 3\n1 0 0 0 0 0 0 0 0 0\n8 13\n1 0 0 0 0 0 0 0",
"output": "<"
},
{
"input": "4 20\n1 1 1 1\n5 22\n1 1 1 1 1",
"output": "<"
},
{
"input": "10 39\n34 2 24 34 11 6 33 12 22 21\n10 36\n25 35 17 24 30 0 1 32 14 35",
"output": ">"
},
{
"input": "10 39\n35 12 31 35 28 27 25 8 22 25\n10 40\n23 21 18 12 15 29 38 32 4 8",
"output": ">"
},
{
"input": "10 38\n16 19 37 32 16 7 14 33 16 11\n10 39\n10 27 35 15 31 15 17 16 38 35",
"output": ">"
},
{
"input": "10 39\n20 12 10 32 24 14 37 35 10 38\n9 40\n1 13 0 10 22 20 1 5 35",
"output": ">"
},
{
"input": "10 40\n18 1 2 25 28 2 10 2 17 37\n10 39\n37 8 12 8 21 11 23 11 25 21",
"output": "<"
},
{
"input": "9 39\n10 20 16 36 30 29 28 9 8\n9 38\n12 36 10 22 6 3 19 12 34",
"output": "="
},
{
"input": "7 39\n28 16 13 25 19 23 4\n7 38\n33 8 2 19 3 21 14",
"output": "="
},
{
"input": "10 16\n15 15 4 0 0 0 0 7 10 9\n10 9\n4 8 0 3 1 5 4 8 1 0",
"output": ">"
},
{
"input": "7 22\n1 13 9 16 7 13 3\n4 4\n3 0 2 1",
"output": ">"
},
{
"input": "10 29\n10 19 8 27 1 24 13 15 13 26\n2 28\n20 14",
"output": ">"
},
{
"input": "6 16\n2 13 7 13 15 6\n10 22\n17 17 21 9 16 11 4 4 13 17",
"output": "<"
},
{
"input": "8 26\n6 6 17 25 24 8 8 25\n4 27\n24 7 5 24",
"output": ">"
},
{
"input": "10 23\n5 21 4 15 12 7 10 7 16 21\n4 17\n3 11 1 14",
"output": ">"
},
{
"input": "10 21\n4 7 7 2 13 7 19 19 18 19\n3 31\n6 11 28",
"output": ">"
},
{
"input": "1 30\n9\n7 37\n20 11 18 14 0 36 27",
"output": "<"
},
{
"input": "5 35\n22 18 28 29 11\n2 3\n2 0",
"output": ">"
},
{
"input": "7 29\n14 26 14 22 11 11 8\n6 28\n2 12 10 17 0 14",
"output": ">"
},
{
"input": "2 37\n25 2\n3 26\n13 13 12",
"output": "<"
},
{
"input": "8 8\n4 0 4 3 4 1 5 6\n8 24\n19 8 15 6 10 7 2 18",
"output": "<"
},
{
"input": "4 22\n18 16 1 2\n10 26\n23 0 12 24 16 2 24 25 1 11",
"output": "<"
},
{
"input": "7 31\n14 6 16 6 26 18 17\n7 24\n22 10 4 5 14 6 9",
"output": ">"
},
{
"input": "10 29\n15 22 0 5 11 12 17 22 4 27\n4 22\n9 2 8 14",
"output": ">"
},
{
"input": "2 10\n6 0\n10 26\n16 14 8 18 24 4 9 5 22 25",
"output": "<"
},
{
"input": "7 2\n1 0 0 0 1 0 1\n9 6\n1 1 5 1 2 5 3 5 3",
"output": "<"
},
{
"input": "3 9\n2 5 4\n1 19\n15",
"output": ">"
},
{
"input": "6 16\n4 9 13 4 2 8\n4 10\n3 5 2 4",
"output": ">"
},
{
"input": "2 12\n1 4\n8 16\n4 4 10 6 15 10 8 15",
"output": "<"
},
{
"input": "3 19\n9 18 16\n4 10\n4 3 5 4",
"output": "<"
},
{
"input": "7 3\n1 1 2 1 2 0 2\n2 2\n1 0",
"output": ">"
},
{
"input": "3 2\n1 1 1\n1 3\n1",
"output": ">"
},
{
"input": "4 4\n1 3 1 3\n9 3\n1 1 0 1 2 2 2 2 1",
"output": "<"
},
{
"input": "9 3\n1 0 0 1 1 0 0 1 2\n6 4\n1 2 0 1 3 2",
"output": ">"
},
{
"input": "3 5\n1 1 3\n10 4\n3 3 2 3 0 0 0 3 1 1",
"output": "<"
},
{
"input": "6 4\n3 3 2 2 0 2\n6 5\n1 1 1 1 0 3",
"output": ">"
},
{
"input": "6 5\n4 4 4 3 1 3\n7 6\n4 2 2 2 5 0 4",
"output": "<"
},
{
"input": "2 5\n3 3\n6 6\n4 2 0 1 1 0",
"output": "<"
},
{
"input": "10 6\n3 5 4 2 4 2 3 5 4 2\n10 7\n3 2 1 1 3 1 0 3 4 5",
"output": "<"
},
{
"input": "9 7\n2 0 3 2 6 6 1 4 3\n9 6\n4 4 1 1 4 5 5 0 2",
"output": ">"
},
{
"input": "1 7\n2\n4 8\n3 2 3 2",
"output": "<"
},
{
"input": "2 8\n4 1\n1 7\n1",
"output": ">"
},
{
"input": "1 10\n7\n3 9\n2 1 7",
"output": "<"
},
{
"input": "9 9\n2 2 3 6 3 6 3 8 4\n6 10\n4 7 7 0 3 8",
"output": ">"
},
{
"input": "3 11\n6 5 2\n8 10\n5 0 1 8 3 5 1 4",
"output": "<"
},
{
"input": "6 11\n10 6 1 0 2 2\n9 10\n4 3 4 1 1 6 3 4 1",
"output": "<"
},
{
"input": "2 19\n4 8\n8 18\n7 8 6 8 4 11 9 1",
"output": "<"
},
{
"input": "2 24\n20 9\n10 23\n21 10 15 11 6 8 20 16 14 11",
"output": "<"
},
{
"input": "8 36\n23 5 27 1 10 7 26 27\n10 35\n28 33 9 22 10 28 26 4 27 29",
"output": "<"
},
{
"input": "6 37\n22 15 14 10 1 8\n6 36\n18 5 28 10 1 17",
"output": ">"
},
{
"input": "5 38\n1 31 2 21 21\n9 37\n8 36 32 30 13 9 24 2 35",
"output": "<"
},
{
"input": "3 39\n27 4 3\n8 38\n32 15 11 34 35 27 30 15",
"output": "<"
},
{
"input": "2 40\n22 38\n5 39\n8 9 32 4 1",
"output": "<"
},
{
"input": "9 37\n1 35 7 33 20 21 26 24 5\n10 40\n39 4 11 9 33 12 26 32 11 8",
"output": "<"
},
{
"input": "4 39\n13 25 23 35\n6 38\n19 36 20 4 12 33",
"output": "<"
},
{
"input": "5 37\n29 29 5 7 27\n3 39\n13 1 10",
"output": ">"
},
{
"input": "7 28\n1 10 7 0 13 14 11\n6 38\n8 11 27 5 14 35",
"output": "="
},
{
"input": "2 34\n1 32\n2 33\n2 0",
"output": "="
},
{
"input": "7 5\n4 0 4 1 3 0 4\n4 35\n1 18 7 34",
"output": "="
},
{
"input": "9 34\n5 8 4 4 26 1 30 5 24\n10 27\n1 6 3 10 8 13 22 3 12 8",
"output": "="
},
{
"input": "10 36\n1 13 13 23 31 35 5 32 18 21\n9 38\n32 1 20 14 12 37 13 15 23",
"output": "="
},
{
"input": "10 40\n1 1 14 5 6 3 3 11 3 25\n10 39\n1 11 24 33 25 34 38 29 27 33",
"output": "="
},
{
"input": "9 37\n2 6 1 9 19 6 11 28 35\n9 40\n1 6 14 37 1 8 31 4 9",
"output": "="
},
{
"input": "4 5\n1 4 2 0\n4 4\n3 2 2 3",
"output": "="
},
{
"input": "6 4\n1 1 1 2 2 2\n7 3\n1 2 2 0 1 0 0",
"output": "="
},
{
"input": "2 5\n3 3\n5 2\n1 0 0 1 0",
"output": "="
},
{
"input": "1 9\n2\n1 10\n2",
"output": "="
},
{
"input": "6 19\n4 9 14 1 3 1\n8 10\n1 1 1 7 3 7 3 0",
"output": "="
},
{
"input": "7 15\n8 5 8 10 13 6 13\n8 13\n1 6 9 10 12 3 12 8",
"output": "="
},
{
"input": "8 18\n1 1 4 15 7 4 9 3\n8 17\n1 10 2 10 3 11 14 10",
"output": "="
},
{
"input": "8 21\n5 19 0 14 13 13 10 5\n10 13\n1 0 0 6 11 10 8 2 8 1",
"output": "="
},
{
"input": "8 28\n3 1 10 19 10 14 21 15\n8 21\n14 0 18 13 2 1 18 6",
"output": ">"
},
{
"input": "7 34\n21 22 28 16 30 4 27\n7 26\n5 13 21 10 8 12 10",
"output": ">"
},
{
"input": "6 26\n7 6 4 18 6 1\n6 25\n5 3 11 1 8 15",
"output": ">"
},
{
"input": "10 31\n6 27 17 22 14 16 25 9 13 26\n10 39\n6 1 3 26 12 32 28 19 9 19",
"output": "<"
},
{
"input": "3 5\n2 2 3\n3 6\n4 3 5",
"output": "<"
},
{
"input": "2 24\n4 18\n2 40\n29 24",
"output": "<"
},
{
"input": "5 38\n2 24 34 14 17\n8 34\n4 24 31 2 14 15 8 15",
"output": "<"
},
{
"input": "9 40\n39 39 39 39 39 39 39 39 39\n6 35\n34 34 34 34 34 34",
"output": ">"
},
{
"input": "10 40\n39 39 39 39 39 39 39 39 39 39\n10 8\n7 7 7 7 7 7 7 7 7 7",
"output": ">"
},
{
"input": "10 40\n39 39 39 39 39 39 39 39 39 39\n10 39\n38 38 38 38 38 38 38 38 38 38",
"output": ">"
}
] | 1,448,383,299
| 399
|
Python 3
|
OK
|
TESTS
| 118
| 62
| 0
|
# import sys
# sys.stdin = open('cf602a.in')
n, bx = map(int, input().split())
x = list(map(int, input().split()))
m, by = map(int, input().split())
y = list(map(int, input().split()))
xx = sum(v * bx**(len(x) - i - 1) for i, v in enumerate(x))
yy = sum(v * by**(len(y) - i - 1) for i, v in enumerate(y))
if xx < yy:
print('<')
elif xx == yy:
print('=')
else:
print('>')
|
Title: Two Bases
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
After seeing the "ALL YOUR BASE ARE BELONG TO US" meme for the first time, numbers *X* and *Y* realised that they have different bases, which complicated their relations.
You're given a number *X* represented in base *b**x* and a number *Y* represented in base *b**y*. Compare those two numbers.
Input Specification:
The first line of the input contains two space-separated integers *n* and *b**x* (1<=β€<=*n*<=β€<=10, 2<=β€<=*b**x*<=β€<=40), where *n* is the number of digits in the *b**x*-based representation of *X*.
The second line contains *n* space-separated integers *x*1,<=*x*2,<=...,<=*x**n* (0<=β€<=*x**i*<=<<=*b**x*) β the digits of *X*. They are given in the order from the most significant digit to the least significant one.
The following two lines describe *Y* in the same way: the third line contains two space-separated integers *m* and *b**y* (1<=β€<=*m*<=β€<=10, 2<=β€<=*b**y*<=β€<=40, *b**x*<=β <=*b**y*), where *m* is the number of digits in the *b**y*-based representation of *Y*, and the fourth line contains *m* space-separated integers *y*1,<=*y*2,<=...,<=*y**m* (0<=β€<=*y**i*<=<<=*b**y*) β the digits of *Y*.
There will be no leading zeroes. Both *X* and *Y* will be positive. All digits of both numbers are given in the standard decimal numeral system.
Output Specification:
Output a single character (quotes for clarity):
- '<' if *X*<=<<=*Y* - '>' if *X*<=><=*Y* - '=' if *X*<==<=*Y*
Demo Input:
['6 2\n1 0 1 1 1 1\n2 10\n4 7\n', '3 3\n1 0 2\n2 5\n2 4\n', '7 16\n15 15 4 0 0 7 10\n7 9\n4 8 0 3 1 5 0\n']
Demo Output:
['=\n', '<\n', '>\n']
Note:
In the first sample, *X*β=β101111<sub class="lower-index">2</sub>β=β47<sub class="lower-index">10</sub>β=β*Y*.
In the second sample, *X*β=β102<sub class="lower-index">3</sub>β=β21<sub class="lower-index">5</sub> and *Y*β=β24<sub class="lower-index">5</sub>β=β112<sub class="lower-index">3</sub>, thus *X*β<β*Y*.
In the third sample, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/603a342b0ae3e56fed542d1c50c0a5ff6ce2cbaa.png" style="max-width: 100.0%;max-height: 100.0%;"/> and *Y*β=β4803150<sub class="lower-index">9</sub>. We may notice that *X* starts with much larger digits and *b*<sub class="lower-index">*x*</sub> is much larger than *b*<sub class="lower-index">*y*</sub>, so *X* is clearly larger than *Y*.
|
```python
# import sys
# sys.stdin = open('cf602a.in')
n, bx = map(int, input().split())
x = list(map(int, input().split()))
m, by = map(int, input().split())
y = list(map(int, input().split()))
xx = sum(v * bx**(len(x) - i - 1) for i, v in enumerate(x))
yy = sum(v * by**(len(y) - i - 1) for i, v in enumerate(y))
if xx < yy:
print('<')
elif xx == yy:
print('=')
else:
print('>')
```
| 3
|
|
556
|
A
|
Case of the Zeros and Ones
|
PROGRAMMING
| 900
|
[
"greedy"
] | null | null |
Andrewid the Android is a galaxy-famous detective. In his free time he likes to think about strings containing zeros and ones.
Once he thought about a string of length *n* consisting of zeroes and ones. Consider the following operation: we choose any two adjacent positions in the string, and if one them contains 0, and the other contains 1, then we are allowed to remove these two digits from the string, obtaining a string of length *n*<=-<=2 as a result.
Now Andreid thinks about what is the minimum length of the string that can remain after applying the described operation several times (possibly, zero)? Help him to calculate this number.
|
First line of the input contains a single integer *n* (1<=β€<=*n*<=β€<=2Β·105), the length of the string that Andreid has.
The second line contains the string of length *n* consisting only from zeros and ones.
|
Output the minimum length of the string that may remain after applying the described operations several times.
|
[
"4\n1100\n",
"5\n01010\n",
"8\n11101111\n"
] |
[
"0\n",
"1\n",
"6\n"
] |
In the first sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/10df55364c21c6e8d5da31b6ab6f6294c4fc26b3.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the second sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/19ec5dcd85f0b5cf757aa076ace72df39634de2d.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the third sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/dc34a159e4230375fa325555527ebc748811f188.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
| 250
|
[
{
"input": "4\n1100",
"output": "0"
},
{
"input": "5\n01010",
"output": "1"
},
{
"input": "8\n11101111",
"output": "6"
},
{
"input": "1\n0",
"output": "1"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "2\n00",
"output": "2"
},
{
"input": "2\n01",
"output": "0"
},
{
"input": "2\n10",
"output": "0"
},
{
"input": "2\n11",
"output": "2"
},
{
"input": "3\n001",
"output": "1"
},
{
"input": "6\n110110",
"output": "2"
},
{
"input": "7\n0000011",
"output": "3"
},
{
"input": "6\n110010",
"output": "0"
},
{
"input": "6\n110100",
"output": "0"
},
{
"input": "3\n100",
"output": "1"
},
{
"input": "6\n010111",
"output": "2"
},
{
"input": "8\n01011100",
"output": "0"
},
{
"input": "6\n001011",
"output": "0"
},
{
"input": "7\n1110000",
"output": "1"
},
{
"input": "9\n011111101",
"output": "5"
}
] | 1,676,703,388
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 49
| 109
| 409,600
|
n = int(input())
s = input()
ans = 0
for i in s:
ans = ans + int(i)*2 - 1
print(abs(ans))
|
Title: Case of the Zeros and Ones
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Andrewid the Android is a galaxy-famous detective. In his free time he likes to think about strings containing zeros and ones.
Once he thought about a string of length *n* consisting of zeroes and ones. Consider the following operation: we choose any two adjacent positions in the string, and if one them contains 0, and the other contains 1, then we are allowed to remove these two digits from the string, obtaining a string of length *n*<=-<=2 as a result.
Now Andreid thinks about what is the minimum length of the string that can remain after applying the described operation several times (possibly, zero)? Help him to calculate this number.
Input Specification:
First line of the input contains a single integer *n* (1<=β€<=*n*<=β€<=2Β·105), the length of the string that Andreid has.
The second line contains the string of length *n* consisting only from zeros and ones.
Output Specification:
Output the minimum length of the string that may remain after applying the described operations several times.
Demo Input:
['4\n1100\n', '5\n01010\n', '8\n11101111\n']
Demo Output:
['0\n', '1\n', '6\n']
Note:
In the first sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/10df55364c21c6e8d5da31b6ab6f6294c4fc26b3.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the second sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/19ec5dcd85f0b5cf757aa076ace72df39634de2d.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the third sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/dc34a159e4230375fa325555527ebc748811f188.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
|
```python
n = int(input())
s = input()
ans = 0
for i in s:
ans = ans + int(i)*2 - 1
print(abs(ans))
```
| 3
|
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