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A
Young Physicist
PROGRAMMING
1,000
[ "implementation", "math" ]
A. Young Physicist
2
256
A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces.
The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100).
Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not.
[ "3\n4 1 7\n-2 4 -1\n1 -5 -3\n", "3\n3 -1 7\n-5 2 -4\n2 -1 -3\n" ]
[ "NO", "YES" ]
none
500
[ { "input": "3\n4 1 7\n-2 4 -1\n1 -5 -3", "output": "NO" }, { "input": "3\n3 -1 7\n-5 2 -4\n2 -1 -3", "output": "YES" }, { "input": "10\n21 32 -46\n43 -35 21\n42 2 -50\n22 40 20\n-27 -9 38\n-4 1 1\n-40 6 -31\n-13 -2 34\n-21 34 -12\n-32 -29 41", "output": "NO" }, { "input": "10\n25 -33 43\n-27 -42 28\n-35 -20 19\n41 -42 -1\n49 -39 -4\n-49 -22 7\n-19 29 41\n8 -27 -43\n8 34 9\n-11 -3 33", "output": "NO" }, { "input": "10\n-6 21 18\n20 -11 -8\n37 -11 41\n-5 8 33\n29 23 32\n30 -33 -11\n39 -49 -36\n28 34 -49\n22 29 -34\n-18 -6 7", "output": "NO" }, { "input": "10\n47 -2 -27\n0 26 -14\n5 -12 33\n2 18 3\n45 -30 -49\n4 -18 8\n-46 -44 -41\n-22 -10 -40\n-35 -21 26\n33 20 38", "output": "NO" }, { "input": "13\n-3 -36 -46\n-11 -50 37\n42 -11 -15\n9 42 44\n-29 -12 24\n3 9 -40\n-35 13 50\n14 43 18\n-13 8 24\n-48 -15 10\n50 9 -50\n21 0 -50\n0 0 -6", "output": "YES" }, { "input": "14\n43 23 17\n4 17 44\n5 -5 -16\n-43 -7 -6\n47 -48 12\n50 47 -45\n2 14 43\n37 -30 15\n4 -17 -11\n17 9 -45\n-50 -3 -8\n-50 0 0\n-50 0 0\n-16 0 0", "output": "YES" }, { "input": "13\n29 49 -11\n38 -11 -20\n25 1 -40\n-11 28 11\n23 -19 1\n45 -41 -17\n-3 0 -19\n-13 -33 49\n-30 0 28\n34 17 45\n-50 9 -27\n-50 0 0\n-37 0 0", "output": "YES" }, { "input": "12\n3 28 -35\n-32 -44 -17\n9 -25 -6\n-42 -22 20\n-19 15 38\n-21 38 48\n-1 -37 -28\n-10 -13 -50\n-5 21 29\n34 28 50\n50 11 -49\n34 0 0", "output": "YES" }, { "input": "37\n-64 -79 26\n-22 59 93\n-5 39 -12\n77 -9 76\n55 -86 57\n83 100 -97\n-70 94 84\n-14 46 -94\n26 72 35\n14 78 -62\n17 82 92\n-57 11 91\n23 15 92\n-80 -1 1\n12 39 18\n-23 -99 -75\n-34 50 19\n-39 84 -7\n45 -30 -39\n-60 49 37\n45 -16 -72\n33 -51 -56\n-48 28 5\n97 91 88\n45 -82 -11\n-21 -15 -90\n-53 73 -26\n-74 85 -90\n-40 23 38\n100 -13 49\n32 -100 -100\n0 -100 -70\n0 -100 0\n0 -100 0\n0 -100 0\n0 -100 0\n0 -37 0", "output": "YES" }, { "input": "4\n68 3 100\n68 21 -100\n-100 -24 0\n-36 0 0", "output": "YES" }, { "input": "33\n-1 -46 -12\n45 -16 -21\n-11 45 -21\n-60 -42 -93\n-22 -45 93\n37 96 85\n-76 26 83\n-4 9 55\n7 -52 -9\n66 8 -85\n-100 -54 11\n-29 59 74\n-24 12 2\n-56 81 85\n-92 69 -52\n-26 -97 91\n54 59 -51\n58 21 -57\n7 68 56\n-47 -20 -51\n-59 77 -13\n-85 27 91\n79 60 -56\n66 -80 5\n21 -99 42\n-31 -29 98\n66 93 76\n-49 45 61\n100 -100 -100\n100 -100 -100\n66 -75 -100\n0 0 -100\n0 0 -87", "output": "YES" }, { "input": "3\n1 2 3\n3 2 1\n0 0 0", "output": "NO" }, { "input": "2\n5 -23 12\n0 0 0", "output": "NO" }, { "input": "1\n0 0 0", "output": "YES" }, { "input": "1\n1 -2 0", "output": "NO" }, { "input": "2\n-23 77 -86\n23 -77 86", "output": "YES" }, { "input": "26\n86 7 20\n-57 -64 39\n-45 6 -93\n-44 -21 100\n-11 -49 21\n73 -71 -80\n-2 -89 56\n-65 -2 7\n5 14 84\n57 41 13\n-12 69 54\n40 -25 27\n-17 -59 0\n64 -91 -30\n-53 9 42\n-54 -8 14\n-35 82 27\n-48 -59 -80\n88 70 79\n94 57 97\n44 63 25\n84 -90 -40\n-100 100 -100\n-92 100 -100\n0 10 -100\n0 0 -82", "output": "YES" }, { "input": "42\n11 27 92\n-18 -56 -57\n1 71 81\n33 -92 30\n82 83 49\n-87 -61 -1\n-49 45 49\n73 26 15\n-22 22 -77\n29 -93 87\n-68 44 -90\n-4 -84 20\n85 67 -6\n-39 26 77\n-28 -64 20\n65 -97 24\n-72 -39 51\n35 -75 -91\n39 -44 -8\n-25 -27 -57\n91 8 -46\n-98 -94 56\n94 -60 59\n-9 -95 18\n-53 -37 98\n-8 -94 -84\n-52 55 60\n15 -14 37\n65 -43 -25\n94 12 66\n-8 -19 -83\n29 81 -78\n-58 57 33\n24 86 -84\n-53 32 -88\n-14 7 3\n89 97 -53\n-5 -28 -91\n-100 100 -6\n-84 100 0\n0 100 0\n0 70 0", "output": "YES" }, { "input": "3\n96 49 -12\n2 -66 28\n-98 17 -16", "output": "YES" }, { "input": "5\n70 -46 86\n-100 94 24\n-27 63 -63\n57 -100 -47\n0 -11 0", "output": "YES" }, { "input": "18\n-86 -28 70\n-31 -89 42\n31 -48 -55\n95 -17 -43\n24 -95 -85\n-21 -14 31\n68 -18 81\n13 31 60\n-15 28 99\n-42 15 9\n28 -61 -62\n-16 71 29\n-28 75 -48\n-77 -67 36\n-100 83 89\n100 100 -100\n57 34 -100\n0 0 -53", "output": "YES" }, { "input": "44\n52 -54 -29\n-82 -5 -94\n-54 43 43\n91 16 71\n7 80 -91\n3 15 29\n-99 -6 -77\n-3 -77 -64\n73 67 34\n25 -10 -18\n-29 91 63\n-72 86 -16\n-68 85 -81\n-3 36 44\n-74 -14 -80\n34 -96 -97\n-76 -78 -33\n-24 44 -58\n98 12 77\n95 -63 -6\n-51 3 -90\n-92 -10 72\n7 3 -68\n57 -53 71\n29 57 -48\n35 -60 10\n79 -70 -61\n-20 77 55\n-86 -15 -35\n84 -88 -18\n100 -42 77\n-20 46 8\n-41 -43 -65\n38 -98 -23\n-100 65 45\n-7 -91 -63\n46 88 -85\n48 59 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 1", "output": "YES" }, { "input": "18\n-14 -64 -91\n-8 -66 -86\n-23 92 -40\n6 -3 -53\n57 41 78\n-79 42 -22\n-88 -17 45\n4 -45 44\n83 -18 -25\n34 86 -92\n75 -30 12\n44 99 11\n-67 -13 72\n22 83 -56\n-37 71 72\n-9 -100 100\n0 -100 31\n0 -58 0", "output": "YES" }, { "input": "23\n-70 37 78\n42 84 6\n28 -94 -24\n-49 76 95\n-67 18 84\n-53 78 -5\n65 -63 -64\n-66 -64 -69\n81 -93 95\n10 52 -79\n-89 -61 -64\n-64 -47 43\n-81 -35 55\n80 82 73\n-60 -81 -18\n49 -10 -19\n-58 70 12\n-24 -15 -93\n98 -93 -54\n-28 -75 11\n100 100 -63\n100 100 0\n56 34 0", "output": "YES" }, { "input": "3\n0 2 -2\n1 -1 3\n-3 0 0", "output": "NO" } ]
1,605,591,139
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
2
186
0
n = int(input()) a = [0]*n for i in range(n): b = list(map(int, input().split())) a = [a[i]+b[i] for i in range(n)] print('YES' if set(a)=={0} else 'NO')
Title: Young Physicist Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces. Input Specification: The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100). Output Specification: Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not. Demo Input: ['3\n4 1 7\n-2 4 -1\n1 -5 -3\n', '3\n3 -1 7\n-5 2 -4\n2 -1 -3\n'] Demo Output: ['NO', 'YES'] Note: none
```python n = int(input()) a = [0]*n for i in range(n): b = list(map(int, input().split())) a = [a[i]+b[i] for i in range(n)] print('YES' if set(a)=={0} else 'NO') ```
-1
41
A
Translation
PROGRAMMING
800
[ "implementation", "strings" ]
A. Translation
2
256
The translation from the Berland language into the Birland language is not an easy task. Those languages are very similar: a berlandish word differs from a birlandish word with the same meaning a little: it is spelled (and pronounced) reversely. For example, a Berlandish word code corresponds to a Birlandish word edoc. However, it's easy to make a mistake during the «translation». Vasya translated word *s* from Berlandish into Birlandish as *t*. Help him: find out if he translated the word correctly.
The first line contains word *s*, the second line contains word *t*. The words consist of lowercase Latin letters. The input data do not consist unnecessary spaces. The words are not empty and their lengths do not exceed 100 symbols.
If the word *t* is a word *s*, written reversely, print YES, otherwise print NO.
[ "code\nedoc\n", "abb\naba\n", "code\ncode\n" ]
[ "YES\n", "NO\n", "NO\n" ]
none
500
[ { "input": "code\nedoc", "output": "YES" }, { "input": "abb\naba", "output": "NO" }, { "input": "code\ncode", "output": "NO" }, { "input": "abacaba\nabacaba", "output": "YES" }, { "input": "q\nq", "output": "YES" }, { "input": "asrgdfngfnmfgnhweratgjkk\nasrgdfngfnmfgnhweratgjkk", "output": "NO" }, { "input": "z\na", "output": "NO" }, { "input": "asd\ndsa", "output": "YES" }, { "input": "abcdef\nfecdba", "output": "NO" }, { "input": "ywjjbirapvskozubvxoemscfwl\ngnduubaogtfaiowjizlvjcu", "output": "NO" }, { "input": "mfrmqxtzvgaeuleubcmcxcfqyruwzenguhgrmkuhdgnhgtgkdszwqyd\nmfxufheiperjnhyczclkmzyhcxntdfskzkzdwzzujdinf", "output": "NO" }, { "input": "bnbnemvybqizywlnghlykniaxxxlkhftppbdeqpesrtgkcpoeqowjwhrylpsziiwcldodcoonpimudvrxejjo\ntiynnekmlalogyvrgptbinkoqdwzuiyjlrldxhzjmmp", "output": "NO" }, { "input": "pwlpubwyhzqvcitemnhvvwkmwcaawjvdiwtoxyhbhbxerlypelevasmelpfqwjk\nstruuzebbcenziscuoecywugxncdwzyfozhljjyizpqcgkyonyetarcpwkqhuugsqjuixsxptmbnlfupdcfigacdhhrzb", "output": "NO" }, { "input": "gdvqjoyxnkypfvdxssgrihnwxkeojmnpdeobpecytkbdwujqfjtxsqspxvxpqioyfagzjxupqqzpgnpnpxcuipweunqch\nkkqkiwwasbhezqcfeceyngcyuogrkhqecwsyerdniqiocjehrpkljiljophqhyaiefjpavoom", "output": "NO" }, { "input": "umeszdawsvgkjhlqwzents\nhxqhdungbylhnikwviuh", "output": "NO" }, { "input": "juotpscvyfmgntshcealgbsrwwksgrwnrrbyaqqsxdlzhkbugdyx\nibqvffmfktyipgiopznsqtrtxiijntdbgyy", "output": "NO" }, { "input": "zbwueheveouatecaglziqmudxemhrsozmaujrwlqmppzoumxhamwugedikvkblvmxwuofmpafdprbcftew\nulczwrqhctbtbxrhhodwbcxwimncnexosksujlisgclllxokrsbnozthajnnlilyffmsyko", "output": "NO" }, { "input": "nkgwuugukzcv\nqktnpxedwxpxkrxdvgmfgoxkdfpbzvwsduyiybynbkouonhvmzakeiruhfmvrktghadbfkmwxduoqv", "output": "NO" }, { "input": "incenvizhqpcenhjhehvjvgbsnfixbatrrjstxjzhlmdmxijztphxbrldlqwdfimweepkggzcxsrwelodpnryntepioqpvk\ndhjbjjftlvnxibkklxquwmzhjfvnmwpapdrslioxisbyhhfymyiaqhlgecpxamqnocizwxniubrmpyubvpenoukhcobkdojlybxd", "output": "NO" }, { "input": "w\nw", "output": "YES" }, { "input": "vz\nzv", "output": "YES" }, { "input": "ry\nyr", "output": "YES" }, { "input": "xou\nuox", "output": "YES" }, { "input": "axg\ngax", "output": "NO" }, { "input": "zdsl\nlsdz", "output": "YES" }, { "input": "kudl\nldku", "output": "NO" }, { "input": "zzlzwnqlcl\nlclqnwzlzz", "output": "YES" }, { "input": "vzzgicnzqooejpjzads\nsdazjpjeooqzncigzzv", "output": "YES" }, { "input": "raqhmvmzuwaykjpyxsykr\nxkysrypjkyawuzmvmhqar", "output": "NO" }, { "input": "ngedczubzdcqbxksnxuavdjaqtmdwncjnoaicvmodcqvhfezew\nwezefhvqcdomvciaonjcnwdmtqajdvauxnskxbqcdzbuzcdegn", "output": "YES" }, { "input": "muooqttvrrljcxbroizkymuidvfmhhsjtumksdkcbwwpfqdyvxtrlymofendqvznzlmim\nmimlznzvqdnefomylrtxvydqfpwwbckdskmutjshhmfvdiumykziorbxcjlrrvttqooum", "output": "YES" }, { "input": "vxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaivg\ngviayyikkitmuomcpiakhbxszgbnhvwyzkftwoagzixaearxpjacrnvpvbuzenvovehkmmxvblqyxvctroddksdsgebcmlluqpxv", "output": "YES" }, { "input": "mnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfdc\ncdfmkdgrdptkpewbsqvszipgxvgvuiuzbkkwuowbafkikgvnqdkxnayzdjygvezmtsgywnupocdntipiyiorblqkrzjpzatxahnm", "output": "NO" }, { "input": "dgxmzbqofstzcdgthbaewbwocowvhqpinehpjatnnbrijcolvsatbblsrxabzrpszoiecpwhfjmwuhqrapvtcgvikuxtzbftydkw\nwkdytfbztxukivgctvparqhuwmjfhwpceiozsprzbaxrslbbqasvlocjirbnntajphenipthvwocowbweabhtgdcztsfoqbzmxgd", "output": "NO" }, { "input": "gxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwgeh\nhegwxvocotmzstqfbmpjvijgkcyodlxyjawrpkczpmdspsuhoiruavnnnuwvtwohglkdxjetshkboalvzqbgjgthoteceixioxg", "output": "YES" }, { "input": "sihxuwvmaambplxvjfoskinghzicyfqebjtkysotattkahssumfcgrkheotdxwjckpvapbkaepqrxseyfrwtyaycmrzsrsngkh\nhkgnsrszrmcyaytwrfyesxrqpeakbpavpkcjwxdtoehkrgcfmusshakttatosyktjbeqfycizhgniksofjvxlpbmaamvwuxhis", "output": "YES" }, { "input": "ycnahksbughnonldzrhkysujmylcgcfuludjvjiahtkyzqvkopzqcnwhltbzfugzojqkjjlggmvnultascmygelkiktmfieok\nkoeifmtkiklegkmcsatlunvmggkjjlqjozgufzbtlhwncqzpokvqzykthaijvjdulufcgclymjusyyhrzdlnonhgubskhancy", "output": "NO" }, { "input": "wbqasaehtkfojruzyhrlgwmtyiovmzyfifslvlemhqheyaelzwnthrenjsbmntwaoryzwfbxmscmypvxlfmzpnkkjlvwvmtz\nztmvwvljkknpzmflxvpymcsmxbfwzyroawtnmbsjnerhtnwzleayehqhmelvlsfifyzmvoiytmwglrhyzurjofktheasaqbw", "output": "YES" }, { "input": "imippqurprbhfugngtgifelytadegwrgaefnfhbjjnmzikvjaccotqzemufqieqldgnbmviisgkynzeldlhqxuqphjfmyij\njiymfjhpquxqhldleznykgsiivmbngdlqeiqfumezqtoccajvkizmnjjbhfnfeagrwgedatylefigtgngufhbrpruqppimi", "output": "YES" }, { "input": "bikydffiuisckpvzqlteqfhegsagimodb\nbdomigasgehfqetlqzvpkcsiuiffdykib", "output": "YES" } ]
1,657,310,287
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
60
0
txt_1 = input() txt_2 = input() if txt_2[0:] == txt_1[-1:]: print('YES') else: print('NO')
Title: Translation Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: The translation from the Berland language into the Birland language is not an easy task. Those languages are very similar: a berlandish word differs from a birlandish word with the same meaning a little: it is spelled (and pronounced) reversely. For example, a Berlandish word code corresponds to a Birlandish word edoc. However, it's easy to make a mistake during the «translation». Vasya translated word *s* from Berlandish into Birlandish as *t*. Help him: find out if he translated the word correctly. Input Specification: The first line contains word *s*, the second line contains word *t*. The words consist of lowercase Latin letters. The input data do not consist unnecessary spaces. The words are not empty and their lengths do not exceed 100 symbols. Output Specification: If the word *t* is a word *s*, written reversely, print YES, otherwise print NO. Demo Input: ['code\nedoc\n', 'abb\naba\n', 'code\ncode\n'] Demo Output: ['YES\n', 'NO\n', 'NO\n'] Note: none
```python txt_1 = input() txt_2 = input() if txt_2[0:] == txt_1[-1:]: print('YES') else: print('NO') ```
0
279
B
Books
PROGRAMMING
1,400
[ "binary search", "brute force", "implementation", "two pointers" ]
null
null
When Valera has got some free time, he goes to the library to read some books. Today he's got *t* free minutes to read. That's why Valera took *n* books in the library and for each book he estimated the time he is going to need to read it. Let's number the books by integers from 1 to *n*. Valera needs *a**i* minutes to read the *i*-th book. Valera decided to choose an arbitrary book with number *i* and read the books one by one, starting from this book. In other words, he will first read book number *i*, then book number *i*<=+<=1, then book number *i*<=+<=2 and so on. He continues the process until he either runs out of the free time or finishes reading the *n*-th book. Valera reads each book up to the end, that is, he doesn't start reading the book if he doesn't have enough free time to finish reading it. Print the maximum number of books Valera can read.
The first line contains two integers *n* and *t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*t*<=≤<=109) — the number of books and the number of free minutes Valera's got. The second line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=104), where number *a**i* shows the number of minutes that the boy needs to read the *i*-th book.
Print a single integer — the maximum number of books Valera can read.
[ "4 5\n3 1 2 1\n", "3 3\n2 2 3\n" ]
[ "3\n", "1\n" ]
none
1,000
[ { "input": "4 5\n3 1 2 1", "output": "3" }, { "input": "3 3\n2 2 3", "output": "1" }, { "input": "1 3\n5", "output": "0" }, { "input": "1 10\n4", "output": "1" }, { "input": "2 10\n6 4", "output": "2" }, { "input": "6 10\n2 3 4 2 1 1", "output": "4" }, { "input": "7 13\n6 8 14 9 4 11 10", "output": "2" }, { "input": "10 15\n10 9 1 1 5 10 5 3 7 2", "output": "3" }, { "input": "20 30\n8 1 2 6 9 4 1 9 9 10 4 7 8 9 5 7 1 8 7 4", "output": "6" }, { "input": "30 60\n16 13 22 38 13 35 17 17 20 38 12 19 9 22 20 3 35 34 34 21 35 40 22 3 27 19 12 4 8 19", "output": "4" }, { "input": "100 100\n75 92 18 6 81 67 7 92 100 65 82 32 50 67 85 31 80 91 84 63 39 52 92 81 1 98 24 12 43 48 17 86 51 72 48 95 45 50 12 66 19 79 49 89 34 1 97 75 20 33 96 27 42 23 73 71 93 1 85 19 66 14 17 61 20 39 36 33 42 61 56 64 23 91 80 99 40 74 13 18 98 85 74 39 62 84 46 74 50 23 38 11 79 14 9 25 66 100 25 52", "output": "3" }, { "input": "10 1\n4418 7528 8170 1736 1317 3205 8183 4995 8039 4708", "output": "0" }, { "input": "50 2\n124 214 63 73 996 760 38 571 451 300 970 1 706 937 837 494 619 88 851 411 957 990 842 613 821 649 627 34 693 678 734 116 816 985 705 940 499 493 922 967 854 439 112 644 961 438 189 572 655 550", "output": "1" } ]
1,691,814,329
2,147,483,647
Python 3
OK
TESTS
38
216
13,824,000
def max_books(n, t, books): left = 0 max_books_read = 0 total_time = 0 for right in range(n): total_time += books[right] while total_time > t: total_time -= books[left] left += 1 max_books_read = max(max_books_read, right - left + 1) return max_books_read n, t = map(int, input().split()) books = list(map(int, input().split())) result = max_books(n, t, books) print(result) #cal
Title: Books Time Limit: None seconds Memory Limit: None megabytes Problem Description: When Valera has got some free time, he goes to the library to read some books. Today he's got *t* free minutes to read. That's why Valera took *n* books in the library and for each book he estimated the time he is going to need to read it. Let's number the books by integers from 1 to *n*. Valera needs *a**i* minutes to read the *i*-th book. Valera decided to choose an arbitrary book with number *i* and read the books one by one, starting from this book. In other words, he will first read book number *i*, then book number *i*<=+<=1, then book number *i*<=+<=2 and so on. He continues the process until he either runs out of the free time or finishes reading the *n*-th book. Valera reads each book up to the end, that is, he doesn't start reading the book if he doesn't have enough free time to finish reading it. Print the maximum number of books Valera can read. Input Specification: The first line contains two integers *n* and *t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*t*<=≤<=109) — the number of books and the number of free minutes Valera's got. The second line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=104), where number *a**i* shows the number of minutes that the boy needs to read the *i*-th book. Output Specification: Print a single integer — the maximum number of books Valera can read. Demo Input: ['4 5\n3 1 2 1\n', '3 3\n2 2 3\n'] Demo Output: ['3\n', '1\n'] Note: none
```python def max_books(n, t, books): left = 0 max_books_read = 0 total_time = 0 for right in range(n): total_time += books[right] while total_time > t: total_time -= books[left] left += 1 max_books_read = max(max_books_read, right - left + 1) return max_books_read n, t = map(int, input().split()) books = list(map(int, input().split())) result = max_books(n, t, books) print(result) #cal ```
3
251
A
Points on Line
PROGRAMMING
1,300
[ "binary search", "combinatorics", "two pointers" ]
null
null
Little Petya likes points a lot. Recently his mom has presented him *n* points lying on the line *OX*. Now Petya is wondering in how many ways he can choose three distinct points so that the distance between the two farthest of them doesn't exceed *d*. Note that the order of the points inside the group of three chosen points doesn't matter.
The first line contains two integers: *n* and *d* (1<=≤<=*n*<=≤<=105; 1<=≤<=*d*<=≤<=109). The next line contains *n* integers *x*1,<=*x*2,<=...,<=*x**n*, their absolute value doesn't exceed 109 — the *x*-coordinates of the points that Petya has got. It is guaranteed that the coordinates of the points in the input strictly increase.
Print a single integer — the number of groups of three points, where the distance between two farthest points doesn't exceed *d*. Please do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier.
[ "4 3\n1 2 3 4\n", "4 2\n-3 -2 -1 0\n", "5 19\n1 10 20 30 50\n" ]
[ "4\n", "2\n", "1\n" ]
In the first sample any group of three points meets our conditions. In the seconds sample only 2 groups of three points meet our conditions: {-3, -2, -1} and {-2, -1, 0}. In the third sample only one group does: {1, 10, 20}.
500
[ { "input": "4 3\n1 2 3 4", "output": "4" }, { "input": "4 2\n-3 -2 -1 0", "output": "2" }, { "input": "5 19\n1 10 20 30 50", "output": "1" }, { "input": "10 5\n31 36 43 47 48 50 56 69 71 86", "output": "2" }, { "input": "10 50\n1 4 20 27 65 79 82 83 99 100", "output": "25" }, { "input": "10 90\n24 27 40 41 61 69 73 87 95 97", "output": "120" }, { "input": "100 100\n-98 -97 -96 -93 -92 -91 -90 -87 -86 -84 -81 -80 -79 -78 -76 -75 -73 -71 -69 -67 -65 -64 -63 -62 -61 -54 -51 -50 -49 -48 -46 -45 -44 -37 -36 -33 -30 -28 -27 -16 -15 -13 -12 -10 -9 -7 -6 -5 -4 2 3 5 8 9 10 11 13 14 15 16 17 19 22 24 25 26 27 28 30 31 32 36 40 43 45 46 47 50 51 52 53 58 60 63 69 70 73 78 80 81 82 85 88 89 90 91 95 96 97 99", "output": "79351" }, { "input": "1 14751211\n847188590", "output": "0" }, { "input": "2 1000000000\n-907894512 -289906312", "output": "0" }, { "input": "2 1000000000\n-14348867 1760823", "output": "0" }, { "input": "3 1000000000\n-5 -1 1", "output": "1" } ]
1,592,846,692
2,147,483,647
PyPy 3
OK
TESTS
39
528
10,854,400
def bs(num): low = 0 high = n-1 while low<high: mid = (low+high)//2 if a[mid]-num>d: high = mid-1 else: low = mid+1 if a[low]-num>d: return low-1 else: return low n,d = map(int,input().split()) a = list(map(int,input().split())) ans = 0 for i in range(n): f = bs(a[i]) f = f-i ans += max(0,(f*(f-1))//2) print (ans)
Title: Points on Line Time Limit: None seconds Memory Limit: None megabytes Problem Description: Little Petya likes points a lot. Recently his mom has presented him *n* points lying on the line *OX*. Now Petya is wondering in how many ways he can choose three distinct points so that the distance between the two farthest of them doesn't exceed *d*. Note that the order of the points inside the group of three chosen points doesn't matter. Input Specification: The first line contains two integers: *n* and *d* (1<=≤<=*n*<=≤<=105; 1<=≤<=*d*<=≤<=109). The next line contains *n* integers *x*1,<=*x*2,<=...,<=*x**n*, their absolute value doesn't exceed 109 — the *x*-coordinates of the points that Petya has got. It is guaranteed that the coordinates of the points in the input strictly increase. Output Specification: Print a single integer — the number of groups of three points, where the distance between two farthest points doesn't exceed *d*. Please do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier. Demo Input: ['4 3\n1 2 3 4\n', '4 2\n-3 -2 -1 0\n', '5 19\n1 10 20 30 50\n'] Demo Output: ['4\n', '2\n', '1\n'] Note: In the first sample any group of three points meets our conditions. In the seconds sample only 2 groups of three points meet our conditions: {-3, -2, -1} and {-2, -1, 0}. In the third sample only one group does: {1, 10, 20}.
```python def bs(num): low = 0 high = n-1 while low<high: mid = (low+high)//2 if a[mid]-num>d: high = mid-1 else: low = mid+1 if a[low]-num>d: return low-1 else: return low n,d = map(int,input().split()) a = list(map(int,input().split())) ans = 0 for i in range(n): f = bs(a[i]) f = f-i ans += max(0,(f*(f-1))//2) print (ans) ```
3
845
A
Chess Tourney
PROGRAMMING
1,100
[ "implementation", "sortings" ]
null
null
Berland annual chess tournament is coming! Organizers have gathered 2·*n* chess players who should be divided into two teams with *n* people each. The first team is sponsored by BerOil and the second team is sponsored by BerMobile. Obviously, organizers should guarantee the win for the team of BerOil. Thus, organizers should divide all 2·*n* players into two teams with *n* people each in such a way that the first team always wins. Every chess player has its rating *r**i*. It is known that chess player with the greater rating always wins the player with the lower rating. If their ratings are equal then any of the players can win. After teams assignment there will come a drawing to form *n* pairs of opponents: in each pair there is a player from the first team and a player from the second team. Every chess player should be in exactly one pair. Every pair plays once. The drawing is totally random. Is it possible to divide all 2·*n* players into two teams with *n* people each so that the player from the first team in every pair wins regardless of the results of the drawing?
The first line contains one integer *n* (1<=≤<=*n*<=≤<=100). The second line contains 2·*n* integers *a*1,<=*a*2,<=... *a*2*n* (1<=≤<=*a**i*<=≤<=1000).
If it's possible to divide all 2·*n* players into two teams with *n* people each so that the player from the first team in every pair wins regardless of the results of the drawing, then print "YES". Otherwise print "NO".
[ "2\n1 3 2 4\n", "1\n3 3\n" ]
[ "YES\n", "NO\n" ]
none
0
[ { "input": "2\n1 3 2 4", "output": "YES" }, { "input": "1\n3 3", "output": "NO" }, { "input": "5\n1 1 1 1 2 2 3 3 3 3", "output": "NO" }, { "input": "5\n1 1 1 1 1 2 2 2 2 2", "output": "YES" }, { "input": "10\n1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000", "output": "NO" }, { "input": "1\n2 3", "output": "YES" }, { "input": "100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "NO" }, { "input": "35\n919 240 231 858 456 891 959 965 758 30 431 73 505 694 874 543 975 445 16 147 904 690 940 278 562 127 724 314 30 233 389 442 353 652 581 383 340 445 487 283 85 845 578 946 228 557 906 572 919 388 686 181 958 955 736 438 991 170 632 593 475 264 178 344 159 414 739 590 348 884", "output": "YES" }, { "input": "5\n1 2 3 4 10 10 6 7 8 9", "output": "YES" }, { "input": "2\n1 1 1 2", "output": "NO" }, { "input": "2\n10 4 4 4", "output": "NO" }, { "input": "2\n2 3 3 3", "output": "NO" }, { "input": "4\n1 2 3 4 5 4 6 7", "output": "NO" }, { "input": "4\n2 5 4 5 8 3 1 5", "output": "YES" }, { "input": "4\n8 2 2 4 1 4 10 9", "output": "NO" }, { "input": "2\n3 8 10 2", "output": "YES" }, { "input": "3\n1 3 4 4 5 6", "output": "NO" }, { "input": "2\n3 3 3 4", "output": "NO" }, { "input": "2\n1 1 2 2", "output": "YES" }, { "input": "2\n1 1 3 3", "output": "YES" }, { "input": "2\n1 2 3 2", "output": "NO" }, { "input": "10\n1 2 7 3 9 4 1 5 10 3 6 1 10 7 8 5 7 6 1 4", "output": "NO" }, { "input": "3\n1 2 3 3 4 5", "output": "NO" }, { "input": "2\n2 2 1 1", "output": "YES" }, { "input": "7\n1 2 3 4 5 6 7 7 8 9 10 11 12 19", "output": "NO" }, { "input": "5\n1 2 3 4 5 3 3 5 6 7", "output": "YES" }, { "input": "4\n1 1 2 2 3 3 3 3", "output": "YES" }, { "input": "51\n576 377 63 938 667 992 959 997 476 94 652 272 108 410 543 456 942 800 917 163 931 584 357 890 895 318 544 179 268 130 649 916 581 350 573 223 495 26 377 695 114 587 380 424 744 434 332 249 318 522 908 815 313 384 981 773 585 747 376 812 538 525 997 896 859 599 437 163 878 14 224 733 369 741 473 178 153 678 12 894 630 921 505 635 128 404 64 499 208 325 343 996 970 39 380 80 12 756 580 57 934 224", "output": "YES" }, { "input": "3\n3 3 3 2 3 2", "output": "NO" }, { "input": "2\n5 3 3 6", "output": "YES" }, { "input": "2\n1 2 2 3", "output": "NO" }, { "input": "2\n1 3 2 2", "output": "NO" }, { "input": "2\n1 3 3 4", "output": "NO" }, { "input": "2\n1 2 2 2", "output": "NO" }, { "input": "3\n1 2 7 19 19 7", "output": "NO" }, { "input": "3\n1 2 3 3 5 6", "output": "NO" }, { "input": "2\n1 2 2 4", "output": "NO" }, { "input": "2\n6 6 5 5", "output": "YES" }, { "input": "2\n3 1 3 1", "output": "YES" }, { "input": "3\n1 2 3 3 1 1", "output": "YES" }, { "input": "3\n3 2 1 3 4 5", "output": "NO" }, { "input": "3\n4 5 6 4 2 1", "output": "NO" }, { "input": "3\n1 1 2 3 2 4", "output": "NO" }, { "input": "3\n100 99 1 1 1 1", "output": "NO" }, { "input": "3\n1 2 3 6 5 3", "output": "NO" }, { "input": "2\n2 2 1 2", "output": "NO" }, { "input": "4\n1 2 3 4 5 6 7 4", "output": "NO" }, { "input": "3\n1 2 3 1 1 1", "output": "NO" }, { "input": "3\n6 5 3 3 1 3", "output": "NO" }, { "input": "2\n1 2 1 2", "output": "YES" }, { "input": "3\n1 2 5 6 8 6", "output": "YES" }, { "input": "5\n1 2 3 4 5 3 3 3 3 3", "output": "NO" }, { "input": "2\n1 2 4 2", "output": "NO" }, { "input": "3\n7 7 4 5 319 19", "output": "NO" }, { "input": "3\n1 2 4 4 3 5", "output": "YES" }, { "input": "3\n3 2 3 4 5 2", "output": "NO" }, { "input": "5\n1 2 3 4 4 5 3 6 7 8", "output": "NO" }, { "input": "3\n3 3 4 4 5 1", "output": "YES" }, { "input": "2\n3 4 3 3", "output": "NO" }, { "input": "2\n2 5 4 4", "output": "NO" }, { "input": "5\n1 2 3 3 4 5 6 7 8 4", "output": "NO" }, { "input": "3\n1 2 3 3 5 5", "output": "NO" }, { "input": "2\n3 4 4 4", "output": "NO" }, { "input": "2\n1 4 5 4", "output": "NO" }, { "input": "2\n1 2 3 3", "output": "YES" }, { "input": "2\n1 1 2 1", "output": "NO" }, { "input": "4\n1 1 1 1 2 2 2 2", "output": "YES" }, { "input": "4\n1 2 3 5 6 7 8 5", "output": "NO" }, { "input": "2\n4 3 3 1", "output": "NO" }, { "input": "3\n3 1 2 4 3 5", "output": "NO" }, { "input": "3\n1 2 3 3 4 6", "output": "NO" }, { "input": "4\n2 2 2 4 5 5 5 5", "output": "YES" }, { "input": "2\n1 3 4 3", "output": "NO" }, { "input": "2\n3 3 2 3", "output": "NO" }, { "input": "2\n1 2 1 1", "output": "NO" }, { "input": "3\n1 3 4 4 2 5", "output": "YES" }, { "input": "4\n4 7 1 2 3 5 6 4", "output": "NO" }, { "input": "2\n3 2 2 2", "output": "NO" }, { "input": "1\n2 1", "output": "YES" }, { "input": "2\n3 3 1 2", "output": "YES" }, { "input": "1\n8 6", "output": "YES" }, { "input": "7\n6 7 6 7 3 1 9 4 6 10 8 2 5 7", "output": "NO" }, { "input": "2\n3 9 2 1", "output": "YES" }, { "input": "2\n3 3 3 3", "output": "NO" } ]
1,506,134,301
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
30
409,600
from collections import Counter def Chess_tourney(): n = input() array = raw_input().strip() Quicksort(array,0,n-1) print(array) if (n%2==0 and (array[n//2] == array[n//2 -1])): return "NO" if(n%2 ==1 and ((array[n//2+1] == array[n//2 +2]) or (array[n//2] == array[n//2 +1]))): return "NO" return "YES" # return "YES" def Quicksort(array,p,r): if (p< r): q = Partition(array,p,r) Quicksort(array,p,q-1) Quicksort(array,q+1,r) def Partition(array,p,r): x = array[r] i = p-1 for j in range(p,r) : if array[j]<x: i += 1 Swap(array,i,j) Swap(array,i+1,r) return i+1 def Swap(array,i,j): tmp = array[i] array[i] = array[j] array[j] = tmp print (Chess_tourney())
Title: Chess Tourney Time Limit: None seconds Memory Limit: None megabytes Problem Description: Berland annual chess tournament is coming! Organizers have gathered 2·*n* chess players who should be divided into two teams with *n* people each. The first team is sponsored by BerOil and the second team is sponsored by BerMobile. Obviously, organizers should guarantee the win for the team of BerOil. Thus, organizers should divide all 2·*n* players into two teams with *n* people each in such a way that the first team always wins. Every chess player has its rating *r**i*. It is known that chess player with the greater rating always wins the player with the lower rating. If their ratings are equal then any of the players can win. After teams assignment there will come a drawing to form *n* pairs of opponents: in each pair there is a player from the first team and a player from the second team. Every chess player should be in exactly one pair. Every pair plays once. The drawing is totally random. Is it possible to divide all 2·*n* players into two teams with *n* people each so that the player from the first team in every pair wins regardless of the results of the drawing? Input Specification: The first line contains one integer *n* (1<=≤<=*n*<=≤<=100). The second line contains 2·*n* integers *a*1,<=*a*2,<=... *a*2*n* (1<=≤<=*a**i*<=≤<=1000). Output Specification: If it's possible to divide all 2·*n* players into two teams with *n* people each so that the player from the first team in every pair wins regardless of the results of the drawing, then print "YES". Otherwise print "NO". Demo Input: ['2\n1 3 2 4\n', '1\n3 3\n'] Demo Output: ['YES\n', 'NO\n'] Note: none
```python from collections import Counter def Chess_tourney(): n = input() array = raw_input().strip() Quicksort(array,0,n-1) print(array) if (n%2==0 and (array[n//2] == array[n//2 -1])): return "NO" if(n%2 ==1 and ((array[n//2+1] == array[n//2 +2]) or (array[n//2] == array[n//2 +1]))): return "NO" return "YES" # return "YES" def Quicksort(array,p,r): if (p< r): q = Partition(array,p,r) Quicksort(array,p,q-1) Quicksort(array,q+1,r) def Partition(array,p,r): x = array[r] i = p-1 for j in range(p,r) : if array[j]<x: i += 1 Swap(array,i,j) Swap(array,i+1,r) return i+1 def Swap(array,i,j): tmp = array[i] array[i] = array[j] array[j] = tmp print (Chess_tourney()) ```
-1
322
B
Ciel and Flowers
PROGRAMMING
1,600
[ "combinatorics", "math" ]
null
null
Fox Ciel has some flowers: *r* red flowers, *g* green flowers and *b* blue flowers. She wants to use these flowers to make several bouquets. There are 4 types of bouquets: - To make a "red bouquet", it needs 3 red flowers. - To make a "green bouquet", it needs 3 green flowers. - To make a "blue bouquet", it needs 3 blue flowers. - To make a "mixing bouquet", it needs 1 red, 1 green and 1 blue flower. Help Fox Ciel to find the maximal number of bouquets she can make.
The first line contains three integers *r*, *g* and *b* (0<=≤<=*r*,<=*g*,<=*b*<=≤<=109) — the number of red, green and blue flowers.
Print the maximal number of bouquets Fox Ciel can make.
[ "3 6 9\n", "4 4 4\n", "0 0 0\n" ]
[ "6\n", "4\n", "0\n" ]
In test case 1, we can make 1 red bouquet, 2 green bouquets and 3 blue bouquets. In test case 2, we can make 1 red, 1 green, 1 blue and 1 mixing bouquet.
1,000
[ { "input": "3 6 9", "output": "6" }, { "input": "4 4 4", "output": "4" }, { "input": "0 0 0", "output": "0" }, { "input": "0 3 6", "output": "3" }, { "input": "7 8 9", "output": "7" }, { "input": "8 8 9", "output": "8" }, { "input": "15 3 999", "output": "339" }, { "input": "32 62 92", "output": "62" }, { "input": "123456789 123456789 123456789", "output": "123456789" }, { "input": "3 5 5", "output": "4" }, { "input": "666806767 385540591 357848286", "output": "470065214" }, { "input": "80010646 727118126 817880463", "output": "541669744" }, { "input": "829651016 732259171 572879931", "output": "711596705" }, { "input": "242854896 442432924 180395753", "output": "288561190" }, { "input": "139978911 5123031 935395222", "output": "360165721" }, { "input": "553182792 10264076 395427398", "output": "319624755" }, { "input": "597790453 720437830 855459575", "output": "724562619" }, { "input": "494914467 356982656 757942689", "output": "536613270" }, { "input": "908118348 67156409 217974865", "output": "397749873" }, { "input": "952726009 629846517 972974334", "output": "851848953" }, { "input": "775140200 616574841 630329230", "output": "674014756" }, { "input": "524780569 326748594 90361407", "output": "313963523" }, { "input": "937984449 184405994 992844522", "output": "705078321" }, { "input": "835108464 525983528 452876698", "output": "604656229" }, { "input": "879716125 531124573 207876166", "output": "539572288" }, { "input": "292920005 241298326 667908343", "output": "400708891" }, { "input": "1000000000 1000000000 1000000000", "output": "1000000000" }, { "input": "1000000000 999999999 999999998", "output": "999999998" }, { "input": "999999998 999999998 999999999", "output": "999999998" }, { "input": "0 1 1", "output": "0" }, { "input": "0 1000000000 0", "output": "333333333" }, { "input": "0 1 0", "output": "0" }, { "input": "1 0 0", "output": "0" }, { "input": "0 2 2", "output": "0" }, { "input": "3 3 5", "output": "3" }, { "input": "2 2 0", "output": "0" }, { "input": "0 5 5", "output": "2" }, { "input": "2 0 11", "output": "3" }, { "input": "9 9 7", "output": "8" }, { "input": "65 30 74", "output": "56" } ]
1,610,725,712
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
9
186
0
import sys import math r,g,b=(int(i) for i in input().split()) k=min(r,g,b) print(k+((r-k)//3)+((g-k)//3)+((b-k)//3))
Title: Ciel and Flowers Time Limit: None seconds Memory Limit: None megabytes Problem Description: Fox Ciel has some flowers: *r* red flowers, *g* green flowers and *b* blue flowers. She wants to use these flowers to make several bouquets. There are 4 types of bouquets: - To make a "red bouquet", it needs 3 red flowers. - To make a "green bouquet", it needs 3 green flowers. - To make a "blue bouquet", it needs 3 blue flowers. - To make a "mixing bouquet", it needs 1 red, 1 green and 1 blue flower. Help Fox Ciel to find the maximal number of bouquets she can make. Input Specification: The first line contains three integers *r*, *g* and *b* (0<=≤<=*r*,<=*g*,<=*b*<=≤<=109) — the number of red, green and blue flowers. Output Specification: Print the maximal number of bouquets Fox Ciel can make. Demo Input: ['3 6 9\n', '4 4 4\n', '0 0 0\n'] Demo Output: ['6\n', '4\n', '0\n'] Note: In test case 1, we can make 1 red bouquet, 2 green bouquets and 3 blue bouquets. In test case 2, we can make 1 red, 1 green, 1 blue and 1 mixing bouquet.
```python import sys import math r,g,b=(int(i) for i in input().split()) k=min(r,g,b) print(k+((r-k)//3)+((g-k)//3)+((b-k)//3)) ```
0
725
A
Jumping Ball
PROGRAMMING
1,000
[ "implementation" ]
null
null
In a new version of the famous Pinball game, one of the most important parts of the game field is a sequence of *n* bumpers. The bumpers are numbered with integers from 1 to *n* from left to right. There are two types of bumpers. They are denoted by the characters '&lt;' and '&gt;'. When the ball hits the bumper at position *i* it goes one position to the right (to the position *i*<=+<=1) if the type of this bumper is '&gt;', or one position to the left (to *i*<=-<=1) if the type of the bumper at position *i* is '&lt;'. If there is no such position, in other words if *i*<=-<=1<=&lt;<=1 or *i*<=+<=1<=&gt;<=*n*, the ball falls from the game field. Depending on the ball's starting position, the ball may eventually fall from the game field or it may stay there forever. You are given a string representing the bumpers' types. Calculate the number of positions such that the ball will eventually fall from the game field if it starts at that position.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=200<=000) — the length of the sequence of bumpers. The second line contains the string, which consists of the characters '&lt;' and '&gt;'. The character at the *i*-th position of this string corresponds to the type of the *i*-th bumper.
Print one integer — the number of positions in the sequence such that the ball will eventually fall from the game field if it starts at that position.
[ "4\n&lt;&lt;&gt;&lt;\n", "5\n&gt;&gt;&gt;&gt;&gt;\n", "4\n&gt;&gt;&lt;&lt;\n" ]
[ "2", "5", "0" ]
In the first sample, the ball will fall from the field if starts at position 1 or position 2. In the second sample, any starting position will result in the ball falling from the field.
500
[ { "input": "4\n<<><", "output": "2" }, { "input": "5\n>>>>>", "output": "5" }, { "input": "4\n>><<", "output": "0" }, { "input": "3\n<<>", "output": "3" }, { "input": "3\n<<<", "output": "3" }, { "input": "3\n><<", "output": "0" }, { "input": "1\n<", "output": "1" }, { "input": "2\n<>", "output": "2" }, { "input": "3\n<>>", "output": "3" }, { "input": "3\n><>", "output": "1" }, { "input": "2\n><", "output": "0" }, { "input": "2\n>>", "output": "2" }, { "input": "2\n<<", "output": "2" }, { "input": "1\n>", "output": "1" }, { "input": "3\n>><", "output": "0" }, { "input": "3\n>>>", "output": "3" }, { "input": "3\n<><", "output": "1" }, { "input": "10\n<<<><<<>>>", "output": "6" }, { "input": "20\n><><<><<<>>>>>>>>>>>", "output": "11" }, { "input": "20\n<<<<<<<<<<><<<<>>>>>", "output": "15" }, { "input": "50\n<<<<<<<<<<<<<<<<<<<<<<<<<>>>>>>>>>>>>>>>>>>>>>>>>>", "output": "50" }, { "input": "100\n<<<<<<<<<<<<<<<<<<<<<<<<>><<>><<<<<>><>><<<>><><<>>><<>>><<<<><><><<><<<<><>>>>>>>>>>>>>>>>>>>>>>>>>", "output": "49" }, { "input": "100\n<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<>>>><<>><>><>><<><><><><>>>><><<<>>>><<<>>>>>>><><", "output": "50" }, { "input": "100\n<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<", "output": "100" }, { "input": "100\n>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>", "output": "100" }, { "input": "12\n<<>><<>><<>>", "output": "4" }, { "input": "6\n<<><>>", "output": "4" }, { "input": "6\n><>>>>", "output": "4" }, { "input": "8\n>>>><<<>", "output": "1" }, { "input": "4\n<><>", "output": "2" }, { "input": "4\n><><", "output": "0" }, { "input": "7\n<<>>><>", "output": "3" }, { "input": "10\n><><>>>>>>", "output": "6" }, { "input": "5\n<><>>", "output": "3" }, { "input": "12\n<><<<<>>>>>>", "output": "7" }, { "input": "6\n<>><<>", "output": "2" }, { "input": "6\n>>><>>", "output": "2" }, { "input": "10\n><><>>>><>", "output": "1" }, { "input": "5\n><>>>", "output": "3" }, { "input": "5\n<<><>", "output": "3" }, { "input": "5\n<><<<", "output": "1" }, { "input": "4\n<><<", "output": "1" }, { "input": "8\n<<>><<>>", "output": "4" }, { "input": "7\n<<><>>>", "output": "5" }, { "input": "5\n><<>>", "output": "2" }, { "input": "10\n<<<<<>>>>>", "output": "10" }, { "input": "6\n><<<<<", "output": "0" }, { "input": "8\n<<><><>>", "output": "4" }, { "input": "10\n<<<<><<<><", "output": "4" }, { "input": "12\n<<<>>>><<>>>", "output": "6" }, { "input": "4\n><>>", "output": "2" }, { "input": "11\n<<><<>><<>>", "output": "4" } ]
1,477,208,968
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
46
409,600
n = input() s = input() print(abs(s.count('<') - s.count('>')))
Title: Jumping Ball Time Limit: None seconds Memory Limit: None megabytes Problem Description: In a new version of the famous Pinball game, one of the most important parts of the game field is a sequence of *n* bumpers. The bumpers are numbered with integers from 1 to *n* from left to right. There are two types of bumpers. They are denoted by the characters '&lt;' and '&gt;'. When the ball hits the bumper at position *i* it goes one position to the right (to the position *i*<=+<=1) if the type of this bumper is '&gt;', or one position to the left (to *i*<=-<=1) if the type of the bumper at position *i* is '&lt;'. If there is no such position, in other words if *i*<=-<=1<=&lt;<=1 or *i*<=+<=1<=&gt;<=*n*, the ball falls from the game field. Depending on the ball's starting position, the ball may eventually fall from the game field or it may stay there forever. You are given a string representing the bumpers' types. Calculate the number of positions such that the ball will eventually fall from the game field if it starts at that position. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=200<=000) — the length of the sequence of bumpers. The second line contains the string, which consists of the characters '&lt;' and '&gt;'. The character at the *i*-th position of this string corresponds to the type of the *i*-th bumper. Output Specification: Print one integer — the number of positions in the sequence such that the ball will eventually fall from the game field if it starts at that position. Demo Input: ['4\n&lt;&lt;&gt;&lt;\n', '5\n&gt;&gt;&gt;&gt;&gt;\n', '4\n&gt;&gt;&lt;&lt;\n'] Demo Output: ['2', '5', '0'] Note: In the first sample, the ball will fall from the field if starts at position 1 or position 2. In the second sample, any starting position will result in the ball falling from the field.
```python n = input() s = input() print(abs(s.count('<') - s.count('>'))) ```
0
349
A
Cinema Line
PROGRAMMING
1,100
[ "greedy", "implementation" ]
null
null
The new "Die Hard" movie has just been released! There are *n* people at the cinema box office standing in a huge line. Each of them has a single 100, 50 or 25 ruble bill. A "Die Hard" ticket costs 25 rubles. Can the booking clerk sell a ticket to each person and give the change if he initially has no money and sells the tickets strictly in the order people follow in the line?
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of people in the line. The next line contains *n* integers, each of them equals 25, 50 or 100 — the values of the bills the people have. The numbers are given in the order from the beginning of the line (at the box office) to the end of the line.
Print "YES" (without the quotes) if the booking clerk can sell a ticket to each person and give the change. Otherwise print "NO".
[ "4\n25 25 50 50\n", "2\n25 100\n", "4\n50 50 25 25\n" ]
[ "YES\n", "NO\n", "NO\n" ]
none
500
[ { "input": "4\n25 25 50 50", "output": "YES" }, { "input": "2\n25 100", "output": "NO" }, { "input": "4\n50 50 25 25", "output": "NO" }, { "input": "3\n25 50 100", "output": "NO" }, { "input": "10\n25 25 25 25 25 25 25 25 25 25", "output": "YES" }, { "input": "10\n50 50 50 50 50 50 50 50 50 50", "output": "NO" }, { "input": "10\n100 100 100 100 100 100 100 100 100 100", "output": "NO" }, { "input": "7\n25 25 25 25 50 100 50", "output": "YES" }, { "input": "2\n25 25", "output": "YES" }, { "input": "3\n50 100 100", "output": "NO" }, { "input": "3\n25 50 50", "output": "NO" }, { "input": "2\n50 25", "output": "NO" }, { "input": "14\n25 25 25 25 25 25 25 50 50 50 100 100 100 100", "output": "NO" }, { "input": "5\n25 25 25 100 100", "output": "NO" }, { "input": "7\n25 50 25 50 25 50 100", "output": "NO" }, { "input": "5\n25 50 25 50 100", "output": "NO" }, { "input": "5\n25 25 50 50 50", "output": "NO" }, { "input": "5\n25 25 50 100 50", "output": "NO" }, { "input": "5\n25 25 50 50 100", "output": "NO" }, { "input": "1\n50", "output": "NO" } ]
1,646,764,407
2,147,483,647
PyPy 3-64
OK
TESTS
40
218
14,438,400
n= int(input()) lst=list(map(int,input().split())) a_dict={25:0, 50:0} ans='YES' for r in lst: if r==25: a_dict[25]+=1 elif r==50 and a_dict[25]>=1: a_dict[50]+=1 a_dict[25]-=1 elif r==100 and a_dict[50]>=1 and a_dict[25]>=1: a_dict[50]-=1; a_dict[25]-=1 elif r==100 and a_dict[25]>=3: a_dict[25]-=3 else: ans='NO' print(ans)
Title: Cinema Line Time Limit: None seconds Memory Limit: None megabytes Problem Description: The new "Die Hard" movie has just been released! There are *n* people at the cinema box office standing in a huge line. Each of them has a single 100, 50 or 25 ruble bill. A "Die Hard" ticket costs 25 rubles. Can the booking clerk sell a ticket to each person and give the change if he initially has no money and sells the tickets strictly in the order people follow in the line? Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of people in the line. The next line contains *n* integers, each of them equals 25, 50 or 100 — the values of the bills the people have. The numbers are given in the order from the beginning of the line (at the box office) to the end of the line. Output Specification: Print "YES" (without the quotes) if the booking clerk can sell a ticket to each person and give the change. Otherwise print "NO". Demo Input: ['4\n25 25 50 50\n', '2\n25 100\n', '4\n50 50 25 25\n'] Demo Output: ['YES\n', 'NO\n', 'NO\n'] Note: none
```python n= int(input()) lst=list(map(int,input().split())) a_dict={25:0, 50:0} ans='YES' for r in lst: if r==25: a_dict[25]+=1 elif r==50 and a_dict[25]>=1: a_dict[50]+=1 a_dict[25]-=1 elif r==100 and a_dict[50]>=1 and a_dict[25]>=1: a_dict[50]-=1; a_dict[25]-=1 elif r==100 and a_dict[25]>=3: a_dict[25]-=3 else: ans='NO' print(ans) ```
3
580
A
Kefa and First Steps
PROGRAMMING
900
[ "brute force", "dp", "implementation" ]
null
null
Kefa decided to make some money doing business on the Internet for exactly *n* days. He knows that on the *i*-th day (1<=≤<=*i*<=≤<=*n*) he makes *a**i* money. Kefa loves progress, that's why he wants to know the length of the maximum non-decreasing subsegment in sequence *a**i*. Let us remind you that the subsegment of the sequence is its continuous fragment. A subsegment of numbers is called non-decreasing if all numbers in it follow in the non-decreasing order. Help Kefa cope with this task!
The first line contains integer *n* (1<=≤<=*n*<=≤<=105). The second line contains *n* integers *a*1,<=<=*a*2,<=<=...,<=<=*a**n* (1<=≤<=*a**i*<=≤<=109).
Print a single integer — the length of the maximum non-decreasing subsegment of sequence *a*.
[ "6\n2 2 1 3 4 1\n", "3\n2 2 9\n" ]
[ "3", "3" ]
In the first test the maximum non-decreasing subsegment is the numbers from the third to the fifth one. In the second test the maximum non-decreasing subsegment is the numbers from the first to the third one.
750
[ { "input": "6\n2 2 1 3 4 1", "output": "3" }, { "input": "3\n2 2 9", "output": "3" }, { "input": "5\n10 100 111 1 2", "output": "3" }, { "input": "10\n1 2 3 4 1 2 3 4 5 6", "output": "6" }, { "input": "50\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1", "output": "50" }, { "input": "100\n1 838 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 1 605 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 27 533 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1 835 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1000 1 992", "output": "42" }, { "input": "1\n1", "output": "1" }, { "input": "2\n1 1", "output": "2" }, { "input": "6\n5 4 3 2 1 2", "output": "2" }, { "input": "9\n1 2 3 4 5 6 7 8 9", "output": "9" }, { "input": "7\n99 100 1 2 3 4 5", "output": "5" }, { "input": "5\n3 3 1 2 3", "output": "3" }, { "input": "1\n100", "output": "1" }, { "input": "1\n5", "output": "1" } ]
1,694,126,111
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
31
0
n, m, k= list(map(int, input().split())) dishes=list(map(int, input().split())) rules=[[0]*n for i in range(n)] for i in range(k): a, b, pt=list(map(int, input().split())) a-=1 b-=1 rules[a][b]=pt def solve(qtd=0, mask=0, last=0): if qtd==m: return 0 resposta=0 for i in range(n): if (( mask >> i) & 1 ): continue temp= solve(qtd+1, mask | (1<<i ), i)+dishes[i]+rules[last][i] resposta=max(resposta,temp) return resposta respostas=0 for i in range(n): respostas=max(respostas, solve(1, 1<<i , i)+dishes[i]) print(respostas)
Title: Kefa and First Steps Time Limit: None seconds Memory Limit: None megabytes Problem Description: Kefa decided to make some money doing business on the Internet for exactly *n* days. He knows that on the *i*-th day (1<=≤<=*i*<=≤<=*n*) he makes *a**i* money. Kefa loves progress, that's why he wants to know the length of the maximum non-decreasing subsegment in sequence *a**i*. Let us remind you that the subsegment of the sequence is its continuous fragment. A subsegment of numbers is called non-decreasing if all numbers in it follow in the non-decreasing order. Help Kefa cope with this task! Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105). The second line contains *n* integers *a*1,<=<=*a*2,<=<=...,<=<=*a**n* (1<=≤<=*a**i*<=≤<=109). Output Specification: Print a single integer — the length of the maximum non-decreasing subsegment of sequence *a*. Demo Input: ['6\n2 2 1 3 4 1\n', '3\n2 2 9\n'] Demo Output: ['3', '3'] Note: In the first test the maximum non-decreasing subsegment is the numbers from the third to the fifth one. In the second test the maximum non-decreasing subsegment is the numbers from the first to the third one.
```python n, m, k= list(map(int, input().split())) dishes=list(map(int, input().split())) rules=[[0]*n for i in range(n)] for i in range(k): a, b, pt=list(map(int, input().split())) a-=1 b-=1 rules[a][b]=pt def solve(qtd=0, mask=0, last=0): if qtd==m: return 0 resposta=0 for i in range(n): if (( mask >> i) & 1 ): continue temp= solve(qtd+1, mask | (1<<i ), i)+dishes[i]+rules[last][i] resposta=max(resposta,temp) return resposta respostas=0 for i in range(n): respostas=max(respostas, solve(1, 1<<i , i)+dishes[i]) print(respostas) ```
-1
548
B
Mike and Fun
PROGRAMMING
1,400
[ "brute force", "dp", "greedy", "implementation" ]
null
null
Mike and some bears are playing a game just for fun. Mike is the judge. All bears except Mike are standing in an *n*<=×<=*m* grid, there's exactly one bear in each cell. We denote the bear standing in column number *j* of row number *i* by (*i*,<=*j*). Mike's hands are on his ears (since he's the judge) and each bear standing in the grid has hands either on his mouth or his eyes. They play for *q* rounds. In each round, Mike chooses a bear (*i*,<=*j*) and tells him to change his state i. e. if his hands are on his mouth, then he'll put his hands on his eyes or he'll put his hands on his mouth otherwise. After that, Mike wants to know the score of the bears. Score of the bears is the maximum over all rows of number of consecutive bears with hands on their eyes in that row. Since bears are lazy, Mike asked you for help. For each round, tell him the score of these bears after changing the state of a bear selected in that round.
The first line of input contains three integers *n*, *m* and *q* (1<=≤<=*n*,<=*m*<=≤<=500 and 1<=≤<=*q*<=≤<=5000). The next *n* lines contain the grid description. There are *m* integers separated by spaces in each line. Each of these numbers is either 0 (for mouth) or 1 (for eyes). The next *q* lines contain the information about the rounds. Each of them contains two integers *i* and *j* (1<=≤<=*i*<=≤<=*n* and 1<=≤<=*j*<=≤<=*m*), the row number and the column number of the bear changing his state.
After each round, print the current score of the bears.
[ "5 4 5\n0 1 1 0\n1 0 0 1\n0 1 1 0\n1 0 0 1\n0 0 0 0\n1 1\n1 4\n1 1\n4 2\n4 3\n" ]
[ "3\n4\n3\n3\n4\n" ]
none
1,000
[ { "input": "5 4 5\n0 1 1 0\n1 0 0 1\n0 1 1 0\n1 0 0 1\n0 0 0 0\n1 1\n1 4\n1 1\n4 2\n4 3", "output": "3\n4\n3\n3\n4" }, { "input": "2 2 10\n1 1\n0 1\n1 1\n2 1\n1 1\n2 2\n1 1\n2 1\n2 2\n2 2\n1 1\n1 1", "output": "1\n2\n2\n2\n1\n1\n1\n1\n2\n1" }, { "input": "2 2 10\n1 1\n0 1\n2 2\n2 2\n1 1\n2 1\n2 1\n1 1\n1 1\n2 1\n1 1\n2 1", "output": "2\n2\n1\n2\n1\n2\n1\n2\n2\n2" }, { "input": "5 5 30\n0 1 1 1 0\n1 1 0 1 1\n0 1 1 1 1\n0 0 1 1 0\n0 0 0 0 0\n3 2\n2 2\n2 2\n4 3\n1 4\n3 2\n4 1\n2 4\n1 4\n2 1\n5 2\n4 1\n4 1\n5 1\n2 4\n2 4\n4 4\n1 2\n3 1\n4 5\n1 2\n2 3\n1 1\n5 1\n3 4\n1 1\n5 4\n1 5\n5 4\n2 2", "output": "3\n3\n3\n3\n3\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n4\n5\n5\n5\n5\n5\n5\n4\n3\n3\n4\n4\n4" }, { "input": "1 1 10\n0\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1\n1 1", "output": "1\n0\n1\n0\n1\n0\n1\n0\n1\n0" }, { "input": "1 1 3\n1\n1 1\n1 1\n1 1", "output": "0\n1\n0" }, { "input": "1 5 5\n0 0 0 0 0\n1 2\n1 1\n1 4\n1 5\n1 3", "output": "1\n2\n2\n2\n5" }, { "input": "5 1 5\n0\n0\n0\n0\n0\n1 1\n2 1\n3 1\n4 1\n5 1", "output": "1\n1\n1\n1\n1" }, { "input": "1 1 1\n0\n1 1", "output": "1" }, { "input": "2 2 1\n1 1\n1 1\n1 1", "output": "2" } ]
1,432,664,499
6,399
Python 3
TIME_LIMIT_EXCEEDED
PRETESTS
6
2,000
2,560,000
from fileinput import * grid = [] info = [] for line in input(): if lineno() == 1: [n, m, q] = list(map(int, line.split())) elif lineno() > 1 and lineno() <= 1 + n: grid.append(list(map(int, line.split()))) elif lineno() > 1 + n: info.append(list(map(int, line.split()))) else: pass def getscore(grid): maxscore = 0 for line in grid: s = ''.join([str(c) for c in line]) sp = s.split('0') maxcount = 0 for item in sp: l = len(item) if l > maxcount: maxcount = l if maxcount > maxscore: maxscore = maxcount return maxscore for k in range(q): [i, j] = info[k] grid[i-1][j-1] = grid[i-1][j-1] ^ 1 print(getscore(grid))
Title: Mike and Fun Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mike and some bears are playing a game just for fun. Mike is the judge. All bears except Mike are standing in an *n*<=×<=*m* grid, there's exactly one bear in each cell. We denote the bear standing in column number *j* of row number *i* by (*i*,<=*j*). Mike's hands are on his ears (since he's the judge) and each bear standing in the grid has hands either on his mouth or his eyes. They play for *q* rounds. In each round, Mike chooses a bear (*i*,<=*j*) and tells him to change his state i. e. if his hands are on his mouth, then he'll put his hands on his eyes or he'll put his hands on his mouth otherwise. After that, Mike wants to know the score of the bears. Score of the bears is the maximum over all rows of number of consecutive bears with hands on their eyes in that row. Since bears are lazy, Mike asked you for help. For each round, tell him the score of these bears after changing the state of a bear selected in that round. Input Specification: The first line of input contains three integers *n*, *m* and *q* (1<=≤<=*n*,<=*m*<=≤<=500 and 1<=≤<=*q*<=≤<=5000). The next *n* lines contain the grid description. There are *m* integers separated by spaces in each line. Each of these numbers is either 0 (for mouth) or 1 (for eyes). The next *q* lines contain the information about the rounds. Each of them contains two integers *i* and *j* (1<=≤<=*i*<=≤<=*n* and 1<=≤<=*j*<=≤<=*m*), the row number and the column number of the bear changing his state. Output Specification: After each round, print the current score of the bears. Demo Input: ['5 4 5\n0 1 1 0\n1 0 0 1\n0 1 1 0\n1 0 0 1\n0 0 0 0\n1 1\n1 4\n1 1\n4 2\n4 3\n'] Demo Output: ['3\n4\n3\n3\n4\n'] Note: none
```python from fileinput import * grid = [] info = [] for line in input(): if lineno() == 1: [n, m, q] = list(map(int, line.split())) elif lineno() > 1 and lineno() <= 1 + n: grid.append(list(map(int, line.split()))) elif lineno() > 1 + n: info.append(list(map(int, line.split()))) else: pass def getscore(grid): maxscore = 0 for line in grid: s = ''.join([str(c) for c in line]) sp = s.split('0') maxcount = 0 for item in sp: l = len(item) if l > maxcount: maxcount = l if maxcount > maxscore: maxscore = maxcount return maxscore for k in range(q): [i, j] = info[k] grid[i-1][j-1] = grid[i-1][j-1] ^ 1 print(getscore(grid)) ```
0
151
A
Soft Drinking
PROGRAMMING
800
[ "implementation", "math" ]
null
null
This winter is so cold in Nvodsk! A group of *n* friends decided to buy *k* bottles of a soft drink called "Take-It-Light" to warm up a bit. Each bottle has *l* milliliters of the drink. Also they bought *c* limes and cut each of them into *d* slices. After that they found *p* grams of salt. To make a toast, each friend needs *nl* milliliters of the drink, a slice of lime and *np* grams of salt. The friends want to make as many toasts as they can, provided they all drink the same amount. How many toasts can each friend make?
The first and only line contains positive integers *n*, *k*, *l*, *c*, *d*, *p*, *nl*, *np*, not exceeding 1000 and no less than 1. The numbers are separated by exactly one space.
Print a single integer — the number of toasts each friend can make.
[ "3 4 5 10 8 100 3 1\n", "5 100 10 1 19 90 4 3\n", "10 1000 1000 25 23 1 50 1\n" ]
[ "2\n", "3\n", "0\n" ]
A comment to the first sample: Overall the friends have 4 * 5 = 20 milliliters of the drink, it is enough to make 20 / 3 = 6 toasts. The limes are enough for 10 * 8 = 80 toasts and the salt is enough for 100 / 1 = 100 toasts. However, there are 3 friends in the group, so the answer is *min*(6, 80, 100) / 3 = 2.
500
[ { "input": "3 4 5 10 8 100 3 1", "output": "2" }, { "input": "5 100 10 1 19 90 4 3", "output": "3" }, { "input": "10 1000 1000 25 23 1 50 1", "output": "0" }, { "input": "1 7 4 5 5 8 3 2", "output": "4" }, { "input": "2 3 3 5 5 10 1 3", "output": "1" }, { "input": "2 6 4 5 6 5 1 3", "output": "0" }, { "input": "1 7 3 5 3 6 2 1", "output": "6" }, { "input": "2 4 5 4 5 7 3 2", "output": "1" }, { "input": "2 3 6 5 7 8 2 1", "output": "4" }, { "input": "1 4 5 5 3 10 3 1", "output": "6" }, { "input": "1 4 6 7 3 5 1 3", "output": "1" }, { "input": "1 6 5 5 5 8 3 1", "output": "8" }, { "input": "1 7 5 3 3 9 2 1", "output": "9" }, { "input": "3 5 3 7 6 10 3 1", "output": "1" }, { "input": "3 6 3 5 3 6 3 1", "output": "2" }, { "input": "1 7 5 5 5 5 2 2", "output": "2" }, { "input": "2 5 3 5 6 9 2 1", "output": "3" }, { "input": "3 4 3 5 3 6 2 1", "output": "2" }, { "input": "1 5 5 4 7 6 3 1", "output": "6" }, { "input": "2 3 7 6 5 9 3 1", "output": "3" }, { "input": "2 6 5 3 3 8 1 1", "output": "4" }, { "input": "2 4 7 3 4 10 2 1", "output": "5" }, { "input": "1 1000 1000 1000 1000 1000 1 1", "output": "1000" }, { "input": "17 1000 1000 1000 1000 1000 3 7", "output": "8" }, { "input": "115 1000 1000 1000 1000 1000 17 15", "output": "0" }, { "input": "1 587 981 1 2 1 1 1", "output": "1" }, { "input": "1 1 2 1 2 2 1 1", "output": "2" } ]
1,689,189,330
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
92
0
n, k, l, c, d, p, nl, np = map(int, input().split()) j = nl s = np f = k * l g = c * d o = 0 while f > 0 and g > 0 and p > 0: o += 1 f -= j g -= 1 p -= s print(o // n)
Title: Soft Drinking Time Limit: None seconds Memory Limit: None megabytes Problem Description: This winter is so cold in Nvodsk! A group of *n* friends decided to buy *k* bottles of a soft drink called "Take-It-Light" to warm up a bit. Each bottle has *l* milliliters of the drink. Also they bought *c* limes and cut each of them into *d* slices. After that they found *p* grams of salt. To make a toast, each friend needs *nl* milliliters of the drink, a slice of lime and *np* grams of salt. The friends want to make as many toasts as they can, provided they all drink the same amount. How many toasts can each friend make? Input Specification: The first and only line contains positive integers *n*, *k*, *l*, *c*, *d*, *p*, *nl*, *np*, not exceeding 1000 and no less than 1. The numbers are separated by exactly one space. Output Specification: Print a single integer — the number of toasts each friend can make. Demo Input: ['3 4 5 10 8 100 3 1\n', '5 100 10 1 19 90 4 3\n', '10 1000 1000 25 23 1 50 1\n'] Demo Output: ['2\n', '3\n', '0\n'] Note: A comment to the first sample: Overall the friends have 4 * 5 = 20 milliliters of the drink, it is enough to make 20 / 3 = 6 toasts. The limes are enough for 10 * 8 = 80 toasts and the salt is enough for 100 / 1 = 100 toasts. However, there are 3 friends in the group, so the answer is *min*(6, 80, 100) / 3 = 2.
```python n, k, l, c, d, p, nl, np = map(int, input().split()) j = nl s = np f = k * l g = c * d o = 0 while f > 0 and g > 0 and p > 0: o += 1 f -= j g -= 1 p -= s print(o // n) ```
0
285
B
Find Marble
PROGRAMMING
1,200
[ "implementation" ]
null
null
Petya and Vasya are playing a game. Petya's got *n* non-transparent glasses, standing in a row. The glasses' positions are indexed with integers from 1 to *n* from left to right. Note that the positions are indexed but the glasses are not. First Petya puts a marble under the glass in position *s*. Then he performs some (possibly zero) shuffling operations. One shuffling operation means moving the glass from the first position to position *p*1, the glass from the second position to position *p*2 and so on. That is, a glass goes from position *i* to position *p**i*. Consider all glasses are moving simultaneously during one shuffling operation. When the glasses are shuffled, the marble doesn't travel from one glass to another: it moves together with the glass it was initially been put in. After all shuffling operations Petya shows Vasya that the ball has moved to position *t*. Vasya's task is to say what minimum number of shuffling operations Petya has performed or determine that Petya has made a mistake and the marble could not have got from position *s* to position *t*.
The first line contains three integers: *n*,<=*s*,<=*t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*s*,<=*t*<=≤<=*n*) — the number of glasses, the ball's initial and final position. The second line contains *n* space-separated integers: *p*1,<=*p*2,<=...,<=*p**n* (1<=≤<=*p**i*<=≤<=*n*) — the shuffling operation parameters. It is guaranteed that all *p**i*'s are distinct. Note that *s* can equal *t*.
If the marble can move from position *s* to position *t*, then print on a single line a non-negative integer — the minimum number of shuffling operations, needed to get the marble to position *t*. If it is impossible, print number -1.
[ "4 2 1\n2 3 4 1\n", "4 3 3\n4 1 3 2\n", "4 3 4\n1 2 3 4\n", "3 1 3\n2 1 3\n" ]
[ "3\n", "0\n", "-1\n", "-1\n" ]
none
1,000
[ { "input": "4 2 1\n2 3 4 1", "output": "3" }, { "input": "4 3 3\n4 1 3 2", "output": "0" }, { "input": "4 3 4\n1 2 3 4", "output": "-1" }, { "input": "3 1 3\n2 1 3", "output": "-1" }, { "input": "1 1 1\n1", "output": "0" }, { "input": "10 6 7\n10 7 8 1 5 6 2 9 4 3", "output": "-1" }, { "input": "10 3 6\n5 6 7 3 8 4 2 1 10 9", "output": "3" }, { "input": "10 10 4\n4 2 6 9 5 3 8 1 10 7", "output": "4" }, { "input": "100 90 57\n19 55 91 50 31 23 60 84 38 1 22 51 27 76 28 98 11 44 61 63 15 93 52 3 66 16 53 36 18 62 35 85 78 37 73 64 87 74 46 26 82 69 49 33 83 89 56 67 71 25 39 94 96 17 21 6 47 68 34 42 57 81 13 10 54 2 48 80 20 77 4 5 59 30 90 95 45 75 8 88 24 41 40 14 97 32 7 9 65 70 100 99 72 58 92 29 79 12 86 43", "output": "-1" }, { "input": "100 11 20\n80 25 49 55 22 98 35 59 88 14 91 20 68 66 53 50 77 45 82 63 96 93 85 46 37 74 84 9 7 95 41 86 23 36 33 27 81 39 18 13 12 92 24 71 3 48 83 61 31 87 28 79 75 38 11 21 29 69 44 100 72 62 32 43 30 16 47 56 89 60 42 17 26 70 94 99 4 6 2 73 8 52 65 1 15 90 67 51 78 10 5 76 57 54 34 58 19 64 40 97", "output": "26" }, { "input": "100 84 83\n30 67 53 89 94 54 92 17 26 57 15 5 74 85 10 61 18 70 91 75 14 11 93 41 25 78 88 81 20 51 35 4 62 1 97 39 68 52 47 77 64 3 2 72 60 80 8 83 65 98 21 22 45 7 58 31 43 38 90 99 49 87 55 36 29 6 37 23 66 76 59 79 40 86 63 44 82 32 48 16 50 100 28 96 46 12 27 13 24 9 19 84 73 69 71 42 56 33 34 95", "output": "71" }, { "input": "100 6 93\n74 62 67 81 40 85 35 42 59 72 80 28 79 41 16 19 33 63 13 10 69 76 70 93 49 84 89 94 8 37 11 90 26 52 47 7 36 95 86 75 56 15 61 99 88 12 83 21 20 3 100 17 32 82 6 5 43 25 66 68 73 78 18 77 92 27 23 2 4 39 60 48 22 24 14 97 29 34 54 64 71 57 87 38 9 50 30 53 51 45 44 31 58 91 98 65 55 1 46 96", "output": "-1" }, { "input": "100 27 56\n58 18 50 41 33 37 14 87 77 73 61 53 15 8 70 68 45 96 54 78 39 67 51 60 80 12 93 99 20 92 17 79 4 13 62 91 69 29 49 36 98 34 90 35 84 64 38 83 28 89 97 94 9 16 26 48 10 57 23 75 27 88 44 21 72 76 30 43 32 2 71 24 100 1 31 81 42 40 47 55 86 85 66 5 52 22 95 74 11 19 7 82 6 25 56 63 65 59 46 3", "output": "20" }, { "input": "87 42 49\n45 55 24 44 56 72 74 23 4 7 37 67 22 6 58 76 40 36 3 20 26 87 64 75 49 70 62 42 31 1 80 33 25 59 78 27 32 2 41 61 66 28 19 85 15 69 52 77 50 14 16 34 18 43 73 83 11 39 29 9 35 13 81 54 79 21 60 46 71 57 12 17 5 47 38 30 10 84 53 63 68 8 51 65 48 86 82", "output": "-1" }, { "input": "2 1 2\n1 2", "output": "-1" }, { "input": "2 1 2\n2 1", "output": "1" }, { "input": "2 2 2\n1 2", "output": "0" }, { "input": "2 2 2\n2 1", "output": "0" }, { "input": "2 1 1\n2 1", "output": "0" } ]
1,586,525,459
2,147,483,647
PyPy 3
OK
TESTS
33
372
10,547,200
n,i,f=map(int,input().split()) moves=0 L=[int(i) for i in input().split()] for j in range(n): if i==f: print(moves) exit(0) i=L[i-1] moves+=1 print("-1")
Title: Find Marble Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya and Vasya are playing a game. Petya's got *n* non-transparent glasses, standing in a row. The glasses' positions are indexed with integers from 1 to *n* from left to right. Note that the positions are indexed but the glasses are not. First Petya puts a marble under the glass in position *s*. Then he performs some (possibly zero) shuffling operations. One shuffling operation means moving the glass from the first position to position *p*1, the glass from the second position to position *p*2 and so on. That is, a glass goes from position *i* to position *p**i*. Consider all glasses are moving simultaneously during one shuffling operation. When the glasses are shuffled, the marble doesn't travel from one glass to another: it moves together with the glass it was initially been put in. After all shuffling operations Petya shows Vasya that the ball has moved to position *t*. Vasya's task is to say what minimum number of shuffling operations Petya has performed or determine that Petya has made a mistake and the marble could not have got from position *s* to position *t*. Input Specification: The first line contains three integers: *n*,<=*s*,<=*t* (1<=≤<=*n*<=≤<=105; 1<=≤<=*s*,<=*t*<=≤<=*n*) — the number of glasses, the ball's initial and final position. The second line contains *n* space-separated integers: *p*1,<=*p*2,<=...,<=*p**n* (1<=≤<=*p**i*<=≤<=*n*) — the shuffling operation parameters. It is guaranteed that all *p**i*'s are distinct. Note that *s* can equal *t*. Output Specification: If the marble can move from position *s* to position *t*, then print on a single line a non-negative integer — the minimum number of shuffling operations, needed to get the marble to position *t*. If it is impossible, print number -1. Demo Input: ['4 2 1\n2 3 4 1\n', '4 3 3\n4 1 3 2\n', '4 3 4\n1 2 3 4\n', '3 1 3\n2 1 3\n'] Demo Output: ['3\n', '0\n', '-1\n', '-1\n'] Note: none
```python n,i,f=map(int,input().split()) moves=0 L=[int(i) for i in input().split()] for j in range(n): if i==f: print(moves) exit(0) i=L[i-1] moves+=1 print("-1") ```
3
50
A
Domino piling
PROGRAMMING
800
[ "greedy", "math" ]
A. Domino piling
2
256
You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions.
In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16).
Output one number — the maximal number of dominoes, which can be placed.
[ "2 4\n", "3 3\n" ]
[ "4\n", "4\n" ]
none
500
[ { "input": "2 4", "output": "4" }, { "input": "3 3", "output": "4" }, { "input": "1 5", "output": "2" }, { "input": "1 6", "output": "3" }, { "input": "1 15", "output": "7" }, { "input": "1 16", "output": "8" }, { "input": "2 5", "output": "5" }, { "input": "2 6", "output": "6" }, { "input": "2 7", "output": "7" }, { "input": "2 14", "output": "14" }, { "input": "2 15", "output": "15" }, { "input": "1 4", "output": "2" }, { "input": "2 16", "output": "16" }, { "input": "3 5", "output": "7" }, { "input": "3 6", "output": "9" }, { "input": "3 10", "output": "15" }, { "input": "3 14", "output": "21" }, { "input": "3 15", "output": "22" }, { "input": "3 16", "output": "24" }, { "input": "5 7", "output": "17" }, { "input": "16 16", "output": "128" }, { "input": "15 16", "output": "120" }, { "input": "2 3", "output": "3" }, { "input": "15 15", "output": "112" }, { "input": "14 16", "output": "112" }, { "input": "11 13", "output": "71" }, { "input": "5 16", "output": "40" }, { "input": "8 15", "output": "60" }, { "input": "2 2", "output": "2" }, { "input": "3 4", "output": "6" }, { "input": "4 4", "output": "8" }, { "input": "1 1", "output": "0" }, { "input": "1 2", "output": "1" }, { "input": "1 3", "output": "1" }, { "input": "14 15", "output": "105" } ]
1,666,028,520
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
31
92
0
n = input().split() a = int(n[0]) b = int(n[1]) c = a * b if c == 1: print(0) print(c // 2)
Title: Domino piling Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: You are given a rectangular board of *M*<=×<=*N* squares. Also you are given an unlimited number of standard domino pieces of 2<=×<=1 squares. You are allowed to rotate the pieces. You are asked to place as many dominoes as possible on the board so as to meet the following conditions: 1. Each domino completely covers two squares. 2. No two dominoes overlap. 3. Each domino lies entirely inside the board. It is allowed to touch the edges of the board. Find the maximum number of dominoes, which can be placed under these restrictions. Input Specification: In a single line you are given two integers *M* and *N* — board sizes in squares (1<=≤<=*M*<=≤<=*N*<=≤<=16). Output Specification: Output one number — the maximal number of dominoes, which can be placed. Demo Input: ['2 4\n', '3 3\n'] Demo Output: ['4\n', '4\n'] Note: none
```python n = input().split() a = int(n[0]) b = int(n[1]) c = a * b if c == 1: print(0) print(c // 2) ```
0
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 — the areas of the parallelepiped's faces. The area's values are positive (<=&gt;<=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 — 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 1 × 1 × 1, in the second one — 2 × 2 × 3.
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" } ]
1,631,623,900
2,147,483,647
Python 3
OK
TESTS
27
154
6,758,400
import math def sum(a,b,c): x=math.sqrt(a*b/c) y=math.sqrt(b*c/a) z=math.sqrt(a*c/b) s=x+y+z return 4*s a,b,c= map(int, input().split()) print(int(sum(a,b,c)))
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 — the areas of the parallelepiped's faces. The area's values are positive (<=&gt;<=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 — 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 1 × 1 × 1, in the second one — 2 × 2 × 3.
```python import math def sum(a,b,c): x=math.sqrt(a*b/c) y=math.sqrt(b*c/a) z=math.sqrt(a*c/b) s=x+y+z return 4*s a,b,c= map(int, input().split()) print(int(sum(a,b,c))) ```
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 ∞ (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 — 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" } ]
1,638,549,993
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
30
0
n = input() p = input() s = '' for i in range(100): if p[i] != n[i]: s+='1' else: s+='0' print(s)
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 ∞ (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 — 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 n = input() p = input() s = '' for i in range(100): if p[i] != n[i]: s+='1' else: s+='0' print(s) ```
-1
181
A
Series of Crimes
PROGRAMMING
800
[ "brute force", "geometry", "implementation" ]
null
null
The Berland capital is shaken with three bold crimes committed by the Pihsters, a notorious criminal gang. The Berland capital's map is represented by an *n*<=×<=*m* rectangular table. Each cell of the table on the map represents some districts of the capital. The capital's main detective Polycarpus took a map and marked there the districts where the first three robberies had been committed as asterisks. Deduction tells Polycarpus that the fourth robbery will be committed in such district, that all four robbed districts will form the vertices of some rectangle, parallel to the sides of the map. Polycarpus is good at deduction but he's hopeless at math. So he asked you to find the district where the fourth robbery will be committed.
The first line contains two space-separated integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=100) — the number of rows and columns in the table, correspondingly. Each of the next *n* lines contains *m* characters — the description of the capital's map. Each character can either be a "." (dot), or an "*" (asterisk). A character equals "*" if the corresponding district has been robbed. Otherwise, it equals ".". It is guaranteed that the map has exactly three characters "*" and we can always find the fourth district that meets the problem requirements.
Print two integers — the number of the row and the number of the column of the city district that is the fourth one to be robbed. The rows are numbered starting from one from top to bottom and the columns are numbered starting from one from left to right.
[ "3 2\n.*\n..\n**\n", "3 3\n*.*\n*..\n...\n" ]
[ "1 1\n", "2 3\n" ]
none
500
[ { "input": "3 2\n.*\n..\n**", "output": "1 1" }, { "input": "2 5\n*....\n*...*", "output": "1 5" }, { "input": "7 2\n..\n**\n..\n..\n..\n..\n.*", "output": "7 1" }, { "input": "7 2\n*.\n..\n..\n..\n..\n..\n**", "output": "1 2" }, { "input": "2 10\n*......*..\n.......*..", "output": "2 1" }, { "input": "10 3\n*..\n...\n...\n...\n...\n...\n...\n...\n...\n**.", "output": "1 2" }, { "input": "100 2\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..\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": "1 2" }, { "input": "99 3\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...\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": "99 2" }, { "input": "98 3\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...\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": "2 3" }, { "input": "99 3\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...\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": "99 2" }, { "input": "98 3\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...\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": "2 3" }, { "input": "2 100\n...................................................................................................*\n*..................................................................................................*", "output": "1 1" }, { "input": "2 2\n*.\n**", "output": "1 2" }, { "input": "2 2\n**\n.*", "output": "2 1" }, { "input": "2 3\n*.*\n..*", "output": "2 1" } ]
1,545,355,566
2,147,483,647
Python 3
OK
TESTS
36
248
0
string = input().split(' ') n = int(string[0]) m = int(string[1]) rows = [] cols = [] for i in range(n): string = input() if '*' in string: rows.append(i+1) cols.append(string.index('*')+1) if string.count('*') == 2: rows.append(i+1) cols.append(string.rfind('*')+1) uniqueRow = set(rows) uniqueCol = set(cols) for num in uniqueRow: if rows.count(num) == 1: string = str(num) + ' ' break for num in uniqueCol: if cols.count(num) == 1: string += str(num) break print(string)
Title: Series of Crimes Time Limit: None seconds Memory Limit: None megabytes Problem Description: The Berland capital is shaken with three bold crimes committed by the Pihsters, a notorious criminal gang. The Berland capital's map is represented by an *n*<=×<=*m* rectangular table. Each cell of the table on the map represents some districts of the capital. The capital's main detective Polycarpus took a map and marked there the districts where the first three robberies had been committed as asterisks. Deduction tells Polycarpus that the fourth robbery will be committed in such district, that all four robbed districts will form the vertices of some rectangle, parallel to the sides of the map. Polycarpus is good at deduction but he's hopeless at math. So he asked you to find the district where the fourth robbery will be committed. Input Specification: The first line contains two space-separated integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=100) — the number of rows and columns in the table, correspondingly. Each of the next *n* lines contains *m* characters — the description of the capital's map. Each character can either be a "." (dot), or an "*" (asterisk). A character equals "*" if the corresponding district has been robbed. Otherwise, it equals ".". It is guaranteed that the map has exactly three characters "*" and we can always find the fourth district that meets the problem requirements. Output Specification: Print two integers — the number of the row and the number of the column of the city district that is the fourth one to be robbed. The rows are numbered starting from one from top to bottom and the columns are numbered starting from one from left to right. Demo Input: ['3 2\n.*\n..\n**\n', '3 3\n*.*\n*..\n...\n'] Demo Output: ['1 1\n', '2 3\n'] Note: none
```python string = input().split(' ') n = int(string[0]) m = int(string[1]) rows = [] cols = [] for i in range(n): string = input() if '*' in string: rows.append(i+1) cols.append(string.index('*')+1) if string.count('*') == 2: rows.append(i+1) cols.append(string.rfind('*')+1) uniqueRow = set(rows) uniqueCol = set(cols) for num in uniqueRow: if rows.count(num) == 1: string = str(num) + ' ' break for num in uniqueCol: if cols.count(num) == 1: string += str(num) break print(string) ```
3
596
A
Wilbur and Swimming Pool
PROGRAMMING
1,100
[ "geometry", "implementation" ]
null
null
After making bad dives into swimming pools, Wilbur wants to build a swimming pool in the shape of a rectangle in his backyard. He has set up coordinate axes, and he wants the sides of the rectangle to be parallel to them. Of course, the area of the rectangle must be positive. Wilbur had all four vertices of the planned pool written on a paper, until his friend came along and erased some of the vertices. Now Wilbur is wondering, if the remaining *n* vertices of the initial rectangle give enough information to restore the area of the planned swimming pool.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=4) — the number of vertices that were not erased by Wilbur's friend. Each of the following *n* lines contains two integers *x**i* and *y**i* (<=-<=1000<=≤<=*x**i*,<=*y**i*<=≤<=1000) —the coordinates of the *i*-th vertex that remains. Vertices are given in an arbitrary order. It's guaranteed that these points are distinct vertices of some rectangle, that has positive area and which sides are parallel to the coordinate axes.
Print the area of the initial rectangle if it could be uniquely determined by the points remaining. Otherwise, print <=-<=1.
[ "2\n0 0\n1 1\n", "1\n1 1\n" ]
[ "1\n", "-1\n" ]
In the first sample, two opposite corners of the initial rectangle are given, and that gives enough information to say that the rectangle is actually a unit square. In the second sample there is only one vertex left and this is definitely not enough to uniquely define the area.
500
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2", "output": "1" }, { "input": "3\n0 0\n1 0\n1 1", "output": "1" }, { "input": "3\n0 0\n0 5\n5 0", "output": "25" }, { "input": "3\n0 0\n0 1\n1 1", "output": "1" }, { "input": "4\n0 0\n1 0\n1 1\n0 1", "output": "1" }, { "input": "3\n4 4\n1 4\n4 1", "output": "9" }, { "input": "3\n0 0\n2 0\n2 1", "output": "2" }, { "input": "3\n0 0\n2 0\n0 2", "output": "4" }, { "input": "3\n0 0\n0 1\n5 0", "output": "5" }, { "input": "3\n1 1\n1 3\n3 1", "output": "4" }, { "input": "4\n0 0\n1 0\n0 1\n1 1", "output": "1" }, { "input": "2\n1 0\n2 1", "output": "1" }, { "input": "3\n0 0\n1 0\n0 1", "output": "1" }, { "input": "3\n1 0\n0 0\n0 1", "output": "1" }, { "input": "3\n0 0\n0 5\n5 5", "output": "25" }, { "input": "3\n1 0\n5 0\n5 10", "output": "40" }, { "input": "3\n0 0\n1 0\n1 2", "output": "2" }, { "input": "4\n0 1\n0 0\n1 0\n1 1", "output": "1" }, { "input": "3\n0 0\n2 0\n0 1", "output": "2" }, { "input": "3\n-2 -1\n-1 -1\n-1 -2", "output": "1" }, { "input": "2\n1 0\n0 1", "output": "1" }, { 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0\n1 0", "output": "1" }, { "input": "3\n1 2\n1 3\n2 3", "output": "1" }, { "input": "4\n0 0\n0 1\n1 1\n1 0", "output": "1" }, { "input": "2\n-3 0\n3 3", "output": "18" }, { "input": "3\n1 1\n0 1\n1 0", "output": "1" }, { "input": "3\n0 0\n5 0\n5 5", "output": "25" }, { "input": "3\n79 79\n79 158\n158 79", "output": "6241" }, { "input": "3\n1 0\n1 -1\n0 0", "output": "1" }, { "input": "3\n1 1\n1 2\n2 2", "output": "1" }, { "input": "3\n0 1\n0 0\n1 0", "output": "1" }, { "input": "3\n2 1\n2 4\n6 1", "output": "12" }, { "input": "3\n5 0\n0 0\n5 5", "output": "25" } ]
1,586,330,963
2,147,483,647
Python 3
OK
TESTS
121
109
307,200
#----Kuzlyaev-Nikita-Codeforces----- #------------08.04.2020------------- import math alph="abcdefghijklmnopqrstuvwxyz" #----------------------------------- n=int(input()) a=[] for i in range(n): x,y=map(int,input().split()) a.append([x,y]) if n==1:print(-1) else: S=0 for i in range(n-1): for j in range(i+1,n): x1,y1,x2,y2=a[i][0],a[i][1],a[j][0],a[j][1] if x1!=x2 and y1!=y2: S=abs(x1-x2)*abs(y1-y2) if S!=0:print(S) else: print(-1)
Title: Wilbur and Swimming Pool Time Limit: None seconds Memory Limit: None megabytes Problem Description: After making bad dives into swimming pools, Wilbur wants to build a swimming pool in the shape of a rectangle in his backyard. He has set up coordinate axes, and he wants the sides of the rectangle to be parallel to them. Of course, the area of the rectangle must be positive. Wilbur had all four vertices of the planned pool written on a paper, until his friend came along and erased some of the vertices. Now Wilbur is wondering, if the remaining *n* vertices of the initial rectangle give enough information to restore the area of the planned swimming pool. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=4) — the number of vertices that were not erased by Wilbur's friend. Each of the following *n* lines contains two integers *x**i* and *y**i* (<=-<=1000<=≤<=*x**i*,<=*y**i*<=≤<=1000) —the coordinates of the *i*-th vertex that remains. Vertices are given in an arbitrary order. It's guaranteed that these points are distinct vertices of some rectangle, that has positive area and which sides are parallel to the coordinate axes. Output Specification: Print the area of the initial rectangle if it could be uniquely determined by the points remaining. Otherwise, print <=-<=1. Demo Input: ['2\n0 0\n1 1\n', '1\n1 1\n'] Demo Output: ['1\n', '-1\n'] Note: In the first sample, two opposite corners of the initial rectangle are given, and that gives enough information to say that the rectangle is actually a unit square. In the second sample there is only one vertex left and this is definitely not enough to uniquely define the area.
```python #----Kuzlyaev-Nikita-Codeforces----- #------------08.04.2020------------- import math alph="abcdefghijklmnopqrstuvwxyz" #----------------------------------- n=int(input()) a=[] for i in range(n): x,y=map(int,input().split()) a.append([x,y]) if n==1:print(-1) else: S=0 for i in range(n-1): for j in range(i+1,n): x1,y1,x2,y2=a[i][0],a[i][1],a[j][0],a[j][1] if x1!=x2 and y1!=y2: S=abs(x1-x2)*abs(y1-y2) if S!=0:print(S) else: print(-1) ```
3
803
A
Maximal Binary Matrix
PROGRAMMING
1,400
[ "constructive algorithms" ]
null
null
You are given matrix with *n* rows and *n* columns filled with zeroes. You should put *k* ones in it in such a way that the resulting matrix is symmetrical with respect to the main diagonal (the diagonal that goes from the top left to the bottom right corner) and is lexicographically maximal. One matrix is lexicographically greater than the other if the first different number in the first different row from the top in the first matrix is greater than the corresponding number in the second one. If there exists no such matrix then output -1.
The first line consists of two numbers *n* and *k* (1<=≤<=*n*<=≤<=100, 0<=≤<=*k*<=≤<=106).
If the answer exists then output resulting matrix. Otherwise output -1.
[ "2 1\n", "3 2\n", "2 5\n" ]
[ "1 0 \n0 0 \n", "1 0 0 \n0 1 0 \n0 0 0 \n", "-1\n" ]
none
0
[ { "input": "2 1", "output": "1 0 \n0 0 " }, { "input": "3 2", "output": "1 0 0 \n0 1 0 \n0 0 0 " }, { "input": "2 5", "output": "-1" }, { "input": "1 0", "output": "0 " }, { "input": "1 1", "output": "1 " }, { "input": "20 398", "output": "1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1..." }, { "input": "20 401", "output": "-1" }, { "input": "100 3574", "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 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "100 10000", "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 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 \n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 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": "100 10001", "output": "-1" }, { "input": "2 3", "output": "1 1 \n1 0 " }, { "input": "4 5", "output": "1 1 1 0 \n1 0 0 0 \n1 0 0 0 \n0 0 0 0 " }, { "input": "5 6", "output": "1 1 1 0 0 \n1 1 0 0 0 \n1 0 0 0 0 \n0 0 0 0 0 \n0 0 0 0 0 " }, { "input": "5 24", "output": "1 1 1 1 1 \n1 1 1 1 1 \n1 1 1 1 1 \n1 1 1 1 1 \n1 1 1 1 0 " }, { "input": "2 0", "output": "0 0 \n0 0 " }, { "input": "3 5", "output": "1 1 1 \n1 0 0 \n1 0 0 " }, { "input": "3 3", "output": "1 1 0 \n1 0 0 \n0 0 0 " }, { "input": "5 10", "output": "1 1 1 1 1 \n1 1 0 0 0 \n1 0 0 0 0 \n1 0 0 0 0 \n1 0 0 0 0 " }, { "input": "3 4", "output": "1 1 0 \n1 1 0 \n0 0 0 " }, { "input": "4 3", "output": "1 1 0 0 \n1 0 0 0 \n0 0 0 0 \n0 0 0 0 " }, { "input": "1 1000000", "output": "-1" }, { "input": "3 6", "output": "1 1 1 \n1 1 0 \n1 0 0 " }, { "input": "1 2", "output": "-1" }, { "input": "1 0", "output": "0 " }, { "input": "1 1", "output": "1 " }, { "input": "1 2", "output": "-1" }, { "input": "1 3", "output": "-1" }, { "input": "1 4", "output": "-1" }, { "input": "1 5", "output": "-1" }, { "input": "1 6", 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1,698,137,848
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
5
46
0
a,b=map(int,input().split()) m=[[0 for _ in range(a)] for _ in range(a)] if b>a*a: print(-1) if b<=a: for i in range(b): m[i][i]=1 for i in range(a): p="" for j in range(a): p+=f"{m[i][j]} " print(p[:-1:]) if b>a and b<=a*a: if (b-a)%2==1: print(-1) else: b-=a;b=b//2 for i in range(a): m[i][i]=1 c,d=0,1 while b>0: m[c][d]=1;m[d][c]=1 d+=1;b-=1 if d>a: c+=1;d=c+1 for i in range(a): p="" for j in range(a): p+=f"{m[i][j]} " print(p[:-1:])
Title: Maximal Binary Matrix Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given matrix with *n* rows and *n* columns filled with zeroes. You should put *k* ones in it in such a way that the resulting matrix is symmetrical with respect to the main diagonal (the diagonal that goes from the top left to the bottom right corner) and is lexicographically maximal. One matrix is lexicographically greater than the other if the first different number in the first different row from the top in the first matrix is greater than the corresponding number in the second one. If there exists no such matrix then output -1. Input Specification: The first line consists of two numbers *n* and *k* (1<=≤<=*n*<=≤<=100, 0<=≤<=*k*<=≤<=106). Output Specification: If the answer exists then output resulting matrix. Otherwise output -1. Demo Input: ['2 1\n', '3 2\n', '2 5\n'] Demo Output: ['1 0 \n0 0 \n', '1 0 0 \n0 1 0 \n0 0 0 \n', '-1\n'] Note: none
```python a,b=map(int,input().split()) m=[[0 for _ in range(a)] for _ in range(a)] if b>a*a: print(-1) if b<=a: for i in range(b): m[i][i]=1 for i in range(a): p="" for j in range(a): p+=f"{m[i][j]} " print(p[:-1:]) if b>a and b<=a*a: if (b-a)%2==1: print(-1) else: b-=a;b=b//2 for i in range(a): m[i][i]=1 c,d=0,1 while b>0: m[c][d]=1;m[d][c]=1 d+=1;b-=1 if d>a: c+=1;d=c+1 for i in range(a): p="" for j in range(a): p+=f"{m[i][j]} " print(p[:-1:]) ```
-1
855
A
Tom Riddle's Diary
PROGRAMMING
800
[ "brute force", "implementation", "strings" ]
null
null
Harry Potter is on a mission to destroy You-Know-Who's Horcruxes. The first Horcrux that he encountered in the Chamber of Secrets is Tom Riddle's diary. The diary was with Ginny and it forced her to open the Chamber of Secrets. Harry wants to know the different people who had ever possessed the diary to make sure they are not under its influence. He has names of *n* people who possessed the diary in order. You need to tell, for each person, if he/she possessed the diary at some point before or not. Formally, for a name *s**i* in the *i*-th line, output "YES" (without quotes) if there exists an index *j* such that *s**i*<==<=*s**j* and *j*<=&lt;<=*i*, otherwise, output "NO" (without quotes).
First line of input contains an integer *n* (1<=≤<=*n*<=≤<=100) — the number of names in the list. Next *n* lines each contain a string *s**i*, consisting of lowercase English letters. The length of each string is between 1 and 100.
Output *n* lines each containing either "YES" or "NO" (without quotes), depending on whether this string was already present in the stream or not. You can print each letter in any case (upper or lower).
[ "6\ntom\nlucius\nginny\nharry\nginny\nharry\n", "3\na\na\na\n" ]
[ "NO\nNO\nNO\nNO\nYES\nYES\n", "NO\nYES\nYES\n" ]
In test case 1, for *i* = 5 there exists *j* = 3 such that *s*<sub class="lower-index">*i*</sub> = *s*<sub class="lower-index">*j*</sub> and *j* &lt; *i*, which means that answer for *i* = 5 is "YES".
500
[ { "input": "6\ntom\nlucius\nginny\nharry\nginny\nharry", "output": "NO\nNO\nNO\nNO\nYES\nYES" }, { "input": "3\na\na\na", "output": "NO\nYES\nYES" }, { "input": "1\nzn", "output": "NO" }, { "input": "9\nliyzmbjwnzryjokufuxcqtzwworjeoxkbaqrujrhdidqdvwdfzilwszgnzglnnbogaclckfnbqovtziuhwvyrqwmskx\nliyzmbjwnzryjokufuxcqtzwworjeoxkbaqrujrhdidqdvwdfzilwszgnzglnnbogaclckfnbqovtziuhwvyrqwmskx\nliyzmbjwnzryjokufuxcqtzwworjeoxkbaqrujrhdidqdvwdfzilwszgnzglnnbogaclckfnbqovtziuhwvyrqwmskx\nhrtm\nssjqvixduertmotgagizamvfucfwtxqnhuowbqbzctgznivehelpcyigwrbbdsxnewfqvcf\nhyrtxvozpbveexfkgalmguozzakitjiwsduqxonb\nwcyxteiwtcyuztaguilqpbiwcwjaiq\nwcyxteiwtcyuztaguilqpbiwcwjaiq\nbdbivqzvhggth", "output": "NO\nYES\nYES\nNO\nNO\nNO\nNO\nYES\nNO" }, { "input": "10\nkkiubdktydpdcbbttwpfdplhhjhrpqmpg\nkkiubdktydpdcbbttwpfdplhhjhrpqmpg\nmvutw\nqooeqoxzxwetlpecqiwgdbogiqqulttysyohwhzxzphvsfmnplizxoebzcvvfyppqbhxjksuzepuezqqzxlfmdanoeaoqmor\nmvutw\nvchawxjoreboqzuklifv\nvchawxjoreboqzuklifv\nnivijte\nrflybruq\nvchawxjoreboqzuklifv", "output": "NO\nYES\nNO\nNO\nYES\nNO\nYES\nNO\nNO\nYES" }, { "input": "1\nz", "output": "NO" }, { "input": "9\nl\ny\nm\nj\nn\nr\nj\nk\nf", "output": "NO\nNO\nNO\nNO\nNO\nNO\nYES\nNO\nNO" }, { "input": "14\nw\na\nh\np\nk\nw\ny\nv\ns\nf\nx\nd\nk\nr", "output": "NO\nNO\nNO\nNO\nNO\nYES\nNO\nNO\nNO\nNO\nNO\nNO\nYES\nNO" }, { "input": "25\np\nk\nu\nl\nf\nt\nc\ns\nq\nd\nb\nq\no\ni\ni\nd\ni\nw\nn\ng\nw\nt\na\ne\ni", "output": "NO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nYES\nNO\nNO\nYES\nYES\nYES\nNO\nNO\nNO\nYES\nYES\nNO\nNO\nYES" }, { "input": "20\nd\nh\ng\no\np\ne\nt\nj\nv\ni\nt\nh\ns\ni\nw\nf\nx\na\nl\ni", "output": "NO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nNO\nYES\nYES\nNO\nYES\nNO\nNO\nNO\nNO\nNO\nYES" }, { "input": "3\nbbbbbbb\nbbbbbbbbb\nbbbbbbbbbbbbbbbbbbbbbbbbbbbb", "output": "NO\nNO\nNO" }, { "input": "2\nab\nba", "output": "NO\nNO" }, { "input": "6\ntom\nlucius\nginnys\nharpy\nginny\nharry", "output": "NO\nNO\nNO\nNO\nNO\nNO" }, { "input": "2\nabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcde\nabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcdeabcde", "output": "NO\nYES" }, { "input": "42\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na\na", "output": "NO\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES\nYES" } ]
1,583,329,279
2,147,483,647
PyPy 3
OK
TESTS
55
140
0
n=int(input()) a=set() b="" for i in range(n): b=input() if b in a: print("YES") else: print("NO") a.add(b)
Title: Tom Riddle's Diary Time Limit: None seconds Memory Limit: None megabytes Problem Description: Harry Potter is on a mission to destroy You-Know-Who's Horcruxes. The first Horcrux that he encountered in the Chamber of Secrets is Tom Riddle's diary. The diary was with Ginny and it forced her to open the Chamber of Secrets. Harry wants to know the different people who had ever possessed the diary to make sure they are not under its influence. He has names of *n* people who possessed the diary in order. You need to tell, for each person, if he/she possessed the diary at some point before or not. Formally, for a name *s**i* in the *i*-th line, output "YES" (without quotes) if there exists an index *j* such that *s**i*<==<=*s**j* and *j*<=&lt;<=*i*, otherwise, output "NO" (without quotes). Input Specification: First line of input contains an integer *n* (1<=≤<=*n*<=≤<=100) — the number of names in the list. Next *n* lines each contain a string *s**i*, consisting of lowercase English letters. The length of each string is between 1 and 100. Output Specification: Output *n* lines each containing either "YES" or "NO" (without quotes), depending on whether this string was already present in the stream or not. You can print each letter in any case (upper or lower). Demo Input: ['6\ntom\nlucius\nginny\nharry\nginny\nharry\n', '3\na\na\na\n'] Demo Output: ['NO\nNO\nNO\nNO\nYES\nYES\n', 'NO\nYES\nYES\n'] Note: In test case 1, for *i* = 5 there exists *j* = 3 such that *s*<sub class="lower-index">*i*</sub> = *s*<sub class="lower-index">*j*</sub> and *j* &lt; *i*, which means that answer for *i* = 5 is "YES".
```python n=int(input()) a=set() b="" for i in range(n): b=input() if b in a: print("YES") else: print("NO") a.add(b) ```
3
841
B
Godsend
PROGRAMMING
1,100
[ "games", "math" ]
null
null
Leha somehow found an array consisting of *n* integers. Looking at it, he came up with a task. Two players play the game on the array. Players move one by one. The first player can choose for his move a subsegment of non-zero length with an odd sum of numbers and remove it from the array, after that the remaining parts are glued together into one array and the game continues. The second player can choose a subsegment of non-zero length with an even sum and remove it. Loses the one who can not make a move. Who will win if both play optimally?
First line of input data contains single integer *n* (1<=≤<=*n*<=≤<=106) — length of the array. Next line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=109).
Output answer in single line. "First", if first player wins, and "Second" otherwise (without quotes).
[ "4\n1 3 2 3\n", "2\n2 2\n" ]
[ "First\n", "Second\n" ]
In first sample first player remove whole array in one move and win. In second sample first player can't make a move and lose.
1,000
[ { "input": "4\n1 3 2 3", "output": "First" }, { "input": "2\n2 2", "output": "Second" }, { "input": "4\n2 4 6 8", "output": "Second" }, { "input": "5\n1 1 1 1 1", "output": "First" }, { "input": "4\n720074544 345031254 849487632 80870826", "output": "Second" }, { "input": "1\n0", "output": "Second" }, { "input": "1\n999999999", "output": "First" }, { "input": "2\n1 999999999", "output": "First" }, { "input": "4\n3 3 4 4", "output": "First" }, { "input": "2\n1 2", "output": "First" }, { "input": "8\n2 2 2 1 1 2 2 2", "output": "First" }, { "input": "5\n3 3 2 2 2", "output": "First" }, { "input": "4\n0 1 1 0", "output": "First" }, { "input": "3\n1 2 2", "output": "First" }, { "input": "6\n2 2 1 1 4 2", "output": "First" }, { "input": "8\n2 2 2 3 3 2 2 2", "output": "First" }, { "input": "4\n2 3 3 4", "output": "First" }, { "input": "10\n2 2 2 2 3 1 2 2 2 2", "output": "First" }, { "input": "6\n2 2 1 1 2 2", "output": "First" }, { "input": "3\n1 1 2", "output": "First" }, { "input": "6\n2 4 3 3 4 6", "output": "First" }, { "input": "6\n4 4 3 3 4 4", "output": "First" }, { "input": "4\n1 1 2 2", "output": "First" }, { "input": "4\n1 3 5 7", "output": "First" }, { "input": "4\n2 1 1 2", "output": "First" }, { "input": "4\n1 3 3 2", "output": "First" }, { "input": "5\n3 2 2 2 2", "output": "First" }, { "input": "3\n2 1 1", "output": "First" }, { "input": "4\n1000000000 1000000000 1000000000 99999999", "output": "First" }, { "input": "4\n2 2 1 1", "output": "First" }, { "input": "5\n2 3 2 3 2", "output": "First" }, { "input": "1\n1", "output": "First" }, { "input": "4\n1000000000 1000000000 1000000000 1", "output": "First" }, { "input": "5\n2 2 2 1 1", "output": "First" }, { "input": "6\n2 1 1 1 1 2", "output": "First" }, { "input": "6\n1 2 2 2 2 1", "output": "First" }, { "input": "11\n2 2 2 2 2 1 2 2 2 2 2", "output": "First" }, { "input": "5\n1 3 2 2 2", "output": "First" }, { "input": "3\n2 3 2", "output": "First" }, { "input": "2\n1 1", "output": "First" }, { "input": "5\n4 4 4 3 3", "output": "First" }, { "input": "5\n3 3 4 4 4", "output": "First" }, { "input": "1\n2", "output": "Second" } ]
1,617,795,225
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
9
1,076
81,203,200
n=int(input()) a=[int(x) for x in input().split()] odds=0 evens=0 for i in a: if i%2==0: evens+=1 else: odds+=1 #if odds==n: # if odds%2==0: # print("Second") #else: # print("First") if odds>evens: print("First") else: print("Second")
Title: Godsend Time Limit: None seconds Memory Limit: None megabytes Problem Description: Leha somehow found an array consisting of *n* integers. Looking at it, he came up with a task. Two players play the game on the array. Players move one by one. The first player can choose for his move a subsegment of non-zero length with an odd sum of numbers and remove it from the array, after that the remaining parts are glued together into one array and the game continues. The second player can choose a subsegment of non-zero length with an even sum and remove it. Loses the one who can not make a move. Who will win if both play optimally? Input Specification: First line of input data contains single integer *n* (1<=≤<=*n*<=≤<=106) — length of the array. Next line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=109). Output Specification: Output answer in single line. "First", if first player wins, and "Second" otherwise (without quotes). Demo Input: ['4\n1 3 2 3\n', '2\n2 2\n'] Demo Output: ['First\n', 'Second\n'] Note: In first sample first player remove whole array in one move and win. In second sample first player can't make a move and lose.
```python n=int(input()) a=[int(x) for x in input().split()] odds=0 evens=0 for i in a: if i%2==0: evens+=1 else: odds+=1 #if odds==n: # if odds%2==0: # print("Second") #else: # print("First") if odds>evens: print("First") else: print("Second") ```
0
378
A
Playing with Dice
PROGRAMMING
800
[ "brute force" ]
null
null
Two players are playing a game. First each of them writes an integer from 1 to 6, and then a dice is thrown. The player whose written number got closer to the number on the dice wins. If both payers have the same difference, it's a draw. The first player wrote number *a*, the second player wrote number *b*. How many ways to throw a dice are there, at which the first player wins, or there is a draw, or the second player wins?
The single line contains two integers *a* and *b* (1<=≤<=*a*,<=*b*<=≤<=6) — the numbers written on the paper by the first and second player, correspondingly.
Print three integers: the number of ways to throw the dice at which the first player wins, the game ends with a draw or the second player wins, correspondingly.
[ "2 5\n", "2 4\n" ]
[ "3 0 3\n", "2 1 3\n" ]
The dice is a standard cube-shaped six-sided object with each side containing a number from 1 to 6, and where all numbers on all sides are distinct. You can assume that number *a* is closer to number *x* than number *b*, if |*a* - *x*| &lt; |*b* - *x*|.
500
[ { "input": "2 5", "output": "3 0 3" }, { "input": "2 4", "output": "2 1 3" }, { "input": "5 3", "output": "2 1 3" }, { "input": "1 6", "output": "3 0 3" }, { "input": "5 1", "output": "3 1 2" }, { "input": "6 3", "output": "2 0 4" }, { "input": "2 3", "output": "2 0 4" }, { "input": "5 6", "output": "5 0 1" }, { "input": "4 4", "output": "0 6 0" }, { "input": "1 1", "output": "0 6 0" }, { "input": "6 4", "output": "1 1 4" }, { "input": "1 4", "output": "2 0 4" }, { "input": "5 5", "output": "0 6 0" }, { "input": "4 5", "output": "4 0 2" }, { "input": "4 3", "output": "3 0 3" }, { "input": "1 5", "output": "2 1 3" }, { "input": "6 5", "output": "1 0 5" }, { "input": "2 2", "output": "0 6 0" }, { "input": "1 3", "output": "1 1 4" }, { "input": "3 6", "output": "4 0 2" }, { "input": "3 1", "output": "4 1 1" }, { "input": "3 2", "output": "4 0 2" }, { "input": "3 5", "output": "3 1 2" }, { "input": "3 3", "output": "0 6 0" }, { "input": "6 2", "output": "2 1 3" }, { "input": "4 1", "output": "4 0 2" }, { "input": "5 2", "output": "3 0 3" }, { "input": "4 2", "output": "3 1 2" }, { "input": "2 1", "output": "5 0 1" }, { "input": "6 1", "output": "3 0 3" }, { "input": "4 6", "output": "4 1 1" }, { "input": "2 6", "output": "3 1 2" }, { "input": "3 4", "output": "3 0 3" }, { "input": "1 2", "output": "1 0 5" }, { "input": "6 6", "output": "0 6 0" }, { "input": "5 4", "output": "2 0 4" }, { "input": "3 3", "output": "0 6 0" }, { "input": "1 1", "output": "0 6 0" } ]
1,623,723,587
2,147,483,647
PyPy 3
OK
TESTS
38
93
0
def solve(n, m): one = 0 tie = 0 two = 0 for i in range(1, 7): if abs(i-n) < abs(i-m): one += 1 elif abs(i-n) == abs(i-m): tie += 1 else: two += 1 return str(one) + ' ' + str(tie) + ' ' + str(two) if __name__ == "__main__": n, m = map(int, input().split()) print(solve(n, m))
Title: Playing with Dice Time Limit: None seconds Memory Limit: None megabytes Problem Description: Two players are playing a game. First each of them writes an integer from 1 to 6, and then a dice is thrown. The player whose written number got closer to the number on the dice wins. If both payers have the same difference, it's a draw. The first player wrote number *a*, the second player wrote number *b*. How many ways to throw a dice are there, at which the first player wins, or there is a draw, or the second player wins? Input Specification: The single line contains two integers *a* and *b* (1<=≤<=*a*,<=*b*<=≤<=6) — the numbers written on the paper by the first and second player, correspondingly. Output Specification: Print three integers: the number of ways to throw the dice at which the first player wins, the game ends with a draw or the second player wins, correspondingly. Demo Input: ['2 5\n', '2 4\n'] Demo Output: ['3 0 3\n', '2 1 3\n'] Note: The dice is a standard cube-shaped six-sided object with each side containing a number from 1 to 6, and where all numbers on all sides are distinct. You can assume that number *a* is closer to number *x* than number *b*, if |*a* - *x*| &lt; |*b* - *x*|.
```python def solve(n, m): one = 0 tie = 0 two = 0 for i in range(1, 7): if abs(i-n) < abs(i-m): one += 1 elif abs(i-n) == abs(i-m): tie += 1 else: two += 1 return str(one) + ' ' + str(tie) + ' ' + str(two) if __name__ == "__main__": n, m = map(int, input().split()) print(solve(n, m)) ```
3
116
A
Tram
PROGRAMMING
800
[ "implementation" ]
null
null
Linear Kingdom has exactly one tram line. It has *n* stops, numbered from 1 to *n* in the order of tram's movement. At the *i*-th stop *a**i* passengers exit the tram, while *b**i* passengers enter it. The tram is empty before it arrives at the first stop. Also, when the tram arrives at the last stop, all passengers exit so that it becomes empty. Your task is to calculate the tram's minimum capacity such that the number of people inside the tram at any time never exceeds this capacity. Note that at each stop all exiting passengers exit before any entering passenger enters the tram.
The first line contains a single number *n* (2<=≤<=*n*<=≤<=1000) — the number of the tram's stops. Then *n* lines follow, each contains two integers *a**i* and *b**i* (0<=≤<=*a**i*,<=*b**i*<=≤<=1000) — the number of passengers that exits the tram at the *i*-th stop, and the number of passengers that enter the tram at the *i*-th stop. The stops are given from the first to the last stop in the order of tram's movement. - The number of people who exit at a given stop does not exceed the total number of people in the tram immediately before it arrives at the stop. More formally, . This particularly means that *a*1<==<=0. - At the last stop, all the passengers exit the tram and it becomes empty. More formally, . - No passenger will enter the train at the last stop. That is, *b**n*<==<=0.
Print a single integer denoting the minimum possible capacity of the tram (0 is allowed).
[ "4\n0 3\n2 5\n4 2\n4 0\n" ]
[ "6\n" ]
For the first example, a capacity of 6 is sufficient: - At the first stop, the number of passengers inside the tram before arriving is 0. Then, 3 passengers enter the tram, and the number of passengers inside the tram becomes 3. - At the second stop, 2 passengers exit the tram (1 passenger remains inside). Then, 5 passengers enter the tram. There are 6 passengers inside the tram now. - At the third stop, 4 passengers exit the tram (2 passengers remain inside). Then, 2 passengers enter the tram. There are 4 passengers inside the tram now. - Finally, all the remaining passengers inside the tram exit the tram at the last stop. There are no passenger inside the tram now, which is in line with the constraints. Since the number of passengers inside the tram never exceeds 6, a capacity of 6 is sufficient. Furthermore it is not possible for the tram to have a capacity less than 6. Hence, 6 is the correct answer.
500
[ { "input": "4\n0 3\n2 5\n4 2\n4 0", "output": "6" }, { "input": "5\n0 4\n4 6\n6 5\n5 4\n4 0", "output": "6" }, { "input": "10\n0 5\n1 7\n10 8\n5 3\n0 5\n3 3\n8 8\n0 6\n10 1\n9 0", "output": "18" }, { "input": "3\n0 1\n1 1\n1 0", "output": "1" }, { "input": "4\n0 1\n0 1\n1 0\n1 0", "output": "2" }, { "input": "3\n0 0\n0 0\n0 0", "output": "0" }, { "input": "3\n0 1000\n1000 1000\n1000 0", "output": "1000" }, { "input": "5\n0 73\n73 189\n189 766\n766 0\n0 0", "output": "766" }, { "input": "5\n0 0\n0 0\n0 0\n0 1\n1 0", "output": "1" }, { "input": "5\n0 917\n917 923\n904 992\n1000 0\n11 0", "output": "1011" }, { "input": "5\n0 1\n1 2\n2 1\n1 2\n2 0", "output": "2" }, { "input": "5\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "20\n0 7\n2 1\n2 2\n5 7\n2 6\n6 10\n2 4\n0 4\n7 4\n8 0\n10 6\n2 1\n6 1\n1 7\n0 3\n8 7\n6 3\n6 3\n1 1\n3 0", "output": "22" }, { "input": "5\n0 1000\n1000 1000\n1000 1000\n1000 1000\n1000 0", "output": "1000" }, { "input": "10\n0 592\n258 598\n389 203\n249 836\n196 635\n478 482\n994 987\n1000 0\n769 0\n0 0", "output": "1776" }, { "input": "10\n0 1\n1 0\n0 0\n0 0\n0 0\n0 1\n1 1\n0 1\n1 0\n1 0", "output": "2" }, { "input": "10\n0 926\n926 938\n938 931\n931 964\n937 989\n983 936\n908 949\n997 932\n945 988\n988 0", "output": "1016" }, { "input": "10\n0 1\n1 2\n1 2\n2 2\n2 2\n2 2\n1 1\n1 1\n2 1\n2 0", "output": "3" }, { "input": "10\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "10\n0 1000\n1000 1000\n1000 1000\n1000 1000\n1000 1000\n1000 1000\n1000 1000\n1000 1000\n1000 1000\n1000 0", "output": "1000" }, { "input": "50\n0 332\n332 268\n268 56\n56 711\n420 180\n160 834\n149 341\n373 777\n763 93\n994 407\n86 803\n700 132\n471 608\n429 467\n75 5\n638 305\n405 853\n316 478\n643 163\n18 131\n648 241\n241 766\n316 847\n640 380\n923 759\n789 41\n125 421\n421 9\n9 388\n388 829\n408 108\n462 856\n816 411\n518 688\n290 7\n405 912\n397 772\n396 652\n394 146\n27 648\n462 617\n514 433\n780 35\n710 705\n460 390\n194 508\n643 56\n172 469\n1000 0\n194 0", "output": "2071" }, { "input": "50\n0 0\n0 1\n1 1\n0 1\n0 0\n1 0\n0 0\n1 0\n0 0\n0 0\n0 0\n0 0\n0 1\n0 0\n0 0\n0 1\n1 0\n0 1\n0 0\n1 1\n1 0\n0 1\n0 0\n1 1\n0 1\n1 0\n1 1\n1 0\n0 0\n1 1\n1 0\n0 1\n0 0\n0 1\n1 1\n1 1\n1 1\n1 0\n1 1\n1 0\n0 1\n1 0\n0 0\n0 1\n1 1\n1 1\n0 1\n0 0\n1 0\n1 0", "output": "3" }, { "input": "50\n0 926\n926 971\n915 980\n920 965\n954 944\n928 952\n955 980\n916 980\n906 935\n944 913\n905 923\n912 922\n965 934\n912 900\n946 930\n931 983\n979 905\n925 969\n924 926\n910 914\n921 977\n934 979\n962 986\n942 909\n976 903\n982 982\n991 941\n954 929\n902 980\n947 983\n919 924\n917 943\n916 905\n907 913\n964 977\n984 904\n905 999\n950 970\n986 906\n993 970\n960 994\n963 983\n918 986\n980 900\n931 986\n993 997\n941 909\n907 909\n1000 0\n278 0", "output": "1329" }, { "input": "2\n0 863\n863 0", "output": "863" }, { "input": "50\n0 1\n1 2\n2 2\n1 1\n1 1\n1 2\n1 2\n1 1\n1 2\n1 1\n1 1\n1 2\n1 2\n1 1\n2 1\n2 2\n1 2\n2 2\n1 2\n2 1\n2 1\n2 2\n2 1\n1 2\n1 2\n2 1\n1 1\n2 2\n1 1\n2 1\n2 2\n2 1\n1 2\n2 2\n1 2\n1 1\n1 1\n2 1\n2 1\n2 2\n2 1\n2 1\n1 2\n1 2\n1 2\n1 2\n2 0\n2 0\n2 0\n0 0", "output": "8" }, { "input": "50\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "100\n0 1\n0 0\n0 0\n1 0\n0 0\n0 1\n0 1\n1 1\n0 0\n0 0\n1 1\n0 0\n1 1\n0 1\n1 1\n0 1\n1 1\n1 0\n1 0\n0 0\n1 0\n0 1\n1 0\n0 0\n0 0\n1 1\n1 1\n0 1\n0 0\n1 0\n1 1\n0 1\n1 0\n1 1\n0 1\n1 1\n1 0\n0 0\n0 0\n0 1\n0 0\n0 1\n1 1\n0 0\n1 1\n1 1\n0 0\n0 1\n1 0\n0 1\n0 0\n0 1\n0 1\n1 1\n1 1\n1 1\n0 0\n0 0\n1 1\n0 1\n0 1\n1 0\n0 0\n0 0\n1 1\n0 1\n0 1\n1 1\n1 1\n0 1\n1 1\n1 1\n0 0\n1 0\n0 1\n0 0\n0 0\n1 1\n1 1\n1 1\n1 1\n0 1\n1 0\n1 0\n1 0\n1 0\n1 0\n0 0\n1 0\n1 0\n0 0\n1 0\n0 0\n0 1\n1 0\n0 1\n1 0\n1 0\n1 0\n1 0", "output": "11" }, { "input": "100\n0 2\n1 2\n2 1\n1 2\n1 2\n2 1\n2 2\n1 1\n1 1\n2 1\n1 2\n2 1\n1 2\n2 2\n2 2\n2 2\n1 2\n2 2\n2 1\n1 1\n1 1\n1 1\n2 2\n1 2\n2 2\n1 1\n1 1\n1 1\n1 1\n2 2\n1 2\n2 1\n1 1\n2 2\n1 1\n2 1\n1 1\n2 2\n2 1\n1 2\n1 1\n1 2\n2 1\n2 2\n1 1\n2 1\n1 1\n2 1\n1 1\n1 2\n2 2\n2 2\n1 1\n2 2\n1 2\n2 1\n2 1\n1 1\n1 1\n1 2\n1 2\n1 1\n1 1\n2 1\n1 2\n1 2\n2 1\n2 2\n2 2\n2 2\n2 1\n2 2\n1 1\n1 2\n1 2\n1 1\n2 2\n2 2\n1 1\n2 1\n1 1\n1 2\n1 2\n1 2\n1 1\n1 1\n2 2\n1 2\n2 1\n2 1\n2 1\n1 2\n1 2\n1 1\n2 2\n1 2\n2 0\n2 0\n2 0\n1 0", "output": "7" }, { "input": "100\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0", "output": "0" }, { "input": "2\n0 1\n1 0", "output": "1" }, { "input": "2\n0 900\n900 0", "output": "900" }, { "input": "2\n0 1\n1 0", "output": "1" }, { "input": "2\n0 0\n0 0", "output": "0" }, { "input": "2\n0 1000\n1000 0", "output": "1000" }, { "input": "3\n0 802\n175 188\n815 0", "output": "815" }, { "input": "3\n0 910\n910 976\n976 0", "output": "976" }, { "input": "3\n0 2\n2 1\n1 0", "output": "2" } ]
1,697,891,316
2,147,483,647
Python 3
OK
TESTS
71
92
0
t = int(input()) maxNum = 0 count = 0 for _ in range(t): a,b = map(int,input().split()) count += b - a maxNum = max(maxNum,count) print(maxNum)
Title: Tram Time Limit: None seconds Memory Limit: None megabytes Problem Description: Linear Kingdom has exactly one tram line. It has *n* stops, numbered from 1 to *n* in the order of tram's movement. At the *i*-th stop *a**i* passengers exit the tram, while *b**i* passengers enter it. The tram is empty before it arrives at the first stop. Also, when the tram arrives at the last stop, all passengers exit so that it becomes empty. Your task is to calculate the tram's minimum capacity such that the number of people inside the tram at any time never exceeds this capacity. Note that at each stop all exiting passengers exit before any entering passenger enters the tram. Input Specification: The first line contains a single number *n* (2<=≤<=*n*<=≤<=1000) — the number of the tram's stops. Then *n* lines follow, each contains two integers *a**i* and *b**i* (0<=≤<=*a**i*,<=*b**i*<=≤<=1000) — the number of passengers that exits the tram at the *i*-th stop, and the number of passengers that enter the tram at the *i*-th stop. The stops are given from the first to the last stop in the order of tram's movement. - The number of people who exit at a given stop does not exceed the total number of people in the tram immediately before it arrives at the stop. More formally, . This particularly means that *a*1<==<=0. - At the last stop, all the passengers exit the tram and it becomes empty. More formally, . - No passenger will enter the train at the last stop. That is, *b**n*<==<=0. Output Specification: Print a single integer denoting the minimum possible capacity of the tram (0 is allowed). Demo Input: ['4\n0 3\n2 5\n4 2\n4 0\n'] Demo Output: ['6\n'] Note: For the first example, a capacity of 6 is sufficient: - At the first stop, the number of passengers inside the tram before arriving is 0. Then, 3 passengers enter the tram, and the number of passengers inside the tram becomes 3. - At the second stop, 2 passengers exit the tram (1 passenger remains inside). Then, 5 passengers enter the tram. There are 6 passengers inside the tram now. - At the third stop, 4 passengers exit the tram (2 passengers remain inside). Then, 2 passengers enter the tram. There are 4 passengers inside the tram now. - Finally, all the remaining passengers inside the tram exit the tram at the last stop. There are no passenger inside the tram now, which is in line with the constraints. Since the number of passengers inside the tram never exceeds 6, a capacity of 6 is sufficient. Furthermore it is not possible for the tram to have a capacity less than 6. Hence, 6 is the correct answer.
```python t = int(input()) maxNum = 0 count = 0 for _ in range(t): a,b = map(int,input().split()) count += b - a maxNum = max(maxNum,count) print(maxNum) ```
3
538
B
Quasi Binary
PROGRAMMING
1,400
[ "constructive algorithms", "dp", "greedy", "implementation" ]
null
null
A number is called quasibinary if its decimal representation contains only digits 0 or 1. For example, numbers 0, 1, 101, 110011 — are quasibinary and numbers 2, 12, 900 are not. You are given a positive integer *n*. Represent it as a sum of minimum number of quasibinary numbers.
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=106).
In the first line print a single integer *k* — the minimum number of numbers in the representation of number *n* as a sum of quasibinary numbers. In the second line print *k* numbers — the elements of the sum. All these numbers should be quasibinary according to the definition above, their sum should equal *n*. Do not have to print the leading zeroes in the numbers. The order of numbers doesn't matter. If there are multiple possible representations, you are allowed to print any of them.
[ "9\n", "32\n" ]
[ "9\n1 1 1 1 1 1 1 1 1 \n", "3\n10 11 11 \n" ]
none
1,000
[ { "input": "9", "output": "9\n1 1 1 1 1 1 1 1 1 " }, { "input": "32", "output": "3\n10 11 11 " }, { "input": "1", "output": "1\n1 " }, { "input": "415", "output": "5\n1 101 101 101 111 " }, { "input": "10011", "output": "1\n10011 " }, { "input": "10201", "output": "2\n100 10101 " }, { "input": "314159", "output": "9\n1 1 1 1 11 1011 101011 101011 111111 " }, { "input": "999999", "output": "9\n111111 111111 111111 111111 111111 111111 111111 111111 111111 " }, { "input": "2", "output": "2\n1 1 " }, { "input": "10", "output": "1\n10 " }, { "input": "21", "output": "2\n10 11 " }, { "input": "98", "output": "9\n10 11 11 11 11 11 11 11 11 " }, { "input": "102030", "output": "3\n10 1010 101010 " }, { "input": "909090", "output": "9\n101010 101010 101010 101010 101010 101010 101010 101010 101010 " }, { "input": "909823", "output": "9\n101000 101100 101100 101100 101100 101100 101101 101111 101111 " }, { "input": "1000000", "output": "1\n1000000 " }, { "input": "111111", "output": "1\n111111 " }, { "input": "123456", "output": "6\n1 11 111 1111 11111 111111 " }, { "input": "987654", "output": "9\n100000 110000 111000 111100 111110 111111 111111 111111 111111 " }, { "input": "908172", "output": "9\n100000 101000 101010 101010 101010 101010 101010 101011 101111 " }, { "input": "8", "output": "8\n1 1 1 1 1 1 1 1 " }, { "input": "100009", "output": "9\n1 1 1 1 1 1 1 1 100001 " }, { "input": "900000", "output": "9\n100000 100000 100000 100000 100000 100000 100000 100000 100000 " }, { "input": "1435", "output": "5\n1 101 111 111 1111 " }, { "input": "1453", "output": "5\n10 110 111 111 1111 " } ]
1,619,209,548
2,147,483,647
Python 3
OK
TESTS
25
77
0
n = input() res = [] while int(n) > 0: s = '' for i in n: if i != '0': s = s + '1' else: s = s + '0' n = str(int(n)-int(s)) res.append(s) print(len(res)) print(' '.join(res))
Title: Quasi Binary Time Limit: None seconds Memory Limit: None megabytes Problem Description: A number is called quasibinary if its decimal representation contains only digits 0 or 1. For example, numbers 0, 1, 101, 110011 — are quasibinary and numbers 2, 12, 900 are not. You are given a positive integer *n*. Represent it as a sum of minimum number of quasibinary numbers. Input Specification: The first line contains a single integer *n* (1<=≤<=*n*<=≤<=106). Output Specification: In the first line print a single integer *k* — the minimum number of numbers in the representation of number *n* as a sum of quasibinary numbers. In the second line print *k* numbers — the elements of the sum. All these numbers should be quasibinary according to the definition above, their sum should equal *n*. Do not have to print the leading zeroes in the numbers. The order of numbers doesn't matter. If there are multiple possible representations, you are allowed to print any of them. Demo Input: ['9\n', '32\n'] Demo Output: ['9\n1 1 1 1 1 1 1 1 1 \n', '3\n10 11 11 \n'] Note: none
```python n = input() res = [] while int(n) > 0: s = '' for i in n: if i != '0': s = s + '1' else: s = s + '0' n = str(int(n)-int(s)) res.append(s) print(len(res)) print(' '.join(res)) ```
3
218
B
Airport
PROGRAMMING
1,100
[ "implementation" ]
null
null
Lolek and Bolek are about to travel abroad by plane. The local airport has a special "Choose Your Plane" offer. The offer's conditions are as follows: - it is up to a passenger to choose a plane to fly on; - if the chosen plane has *x* (*x*<=&gt;<=0) empty seats at the given moment, then the ticket for such a plane costs *x* zlotys (units of Polish currency). The only ticket office of the airport already has a queue of *n* passengers in front of it. Lolek and Bolek have not stood in the queue yet, but they are already wondering what is the maximum and the minimum number of zlotys the airport administration can earn if all *n* passengers buy tickets according to the conditions of this offer? The passengers buy tickets in turn, the first person in the queue goes first, then goes the second one, and so on up to *n*-th person.
The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000) — the number of passengers in the queue and the number of planes in the airport, correspondingly. The next line contains *m* integers *a*1,<=*a*2,<=...,<=*a**m* (1<=≤<=*a**i*<=≤<=1000) — *a**i* stands for the number of empty seats in the *i*-th plane before the ticket office starts selling tickets. The numbers in the lines are separated by a space. It is guaranteed that there are at least *n* empty seats in total.
Print two integers — the maximum and the minimum number of zlotys that the airport administration can earn, correspondingly.
[ "4 3\n2 1 1\n", "4 3\n2 2 2\n" ]
[ "5 5\n", "7 6\n" ]
In the first test sample the number of passengers is equal to the number of empty seats, so regardless of the way the planes are chosen, the administration will earn the same sum. In the second sample the sum is maximized if the 1-st person in the queue buys a ticket to the 1-st plane, the 2-nd person — to the 2-nd plane, the 3-rd person — to the 3-rd plane, the 4-th person — to the 1-st plane. The sum is minimized if the 1-st person in the queue buys a ticket to the 1-st plane, the 2-nd person — to the 1-st plane, the 3-rd person — to the 2-nd plane, the 4-th person — to the 2-nd plane.
500
[ { "input": "4 3\n2 1 1", "output": "5 5" }, { "input": "4 3\n2 2 2", "output": "7 6" }, { "input": "10 5\n10 3 3 1 2", "output": "58 26" }, { "input": "10 1\n10", "output": "55 55" }, { "input": "10 1\n100", "output": "955 955" }, { "input": "10 2\n4 7", "output": "37 37" }, { "input": "40 10\n1 2 3 4 5 6 7 10 10 10", "output": "223 158" }, { "input": "1 1\n6", "output": "6 6" }, { "input": "1 2\n10 9", "output": "10 9" }, { "input": "2 1\n7", "output": "13 13" }, { "input": "2 2\n7 2", "output": "13 3" }, { "input": "3 2\n4 7", "output": "18 9" }, { "input": "3 3\n2 1 1", "output": "4 4" }, { "input": "3 3\n2 1 1", "output": "4 4" }, { "input": "10 10\n3 1 2 2 1 1 2 1 2 3", "output": "20 13" }, { "input": "10 2\n7 3", "output": "34 34" }, { "input": "10 1\n19", "output": "145 145" }, { "input": "100 3\n29 36 35", "output": "1731 1731" }, { "input": "100 5\n3 38 36 35 2", "output": "2019 1941" }, { "input": "510 132\n50 76 77 69 94 30 47 65 14 62 18 121 26 35 49 17 105 93 47 16 78 3 7 74 7 37 30 36 30 83 71 113 7 58 86 10 65 57 34 102 55 44 43 47 106 44 115 75 109 70 47 45 16 57 62 55 20 88 74 40 45 84 41 1 9 53 65 25 67 31 115 2 63 51 123 70 65 65 18 14 75 14 103 26 117 105 36 104 81 37 35 61 44 90 71 70 88 89 26 21 64 77 89 16 87 99 13 79 27 3 46 120 116 11 14 17 32 70 113 94 108 57 29 100 53 48 44 29 70 30 32 62", "output": "50279 5479" }, { "input": "510 123\n5 2 3 2 5 7 2 3 1 3 6 6 3 1 5 3 5 6 2 2 1 5 5 5 2 2 3 1 6 3 5 8 4 6 1 5 4 5 1 6 5 5 3 6 4 1 6 1 3 5 2 7 5 2 4 4 5 6 5 5 4 3 4 6 5 4 4 3 5 8 5 5 6 3 1 7 4 4 3 3 5 3 6 3 3 6 2 5 3 2 4 5 4 5 2 2 4 4 4 7 3 4 6 5 3 6 4 7 1 6 5 7 6 5 7 3 7 4 4 1 6 6 4", "output": "1501 1501" }, { "input": "610 33\n15 44 8 8 17 11 39 39 38 25 17 36 17 25 21 37 10 11 34 30 29 50 29 50 4 20 32 13 41 14 2 11 2", "output": "12204 8871" } ]
1,369,881,368
2,147,483,647
Python 3
OK
TESTS
33
156
102,400
from math import * class MaxHeap: #Constructor def __init__ (self, initialCapacity = 10): self.Size = 0 self.heap = [] ##array for complete binary tree for i in range (0, initialCapacity+1): self.heap.append(None) #Class methods ##return true if skip list is empty def isEmpty(self): return self.Size == 0 ##return the number of elements def size(): return self.Size ##return maximum element def getMax(self): if(self.isEmpty()): return None else: return self.heap[1] #Put an element into the heap def put(self, theElement): #increase array size if necessary if self.Size == len(self.heap) - 1: for i in range(0, len(self.heap)): self.heap.append(None) self.Size = self.Size + 1 currentNode = self.Size #currentNode starts at new leaf and moves up tree while currentNode != 1 and self.heap[floor(currentNode / 2)] - theElement < 0: self.heap[currentNode] = self.heap[floor(currentNode / 2)] currentNode = floor (currentNode / 2) self.heap[currentNode] = theElement #Remove max element and return it def removeMax(self): if self.Size == 0: return None maxElement = self.heap[1] lastElement = self.heap[self.Size] self.Size = self.Size - 1 currentNode = 1 child = 2 #child of currentNode while (child <= self.Size): if child < self.Size and self.heap[child] - self.heap[child + 1] < 0: child = child + 1 if child < self.Size and lastElement - self.heap[child] >= 0: break self.heap[currentNode] = self.heap[child] currentNode = child child = child * 2 self.heap[currentNode] = lastElement return maxElement class MinHeap: #Constructor def __init__ (self, initialCapacity = 10): self.Size = 0 self.heap = [] ##array for complete binary tree for i in range (0, initialCapacity+1): self.heap.append(None) #Class methods ##return true if skip list is empty def isEmpty(self): return self.Size == 0 ##return the number of elements def size(): return self.Size ##return maximum element def getMin(self): if(self.isEmpty()): return None else: return self.heap[1] #Put an element into the heap def put(self, theElement): #increase array size if necessary if self.Size == len(self.heap) - 1: for i in range(0, len(self.heap)): self.heap.append(None) self.Size = self.Size + 1 currentNode = self.Size #currentNode starts at new leaf and moves up tree while currentNode != 1 and self.heap[floor(currentNode / 2)] - theElement > 0: self.heap[currentNode] = self.heap[floor(currentNode / 2)] currentNode = floor (currentNode / 2) self.heap[currentNode] = theElement #Remove max element and return it def removeMin(self): if self.Size == 0: return None minElement = self.heap[1] lastElement = self.heap[self.Size] self.Size = self.Size - 1 currentNode = 1 child = 2 #child of currentNode while (child <= self.Size): if child < self.Size and self.heap[child] - self.heap[child + 1] > 0: child = child + 1 if child < self.Size and lastElement - self.heap[child] <= 0: break self.heap[currentNode] = self.heap[child] currentNode = child child = child * 2 self.heap[currentNode] = lastElement return minElement #TESTING def main(): n,m = input().split() b = input().split() minheap, maxheap = MinHeap(), MaxHeap() Max, Min = 0, 0 for i in range(0,int(m)): minheap.put(int(b[i])) maxheap.put(int(b[i])) while int(n) > 0: localMin = minheap.removeMin() localMax = maxheap.removeMax() if localMax > 1: maxheap.put(localMax - 1) if localMin > 1: minheap.put(localMin - 1) Max, Min = Max + localMax, Min + localMin n = int(n) - 1 print(Max,Min) if __name__ == "__main__": main()
Title: Airport Time Limit: None seconds Memory Limit: None megabytes Problem Description: Lolek and Bolek are about to travel abroad by plane. The local airport has a special "Choose Your Plane" offer. The offer's conditions are as follows: - it is up to a passenger to choose a plane to fly on; - if the chosen plane has *x* (*x*<=&gt;<=0) empty seats at the given moment, then the ticket for such a plane costs *x* zlotys (units of Polish currency). The only ticket office of the airport already has a queue of *n* passengers in front of it. Lolek and Bolek have not stood in the queue yet, but they are already wondering what is the maximum and the minimum number of zlotys the airport administration can earn if all *n* passengers buy tickets according to the conditions of this offer? The passengers buy tickets in turn, the first person in the queue goes first, then goes the second one, and so on up to *n*-th person. Input Specification: The first line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000) — the number of passengers in the queue and the number of planes in the airport, correspondingly. The next line contains *m* integers *a*1,<=*a*2,<=...,<=*a**m* (1<=≤<=*a**i*<=≤<=1000) — *a**i* stands for the number of empty seats in the *i*-th plane before the ticket office starts selling tickets. The numbers in the lines are separated by a space. It is guaranteed that there are at least *n* empty seats in total. Output Specification: Print two integers — the maximum and the minimum number of zlotys that the airport administration can earn, correspondingly. Demo Input: ['4 3\n2 1 1\n', '4 3\n2 2 2\n'] Demo Output: ['5 5\n', '7 6\n'] Note: In the first test sample the number of passengers is equal to the number of empty seats, so regardless of the way the planes are chosen, the administration will earn the same sum. In the second sample the sum is maximized if the 1-st person in the queue buys a ticket to the 1-st plane, the 2-nd person — to the 2-nd plane, the 3-rd person — to the 3-rd plane, the 4-th person — to the 1-st plane. The sum is minimized if the 1-st person in the queue buys a ticket to the 1-st plane, the 2-nd person — to the 1-st plane, the 3-rd person — to the 2-nd plane, the 4-th person — to the 2-nd plane.
```python from math import * class MaxHeap: #Constructor def __init__ (self, initialCapacity = 10): self.Size = 0 self.heap = [] ##array for complete binary tree for i in range (0, initialCapacity+1): self.heap.append(None) #Class methods ##return true if skip list is empty def isEmpty(self): return self.Size == 0 ##return the number of elements def size(): return self.Size ##return maximum element def getMax(self): if(self.isEmpty()): return None else: return self.heap[1] #Put an element into the heap def put(self, theElement): #increase array size if necessary if self.Size == len(self.heap) - 1: for i in range(0, len(self.heap)): self.heap.append(None) self.Size = self.Size + 1 currentNode = self.Size #currentNode starts at new leaf and moves up tree while currentNode != 1 and self.heap[floor(currentNode / 2)] - theElement < 0: self.heap[currentNode] = self.heap[floor(currentNode / 2)] currentNode = floor (currentNode / 2) self.heap[currentNode] = theElement #Remove max element and return it def removeMax(self): if self.Size == 0: return None maxElement = self.heap[1] lastElement = self.heap[self.Size] self.Size = self.Size - 1 currentNode = 1 child = 2 #child of currentNode while (child <= self.Size): if child < self.Size and self.heap[child] - self.heap[child + 1] < 0: child = child + 1 if child < self.Size and lastElement - self.heap[child] >= 0: break self.heap[currentNode] = self.heap[child] currentNode = child child = child * 2 self.heap[currentNode] = lastElement return maxElement class MinHeap: #Constructor def __init__ (self, initialCapacity = 10): self.Size = 0 self.heap = [] ##array for complete binary tree for i in range (0, initialCapacity+1): self.heap.append(None) #Class methods ##return true if skip list is empty def isEmpty(self): return self.Size == 0 ##return the number of elements def size(): return self.Size ##return maximum element def getMin(self): if(self.isEmpty()): return None else: return self.heap[1] #Put an element into the heap def put(self, theElement): #increase array size if necessary if self.Size == len(self.heap) - 1: for i in range(0, len(self.heap)): self.heap.append(None) self.Size = self.Size + 1 currentNode = self.Size #currentNode starts at new leaf and moves up tree while currentNode != 1 and self.heap[floor(currentNode / 2)] - theElement > 0: self.heap[currentNode] = self.heap[floor(currentNode / 2)] currentNode = floor (currentNode / 2) self.heap[currentNode] = theElement #Remove max element and return it def removeMin(self): if self.Size == 0: return None minElement = self.heap[1] lastElement = self.heap[self.Size] self.Size = self.Size - 1 currentNode = 1 child = 2 #child of currentNode while (child <= self.Size): if child < self.Size and self.heap[child] - self.heap[child + 1] > 0: child = child + 1 if child < self.Size and lastElement - self.heap[child] <= 0: break self.heap[currentNode] = self.heap[child] currentNode = child child = child * 2 self.heap[currentNode] = lastElement return minElement #TESTING def main(): n,m = input().split() b = input().split() minheap, maxheap = MinHeap(), MaxHeap() Max, Min = 0, 0 for i in range(0,int(m)): minheap.put(int(b[i])) maxheap.put(int(b[i])) while int(n) > 0: localMin = minheap.removeMin() localMax = maxheap.removeMax() if localMax > 1: maxheap.put(localMax - 1) if localMin > 1: minheap.put(localMin - 1) Max, Min = Max + localMax, Min + localMin n = int(n) - 1 print(Max,Min) if __name__ == "__main__": main() ```
3
228
A
Is your horseshoe on the other hoof?
PROGRAMMING
800
[ "implementation" ]
null
null
Valera the Horse is going to the party with friends. He has been following the fashion trends for a while, and he knows that it is very popular to wear all horseshoes of different color. Valera has got four horseshoes left from the last year, but maybe some of them have the same color. In this case he needs to go to the store and buy some few more horseshoes, not to lose face in front of his stylish comrades. Fortunately, the store sells horseshoes of all colors under the sun and Valera has enough money to buy any four of them. However, in order to save the money, he would like to spend as little money as possible, so you need to help Valera and determine what is the minimum number of horseshoes he needs to buy to wear four horseshoes of different colors to a party.
The first line contains four space-separated integers *s*1,<=*s*2,<=*s*3,<=*s*4 (1<=≤<=*s*1,<=*s*2,<=*s*3,<=*s*4<=≤<=109) — the colors of horseshoes Valera has. Consider all possible colors indexed with integers.
Print a single integer — the minimum number of horseshoes Valera needs to buy.
[ "1 7 3 3\n", "7 7 7 7\n" ]
[ "1\n", "3\n" ]
none
500
[ { "input": "1 7 3 3", "output": "1" }, { "input": "7 7 7 7", "output": "3" }, { "input": "81170865 673572653 756938629 995577259", "output": "0" }, { "input": "3491663 217797045 522540872 715355328", "output": "0" }, { "input": "251590420 586975278 916631563 586975278", "output": "1" }, { "input": "259504825 377489979 588153796 377489979", "output": "1" }, { "input": "652588203 931100304 931100304 652588203", "output": "2" }, { "input": "391958720 651507265 391958720 651507265", "output": "2" }, { "input": "90793237 90793237 90793237 90793237", "output": "3" }, { "input": "551651653 551651653 551651653 551651653", "output": "3" }, { "input": "156630260 609654355 668943582 973622757", "output": "0" }, { "input": "17061017 110313588 434481173 796661222", "output": "0" }, { "input": "24975422 256716298 337790533 690960249", "output": "0" }, { "input": "255635360 732742923 798648949 883146723", "output": "0" }, { "input": "133315691 265159773 734556507 265159773", "output": "1" }, { "input": "28442865 741657755 978106882 978106882", "output": "1" }, { "input": "131245479 174845575 497483467 131245479", "output": "1" }, { "input": "139159884 616215581 958341883 616215581", "output": "1" }, { "input": "147784432 947653080 947653080 947653080", "output": "2" }, { "input": "94055790 756126496 756126496 94055790", "output": "2" }, { "input": "240458500 511952208 240458500 511952208", "output": "2" }, { "input": "681828506 972810624 972810624 681828506", "output": "2" }, { "input": "454961014 454961014 454961014 454961014", "output": "3" }, { "input": "915819430 915819430 915819430 915819430", "output": "3" }, { "input": "671645142 671645142 671645142 671645142", "output": "3" }, { "input": "132503558 132503558 132503558 132503558", "output": "3" }, { "input": "5 5 999999 6", "output": "1" }, { "input": "1 1 2 5", "output": "1" }, { "input": "2 1 2 3", "output": "1" }, { "input": "1 1 3 5", "output": "1" }, { "input": "1 1 3 3", "output": "2" }, { "input": "2 2 2 1", "output": "2" }, { "input": "3 1 1 1", "output": "2" }, { "input": "1 2 2 2", "output": "2" } ]
1,695,122,681
2,147,483,647
Python 3
OK
TESTS
34
92
0
colors = input().split() count = 0 seen = [] j = 0 for i in colors: if i in seen : count+=1 else : seen.append(i) print(count)
Title: Is your horseshoe on the other hoof? Time Limit: None seconds Memory Limit: None megabytes Problem Description: Valera the Horse is going to the party with friends. He has been following the fashion trends for a while, and he knows that it is very popular to wear all horseshoes of different color. Valera has got four horseshoes left from the last year, but maybe some of them have the same color. In this case he needs to go to the store and buy some few more horseshoes, not to lose face in front of his stylish comrades. Fortunately, the store sells horseshoes of all colors under the sun and Valera has enough money to buy any four of them. However, in order to save the money, he would like to spend as little money as possible, so you need to help Valera and determine what is the minimum number of horseshoes he needs to buy to wear four horseshoes of different colors to a party. Input Specification: The first line contains four space-separated integers *s*1,<=*s*2,<=*s*3,<=*s*4 (1<=≤<=*s*1,<=*s*2,<=*s*3,<=*s*4<=≤<=109) — the colors of horseshoes Valera has. Consider all possible colors indexed with integers. Output Specification: Print a single integer — the minimum number of horseshoes Valera needs to buy. Demo Input: ['1 7 3 3\n', '7 7 7 7\n'] Demo Output: ['1\n', '3\n'] Note: none
```python colors = input().split() count = 0 seen = [] j = 0 for i in colors: if i in seen : count+=1 else : seen.append(i) print(count) ```
3
268
B
Buttons
PROGRAMMING
1,000
[ "implementation", "math" ]
null
null
Manao is trying to open a rather challenging lock. The lock has *n* buttons on it and to open it, you should press the buttons in a certain order to open the lock. When you push some button, it either stays pressed into the lock (that means that you've guessed correctly and pushed the button that goes next in the sequence), or all pressed buttons return to the initial position. When all buttons are pressed into the lock at once, the lock opens. Consider an example with three buttons. Let's say that the opening sequence is: {2, 3, 1}. If you first press buttons 1 or 3, the buttons unpress immediately. If you first press button 2, it stays pressed. If you press 1 after 2, all buttons unpress. If you press 3 after 2, buttons 3 and 2 stay pressed. As soon as you've got two pressed buttons, you only need to press button 1 to open the lock. Manao doesn't know the opening sequence. But he is really smart and he is going to act in the optimal way. Calculate the number of times he's got to push a button in order to open the lock in the worst-case scenario.
A single line contains integer *n* (1<=≤<=*n*<=≤<=2000) — the number of buttons the lock has.
In a single line print the number of times Manao has to push a button in the worst-case scenario.
[ "2\n", "3\n" ]
[ "3\n", "7\n" ]
Consider the first test sample. Manao can fail his first push and push the wrong button. In this case he will already be able to guess the right one with his second push. And his third push will push the second right button. Thus, in the worst-case scenario he will only need 3 pushes.
1,000
[ { "input": "2", "output": "3" }, { "input": "3", "output": "7" }, { "input": "4", "output": "14" }, { "input": "1", "output": "1" }, { "input": "10", "output": "175" }, { "input": "2000", "output": "1333335000" }, { "input": "1747", "output": "888644743" }, { "input": "889", "output": "117099969" }, { "input": "1999", "output": "1331335999" }, { "input": "914", "output": "127259419" }, { "input": "996", "output": "164675486" }, { "input": "17", "output": "833" }, { "input": "50", "output": "20875" }, { "input": "91", "output": "125671" }, { "input": "92", "output": "129858" }, { "input": "256", "output": "2796416" }, { "input": "512", "output": "22370048" }, { "input": "666", "output": "49235271" }, { "input": "667", "output": "49457383" }, { "input": "314", "output": "5160119" }, { "input": "1241", "output": "318541121" }, { "input": "1500", "output": "562501250" }, { "input": "1837", "output": "1033182073" }, { "input": "1000", "output": "166667500" } ]
1,696,424,080
2,147,483,647
Python 3
OK
TESTS
24
92
0
n = int(input()) print(n * n * (n - 1) // 2 - n * (n - 1) * (2 * n - 1) // 6 + n)
Title: Buttons Time Limit: None seconds Memory Limit: None megabytes Problem Description: Manao is trying to open a rather challenging lock. The lock has *n* buttons on it and to open it, you should press the buttons in a certain order to open the lock. When you push some button, it either stays pressed into the lock (that means that you've guessed correctly and pushed the button that goes next in the sequence), or all pressed buttons return to the initial position. When all buttons are pressed into the lock at once, the lock opens. Consider an example with three buttons. Let's say that the opening sequence is: {2, 3, 1}. If you first press buttons 1 or 3, the buttons unpress immediately. If you first press button 2, it stays pressed. If you press 1 after 2, all buttons unpress. If you press 3 after 2, buttons 3 and 2 stay pressed. As soon as you've got two pressed buttons, you only need to press button 1 to open the lock. Manao doesn't know the opening sequence. But he is really smart and he is going to act in the optimal way. Calculate the number of times he's got to push a button in order to open the lock in the worst-case scenario. Input Specification: A single line contains integer *n* (1<=≤<=*n*<=≤<=2000) — the number of buttons the lock has. Output Specification: In a single line print the number of times Manao has to push a button in the worst-case scenario. Demo Input: ['2\n', '3\n'] Demo Output: ['3\n', '7\n'] Note: Consider the first test sample. Manao can fail his first push and push the wrong button. In this case he will already be able to guess the right one with his second push. And his third push will push the second right button. Thus, in the worst-case scenario he will only need 3 pushes.
```python n = int(input()) print(n * n * (n - 1) // 2 - n * (n - 1) * (2 * n - 1) // 6 + n) ```
3
227
B
Effective Approach
PROGRAMMING
1,100
[ "implementation" ]
null
null
Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array. According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is. Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent. To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand. But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array. The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat.
Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier.
[ "2\n1 2\n1\n1\n", "2\n2 1\n1\n1\n", "3\n3 1 2\n3\n1 2 3\n" ]
[ "1 2\n", "2 1\n", "6 6\n" ]
In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element). In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
1,000
[ { "input": "2\n1 2\n1\n1", "output": "1 2" }, { "input": "2\n2 1\n1\n1", "output": "2 1" }, { "input": "3\n3 1 2\n3\n1 2 3", "output": "6 6" }, { "input": "9\n2 9 3 1 6 4 7 8 5\n9\n5 1 5 2 8 4 4 4 5", "output": "58 32" }, { "input": "10\n3 10 9 2 7 6 5 8 4 1\n1\n4", "output": "9 2" }, { "input": "10\n5 2 10 8 3 1 9 7 6 4\n9\n2 5 9 2 3 2 5 9 8", "output": "31 68" }, { "input": "9\n3 8 4 7 1 2 5 6 9\n3\n2 7 1", "output": "15 15" }, { "input": "9\n5 3 8 4 2 6 1 7 9\n4\n6 1 9 2", "output": "27 13" }, { "input": "4\n1 3 2 4\n4\n3 1 2 3", "output": "8 12" }, { "input": "3\n1 2 3\n8\n3 2 1 1 2 3 1 2", "output": "15 17" } ]
1,632,410,923
2,147,483,647
PyPy 3
TIME_LIMIT_EXCEEDED
TESTS
5
2,000
30,003,200
n=int(input()) numList=list(map(int,input().split(' '))) numQueries=int(input()) QueList=list(map(int,input().split(' '))) vasya=0 petya=0 for z in range(numQueries): for i in range(len(numList)-1,-1,-1): if numList[i]==QueList[z]: petya+=1 break petya+=1 for j in range(len(numList)): if numList[j]==QueList[z]: vasya+=1 break vasya+=1 print(vasya,petya)
Title: Effective Approach Time Limit: None seconds Memory Limit: None megabytes Problem Description: Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array. According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is. Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent. To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand. But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array. The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat. Output Specification: Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier. Demo Input: ['2\n1 2\n1\n1\n', '2\n2 1\n1\n1\n', '3\n3 1 2\n3\n1 2 3\n'] Demo Output: ['1 2\n', '2 1\n', '6 6\n'] Note: In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element). In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
```python n=int(input()) numList=list(map(int,input().split(' '))) numQueries=int(input()) QueList=list(map(int,input().split(' '))) vasya=0 petya=0 for z in range(numQueries): for i in range(len(numList)-1,-1,-1): if numList[i]==QueList[z]: petya+=1 break petya+=1 for j in range(len(numList)): if numList[j]==QueList[z]: vasya+=1 break vasya+=1 print(vasya,petya) ```
0
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 divisors — 1 and *k*.
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000).
The first line of the output contains a single integer *k* — 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..." } ]
1,656,059,027
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
15
0
n = 0 k = 0 sum = [] while n < 2 or n > 100000: n = int(input("n? ")) def step(int): global n global k n -= int sum.append(int) k += 1 while n > 0: if n == 3: step(3) else: step(2) print(k) print(sum)
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 divisors — 1 and *k*. Input Specification: The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000). Output Specification: The first line of the output contains a single integer *k* — 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 = 0 k = 0 sum = [] while n < 2 or n > 100000: n = int(input("n? ")) def step(int): global n global k n -= int sum.append(int) k += 1 while n > 0: if n == 3: step(3) else: step(2) print(k) print(sum) ```
0
9
A
Die Roll
PROGRAMMING
800
[ "math", "probabilities" ]
A. Die Roll
1
64
Yakko, Wakko and Dot, world-famous animaniacs, decided to rest from acting in cartoons, and take a leave to travel a bit. Yakko dreamt to go to Pennsylvania, his Motherland and the Motherland of his ancestors. Wakko thought about Tasmania, its beaches, sun and sea. Dot chose Transylvania as the most mysterious and unpredictable place. But to their great regret, the leave turned to be very short, so it will be enough to visit one of the three above named places. That's why Yakko, as the cleverest, came up with a truly genius idea: let each of the three roll an ordinary six-sided die, and the one with the highest amount of points will be the winner, and will take the other two to the place of his/her dreams. Yakko thrown a die and got Y points, Wakko — W points. It was Dot's turn. But she didn't hurry. Dot wanted to know for sure what were her chances to visit Transylvania. It is known that Yakko and Wakko are true gentlemen, that's why if they have the same amount of points with Dot, they will let Dot win.
The only line of the input file contains two natural numbers Y and W — the results of Yakko's and Wakko's die rolls.
Output the required probability in the form of irreducible fraction in format «A/B», where A — the numerator, and B — the denominator. If the required probability equals to zero, output «0/1». If the required probability equals to 1, output «1/1».
[ "4 2\n" ]
[ "1/2\n" ]
Dot will go to Transylvania, if she is lucky to roll 4, 5 or 6 points.
0
[ { "input": "4 2", "output": "1/2" }, { "input": "1 1", "output": "1/1" }, { "input": "1 2", "output": "5/6" }, { "input": "1 3", "output": "2/3" }, { "input": "1 4", "output": "1/2" }, { "input": "1 5", "output": "1/3" }, { "input": "1 6", "output": "1/6" }, { "input": "2 1", "output": "5/6" }, { "input": "2 2", "output": "5/6" }, { "input": "2 3", "output": "2/3" }, { "input": "2 4", "output": "1/2" }, { "input": "2 5", "output": "1/3" }, { "input": "2 6", "output": "1/6" }, { "input": "3 1", "output": "2/3" }, { "input": "3 2", "output": "2/3" }, { "input": "3 3", "output": "2/3" }, { "input": "3 4", "output": "1/2" }, { "input": "3 5", "output": "1/3" }, { "input": "3 6", "output": "1/6" }, { "input": "4 1", "output": "1/2" }, { "input": "4 3", "output": "1/2" }, { "input": "4 4", "output": "1/2" }, { "input": "4 5", "output": "1/3" }, { "input": "4 6", "output": "1/6" }, { "input": "5 1", "output": "1/3" }, { "input": "5 2", "output": "1/3" }, { "input": "5 3", "output": "1/3" }, { "input": "5 4", "output": "1/3" }, { "input": "5 5", "output": "1/3" }, { "input": "5 6", "output": "1/6" }, { "input": "6 1", "output": "1/6" }, { "input": "6 2", "output": "1/6" }, { "input": "6 3", "output": "1/6" }, { "input": "6 4", "output": "1/6" }, { "input": "6 5", "output": "1/6" }, { "input": "6 6", "output": "1/6" } ]
1,643,966,281
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
1
62
0
a, b = map(int, input().split()) if a >= b: if 6 % (6-a) != 0: print((6 - a), '/6') else: if ((7-a) / 3) % 1 == 0: print('1/2') else: if (7-a)/2 == 1: print('1/3') else: print('2/3') else: print((6 - b), '/6')
Title: Die Roll Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: Yakko, Wakko and Dot, world-famous animaniacs, decided to rest from acting in cartoons, and take a leave to travel a bit. Yakko dreamt to go to Pennsylvania, his Motherland and the Motherland of his ancestors. Wakko thought about Tasmania, its beaches, sun and sea. Dot chose Transylvania as the most mysterious and unpredictable place. But to their great regret, the leave turned to be very short, so it will be enough to visit one of the three above named places. That's why Yakko, as the cleverest, came up with a truly genius idea: let each of the three roll an ordinary six-sided die, and the one with the highest amount of points will be the winner, and will take the other two to the place of his/her dreams. Yakko thrown a die and got Y points, Wakko — W points. It was Dot's turn. But she didn't hurry. Dot wanted to know for sure what were her chances to visit Transylvania. It is known that Yakko and Wakko are true gentlemen, that's why if they have the same amount of points with Dot, they will let Dot win. Input Specification: The only line of the input file contains two natural numbers Y and W — the results of Yakko's and Wakko's die rolls. Output Specification: Output the required probability in the form of irreducible fraction in format «A/B», where A — the numerator, and B — the denominator. If the required probability equals to zero, output «0/1». If the required probability equals to 1, output «1/1». Demo Input: ['4 2\n'] Demo Output: ['1/2\n'] Note: Dot will go to Transylvania, if she is lucky to roll 4, 5 or 6 points.
```python a, b = map(int, input().split()) if a >= b: if 6 % (6-a) != 0: print((6 - a), '/6') else: if ((7-a) / 3) % 1 == 0: print('1/2') else: if (7-a)/2 == 1: print('1/3') else: print('2/3') else: print((6 - b), '/6') ```
0
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 divisors — 1 and *k*.
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000).
The first line of the output contains a single integer *k* — 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..." } ]
1,625,844,597
2,147,483,647
Python 3
OK
TESTS
41
109
307,200
n=int(input()) if n%2 == 0 : print(n//2) print(*([2]*(n//2))) else: print((n-1)//2) print(*([2]*((n-3)//2)+[3]))
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 divisors — 1 and *k*. Input Specification: The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000). Output Specification: The first line of the output contains a single integer *k* — 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()) if n%2 == 0 : print(n//2) print(*([2]*(n//2))) else: print((n-1)//2) print(*([2]*((n-3)//2)+[3])) ```
3
915
D
Almost Acyclic Graph
PROGRAMMING
2,200
[ "dfs and similar", "graphs" ]
null
null
You are given a [directed graph](https://en.wikipedia.org/wiki/Directed_graph) consisting of *n* vertices and *m* edges (each edge is directed, so it can be traversed in only one direction). You are allowed to remove at most one edge from it. Can you make this graph [acyclic](https://en.wikipedia.org/wiki/Directed_acyclic_graph) by removing at most one edge from it? A directed graph is called acyclic iff it doesn't contain any cycle (a non-empty path that starts and ends in the same vertex).
The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=500, 1<=≤<=*m*<=≤<=*min*(*n*(*n*<=-<=1),<=100000)) — the number of vertices and the number of edges, respectively. Then *m* lines follow. Each line contains two integers *u* and *v* denoting a directed edge going from vertex *u* to vertex *v* (1<=≤<=*u*,<=*v*<=≤<=*n*, *u*<=≠<=*v*). Each ordered pair (*u*,<=*v*) is listed at most once (there is at most one directed edge from *u* to *v*).
If it is possible to make this graph acyclic by removing at most one edge, print YES. Otherwise, print NO.
[ "3 4\n1 2\n2 3\n3 2\n3 1\n", "5 6\n1 2\n2 3\n3 2\n3 1\n2 1\n4 5\n" ]
[ "YES\n", "NO\n" ]
In the first example you can remove edge <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/>, and the graph becomes acyclic. In the second example you have to remove at least two edges (for example, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/420322fe5fba4eb3e3eba6886a2edb31f15762ce.png" style="max-width: 100.0%;max-height: 100.0%;"/> and <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/>) in order to make the graph acyclic.
0
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4", "output": "NO" }, { "input": "10 18\n4 10\n7 2\n2 1\n7 5\n5 6\n6 8\n3 9\n3 10\n6 9\n8 7\n4 3\n2 10\n9 5\n7 3\n6 4\n7 10\n10 5\n3 2", "output": "YES" }, { "input": "10 19\n5 9\n2 10\n3 7\n4 8\n4 2\n9 10\n3 6\n8 5\n6 10\n3 5\n4 1\n7 10\n8 9\n8 2\n7 9\n8 7\n9 1\n4 9\n8 10", "output": "YES" }, { "input": "5 5\n1 2\n2 1\n3 4\n3 5\n4 5", "output": "YES" }, { "input": "10 17\n5 6\n4 9\n7 1\n6 10\n3 10\n4 10\n9 3\n8 1\n2 4\n1 9\n3 7\n4 7\n6 2\n5 4\n3 8\n10 9\n7 10", "output": "YES" }, { "input": "10 13\n7 2\n7 10\n10 5\n2 9\n10 4\n8 3\n4 5\n1 8\n7 8\n5 7\n2 10\n9 6\n5 9", "output": "YES" }, { "input": "6 7\n1 2\n3 4\n4 5\n4 6\n5 6\n6 4\n6 3", "output": "NO" }, { "input": "6 8\n1 2\n2 3\n3 4\n4 5\n5 6\n6 1\n1 3\n4 6", "output": "YES" }, { "input": "10 9\n7 2\n10 5\n9 1\n1 5\n4 6\n1 10\n6 2\n10 9\n5 9", "output": "YES" }, { "input": "10 14\n8 2\n10 6\n6 1\n8 10\n6 2\n1 10\n4 7\n1 7\n9 1\n3 6\n1 4\n7 6\n10 4\n8 4", "output": "YES" }, { "input": "10 19\n10 3\n9 2\n7 4\n6 3\n1 6\n6 5\n2 8\n6 9\n1 5\n9 8\n10 9\n1 8\n3 2\n5 2\n7 10\n8 7\n3 4\n2 4\n4 1", "output": "NO" }, { "input": "10 14\n10 1\n8 9\n7 2\n8 2\n7 3\n7 10\n2 10\n6 3\n4 1\n6 5\n7 8\n10 6\n1 2\n8 10", "output": "YES" }, { "input": "10 19\n10 9\n1 2\n3 6\n9 6\n2 6\n3 7\n2 10\n3 8\n2 9\n2 8\n4 7\n2 7\n6 7\n10 5\n8 1\n6 10\n8 5\n8 6\n3 2", "output": "NO" }, { "input": "10 18\n8 2\n9 2\n7 4\n2 6\n7 1\n5 3\n9 4\n3 9\n3 8\n10 2\n10 1\n9 1\n6 7\n10 6\n5 6\n9 6\n7 5\n7 9", "output": "YES" }, { "input": "8 13\n3 5\n6 2\n5 3\n8 3\n5 7\n6 4\n5 1\n7 6\n3 1\n7 2\n4 8\n4 1\n3 6", "output": "NO" }, { "input": "7 7\n5 1\n3 7\n4 3\n1 5\n7 5\n3 6\n1 6", "output": "YES" }, { "input": "3 4\n3 1\n3 2\n1 3\n1 2", "output": "YES" }, { "input": "5 10\n1 3\n3 1\n2 3\n1 4\n2 4\n2 1\n5 3\n5 1\n4 1\n3 5", "output": "NO" }, { "input": "5 6\n2 1\n3 2\n1 2\n2 3\n1 5\n3 1", "output": "NO" }, { "input": "6 7\n6 2\n5 4\n2 1\n5 2\n6 5\n1 5\n5 6", "output": "NO" }, { "input": "9 12\n1 2\n2 3\n2 4\n4 5\n3 5\n5 6\n6 7\n6 8\n7 9\n8 9\n9 1\n3 6", "output": "YES" }, { "input": "4 6\n1 2\n1 3\n3 4\n4 2\n4 1\n2 3", "output": "YES" }, { "input": "5 7\n1 2\n2 3\n3 1\n2 4\n4 1\n3 5\n5 2", "output": "NO" }, { "input": "7 10\n1 5\n6 2\n2 7\n6 3\n5 7\n1 2\n3 5\n4 3\n5 2\n7 5", "output": "YES" }, { "input": "8 11\n8 4\n3 6\n1 2\n8 1\n7 2\n4 3\n7 4\n3 1\n2 6\n4 5\n2 3", "output": "YES" }, { "input": "7 16\n6 4\n5 1\n6 1\n3 7\n3 1\n5 4\n6 3\n2 7\n6 2\n1 4\n5 2\n4 7\n1 7\n6 5\n7 5\n2 4", "output": "YES" }, { "input": "7 16\n1 7\n4 7\n2 3\n5 1\n6 1\n5 4\n3 1\n4 6\n2 1\n6 7\n4 1\n2 7\n3 4\n3 7\n7 2\n6 2", "output": "NO" }, { "input": "4 7\n1 2\n3 4\n3 2\n1 4\n4 1\n4 2\n1 3", "output": "YES" }, { "input": "500 13\n1 2\n2 3\n3 4\n4 1\n1 5\n5 6\n6 7\n7 4\n3 8\n8 9\n9 10\n10 11\n11 2", "output": "NO" } ]
1,517,251,615
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
46
5,632,000
import sys sys.setrecursionlimit(10000000) def dfs(v): global extra_list, verts verts.append(v + 1) extra_list[v] = 1 for i in range(len(graph[v])): if extra_list[graph[v][i]] == 0: dfs(graph[v][i]) extra_list[v] = 2 return verts n, m = map(int, input().split()) graph = [[] for i in range(n)] extra_list = [0] * n verts = [] kolvo = 0 ans = [] for i in range(m): a, b = map(int, input().split()) a -= 1 b -= 1 graph[a].append(b) graph[b].append(a) for i in range(len(extra_list)): if extra_list[i] == 0: num = dfs(i) kolvo += 1 ans.append(num) verts = [] flag = True ans2 = True for i in range(len(ans)): edges = 0 for j in range(len(ans[i])): edges += len(graph[ans[i][j] - 1]) if len(ans[i]) * 2 == edges and not flag: flag = True elif len(ans[i]) * 2 == edges and flag: ans2 = False break elif len(ans[i]) * 2 > edges: ans2 = False break if ans2: print('YES') else: print('NO')
Title: Almost Acyclic Graph Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a [directed graph](https://en.wikipedia.org/wiki/Directed_graph) consisting of *n* vertices and *m* edges (each edge is directed, so it can be traversed in only one direction). You are allowed to remove at most one edge from it. Can you make this graph [acyclic](https://en.wikipedia.org/wiki/Directed_acyclic_graph) by removing at most one edge from it? A directed graph is called acyclic iff it doesn't contain any cycle (a non-empty path that starts and ends in the same vertex). Input Specification: The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=500, 1<=≤<=*m*<=≤<=*min*(*n*(*n*<=-<=1),<=100000)) — the number of vertices and the number of edges, respectively. Then *m* lines follow. Each line contains two integers *u* and *v* denoting a directed edge going from vertex *u* to vertex *v* (1<=≤<=*u*,<=*v*<=≤<=*n*, *u*<=≠<=*v*). Each ordered pair (*u*,<=*v*) is listed at most once (there is at most one directed edge from *u* to *v*). Output Specification: If it is possible to make this graph acyclic by removing at most one edge, print YES. Otherwise, print NO. Demo Input: ['3 4\n1 2\n2 3\n3 2\n3 1\n', '5 6\n1 2\n2 3\n3 2\n3 1\n2 1\n4 5\n'] Demo Output: ['YES\n', 'NO\n'] Note: In the first example you can remove edge <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/>, and the graph becomes acyclic. In the second example you have to remove at least two edges (for example, <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/420322fe5fba4eb3e3eba6886a2edb31f15762ce.png" style="max-width: 100.0%;max-height: 100.0%;"/> and <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/29f71c065c3536e88b54429c734103ad3604f68b.png" style="max-width: 100.0%;max-height: 100.0%;"/>) in order to make the graph acyclic.
```python import sys sys.setrecursionlimit(10000000) def dfs(v): global extra_list, verts verts.append(v + 1) extra_list[v] = 1 for i in range(len(graph[v])): if extra_list[graph[v][i]] == 0: dfs(graph[v][i]) extra_list[v] = 2 return verts n, m = map(int, input().split()) graph = [[] for i in range(n)] extra_list = [0] * n verts = [] kolvo = 0 ans = [] for i in range(m): a, b = map(int, input().split()) a -= 1 b -= 1 graph[a].append(b) graph[b].append(a) for i in range(len(extra_list)): if extra_list[i] == 0: num = dfs(i) kolvo += 1 ans.append(num) verts = [] flag = True ans2 = True for i in range(len(ans)): edges = 0 for j in range(len(ans[i])): edges += len(graph[ans[i][j] - 1]) if len(ans[i]) * 2 == edges and not flag: flag = True elif len(ans[i]) * 2 == edges and flag: ans2 = False break elif len(ans[i]) * 2 > edges: ans2 = False break if ans2: print('YES') else: print('NO') ```
0
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 $k$ ($2 \le n \le 10^9$, $1 \le k \le 50$) — the number from which Tanya will subtract and the number of subtractions correspondingly.
Print one integer number — 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" } ]
1,698,542,740
2,147,483,647
Python 3
OK
TESTS
11
31
0
n,k = map(int,input().split()) b = 0 z = n for i in range(k): if n%10!=0: n-=1 elif n==1 or n==0: n=1 elif n%10==0 : n = n//10 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 $k$ ($2 \le n \le 10^9$, $1 \le k \le 50$) — the number from which Tanya will subtract and the number of subtractions correspondingly. Output Specification: Print one integer number — 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 n,k = map(int,input().split()) b = 0 z = n for i in range(k): if n%10!=0: n-=1 elif n==1 or n==0: n=1 elif n%10==0 : n = n//10 print(n) ```
3
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,685,049,201
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
62
0
s=input() s1=s.lower() s2=s.upper() k1=0 k2=0 for i in range(len(s)): if s[i] == s1[i]: k1+=1 if s[i] == s2[i]: k2+=1 if k1 > k2: print(s1) else: print(s2)
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python s=input() s1=s.lower() s2=s.upper() k1=0 k2=0 for i in range(len(s)): if s[i] == s1[i]: k1+=1 if s[i] == s2[i]: k2+=1 if k1 > k2: print(s1) else: print(s2) ```
0
630
A
Again Twenty Five!
PROGRAMMING
800
[ "number theory" ]
null
null
The HR manager was disappointed again. The last applicant failed the interview the same way as 24 previous ones. "Do I give such a hard task?" — the HR manager thought. "Just raise number 5 to the power of *n* and get last two digits of the number. Yes, of course, *n* can be rather big, and one cannot find the power using a calculator, but we need people who are able to think, not just follow the instructions." Could you pass the interview in the machine vision company in IT City?
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=2·1018) — the power in which you need to raise number 5.
Output the last two digits of 5*n* without spaces between them.
[ "2\n" ]
[ "25" ]
none
0
[ { "input": "2", "output": "25" }, { "input": "7", "output": "25" }, { "input": "1000000000000000000", "output": "25" }, { "input": "2000000000000000000", "output": "25" }, { "input": "987654321012345678", "output": "25" } ]
1,688,309,115
2,147,483,647
Python 3
OK
TESTS
5
31
0
n = int(input()) result = pow(5, n, 100) print(result)
Title: Again Twenty Five! Time Limit: None seconds Memory Limit: None megabytes Problem Description: The HR manager was disappointed again. The last applicant failed the interview the same way as 24 previous ones. "Do I give such a hard task?" — the HR manager thought. "Just raise number 5 to the power of *n* and get last two digits of the number. Yes, of course, *n* can be rather big, and one cannot find the power using a calculator, but we need people who are able to think, not just follow the instructions." Could you pass the interview in the machine vision company in IT City? Input Specification: The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=2·1018) — the power in which you need to raise number 5. Output Specification: Output the last two digits of 5*n* without spaces between them. Demo Input: ['2\n'] Demo Output: ['25'] Note: none
```python n = int(input()) result = pow(5, n, 100) print(result) ```
3
946
A
Partition
PROGRAMMING
800
[ "greedy" ]
null
null
You are given a sequence *a* consisting of *n* integers. You may partition this sequence into two sequences *b* and *c* in such a way that every element belongs exactly to one of these sequences. Let *B* be the sum of elements belonging to *b*, and *C* be the sum of elements belonging to *c* (if some of these sequences is empty, then its sum is 0). What is the maximum possible value of *B*<=-<=*C*?
The first line contains one integer *n* (1<=≤<=*n*<=≤<=100) — the number of elements in *a*. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (<=-<=100<=≤<=*a**i*<=≤<=100) — the elements of sequence *a*.
Print the maximum possible value of *B*<=-<=*C*, where *B* is the sum of elements of sequence *b*, and *C* is the sum of elements of sequence *c*.
[ "3\n1 -2 0\n", "6\n16 23 16 15 42 8\n" ]
[ "3\n", "120\n" ]
In the first example we may choose *b* = {1, 0}, *c* = { - 2}. Then *B* = 1, *C* =  - 2, *B* - *C* = 3. In the second example we choose *b* = {16, 23, 16, 15, 42, 8}, *c* = {} (an empty sequence). Then *B* = 120, *C* = 0, *B* - *C* = 120.
0
[ { "input": "3\n1 -2 0", "output": "3" }, { "input": "6\n16 23 16 15 42 8", "output": "120" }, { "input": "1\n-1", "output": "1" }, { "input": "100\n-100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100 -100", "output": "10000" }, { "input": "2\n-1 5", "output": "6" }, { "input": "3\n-2 0 1", "output": "3" }, { "input": "12\n-1 -2 -3 4 4 -6 -6 56 3 3 -3 3", "output": "94" }, { "input": "4\n1 -1 1 -1", "output": "4" }, { "input": "4\n100 -100 100 -100", "output": "400" }, { "input": "3\n-2 -5 10", "output": "17" }, { "input": "5\n1 -2 3 -4 5", "output": "15" }, { "input": "3\n-100 100 -100", "output": "300" }, { "input": "6\n1 -1 1 -1 1 -1", "output": "6" }, { "input": "6\n2 -2 2 -2 2 -2", "output": "12" }, { "input": "9\n12 93 -2 0 0 0 3 -3 -9", "output": "122" }, { "input": "6\n-1 2 4 -5 -3 55", "output": "70" }, { "input": "6\n-12 8 68 -53 1 -15", "output": "157" }, { "input": "2\n-2 1", "output": "3" }, { "input": "3\n100 -100 100", "output": "300" }, { "input": "5\n100 100 -1 -100 2", "output": "303" }, { "input": "6\n-5 -4 -3 -2 -1 0", "output": "15" }, { "input": "6\n4 4 4 -3 -3 2", "output": "20" }, { "input": "2\n-1 2", "output": "3" }, { "input": "1\n100", "output": "100" }, { "input": "5\n-1 -2 3 1 2", "output": "9" }, { "input": "5\n100 -100 100 -100 100", "output": "500" }, { "input": "5\n1 -1 1 -1 1", "output": "5" }, { "input": "4\n0 0 0 -1", "output": "1" }, { "input": "5\n100 -100 -1 2 100", "output": "303" }, { "input": "2\n75 0", "output": "75" }, { "input": "4\n55 56 -59 -58", "output": "228" }, { "input": "2\n9 71", "output": "80" }, { "input": "2\n9 70", "output": "79" }, { "input": "2\n9 69", "output": "78" }, { "input": "2\n100 -100", "output": "200" }, { "input": "4\n-9 4 -9 5", "output": "27" }, { "input": "42\n91 -27 -79 -56 80 -93 -23 10 80 94 61 -89 -64 81 34 99 31 -32 -69 92 79 -9 73 66 -8 64 99 99 58 -19 -40 21 1 -33 93 -23 -62 27 55 41 57 36", "output": "2348" }, { "input": "7\n-1 2 2 2 -1 2 -1", "output": "11" }, { "input": "6\n-12 8 17 -69 7 -88", "output": "201" }, { "input": "3\n1 -2 5", "output": "8" }, { "input": "6\n-2 3 -4 5 6 -1", "output": "21" }, { "input": "2\n-5 1", "output": "6" }, { "input": "4\n2 2 -2 4", "output": "10" }, { "input": "68\n21 47 -75 -25 64 83 83 -21 89 24 43 44 -35 34 -42 92 -96 -52 -66 64 14 -87 25 -61 -78 83 -96 -18 95 83 -93 -28 75 49 87 65 -93 -69 -2 95 -24 -36 -61 -71 88 -53 -93 -51 -81 -65 -53 -46 -56 6 65 58 19 100 57 61 -53 44 -58 48 -8 80 -88 72", "output": "3991" }, { "input": "5\n5 5 -10 -1 1", "output": "22" }, { "input": "3\n-1 2 3", "output": "6" }, { "input": "76\n57 -38 -48 -81 93 -32 96 55 -44 2 38 -46 42 64 71 -73 95 31 -39 -62 -1 75 -17 57 28 52 12 -11 82 -84 59 -86 73 -97 34 97 -57 -85 -6 39 -5 -54 95 24 -44 35 -18 9 91 7 -22 -61 -80 54 -40 74 -90 15 -97 66 -52 -49 -24 65 21 -93 -29 -24 -4 -1 76 -93 7 -55 -53 1", "output": "3787" }, { "input": "5\n-1 -2 1 2 3", "output": "9" }, { "input": "4\n2 2 -2 -2", "output": "8" }, { "input": "6\n100 -100 100 -100 100 -100", "output": "600" }, { "input": "100\n-59 -33 34 0 69 24 -22 58 62 -36 5 45 -19 -73 61 -9 95 42 -73 -64 91 -96 2 53 -8 82 -79 16 18 -5 -53 26 71 38 -31 12 -33 -1 -65 -6 3 -89 22 33 -27 -36 41 11 -47 -32 47 -56 -38 57 -63 -41 23 41 29 78 16 -65 90 -58 -12 6 -60 42 -36 -52 -54 -95 -10 29 70 50 -94 1 93 48 -71 -77 -16 54 56 -60 66 76 31 8 44 -61 -74 23 37 38 18 -18 29 41", "output": "4362" }, { "input": "2\n-1 1", "output": "2" }, { "input": "3\n1 -2 100", "output": "103" }, { "input": "5\n1 -2 3 1 2", "output": "9" }, { "input": "10\n100 -10 -100 10 10 10 10 10 10 10", "output": "280" }, { "input": "4\n2 0 -2 4", "output": "8" }, { "input": "4\n3 -3 1 -1", "output": "8" }, { "input": "3\n1 -1 1", "output": "3" }, { "input": "4\n2 5 -2 4", "output": "13" }, { "input": "2\n-2 2", "output": "4" }, { "input": "3\n1 -2 1", "output": "4" }, { "input": "5\n-1 -2 1 1 -1", "output": "6" }, { "input": "4\n-2 0 2 4", "output": "8" }, { "input": "8\n-42 7 87 -16 -5 65 -88 1", "output": "311" }, { "input": "3\n1 -3 4", "output": "8" }, { "input": "1\n1", "output": "1" }, { "input": "2\n0 1", "output": "1" }, { "input": "3\n-1 2 -1", "output": "4" }, { "input": "18\n-21 12 65 66 -24 62 82 35 -45 -47 28 37 5 -32 22 -14 -69 -95", "output": "761" }, { "input": "4\n-1 1 -1 1", "output": "4" }, { "input": "5\n-1 2 1 1 1", "output": "6" }, { "input": "3\n1 1 1", "output": "3" } ]
1,689,906,364
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
30
0
n = int(input()) a = list(map(int, input().split())) a.sort(reverse=True) B = 0 C = 0 for i in range(n): if i % 2 == 0: B += a[i] else: C += a[i] max_difference = B - C print(max_difference)
Title: Partition Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given a sequence *a* consisting of *n* integers. You may partition this sequence into two sequences *b* and *c* in such a way that every element belongs exactly to one of these sequences. Let *B* be the sum of elements belonging to *b*, and *C* be the sum of elements belonging to *c* (if some of these sequences is empty, then its sum is 0). What is the maximum possible value of *B*<=-<=*C*? Input Specification: The first line contains one integer *n* (1<=≤<=*n*<=≤<=100) — the number of elements in *a*. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (<=-<=100<=≤<=*a**i*<=≤<=100) — the elements of sequence *a*. Output Specification: Print the maximum possible value of *B*<=-<=*C*, where *B* is the sum of elements of sequence *b*, and *C* is the sum of elements of sequence *c*. Demo Input: ['3\n1 -2 0\n', '6\n16 23 16 15 42 8\n'] Demo Output: ['3\n', '120\n'] Note: In the first example we may choose *b* = {1, 0}, *c* = { - 2}. Then *B* = 1, *C* =  - 2, *B* - *C* = 3. In the second example we choose *b* = {16, 23, 16, 15, 42, 8}, *c* = {} (an empty sequence). Then *B* = 120, *C* = 0, *B* - *C* = 120.
```python n = int(input()) a = list(map(int, input().split())) a.sort(reverse=True) B = 0 C = 0 for i in range(n): if i % 2 == 0: B += a[i] else: C += a[i] max_difference = B - C print(max_difference) ```
0
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*<=×<=*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*<=×<=*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<=≤<=<=*n*,<=*m*,<=*a*<=≤<=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" } ]
1,692,645,942
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
1
15
0
n,m,a = input().split() m = int(m) n = int(n) a = int(a) city = n/a if n%a: city += 1 city = int(city) city1 = m/a if m%a: city1 += 1 city1= int(city1) print(city1*city)
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*<=×<=*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*<=×<=*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<=≤<=<=*n*,<=*m*,<=*a*<=≤<=109). Output Specification: Write the needed number of flagstones. Demo Input: ['6 6 4\n'] Demo Output: ['4\n'] Note: none
```python n,m,a = input().split() m = int(m) n = int(n) a = int(a) city = n/a if n%a: city += 1 city = int(city) city1 = m/a if m%a: city1 += 1 city1= int(city1) print(city1*city) ```
0
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 — move from the cell (*x*,<=*y*) to (*x*,<=*y*<=+<=1); - D — move from (*x*,<=*y*) to (*x*,<=*y*<=-<=1); - L — move from (*x*,<=*y*) to (*x*<=-<=1,<=*y*); - R — 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* — the length of sequence of commands entered by Ivan (1<=≤<=*n*<=≤<=100). The second line contains the sequence itself — 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" } ]
1,511,510,984
2,147,483,647
Python 3
OK
TESTS
25
77
5,529,600
n = int(input()) s = list(input()) l = 0 r = 0 u = 0 d = 0 for i in s: if i == 'L': l += 1 if i == 'U': u += 1 if i == 'R': r += 1 if i == 'D': d += 1 m1 = min(l, r) * 2 m2 = min(u, d) * 2 if l > 0 and r > 0 or l == 0 and r == 0: print(m1 + m2) elif u > 0 and d > 0 or u == 0 and d == 0: print(m1 + m2) else: print('0')
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 — move from the cell (*x*,<=*y*) to (*x*,<=*y*<=+<=1); - D — move from (*x*,<=*y*) to (*x*,<=*y*<=-<=1); - L — move from (*x*,<=*y*) to (*x*<=-<=1,<=*y*); - R — 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* — the length of sequence of commands entered by Ivan (1<=≤<=*n*<=≤<=100). The second line contains the sequence itself — 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 = list(input()) l = 0 r = 0 u = 0 d = 0 for i in s: if i == 'L': l += 1 if i == 'U': u += 1 if i == 'R': r += 1 if i == 'D': d += 1 m1 = min(l, r) * 2 m2 = min(u, d) * 2 if l > 0 and r > 0 or l == 0 and r == 0: print(m1 + m2) elif u > 0 and d > 0 or u == 0 and d == 0: print(m1 + m2) else: print('0') ```
3
559
B
Equivalent Strings
PROGRAMMING
1,700
[ "divide and conquer", "hashing", "sortings", "strings" ]
null
null
Today on a lecture about strings Gerald learned a new definition of string equivalency. Two strings *a* and *b* of equal length are called equivalent in one of the two cases: 1. They are equal. 1. If we split string *a* into two halves of the same size *a*1 and *a*2, and string *b* into two halves of the same size *b*1 and *b*2, then one of the following is correct: *a*1 is equivalent to *b*1, and *a*2 is equivalent to *b*2 1. *a*1 is equivalent to *b*2, and *a*2 is equivalent to *b*1 As a home task, the teacher gave two strings to his students and asked to determine if they are equivalent. Gerald has already completed this home task. Now it's your turn!
The first two lines of the input contain two strings given by the teacher. Each of them has the length from 1 to 200<=000 and consists of lowercase English letters. The strings have the same length.
Print "YES" (without the quotes), if these two strings are equivalent, and "NO" (without the quotes) otherwise.
[ "aaba\nabaa\n", "aabb\nabab\n" ]
[ "YES\n", "NO\n" ]
In the first sample you should split the first string into strings "aa" and "ba", the second one — into strings "ab" and "aa". "aa" is equivalent to "aa"; "ab" is equivalent to "ba" as "ab" = "a" + "b", "ba" = "b" + "a". In the second sample the first string can be splitted into strings "aa" and "bb", that are equivalent only to themselves. That's why string "aabb" is equivalent only to itself and to string "bbaa".
1,000
[ { "input": "aaba\nabaa", "output": "YES" }, { "input": "aabb\nabab", "output": "NO" }, { "input": "a\na", "output": "YES" }, { "input": "a\nb", "output": "NO" }, { "input": "ab\nab", "output": "YES" }, { "input": "ab\nba", "output": "YES" }, { "input": "ab\nbb", "output": "NO" }, { "input": "zzaa\naazz", "output": "YES" }, { "input": "azza\nzaaz", "output": "YES" }, { "input": "abc\nabc", "output": "YES" }, { "input": "abc\nacb", "output": "NO" }, { "input": "azzz\nzzaz", "output": "YES" }, { "input": "abcd\ndcab", "output": "YES" }, { "input": "abcd\ncdab", "output": "YES" }, { "input": "abcd\ndcba", "output": "YES" }, { "input": "abcd\nacbd", "output": "NO" }, { "input": "oloaxgddgujq\noloaxgujqddg", "output": "YES" }, { "input": "uwzwdxfmosmqatyv\ndxfmzwwusomqvyta", "output": "YES" }, { "input": "hagnzomowtledfdotnll\nledfdotnllomowthagnz", "output": "YES" }, { "input": "snyaydaeobufdg\nsnyaydaeobufdg", "output": "YES" }, { "input": "baaaaa\nabaaaa", "output": "NO" }, { "input": "hhiisug\nmzdjwju", "output": "NO" }, { "input": "bbbabbabaaab\naaaabbabbbbb", "output": "NO" }, { "input": "bbaaab\naababb", "output": "NO" }, { "input": "aabbaaaa\naaaaabab", "output": "NO" }, { "input": "aab\naba", "output": "NO" }, { "input": "abcddd\nbacddd", "output": "NO" }, { "input": "qgiufelsfhanx\naaaaaaaaaaaaa", "output": "NO" }, { "input": "aabaababaaba\naababaaababa", "output": "NO" }, { "input": "nocdqzdriyyil\naaaaaaaaaaaaa", "output": "NO" }, { "input": "zdmctxl\nkojqhgw", "output": "NO" }, { "input": "yhwepqwyhwepqwyhwepqweahnqtueahnqtueahnqtuyhwepqwyhwepqwyhwepqwyhwepqweahnqtueahnqtuyhwepqweahnqtueahnqtueahnqtueahnqtueahnqtueahnqtu\neahnqtueahnqtueahnqtuyhwepqweahnqtuyhwepqwyhwepqweahnqtuyhwepqweahnqtuyhwepqweahnqtueahnqtuyhwepqweahnqtueahnqtuyhwepqwyhwepqwyhwepqw", "output": "NO" }, { "input": "abc\nbac", "output": "NO" }, { "input": "ottceez\npcstdvz", "output": "NO" } ]
1,541,671,990
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
88
2,000
1,024,000
def check(a,b): if(a==b): return True if(len(a)%2==1): return False return (check(a[:len(a)//2],b[:len(b)//2]) and check(a[len(a)//2:],b[len(b)//2:]) ) or( check(a[:len(a)//2],b[len(b)//2:]) and check(a[len(a)//2:],b[:len(b)//2]) ) a=input() b=input() if(check(a,b)): print("YES") else: print("NO")
Title: Equivalent Strings Time Limit: None seconds Memory Limit: None megabytes Problem Description: Today on a lecture about strings Gerald learned a new definition of string equivalency. Two strings *a* and *b* of equal length are called equivalent in one of the two cases: 1. They are equal. 1. If we split string *a* into two halves of the same size *a*1 and *a*2, and string *b* into two halves of the same size *b*1 and *b*2, then one of the following is correct: *a*1 is equivalent to *b*1, and *a*2 is equivalent to *b*2 1. *a*1 is equivalent to *b*2, and *a*2 is equivalent to *b*1 As a home task, the teacher gave two strings to his students and asked to determine if they are equivalent. Gerald has already completed this home task. Now it's your turn! Input Specification: The first two lines of the input contain two strings given by the teacher. Each of them has the length from 1 to 200<=000 and consists of lowercase English letters. The strings have the same length. Output Specification: Print "YES" (without the quotes), if these two strings are equivalent, and "NO" (without the quotes) otherwise. Demo Input: ['aaba\nabaa\n', 'aabb\nabab\n'] Demo Output: ['YES\n', 'NO\n'] Note: In the first sample you should split the first string into strings "aa" and "ba", the second one — into strings "ab" and "aa". "aa" is equivalent to "aa"; "ab" is equivalent to "ba" as "ab" = "a" + "b", "ba" = "b" + "a". In the second sample the first string can be splitted into strings "aa" and "bb", that are equivalent only to themselves. That's why string "aabb" is equivalent only to itself and to string "bbaa".
```python def check(a,b): if(a==b): return True if(len(a)%2==1): return False return (check(a[:len(a)//2],b[:len(b)//2]) and check(a[len(a)//2:],b[len(b)//2:]) ) or( check(a[:len(a)//2],b[len(b)//2:]) and check(a[len(a)//2:],b[:len(b)//2]) ) a=input() b=input() if(check(a,b)): print("YES") else: print("NO") ```
0
452
A
Eevee
PROGRAMMING
1,000
[ "brute force", "implementation", "strings" ]
null
null
You are solving the crossword problem K from IPSC 2014. You solved all the clues except for one: who does Eevee evolve into? You are not very into pokemons, but quick googling helped you find out, that Eevee can evolve into eight different pokemons: Vaporeon, Jolteon, Flareon, Espeon, Umbreon, Leafeon, Glaceon, and Sylveon. You know the length of the word in the crossword, and you already know some letters. Designers of the crossword made sure that the answer is unambiguous, so you can assume that exactly one pokemon out of the 8 that Eevee evolves into fits the length and the letters given. Your task is to find it.
First line contains an integer *n* (6<=≤<=*n*<=≤<=8) – the length of the string. Next line contains a string consisting of *n* characters, each of which is either a lower case english letter (indicating a known letter) or a dot character (indicating an empty cell in the crossword).
Print a name of the pokemon that Eevee can evolve into that matches the pattern in the input. Use lower case letters only to print the name (in particular, do not capitalize the first letter).
[ "7\nj......\n", "7\n...feon\n", "7\n.l.r.o.\n" ]
[ "jolteon\n", "leafeon\n", "flareon\n" ]
Here's a set of names in a form you can paste into your solution: ["vaporeon", "jolteon", "flareon", "espeon", "umbreon", "leafeon", "glaceon", "sylveon"] {"vaporeon", "jolteon", "flareon", "espeon", "umbreon", "leafeon", "glaceon", "sylveon"}
500
[ { "input": "7\n...feon", "output": "leafeon" }, { "input": "7\n.l.r.o.", "output": "flareon" }, { "input": "6\n.s..o.", "output": "espeon" }, { "input": "7\nglaceon", "output": "glaceon" }, { "input": "8\n.a.o.e.n", "output": "vaporeon" }, { "input": "7\n.laceon", "output": "glaceon" }, { "input": "7\n..lveon", "output": "sylveon" }, { "input": "7\n.l.ceon", "output": "glaceon" }, { "input": "7\n..areon", "output": "flareon" } ]
1,594,822,548
2,147,483,647
PyPy 3
OK
TESTS
20
155
20,172,800
""" problem : https://codeforces.com/problemset/problem/452/A auther : Jay Saha handel : ponder_ date : 15/07/2020 """ pokemons = ['vaporeon', 'jolteon', 'flareon', 'espeon', 'umbreon', 'leafeon', 'glaceon', 'sylveon'] n = int(input()) maskedPM = input() for p in pokemons: if n == len(p): isValid = True for i in range(n): if maskedPM[i] != '.': if maskedPM[i] != p[i]: isValid = False if isValid: print(p) break
Title: Eevee Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are solving the crossword problem K from IPSC 2014. You solved all the clues except for one: who does Eevee evolve into? You are not very into pokemons, but quick googling helped you find out, that Eevee can evolve into eight different pokemons: Vaporeon, Jolteon, Flareon, Espeon, Umbreon, Leafeon, Glaceon, and Sylveon. You know the length of the word in the crossword, and you already know some letters. Designers of the crossword made sure that the answer is unambiguous, so you can assume that exactly one pokemon out of the 8 that Eevee evolves into fits the length and the letters given. Your task is to find it. Input Specification: First line contains an integer *n* (6<=≤<=*n*<=≤<=8) – the length of the string. Next line contains a string consisting of *n* characters, each of which is either a lower case english letter (indicating a known letter) or a dot character (indicating an empty cell in the crossword). Output Specification: Print a name of the pokemon that Eevee can evolve into that matches the pattern in the input. Use lower case letters only to print the name (in particular, do not capitalize the first letter). Demo Input: ['7\nj......\n', '7\n...feon\n', '7\n.l.r.o.\n'] Demo Output: ['jolteon\n', 'leafeon\n', 'flareon\n'] Note: Here's a set of names in a form you can paste into your solution: ["vaporeon", "jolteon", "flareon", "espeon", "umbreon", "leafeon", "glaceon", "sylveon"] {"vaporeon", "jolteon", "flareon", "espeon", "umbreon", "leafeon", "glaceon", "sylveon"}
```python """ problem : https://codeforces.com/problemset/problem/452/A auther : Jay Saha handel : ponder_ date : 15/07/2020 """ pokemons = ['vaporeon', 'jolteon', 'flareon', 'espeon', 'umbreon', 'leafeon', 'glaceon', 'sylveon'] n = int(input()) maskedPM = input() for p in pokemons: if n == len(p): isValid = True for i in range(n): if maskedPM[i] != '.': if maskedPM[i] != p[i]: isValid = False if isValid: print(p) break ```
3
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,645,795,484
2,147,483,647
Python 3
OK
TESTS
30
62
0
x = input() upper = 0 lower = 0 for i in x: if i.isupper(): upper = upper +1 if i.islower(): lower = lower +1 if lower>=upper: print(x.lower()) else: print(x.upper())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python x = input() upper = 0 lower = 0 for i in x: if i.isupper(): upper = upper +1 if i.islower(): lower = lower +1 if lower>=upper: print(x.lower()) else: print(x.upper()) ```
3.9845
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*|<=≤<=109). The second line contains a single integer *n* (1<=≤<=*n*<=≤<=2·109).
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> = *f*<sub class="lower-index">1</sub> + *f*<sub class="lower-index">3</sub>, 3 = 2 + *f*<sub class="lower-index">3</sub>, *f*<sub class="lower-index">3</sub> = 1. In the second sample, *f*<sub class="lower-index">2</sub> =  - 1;  - 1 modulo (10<sup class="upper-index">9</sup> + 7) equals (10<sup class="upper-index">9</sup> + 6).
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" } ]
1,666,429,448
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
3
1,000
25,190,400
s=input().split() x,y=int(s[0]),int(s[1]) neww=[] neww.append(x) neww.append(y) n=int(input()) def calit(n): return neww[n-1]-neww[n-2] for i in range(2,n): neww.append(calit(i)) print(neww[n-1]%(10**9+7))
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*|<=≤<=109). The second line contains a single integer *n* (1<=≤<=*n*<=≤<=2·109). 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> = *f*<sub class="lower-index">1</sub> + *f*<sub class="lower-index">3</sub>, 3 = 2 + *f*<sub class="lower-index">3</sub>, *f*<sub class="lower-index">3</sub> = 1. In the second sample, *f*<sub class="lower-index">2</sub> =  - 1;  - 1 modulo (10<sup class="upper-index">9</sup> + 7) equals (10<sup class="upper-index">9</sup> + 6).
```python s=input().split() x,y=int(s[0]),int(s[1]) neww=[] neww.append(x) neww.append(y) n=int(input()) def calit(n): return neww[n-1]-neww[n-2] for i in range(2,n): neww.append(calit(i)) print(neww[n-1]%(10**9+7)) ```
0
245
B
Internet Address
PROGRAMMING
1,100
[ "implementation", "strings" ]
null
null
Vasya is an active Internet user. One day he came across an Internet resource he liked, so he wrote its address in the notebook. We know that the address of the written resource has format: where: - &lt;protocol&gt; can equal either "http" (without the quotes) or "ftp" (without the quotes), - &lt;domain&gt; is a non-empty string, consisting of lowercase English letters, - the /&lt;context&gt; part may not be present. If it is present, then &lt;context&gt; is a non-empty string, consisting of lowercase English letters. If string &lt;context&gt; isn't present in the address, then the additional character "/" isn't written. Thus, the address has either two characters "/" (the ones that go before the domain), or three (an extra one in front of the context). When the boy came home, he found out that the address he wrote in his notebook had no punctuation marks. Vasya must have been in a lot of hurry and didn't write characters ":", "/", ".". Help Vasya to restore the possible address of the recorded Internet resource.
The first line contains a non-empty string that Vasya wrote out in his notebook. This line consists of lowercase English letters only. It is guaranteed that the given string contains at most 50 letters. It is guaranteed that the given string can be obtained from some correct Internet resource address, described above.
Print a single line — the address of the Internet resource that Vasya liked. If there are several addresses that meet the problem limitations, you are allowed to print any of them.
[ "httpsunrux\n", "ftphttprururu\n" ]
[ "http://sun.ru/x\n", "ftp://http.ru/ruru\n" ]
In the second sample there are two more possible answers: "ftp://httpruru.ru" and "ftp://httpru.ru/ru".
0
[ { "input": "httpsunrux", "output": "http://sun.ru/x" }, { "input": "ftphttprururu", "output": "ftp://http.ru/ruru" }, { "input": "httpuururrururruruurururrrrrurrurrurruruuruuu", "output": "http://uu.ru/rrururruruurururrrrrurrurrurruruuruuu" }, { "input": "httpabuaruauabbaruru", "output": "http://abua.ru/auabbaruru" }, { "input": "httpuurrruurruuruuruuurrrurururuurruuuuuuruurr", "output": "http://uurr.ru/urruuruuruuurrrurururuurruuuuuuruurr" }, { "input": "httpruhhphhhpuhruruhhpruhhphruhhru", "output": "http://ruhhphhhpuh.ru/ruhhpruhhphruhhru" }, { "input": "httpftprftprutprururftruruftptp", "output": "http://ftprftp.ru/tprururftruruftptp" }, { "input": "httpfttpftpfttftpftpftppfrurururu", "output": "http://fttpftpfttftpftpftppf.ru/rururu" }, { "input": "httpruhttttpruhttprupruhttpruhtturuhttphtruuru", "output": "http://ruhttttp.ru/httprupruhttpruhtturuhttphtruuru" }, { "input": "httpsjkazaaghasjkasjkabruru", "output": "http://sjkazaaghasjkasjkab.ru/ru" }, { "input": "httpftphttptphttphrururuhpftphtpftphtpftphtptpft", "output": "http://ftphttptphttph.ru/ruruhpftphtpftphtpftphtptpft" }, { "input": "httpppppru", "output": "http://pppp.ru" }, { "input": "ftprrurururrurururuurrururruuru", "output": "ftp://r.ru/rururrurururuurrururruuru" }, { "input": "ftpabaruru", "output": "ftp://aba.ru/ru" }, { "input": "ftpruurruurururururuuruuur", "output": "ftp://ruur.ru/urururururuuruuur" }, { "input": "ftphhphruhhpruhhpuhhpuruhhphruhhruhhpuhhru", "output": "ftp://hhph.ru/hhpruhhpuhhpuruhhphruhhruhhpuhhru" }, { "input": "ftparua", "output": "ftp://a.ru/a" }, { "input": "httpzru", "output": "http://z.ru" }, { "input": "httprrur", "output": "http://r.ru/r" }, { "input": "ftprru", "output": "ftp://r.ru" } ]
1,653,215,285
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
11
62
0
import sys input = sys.stdin.readline s = input()[:-1] if s[0] == 'h': a = s.find('ru', 5, len(s)) s = s[:4] + '://' + s[4:a] + '.' + s[a:a+2] + '/' + s[a+2:] else: a = s.find('ru', 4, len(s)) s = s[:3] + '://' + s[3:a] + '.' + s[a:a + 2] + '/' + s[a + 2:] print(s)
Title: Internet Address Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vasya is an active Internet user. One day he came across an Internet resource he liked, so he wrote its address in the notebook. We know that the address of the written resource has format: where: - &lt;protocol&gt; can equal either "http" (without the quotes) or "ftp" (without the quotes), - &lt;domain&gt; is a non-empty string, consisting of lowercase English letters, - the /&lt;context&gt; part may not be present. If it is present, then &lt;context&gt; is a non-empty string, consisting of lowercase English letters. If string &lt;context&gt; isn't present in the address, then the additional character "/" isn't written. Thus, the address has either two characters "/" (the ones that go before the domain), or three (an extra one in front of the context). When the boy came home, he found out that the address he wrote in his notebook had no punctuation marks. Vasya must have been in a lot of hurry and didn't write characters ":", "/", ".". Help Vasya to restore the possible address of the recorded Internet resource. Input Specification: The first line contains a non-empty string that Vasya wrote out in his notebook. This line consists of lowercase English letters only. It is guaranteed that the given string contains at most 50 letters. It is guaranteed that the given string can be obtained from some correct Internet resource address, described above. Output Specification: Print a single line — the address of the Internet resource that Vasya liked. If there are several addresses that meet the problem limitations, you are allowed to print any of them. Demo Input: ['httpsunrux\n', 'ftphttprururu\n'] Demo Output: ['http://sun.ru/x\n', 'ftp://http.ru/ruru\n'] Note: In the second sample there are two more possible answers: "ftp://httpruru.ru" and "ftp://httpru.ru/ru".
```python import sys input = sys.stdin.readline s = input()[:-1] if s[0] == 'h': a = s.find('ru', 5, len(s)) s = s[:4] + '://' + s[4:a] + '.' + s[a:a+2] + '/' + s[a+2:] else: a = s.find('ru', 4, len(s)) s = s[:3] + '://' + s[3:a] + '.' + s[a:a + 2] + '/' + s[a + 2:] print(s) ```
0
352
B
Jeff and Periods
PROGRAMMING
1,300
[ "implementation", "sortings" ]
null
null
One day Jeff got hold of an integer sequence *a*1, *a*2, ..., *a**n* of length *n*. The boy immediately decided to analyze the sequence. For that, he needs to find all values of *x*, for which these conditions hold: - *x* occurs in sequence *a*. - Consider all positions of numbers *x* in the sequence *a* (such *i*, that *a**i*<==<=*x*). These numbers, sorted in the increasing order, must form an arithmetic progression. Help Jeff, find all *x* that meet the problem conditions.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105). The next line contains integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=105). The numbers are separated by spaces.
In the first line print integer *t* — the number of valid *x*. On each of the next *t* lines print two integers *x* and *p**x*, where *x* is current suitable value, *p**x* is the common difference between numbers in the progression (if *x* occurs exactly once in the sequence, *p**x* must equal 0). Print the pairs in the order of increasing *x*.
[ "1\n2\n", "8\n1 2 1 3 1 2 1 5\n" ]
[ "1\n2 0\n", "4\n1 2\n2 4\n3 0\n5 0\n" ]
In the first test 2 occurs exactly once in the sequence, ergo *p*<sub class="lower-index">2</sub> = 0.
1,000
[ { "input": "1\n2", "output": "1\n2 0" }, { "input": "8\n1 2 1 3 1 2 1 5", "output": "4\n1 2\n2 4\n3 0\n5 0" }, { "input": "3\n1 10 5", "output": "3\n1 0\n5 0\n10 0" }, { "input": "4\n9 9 3 5", "output": "3\n3 0\n5 0\n9 1" }, { "input": "6\n1 2 2 1 1 2", "output": "0" }, { "input": "6\n2 6 3 8 7 2", "output": "5\n2 5\n3 0\n6 0\n7 0\n8 0" }, { "input": "7\n2 1 2 1 2 1 2", "output": "2\n1 2\n2 2" }, { "input": "8\n1 1 1 1 1 1 1 1", "output": "1\n1 1" }, { "input": "9\n2 3 3 3 2 1 2 3 2", "output": "1\n1 0" }, { "input": "10\n3 1 1 1 1 3 1 2 2 1", "output": "2\n2 1\n3 5" }, { "input": "12\n10 9 8 7 7 8 9 10 10 9 8 7", "output": "0" } ]
1,692,332,059
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
62
0
n = int(input()) arr = list(map(int, input().split())) s = set() m = {} val = 0 for i in range(n): if arr[i] not in s: s.add(arr[i]) diff = 0 cnt = 1 pos = i flag = True for j in range(i + 1, n): if arr[i] == arr[j]: cnt += 1 if cnt <= 2: diff = j - pos pos = j else: if diff == j - pos: pos = j flag = True else: flag = False break if flag: val += 1 m[arr[i]] = diff print(val) for key, value in m.items(): print(key, value)
Title: Jeff and Periods Time Limit: None seconds Memory Limit: None megabytes Problem Description: One day Jeff got hold of an integer sequence *a*1, *a*2, ..., *a**n* of length *n*. The boy immediately decided to analyze the sequence. For that, he needs to find all values of *x*, for which these conditions hold: - *x* occurs in sequence *a*. - Consider all positions of numbers *x* in the sequence *a* (such *i*, that *a**i*<==<=*x*). These numbers, sorted in the increasing order, must form an arithmetic progression. Help Jeff, find all *x* that meet the problem conditions. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105). The next line contains integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=105). The numbers are separated by spaces. Output Specification: In the first line print integer *t* — the number of valid *x*. On each of the next *t* lines print two integers *x* and *p**x*, where *x* is current suitable value, *p**x* is the common difference between numbers in the progression (if *x* occurs exactly once in the sequence, *p**x* must equal 0). Print the pairs in the order of increasing *x*. Demo Input: ['1\n2\n', '8\n1 2 1 3 1 2 1 5\n'] Demo Output: ['1\n2 0\n', '4\n1 2\n2 4\n3 0\n5 0\n'] Note: In the first test 2 occurs exactly once in the sequence, ergo *p*<sub class="lower-index">2</sub> = 0.
```python n = int(input()) arr = list(map(int, input().split())) s = set() m = {} val = 0 for i in range(n): if arr[i] not in s: s.add(arr[i]) diff = 0 cnt = 1 pos = i flag = True for j in range(i + 1, n): if arr[i] == arr[j]: cnt += 1 if cnt <= 2: diff = j - pos pos = j else: if diff == j - pos: pos = j flag = True else: flag = False break if flag: val += 1 m[arr[i]] = diff print(val) for key, value in m.items(): print(key, value) ```
0
588
B
Duff in Love
PROGRAMMING
1,300
[ "math" ]
null
null
Duff is in love with lovely numbers! A positive integer *x* is called lovely if and only if there is no such positive integer *a*<=&gt;<=1 such that *a*2 is a divisor of *x*. Malek has a number store! In his store, he has only divisors of positive integer *n* (and he has all of them). As a birthday present, Malek wants to give her a lovely number from his store. He wants this number to be as big as possible. Malek always had issues in math, so he asked for your help. Please tell him what is the biggest lovely number in his store.
The first and only line of input contains one integer, *n* (1<=≤<=*n*<=≤<=1012).
Print the answer in one line.
[ "10\n", "12\n" ]
[ "10\n", "6\n" ]
In first sample case, there are numbers 1, 2, 5 and 10 in the shop. 10 isn't divisible by any perfect square, so 10 is lovely. In second sample case, there are numbers 1, 2, 3, 4, 6 and 12 in the shop. 12 is divisible by 4 = 2<sup class="upper-index">2</sup>, so 12 is not lovely, while 6 is indeed lovely.
1,000
[ { "input": "10", "output": "10" }, { "input": "12", "output": "6" }, { "input": "1", "output": "1" }, { "input": "2", "output": "2" }, { "input": "4", "output": "2" }, { "input": "8", "output": "2" }, { "input": "3", "output": "3" }, { "input": "31", "output": "31" }, { "input": "97", "output": "97" }, { "input": "1000000000000", "output": "10" }, { "input": "15", "output": "15" }, { "input": "894", "output": "894" }, { "input": "271", "output": "271" }, { "input": "2457", "output": "273" }, { "input": "2829", "output": "2829" }, { "input": "5000", "output": "10" }, { "input": "20", "output": "10" }, { "input": "68", "output": "34" }, { "input": "3096", "output": "258" }, { "input": "1024", "output": "2" }, { "input": "1048576", "output": "2" }, { "input": "413933789280", "output": "25870861830" }, { "input": "817634153013", "output": "817634153013" }, { "input": "56517269141", "output": "56517269141" }, { "input": "30707328551", "output": "30707328551" }, { "input": "279564127218", "output": "10354226934" }, { "input": "491159577042", "output": "18191095446" }, { "input": "734337660466", "output": "734337660466" }, { "input": "808453785117", "output": "808453785117" }, { "input": "55926835837", "output": "55926835837" }, { "input": "294809951965", "output": "294809951965" }, { "input": "537988035389", "output": "76855433627" }, { "input": "822722434952", "output": "205680608738" }, { "input": "699511759613", "output": "699511759613" }, { "input": "942689843037", "output": "104743315893" }, { "input": "663634158717", "output": "663634158717" }, { "input": "213612977250", "output": "11730" }, { "input": "999999999989", "output": "999999999989" }, { "input": "999999999988", "output": "499999999994" }, { "input": "87178291200", "output": "30030" }, { "input": "927668721948", "output": "463834360974" }, { "input": "562436815639", "output": "37927" }, { "input": "302981118597", "output": "35853" }, { "input": "5", "output": "5" }, { "input": "9", "output": "3" }, { "input": "36", "output": "6" }, { "input": "2231", "output": "2231" }, { "input": "27648", "output": "6" }, { "input": "40320", "output": "210" }, { "input": "648000", "output": "30" }, { "input": "999966000289", "output": "999983" }, { "input": "999985999949", "output": "999985999949" }, { "input": "991921850317", "output": "9973" } ]
1,555,004,811
2,147,483,647
Python 3
OK
TESTS
53
795
0
n = int(input()) divs = [n,1] ra = int(n**(1/2)) for s in range(2,ra+1): if n % s == 0: divs.append(s) if s != int(n/s): divs.append(int(n/s)) divs.sort() divs.reverse() #print(divs) for q in divs: s = int(q**(1/2)) if q in [1,2,3]: print(q) break else: f = 1 for p in range(1,s+1): if q % p**2 == 0 and p != 1: f = 0 break if f: print(q) break
Title: Duff in Love Time Limit: None seconds Memory Limit: None megabytes Problem Description: Duff is in love with lovely numbers! A positive integer *x* is called lovely if and only if there is no such positive integer *a*<=&gt;<=1 such that *a*2 is a divisor of *x*. Malek has a number store! In his store, he has only divisors of positive integer *n* (and he has all of them). As a birthday present, Malek wants to give her a lovely number from his store. He wants this number to be as big as possible. Malek always had issues in math, so he asked for your help. Please tell him what is the biggest lovely number in his store. Input Specification: The first and only line of input contains one integer, *n* (1<=≤<=*n*<=≤<=1012). Output Specification: Print the answer in one line. Demo Input: ['10\n', '12\n'] Demo Output: ['10\n', '6\n'] Note: In first sample case, there are numbers 1, 2, 5 and 10 in the shop. 10 isn't divisible by any perfect square, so 10 is lovely. In second sample case, there are numbers 1, 2, 3, 4, 6 and 12 in the shop. 12 is divisible by 4 = 2<sup class="upper-index">2</sup>, so 12 is not lovely, while 6 is indeed lovely.
```python n = int(input()) divs = [n,1] ra = int(n**(1/2)) for s in range(2,ra+1): if n % s == 0: divs.append(s) if s != int(n/s): divs.append(int(n/s)) divs.sort() divs.reverse() #print(divs) for q in divs: s = int(q**(1/2)) if q in [1,2,3]: print(q) break else: f = 1 for p in range(1,s+1): if q % p**2 == 0 and p != 1: f = 0 break if f: print(q) break ```
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 integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104).
Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
[ "1 1 10\n", "1 2 5\n", "2 3 9\n" ]
[ "10\n", "2\n", "1\n" ]
Taymyr is a place in the north of Russia. In the first test the artists come each minute, as well as the calls, so we need to kill all of them. In the second test we need to kill artists which come on the second and the fourth minutes. In the third test — only the artist which comes on the sixth minute.
500
[ { "input": "1 1 10", "output": "10" }, { "input": "1 2 5", "output": "2" }, { "input": "2 3 9", "output": "1" }, { "input": "4 8 9", "output": "1" }, { "input": "7 9 2", "output": "0" }, { "input": "10000 10000 10000", "output": "1" }, { "input": "24 22 9235", "output": "34" }, { "input": "74 8 417", "output": "1" }, { "input": "972 1 203", "output": "0" }, { "input": "550 1 754", "output": "1" }, { "input": "860 1 884", "output": "1" }, { "input": "358 2 809", "output": "2" }, { "input": "33 27 216", "output": "0" }, { "input": "2940 1 9311", "output": "3" }, { "input": "4624 1 1953", "output": "0" }, { "input": "2696 2 7345", "output": "2" }, { "input": "3443 2 6701", "output": "0" }, { "input": "3 613 2275", "output": "1" }, { "input": "1 10000 10000", "output": "1" }, { "input": "10000 1 10000", "output": "1" }, { "input": "1 1 1", "output": "1" }, { "input": "1 1 10000", "output": "10000" }, { "input": "34 27 10000", "output": "10" }, { "input": "2 2 9999", "output": "4999" }, { "input": "2 2 1", "output": "0" }, { "input": "6 4 36", "output": "3" }, { "input": "33 6 3005", "output": "45" }, { "input": "5 1 20", "output": "4" }, { "input": "1 2 10", "output": "5" }, { "input": "2 1 100", "output": "50" }, { "input": "10 20 10000", "output": "500" }, { "input": "8 12 12", "output": "0" } ]
1,510,325,582
2,147,483,647
Python 3
OK
TESTS
32
62
0
a,b,c=map(int,input().split(" ")) if(a==1 or b==1): print(min(c//a,c//b)) else: l=[k for k in range(1,c+1) if (k%a==0 and k%b==0)] print(len(l))
Title: Taymyr is calling you Time Limit: None seconds Memory Limit: None megabytes Problem Description: Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist. Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute. Input Specification: The only string contains three integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104). Output Specification: Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls. Demo Input: ['1 1 10\n', '1 2 5\n', '2 3 9\n'] Demo Output: ['10\n', '2\n', '1\n'] Note: Taymyr is a place in the north of Russia. In the first test the artists come each minute, as well as the calls, so we need to kill all of them. In the second test we need to kill artists which come on the second and the fourth minutes. In the third test — only the artist which comes on the sixth minute.
```python a,b,c=map(int,input().split(" ")) if(a==1 or b==1): print(min(c//a,c//b)) else: l=[k for k in range(1,c+1) if (k%a==0 and k%b==0)] print(len(l)) ```
3
832
A
Sasha and Sticks
PROGRAMMING
800
[ "games", "math" ]
null
null
It's one more school day now. Sasha doesn't like classes and is always bored at them. So, each day he invents some game and plays in it alone or with friends. Today he invented one simple game to play with Lena, with whom he shares a desk. The rules are simple. Sasha draws *n* sticks in a row. After that the players take turns crossing out exactly *k* sticks from left or right in each turn. Sasha moves first, because he is the inventor of the game. If there are less than *k* sticks on the paper before some turn, the game ends. Sasha wins if he makes strictly more moves than Lena. Sasha wants to know the result of the game before playing, you are to help him.
The first line contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=1018, *k*<=≤<=*n*) — the number of sticks drawn by Sasha and the number *k* — the number of sticks to be crossed out on each turn.
If Sasha wins, print "YES" (without quotes), otherwise print "NO" (without quotes). You can print each letter in arbitrary case (upper of lower).
[ "1 1\n", "10 4\n" ]
[ "YES\n", "NO\n" ]
In the first example Sasha crosses out 1 stick, and then there are no sticks. So Lena can't make a move, and Sasha wins. In the second example Sasha crosses out 4 sticks, then Lena crosses out 4 sticks, and after that there are only 2 sticks left. Sasha can't make a move. The players make equal number of moves, so Sasha doesn't win.
500
[ { "input": "1 1", "output": "YES" }, { "input": "10 4", "output": "NO" }, { "input": "251656215122324104 164397544865601257", "output": "YES" }, { "input": "963577813436662285 206326039287271924", "output": "NO" }, { "input": "1000000000000000000 1", "output": "NO" }, { "input": "253308697183523656 25332878317796706", "output": "YES" }, { "input": "669038685745448997 501718093668307460", "output": "YES" }, { "input": "116453141993601660 87060381463547965", "output": "YES" }, { "input": "766959657 370931668", "output": "NO" }, { "input": "255787422422806632 146884995820359999", "output": "YES" }, { "input": "502007866464507926 71266379084204128", "output": "YES" }, { "input": "257439908778973480 64157133126869976", "output": "NO" }, { "input": "232709385 91708542", "output": "NO" }, { "input": "252482458300407528 89907711721009125", "output": "NO" }, { "input": "6 2", "output": "YES" }, { "input": "6 3", "output": "NO" }, { "input": "6 4", "output": "YES" }, { "input": "6 5", "output": "YES" }, { "input": "6 6", "output": "YES" }, { "input": "258266151957056904 30153168463725364", "output": "NO" }, { "input": "83504367885565783 52285355047292458", "output": "YES" }, { "input": "545668929424440387 508692735816921376", "output": "YES" }, { "input": "547321411485639939 36665750286082900", "output": "NO" }, { "input": "548973893546839491 183137237979822911", "output": "NO" }, { "input": "544068082 193116851", "output": "NO" }, { "input": "871412474 749817171", "output": "YES" }, { "input": "999999999 1247", "output": "NO" }, { "input": "851941088 712987048", "output": "YES" }, { "input": "559922900 418944886", "output": "YES" }, { "input": "293908937 37520518", "output": "YES" }, { "input": "650075786 130049650", "output": "NO" }, { "input": "1000000000 1000000000", "output": "YES" }, { "input": "548147654663723363 107422751713800746", "output": "YES" }, { "input": "828159210 131819483", "output": "NO" }, { "input": "6242634 4110365", "output": "YES" }, { "input": "458601973 245084155", "output": "YES" }, { "input": "349593257 18089089", "output": "YES" }, { "input": "814768821 312514745", "output": "NO" }, { "input": "697884949 626323363", "output": "YES" }, { "input": "667011589 54866795", "output": "NO" }, { "input": "1000000000000000000 2", "output": "NO" }, { "input": "1000000000000000000 3", "output": "YES" }, { "input": "1000000000000000000 4", "output": "NO" }, { "input": "999999999999999 1", "output": "YES" }, { "input": "17 4", "output": "NO" }, { "input": "2 2", "output": "YES" }, { "input": "1000000000000000 2", "output": "NO" }, { "input": "12 4", "output": "YES" }, { "input": "6 1", "output": "NO" }, { "input": "2 1", "output": "NO" }, { "input": "10000000005 1", "output": "YES" }, { "input": "10000000000000009 2", "output": "NO" }, { "input": "12457895452123 1", "output": "YES" }, { "input": "999999999999999999 9", "output": "YES" }, { "input": "1000000000000 3", "output": "YES" }, { "input": "13099714659575475 6549849616514894", "output": "NO" }, { "input": "100000000000000001 1", "output": "YES" }, { "input": "825175814723458 324", "output": "YES" }, { "input": "20 4", "output": "YES" }, { "input": "100000176877 4", "output": "YES" }, { "input": "100000 3", "output": "YES" }, { "input": "946744073709551614 10", "output": "YES" } ]
1,619,463,243
2,147,483,647
Python 3
OK
TESTS
62
62
0
a,b = map(int, input().split()) print ("YES" if (a//b%2 != 0) else "NO")
Title: Sasha and Sticks Time Limit: None seconds Memory Limit: None megabytes Problem Description: It's one more school day now. Sasha doesn't like classes and is always bored at them. So, each day he invents some game and plays in it alone or with friends. Today he invented one simple game to play with Lena, with whom he shares a desk. The rules are simple. Sasha draws *n* sticks in a row. After that the players take turns crossing out exactly *k* sticks from left or right in each turn. Sasha moves first, because he is the inventor of the game. If there are less than *k* sticks on the paper before some turn, the game ends. Sasha wins if he makes strictly more moves than Lena. Sasha wants to know the result of the game before playing, you are to help him. Input Specification: The first line contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=1018, *k*<=≤<=*n*) — the number of sticks drawn by Sasha and the number *k* — the number of sticks to be crossed out on each turn. Output Specification: If Sasha wins, print "YES" (without quotes), otherwise print "NO" (without quotes). You can print each letter in arbitrary case (upper of lower). Demo Input: ['1 1\n', '10 4\n'] Demo Output: ['YES\n', 'NO\n'] Note: In the first example Sasha crosses out 1 stick, and then there are no sticks. So Lena can't make a move, and Sasha wins. In the second example Sasha crosses out 4 sticks, then Lena crosses out 4 sticks, and after that there are only 2 sticks left. Sasha can't make a move. The players make equal number of moves, so Sasha doesn't win.
```python a,b = map(int, input().split()) print ("YES" if (a//b%2 != 0) else "NO") ```
3
513
C
Second price auction
PROGRAMMING
2,000
[ "bitmasks", "probabilities" ]
null
null
Nowadays, most of the internet advertisements are not statically linked to a web page. Instead, what will be shown to the person opening a web page is determined within 100 milliseconds after the web page is opened. Usually, multiple companies compete for each ad slot on the web page in an auction. Each of them receives a request with details about the user, web page and ad slot and they have to respond within those 100 milliseconds with a bid they would pay for putting an advertisement on that ad slot. The company that suggests the highest bid wins the auction and gets to place its advertisement. If there are several companies tied for the highest bid, the winner gets picked at random. However, the company that won the auction does not have to pay the exact amount of its bid. In most of the cases, a second-price auction is used. This means that the amount paid by the company is equal to the maximum of all the other bids placed for this ad slot. Let's consider one such bidding. There are *n* companies competing for placing an ad. The *i*-th of these companies will bid an integer number of microdollars equiprobably randomly chosen from the range between *L**i* and *R**i*, inclusive. In the other words, the value of the *i*-th company bid can be any integer from the range [*L**i*,<=*R**i*] with the same probability. Determine the expected value that the winner will have to pay in a second-price auction.
The first line of input contains an integer number *n* (2<=≤<=*n*<=≤<=5). *n* lines follow, the *i*-th of them containing two numbers *L**i* and *R**i* (1<=≤<=*L**i*<=≤<=*R**i*<=≤<=10000) describing the *i*-th company's bid preferences. This problem doesn't have subproblems. You will get 8 points for the correct submission.
Output the answer with absolute or relative error no more than 1*e*<=-<=9.
[ "3\n4 7\n8 10\n5 5\n", "3\n2 5\n3 4\n1 6\n" ]
[ "5.7500000000\n", "3.5000000000\n" ]
Consider the first example. The first company bids a random integer number of microdollars in range [4, 7]; the second company bids between 8 and 10, and the third company bids 5 microdollars. The second company will win regardless of the exact value it bids, however the price it will pay depends on the value of first company's bid. With probability 0.5 the first company will bid at most 5 microdollars, and the second-highest price of the whole auction will be 5. With probability 0.25 it will bid 6 microdollars, and with probability 0.25 it will bid 7 microdollars. Thus, the expected value the second company will have to pay is 0.5·5 + 0.25·6 + 0.25·7 = 5.75.
8
[ { "input": "3\n4 7\n8 10\n5 5", "output": "5.7500000000" }, { "input": "3\n2 5\n3 4\n1 6", "output": "3.5000000000" }, { "input": "5\n1 10000\n1 10000\n1 10000\n1 10000\n1 10000", "output": "6667.1666666646" }, { "input": "2\n1 2\n1 2", "output": "1.2500000000" }, { "input": "2\n1 3\n1 3", "output": "1.5555555556" }, { "input": "5\n1 7\n2 5\n3 9\n4 8\n5 6", "output": "5.9530612245" }, { "input": "5\n17 9999\n19 9992\n1 10000\n6 9\n34 99", "output": "5004.6727567145" }, { "input": "5\n3778 9170\n2657 6649\n4038 9722\n3392 7255\n4890 8961", "output": "6938.4627241727" }, { "input": "5\n2194 6947\n2062 8247\n4481 8430\n3864 9409\n3784 5996", "output": "6373.5390940730" }, { "input": "5\n2906 6249\n659 9082\n2628 8663\n4199 5799\n2678 9558", "output": "6062.1839551640" }, { "input": "5\n659 8346\n2428 8690\n2357 5783\n3528 8580\n2425 7918", "output": "6077.3178766816" }, { "input": "5\n4075 6754\n1024 8762\n504 9491\n1159 6496\n375 9191", "output": "5919.6219273821" }, { "input": "5\n4787 9531\n3133 9597\n1754 9725\n4335 7124\n4269 7752", "output": "7046.2404831920" }, { "input": "5\n1851 8833\n1730 6325\n4901 9327\n4671 9278\n3163 9789", "output": "7182.4449064090" }, { "input": "5\n2563 8898\n2487 7923\n3048 5323\n142 7194\n4760 6061", "output": "5657.2388045241" }, { "input": "5\n979 6674\n1084 8758\n2003 5556\n478 7822\n3654 9623", "output": "5721.9327862568" }, { "input": "5\n4395 5976\n489 5355\n149 5158\n4462 5738\n2548 6658", "output": "5102.0377827659" }, { "input": "5\n3755 7859\n1245 7085\n592 5392\n1285 7892\n1442 7931", "output": "5545.5391818827" }, { "input": "5\n2171 7161\n4842 8682\n4547 9100\n269 9283\n3039 6492", "output": "6641.5017309461" }, { "input": "5\n1 1\n1 1\n2 2\n3 3\n4 4", "output": "3.0000000000" }, { "input": "2\n1 1\n1 1", "output": "1.0000000000" }, { "input": "2\n1 10000\n1 9999", "output": "3333.6666666667" } ]
1,646,571,659
2,147,483,647
PyPy 3-64
OK
TESTS
22
405
10,342,400
class Cie: def __init__(self, id, start, end): self.id = id self.start = start self.end = end self.range = end - start + 1 def lte(self, k): return min(self.range, max(0, k - self.start + 1)) def gte(self, k): return min(self.range, max(0, 1 + self.end - k)) N = int(input()) total = 1 cies = [] for i in range(N): start, end = map(int, input().split()) cie = Cie(i, start, end) cies.append(cie) total *= cie.range cnt = 0 for second in cies: for score in range(second.start, second.end+1): for first in cies: pos = 1 if first == second: continue #print(f"{first.id}.", end='') if first.id < second.id: pos *= first.gte(score) #print(f"{score}+ ({first.gte(score)})|", end='') else: pos *= first.gte(score+1) #print(f"{score+1}+ ({first.gte(score+1)}|", end='') #print(f" {second.id}.{score} |", end = '') for other in cies: if other == second or other == first: continue #print(f" {other.id}.", end = '') if other.id < second.id: pos *= other.lte(score-1) #print(f"{score-1}- |", end = '') else: pos *= other.lte(score) #print(f"{score}- |", end = '') #print(f"{pos}") cnt += pos * score #print(cnt) #print(total) print(cnt / total)
Title: Second price auction Time Limit: None seconds Memory Limit: None megabytes Problem Description: Nowadays, most of the internet advertisements are not statically linked to a web page. Instead, what will be shown to the person opening a web page is determined within 100 milliseconds after the web page is opened. Usually, multiple companies compete for each ad slot on the web page in an auction. Each of them receives a request with details about the user, web page and ad slot and they have to respond within those 100 milliseconds with a bid they would pay for putting an advertisement on that ad slot. The company that suggests the highest bid wins the auction and gets to place its advertisement. If there are several companies tied for the highest bid, the winner gets picked at random. However, the company that won the auction does not have to pay the exact amount of its bid. In most of the cases, a second-price auction is used. This means that the amount paid by the company is equal to the maximum of all the other bids placed for this ad slot. Let's consider one such bidding. There are *n* companies competing for placing an ad. The *i*-th of these companies will bid an integer number of microdollars equiprobably randomly chosen from the range between *L**i* and *R**i*, inclusive. In the other words, the value of the *i*-th company bid can be any integer from the range [*L**i*,<=*R**i*] with the same probability. Determine the expected value that the winner will have to pay in a second-price auction. Input Specification: The first line of input contains an integer number *n* (2<=≤<=*n*<=≤<=5). *n* lines follow, the *i*-th of them containing two numbers *L**i* and *R**i* (1<=≤<=*L**i*<=≤<=*R**i*<=≤<=10000) describing the *i*-th company's bid preferences. This problem doesn't have subproblems. You will get 8 points for the correct submission. Output Specification: Output the answer with absolute or relative error no more than 1*e*<=-<=9. Demo Input: ['3\n4 7\n8 10\n5 5\n', '3\n2 5\n3 4\n1 6\n'] Demo Output: ['5.7500000000\n', '3.5000000000\n'] Note: Consider the first example. The first company bids a random integer number of microdollars in range [4, 7]; the second company bids between 8 and 10, and the third company bids 5 microdollars. The second company will win regardless of the exact value it bids, however the price it will pay depends on the value of first company's bid. With probability 0.5 the first company will bid at most 5 microdollars, and the second-highest price of the whole auction will be 5. With probability 0.25 it will bid 6 microdollars, and with probability 0.25 it will bid 7 microdollars. Thus, the expected value the second company will have to pay is 0.5·5 + 0.25·6 + 0.25·7 = 5.75.
```python class Cie: def __init__(self, id, start, end): self.id = id self.start = start self.end = end self.range = end - start + 1 def lte(self, k): return min(self.range, max(0, k - self.start + 1)) def gte(self, k): return min(self.range, max(0, 1 + self.end - k)) N = int(input()) total = 1 cies = [] for i in range(N): start, end = map(int, input().split()) cie = Cie(i, start, end) cies.append(cie) total *= cie.range cnt = 0 for second in cies: for score in range(second.start, second.end+1): for first in cies: pos = 1 if first == second: continue #print(f"{first.id}.", end='') if first.id < second.id: pos *= first.gte(score) #print(f"{score}+ ({first.gte(score)})|", end='') else: pos *= first.gte(score+1) #print(f"{score+1}+ ({first.gte(score+1)}|", end='') #print(f" {second.id}.{score} |", end = '') for other in cies: if other == second or other == first: continue #print(f" {other.id}.", end = '') if other.id < second.id: pos *= other.lte(score-1) #print(f"{score-1}- |", end = '') else: pos *= other.lte(score) #print(f"{score}- |", end = '') #print(f"{pos}") cnt += pos * score #print(cnt) #print(total) print(cnt / total) ```
3
204
B
Little Elephant and Cards
PROGRAMMING
1,500
[ "binary search", "data structures" ]
null
null
The Little Elephant loves to play with color cards. He has *n* cards, each has exactly two colors (the color of the front side and the color of the back side). Initially, all the cards lay on the table with the front side up. In one move the Little Elephant can turn any card to the other side. The Little Elephant thinks that a set of cards on the table is funny if at least half of the cards have the same color (for each card the color of the upper side is considered). Help the Little Elephant to find the minimum number of moves needed to make the set of *n* cards funny.
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=105) — the number of the cards. The following *n* lines contain the description of all cards, one card per line. The cards are described by a pair of positive integers not exceeding 109 — colors of both sides. The first number in a line is the color of the front of the card, the second one — of the back. The color of the front of the card may coincide with the color of the back of the card. The numbers in the lines are separated by single spaces.
On a single line print a single integer — the sought minimum number of moves. If it is impossible to make the set funny, print -1.
[ "3\n4 7\n4 7\n7 4\n", "5\n4 7\n7 4\n2 11\n9 7\n1 1\n" ]
[ "0\n", "2\n" ]
In the first sample there initially are three cards lying with colors 4, 4, 7. Since two of the three cards are of the same color 4, you do not need to change anything, so the answer is 0. In the second sample, you can turn the first and the fourth cards. After that three of the five cards will be of color 7.
500
[ { "input": "3\n4 7\n4 7\n7 4", "output": "0" }, { "input": "5\n4 7\n7 4\n2 11\n9 7\n1 1", "output": "2" }, { "input": "1\n1 1", "output": "0" }, { "input": "2\n1 1\n1 1", "output": "0" }, { "input": "7\n1 2\n2 3\n3 4\n4 5\n5 6\n6 7\n7 8", "output": "-1" }, { "input": "2\n1 2\n2 1", "output": "0" }, { "input": "3\n7 7\n1 2\n2 1", "output": "1" }, { "input": "3\n1 1\n2 5\n3 6", "output": "-1" }, { "input": "4\n1000000000 1000000000\n999999999 1000000000\n999999997 999999998\n47 74", "output": "1" }, { "input": "6\n1 2\n3 1\n4 7\n4 1\n9 1\n7 2", "output": "2" }, { "input": "4\n1 2\n1 2\n2 1\n2 1", "output": "0" }, { "input": "7\n4 7\n7 4\n4 7\n1 1\n2 2\n3 3\n4 4", "output": "1" }, { "input": "10\n1000000000 999999999\n47 74\n47474 75785445\n8798878 458445\n1 2\n888888888 777777777\n99999999 1000000000\n9999999 1000000000\n999999 1000000000\n99999 1000000000", "output": "4" }, { "input": "10\n9 1000000000\n47 74\n47474 75785445\n8798878 458445\n1 2\n888888888 777777777\n99999999 1000000000\n9999999 1000000000\n999999 1000000000\n99999 1000000000", "output": "5" }, { "input": "10\n1 10\n1 10\n1 1\n7 8\n6 7\n9 5\n4 1\n2 3\n3 10\n2 8", "output": "-1" }, { "input": "10\n262253762 715261903\n414831157 8354405\n419984358 829693421\n376600467 175941985\n367533995 350629286\n681027822 408529849\n654503328 717740407\n539773033 704670473\n55322828 380422378\n46174018 186723478", "output": "-1" }, { "input": "10\n2 2\n1 1\n1 1\n1 2\n1 2\n2 2\n2 1\n1 1\n1 2\n1 1", "output": "0" }, { "input": "12\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": "0" }, { "input": "47\n53 63\n43 57\n69 52\n66 47\n74 5\n5 2\n6 56\n19 27\n46 27\n31 45\n41 38\n20 20\n69 43\n17 74\n39 43\n28 70\n73 24\n73 59\n23 11\n56 49\n51 37\n70 16\n66 36\n4 7\n1 49\n7 65\n38 5\n47 74\n34 38\n17 22\n59 3\n70 40\n21 15\n10 5\n17 30\n9 12\n28 48\n70 42\n39 70\n18 53\n71 49\n66 25\n37 51\n10 62\n55 7\n18 53\n40 50", "output": "-1" }, { "input": "100\n1 2\n2 1\n2 1\n1 2\n1 1\n1 2\n2 1\n1 1\n2 2\n2 1\n2 1\n1 1\n1 1\n2 1\n2 1\n2 1\n2 1\n2 1\n1 1\n2 1\n1 1\n1 1\n2 2\n1 2\n1 2\n1 2\n2 2\n1 2\n1 2\n2 1\n1 2\n2 1\n1 2\n2 2\n1 1\n2 1\n1 2\n2 1\n2 1\n1 2\n2 1\n2 1\n1 2\n2 1\n1 1\n1 2\n1 1\n1 1\n2 2\n2 2\n2 1\n2 1\n1 2\n2 2\n1 1\n2 1\n2 2\n1 1\n1 1\n1 2\n2 2\n2 1\n2 1\n2 2\n1 1\n1 1\n2 1\n2 1\n2 1\n2 2\n2 2\n2 1\n1 1\n1 2\n2 1\n2 2\n2 1\n1 1\n2 1\n2 1\n1 1\n1 2\n1 2\n2 1\n2 1\n2 1\n2 2\n1 2\n1 2\n2 1\n1 1\n1 1\n1 2\n2 1\n1 2\n2 2\n1 2\n2 1\n2 2\n2 1", "output": "0" }, { "input": "7\n1 1\n1 1\n1 1\n2 3\n4 5\n6 7\n8 9", "output": "-1" }, { "input": "1\n1 2", "output": "0" }, { "input": "7\n1000000000 999999999\n1000000000 999999999\n1000000000 999999999\n1000000000 999999999\n1000000000 999999999\n1000000000 999999999\n1000000000 999999999", "output": "0" }, { "input": "2\n1 2\n2 3", "output": "0" }, { "input": "2\n47 74\n47 85874", "output": "0" }, { "input": "5\n5 8\n9 10\n5 17\n5 24\n1 147", "output": "0" }, { "input": "5\n1 7\n2 7\n3 7\n4 7\n5 7", "output": "3" }, { "input": "5\n1 10\n2 10\n3 10\n4 10\n5 10", "output": "3" }, { "input": "3\n2 1\n3 1\n4 1", "output": "2" }, { "input": "5\n1 2\n1 3\n4 1\n5 1\n6 7", "output": "1" }, { "input": "5\n4 7\n4 7\n2 7\n9 7\n1 1", "output": "3" }, { "input": "8\n1 2\n2 1\n2 1\n3 1\n4 2\n5 2\n6 2\n7 2", "output": "2" }, { "input": "3\n98751 197502\n296253 395004\n493755 592506", "output": "-1" }, { "input": "5\n1 5\n2 5\n3 5\n4 7\n2 5", "output": "3" }, { "input": "10\n1 10\n2 10\n3 10\n4 10\n5 10\n10 1\n10 2\n10 3\n10 4\n10 5", "output": "0" }, { "input": "7\n1 2\n1 2\n1 2\n3 1\n3 1\n3 1\n2 1", "output": "1" }, { "input": "5\n1 6\n2 6\n3 6\n4 6\n5 6", "output": "3" }, { "input": "5\n1 6\n2 6\n3 6\n4 4\n5 5", "output": "3" }, { "input": "5\n1 1\n1 1\n2 2\n2 2\n3 3", "output": "-1" }, { "input": "4\n1 5\n2 5\n3 5\n4 4", "output": "2" } ]
1,678,560,358
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
1
124
0
n = int(input()) cards = [] colors = {} for i in range(n): a, b = map(int, input().split()) cards.append((a, b)) colors[a] = colors.get(a, 0) + 1 max_count = max(colors.values()) if max_count >= (n+1)//2: print(0) else: num_flips = n - max_count if max_count == 0: print(-1) else: print(num_flips)
Title: Little Elephant and Cards Time Limit: None seconds Memory Limit: None megabytes Problem Description: The Little Elephant loves to play with color cards. He has *n* cards, each has exactly two colors (the color of the front side and the color of the back side). Initially, all the cards lay on the table with the front side up. In one move the Little Elephant can turn any card to the other side. The Little Elephant thinks that a set of cards on the table is funny if at least half of the cards have the same color (for each card the color of the upper side is considered). Help the Little Elephant to find the minimum number of moves needed to make the set of *n* cards funny. Input Specification: The first line contains a single integer *n* (1<=≤<=*n*<=≤<=105) — the number of the cards. The following *n* lines contain the description of all cards, one card per line. The cards are described by a pair of positive integers not exceeding 109 — colors of both sides. The first number in a line is the color of the front of the card, the second one — of the back. The color of the front of the card may coincide with the color of the back of the card. The numbers in the lines are separated by single spaces. Output Specification: On a single line print a single integer — the sought minimum number of moves. If it is impossible to make the set funny, print -1. Demo Input: ['3\n4 7\n4 7\n7 4\n', '5\n4 7\n7 4\n2 11\n9 7\n1 1\n'] Demo Output: ['0\n', '2\n'] Note: In the first sample there initially are three cards lying with colors 4, 4, 7. Since two of the three cards are of the same color 4, you do not need to change anything, so the answer is 0. In the second sample, you can turn the first and the fourth cards. After that three of the five cards will be of color 7.
```python n = int(input()) cards = [] colors = {} for i in range(n): a, b = map(int, input().split()) cards.append((a, b)) colors[a] = colors.get(a, 0) + 1 max_count = max(colors.values()) if max_count >= (n+1)//2: print(0) else: num_flips = n - max_count if max_count == 0: print(-1) else: print(num_flips) ```
0
426
A
Sereja and Mugs
PROGRAMMING
800
[ "implementation" ]
null
null
Sereja showed an interesting game to his friends. The game goes like that. Initially, there is a table with an empty cup and *n* water mugs on it. Then all players take turns to move. During a move, a player takes a non-empty mug of water and pours all water from it into the cup. If the cup overfills, then we assume that this player lost. As soon as Sereja's friends heard of the game, they wanted to play it. Sereja, on the other hand, wanted to find out whether his friends can play the game in such a way that there are no losers. You are given the volumes of all mugs and the cup. Also, you know that Sereja has (*n*<=-<=1) friends. Determine if Sereja's friends can play the game so that nobody loses.
The first line contains integers *n* and *s* (2<=≤<=*n*<=≤<=100; 1<=≤<=*s*<=≤<=1000) — the number of mugs and the volume of the cup. The next line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=10). Number *a**i* means the volume of the *i*-th mug.
In a single line, print "YES" (without the quotes) if his friends can play in the described manner, and "NO" (without the quotes) otherwise.
[ "3 4\n1 1 1\n", "3 4\n3 1 3\n", "3 4\n4 4 4\n" ]
[ "YES\n", "YES\n", "NO\n" ]
none
500
[ { "input": "3 4\n1 1 1", "output": "YES" }, { "input": "3 4\n3 1 3", "output": "YES" }, { "input": "3 4\n4 4 4", "output": "NO" }, { "input": "2 1\n1 10", "output": "YES" }, { "input": "3 12\n5 6 6", "output": "YES" }, { "input": "4 10\n6 3 8 7", "output": "NO" }, { "input": "5 16\n3 3 2 7 9", "output": "YES" }, { "input": "6 38\n9 10 3 8 10 6", "output": "YES" }, { "input": "7 12\n4 4 5 2 2 4 9", "output": "NO" }, { "input": "8 15\n8 10 4 2 10 9 7 6", "output": "NO" }, { "input": "9 22\n1 3 5 9 7 6 1 10 1", "output": "NO" }, { "input": "10 30\n9 10 4 5 5 7 1 7 7 2", "output": "NO" }, { "input": "38 83\n9 9 3 10 2 4 6 10 9 5 1 8 7 4 7 2 6 5 3 1 10 8 4 8 3 7 1 2 7 6 8 6 5 2 3 1 1 2", "output": "NO" }, { "input": "84 212\n6 2 3 1 2 7 5 1 7 2 9 10 9 5 2 5 4 10 9 9 1 9 8 8 9 4 9 4 8 2 1 8 4 5 10 7 6 2 1 10 10 7 9 4 5 9 5 10 10 3 6 6 4 4 4 8 5 4 9 1 9 9 1 7 9 2 10 9 10 8 3 3 9 3 9 10 1 8 9 2 6 9 7 2", "output": "NO" }, { "input": "8 50\n8 8 8 4 4 6 10 10", "output": "YES" }, { "input": "7 24\n1 4 9 1 2 3 6", "output": "YES" }, { "input": "47 262\n3 7 6 4 10 3 5 7 2 9 3 2 2 10 8 7 3 10 6 3 1 1 4 10 2 9 2 10 6 4 3 6 3 6 9 7 8 8 3 3 10 5 2 10 7 10 9", "output": "YES" }, { "input": "42 227\n3 6 1 9 4 10 4 10 7 8 10 10 8 7 10 4 6 8 7 7 6 9 3 6 5 5 2 7 2 7 4 4 6 6 4 3 9 3 6 4 7 2", "output": "NO" }, { "input": "97 65\n3 10 2 6 1 4 7 5 10 3 10 4 5 5 1 6 10 7 4 5 3 9 9 8 6 9 2 3 6 8 5 5 5 5 5 3 10 4 1 8 8 9 8 4 1 4 9 3 6 3 1 4 8 3 10 8 6 4 5 4 3 2 2 4 3 6 4 6 2 3 3 3 7 5 1 8 1 4 5 1 1 6 4 2 1 7 8 6 1 1 5 6 5 10 6 7 5", "output": "NO" }, { "input": "94 279\n2 5 9 5 10 3 1 8 1 7 1 8 1 6 7 8 4 9 5 10 3 7 6 8 8 5 6 8 10 9 4 1 3 3 4 7 8 2 6 6 5 1 3 7 1 7 2 2 2 8 4 1 1 5 9 4 1 2 3 10 1 4 9 9 6 8 8 1 9 10 4 1 8 5 8 9 4 8 2 1 1 9 4 5 6 1 2 5 6 7 3 1 4 6", "output": "NO" }, { "input": "58 70\n8 2 10 2 7 3 8 3 8 7 6 2 4 10 10 6 10 3 7 6 4 3 5 5 5 3 8 10 3 4 8 4 2 6 8 9 6 9 4 3 5 2 2 6 10 6 2 1 7 5 6 4 1 9 10 2 4 5", "output": "NO" }, { "input": "6 14\n3 9 2 1 4 2", "output": "YES" }, { "input": "78 400\n5 9 3 4 7 4 1 4 6 3 9 1 8 3 3 6 10 2 1 9 6 1 8 10 1 6 4 5 2 1 5 9 6 10 3 6 5 2 4 10 6 9 3 8 10 7 2 8 8 2 10 1 4 5 2 8 6 4 4 3 5 2 3 10 1 9 8 5 6 7 9 1 8 8 5 4 2 4", "output": "YES" }, { "input": "41 181\n5 3 10 4 2 5 9 3 1 6 6 10 4 3 9 8 5 9 2 5 4 6 6 3 7 9 10 3 10 6 10 5 6 1 6 9 9 1 2 4 3", "output": "NO" }, { "input": "2 4\n4 4", "output": "YES" }, { "input": "29 71\n4 8 9 4 8 10 4 10 2 9 3 9 1 2 9 5 9 7 1 10 4 1 1 9 8 7 4 6 7", "output": "NO" }, { "input": "49 272\n4 10 8 7 5 6 9 7 2 6 6 2 10 7 5 6 5 3 6 4 3 7 9 3 7 7 4 10 5 6 7 3 6 4 6 7 7 2 5 5 7 3 7 9 3 6 6 2 1", "output": "YES" }, { "input": "91 486\n1 3 5 4 4 7 3 9 3 4 5 4 5 4 7 9 5 8 4 10 9 1 1 9 9 1 6 2 5 4 7 4 10 3 2 10 9 3 4 5 1 3 4 2 10 9 10 9 10 2 4 6 2 5 3 6 4 9 10 3 9 8 1 2 5 9 2 10 4 6 10 8 10 9 1 2 5 8 6 6 6 1 10 3 9 3 5 6 1 5 5", "output": "YES" }, { "input": "80 78\n1 9 4 9 8 3 7 10 4 9 2 1 4 4 9 5 9 1 2 6 5 2 4 8 4 6 9 6 7 10 1 9 10 4 7 1 7 10 8 9 10 5 2 6 7 7 7 7 7 8 2 5 1 7 2 3 2 5 10 6 3 4 5 2 6 3 4 2 7 9 9 3 8 8 2 3 7 1 5 10", "output": "NO" }, { "input": "53 245\n5 6 9 9 2 3 2 5 10 9 3 5 6 3 10 10 9 4 9 7 10 9 7 7 3 4 9 3 7 3 8 6 8 9 3 8 9 1 3 1 9 10 3 9 3 1 6 6 3 8 7 8 9", "output": "NO" }, { "input": "50 271\n6 9 10 1 1 1 8 3 6 6 3 2 5 9 7 5 7 9 10 9 4 6 6 2 6 6 9 5 1 6 5 8 3 2 5 10 10 1 4 1 4 6 1 8 7 8 9 4 7 5", "output": "YES" }, { "input": "38 214\n5 8 4 5 1 9 9 2 6 3 4 3 5 7 7 7 3 10 1 5 10 4 2 2 10 10 6 6 6 7 1 6 10 5 7 4 5 10", "output": "YES" }, { "input": "100 1\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "NO" }, { "input": "100 100\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "NO" }, { "input": "100 989\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "NO" }, { "input": "100 990\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "YES" }, { "input": "100 1000\n10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10 10", "output": "YES" }, { "input": "2 1\n1 1", "output": "YES" }, { "input": "2 1\n2 2", "output": "NO" }, { "input": "2 1000\n1 1", "output": "YES" }, { "input": "10 89\n10 10 10 10 10 10 10 10 10 10", "output": "NO" }, { "input": "10 44\n1 10 2 3 4 5 6 7 8 9", "output": "NO" } ]
1,459,027,817
17
Python 3
OK
TESTS
42
62
5,120,000
import sys import itertools n, s = map(int, input().split()) lst = list(map(int, input().split())) friends = n - 1 for item in itertools.combinations(lst, friends): if sum(item) <= s: print("YES") sys.exit() print("NO")
Title: Sereja and Mugs Time Limit: None seconds Memory Limit: None megabytes Problem Description: Sereja showed an interesting game to his friends. The game goes like that. Initially, there is a table with an empty cup and *n* water mugs on it. Then all players take turns to move. During a move, a player takes a non-empty mug of water and pours all water from it into the cup. If the cup overfills, then we assume that this player lost. As soon as Sereja's friends heard of the game, they wanted to play it. Sereja, on the other hand, wanted to find out whether his friends can play the game in such a way that there are no losers. You are given the volumes of all mugs and the cup. Also, you know that Sereja has (*n*<=-<=1) friends. Determine if Sereja's friends can play the game so that nobody loses. Input Specification: The first line contains integers *n* and *s* (2<=≤<=*n*<=≤<=100; 1<=≤<=*s*<=≤<=1000) — the number of mugs and the volume of the cup. The next line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=10). Number *a**i* means the volume of the *i*-th mug. Output Specification: In a single line, print "YES" (without the quotes) if his friends can play in the described manner, and "NO" (without the quotes) otherwise. Demo Input: ['3 4\n1 1 1\n', '3 4\n3 1 3\n', '3 4\n4 4 4\n'] Demo Output: ['YES\n', 'YES\n', 'NO\n'] Note: none
```python import sys import itertools n, s = map(int, input().split()) lst = list(map(int, input().split())) friends = n - 1 for item in itertools.combinations(lst, friends): if sum(item) <= s: print("YES") sys.exit() print("NO") ```
3
251
A
Points on Line
PROGRAMMING
1,300
[ "binary search", "combinatorics", "two pointers" ]
null
null
Little Petya likes points a lot. Recently his mom has presented him *n* points lying on the line *OX*. Now Petya is wondering in how many ways he can choose three distinct points so that the distance between the two farthest of them doesn't exceed *d*. Note that the order of the points inside the group of three chosen points doesn't matter.
The first line contains two integers: *n* and *d* (1<=≤<=*n*<=≤<=105; 1<=≤<=*d*<=≤<=109). The next line contains *n* integers *x*1,<=*x*2,<=...,<=*x**n*, their absolute value doesn't exceed 109 — the *x*-coordinates of the points that Petya has got. It is guaranteed that the coordinates of the points in the input strictly increase.
Print a single integer — the number of groups of three points, where the distance between two farthest points doesn't exceed *d*. Please do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier.
[ "4 3\n1 2 3 4\n", "4 2\n-3 -2 -1 0\n", "5 19\n1 10 20 30 50\n" ]
[ "4\n", "2\n", "1\n" ]
In the first sample any group of three points meets our conditions. In the seconds sample only 2 groups of three points meet our conditions: {-3, -2, -1} and {-2, -1, 0}. In the third sample only one group does: {1, 10, 20}.
500
[ { "input": "4 3\n1 2 3 4", "output": "4" }, { "input": "4 2\n-3 -2 -1 0", "output": "2" }, { "input": "5 19\n1 10 20 30 50", "output": "1" }, { "input": "10 5\n31 36 43 47 48 50 56 69 71 86", "output": "2" }, { "input": "10 50\n1 4 20 27 65 79 82 83 99 100", "output": "25" }, { "input": "10 90\n24 27 40 41 61 69 73 87 95 97", "output": "120" }, { "input": "100 100\n-98 -97 -96 -93 -92 -91 -90 -87 -86 -84 -81 -80 -79 -78 -76 -75 -73 -71 -69 -67 -65 -64 -63 -62 -61 -54 -51 -50 -49 -48 -46 -45 -44 -37 -36 -33 -30 -28 -27 -16 -15 -13 -12 -10 -9 -7 -6 -5 -4 2 3 5 8 9 10 11 13 14 15 16 17 19 22 24 25 26 27 28 30 31 32 36 40 43 45 46 47 50 51 52 53 58 60 63 69 70 73 78 80 81 82 85 88 89 90 91 95 96 97 99", "output": "79351" }, { "input": "1 14751211\n847188590", "output": "0" }, { "input": "2 1000000000\n-907894512 -289906312", "output": "0" }, { "input": "2 1000000000\n-14348867 1760823", "output": "0" }, { "input": "3 1000000000\n-5 -1 1", "output": "1" } ]
1,588,288,265
2,147,483,647
Python 3
OK
TESTS
39
654
8,499,200
import bisect I = lambda: map(int, input().rstrip().split()) n, d = I() x = list(I()) ans = 0 def getCount(m): return (m * (m - 1)) // 2 for i in range(n - 2): a = x[i] c = a + d ind = bisect.bisect_left(x, c) if ind > n - 1: ind = n - 1 elif x[ind] != c: ind -= 1 ans += getCount(ind - i) print(ans)
Title: Points on Line Time Limit: None seconds Memory Limit: None megabytes Problem Description: Little Petya likes points a lot. Recently his mom has presented him *n* points lying on the line *OX*. Now Petya is wondering in how many ways he can choose three distinct points so that the distance between the two farthest of them doesn't exceed *d*. Note that the order of the points inside the group of three chosen points doesn't matter. Input Specification: The first line contains two integers: *n* and *d* (1<=≤<=*n*<=≤<=105; 1<=≤<=*d*<=≤<=109). The next line contains *n* integers *x*1,<=*x*2,<=...,<=*x**n*, their absolute value doesn't exceed 109 — the *x*-coordinates of the points that Petya has got. It is guaranteed that the coordinates of the points in the input strictly increase. Output Specification: Print a single integer — the number of groups of three points, where the distance between two farthest points doesn't exceed *d*. Please do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier. Demo Input: ['4 3\n1 2 3 4\n', '4 2\n-3 -2 -1 0\n', '5 19\n1 10 20 30 50\n'] Demo Output: ['4\n', '2\n', '1\n'] Note: In the first sample any group of three points meets our conditions. In the seconds sample only 2 groups of three points meet our conditions: {-3, -2, -1} and {-2, -1, 0}. In the third sample only one group does: {1, 10, 20}.
```python import bisect I = lambda: map(int, input().rstrip().split()) n, d = I() x = list(I()) ans = 0 def getCount(m): return (m * (m - 1)) // 2 for i in range(n - 2): a = x[i] c = a + d ind = bisect.bisect_left(x, c) if ind > n - 1: ind = n - 1 elif x[ind] != c: ind -= 1 ans += getCount(ind - i) print(ans) ```
3
681
C
Heap Operations
PROGRAMMING
1,600
[ "constructive algorithms", "data structures", "greedy" ]
null
null
Petya has recently learned data structure named "Binary heap". The heap he is now operating with allows the following operations: - put the given number into the heap; - get the value of the minimum element in the heap; - extract the minimum element from the heap; Thus, at any moment of time the heap contains several integers (possibly none), some of them might be equal. In order to better learn this data structure Petya took an empty heap and applied some operations above to it. Also, he carefully wrote down all the operations and their results to his event log, following the format: - insert *x* — put the element with value *x* in the heap; - getMin *x* — the value of the minimum element contained in the heap was equal to *x*; - removeMin — the minimum element was extracted from the heap (only one instance, if there were many). All the operations were correct, i.e. there was at least one element in the heap each time getMin or removeMin operations were applied. While Petya was away for a lunch, his little brother Vova came to the room, took away some of the pages from Petya's log and used them to make paper boats. Now Vova is worried, if he made Petya's sequence of operations inconsistent. For example, if one apply operations one-by-one in the order they are written in the event log, results of getMin operations might differ from the results recorded by Petya, and some of getMin or removeMin operations may be incorrect, as the heap is empty at the moment they are applied. Now Vova wants to add some new operation records to the event log in order to make the resulting sequence of operations correct. That is, the result of each getMin operation is equal to the result in the record, and the heap is non-empty when getMin ad removeMin are applied. Vova wants to complete this as fast as possible, as the Petya may get back at any moment. He asks you to add the least possible number of operation records to the current log. Note that arbitrary number of operations may be added at the beginning, between any two other operations, or at the end of the log.
The first line of the input contains the only integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of the records left in Petya's journal. Each of the following *n* lines describe the records in the current log in the order they are applied. Format described in the statement is used. All numbers in the input are integers not exceeding 109 by their absolute value.
The first line of the output should contain a single integer *m* — the minimum possible number of records in the modified sequence of operations. Next *m* lines should contain the corrected sequence of records following the format of the input (described in the statement), one per line and in the order they are applied. All the numbers in the output should be integers not exceeding 109 by their absolute value. Note that the input sequence of operations must be the subsequence of the output sequence. It's guaranteed that there exists the correct answer consisting of no more than 1<=000<=000 operations.
[ "2\ninsert 3\ngetMin 4\n", "4\ninsert 1\ninsert 1\nremoveMin\ngetMin 2\n" ]
[ "4\ninsert 3\nremoveMin\ninsert 4\ngetMin 4\n", "6\ninsert 1\ninsert 1\nremoveMin\nremoveMin\ninsert 2\ngetMin 2\n" ]
In the first sample, after number 3 is inserted into the heap, the minimum number is 3. To make the result of the first getMin equal to 4 one should firstly remove number 3 from the heap and then add number 4 into the heap. In the second sample case number 1 is inserted two times, so should be similarly removed twice.
1,500
[ { "input": "2\ninsert 3\ngetMin 4", "output": "4\ninsert 3\nremoveMin\ninsert 4\ngetMin 4" }, { "input": "4\ninsert 1\ninsert 1\nremoveMin\ngetMin 2", "output": "6\ninsert 1\ninsert 1\nremoveMin\nremoveMin\ninsert 2\ngetMin 2" }, { "input": "1\ninsert 1", "output": "1\ninsert 1" }, { "input": "1\ngetMin 31", "output": "2\ninsert 31\ngetMin 31" }, { "input": "1\nremoveMin", "output": "2\ninsert 0\nremoveMin" }, { "input": "2\ninsert 2\ngetMin 2", "output": "2\ninsert 2\ngetMin 2" }, { "input": "2\ninsert 31\nremoveMin", "output": "2\ninsert 31\nremoveMin" }, { "input": "2\ngetMin 31\nremoveMin", "output": "3\ninsert 31\ngetMin 31\nremoveMin" }, { "input": "2\nremoveMin\ngetMin 31", "output": "4\ninsert 0\nremoveMin\ninsert 31\ngetMin 31" }, { "input": "8\ninsert 219147240\nremoveMin\ngetMin 923854124\nremoveMin\ngetMin -876779400\nremoveMin\ninsert 387686853\ngetMin 749998368", "output": "12\ninsert 219147240\nremoveMin\ninsert 923854124\ngetMin 923854124\nremoveMin\ninsert -876779400\ngetMin -876779400\nremoveMin\ninsert 387686853\nremoveMin\ninsert 749998368\ngetMin 749998368" }, { "input": "2\nremoveMin\ninsert 450653162", "output": "3\ninsert 0\nremoveMin\ninsert 450653162" }, { "input": "6\ninsert -799688192\ngetMin 491561656\nremoveMin\ninsert -805250162\ninsert -945439443\nremoveMin", "output": "8\ninsert -799688192\nremoveMin\ninsert 491561656\ngetMin 491561656\nremoveMin\ninsert -805250162\ninsert -945439443\nremoveMin" }, { "input": "30\ninsert 62350949\ngetMin -928976719\nremoveMin\ngetMin 766590157\ngetMin -276914351\ninsert 858958907\ngetMin -794653029\ngetMin 505812710\ngetMin -181182543\ninsert -805198995\nremoveMin\ninsert -200361579\nremoveMin\ninsert 988531216\ninsert -474257426\ninsert 579296921\nremoveMin\ninsert -410043658\ngetMin 716684155\nremoveMin\ngetMin -850837161\ngetMin 368670814\ninsert 579000842\nremoveMin\ngetMin -169833018\ninsert 313148949\nremoveMin\nremoveMin\ngetMin 228901059\ngetMin 599172503", "output": "52\ninsert 62350949\ninsert -928976719\ngetMin -928976719\nremoveMin\nremoveMin\ninsert 766590157\ngetMin 766590157\ninsert -276914351\ngetMin -276914351\ninsert 858958907\ninsert -794653029\ngetMin -794653029\nremoveMin\nremoveMin\ninsert 505812710\ngetMin 505812710\ninsert -181182543\ngetMin -181182543\ninsert -805198995\nremoveMin\ninsert -200361579\nremoveMin\ninsert 988531216\ninsert -474257426\ninsert 579296921\nremoveMin\ninsert -410043658\nremoveMin\nremoveMin\nremoveMin\nremoveMin\ninsert 71668415..." }, { "input": "9\ninsert 3\ninsert 4\ninsert 5\nremoveMin\ngetMin 3\nremoveMin\ngetMin 4\nremoveMin\ngetMin 5", "output": "10\ninsert 3\ninsert 4\ninsert 5\nremoveMin\ninsert 3\ngetMin 3\nremoveMin\ngetMin 4\nremoveMin\ngetMin 5" }, { "input": "9\ninsert 3\ninsert 4\ninsert 5\nremoveMin\ngetMin 5\nremoveMin\ngetMin 4\nremoveMin\ngetMin 3", "output": "12\ninsert 3\ninsert 4\ninsert 5\nremoveMin\nremoveMin\ngetMin 5\nremoveMin\ninsert 4\ngetMin 4\nremoveMin\ninsert 3\ngetMin 3" }, { "input": "1\ngetMin 0", "output": "2\ninsert 0\ngetMin 0" }, { "input": "3\ninsert 3\ninsert 4\ngetMin 4", "output": "4\ninsert 3\ninsert 4\nremoveMin\ngetMin 4" }, { "input": "3\ninsert 1\ninsert 2\ngetMin 2", "output": "4\ninsert 1\ninsert 2\nremoveMin\ngetMin 2" }, { "input": "3\ninsert -1\ninsert 0\ngetMin 0", "output": "4\ninsert -1\ninsert 0\nremoveMin\ngetMin 0" }, { "input": "2\ninsert 0\ngetMin 0", "output": "2\ninsert 0\ngetMin 0" }, { "input": "1\ninsert -1", "output": "1\ninsert -1" }, { "input": "3\ninsert 1\ninsert 0\ngetMin 1", "output": "4\ninsert 1\ninsert 0\nremoveMin\ngetMin 1" } ]
1,590,136,201
2,147,483,647
PyPy 3
TIME_LIMIT_EXCEEDED
TESTS
9
1,000
8,089,600
import os import sys from io import BytesIO, IOBase import math BUFSIZE = 8192 class FastIO(IOBase): newlines = 0 def __init__(self, file): self._fd = file.fileno() self.buffer = BytesIO() self.writable = "x" in file.mode or "r" not in file.mode self.write = self.buffer.write if self.writable else None def read(self): while True: b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE)) if not b: break ptr = self.buffer.tell() self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr) self.newlines = 0 return self.buffer.read() def readline(self): while self.newlines == 0: b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE)) self.newlines = b.count(b"\n") + (not b) ptr = self.buffer.tell() self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr) self.newlines -= 1 return self.buffer.readline() def flush(self): if self.writable: os.write(self._fd, self.buffer.getvalue()) self.buffer.truncate(0), self.buffer.seek(0) class IOWrapper(IOBase): def __init__(self, file): self.buffer = FastIO(file) self.flush = self.buffer.flush self.writable = self.buffer.writable self.write = lambda s: self.buffer.write(s.encode("ascii")) self.read = lambda: self.buffer.read().decode("ascii") self.readline = lambda: self.buffer.readline().decode("ascii") sys.stdin, sys.stdout = IOWrapper(sys.stdin), IOWrapper(sys.stdout) input = lambda: sys.stdin.readline().rstrip("\r\n") ############################################# from heapq import * ans=[] fin=[] from collections import defaultdict al=defaultdict(int) count=0 a=int(input()) count=0 temp=[] for i in range(a): z=list(map(str,input().split())) temp.append(z) if(len(z)>1): y=int(z[1]) x=z[0] if(x=='removeMin'): if(len(ans)==0): count+=2 else: heappop(ans) count+=1 elif(x=='insert'): heappush(ans,y) count+=1 else: if(len(ans)==0): heappush(ans,y) count+=2 else: if(ans[0]==y): count+=1 elif(ans[0]>y): count+=2 heappush(ans,y) else: flag=0 while(len(ans)): if(ans[0]<y): count+=1 heappop(ans) if(len(ans)==0): count+=1 heappush(ans,y) count+=1 else: if(ans[0]==y): count+=1 if(ans[0]>y): count+=2 heappop(ans,y) print(count) ans=[] for i in range(a): z=temp[i] if(len(z)>1): y=int(z[1]) x=z[0] if(x=='removeMin'): if(len(ans)==0): sys.stdout.write('insert 1') sys.stdout.write('\n') sys.stdout.write('removeMin') sys.stdout.write('\n') else: heappop(ans) sys.stdout.write('removeMin') sys.stdout.write('\n') elif(x=='insert'): heappush(ans,y) sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(len(ans)==0): heappush(ans,y) sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(ans[0]==y): sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') elif(ans[0]>y): sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') heappush(ans,y) else: flag=0 while(len(ans)): if(ans[0]<y): heappop(ans) sys.stdout.write('removeMin') sys.stdout.write('\n') if(len(ans)==0): sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(ans[0]==y): sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stodut.write('\n') heappush(ans,y) sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n')
Title: Heap Operations Time Limit: None seconds Memory Limit: None megabytes Problem Description: Petya has recently learned data structure named "Binary heap". The heap he is now operating with allows the following operations: - put the given number into the heap; - get the value of the minimum element in the heap; - extract the minimum element from the heap; Thus, at any moment of time the heap contains several integers (possibly none), some of them might be equal. In order to better learn this data structure Petya took an empty heap and applied some operations above to it. Also, he carefully wrote down all the operations and their results to his event log, following the format: - insert *x* — put the element with value *x* in the heap; - getMin *x* — the value of the minimum element contained in the heap was equal to *x*; - removeMin — the minimum element was extracted from the heap (only one instance, if there were many). All the operations were correct, i.e. there was at least one element in the heap each time getMin or removeMin operations were applied. While Petya was away for a lunch, his little brother Vova came to the room, took away some of the pages from Petya's log and used them to make paper boats. Now Vova is worried, if he made Petya's sequence of operations inconsistent. For example, if one apply operations one-by-one in the order they are written in the event log, results of getMin operations might differ from the results recorded by Petya, and some of getMin or removeMin operations may be incorrect, as the heap is empty at the moment they are applied. Now Vova wants to add some new operation records to the event log in order to make the resulting sequence of operations correct. That is, the result of each getMin operation is equal to the result in the record, and the heap is non-empty when getMin ad removeMin are applied. Vova wants to complete this as fast as possible, as the Petya may get back at any moment. He asks you to add the least possible number of operation records to the current log. Note that arbitrary number of operations may be added at the beginning, between any two other operations, or at the end of the log. Input Specification: The first line of the input contains the only integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of the records left in Petya's journal. Each of the following *n* lines describe the records in the current log in the order they are applied. Format described in the statement is used. All numbers in the input are integers not exceeding 109 by their absolute value. Output Specification: The first line of the output should contain a single integer *m* — the minimum possible number of records in the modified sequence of operations. Next *m* lines should contain the corrected sequence of records following the format of the input (described in the statement), one per line and in the order they are applied. All the numbers in the output should be integers not exceeding 109 by their absolute value. Note that the input sequence of operations must be the subsequence of the output sequence. It's guaranteed that there exists the correct answer consisting of no more than 1<=000<=000 operations. Demo Input: ['2\ninsert 3\ngetMin 4\n', '4\ninsert 1\ninsert 1\nremoveMin\ngetMin 2\n'] Demo Output: ['4\ninsert 3\nremoveMin\ninsert 4\ngetMin 4\n', '6\ninsert 1\ninsert 1\nremoveMin\nremoveMin\ninsert 2\ngetMin 2\n'] Note: In the first sample, after number 3 is inserted into the heap, the minimum number is 3. To make the result of the first getMin equal to 4 one should firstly remove number 3 from the heap and then add number 4 into the heap. In the second sample case number 1 is inserted two times, so should be similarly removed twice.
```python import os import sys from io import BytesIO, IOBase import math BUFSIZE = 8192 class FastIO(IOBase): newlines = 0 def __init__(self, file): self._fd = file.fileno() self.buffer = BytesIO() self.writable = "x" in file.mode or "r" not in file.mode self.write = self.buffer.write if self.writable else None def read(self): while True: b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE)) if not b: break ptr = self.buffer.tell() self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr) self.newlines = 0 return self.buffer.read() def readline(self): while self.newlines == 0: b = os.read(self._fd, max(os.fstat(self._fd).st_size, BUFSIZE)) self.newlines = b.count(b"\n") + (not b) ptr = self.buffer.tell() self.buffer.seek(0, 2), self.buffer.write(b), self.buffer.seek(ptr) self.newlines -= 1 return self.buffer.readline() def flush(self): if self.writable: os.write(self._fd, self.buffer.getvalue()) self.buffer.truncate(0), self.buffer.seek(0) class IOWrapper(IOBase): def __init__(self, file): self.buffer = FastIO(file) self.flush = self.buffer.flush self.writable = self.buffer.writable self.write = lambda s: self.buffer.write(s.encode("ascii")) self.read = lambda: self.buffer.read().decode("ascii") self.readline = lambda: self.buffer.readline().decode("ascii") sys.stdin, sys.stdout = IOWrapper(sys.stdin), IOWrapper(sys.stdout) input = lambda: sys.stdin.readline().rstrip("\r\n") ############################################# from heapq import * ans=[] fin=[] from collections import defaultdict al=defaultdict(int) count=0 a=int(input()) count=0 temp=[] for i in range(a): z=list(map(str,input().split())) temp.append(z) if(len(z)>1): y=int(z[1]) x=z[0] if(x=='removeMin'): if(len(ans)==0): count+=2 else: heappop(ans) count+=1 elif(x=='insert'): heappush(ans,y) count+=1 else: if(len(ans)==0): heappush(ans,y) count+=2 else: if(ans[0]==y): count+=1 elif(ans[0]>y): count+=2 heappush(ans,y) else: flag=0 while(len(ans)): if(ans[0]<y): count+=1 heappop(ans) if(len(ans)==0): count+=1 heappush(ans,y) count+=1 else: if(ans[0]==y): count+=1 if(ans[0]>y): count+=2 heappop(ans,y) print(count) ans=[] for i in range(a): z=temp[i] if(len(z)>1): y=int(z[1]) x=z[0] if(x=='removeMin'): if(len(ans)==0): sys.stdout.write('insert 1') sys.stdout.write('\n') sys.stdout.write('removeMin') sys.stdout.write('\n') else: heappop(ans) sys.stdout.write('removeMin') sys.stdout.write('\n') elif(x=='insert'): heappush(ans,y) sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(len(ans)==0): heappush(ans,y) sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(ans[0]==y): sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') elif(ans[0]>y): sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') heappush(ans,y) else: flag=0 while(len(ans)): if(ans[0]<y): heappop(ans) sys.stdout.write('removeMin') sys.stdout.write('\n') if(len(ans)==0): sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stdout.write('\n') sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: if(ans[0]==y): sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') else: sys.stdout.write('insert ') sys.stdout.write(str(y)) sys.stodut.write('\n') heappush(ans,y) sys.stdout.write('getMin ') sys.stdout.write(str(y)) sys.stdout.write('\n') ```
0
13
A
Numbers
PROGRAMMING
1,000
[ "implementation", "math" ]
A. Numbers
1
64
Little Petya likes numbers a lot. He found that number 123 in base 16 consists of two digits: the first is 7 and the second is 11. So the sum of digits of 123 in base 16 is equal to 18. Now he wonders what is an average value of sum of digits of the number *A* written in all bases from 2 to *A*<=-<=1. Note that all computations should be done in base 10. You should find the result as an irreducible fraction, written in base 10.
Input contains one integer number *A* (3<=≤<=*A*<=≤<=1000).
Output should contain required average value in format «X/Y», where X is the numerator and Y is the denominator.
[ "5\n", "3\n" ]
[ "7/3\n", "2/1\n" ]
In the first sample number 5 written in all bases from 2 to 4 looks so: 101, 12, 11. Sums of digits are 2, 3 and 2, respectively.
0
[ { "input": "5", "output": "7/3" }, { "input": "3", "output": "2/1" }, { "input": "1000", "output": "90132/499" }, { "input": "927", "output": "155449/925" }, { "input": "260", "output": "6265/129" }, { "input": "131", "output": "3370/129" }, { "input": "386", "output": "857/12" }, { "input": "277", "output": "2864/55" }, { "input": "766", "output": "53217/382" }, { "input": "28", "output": "85/13" }, { "input": "406", "output": "7560/101" }, { "input": "757", "output": "103847/755" }, { "input": "6", "output": "9/4" }, { "input": "239", "output": "10885/237" }, { "input": "322", "output": "2399/40" }, { "input": "98", "output": "317/16" }, { "input": "208", "output": "4063/103" }, { "input": "786", "output": "55777/392" }, { "input": "879", "output": "140290/877" }, { "input": "702", "output": "89217/700" }, { "input": "948", "output": "7369/43" }, { "input": "537", "output": "52753/535" }, { "input": "984", "output": "174589/982" }, { "input": "934", "output": "157951/932" }, { "input": "726", "output": "95491/724" }, { "input": "127", "output": "3154/125" }, { "input": "504", "output": "23086/251" }, { "input": "125", "output": "3080/123" }, { "input": "604", "output": "33178/301" }, { "input": "115", "output": "2600/113" }, { "input": "27", "output": "167/25" }, { "input": "687", "output": "85854/685" }, { "input": "880", "output": "69915/439" }, { "input": "173", "output": "640/19" }, { "input": "264", "output": "6438/131" }, { "input": "785", "output": "111560/783" }, { "input": "399", "output": "29399/397" }, { "input": "514", "output": "6031/64" }, { "input": "381", "output": "26717/379" }, { "input": "592", "output": "63769/590" }, { "input": "417", "output": "32002/415" }, { "input": "588", "output": "62723/586" }, { "input": "852", "output": "131069/850" }, { "input": "959", "output": "5059/29" }, { "input": "841", "output": "127737/839" }, { "input": "733", "output": "97598/731" }, { "input": "692", "output": "87017/690" }, { "input": "69", "output": "983/67" }, { "input": "223", "output": "556/13" }, { "input": "93", "output": "246/13" }, { "input": "643", "output": "75503/641" }, { "input": "119", "output": "2833/117" }, { "input": "498", "output": "1459/16" }, { "input": "155", "output": "4637/153" }, { "input": "305", "output": "17350/303" }, { "input": "454", "output": "37893/452" }, { "input": "88", "output": "1529/86" }, { "input": "850", "output": "32645/212" }, { "input": "474", "output": "20581/236" }, { "input": "309", "output": "17731/307" }, { "input": "762", "output": "105083/760" }, { "input": "591", "output": "63761/589" }, { "input": "457", "output": "38317/455" }, { "input": "141", "output": "3832/139" }, { "input": "385", "output": "27232/383" }, { "input": "387", "output": "27628/385" }, { "input": "469", "output": "40306/467" }, { "input": "624", "output": "35285/311" }, { "input": "330", "output": "487/8" }, { "input": "31", "output": "222/29" }, { "input": "975", "output": "171679/973" }, { "input": "584", "output": "62183/582" }, { "input": "668", "output": "81127/666" }, { "input": "331", "output": "20297/329" }, { "input": "189", "output": "6789/187" }, { "input": "251", "output": "11939/249" }, { "input": "876", "output": "69196/437" }, { "input": "615", "output": "68987/613" }, { "input": "451", "output": "37258/449" }, { "input": "499", "output": "45727/497" }, { "input": "699", "output": "89117/697" }, { "input": "619", "output": "70019/617" }, { "input": "413", "output": "10515/137" }, { "input": "197", "output": "7399/195" }, { "input": "794", "output": "14281/99" }, { "input": "659", "output": "79403/657" }, { "input": "653", "output": "77695/651" }, { "input": "23", "output": "45/7" }, { "input": "430", "output": "16985/214" }, { "input": "249", "output": "11659/247" }, { "input": "837", "output": "126869/835" }, { "input": "258", "output": "12373/256" }, { "input": "995", "output": "59665/331" }, { "input": "102", "output": "504/25" }, { "input": "989", "output": "177124/987" }, { "input": "376", "output": "13008/187" }, { "input": "657", "output": "15715/131" }, { "input": "746", "output": "50509/372" }, { "input": "602", "output": "13177/120" } ]
1,591,516,348
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
2
280
0
a = int(input()) g = 0 for k in range(2,a): g+= a%k +1 print(str(g)+'/'+str(a-2))
Title: Numbers Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: Little Petya likes numbers a lot. He found that number 123 in base 16 consists of two digits: the first is 7 and the second is 11. So the sum of digits of 123 in base 16 is equal to 18. Now he wonders what is an average value of sum of digits of the number *A* written in all bases from 2 to *A*<=-<=1. Note that all computations should be done in base 10. You should find the result as an irreducible fraction, written in base 10. Input Specification: Input contains one integer number *A* (3<=≤<=*A*<=≤<=1000). Output Specification: Output should contain required average value in format «X/Y», where X is the numerator and Y is the denominator. Demo Input: ['5\n', '3\n'] Demo Output: ['7/3\n', '2/1\n'] Note: In the first sample number 5 written in all bases from 2 to 4 looks so: 101, 12, 11. Sums of digits are 2, 3 and 2, respectively.
```python a = int(input()) g = 0 for k in range(2,a): g+= a%k +1 print(str(g)+'/'+str(a-2)) ```
0
242
C
King's Path
PROGRAMMING
1,800
[ "dfs and similar", "graphs", "hashing", "shortest paths" ]
null
null
The black king is standing on a chess field consisting of 109 rows and 109 columns. We will consider the rows of the field numbered with integers from 1 to 109 from top to bottom. The columns are similarly numbered with integers from 1 to 109 from left to right. We will denote a cell of the field that is located in the *i*-th row and *j*-th column as (*i*,<=*j*). You know that some squares of the given chess field are allowed. All allowed cells of the chess field are given as *n* segments. Each segment is described by three integers *r**i*,<=*a**i*,<=*b**i* (*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Your task is to find the minimum number of moves the king needs to get from square (*x*0,<=*y*0) to square (*x*1,<=*y*1), provided that he only moves along the allowed cells. In other words, the king can be located only on allowed cells on his way. Let us remind you that a chess king can move to any of the neighboring cells in one move. Two cells of a chess field are considered neighboring if they share at least one point.
The first line contains four space-separated integers *x*0,<=*y*0,<=*x*1,<=*y*1 (1<=≤<=*x*0,<=*y*0,<=*x*1,<=*y*1<=≤<=109), denoting the initial and the final positions of the king. The second line contains a single integer *n* (1<=≤<=*n*<=≤<=105), denoting the number of segments of allowed cells. Next *n* lines contain the descriptions of these segments. The *i*-th line contains three space-separated integers *r**i*,<=*a**i*,<=*b**i* (1<=≤<=*r**i*,<=*a**i*,<=*b**i*<=≤<=109,<=*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Note that the segments of the allowed cells can intersect and embed arbitrarily. It is guaranteed that the king's initial and final position are allowed cells. It is guaranteed that the king's initial and the final positions do not coincide. It is guaranteed that the total length of all given segments doesn't exceed 105.
If there is no path between the initial and final position along allowed cells, print -1. Otherwise print a single integer — the minimum number of moves the king needs to get from the initial position to the final one.
[ "5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5\n", "3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10\n", "1 1 2 10\n2\n1 1 3\n2 6 10\n" ]
[ "4\n", "6\n", "-1\n" ]
none
1,500
[ { "input": "5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5", "output": "4" }, { "input": "3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10", "output": "6" }, { "input": "1 1 2 10\n2\n1 1 3\n2 6 10", "output": "-1" }, { "input": "9 8 7 8\n9\n10 6 6\n10 6 6\n7 7 8\n9 5 6\n8 9 9\n9 5 5\n9 8 8\n8 5 6\n9 10 10", "output": "2" }, { "input": "6 15 7 15\n9\n6 15 15\n7 14 14\n6 15 15\n9 14 14\n7 14 16\n6 15 15\n6 15 15\n7 14 14\n8 15 15", "output": "1" }, { "input": "13 16 20 10\n18\n13 16 16\n20 10 10\n19 10 10\n12 15 15\n20 10 10\n18 11 11\n19 10 10\n19 10 10\n20 10 10\n19 10 10\n20 10 10\n20 10 10\n19 10 10\n18 11 11\n13 16 16\n12 15 15\n19 10 10\n19 10 10", "output": "-1" }, { "input": "89 29 88 30\n16\n87 31 31\n14 95 95\n98 88 89\n96 88 88\n14 97 97\n13 97 98\n100 88 88\n88 32 32\n99 88 89\n90 29 29\n87 31 31\n15 94 96\n89 29 29\n88 32 32\n97 89 89\n88 29 30", "output": "1" }, { "input": "30 14 39 19\n31\n35 7 11\n37 11 12\n32 13 13\n37 5 6\n46 13 13\n37 14 14\n31 13 13\n43 13 19\n45 15 19\n46 13 13\n32 17 17\n41 14 19\n30 14 14\n43 13 17\n34 16 18\n44 11 19\n38 13 13\n40 12 20\n37 16 18\n46 16 18\n34 10 14\n36 9 10\n36 15 19\n38 15 19\n42 13 19\n33 14 15\n35 15 19\n33 17 18\n39 12 20\n36 5 7\n45 12 12", "output": "9" }, { "input": "2 1 1 1\n2\n1 1 2\n2 1 2", "output": "1" }, { "input": "1 1 1 2\n5\n1000000000 1 10000\n19920401 1188 5566\n1000000000 1 10000\n1 1 10000\n5 100 200", "output": "1" }, { "input": "1 1 1000000000 2\n5\n1000000000 1 10000\n19920401 1188 5566\n1000000000 1 10000\n1 1 10000\n5 100 200", "output": "-1" } ]
1,589,220,859
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
12
748
35,225,600
def main(): import sys, math #from bisect import bisect_left as bl, bisect_right as br, insort from heapq import heapify, heappush, heappop from collections import defaultdict as dd, deque, Counter #from itertools import permutations,combinations def data(): return sys.stdin.readline().strip() def mdata(): return list(map(int, data().split())) def out(*var, end="\n"): sys.stdout.write(' '.join(map(str, var))+end) # sys.setrecursionlimit(100000) INF = int(1e9) mod = int(1e9)+7 x0,y0,x1,y1=mdata() n=int(data()) d=dd(int) for i in range(n): r,a,b=mdata() for i in range(a,b+1): d[(r,i)]=1 if d[(x0,y0)]==0: print(-1) exit() dist = dd(int) for i in d: dist[i]=INF dist[(x0,y0)] = 0 vis = dd(int) s = [] heapify(s) heappush(s, (0, x0,y0)) while len(s) != 0: wei, x,y = heappop(s) vis[(x,y)] = 1 for i in [-1,0,1]: for j in [-1,0,1]: if i==j==0: continue if d[(x+i,y+j)]==1: if dist[(x,y)] + 1 < dist[(x+i,y+j)]: dist[(x+i,y+j)] = dist[(x,y)] + 1 if vis[(x+i,y+j)] == 0: heappush(s, (dist[i], x+i,y+j)) if dist[x1,y1]==INF: print(-1) else: print(dist[x1,y1]) if __name__ == '__main__': main()
Title: King's Path Time Limit: None seconds Memory Limit: None megabytes Problem Description: The black king is standing on a chess field consisting of 109 rows and 109 columns. We will consider the rows of the field numbered with integers from 1 to 109 from top to bottom. The columns are similarly numbered with integers from 1 to 109 from left to right. We will denote a cell of the field that is located in the *i*-th row and *j*-th column as (*i*,<=*j*). You know that some squares of the given chess field are allowed. All allowed cells of the chess field are given as *n* segments. Each segment is described by three integers *r**i*,<=*a**i*,<=*b**i* (*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Your task is to find the minimum number of moves the king needs to get from square (*x*0,<=*y*0) to square (*x*1,<=*y*1), provided that he only moves along the allowed cells. In other words, the king can be located only on allowed cells on his way. Let us remind you that a chess king can move to any of the neighboring cells in one move. Two cells of a chess field are considered neighboring if they share at least one point. Input Specification: The first line contains four space-separated integers *x*0,<=*y*0,<=*x*1,<=*y*1 (1<=≤<=*x*0,<=*y*0,<=*x*1,<=*y*1<=≤<=109), denoting the initial and the final positions of the king. The second line contains a single integer *n* (1<=≤<=*n*<=≤<=105), denoting the number of segments of allowed cells. Next *n* lines contain the descriptions of these segments. The *i*-th line contains three space-separated integers *r**i*,<=*a**i*,<=*b**i* (1<=≤<=*r**i*,<=*a**i*,<=*b**i*<=≤<=109,<=*a**i*<=≤<=*b**i*), denoting that cells in columns from number *a**i* to number *b**i* inclusive in the *r**i*-th row are allowed. Note that the segments of the allowed cells can intersect and embed arbitrarily. It is guaranteed that the king's initial and final position are allowed cells. It is guaranteed that the king's initial and the final positions do not coincide. It is guaranteed that the total length of all given segments doesn't exceed 105. Output Specification: If there is no path between the initial and final position along allowed cells, print -1. Otherwise print a single integer — the minimum number of moves the king needs to get from the initial position to the final one. Demo Input: ['5 7 6 11\n3\n5 3 8\n6 7 11\n5 2 5\n', '3 4 3 10\n3\n3 1 4\n4 5 9\n3 10 10\n', '1 1 2 10\n2\n1 1 3\n2 6 10\n'] Demo Output: ['4\n', '6\n', '-1\n'] Note: none
```python def main(): import sys, math #from bisect import bisect_left as bl, bisect_right as br, insort from heapq import heapify, heappush, heappop from collections import defaultdict as dd, deque, Counter #from itertools import permutations,combinations def data(): return sys.stdin.readline().strip() def mdata(): return list(map(int, data().split())) def out(*var, end="\n"): sys.stdout.write(' '.join(map(str, var))+end) # sys.setrecursionlimit(100000) INF = int(1e9) mod = int(1e9)+7 x0,y0,x1,y1=mdata() n=int(data()) d=dd(int) for i in range(n): r,a,b=mdata() for i in range(a,b+1): d[(r,i)]=1 if d[(x0,y0)]==0: print(-1) exit() dist = dd(int) for i in d: dist[i]=INF dist[(x0,y0)] = 0 vis = dd(int) s = [] heapify(s) heappush(s, (0, x0,y0)) while len(s) != 0: wei, x,y = heappop(s) vis[(x,y)] = 1 for i in [-1,0,1]: for j in [-1,0,1]: if i==j==0: continue if d[(x+i,y+j)]==1: if dist[(x,y)] + 1 < dist[(x+i,y+j)]: dist[(x+i,y+j)] = dist[(x,y)] + 1 if vis[(x+i,y+j)] == 0: heappush(s, (dist[i], x+i,y+j)) if dist[x1,y1]==INF: print(-1) else: print(dist[x1,y1]) if __name__ == '__main__': main() ```
0
656
A
Da Vinci Powers
PROGRAMMING
1,900
[ "*special" ]
null
null
The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output a single integer.
The input contains a single integer *a* (0<=≤<=*a*<=≤<=35).
Output a single integer.
[ "3\n", "10\n" ]
[ "8\n", "1024\n" ]
none
0
[ { "input": "3", "output": "8" }, { "input": "10", "output": "1024" }, { "input": "35", "output": "33940307968" }, { "input": "0", "output": "1" }, { "input": "1", "output": "2" }, { "input": "2", "output": "4" }, { "input": "4", "output": "16" }, { "input": "5", "output": "32" }, { "input": "6", "output": "64" }, { "input": "7", "output": "128" }, { "input": "8", "output": "256" }, { "input": "9", "output": "512" }, { "input": "11", "output": "2048" }, { "input": "12", "output": "4096" }, { "input": "13", "output": "8092" }, { "input": "14", "output": "16184" }, { "input": "15", "output": "32368" }, { "input": "16", "output": "64736" }, { "input": "17", "output": "129472" }, { "input": "18", "output": "258944" }, { "input": "19", "output": "517888" }, { "input": "20", "output": "1035776" }, { "input": "21", "output": "2071552" }, { "input": "22", "output": "4143104" }, { "input": "23", "output": "8286208" }, { "input": "24", "output": "16572416" }, { "input": "25", "output": "33144832" }, { "input": "26", "output": "66289664" }, { "input": "27", "output": "132579328" }, { "input": "28", "output": "265158656" }, { "input": "29", "output": "530317312" }, { "input": "30", "output": "1060634624" }, { "input": "31", "output": "2121269248" }, { "input": "32", "output": "4242538496" }, { "input": "33", "output": "8485076992" }, { "input": "34", "output": "16970153984" } ]
1,515,667,382
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
46
5,632,000
n=int(input()) 2 print(pow(2,n))
Title: Da Vinci Powers Time Limit: None seconds Memory Limit: None megabytes Problem Description: The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output a single integer. Input Specification: The input contains a single integer *a* (0<=≤<=*a*<=≤<=35). Output Specification: Output a single integer. Demo Input: ['3\n', '10\n'] Demo Output: ['8\n', '1024\n'] Note: none
```python n=int(input()) 2 print(pow(2,n)) ```
0
443
A
Anton and Letters
PROGRAMMING
800
[ "constructive algorithms", "implementation" ]
null
null
Recently, Anton has found a set. The set consists of small English letters. Anton carefully wrote out all the letters from the set in one line, separated by a comma. He also added an opening curved bracket at the beginning of the line and a closing curved bracket at the end of the line. Unfortunately, from time to time Anton would forget writing some letter and write it again. He asks you to count the total number of distinct letters in his set.
The first and the single line contains the set of letters. The length of the line doesn't exceed 1000. It is guaranteed that the line starts from an opening curved bracket and ends with a closing curved bracket. Between them, small English letters are listed, separated by a comma. Each comma is followed by a space.
Print a single number — the number of distinct letters in Anton's set.
[ "{a, b, c}\n", "{b, a, b, a}\n", "{}\n" ]
[ "3\n", "2\n", "0\n" ]
none
500
[ { "input": "{a, b, c}", "output": "3" }, { "input": "{b, a, b, a}", "output": "2" }, { "input": "{}", "output": "0" }, { "input": "{a, a, c, b, b, b, c, c, c, c}", "output": "3" }, { "input": "{a, c, b, b}", "output": "3" }, { "input": "{a, b}", "output": "2" }, { "input": "{a}", "output": "1" }, { "input": "{b, a, b, a, b, c, c, b, c, b}", "output": "3" }, { "input": "{e, g, c, e}", "output": "3" }, { "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, 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, a, b}", "output": "2" }, { "input": "{a, b, b, b, a, b, a, a, a, a, a, a, b, a, b, a, a, a, a, a, b, a, b, a}", "output": "2" }, { "input": "{j, u, a, c, f, w, e, w, x, t, h, p, v, n, i, l, x, n, i, b, u, c, a, a}", "output": "16" }, { "input": "{x, i, w, c, p, e, h, z, k, i}", "output": "9" }, { "input": "{t, k, o, x, r, d, q, j, k, e, z, w, y, r, z, s, s, e, s, b, k, i}", "output": "15" }, { "input": "{y}", "output": "1" }, { "input": "{x}", "output": "1" }, { "input": "{b, z, a, z}", "output": "3" }, { "input": "{z}", "output": "1" }, { "input": "{a, z}", "output": "2" }, { "input": "{a, b, z}", "output": "3" }, { "input": "{s, q, z, r, t, a, b, h, j, i, o, z, r, q}", "output": "11" } ]
1,694,785,062
2,147,483,647
Python 3
OK
TESTS
27
46
0
x=input()+', ' print(len(set(x))-4)
Title: Anton and Letters Time Limit: None seconds Memory Limit: None megabytes Problem Description: Recently, Anton has found a set. The set consists of small English letters. Anton carefully wrote out all the letters from the set in one line, separated by a comma. He also added an opening curved bracket at the beginning of the line and a closing curved bracket at the end of the line. Unfortunately, from time to time Anton would forget writing some letter and write it again. He asks you to count the total number of distinct letters in his set. Input Specification: The first and the single line contains the set of letters. The length of the line doesn't exceed 1000. It is guaranteed that the line starts from an opening curved bracket and ends with a closing curved bracket. Between them, small English letters are listed, separated by a comma. Each comma is followed by a space. Output Specification: Print a single number — the number of distinct letters in Anton's set. Demo Input: ['{a, b, c}\n', '{b, a, b, a}\n', '{}\n'] Demo Output: ['3\n', '2\n', '0\n'] Note: none
```python x=input()+', ' print(len(set(x))-4) ```
3
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,669,315,059
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
62
0
word = input() new_word = sorted(word) if len(word) % 2 != 0: if "".join(new_word[len(word)//2]).isupper(): print("".join(word).upper()) else: print("".join(word).lower()) else: if "".join(new_word[len(word)//2:(len(word)//2)+1]).isupper(): print("".join(word).upper()) else: print("".join(word).upper())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python word = input() new_word = sorted(word) if len(word) % 2 != 0: if "".join(new_word[len(word)//2]).isupper(): print("".join(word).upper()) else: print("".join(word).lower()) else: if "".join(new_word[len(word)//2:(len(word)//2)+1]).isupper(): print("".join(word).upper()) else: print("".join(word).upper()) ```
0
358
B
Dima and Text Messages
PROGRAMMING
1,500
[ "brute force", "strings" ]
null
null
Seryozha has a very changeable character. This time he refused to leave the room to Dima and his girlfriend (her hame is Inna, by the way). However, the two lovebirds can always find a way to communicate. Today they are writing text messages to each other. Dima and Inna are using a secret code in their text messages. When Dima wants to send Inna some sentence, he writes out all words, inserting a heart before each word and after the last word. A heart is a sequence of two characters: the "less" characters (&lt;) and the digit three (3). After applying the code, a test message looks like that: &lt;3*word*1&lt;3*word*2&lt;3 ... *word**n*&lt;3. Encoding doesn't end here. Then Dima inserts a random number of small English characters, digits, signs "more" and "less" into any places of the message. Inna knows Dima perfectly well, so she knows what phrase Dima is going to send her beforehand. Inna has just got a text message. Help her find out if Dima encoded the message correctly. In other words, find out if a text message could have been received by encoding in the manner that is described above.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of words in Dima's message. Next *n* lines contain non-empty words, one word per line. The words only consist of small English letters. The total length of all words doesn't exceed 105. The last line contains non-empty text message that Inna has got. The number of characters in the text message doesn't exceed 105. A text message can contain only small English letters, digits and signs more and less.
In a single line, print "yes" (without the quotes), if Dima decoded the text message correctly, and "no" (without the quotes) otherwise.
[ "3\ni\nlove\nyou\n&lt;3i&lt;3love&lt;23you&lt;3\n", "7\ni\nam\nnot\nmain\nin\nthe\nfamily\n&lt;3i&lt;&gt;3am&lt;3the&lt;3&lt;main&lt;3in&lt;3the&lt;3&gt;&lt;3family&lt;3\n" ]
[ "yes\n", "no\n" ]
Please note that Dima got a good old kick in the pants for the second sample from the statement.
1,000
[ { "input": "3\ni\nlove\nyou\n<3i<3love<23you<3", "output": "yes" }, { "input": "7\ni\nam\nnot\nmain\nin\nthe\nfamily\n<3i<>3am<3the<3<main<3in<3the<3><3family<3", "output": "no" }, { "input": "3\ni\nlove\nyou\n<3i<3lo<3ve<3y<<<<<<<ou3<3", "output": "yes" }, { "input": "4\na\nb\nc\nd\n<3a<3b<3c<3d", "output": "no" }, { "input": "4\na\nb\nc\nd\na<3b<3c<3d<3", "output": "no" }, { "input": "3\ni\nlove\nyou\n<3i<3love<3you<3", "output": "yes" }, { "input": "1\na\na", "output": "no" }, { "input": "1\na\n<3a<3b", "output": "yes" }, { "input": "1\naa\n<3a<3", "output": "no" }, { "input": "3\ni\nlove\nyou\n<3i<3love<23you<3ww", "output": "yes" }, { "input": "3\ni\nlove\nyou\n<3ilove<23you<3", "output": "no" }, { "input": "2\na\ni\n<3ai<3", "output": "no" } ]
1,451,463,467
2,147,483,647
Python 3
OK
TESTS
30
234
2,150,400
n=int(input()) text="" for _ in range(n): temp=input() text=text+"<3" text=text+temp text=text+"<3" tocmp=input() j=0 for ch in tocmp: if ch==text[j]: j+=1 if j==len(text): break if j==len(text): print("yes") else: print("no")
Title: Dima and Text Messages Time Limit: None seconds Memory Limit: None megabytes Problem Description: Seryozha has a very changeable character. This time he refused to leave the room to Dima and his girlfriend (her hame is Inna, by the way). However, the two lovebirds can always find a way to communicate. Today they are writing text messages to each other. Dima and Inna are using a secret code in their text messages. When Dima wants to send Inna some sentence, he writes out all words, inserting a heart before each word and after the last word. A heart is a sequence of two characters: the "less" characters (&lt;) and the digit three (3). After applying the code, a test message looks like that: &lt;3*word*1&lt;3*word*2&lt;3 ... *word**n*&lt;3. Encoding doesn't end here. Then Dima inserts a random number of small English characters, digits, signs "more" and "less" into any places of the message. Inna knows Dima perfectly well, so she knows what phrase Dima is going to send her beforehand. Inna has just got a text message. Help her find out if Dima encoded the message correctly. In other words, find out if a text message could have been received by encoding in the manner that is described above. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of words in Dima's message. Next *n* lines contain non-empty words, one word per line. The words only consist of small English letters. The total length of all words doesn't exceed 105. The last line contains non-empty text message that Inna has got. The number of characters in the text message doesn't exceed 105. A text message can contain only small English letters, digits and signs more and less. Output Specification: In a single line, print "yes" (without the quotes), if Dima decoded the text message correctly, and "no" (without the quotes) otherwise. Demo Input: ['3\ni\nlove\nyou\n&lt;3i&lt;3love&lt;23you&lt;3\n', '7\ni\nam\nnot\nmain\nin\nthe\nfamily\n&lt;3i&lt;&gt;3am&lt;3the&lt;3&lt;main&lt;3in&lt;3the&lt;3&gt;&lt;3family&lt;3\n'] Demo Output: ['yes\n', 'no\n'] Note: Please note that Dima got a good old kick in the pants for the second sample from the statement.
```python n=int(input()) text="" for _ in range(n): temp=input() text=text+"<3" text=text+temp text=text+"<3" tocmp=input() j=0 for ch in tocmp: if ch==text[j]: j+=1 if j==len(text): break if j==len(text): print("yes") else: print("no") ```
3
894
A
QAQ
PROGRAMMING
800
[ "brute force", "dp" ]
null
null
"QAQ" is a word to denote an expression of crying. Imagine "Q" as eyes with tears and "A" as a mouth. Now Diamond has given Bort a string consisting of only uppercase English letters of length *n*. There is a great number of "QAQ" in the string (Diamond is so cute!). Bort wants to know how many subsequences "QAQ" are in the string Diamond has given. Note that the letters "QAQ" don't have to be consecutive, but the order of letters should be exact.
The only line contains a string of length *n* (1<=≤<=*n*<=≤<=100). It's guaranteed that the string only contains uppercase English letters.
Print a single integer — the number of subsequences "QAQ" in the string.
[ "QAQAQYSYIOIWIN\n", "QAQQQZZYNOIWIN\n" ]
[ "4\n", "3\n" ]
In the first example there are 4 subsequences "QAQ": "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN".
500
[ { "input": "QAQAQYSYIOIWIN", "output": "4" }, { "input": "QAQQQZZYNOIWIN", "output": "3" }, { "input": "QA", "output": "0" }, { "input": "IAQVAQZLQBQVQFTQQQADAQJA", "output": "24" }, { "input": "QQAAQASGAYAAAAKAKAQIQEAQAIAAIAQQQQQ", "output": "378" }, { "input": "AMVFNFJIAVNQJWIVONQOAOOQSNQSONOASONAONQINAONAOIQONANOIQOANOQINAONOQINAONOXJCOIAQOAOQAQAQAQAQWWWAQQAQ", "output": "1077" }, { "input": "AAQQAXBQQBQQXBNQRJAQKQNAQNQVDQASAGGANQQQQTJFFQQQTQQA", "output": "568" }, { "input": "KAZXAVLPJQBQVQQQQQAPAQQGQTQVZQAAAOYA", "output": "70" }, { "input": "W", "output": "0" }, { "input": "DBA", "output": "0" }, { "input": "RQAWNACASAAKAGAAAAQ", "output": "10" }, { "input": "QJAWZAAOAAGIAAAAAOQATASQAEAAAAQFQQHPA", "output": "111" }, { "input": "QQKWQAQAAAAAAAAGAAVAQUEQQUMQMAQQQNQLAMAAAUAEAAEMAAA", "output": "411" }, { "input": "QQUMQAYAUAAGWAAAQSDAVAAQAAAASKQJJQQQQMAWAYYAAAAAAEAJAXWQQ", "output": "625" }, { "input": "QORZOYAQ", "output": "1" }, { "input": "QCQAQAGAWAQQQAQAVQAQQQQAQAQQQAQAAATQAAVAAAQQQQAAAUUQAQQNQQWQQWAQAAQQKQYAQAAQQQAAQRAQQQWBQQQQAPBAQGQA", "output": "13174" }, { "input": "QQAQQAKQFAQLQAAWAMQAZQAJQAAQQOACQQAAAYANAQAQQAQAAQQAOBQQJQAQAQAQQQAAAAABQQQAVNZAQQQQAMQQAFAAEAQAQHQT", "output": "10420" }, { "input": "AQEGQHQQKQAQQPQKAQQQAAAAQQQAQEQAAQAAQAQFSLAAQQAQOQQAVQAAAPQQAWAQAQAFQAXAQQQQTRLOQAQQJQNQXQQQQSQVDQQQ", "output": "12488" }, { "input": "QNQKQQQLASQBAVQQQQAAQQOQRJQQAQQQEQZUOANAADAAQQJAQAQARAAAQQQEQBHTQAAQAAAAQQMKQQQIAOJJQQAQAAADADQUQQQA", "output": "9114" }, { "input": "QQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQ", "output": "35937" }, { "input": "AMQQAAQAAQAAAAAAQQQBOAAANAAKQJCYQAE", "output": "254" }, { "input": "AYQBAEQGAQEOAKGIXLQJAIAKQAAAQPUAJAKAATFWQQAOQQQUFQYAQQMQHOKAAJXGFCARAQSATHAUQQAATQJJQDQRAANQQAE", "output": "2174" }, { "input": "AAQXAAQAYQAAAAGAQHVQYAGIVACADFAAQAAAAQZAAQMAKZAADQAQDAAQDAAAMQQOXYAQQQAKQBAAQQKAXQBJZDDLAAHQQ", "output": "2962" }, { "input": "AYQQYAVAMNIAUAAKBBQVACWKTQSAQZAAQAAASZJAWBCAALAARHACQAKQQAQAARPAQAAQAQAAZQUSHQAMFVFZQQQQSAQQXAA", "output": "2482" }, { "input": "LQMAQQARQAQBJQQQAGAAZQQXALQQAARQAQQQQAAQQAQQQAQQCAQQAQQAYQQQRAAZATQALYQQAAHHAAQHAAAAAAAAQQMAAQNAKQ", "output": "7768" }, { "input": "MAQQWAQOYQMAAAQAQPQZAOAAQAUAQNAAQAAAITQSAQAKAQKAQQWSQAAQQAGUCDQMQWKQUXKWQQAAQQAAQQZQDQQQAABXQUUXQOA", "output": "5422" }, { "input": "QTAAQDAQXAQQJQQQGAAAQQQQSBQZKAQQAQQQQEAQNUQBZCQLYQZQEQQAAQHQVAORKQVAQYQNASZQAARZAAGAAAAOQDCQ", "output": "3024" }, { "input": "QQWAQQGQQUZQQQLZAAQYQXQVAQFQUAQZUQZZQUKBHSHTQYLQAOQXAQQGAQQTQOAQARQADAJRAAQPQAQQUQAUAMAUVQAAAQQAWQ", "output": "4527" }, { "input": "QQAAQQAQVAQZQQQQAOEAQZPQIBQZACQQAFQQLAAQDATZQANHKYQQAQTAAFQRQAIQAJPWQAQTEIRXAEQQAYWAAAUKQQAQAQQQSQQH", "output": "6416" }, { "input": "AQQQQAQAAQQAQAQAAAAAAAAAQAQAAAAAQAQAQQQAQQQAAAQQQAAAAAAAQAAAAQQQQQQQAQQQQAQAAAQAAAAAQAQAAAAAQAQAAAA", "output": "14270" }, { "input": "AQQQQAQAAQQAQAQAAAAAAAAAQAQAAAAAQAQAQQQAQQQAAAQQQAAAAAAAQAAAAQQQQQQQAQQQQAQAAAQAAAAAQAQAAAAAQ", "output": "13136" }, { "input": "AQQQQAQAAQQAQAQAAAAAAAAAQAQAAAAAQAQAQQQAQQQAAAQQQAAAAAAAQAAAAQQQQQQQAQQQQAQAAAQAAAAAQAQAAAAAQAQAA", "output": "14270" }, { "input": "AQQQQAQAAQQAQAQAAAAAAAAAQAQAAAAAQAQAQQQAQQQAAAQQQAAAAAAAQAAAAQQQQQQQAQQQQAQAAAQAAAAAQAQAAAAAQQAA", "output": "14231" }, { "input": "QQQQQAQAAQQAQAQAAAAAAAAAQAQAAAAAQAQAQQQAQQQAAAQQQAAAAAAAQAAAAQQQQQQQAQQQQAQAAAQAAAAAQAQAAAAAQAQAA", "output": "15296" }, { "input": "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQ", "output": "0" }, { "input": "QQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA", "output": "0" }, { "input": "QQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQQ", "output": "0" }, { "input": "QAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQA", "output": "20825" }, { "input": "AQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQAQ", "output": "20825" }, { "input": "Q", "output": "0" }, { "input": "A", "output": "0" }, { "input": "FFF", "output": "0" }, { "input": "AAAAAA", "output": "0" } ]
1,617,039,366
2,147,483,647
Python 3
OK
TESTS
43
124
307,200
s=input() l=[] k=[] c=0 for i in s: l.append(i) # print(l) for i in l: if i=='Q' or i=='A': k.append(i) # print(k) n=len(k) for i in range(n+1): for j in range(i+1,n): for z in range(j+1,n): m=k[i]+k[j]+k[z] # print(m) if(m=='QAQ'): c+=1 print(c)
Title: QAQ Time Limit: None seconds Memory Limit: None megabytes Problem Description: "QAQ" is a word to denote an expression of crying. Imagine "Q" as eyes with tears and "A" as a mouth. Now Diamond has given Bort a string consisting of only uppercase English letters of length *n*. There is a great number of "QAQ" in the string (Diamond is so cute!). Bort wants to know how many subsequences "QAQ" are in the string Diamond has given. Note that the letters "QAQ" don't have to be consecutive, but the order of letters should be exact. Input Specification: The only line contains a string of length *n* (1<=≤<=*n*<=≤<=100). It's guaranteed that the string only contains uppercase English letters. Output Specification: Print a single integer — the number of subsequences "QAQ" in the string. Demo Input: ['QAQAQYSYIOIWIN\n', 'QAQQQZZYNOIWIN\n'] Demo Output: ['4\n', '3\n'] Note: In the first example there are 4 subsequences "QAQ": "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN", "QAQAQYSYIOIWIN".
```python s=input() l=[] k=[] c=0 for i in s: l.append(i) # print(l) for i in l: if i=='Q' or i=='A': k.append(i) # print(k) n=len(k) for i in range(n+1): for j in range(i+1,n): for z in range(j+1,n): m=k[i]+k[j]+k[z] # print(m) if(m=='QAQ'): c+=1 print(c) ```
3
835
B
The number on the board
PROGRAMMING
1,100
[ "greedy" ]
null
null
Some natural number was written on the board. Its sum of digits was not less than *k*. But you were distracted a bit, and someone changed this number to *n*, replacing some digits with others. It's known that the length of the number didn't change. You have to find the minimum number of digits in which these two numbers can differ.
The first line contains integer *k* (1<=≤<=*k*<=≤<=109). The second line contains integer *n* (1<=≤<=*n*<=&lt;<=10100000). There are no leading zeros in *n*. It's guaranteed that this situation is possible.
Print the minimum number of digits in which the initial number and *n* can differ.
[ "3\n11\n", "3\n99\n" ]
[ "1\n", "0\n" ]
In the first example, the initial number could be 12. In the second example the sum of the digits of *n* is not less than *k*. The initial number could be equal to *n*.
750
[ { "input": "3\n11", "output": "1" }, { "input": "3\n99", "output": "0" }, { "input": "10\n5205602270", "output": "0" }, { "input": "70\n3326631213", "output": "6" }, { "input": "200\n1000000010000000000000000000010000000000000001000001000000000000000000000000000000000000000000000000", "output": "22" }, { "input": "500\n1899337170458531693764539600958943248270674811247191310452938511077656066239840703432499357537079035", "output": "6" }, { "input": "700\n9307216756404590162143344901558545760612901767837570518638460182990196397856220673189163417019781185", "output": "32" }, { "input": "900\n7570423817272967027553082464863962024635217372307919506594193055572300657732661146354209508997483330", "output": "91" }, { "input": "18\n900", "output": "1" }, { "input": "23\n12138", "output": "1" }, { "input": "16\n333", "output": "2" }, { "input": "3\n12", "output": "0" }, { "input": "3\n111", "output": "0" }, { "input": "1\n100", "output": "0" }, { "input": "17\n89", "output": "0" }, { "input": "18\n99", "output": "0" }, { "input": "42\n97779", "output": "2" }, { "input": "2\n11", "output": "0" }, { "input": "6\n33", "output": "0" }, { "input": "45\n23456", "output": "5" }, { "input": "3\n21", "output": "0" }, { "input": "2\n2", "output": "0" }, { "input": "108\n199999899899", "output": "3" }, { "input": "6\n222", "output": "0" }, { "input": "1\n1", "output": "0" }, { "input": "9\n9", "output": "0" }, { "input": "5\n5", "output": "0" }, { "input": "27\n888", "output": "3" } ]
1,608,746,295
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
93
0
k = int(input()) n = input() s = sum(list(map(int,n))) if s>k: print(0) else: print(int(n)+k-s)
Title: The number on the board Time Limit: None seconds Memory Limit: None megabytes Problem Description: Some natural number was written on the board. Its sum of digits was not less than *k*. But you were distracted a bit, and someone changed this number to *n*, replacing some digits with others. It's known that the length of the number didn't change. You have to find the minimum number of digits in which these two numbers can differ. Input Specification: The first line contains integer *k* (1<=≤<=*k*<=≤<=109). The second line contains integer *n* (1<=≤<=*n*<=&lt;<=10100000). There are no leading zeros in *n*. It's guaranteed that this situation is possible. Output Specification: Print the minimum number of digits in which the initial number and *n* can differ. Demo Input: ['3\n11\n', '3\n99\n'] Demo Output: ['1\n', '0\n'] Note: In the first example, the initial number could be 12. In the second example the sum of the digits of *n* is not less than *k*. The initial number could be equal to *n*.
```python k = int(input()) n = input() s = sum(list(map(int,n))) if s>k: print(0) else: print(int(n)+k-s) ```
0
4
A
Watermelon
PROGRAMMING
800
[ "brute force", "math" ]
A. Watermelon
1
64
One hot summer day Pete and his friend Billy decided to buy a watermelon. They chose the biggest and the ripest one, in their opinion. After that the watermelon was weighed, and the scales showed *w* kilos. They rushed home, dying of thirst, and decided to divide the berry, however they faced a hard problem. Pete and Billy are great fans of even numbers, that's why they want to divide the watermelon in such a way that each of the two parts weighs even number of kilos, at the same time it is not obligatory that the parts are equal. The boys are extremely tired and want to start their meal as soon as possible, that's why you should help them and find out, if they can divide the watermelon in the way they want. For sure, each of them should get a part of positive weight.
The first (and the only) input line contains integer number *w* (1<=≤<=*w*<=≤<=100) — the weight of the watermelon bought by the boys.
Print YES, if the boys can divide the watermelon into two parts, each of them weighing even number of kilos; and NO in the opposite case.
[ "8\n" ]
[ "YES\n" ]
For example, the boys can divide the watermelon into two parts of 2 and 6 kilos respectively (another variant — two parts of 4 and 4 kilos).
0
[ { "input": "8", "output": "YES" }, { "input": "5", "output": "NO" }, { "input": "4", "output": "YES" }, { "input": "3", "output": "NO" }, { "input": "2", "output": "NO" }, { "input": "1", "output": "NO" }, { "input": "7", "output": "NO" }, { "input": "6", "output": "YES" }, { "input": "10", "output": "YES" }, { "input": "9", "output": "NO" }, { "input": "53", "output": "NO" }, { "input": "77", "output": "NO" }, { "input": "32", "output": "YES" }, { "input": "44", "output": "YES" }, { "input": "98", "output": "YES" }, { "input": "99", "output": "NO" }, { "input": "90", "output": "YES" }, { "input": "67", "output": "NO" }, { "input": "100", "output": "YES" }, { "input": "88", "output": "YES" } ]
1,687,475,340
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
92
0
w = int(input()) ans = "NO" if w == 2: ans = "YES" elif w%2==0: ans = "YES" print(ans)
Title: Watermelon Time Limit: 1 seconds Memory Limit: 64 megabytes Problem Description: One hot summer day Pete and his friend Billy decided to buy a watermelon. They chose the biggest and the ripest one, in their opinion. After that the watermelon was weighed, and the scales showed *w* kilos. They rushed home, dying of thirst, and decided to divide the berry, however they faced a hard problem. Pete and Billy are great fans of even numbers, that's why they want to divide the watermelon in such a way that each of the two parts weighs even number of kilos, at the same time it is not obligatory that the parts are equal. The boys are extremely tired and want to start their meal as soon as possible, that's why you should help them and find out, if they can divide the watermelon in the way they want. For sure, each of them should get a part of positive weight. Input Specification: The first (and the only) input line contains integer number *w* (1<=≤<=*w*<=≤<=100) — the weight of the watermelon bought by the boys. Output Specification: Print YES, if the boys can divide the watermelon into two parts, each of them weighing even number of kilos; and NO in the opposite case. Demo Input: ['8\n'] Demo Output: ['YES\n'] Note: For example, the boys can divide the watermelon into two parts of 2 and 6 kilos respectively (another variant — two parts of 4 and 4 kilos).
```python w = int(input()) ans = "NO" if w == 2: ans = "YES" elif w%2==0: ans = "YES" print(ans) ```
0
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,638,450,206
2,147,483,647
Python 3
OK
TESTS
30
124
0
word=input() ucount=0 lcount=0 for letter in word: if(letter.isupper()): ucount=ucount+1 else: lcount=lcount+1 if(ucount>lcount): print(word.upper()) else: print(word.lower())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python word=input() ucount=0 lcount=0 for letter in word: if(letter.isupper()): ucount=ucount+1 else: lcount=lcount+1 if(ucount>lcount): print(word.upper()) else: print(word.lower()) ```
3.969
644
A
Parliament of Berland
PROGRAMMING
1,000
[ "*special", "constructive algorithms" ]
null
null
There are *n* parliamentarians in Berland. They are numbered with integers from 1 to *n*. It happened that all parliamentarians with odd indices are Democrats and all parliamentarians with even indices are Republicans. New parliament assembly hall is a rectangle consisting of *a*<=×<=*b* chairs — *a* rows of *b* chairs each. Two chairs are considered neighbouring if they share as side. For example, chair number 5 in row number 2 is neighbouring to chairs number 4 and 6 in this row and chairs with number 5 in rows 1 and 3. Thus, chairs have four neighbours in general, except for the chairs on the border of the hall We know that if two parliamentarians from one political party (that is two Democrats or two Republicans) seat nearby they spent all time discussing internal party issues. Write the program that given the number of parliamentarians and the sizes of the hall determine if there is a way to find a seat for any parliamentarian, such that no two members of the same party share neighbouring seats.
The first line of the input contains three integers *n*, *a* and *b* (1<=≤<=*n*<=≤<=10<=000, 1<=≤<=*a*,<=*b*<=≤<=100) — the number of parliamentarians, the number of rows in the assembly hall and the number of seats in each row, respectively.
If there is no way to assigns seats to parliamentarians in a proper way print -1. Otherwise print the solution in *a* lines, each containing *b* integers. The *j*-th integer of the *i*-th line should be equal to the index of parliamentarian occupying this seat, or 0 if this seat should remain empty. If there are multiple possible solution, you may print any of them.
[ "3 2 2\n", "8 4 3\n", "10 2 2\n" ]
[ "0 3\n1 2\n", "7 8 3\n0 1 4\n6 0 5\n0 2 0\n", "-1\n" ]
In the first sample there are many other possible solutions. For example, and The following assignment is incorrect, because parliamentarians 1 and 3 are both from Democrats party but will occupy neighbouring seats.
500
[ { "input": "3 2 2", "output": "1 2 \n0 3 " }, { "input": "8 4 3", "output": "1 2 3 \n4 5 6 \n7 8 0 \n0 0 0 " }, { "input": "10 2 2", "output": "-1" }, { "input": "1 1 1", "output": "1 " }, { "input": "8 3 3", "output": "1 2 3 \n4 5 6 \n7 8 0 " }, { "input": "1 1 100", "output": "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 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 " }, { "input": "1 100 1", "output": "1 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 \n0 " }, { "input": "12 4 3", "output": "1 2 3 \n4 5 6 \n7 8 9 \n10 11 12 " }, { "input": "64 8 9", "output": "1 2 3 4 5 6 7 8 9 \n10 11 12 13 14 15 16 17 18 \n19 20 21 22 23 24 25 26 27 \n28 29 30 31 32 33 34 35 36 \n37 38 39 40 41 42 43 44 45 \n46 47 48 49 50 51 52 53 54 \n55 56 57 58 59 60 61 62 63 \n64 0 0 0 0 0 0 0 0 " }, { "input": "13 2 6", "output": "-1" }, { "input": "41 6 7", "output": "1 2 3 4 5 6 7 \n8 9 10 11 12 13 14 \n15 16 17 18 19 20 21 \n22 23 24 25 26 27 28 \n29 30 31 32 33 34 35 \n36 37 38 39 40 41 0 " }, { "input": "9999 100 100", "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 \n102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "10000 100 100", "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 \n102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "2099 70 30", "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 \n32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 \n61 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 \n92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 \n121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 \n152 151 1..." }, { "input": "2098 30 70", "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 \n72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 \n141 142 143 144 145 146 147 148 149 150 151 152 153 154..." }, { "input": "10000 1 1", "output": "-1" }, { "input": "1583 49 36", "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 \n38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 \n73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 \n110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 \n145 146 147 148 149 150 151 152 153..." }, { "input": "4825 77 88", "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 \n90 89 92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "26 1 33", "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 0 0 0 0 0 0 0 " }, { "input": "274 25 77", "output": "1 2 3 4 5 6 7 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"5916 68 87", "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 \n88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 1..." }, { "input": "8928 93 96", "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 \n98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "7743 89 87", "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 \n88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 1..." }, { "input": "3128 46 68", "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 \n70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 \n137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154..." }, { "input": "3800 40 95", "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 \n96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 1..." }, { "input": "5368 61 88", "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 \n90 89 92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "2583 41 63", "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 \n64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 \n127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154..." }, { "input": "4056 52 78", "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 \n80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "3822 42 91", "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 \n92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 1..." }, { "input": "5358 57 94", "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 \n96 95 98 97 100 99 102 101 104 103 106 105 108 107 110 109 112 111 114 113 116 115 118 117 120 119 122 121 124 123 126 125 128 127 130 129 132 131 134 133 136 135 138 137 140 139 142 141 144 143 146 145 148 147 150 149 152 151 154 153 1..." }, { "input": "2961 47 63", "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 \n64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 \n127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154..." } ]
1,458,413,124
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
2
46
4,608,000
#!/usr/bin/python3 def read_ints(): return list(map(int, input().split())) (n,a,b) = read_ints() odd = 1 even = 2 for i in range(0,a): for j in range(0,b): if (i+j) % 2 == 0: if even <= n: print(even,end=" ") even+=2 else: print(0,end=" ") else: if odd <= n: print(odd,end=" ") odd+=2 else: print(0,end=" ") print()
Title: Parliament of Berland Time Limit: None seconds Memory Limit: None megabytes Problem Description: There are *n* parliamentarians in Berland. They are numbered with integers from 1 to *n*. It happened that all parliamentarians with odd indices are Democrats and all parliamentarians with even indices are Republicans. New parliament assembly hall is a rectangle consisting of *a*<=×<=*b* chairs — *a* rows of *b* chairs each. Two chairs are considered neighbouring if they share as side. For example, chair number 5 in row number 2 is neighbouring to chairs number 4 and 6 in this row and chairs with number 5 in rows 1 and 3. Thus, chairs have four neighbours in general, except for the chairs on the border of the hall We know that if two parliamentarians from one political party (that is two Democrats or two Republicans) seat nearby they spent all time discussing internal party issues. Write the program that given the number of parliamentarians and the sizes of the hall determine if there is a way to find a seat for any parliamentarian, such that no two members of the same party share neighbouring seats. Input Specification: The first line of the input contains three integers *n*, *a* and *b* (1<=≤<=*n*<=≤<=10<=000, 1<=≤<=*a*,<=*b*<=≤<=100) — the number of parliamentarians, the number of rows in the assembly hall and the number of seats in each row, respectively. Output Specification: If there is no way to assigns seats to parliamentarians in a proper way print -1. Otherwise print the solution in *a* lines, each containing *b* integers. The *j*-th integer of the *i*-th line should be equal to the index of parliamentarian occupying this seat, or 0 if this seat should remain empty. If there are multiple possible solution, you may print any of them. Demo Input: ['3 2 2\n', '8 4 3\n', '10 2 2\n'] Demo Output: ['0 3\n1 2\n', '7 8 3\n0 1 4\n6 0 5\n0 2 0\n', '-1\n'] Note: In the first sample there are many other possible solutions. For example, and The following assignment is incorrect, because parliamentarians 1 and 3 are both from Democrats party but will occupy neighbouring seats.
```python #!/usr/bin/python3 def read_ints(): return list(map(int, input().split())) (n,a,b) = read_ints() odd = 1 even = 2 for i in range(0,a): for j in range(0,b): if (i+j) % 2 == 0: if even <= n: print(even,end=" ") even+=2 else: print(0,end=" ") else: if odd <= n: print(odd,end=" ") odd+=2 else: print(0,end=" ") print() ```
0
711
A
Bus to Udayland
PROGRAMMING
800
[ "brute force", "implementation" ]
null
null
ZS the Coder and Chris the Baboon are travelling to Udayland! To get there, they have to get on the special IOI bus. The IOI bus has *n* rows of seats. There are 4 seats in each row, and the seats are separated into pairs by a walkway. When ZS and Chris came, some places in the bus was already occupied. ZS and Chris are good friends. They insist to get a pair of neighbouring empty seats. Two seats are considered neighbouring if they are in the same row and in the same pair. Given the configuration of the bus, can you help ZS and Chris determine where they should sit?
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of rows of seats in the bus. Then, *n* lines follow. Each line contains exactly 5 characters, the first two of them denote the first pair of seats in the row, the third character denotes the walkway (it always equals '|') and the last two of them denote the second pair of seats in the row. Each character, except the walkway, equals to 'O' or to 'X'. 'O' denotes an empty seat, 'X' denotes an occupied seat. See the sample cases for more details.
If it is possible for Chris and ZS to sit at neighbouring empty seats, print "YES" (without quotes) in the first line. In the next *n* lines print the bus configuration, where the characters in the pair of seats for Chris and ZS is changed with characters '+'. Thus the configuration should differ from the input one by exactly two charaters (they should be equal to 'O' in the input and to '+' in the output). If there is no pair of seats for Chris and ZS, print "NO" (without quotes) in a single line. If there are multiple solutions, you may print any of them.
[ "6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n", "4\nXO|OX\nXO|XX\nOX|OX\nXX|OX\n", "5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO\n" ]
[ "YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n", "NO\n", "YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO\n" ]
Note that the following is an incorrect configuration for the first sample case because the seats must be in the same pair. O+|+X XO|XX OX|OO XX|OX OO|OO OO|XX
500
[ { "input": "6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX", "output": "YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX" }, { "input": "4\nXO|OX\nXO|XX\nOX|OX\nXX|OX", "output": "NO" }, { "input": "5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO", "output": "YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO" }, { "input": "1\nXO|OX", "output": "NO" }, { "input": "1\nOO|OO", "output": "YES\n++|OO" }, { "input": "4\nXO|XX\nXX|XO\nOX|XX\nXO|XO", "output": "NO" }, { "input": "9\nOX|XO\nOX|XO\nXO|OX\nOX|OX\nXO|OX\nXX|OO\nOX|OX\nOX|XO\nOX|OX", "output": "YES\nOX|XO\nOX|XO\nXO|OX\nOX|OX\nXO|OX\nXX|++\nOX|OX\nOX|XO\nOX|OX" }, { "input": "61\nOX|XX\nOX|XX\nOX|XX\nXO|XO\nXX|XO\nXX|XX\nXX|XX\nOX|XX\nXO|XO\nOX|XO\nXO|OX\nXX|XX\nXX|XX\nOX|OX\nXX|OX\nOX|XO\nOX|XO\nXO|OX\nXO|XX\nOX|XX\nOX|XX\nXO|OX\nXO|XX\nXO|XX\nOX|XX\nXX|XX\nXX|XO\nXO|XX\nXX|XX\nXO|OX\nXX|XO\nXO|XX\nXO|XO\nXO|OX\nXX|OX\nXO|OX\nOX|XX\nXX|OX\nXX|XX\nOX|XO\nOX|XX\nXO|OX\nOX|XX\nOX|XX\nXO|XO\nXO|XX\nOX|XX\nXO|XO\nOX|XX\nXX|XX\nOX|XO\nXO|XO\nXO|XO\nOX|OX\nXX|OX\nXX|OX\nOX|XO\nOX|XX\nOX|OX\nXO|XX\nOX|XX", "output": "NO" }, { "input": "1\nOO|XX", "output": "YES\n++|XX" }, { "input": "10\nOO|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|XX", "output": "YES\n++|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|XX" }, { "input": "10\nXX|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|OO", "output": "YES\nXX|XX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXO|OX\nXX|++" }, { "input": "5\nXX|XX\nXX|XX\nXO|OX\nOO|OX\nOX|XO", "output": "YES\nXX|XX\nXX|XX\nXO|OX\n++|OX\nOX|XO" }, { "input": "6\nOO|XX\nXO|XX\nOX|OO\nXX|OX\nOO|XX\nOX|XX", "output": "YES\n++|XX\nXO|XX\nOX|OO\nXX|OX\nOO|XX\nOX|XX" } ]
1,690,371,019
2,147,483,647
Python 3
OK
TESTS
71
62
0
# LUOGU_RID: 117570787 n=int(input()) a=[] f=True for i in range(n): a.append(input()) if f and 'OO' in a[i]: c=a[i].split('|') if c[0]=='OO': c[0]='++' else: c[1]='++' a[i]=c[0]+'|'+c[1] f=False if not f: print('YES\n'+'\n'.join(a)) else: print('NO')
Title: Bus to Udayland Time Limit: None seconds Memory Limit: None megabytes Problem Description: ZS the Coder and Chris the Baboon are travelling to Udayland! To get there, they have to get on the special IOI bus. The IOI bus has *n* rows of seats. There are 4 seats in each row, and the seats are separated into pairs by a walkway. When ZS and Chris came, some places in the bus was already occupied. ZS and Chris are good friends. They insist to get a pair of neighbouring empty seats. Two seats are considered neighbouring if they are in the same row and in the same pair. Given the configuration of the bus, can you help ZS and Chris determine where they should sit? Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of rows of seats in the bus. Then, *n* lines follow. Each line contains exactly 5 characters, the first two of them denote the first pair of seats in the row, the third character denotes the walkway (it always equals '|') and the last two of them denote the second pair of seats in the row. Each character, except the walkway, equals to 'O' or to 'X'. 'O' denotes an empty seat, 'X' denotes an occupied seat. See the sample cases for more details. Output Specification: If it is possible for Chris and ZS to sit at neighbouring empty seats, print "YES" (without quotes) in the first line. In the next *n* lines print the bus configuration, where the characters in the pair of seats for Chris and ZS is changed with characters '+'. Thus the configuration should differ from the input one by exactly two charaters (they should be equal to 'O' in the input and to '+' in the output). If there is no pair of seats for Chris and ZS, print "NO" (without quotes) in a single line. If there are multiple solutions, you may print any of them. Demo Input: ['6\nOO|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n', '4\nXO|OX\nXO|XX\nOX|OX\nXX|OX\n', '5\nXX|XX\nXX|XX\nXO|OX\nXO|OO\nOX|XO\n'] Demo Output: ['YES\n++|OX\nXO|XX\nOX|OO\nXX|OX\nOO|OO\nOO|XX\n', 'NO\n', 'YES\nXX|XX\nXX|XX\nXO|OX\nXO|++\nOX|XO\n'] Note: Note that the following is an incorrect configuration for the first sample case because the seats must be in the same pair. O+|+X XO|XX OX|OO XX|OX OO|OO OO|XX
```python # LUOGU_RID: 117570787 n=int(input()) a=[] f=True for i in range(n): a.append(input()) if f and 'OO' in a[i]: c=a[i].split('|') if c[0]=='OO': c[0]='++' else: c[1]='++' a[i]=c[0]+'|'+c[1] f=False if not f: print('YES\n'+'\n'.join(a)) else: print('NO') ```
3
32
B
Borze
PROGRAMMING
800
[ "expression parsing", "implementation" ]
B. Borze
2
256
Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as «.», 1 as «-.» and 2 as «--». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet.
The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes).
Output the decoded ternary number. It can have leading zeroes.
[ ".-.--\n", "--.\n", "-..-.--\n" ]
[ "012", "20", "1012" ]
none
1,000
[ { "input": ".-.--", "output": "012" }, { "input": "--.", "output": "20" }, { "input": "-..-.--", "output": "1012" }, { "input": "---..", "output": "210" }, { "input": "..--.---..", "output": "0020210" }, { "input": "-.....----.", "output": "10000220" }, { "input": ".", "output": "0" }, { "input": "-.", "output": "1" }, { "input": "--", "output": "2" }, { "input": "..", "output": "00" }, { "input": "--.", "output": "20" }, { "input": ".--.", "output": "020" }, { "input": ".-.-..", "output": "0110" }, { "input": "----.-.", "output": "2201" }, { "input": "-..--.-.", "output": "10201" }, { "input": "..--..--.", "output": "0020020" }, { "input": "-.-.---.--..-..-.-.-..-..-.--.", "output": "112120010111010120" }, { "input": "---.-.-.------..-..-..-..-.-..-.--.-.-..-.-.-----..-.-.", "output": "21112220010101011012011011221011" }, { "input": "-.-..--.-.-.-.-.-..-.-.-.---------.--.---..--...--.-----.-.-.-...--.-.-.---.------.--..-.--.-----.-...-..------", "output": "11020111110111222212021020002022111100201121222020012022110010222" }, { "input": "-.-..-.--.---..---.-..---.-...-.-.----..-.---.-.---..-.--.---.-.-------.---.--....----.-.---.---.---.----.-----..---.-.-.-.-----.--.-------.-..", "output": "110120210211021100112200121121012021122212120000220121212122022102111122120222110" }, { "input": ".-..-.-.---.-----.--.---...-.--.-.-....-..", "output": "01011212212021001201100010" }, { "input": ".------.-.---..--...-..-..-.-.-.--.--.-..-.--...-.-.---.-.-.------..--..-.---..----.-..-.--.---.-.----.-.---...-.-.-.-----.-.-.---.---.-.....-.-...-----.-...-.---.-..-.-----.--...---.-.-..-.--.-.---..", "output": "022201210200010101112020101200011211122200200121022010120211220121001112211121211000011002211001211012212000211101201210" }, { "input": ".-.--.---.-----.-.-----.-.-..-----..-..----..--.-.--.----..---.---..-.-.-----..-------.----..----.-..---...-----..-..-----...-..-.-.-----....---..---..-.-----...-.--...--.-.---.-.-.-.-.-...---..----.", "output": "01202122112211102210102200201202200212101122102221220022010210022101022100101122100021021012210012000201211111100210220" }, { "input": "..-.-.-.---.-.-.-..-.-..-.-.---.-------.---..-----.---....-.---.--.--.-.---.---------.-..---.-.-.--..---.---.-.---.-.-..-.-..-.-.-.----.--.-....--------.-.---..----.------.-.-.--.--.-----.-----.----", "output": "0011121111011011212221210221210001212020121222211021112002121121110110111220201000222201210220222011202022122122" }, { "input": "-..-------.------.-..--.-.-..--.-.-..-----..-.-.-..-..-..--.---..-----..---..-..--.-..-.-.---...-.....-------.---.-----.-...-.-...-.-.---.---.-----.--.--...-.--..-.-..-...-.-.-.-.---..---.-..-.-.-.-..", "output": "102221222010201102011022101110101020210221021010201011210010000222121221100110011212122120200012001101001111210211011110" }, { "input": ".-.----.-.--..-.-.-.-..----..-.-...--.-.---.---.-------..-.--..-......--.------.--.----.--...-.--.--..-----..-.....--.--.-.-.------..--------.----------..-.---.----.---.-..--..-.....-..------.--.", "output": "012201200111102200110020121212221012001000002022202022020001202002210100002020112220022220222220012122021102001000010222020" }, { "input": "------.-----.-....--.-.----.-.---.-.-..---.-.---.-----..-...-.-.---..-.-.-..-.-.-...-.-.-.----..--.------.----.-..-.--...-.-------...-.-..-.-.--.--.---..--..--------.--.-.-.---.-.-.-...----.--..-.--..", "output": "222022110002012201211102112122101001121011101110011122002022202201012000122210011011202021020022220201121111002202001200" }, { "input": "-.---...----...--.--...-.--.----", "output": "121002200020200012022" }, { "input": "--.--.--.---.--.-.---.-.-..-..--.-..---.-.....-..---.-----.--...-.-.-------.-.--.-.----.-..-.------.", "output": "202020212012111010201021100001021221200011222112012201012220" } ]
1,649,600,148
2,147,483,647
Python 3
OK
TESTS
30
92
0
ch=input() ch1="." ch2="-." ch3="--" if(ch3 in ch): ch=ch.replace(ch3,'2') if(ch2 in ch): ch=ch.replace(ch2,'1') if(ch1 in ch): ch=ch.replace(ch1,'0') print(ch)
Title: Borze Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Ternary numeric notation is quite popular in Berland. To telegraph the ternary number the Borze alphabet is used. Digit 0 is transmitted as «.», 1 as «-.» and 2 as «--». You are to decode the Borze code, i.e. to find out the ternary number given its representation in Borze alphabet. Input Specification: The first line contains a number in Borze code. The length of the string is between 1 and 200 characters. It's guaranteed that the given string is a valid Borze code of some ternary number (this number can have leading zeroes). Output Specification: Output the decoded ternary number. It can have leading zeroes. Demo Input: ['.-.--\n', '--.\n', '-..-.--\n'] Demo Output: ['012', '20', '1012'] Note: none
```python ch=input() ch1="." ch2="-." ch3="--" if(ch3 in ch): ch=ch.replace(ch3,'2') if(ch2 in ch): ch=ch.replace(ch2,'1') if(ch1 in ch): ch=ch.replace(ch1,'0') print(ch) ```
3.977
635
A
Orchestra
PROGRAMMING
1,100
[ "brute force", "implementation" ]
null
null
Paul is at the orchestra. The string section is arranged in an *r*<=×<=*c* rectangular grid and is filled with violinists with the exception of *n* violists. Paul really likes violas, so he would like to take a picture including at least *k* of them. Paul can take a picture of any axis-parallel rectangle in the orchestra. Count the number of possible pictures that Paul can take. Two pictures are considered to be different if the coordinates of corresponding rectangles are different.
The first line of input contains four space-separated integers *r*, *c*, *n*, *k* (1<=≤<=*r*,<=*c*,<=*n*<=≤<=10, 1<=≤<=*k*<=≤<=*n*) — the number of rows and columns of the string section, the total number of violas, and the minimum number of violas Paul would like in his photograph, respectively. The next *n* lines each contain two integers *x**i* and *y**i* (1<=≤<=*x**i*<=≤<=*r*, 1<=≤<=*y**i*<=≤<=*c*): the position of the *i*-th viola. It is guaranteed that no location appears more than once in the input.
Print a single integer — the number of photographs Paul can take which include at least *k* violas.
[ "2 2 1 1\n1 2\n", "3 2 3 3\n1 1\n3 1\n2 2\n", "3 2 3 2\n1 1\n3 1\n2 2\n" ]
[ "4\n", "1\n", "4\n" ]
We will use '*' to denote violinists and '#' to denote violists. In the first sample, the orchestra looks as follows In the second sample, the orchestra looks as follows In the third sample, the orchestra looks the same as in the second sample.
500
[ { "input": "2 2 1 1\n1 2", "output": "4" }, { "input": "3 2 3 3\n1 1\n3 1\n2 2", "output": "1" }, { "input": "3 2 3 2\n1 1\n3 1\n2 2", "output": "4" }, { "input": "1 1 1 1\n1 1", "output": "1" }, { "input": "10 10 10 10\n6 1\n3 8\n10 6\n10 3\n10 4\n8 9\n2 3\n5 7\n5 9\n5 1", "output": "4" }, { "input": "10 10 10 1\n8 2\n9 10\n6 8\n10 7\n1 8\n4 4\n6 3\n2 3\n8 8\n7 2", "output": "2073" }, { "input": "5 9 2 2\n4 6\n1 5", "output": "40" }, { "input": "6 4 10 2\n2 3\n2 1\n1 2\n6 1\n1 4\n4 4\n2 4\n1 1\n6 3\n4 2", "output": "103" }, { "input": "8 2 4 4\n3 2\n3 1\n2 2\n7 1", "output": "4" }, { "input": "2 6 2 2\n1 2\n1 5", "output": "8" }, { "input": "7 5 3 1\n5 5\n4 5\n1 4", "output": "135" }, { "input": "10 10 10 6\n3 4\n10 9\n6 5\n4 9\n2 10\n10 10\n9 8\n8 2\n5 6\n1 5", "output": "78" }, { "input": "10 10 10 4\n5 7\n9 7\n5 8\n3 7\n8 9\n6 10\n3 2\n10 8\n4 1\n8 10", "output": "414" }, { "input": "10 10 10 1\n8 10\n2 9\n1 10\n3 1\n8 5\n10 1\n4 10\n10 2\n5 3\n9 3", "output": "1787" }, { "input": "10 10 10 3\n2 7\n6 3\n10 2\n2 4\n7 8\n1 2\n3 1\n7 6\n6 8\n9 7", "output": "751" }, { "input": "10 10 10 2\n4 4\n1 7\n10 5\n2 8\n5 5\n6 9\n7 3\n9 5\n5 3\n6 6", "output": "1416" }, { "input": "10 10 10 10\n8 2\n1 4\n9 9\n5 2\n1 7\n1 5\n3 10\n6 9\n7 8\n3 3", "output": "4" }, { "input": "10 10 10 10\n1 9\n5 2\n5 1\n8 5\n9 10\n10 2\n5 4\n4 3\n3 6\n1 5", "output": "1" }, { "input": "10 10 10 10\n5 6\n4 4\n8 9\n5 7\n9 2\n6 4\n7 3\n6 10\n10 3\n3 8", "output": "6" }, { "input": "10 10 10 1\n9 3\n7 5\n8 2\n3 8\n1 6\n3 9\n7 3\n10 4\n5 3\n1 3", "output": "1987" }, { "input": "10 10 10 1\n1 10\n10 8\n7 4\n7 2\n1 3\n6 6\n10 1\n2 7\n9 3\n3 10", "output": "1991" }, { "input": "10 10 10 1\n4 5\n9 6\n3 6\n6 10\n5 2\n1 7\n4 9\n10 8\n8 1\n2 9", "output": "2082" } ]
1,621,187,060
2,147,483,647
PyPy 3
OK
TESTS
22
140
3,686,400
f = lambda: map(int, input().split()) r, c, n, k = f() t = [list(f()) for i in range(n)] s = 0 for i in range(1, r + 1): for j in range(i, r + 1): for u in range(1, c + 1): for v in range(u, c + 1): s += sum([i <= x <= j and u <= y <= v for x, y in t]) >= k print(s)
Title: Orchestra Time Limit: None seconds Memory Limit: None megabytes Problem Description: Paul is at the orchestra. The string section is arranged in an *r*<=×<=*c* rectangular grid and is filled with violinists with the exception of *n* violists. Paul really likes violas, so he would like to take a picture including at least *k* of them. Paul can take a picture of any axis-parallel rectangle in the orchestra. Count the number of possible pictures that Paul can take. Two pictures are considered to be different if the coordinates of corresponding rectangles are different. Input Specification: The first line of input contains four space-separated integers *r*, *c*, *n*, *k* (1<=≤<=*r*,<=*c*,<=*n*<=≤<=10, 1<=≤<=*k*<=≤<=*n*) — the number of rows and columns of the string section, the total number of violas, and the minimum number of violas Paul would like in his photograph, respectively. The next *n* lines each contain two integers *x**i* and *y**i* (1<=≤<=*x**i*<=≤<=*r*, 1<=≤<=*y**i*<=≤<=*c*): the position of the *i*-th viola. It is guaranteed that no location appears more than once in the input. Output Specification: Print a single integer — the number of photographs Paul can take which include at least *k* violas. Demo Input: ['2 2 1 1\n1 2\n', '3 2 3 3\n1 1\n3 1\n2 2\n', '3 2 3 2\n1 1\n3 1\n2 2\n'] Demo Output: ['4\n', '1\n', '4\n'] Note: We will use '*' to denote violinists and '#' to denote violists. In the first sample, the orchestra looks as follows In the second sample, the orchestra looks as follows In the third sample, the orchestra looks the same as in the second sample.
```python f = lambda: map(int, input().split()) r, c, n, k = f() t = [list(f()) for i in range(n)] s = 0 for i in range(1, r + 1): for j in range(i, r + 1): for u in range(1, c + 1): for v in range(u, c + 1): s += sum([i <= x <= j and u <= y <= v for x, y in t]) >= k print(s) ```
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* — 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 ​​*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<=≤<=*n*<=≤<=105) — the number of cities in Lineland. The second line contains the sequence of *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (<=-<=109<=≤<=*x**i*<=≤<=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" } ]
1,638,452,055
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
15
0
n = int(input()) ox = [int(x) for x in input().split()] minn= 0 maxx = 0 for i in range(n): minn = ox[0] maxx = ox[-1] if i == 0: minn = ox[1] if i == n - 1: maxx = ox[n-2] min_d = ox[i] - minn max_d = ox[i] - maxx if ox[i] < min_d: min_d = abs(min_d) if ox[i] < mix_d: mix_d = abs(mix_d) if min_d < max_d: max_d, min_d = min_d, max_d print(min_d, max_d)
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* — 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 ​​*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<=≤<=*n*<=≤<=105) — the number of cities in Lineland. The second line contains the sequence of *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (<=-<=109<=≤<=*x**i*<=≤<=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()) ox = [int(x) for x in input().split()] minn= 0 maxx = 0 for i in range(n): minn = ox[0] maxx = ox[-1] if i == 0: minn = ox[1] if i == n - 1: maxx = ox[n-2] min_d = ox[i] - minn max_d = ox[i] - maxx if ox[i] < min_d: min_d = abs(min_d) if ox[i] < mix_d: mix_d = abs(mix_d) if min_d < max_d: max_d, min_d = min_d, max_d print(min_d, max_d) ```
-1
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,589,655,386
2,147,483,647
Python 3
OK
TESTS
30
186
6,656,000
s1 = input() up = low = 0 for i in s1: if i.isupper(): up += 1 else: low += 1 if(low >= up): print(s1.lower()) else: print(s1.upper())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python s1 = input() up = low = 0 for i in s1: if i.isupper(): up += 1 else: low += 1 if(low >= up): print(s1.lower()) else: print(s1.upper()) ```
3.941102
331
C1
The Great Julya Calendar
PROGRAMMING
1,100
[ "dp" ]
null
null
Yet another Armageddon is coming! This time the culprit is the Julya tribe calendar. The beavers in this tribe knew math very well. Smart Beaver, an archaeologist, got a sacred plate with a magic integer on it. The translation from Old Beaverish is as follows: "May the Great Beaver bless you! May your chacres open and may your third eye never turn blind from beholding the Truth! Take the magic number, subtract a digit from it (the digit must occur in the number) and get a new magic number. Repeat this operation until a magic number equals zero. The Earth will stand on Three Beavers for the time, equal to the number of subtractions you perform!" Distinct subtraction sequences can obviously get you different number of operations. But the Smart Beaver is ready to face the worst and is asking you to count the minimum number of operations he needs to reduce the magic number to zero.
The single line contains the magic integer *n*, 0<=≤<=*n*. - to get 20 points, you need to solve the problem with constraints: *n*<=≤<=106 (subproblem C1); - to get 40 points, you need to solve the problem with constraints: *n*<=≤<=1012 (subproblems C1+C2); - to get 100 points, you need to solve the problem with constraints: *n*<=≤<=1018 (subproblems C1+C2+C3).
Print a single integer — the minimum number of subtractions that turns the magic number to a zero.
[ "24\n" ]
[ "5" ]
In the first test sample the minimum number of operations can be reached by the following sequence of subtractions:
20
[ { "input": "24", "output": "5" }, { "input": "0", "output": "0" }, { "input": "3", "output": "1" }, { "input": "8", "output": "1" }, { "input": "9", "output": "1" }, { "input": "10", "output": "2" }, { "input": "31", "output": "6" }, { "input": "701", "output": "116" }, { "input": "222", "output": "39" }, { "input": "156", "output": "28" }, { "input": "12343", "output": "1778" }, { "input": "7984", "output": "1178" }, { "input": "1000000", "output": "128207" }, { "input": "1", "output": "1" }, { "input": "3", "output": "1" }, { "input": "5", "output": "1" }, { "input": "11", "output": "3" }, { "input": "77", "output": "14" }, { "input": "216", "output": "37" }, { "input": "1468", "output": "233" }, { "input": "1995", "output": "305" }, { "input": "11010", "output": "1568" }, { "input": "47320", "output": "6746" }, { "input": "258634", "output": "35024" } ]
1,671,976,911
2,147,483,647
Python 3
OK
TESTS1
24
404
0
n=int(input()) c=0 while(n!=0): n=n-int(max(list(str(n)))) # print(n) c=c+1 print(c)
Title: The Great Julya Calendar Time Limit: None seconds Memory Limit: None megabytes Problem Description: Yet another Armageddon is coming! This time the culprit is the Julya tribe calendar. The beavers in this tribe knew math very well. Smart Beaver, an archaeologist, got a sacred plate with a magic integer on it. The translation from Old Beaverish is as follows: "May the Great Beaver bless you! May your chacres open and may your third eye never turn blind from beholding the Truth! Take the magic number, subtract a digit from it (the digit must occur in the number) and get a new magic number. Repeat this operation until a magic number equals zero. The Earth will stand on Three Beavers for the time, equal to the number of subtractions you perform!" Distinct subtraction sequences can obviously get you different number of operations. But the Smart Beaver is ready to face the worst and is asking you to count the minimum number of operations he needs to reduce the magic number to zero. Input Specification: The single line contains the magic integer *n*, 0<=≤<=*n*. - to get 20 points, you need to solve the problem with constraints: *n*<=≤<=106 (subproblem C1); - to get 40 points, you need to solve the problem with constraints: *n*<=≤<=1012 (subproblems C1+C2); - to get 100 points, you need to solve the problem with constraints: *n*<=≤<=1018 (subproblems C1+C2+C3). Output Specification: Print a single integer — the minimum number of subtractions that turns the magic number to a zero. Demo Input: ['24\n'] Demo Output: ['5'] Note: In the first test sample the minimum number of operations can be reached by the following sequence of subtractions:
```python n=int(input()) c=0 while(n!=0): n=n-int(max(list(str(n)))) # print(n) c=c+1 print(c) ```
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" } ]
1,589,895,443
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
0
93
0
a='hello' i=0 str= input() for j in str: if j==a[i]: i+=1 if i==len(a): print ('yes') break if(i!=len(a)): 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 a='hello' i=0 str= input() for j in str: if j==a[i]: i+=1 if i==len(a): print ('yes') break if(i!=len(a)): print('no') ```
0
939
A
Love Triangle
PROGRAMMING
800
[ "graphs" ]
null
null
As you could know there are no male planes nor female planes. However, each plane on Earth likes some other plane. There are *n* planes on Earth, numbered from 1 to *n*, and the plane with number *i* likes the plane with number *f**i*, where 1<=≤<=*f**i*<=≤<=*n* and *f**i*<=≠<=*i*. We call a love triangle a situation in which plane *A* likes plane *B*, plane *B* likes plane *C* and plane *C* likes plane *A*. Find out if there is any love triangle on Earth.
The first line contains a single integer *n* (2<=≤<=*n*<=≤<=5000) — the number of planes. The second line contains *n* integers *f*1,<=*f*2,<=...,<=*f**n* (1<=≤<=*f**i*<=≤<=*n*, *f**i*<=≠<=*i*), meaning that the *i*-th plane likes the *f**i*-th.
Output «YES» if there is a love triangle consisting of planes on Earth. Otherwise, output «NO». You can output any letter in lower case or in upper case.
[ "5\n2 4 5 1 3\n", "5\n5 5 5 5 1\n" ]
[ "YES\n", "NO\n" ]
In first example plane 2 likes plane 4, plane 4 likes plane 1, plane 1 likes plane 2 and that is a love triangle. In second example there are no love triangles.
500
[ { "input": "5\n2 4 5 1 3", "output": "YES" }, { "input": "5\n5 5 5 5 1", "output": "NO" }, { "input": "3\n3 1 2", "output": "YES" }, { "input": "10\n4 10 9 5 3 1 5 10 6 4", "output": "NO" }, { "input": "10\n5 5 4 9 10 9 9 5 3 1", "output": "YES" }, { "input": "100\n50 40 60 87 39 58 44 84 46 68 16 57 77 87 92 95 42 31 74 15 36 84 30 3 47 15 87 90 76 66 6 63 74 19 40 49 6 84 41 9 77 34 7 12 11 73 58 24 81 14 81 29 65 100 1 85 64 32 38 4 54 67 32 81 80 7 100 71 29 80 4 52 47 7 78 56 52 75 81 37 16 41 27 28 58 60 62 47 29 40 37 14 59 91 12 54 25 58 12 43", "output": "NO" }, { "input": "100\n25 6 46 37 87 99 70 31 46 12 94 40 87 56 28 8 94 39 13 12 67 13 71 39 83 48 40 14 62 41 16 71 20 41 83 41 68 98 23 82 62 83 62 35 49 22 31 21 66 98 54 39 34 52 11 28 47 89 25 44 68 36 91 46 82 86 88 48 27 93 7 9 53 36 16 100 84 84 44 25 58 66 16 46 72 21 91 78 4 17 44 17 47 67 93 89 75 44 56 50", "output": "YES" }, { "input": "2\n2 1", "output": "NO" }, { "input": "3\n2 3 1", "output": "YES" }, { "input": "5\n2 1 4 5 3", "output": "YES" }, { "input": "5\n5 4 5 5 2", "output": "YES" } ]
1,670,698,004
2,147,483,647
PyPy 3-64
OK
TESTS
16
62
1,945,600
n=int(input()) r=0 a=[int(i)for i in input().split()] for i in range(n): g=a[a[i]-1] h=a[g-1] if h-1==i: r=1 if r==1: print("YES") else: print("NO")
Title: Love Triangle Time Limit: None seconds Memory Limit: None megabytes Problem Description: As you could know there are no male planes nor female planes. However, each plane on Earth likes some other plane. There are *n* planes on Earth, numbered from 1 to *n*, and the plane with number *i* likes the plane with number *f**i*, where 1<=≤<=*f**i*<=≤<=*n* and *f**i*<=≠<=*i*. We call a love triangle a situation in which plane *A* likes plane *B*, plane *B* likes plane *C* and plane *C* likes plane *A*. Find out if there is any love triangle on Earth. Input Specification: The first line contains a single integer *n* (2<=≤<=*n*<=≤<=5000) — the number of planes. The second line contains *n* integers *f*1,<=*f*2,<=...,<=*f**n* (1<=≤<=*f**i*<=≤<=*n*, *f**i*<=≠<=*i*), meaning that the *i*-th plane likes the *f**i*-th. Output Specification: Output «YES» if there is a love triangle consisting of planes on Earth. Otherwise, output «NO». You can output any letter in lower case or in upper case. Demo Input: ['5\n2 4 5 1 3\n', '5\n5 5 5 5 1\n'] Demo Output: ['YES\n', 'NO\n'] Note: In first example plane 2 likes plane 4, plane 4 likes plane 1, plane 1 likes plane 2 and that is a love triangle. In second example there are no love triangles.
```python n=int(input()) r=0 a=[int(i)for i in input().split()] for i in range(n): g=a[a[i]-1] h=a[g-1] if h-1==i: r=1 if r==1: print("YES") else: print("NO") ```
3
510
B
Fox And Two Dots
PROGRAMMING
1,500
[ "dfs and similar" ]
null
null
Fox Ciel is playing a mobile puzzle game called "Two Dots". The basic levels are played on a board of size *n*<=×<=*m* cells, like this: Each cell contains a dot that has some color. We will use different uppercase Latin characters to express different colors. The key of this game is to find a cycle that contain dots of same color. Consider 4 blue dots on the picture forming a circle as an example. Formally, we call a sequence of dots *d*1,<=*d*2,<=...,<=*d**k* a cycle if and only if it meets the following condition: 1. These *k* dots are different: if *i*<=≠<=*j* then *d**i* is different from *d**j*. 1. *k* is at least 4. 1. All dots belong to the same color. 1. For all 1<=≤<=*i*<=≤<=*k*<=-<=1: *d**i* and *d**i*<=+<=1 are adjacent. Also, *d**k* and *d*1 should also be adjacent. Cells *x* and *y* are called adjacent if they share an edge. Determine if there exists a cycle on the field.
The first line contains two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50): the number of rows and columns of the board. Then *n* lines follow, each line contains a string consisting of *m* characters, expressing colors of dots in each line. Each character is an uppercase Latin letter.
Output "Yes" if there exists a cycle, and "No" otherwise.
[ "3 4\nAAAA\nABCA\nAAAA\n", "3 4\nAAAA\nABCA\nAADA\n", "4 4\nYYYR\nBYBY\nBBBY\nBBBY\n", "7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB\n", "2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ\n" ]
[ "Yes\n", "No\n", "Yes\n", "Yes\n", "No\n" ]
In first sample test all 'A' form a cycle. In second sample there is no such cycle. The third sample is displayed on the picture above ('Y' = Yellow, 'B' = Blue, 'R' = Red).
1,000
[ { "input": "3 4\nAAAA\nABCA\nAAAA", "output": "Yes" }, { "input": "3 4\nAAAA\nABCA\nAADA", "output": "No" }, { "input": "4 4\nYYYR\nBYBY\nBBBY\nBBBY", "output": "Yes" }, { "input": "7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB", "output": "Yes" }, { "input": "2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ", "output": "No" }, { "input": "2 2\nAA\nAA", "output": "Yes" }, { "input": "2 2\nAA\nAB", "output": "No" }, { "input": "3 3\nAAA\nABA\nAAA", "output": "Yes" }, { "input": "3 3\nAAA\nABA\nABA", "output": "No" }, { "input": "10 10\nEGFJGJKGEI\nAKJHBGHIHF\nJBABBCFGEJ\nCJDJHJJKBD\nKHJIKKGGEK\nHHJHKHGEKF\nEKFCAJGGDK\nAFKBBFICAA\nFEDFAGHEKA\nCAAGIFHGGI", "output": "No" }, { "input": "10 10\nHIICQRHPUJ\nBCDUKHMBFK\nPFTUIDOBOE\nQQPITLRKUP\nERMUJMOSMF\nMRSICEILQB\nODIGFNCHFR\nGHIOAFLHJH\nFBLAQNGEIF\nFDLEGDUTNG", "output": "No" }, { "input": "2 50\nDADCDBCCDAACDBCAACADBCBDBACCCCDADCBACADBCCBDBCCBCC\nDADAADCABBBACCDDBABBBDCBACBCCCCDDADCDABADDDCABACDB", "output": "Yes" }, { "input": "50 2\nAA\nCD\nEE\nFC\nED\nAF\nFC\nAD\nBA\nAF\nBF\nDA\nAC\nFC\nFA\nBF\nAD\nBB\nDC\nAF\nAA\nAD\nEE\nED\nCD\nFC\nFB\nBB\nDD\nEB\nBE\nCF\nDE\nAE\nFD\nAB\nFB\nAE\nBE\nFA\nCF\nFB\nDE\nED\nAD\nFA\nBB\nBF\nDA\nEE", "output": "No" } ]
1,682,265,212
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
9
62
0
n = 50 vis = [[False] * n for _ in range(n)] tab = [[''] * n for _ in range(n)] dx = [1, -1, 0, 0] dy = [0, 0, 1, -1] def dfs(i, j, pi, pj): vis[i][j] = True for c in range(4): di = i + dx[c] dj = j + dy[c] if di > n or di < 0 or dj > n or dj < 0: continue if tab[di][dj] != tab[i][j]: continue if vis[di][dj] and (di != pi or dj != pj): return True if not vis[di][dj] and dfs(di, dj, i, j): return True return False def isCycle(): for i in range(n): for j in range(m): if not vis[i][j]: if dfs(i, j, -1, -1): return True return False n, m = map(int, input().split()) for i in range(n): row = input().strip('') for j in range(m): tab[i][j] = row[j] if isCycle(): print("Yes") else: print("No")
Title: Fox And Two Dots Time Limit: None seconds Memory Limit: None megabytes Problem Description: Fox Ciel is playing a mobile puzzle game called "Two Dots". The basic levels are played on a board of size *n*<=×<=*m* cells, like this: Each cell contains a dot that has some color. We will use different uppercase Latin characters to express different colors. The key of this game is to find a cycle that contain dots of same color. Consider 4 blue dots on the picture forming a circle as an example. Formally, we call a sequence of dots *d*1,<=*d*2,<=...,<=*d**k* a cycle if and only if it meets the following condition: 1. These *k* dots are different: if *i*<=≠<=*j* then *d**i* is different from *d**j*. 1. *k* is at least 4. 1. All dots belong to the same color. 1. For all 1<=≤<=*i*<=≤<=*k*<=-<=1: *d**i* and *d**i*<=+<=1 are adjacent. Also, *d**k* and *d*1 should also be adjacent. Cells *x* and *y* are called adjacent if they share an edge. Determine if there exists a cycle on the field. Input Specification: The first line contains two integers *n* and *m* (2<=≤<=*n*,<=*m*<=≤<=50): the number of rows and columns of the board. Then *n* lines follow, each line contains a string consisting of *m* characters, expressing colors of dots in each line. Each character is an uppercase Latin letter. Output Specification: Output "Yes" if there exists a cycle, and "No" otherwise. Demo Input: ['3 4\nAAAA\nABCA\nAAAA\n', '3 4\nAAAA\nABCA\nAADA\n', '4 4\nYYYR\nBYBY\nBBBY\nBBBY\n', '7 6\nAAAAAB\nABBBAB\nABAAAB\nABABBB\nABAAAB\nABBBAB\nAAAAAB\n', '2 13\nABCDEFGHIJKLM\nNOPQRSTUVWXYZ\n'] Demo Output: ['Yes\n', 'No\n', 'Yes\n', 'Yes\n', 'No\n'] Note: In first sample test all 'A' form a cycle. In second sample there is no such cycle. The third sample is displayed on the picture above ('Y' = Yellow, 'B' = Blue, 'R' = Red).
```python n = 50 vis = [[False] * n for _ in range(n)] tab = [[''] * n for _ in range(n)] dx = [1, -1, 0, 0] dy = [0, 0, 1, -1] def dfs(i, j, pi, pj): vis[i][j] = True for c in range(4): di = i + dx[c] dj = j + dy[c] if di > n or di < 0 or dj > n or dj < 0: continue if tab[di][dj] != tab[i][j]: continue if vis[di][dj] and (di != pi or dj != pj): return True if not vis[di][dj] and dfs(di, dj, i, j): return True return False def isCycle(): for i in range(n): for j in range(m): if not vis[i][j]: if dfs(i, j, -1, -1): return True return False n, m = map(int, input().split()) for i in range(n): row = input().strip('') for j in range(m): tab[i][j] = row[j] if isCycle(): print("Yes") else: print("No") ```
-1
69
A
Young Physicist
PROGRAMMING
1,000
[ "implementation", "math" ]
A. Young Physicist
2
256
A guy named Vasya attends the final grade of a high school. One day Vasya decided to watch a match of his favorite hockey team. And, as the boy loves hockey very much, even more than physics, he forgot to do the homework. Specifically, he forgot to complete his physics tasks. Next day the teacher got very angry at Vasya and decided to teach him a lesson. He gave the lazy student a seemingly easy task: You are given an idle body in space and the forces that affect it. The body can be considered as a material point with coordinates (0; 0; 0). Vasya had only to answer whether it is in equilibrium. "Piece of cake" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces.
The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100).
Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not.
[ "3\n4 1 7\n-2 4 -1\n1 -5 -3\n", "3\n3 -1 7\n-5 2 -4\n2 -1 -3\n" ]
[ "NO", "YES" ]
none
500
[ { "input": "3\n4 1 7\n-2 4 -1\n1 -5 -3", "output": "NO" }, { "input": "3\n3 -1 7\n-5 2 -4\n2 -1 -3", "output": "YES" }, { "input": "10\n21 32 -46\n43 -35 21\n42 2 -50\n22 40 20\n-27 -9 38\n-4 1 1\n-40 6 -31\n-13 -2 34\n-21 34 -12\n-32 -29 41", "output": "NO" }, { "input": "10\n25 -33 43\n-27 -42 28\n-35 -20 19\n41 -42 -1\n49 -39 -4\n-49 -22 7\n-19 29 41\n8 -27 -43\n8 34 9\n-11 -3 33", "output": "NO" }, { "input": "10\n-6 21 18\n20 -11 -8\n37 -11 41\n-5 8 33\n29 23 32\n30 -33 -11\n39 -49 -36\n28 34 -49\n22 29 -34\n-18 -6 7", "output": "NO" }, { "input": "10\n47 -2 -27\n0 26 -14\n5 -12 33\n2 18 3\n45 -30 -49\n4 -18 8\n-46 -44 -41\n-22 -10 -40\n-35 -21 26\n33 20 38", "output": "NO" }, { "input": "13\n-3 -36 -46\n-11 -50 37\n42 -11 -15\n9 42 44\n-29 -12 24\n3 9 -40\n-35 13 50\n14 43 18\n-13 8 24\n-48 -15 10\n50 9 -50\n21 0 -50\n0 0 -6", "output": "YES" }, { "input": "14\n43 23 17\n4 17 44\n5 -5 -16\n-43 -7 -6\n47 -48 12\n50 47 -45\n2 14 43\n37 -30 15\n4 -17 -11\n17 9 -45\n-50 -3 -8\n-50 0 0\n-50 0 0\n-16 0 0", "output": "YES" }, { "input": "13\n29 49 -11\n38 -11 -20\n25 1 -40\n-11 28 11\n23 -19 1\n45 -41 -17\n-3 0 -19\n-13 -33 49\n-30 0 28\n34 17 45\n-50 9 -27\n-50 0 0\n-37 0 0", "output": "YES" }, { "input": "12\n3 28 -35\n-32 -44 -17\n9 -25 -6\n-42 -22 20\n-19 15 38\n-21 38 48\n-1 -37 -28\n-10 -13 -50\n-5 21 29\n34 28 50\n50 11 -49\n34 0 0", "output": "YES" }, { "input": "37\n-64 -79 26\n-22 59 93\n-5 39 -12\n77 -9 76\n55 -86 57\n83 100 -97\n-70 94 84\n-14 46 -94\n26 72 35\n14 78 -62\n17 82 92\n-57 11 91\n23 15 92\n-80 -1 1\n12 39 18\n-23 -99 -75\n-34 50 19\n-39 84 -7\n45 -30 -39\n-60 49 37\n45 -16 -72\n33 -51 -56\n-48 28 5\n97 91 88\n45 -82 -11\n-21 -15 -90\n-53 73 -26\n-74 85 -90\n-40 23 38\n100 -13 49\n32 -100 -100\n0 -100 -70\n0 -100 0\n0 -100 0\n0 -100 0\n0 -100 0\n0 -37 0", "output": "YES" }, { "input": "4\n68 3 100\n68 21 -100\n-100 -24 0\n-36 0 0", "output": "YES" }, { "input": "33\n-1 -46 -12\n45 -16 -21\n-11 45 -21\n-60 -42 -93\n-22 -45 93\n37 96 85\n-76 26 83\n-4 9 55\n7 -52 -9\n66 8 -85\n-100 -54 11\n-29 59 74\n-24 12 2\n-56 81 85\n-92 69 -52\n-26 -97 91\n54 59 -51\n58 21 -57\n7 68 56\n-47 -20 -51\n-59 77 -13\n-85 27 91\n79 60 -56\n66 -80 5\n21 -99 42\n-31 -29 98\n66 93 76\n-49 45 61\n100 -100 -100\n100 -100 -100\n66 -75 -100\n0 0 -100\n0 0 -87", "output": "YES" }, { "input": "3\n1 2 3\n3 2 1\n0 0 0", "output": "NO" }, { "input": "2\n5 -23 12\n0 0 0", "output": "NO" }, { "input": "1\n0 0 0", "output": "YES" }, { "input": "1\n1 -2 0", "output": "NO" }, { "input": "2\n-23 77 -86\n23 -77 86", "output": "YES" }, { "input": "26\n86 7 20\n-57 -64 39\n-45 6 -93\n-44 -21 100\n-11 -49 21\n73 -71 -80\n-2 -89 56\n-65 -2 7\n5 14 84\n57 41 13\n-12 69 54\n40 -25 27\n-17 -59 0\n64 -91 -30\n-53 9 42\n-54 -8 14\n-35 82 27\n-48 -59 -80\n88 70 79\n94 57 97\n44 63 25\n84 -90 -40\n-100 100 -100\n-92 100 -100\n0 10 -100\n0 0 -82", "output": "YES" }, { "input": "42\n11 27 92\n-18 -56 -57\n1 71 81\n33 -92 30\n82 83 49\n-87 -61 -1\n-49 45 49\n73 26 15\n-22 22 -77\n29 -93 87\n-68 44 -90\n-4 -84 20\n85 67 -6\n-39 26 77\n-28 -64 20\n65 -97 24\n-72 -39 51\n35 -75 -91\n39 -44 -8\n-25 -27 -57\n91 8 -46\n-98 -94 56\n94 -60 59\n-9 -95 18\n-53 -37 98\n-8 -94 -84\n-52 55 60\n15 -14 37\n65 -43 -25\n94 12 66\n-8 -19 -83\n29 81 -78\n-58 57 33\n24 86 -84\n-53 32 -88\n-14 7 3\n89 97 -53\n-5 -28 -91\n-100 100 -6\n-84 100 0\n0 100 0\n0 70 0", "output": "YES" }, { "input": "3\n96 49 -12\n2 -66 28\n-98 17 -16", "output": "YES" }, { "input": "5\n70 -46 86\n-100 94 24\n-27 63 -63\n57 -100 -47\n0 -11 0", "output": "YES" }, { "input": "18\n-86 -28 70\n-31 -89 42\n31 -48 -55\n95 -17 -43\n24 -95 -85\n-21 -14 31\n68 -18 81\n13 31 60\n-15 28 99\n-42 15 9\n28 -61 -62\n-16 71 29\n-28 75 -48\n-77 -67 36\n-100 83 89\n100 100 -100\n57 34 -100\n0 0 -53", "output": "YES" }, { "input": "44\n52 -54 -29\n-82 -5 -94\n-54 43 43\n91 16 71\n7 80 -91\n3 15 29\n-99 -6 -77\n-3 -77 -64\n73 67 34\n25 -10 -18\n-29 91 63\n-72 86 -16\n-68 85 -81\n-3 36 44\n-74 -14 -80\n34 -96 -97\n-76 -78 -33\n-24 44 -58\n98 12 77\n95 -63 -6\n-51 3 -90\n-92 -10 72\n7 3 -68\n57 -53 71\n29 57 -48\n35 -60 10\n79 -70 -61\n-20 77 55\n-86 -15 -35\n84 -88 -18\n100 -42 77\n-20 46 8\n-41 -43 -65\n38 -98 -23\n-100 65 45\n-7 -91 -63\n46 88 -85\n48 59 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 100\n0 0 1", "output": "YES" }, { "input": "18\n-14 -64 -91\n-8 -66 -86\n-23 92 -40\n6 -3 -53\n57 41 78\n-79 42 -22\n-88 -17 45\n4 -45 44\n83 -18 -25\n34 86 -92\n75 -30 12\n44 99 11\n-67 -13 72\n22 83 -56\n-37 71 72\n-9 -100 100\n0 -100 31\n0 -58 0", "output": "YES" }, { "input": "23\n-70 37 78\n42 84 6\n28 -94 -24\n-49 76 95\n-67 18 84\n-53 78 -5\n65 -63 -64\n-66 -64 -69\n81 -93 95\n10 52 -79\n-89 -61 -64\n-64 -47 43\n-81 -35 55\n80 82 73\n-60 -81 -18\n49 -10 -19\n-58 70 12\n-24 -15 -93\n98 -93 -54\n-28 -75 11\n100 100 -63\n100 100 0\n56 34 0", "output": "YES" }, { "input": "3\n0 2 -2\n1 -1 3\n-3 0 0", "output": "NO" } ]
1,636,603,434
2,147,483,647
Python 3
OK
TESTS
81
124
4,505,600
n=int(input()) l=[] s=0 c=0 for i in range(n): l.append(list(map(int,input().split()))) for k in range(3): for j in range(n): s+=l[j][k] c+=s if(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" — thought Vasya, we need only to check if the sum of all vectors is equal to 0. So, Vasya began to solve the problem. But later it turned out that there can be lots and lots of these forces, and Vasya can not cope without your help. Help him. Write a program that determines whether a body is idle or is moving by the given vectors of forces. Input Specification: The first line contains a positive integer *n* (1<=≤<=*n*<=≤<=100), then follow *n* lines containing three integers each: the *x**i* coordinate, the *y**i* coordinate and the *z**i* coordinate of the force vector, applied to the body (<=-<=100<=≤<=*x**i*,<=*y**i*,<=*z**i*<=≤<=100). Output Specification: Print the word "YES" if the body is in equilibrium, or the word "NO" if it is not. Demo Input: ['3\n4 1 7\n-2 4 -1\n1 -5 -3\n', '3\n3 -1 7\n-5 2 -4\n2 -1 -3\n'] Demo Output: ['NO', 'YES'] Note: none
```python n=int(input()) l=[] s=0 c=0 for i in range(n): l.append(list(map(int,input().split()))) for k in range(3): for j in range(n): s+=l[j][k] c+=s if(c==0): print("YES") else: print("NO") ```
3.960608
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 divisors — 1 and *k*.
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000).
The first line of the output contains a single integer *k* — 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..." } ]
1,676,347,118
2,147,483,647
Python 3
OK
TESTS
41
93
0
if __name__=="__main__": n = int(input()) if n%2==0: print(int(n/2)) for i in range(int(n/2)): print(2,end=" ") else: print(int(n/2)) for i in range(int(n/2-1)): print(2,end=" ") print(3)
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 divisors — 1 and *k*. Input Specification: The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000). Output Specification: The first line of the output contains a single integer *k* — 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 if __name__=="__main__": n = int(input()) if n%2==0: print(int(n/2)) for i in range(int(n/2)): print(2,end=" ") else: print(int(n/2)) for i in range(int(n/2-1)): print(2,end=" ") print(3) ```
3
667
B
Coat of Anticubism
PROGRAMMING
1,100
[ "constructive algorithms", "geometry" ]
null
null
As some of you know, cubism is a trend in art, where the problem of constructing volumetrical shape on a plane with a combination of three-dimensional geometric shapes comes to the fore. A famous sculptor Cicasso, whose self-portrait you can contemplate, hates cubism. He is more impressed by the idea to transmit two-dimensional objects through three-dimensional objects by using his magnificent sculptures. And his new project is connected with this. Cicasso wants to make a coat for the haters of anticubism. To do this, he wants to create a sculpture depicting a well-known geometric primitive — convex polygon. Cicasso prepared for this a few blanks, which are rods with integer lengths, and now he wants to bring them together. The *i*-th rod is a segment of length *l**i*. The sculptor plans to make a convex polygon with a nonzero area, using all rods he has as its sides. Each rod should be used as a side to its full length. It is forbidden to cut, break or bend rods. However, two sides may form a straight angle . Cicasso knows that it is impossible to make a convex polygon with a nonzero area out of the rods with the lengths which he had chosen. Cicasso does not want to leave the unused rods, so the sculptor decides to make another rod-blank with an integer length so that his problem is solvable. Of course, he wants to make it as short as possible, because the materials are expensive, and it is improper deed to spend money for nothing. Help sculptor!
The first line contains an integer *n* (3<=≤<=*n*<=≤<=105) — a number of rod-blanks. The second line contains *n* integers *l**i* (1<=≤<=*l**i*<=≤<=109) — lengths of rods, which Cicasso already has. It is guaranteed that it is impossible to make a polygon with *n* vertices and nonzero area using the rods Cicasso already has.
Print the only integer *z* — the minimum length of the rod, so that after adding it it can be possible to construct convex polygon with (*n*<=+<=1) vertices and nonzero area from all of the rods.
[ "3\n1 2 1\n", "5\n20 4 3 2 1\n" ]
[ "1\n", "11\n" ]
In the first example triangle with sides {1 + 1 = 2, 2, 1} can be formed from a set of lengths {1, 1, 1, 2}. In the second example you can make a triangle with lengths {20, 11, 4 + 3 + 2 + 1 = 10}.
1,000
[ { "input": "3\n1 2 1", "output": "1" }, { "input": "5\n20 4 3 2 1", "output": "11" }, { "input": "7\n77486105 317474713 89523018 332007362 7897847 949616701 54820086", "output": "70407571" }, { "input": "14\n245638694 2941428 4673577 12468 991349408 44735727 14046308 60637707 81525 104620306 88059371 53742651 8489205 3528194", "output": "360142248" }, { "input": "19\n479740 7703374 196076708 180202968 579604 17429 16916 11989886 30832424 6384983 8937497 431 62955 48167457 898566333 29534955 1485775 848444 372839845", "output": "2404943" }, { "input": "35\n306260 278 43508628 54350745 222255 842526 39010821 10627 14916465 3059978 61449 503809 2820 1609513 196062 65695 270869 15079297 2885093 189306 4682268 422616382 1642346 82340 6 2 975464673 1388191 70110665 272855 253160079 1849635 7837751 274070 10394", "output": "34445194" }, { "input": "53\n1014364 40727 75774 243769 314 406417 5272684 14138 10640282 64955 2763 5667043 2121887 204672692 567643 60183 5183 11361359 2792918 199155 174809 16182540 21 392221 19434423 9140891 159733 15438 67903 3816799 616 429181 30392293 413992581 10847741 20771 16366654 1163 414283 156163 55907108 310278 95949614 185865 976650886 197610 87 61264 4586815 107764 26390852 331828 541", "output": "25390787" }, { "input": "3\n1 1 1000000000", "output": "999999999" }, { "input": "10\n1 2 3 4 5 6 7 8 9 1000000000", "output": "999999956" }, { "input": "5\n100000000 100000000 100000000 100000000 500000000", "output": "100000001" }, { "input": "3\n300000000 300000000 600000000", "output": "1" }, { "input": "5\n10 4 3 2 1", "output": "1" }, { "input": "3\n800000000 1 1", "output": "799999999" }, { "input": "3\n1000000000 1 1", "output": "999999999" } ]
1,649,547,923
2,147,483,647
Python 3
OK
TESTS
51
78
3,072,000
n = int(input()) l = [int(x) for x in input().split()] l.sort() print(2*l[n-1] + 1 - sum(l))
Title: Coat of Anticubism Time Limit: None seconds Memory Limit: None megabytes Problem Description: As some of you know, cubism is a trend in art, where the problem of constructing volumetrical shape on a plane with a combination of three-dimensional geometric shapes comes to the fore. A famous sculptor Cicasso, whose self-portrait you can contemplate, hates cubism. He is more impressed by the idea to transmit two-dimensional objects through three-dimensional objects by using his magnificent sculptures. And his new project is connected with this. Cicasso wants to make a coat for the haters of anticubism. To do this, he wants to create a sculpture depicting a well-known geometric primitive — convex polygon. Cicasso prepared for this a few blanks, which are rods with integer lengths, and now he wants to bring them together. The *i*-th rod is a segment of length *l**i*. The sculptor plans to make a convex polygon with a nonzero area, using all rods he has as its sides. Each rod should be used as a side to its full length. It is forbidden to cut, break or bend rods. However, two sides may form a straight angle . Cicasso knows that it is impossible to make a convex polygon with a nonzero area out of the rods with the lengths which he had chosen. Cicasso does not want to leave the unused rods, so the sculptor decides to make another rod-blank with an integer length so that his problem is solvable. Of course, he wants to make it as short as possible, because the materials are expensive, and it is improper deed to spend money for nothing. Help sculptor! Input Specification: The first line contains an integer *n* (3<=≤<=*n*<=≤<=105) — a number of rod-blanks. The second line contains *n* integers *l**i* (1<=≤<=*l**i*<=≤<=109) — lengths of rods, which Cicasso already has. It is guaranteed that it is impossible to make a polygon with *n* vertices and nonzero area using the rods Cicasso already has. Output Specification: Print the only integer *z* — the minimum length of the rod, so that after adding it it can be possible to construct convex polygon with (*n*<=+<=1) vertices and nonzero area from all of the rods. Demo Input: ['3\n1 2 1\n', '5\n20 4 3 2 1\n'] Demo Output: ['1\n', '11\n'] Note: In the first example triangle with sides {1 + 1 = 2, 2, 1} can be formed from a set of lengths {1, 1, 1, 2}. In the second example you can make a triangle with lengths {20, 11, 4 + 3 + 2 + 1 = 10}.
```python n = int(input()) l = [int(x) for x in input().split()] l.sort() print(2*l[n-1] + 1 - sum(l)) ```
3
721
B
Passwords
PROGRAMMING
1,100
[ "implementation", "math", "sortings", "strings" ]
null
null
Vanya is managed to enter his favourite site Codehorses. Vanya uses *n* distinct passwords for sites at all, however he can't remember which one exactly he specified during Codehorses registration. Vanya will enter passwords in order of non-decreasing their lengths, and he will enter passwords of same length in arbitrary order. Just when Vanya will have entered the correct password, he is immediately authorized on the site. Vanya will not enter any password twice. Entering any passwords takes one second for Vanya. But if Vanya will enter wrong password *k* times, then he is able to make the next try only 5 seconds after that. Vanya makes each try immediately, that is, at each moment when Vanya is able to enter password, he is doing that. Determine how many seconds will Vanya need to enter Codehorses in the best case for him (if he spends minimum possible number of second) and in the worst case (if he spends maximum possible amount of seconds).
The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100) — the number of Vanya's passwords and the number of failed tries, after which the access to the site is blocked for 5 seconds. The next *n* lines contains passwords, one per line — pairwise distinct non-empty strings consisting of latin letters and digits. Each password length does not exceed 100 characters. The last line of the input contains the Vanya's Codehorses password. It is guaranteed that the Vanya's Codehorses password is equal to some of his *n* passwords.
Print two integers — time (in seconds), Vanya needs to be authorized to Codehorses in the best case for him and in the worst case respectively.
[ "5 2\ncba\nabc\nbb1\nabC\nABC\nabc\n", "4 100\n11\n22\n1\n2\n22\n" ]
[ "1 15\n", "3 4\n" ]
Consider the first sample case. As soon as all passwords have the same length, Vanya can enter the right password at the first try as well as at the last try. If he enters it at the first try, he spends exactly 1 second. Thus in the best case the answer is 1. If, at the other hand, he enters it at the last try, he enters another 4 passwords before. He spends 2 seconds to enter first 2 passwords, then he waits 5 seconds as soon as he made 2 wrong tries. Then he spends 2 more seconds to enter 2 wrong passwords, again waits 5 seconds and, finally, enters the correct password spending 1 more second. In summary in the worst case he is able to be authorized in 15 seconds. Consider the second sample case. There is no way of entering passwords and get the access to the site blocked. As soon as the required password has length of 2, Vanya enters all passwords of length 1 anyway, spending 2 seconds for that. Then, in the best case, he immediately enters the correct password and the answer for the best case is 3, but in the worst case he enters wrong password of length 2 and only then the right one, spending 4 seconds at all.
1,000
[ { "input": "5 2\ncba\nabc\nbb1\nabC\nABC\nabc", "output": "1 15" }, { "input": "4 100\n11\n22\n1\n2\n22", "output": "3 4" }, { "input": "1 1\na1\na1", "output": "1 1" }, { "input": "1 100\na1\na1", "output": "1 1" }, { "input": "2 1\nabc\nAbc\nAbc", "output": "1 7" }, { "input": "2 2\nabc\nAbc\nabc", "output": "1 2" }, { "input": "2 1\nab\nabc\nab", "output": "1 1" }, { "input": "2 2\nab\nabc\nab", "output": "1 1" }, { "input": "2 1\nab\nabc\nabc", "output": "7 7" }, { "input": "2 2\nab\nabc\nabc", "output": "2 2" }, { "input": "10 3\nOIbV1igi\no\nZS\nQM\n9woLzI\nWreboD\nQ7yl\nA5Rb\nS9Lno72TkP\nfT97o\no", "output": "1 1" }, { "input": "10 3\nHJZNMsT\nLaPcH2C\nlrhqIO\n9cxw\noTC1XwjW\nGHL9Ul6\nUyIs\nPuzwgR4ZKa\nyIByoKR5\nd3QA\nPuzwgR4ZKa", "output": "25 25" }, { "input": "20 5\nvSyC787KlIL8kZ2Uv5sw\nWKWOP\n7i8J3E8EByIq\nNW2VyGweL\nmyR2sRNu\nmXusPP0\nf4jgGxra\n4wHRzRhOCpEt\npPz9kybGb\nOtSpePCRoG5nkjZ2VxRy\nwHYsSttWbJkg\nKBOP9\nQfiOiFyHPPsw3GHo8J8\nxB8\nqCpehZEeEhdq\niOLjICK6\nQ91\nHmCsfMGTFKoFFnv238c\nJKjhg\ngkEUh\nKBOP9", "output": "3 11" }, { "input": "15 2\nw6S9WyU\nMVh\nkgUhQHW\nhGQNOF\nUuym\n7rGQA\nBM8vLPRB\n9E\nDs32U\no\nz1aV2C5T\n8\nzSXjrqQ\n1FO\n3kIt\nBM8vLPRB", "output": "44 50" }, { "input": "20 2\ni\n5Rp6\nE4vsr\nSY\nORXx\nh13C\nk6tzC\ne\nN\nKQf4C\nWZcdL\ndiA3v\n0InQT\nuJkAr\nGCamp\nBuIRd\nY\nM\nxZYx7\n0a5A\nWZcdL", "output": "36 65" }, { "input": "20 2\naWLQ6\nSgQ9r\nHcPdj\n2BNaO\n3TjNb\nnvwFM\nqsKt7\nFnb6N\nLoc0p\njxuLq\nBKAjf\nEKgZB\nBfOSa\nsMIvr\nuIWcR\nIura3\nLAqSf\ntXq3G\n8rQ8I\n8otAO\nsMIvr", "output": "1 65" }, { "input": "20 15\n0ZpQugVlN7\nm0SlKGnohN\nRFXTqhNGcn\n1qm2ZbB\nQXtJWdf78P\nbc2vH\nP21dty2Z1P\nm2c71LFhCk\n23EuP1Dvh3\nanwri5RhQN\n55v6HYv288\n1u5uKOjM5r\n6vg0GC1\nDAPYiA3ns1\nUZaaJ3Gmnk\nwB44x7V4Zi\n4hgB2oyU8P\npYFQpy8gGK\ndbz\nBv\n55v6HYv288", "output": "6 25" }, { "input": "3 1\na\nb\naa\naa", "output": "13 13" }, { "input": "6 3\nab\nac\nad\nabc\nabd\nabe\nabc", "output": "9 11" }, { "input": "4 2\n1\n2\n11\n22\n22", "output": "8 9" }, { "input": "2 1\n1\n12\n12", "output": "7 7" }, { "input": "3 1\nab\nabc\nabd\nabc", "output": "7 13" }, { "input": "2 1\na\nab\nab", "output": "7 7" }, { "input": "5 2\na\nb\nc\nab\naa\naa", "output": "9 15" }, { "input": "6 1\n1\n2\n11\n22\n111\n2222\n22", "output": "13 19" }, { "input": "3 1\n1\n2\n11\n11", "output": "13 13" }, { "input": "10 4\na\nb\nc\nd\ne\nf\nab\ncd\nac\nad\nac", "output": "12 20" }, { "input": "4 2\na\nb\nc\nd\na", "output": "1 9" }, { "input": "4 1\n1\n2\n3\n4\n4", "output": "1 19" }, { "input": "5 1\na\nb\nc\nd\nef\nef", "output": "25 25" }, { "input": "6 4\n1\n2\n22\n33\n44\n555\n555", "output": "11 11" }, { "input": "5 2\na\nb\nc\nd\nab\nab", "output": "15 15" }, { "input": "6 2\n1\n2\n3\n4\n5\n23\n23", "output": "16 16" }, { "input": "4 2\na\nb\naa\nbb\naa", "output": "8 9" }, { "input": "5 4\na\nbb\ncc\ndd\nee\nbb", "output": "2 10" }, { "input": "4 1\na\nb\nc\nab\nab", "output": "19 19" }, { "input": "7 100\na\nb\nc\nd\ne\ng\nab\nab", "output": "7 7" }, { "input": "6 1\na\nb\nc\nd\ne\naa\naa", "output": "31 31" }, { "input": "4 1\na\nas\nasd\nasde\nasde", "output": "19 19" }, { "input": "5 2\n1\n2\n3\n11\n22\n22", "output": "9 15" }, { "input": "10 2\na\nb\nc\nd\nee\nff\ngg\nhh\nii\njj\nii", "output": "15 30" }, { "input": "3 1\na\nab\nbc\nab", "output": "7 13" }, { "input": "6 4\na\nb\nc\nbb\nbc\ncc\ncc", "output": "4 11" } ]
1,623,476,944
2,147,483,647
PyPy 3
WRONG_ANSWER
TESTS
6
109
0
n,f=map(int,input().strip().split()) l=[] l1=[] c=0 for i in range(n): s=input() l1.append(s) l.append(len(s)) k=input() if(max(l)==min(l)): if(f<n): print("1",f*5+n) else: print("1",n) else: for i in l1: if(len(i)<len(k)): c=c+1 print(c+1,n)
Title: Passwords Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vanya is managed to enter his favourite site Codehorses. Vanya uses *n* distinct passwords for sites at all, however he can't remember which one exactly he specified during Codehorses registration. Vanya will enter passwords in order of non-decreasing their lengths, and he will enter passwords of same length in arbitrary order. Just when Vanya will have entered the correct password, he is immediately authorized on the site. Vanya will not enter any password twice. Entering any passwords takes one second for Vanya. But if Vanya will enter wrong password *k* times, then he is able to make the next try only 5 seconds after that. Vanya makes each try immediately, that is, at each moment when Vanya is able to enter password, he is doing that. Determine how many seconds will Vanya need to enter Codehorses in the best case for him (if he spends minimum possible number of second) and in the worst case (if he spends maximum possible amount of seconds). Input Specification: The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100) — the number of Vanya's passwords and the number of failed tries, after which the access to the site is blocked for 5 seconds. The next *n* lines contains passwords, one per line — pairwise distinct non-empty strings consisting of latin letters and digits. Each password length does not exceed 100 characters. The last line of the input contains the Vanya's Codehorses password. It is guaranteed that the Vanya's Codehorses password is equal to some of his *n* passwords. Output Specification: Print two integers — time (in seconds), Vanya needs to be authorized to Codehorses in the best case for him and in the worst case respectively. Demo Input: ['5 2\ncba\nabc\nbb1\nabC\nABC\nabc\n', '4 100\n11\n22\n1\n2\n22\n'] Demo Output: ['1 15\n', '3 4\n'] Note: Consider the first sample case. As soon as all passwords have the same length, Vanya can enter the right password at the first try as well as at the last try. If he enters it at the first try, he spends exactly 1 second. Thus in the best case the answer is 1. If, at the other hand, he enters it at the last try, he enters another 4 passwords before. He spends 2 seconds to enter first 2 passwords, then he waits 5 seconds as soon as he made 2 wrong tries. Then he spends 2 more seconds to enter 2 wrong passwords, again waits 5 seconds and, finally, enters the correct password spending 1 more second. In summary in the worst case he is able to be authorized in 15 seconds. Consider the second sample case. There is no way of entering passwords and get the access to the site blocked. As soon as the required password has length of 2, Vanya enters all passwords of length 1 anyway, spending 2 seconds for that. Then, in the best case, he immediately enters the correct password and the answer for the best case is 3, but in the worst case he enters wrong password of length 2 and only then the right one, spending 4 seconds at all.
```python n,f=map(int,input().strip().split()) l=[] l1=[] c=0 for i in range(n): s=input() l1.append(s) l.append(len(s)) k=input() if(max(l)==min(l)): if(f<n): print("1",f*5+n) else: print("1",n) else: for i in l1: if(len(i)<len(k)): c=c+1 print(c+1,n) ```
0
272
C
Dima and Staircase
PROGRAMMING
1,500
[ "data structures", "implementation" ]
null
null
Dima's got a staircase that consists of *n* stairs. The first stair is at height *a*1, the second one is at *a*2, the last one is at *a**n* (1<=≤<=*a*1<=≤<=*a*2<=≤<=...<=≤<=*a**n*). Dima decided to play with the staircase, so he is throwing rectangular boxes at the staircase from above. The *i*-th box has width *w**i* and height *h**i*. Dima throws each box vertically down on the first *w**i* stairs of the staircase, that is, the box covers stairs with numbers 1,<=2,<=...,<=*w**i*. Each thrown box flies vertically down until at least one of the two following events happen: - the bottom of the box touches the top of a stair; - the bottom of the box touches the top of a box, thrown earlier. We only consider touching of the horizontal sides of stairs and boxes, at that touching with the corners isn't taken into consideration. Specifically, that implies that a box with width *w**i* cannot touch the stair number *w**i*<=+<=1. You are given the description of the staircase and the sequence in which Dima threw the boxes at it. For each box, determine how high the bottom of the box after landing will be. Consider a box to fall after the previous one lands.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of stairs in the staircase. The second line contains a non-decreasing sequence, consisting of *n* integers, *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=109; *a**i*<=≤<=*a**i*<=+<=1). The next line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of boxes. Each of the following *m* lines contains a pair of integers *w**i*,<=*h**i* (1<=≤<=*w**i*<=≤<=*n*; 1<=≤<=*h**i*<=≤<=109) — the size of the *i*-th thrown box. The numbers in the lines are separated by spaces.
Print *m* integers — for each box the height, where the bottom of the box will be after landing. Print the answers for the boxes in the order, in which the boxes are given in the input. 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.
[ "5\n1 2 3 6 6\n4\n1 1\n3 1\n1 1\n4 3\n", "3\n1 2 3\n2\n1 1\n3 1\n", "1\n1\n5\n1 2\n1 10\n1 10\n1 10\n1 10\n" ]
[ "1\n3\n4\n6\n", "1\n3\n", "1\n3\n13\n23\n33\n" ]
The first sample are shown on the picture.
1,500
[ { "input": "5\n1 2 3 6 6\n4\n1 1\n3 1\n1 1\n4 3", "output": "1\n3\n4\n6" }, { "input": "3\n1 2 3\n2\n1 1\n3 1", "output": "1\n3" }, { "input": "1\n1\n5\n1 2\n1 10\n1 10\n1 10\n1 10", "output": "1\n3\n13\n23\n33" }, { "input": "8\n6 10 18 23 30 31 31 33\n1\n5 3", "output": "30" }, { "input": "7\n8 13 19 21 25 30 32\n3\n5 4\n6 5\n1 2", "output": "25\n30\n35" }, { "input": "5\n4 7 10 12 12\n9\n3 9\n2 1\n3 5\n4 7\n1 1\n5 1\n1 7\n2 4\n4 10", "output": "10\n19\n20\n25\n32\n33\n34\n41\n45" }, { "input": "3\n1 6 8\n5\n3 4\n3 9\n3 3\n1 2\n1 6", "output": "8\n12\n21\n24\n26" }, { "input": "3\n2 10 15\n1\n1 830", "output": "2" }, { "input": "2\n1 6\n5\n2 6\n1 2\n1 1\n1 2\n1 7", "output": "6\n12\n14\n15\n17" }, { "input": "1\n9\n8\n1 4\n1 10\n1 9\n1 9\n1 7\n1 1\n1 9\n1 2", "output": "9\n13\n23\n32\n41\n48\n49\n58" }, { "input": "1\n8\n1\n1 42", "output": "8" }, { "input": "1\n1\n1\n1 1", "output": "1" }, { "input": "5\n1 2 3 6 6\n25\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000", "output": "1\n1000000001\n2000000001\n3000000001\n4000000001\n5000000001\n6000000001\n7000000001\n8000000001\n9000000001\n10000000001\n11000000001\n12000000001\n13000000001\n14000000001\n15000000001\n16000000001\n17000000001\n18000000001\n19000000001\n20000000001\n21000000001\n22000000001\n23000000001\n24000000001" }, { "input": "1\n1000000000\n6\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000\n1 1000000000", "output": "1000000000\n2000000000\n3000000000\n4000000000\n5000000000\n6000000000" } ]
1,490,795,108
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
11
2,000
9,113,600
def inbox(): s = input().split() return [eval(s[0]), eval(s[1])] boxes = [] n = eval(input()) s = input().split() a = [eval(i) for i in s] m = eval(input()) for i in range(m): boxes.append(inbox()) for i in range(len(boxes)): w = boxes[i][0] h = boxes[i][1] k = max(a[:w]) print(k) for i in range(w): a[i] = k+h
Title: Dima and Staircase Time Limit: None seconds Memory Limit: None megabytes Problem Description: Dima's got a staircase that consists of *n* stairs. The first stair is at height *a*1, the second one is at *a*2, the last one is at *a**n* (1<=≤<=*a*1<=≤<=*a*2<=≤<=...<=≤<=*a**n*). Dima decided to play with the staircase, so he is throwing rectangular boxes at the staircase from above. The *i*-th box has width *w**i* and height *h**i*. Dima throws each box vertically down on the first *w**i* stairs of the staircase, that is, the box covers stairs with numbers 1,<=2,<=...,<=*w**i*. Each thrown box flies vertically down until at least one of the two following events happen: - the bottom of the box touches the top of a stair; - the bottom of the box touches the top of a box, thrown earlier. We only consider touching of the horizontal sides of stairs and boxes, at that touching with the corners isn't taken into consideration. Specifically, that implies that a box with width *w**i* cannot touch the stair number *w**i*<=+<=1. You are given the description of the staircase and the sequence in which Dima threw the boxes at it. For each box, determine how high the bottom of the box after landing will be. Consider a box to fall after the previous one lands. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of stairs in the staircase. The second line contains a non-decreasing sequence, consisting of *n* integers, *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=109; *a**i*<=≤<=*a**i*<=+<=1). The next line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of boxes. Each of the following *m* lines contains a pair of integers *w**i*,<=*h**i* (1<=≤<=*w**i*<=≤<=*n*; 1<=≤<=*h**i*<=≤<=109) — the size of the *i*-th thrown box. The numbers in the lines are separated by spaces. Output Specification: Print *m* integers — for each box the height, where the bottom of the box will be after landing. Print the answers for the boxes in the order, in which the boxes are given in the input. 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: ['5\n1 2 3 6 6\n4\n1 1\n3 1\n1 1\n4 3\n', '3\n1 2 3\n2\n1 1\n3 1\n', '1\n1\n5\n1 2\n1 10\n1 10\n1 10\n1 10\n'] Demo Output: ['1\n3\n4\n6\n', '1\n3\n', '1\n3\n13\n23\n33\n'] Note: The first sample are shown on the picture.
```python def inbox(): s = input().split() return [eval(s[0]), eval(s[1])] boxes = [] n = eval(input()) s = input().split() a = [eval(i) for i in s] m = eval(input()) for i in range(m): boxes.append(inbox()) for i in range(len(boxes)): w = boxes[i][0] h = boxes[i][1] k = max(a[:w]) print(k) for i in range(w): a[i] = k+h ```
0
455
A
Boredom
PROGRAMMING
1,500
[ "dp" ]
null
null
Alex doesn't like boredom. That's why whenever he gets bored, he comes up with games. One long winter evening he came up with a game and decided to play it. Given a sequence *a* consisting of *n* integers. The player can make several steps. In a single step he can choose an element of the sequence (let's denote it *a**k*) and delete it, at that all elements equal to *a**k*<=+<=1 and *a**k*<=-<=1 also must be deleted from the sequence. That step brings *a**k* points to the player. Alex is a perfectionist, so he decided to get as many points as possible. Help him.
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) that shows how many numbers are in Alex's sequence. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=105).
Print a single integer — the maximum number of points that Alex can earn.
[ "2\n1 2\n", "3\n1 2 3\n", "9\n1 2 1 3 2 2 2 2 3\n" ]
[ "2\n", "4\n", "10\n" ]
Consider the third test example. At first step we need to choose any element equal to 2. After that step our sequence looks like this [2, 2, 2, 2]. Then we do 4 steps, on each step we choose any element equals to 2. In total we earn 10 points.
500
[ { "input": "2\n1 2", "output": "2" }, { "input": "3\n1 2 3", "output": "4" }, { "input": "9\n1 2 1 3 2 2 2 2 3", "output": "10" }, { "input": "5\n3 3 4 5 4", "output": "11" }, { "input": "5\n5 3 5 3 4", "output": "16" }, { "input": "5\n4 2 3 2 5", "output": "9" }, { "input": "10\n10 5 8 9 5 6 8 7 2 8", "output": "46" }, { "input": "10\n1 1 1 1 1 1 2 3 4 4", "output": "14" }, { "input": "100\n6 6 8 9 7 9 6 9 5 7 7 4 5 3 9 1 10 3 4 5 8 9 6 5 6 4 10 9 1 4 1 7 1 4 9 10 8 2 9 9 10 5 8 9 5 6 8 7 2 8 7 6 2 6 10 8 6 2 5 5 3 2 8 8 5 3 6 2 1 4 7 2 7 3 7 4 10 10 7 5 4 7 5 10 7 1 1 10 7 7 7 2 3 4 2 8 4 7 4 4", "output": "296" }, { "input": "100\n6 1 5 7 10 10 2 7 3 7 2 10 7 6 3 5 5 5 3 7 2 4 2 7 7 4 2 8 2 10 4 7 9 1 1 7 9 7 1 10 10 9 5 6 10 1 7 5 8 1 1 5 3 10 2 4 3 5 2 7 4 9 5 10 1 3 7 6 6 9 3 6 6 10 1 10 6 1 10 3 4 1 7 9 2 7 8 9 3 3 2 4 6 6 1 2 9 4 1 2", "output": "313" }, { "input": "100\n7 6 3 8 8 3 10 5 3 8 6 4 6 9 6 7 3 9 10 7 5 5 9 10 7 2 3 8 9 5 4 7 9 3 6 4 9 10 7 6 8 7 6 6 10 3 7 4 5 7 7 5 1 5 4 8 7 3 3 4 7 8 5 9 2 2 3 1 6 4 6 6 6 1 7 10 7 4 5 3 9 2 4 1 5 10 9 3 9 6 8 5 2 1 10 4 8 5 10 9", "output": "298" }, { "input": "100\n2 10 9 1 2 6 7 2 2 8 9 9 9 5 6 2 5 1 1 10 7 4 5 5 8 1 9 4 10 1 9 3 1 8 4 10 8 8 2 4 6 5 1 4 2 2 1 2 8 5 3 9 4 10 10 7 8 6 1 8 2 6 7 1 6 7 3 10 10 3 7 7 6 9 6 8 8 10 4 6 4 3 3 3 2 3 10 6 8 5 5 10 3 7 3 1 1 1 5 5", "output": "312" }, { "input": "100\n4 9 7 10 4 7 2 6 1 9 1 8 7 5 5 7 6 7 9 8 10 5 3 5 7 10 3 2 1 3 8 9 4 10 4 7 6 4 9 6 7 1 9 4 3 5 8 9 2 7 10 5 7 5 3 8 10 3 8 9 3 4 3 10 6 5 1 8 3 2 5 8 4 7 5 3 3 2 6 9 9 8 2 7 6 3 2 2 8 8 4 5 6 9 2 3 2 2 5 2", "output": "287" }, { "input": "100\n4 8 10 1 8 8 8 1 10 3 1 8 6 8 6 1 10 3 3 3 3 7 2 1 1 6 10 1 7 9 8 10 3 8 6 2 1 6 5 6 10 8 9 7 4 3 10 5 3 9 10 5 10 8 8 5 7 8 9 5 3 9 9 2 7 8 1 10 4 9 2 8 10 10 5 8 5 1 7 3 4 5 2 5 9 3 2 5 6 2 3 10 1 5 9 6 10 4 10 8", "output": "380" }, { "input": "100\n4 8 10 1 8 8 8 1 10 3 1 8 6 8 6 1 10 3 3 3 3 7 2 1 1 6 10 1 7 9 8 10 3 8 6 2 1 6 5 6 10 8 9 7 4 3 10 5 3 9 10 5 10 8 8 5 7 8 9 5 3 9 9 2 7 8 1 10 4 9 2 8 10 10 5 8 5 1 7 3 4 5 2 5 9 3 2 5 6 2 3 10 1 5 9 6 10 4 10 8", "output": "380" }, { "input": "100\n10 5 8 4 4 4 1 4 5 8 3 10 2 4 1 10 8 1 1 6 8 4 2 9 1 3 1 7 7 9 3 5 5 8 6 9 9 4 8 1 3 3 2 6 1 5 4 5 3 5 5 6 7 5 7 9 3 5 4 9 2 6 8 1 1 7 7 3 8 9 8 7 3 2 4 1 6 1 3 9 4 2 2 8 5 10 1 8 8 5 1 5 6 9 4 5 6 5 10 2", "output": "265" }, { "input": "100\n7 5 1 8 5 6 6 2 6 2 7 7 3 6 2 4 4 2 10 2 2 2 10 6 6 1 5 10 9 1 5 9 8 9 4 1 10 5 7 5 7 6 4 8 8 1 7 8 3 8 2 1 8 4 10 3 5 6 6 10 9 6 5 1 10 7 6 9 9 2 10 10 9 1 2 1 7 7 4 10 1 10 5 5 3 8 9 8 1 4 10 2 4 5 4 4 1 6 2 9", "output": "328" }, { "input": "100\n5 6 10 7 1 7 10 1 9 1 5 1 4 1 3 3 7 9 1 6 1 6 5 7 1 6 3 1 3 6 3 8 2 4 1 5 2 10 7 3 10 4 10 1 5 4 2 9 7 9 5 7 10 4 1 4 8 9 3 1 3 7 7 4 3 7 7 10 6 9 5 5 6 5 3 9 8 8 5 5 4 10 9 4 10 4 1 8 3 5 4 10 9 3 10 4 10 7 10 9", "output": "324" }, { "input": "10\n7 4 5 3 9 1 10 3 4 5", "output": "34" }, { "input": "10\n8 9 6 5 6 4 10 9 1 4", "output": "39" }, { "input": "10\n1 7 1 4 9 10 8 2 9 9", "output": "40" }, { "input": "1\n100000", "output": "100000" } ]
1,677,608,137
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
3
31
0
num = int(input()) list1 = list(map(int,input().split())) list2 = set(list1) counter = 0 for i in list2: s = list1.count(i) if s > 1 : counter += s-1 print((len(list2)-1)*2 + counter)
Title: Boredom Time Limit: None seconds Memory Limit: None megabytes Problem Description: Alex doesn't like boredom. That's why whenever he gets bored, he comes up with games. One long winter evening he came up with a game and decided to play it. Given a sequence *a* consisting of *n* integers. The player can make several steps. In a single step he can choose an element of the sequence (let's denote it *a**k*) and delete it, at that all elements equal to *a**k*<=+<=1 and *a**k*<=-<=1 also must be deleted from the sequence. That step brings *a**k* points to the player. Alex is a perfectionist, so he decided to get as many points as possible. Help him. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=105) that shows how many numbers are in Alex's sequence. The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=105). Output Specification: Print a single integer — the maximum number of points that Alex can earn. Demo Input: ['2\n1 2\n', '3\n1 2 3\n', '9\n1 2 1 3 2 2 2 2 3\n'] Demo Output: ['2\n', '4\n', '10\n'] Note: Consider the third test example. At first step we need to choose any element equal to 2. After that step our sequence looks like this [2, 2, 2, 2]. Then we do 4 steps, on each step we choose any element equals to 2. In total we earn 10 points.
```python num = int(input()) list1 = list(map(int,input().split())) list2 = set(list1) counter = 0 for i in list2: s = list1.count(i) if s > 1 : counter += s-1 print((len(list2)-1)*2 + counter) ```
0
0
none
none
none
0
[ "none" ]
null
null
It is a balmy spring afternoon, and Farmer John's *n* cows are ruminating about link-cut cacti in their stalls. The cows, labeled 1 through *n*, are arranged so that the *i*-th cow occupies the *i*-th stall from the left. However, Elsie, after realizing that she will forever live in the shadows beyond Bessie's limelight, has formed the Mischievous Mess Makers and is plotting to disrupt this beautiful pastoral rhythm. While Farmer John takes his *k* minute long nap, Elsie and the Mess Makers plan to repeatedly choose two distinct stalls and swap the cows occupying those stalls, making no more than one swap each minute. Being the meticulous pranksters that they are, the Mischievous Mess Makers would like to know the maximum messiness attainable in the *k* minutes that they have. We denote as *p**i* the label of the cow in the *i*-th stall. The messiness of an arrangement of cows is defined as the number of pairs (*i*,<=*j*) such that *i*<=&lt;<=*j* and *p**i*<=&gt;<=*p**j*.
The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100<=000) — the number of cows and the length of Farmer John's nap, respectively.
Output a single integer, the maximum messiness that the Mischievous Mess Makers can achieve by performing no more than *k* swaps.
[ "5 2\n", "1 10\n" ]
[ "10\n", "0\n" ]
In the first sample, the Mischievous Mess Makers can swap the cows in the stalls 1 and 5 during the first minute, then the cows in stalls 2 and 4 during the second minute. This reverses the arrangement of cows, giving us a total messiness of 10. In the second sample, there is only one cow, so the maximum possible messiness is 0.
0
[ { "input": "5 2", "output": "10" }, { "input": "1 10", "output": "0" }, { "input": "100000 2", "output": "399990" }, { "input": "1 1", "output": "0" }, { "input": "8 3", "output": "27" }, { "input": "7 1", "output": "11" }, { "input": "100000 40000", "output": "4799960000" }, { "input": "1 1000", "output": "0" }, { "input": "100 45", "output": "4905" }, { "input": "9 2", "output": "26" }, { "input": "456 78", "output": "58890" }, { "input": "100000 50000", "output": "4999950000" }, { "input": "100000 50001", "output": "4999950000" }, { "input": "100000 50002", "output": "4999950000" }, { "input": "100000 50003", "output": "4999950000" }, { "input": "100000 49998", "output": "4999949994" }, { "input": "100000 49997", "output": "4999949985" }, { "input": "99999 49998", "output": "4999849998" }, { "input": "99999 49997", "output": "4999849991" }, { "input": "99999 49996", "output": "4999849980" }, { "input": "99999 50000", "output": "4999850001" }, { "input": "99999 50001", "output": "4999850001" }, { "input": "99999 50002", "output": "4999850001" }, { "input": "30062 9", "output": "540945" }, { "input": "13486 3", "output": "80895" }, { "input": "29614 7", "output": "414491" }, { "input": "13038 8", "output": "208472" }, { "input": "96462 6", "output": "1157466" }, { "input": "22599 93799", "output": "255346101" }, { "input": "421 36817", "output": "88410" }, { "input": "72859 65869", "output": "2654180511" }, { "input": "37916 5241", "output": "342494109" }, { "input": "47066 12852", "output": "879423804" }, { "input": "84032 21951", "output": "2725458111" }, { "input": "70454 75240", "output": "2481847831" }, { "input": "86946 63967", "output": "3779759985" }, { "input": "71128 11076", "output": "1330260828" }, { "input": "46111 64940", "output": "1063089105" }, { "input": "46111 64940", "output": "1063089105" }, { "input": "56500 84184", "output": "1596096750" }, { "input": "60108 83701", "output": "1806455778" }, { "input": "1 2", "output": "0" }, { "input": "1 3", "output": "0" }, { "input": "1 4", "output": "0" }, { "input": "1 5", "output": "0" }, { "input": "1 6", "output": "0" }, { "input": "2 1", "output": "1" }, { "input": "2 2", "output": "1" }, { "input": "2 3", "output": "1" }, { "input": "2 4", "output": "1" }, { "input": "2 5", "output": "1" }, { "input": "3 1", "output": "3" }, { "input": "3 2", "output": "3" }, { "input": "3 3", "output": "3" }, { "input": "3 4", "output": "3" }, { "input": "3 5", "output": "3" }, { "input": "4 1", "output": "5" }, { "input": "4 2", "output": "6" }, { "input": "4 3", "output": "6" }, { "input": "4 4", "output": "6" }, { "input": "4 5", "output": "6" }, { "input": "5 1", "output": "7" }, { "input": "5 3", "output": "10" }, { "input": "5 4", "output": "10" }, { "input": "5 5", "output": "10" }, { "input": "6 1", "output": "9" }, { "input": "6 2", "output": "14" }, { "input": "6 3", "output": "15" }, { "input": "7 2", "output": "18" }, { "input": "7 3", "output": "21" }, { "input": "7 4", "output": "21" }, { "input": "10 2", "output": "30" }, { "input": "60982 2", "output": "243918" }, { "input": "23426 23", "output": "1076515" }, { "input": "444 3", "output": "2643" }, { "input": "18187 433", "output": "15374531" }, { "input": "6895 3544", "output": "23767065" }, { "input": "56204 22352", "output": "1513297456" }, { "input": "41977 5207", "output": "382917573" }, { "input": "78147 2321", "output": "351981971" }, { "input": "99742 62198", "output": "4974183411" }, { "input": "72099 38339", "output": "2599096851" }, { "input": "82532 4838", "output": "751762306" }, { "input": "79410 33144", "output": "3066847464" }, { "input": "11021 3389", "output": "51726307" }, { "input": "66900 7572", "output": "898455660" }, { "input": "99999 49999", "output": "4999850001" }, { "input": "100000 49999", "output": "4999949999" }, { "input": "100000 100000", "output": "4999950000" }, { "input": "100000 1", "output": "199997" }, { "input": "4 100", "output": "6" }, { "input": "100000 1234", "output": "243753254" } ]
1,464,852,699
2,147,483,647
Python 3
OK
TESTS
92
93
4,812,800
__author__ = 'Utena' n,k=map(int,input().split()) t=0 for i in range(k): if n<2:break else: t+=2*n-3 n-=2 print(t)
Title: none Time Limit: None seconds Memory Limit: None megabytes Problem Description: It is a balmy spring afternoon, and Farmer John's *n* cows are ruminating about link-cut cacti in their stalls. The cows, labeled 1 through *n*, are arranged so that the *i*-th cow occupies the *i*-th stall from the left. However, Elsie, after realizing that she will forever live in the shadows beyond Bessie's limelight, has formed the Mischievous Mess Makers and is plotting to disrupt this beautiful pastoral rhythm. While Farmer John takes his *k* minute long nap, Elsie and the Mess Makers plan to repeatedly choose two distinct stalls and swap the cows occupying those stalls, making no more than one swap each minute. Being the meticulous pranksters that they are, the Mischievous Mess Makers would like to know the maximum messiness attainable in the *k* minutes that they have. We denote as *p**i* the label of the cow in the *i*-th stall. The messiness of an arrangement of cows is defined as the number of pairs (*i*,<=*j*) such that *i*<=&lt;<=*j* and *p**i*<=&gt;<=*p**j*. Input Specification: The first line of the input contains two integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=100<=000) — the number of cows and the length of Farmer John's nap, respectively. Output Specification: Output a single integer, the maximum messiness that the Mischievous Mess Makers can achieve by performing no more than *k* swaps. Demo Input: ['5 2\n', '1 10\n'] Demo Output: ['10\n', '0\n'] Note: In the first sample, the Mischievous Mess Makers can swap the cows in the stalls 1 and 5 during the first minute, then the cows in stalls 2 and 4 during the second minute. This reverses the arrangement of cows, giving us a total messiness of 10. In the second sample, there is only one cow, so the maximum possible messiness is 0.
```python __author__ = 'Utena' n,k=map(int,input().split()) t=0 for i in range(k): if n<2:break else: t+=2*n-3 n-=2 print(t) ```
3
233
A
Perfect Permutation
PROGRAMMING
800
[ "implementation", "math" ]
null
null
A permutation is a sequence of integers *p*1,<=*p*2,<=...,<=*p**n*, consisting of *n* distinct positive integers, each of them doesn't exceed *n*. Let's denote the *i*-th element of permutation *p* as *p**i*. We'll call number *n* the size of permutation *p*1,<=*p*2,<=...,<=*p**n*. Nickolas adores permutations. He likes some permutations more than the others. He calls such permutations perfect. A perfect permutation is such permutation *p* that for any *i* (1<=≤<=*i*<=≤<=*n*) (*n* is the permutation size) the following equations hold *p**p**i*<==<=*i* and *p**i*<=≠<=*i*. Nickolas asks you to print any perfect permutation of size *n* for the given *n*.
A single line contains a single integer *n* (1<=≤<=*n*<=≤<=100) — the permutation size.
If a perfect permutation of size *n* doesn't exist, print a single integer -1. Otherwise print *n* distinct integers from 1 to *n*, *p*1,<=*p*2,<=...,<=*p**n* — permutation *p*, that is perfect. Separate printed numbers by whitespaces.
[ "1\n", "2\n", "4\n" ]
[ "-1\n", "2 1 \n", "2 1 4 3 \n" ]
none
500
[ { "input": "1", "output": "-1" }, { "input": "2", "output": "2 1 " }, { "input": "4", "output": "2 1 4 3 " }, { "input": "3", "output": "-1" }, { "input": "5", "output": "-1" }, { "input": "6", "output": "2 1 4 3 6 5 " }, { "input": "7", "output": "-1" }, { "input": "20", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 " }, { "input": "8", "output": "2 1 4 3 6 5 8 7 " }, { "input": "9", "output": "-1" }, { "input": "10", "output": "2 1 4 3 6 5 8 7 10 9 " }, { "input": "11", "output": "-1" }, { "input": "21", "output": "-1" }, { "input": "50", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 " }, { "input": "51", "output": "-1" }, { "input": "52", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 " }, { "input": "84", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 " }, { "input": "86", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 " }, { "input": "100", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 98 97 100 99 " }, { "input": "98", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 98 97 " }, { "input": "96", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 50 49 52 51 54 53 56 55 58 57 60 59 62 61 64 63 66 65 68 67 70 69 72 71 74 73 76 75 78 77 80 79 82 81 84 83 86 85 88 87 90 89 92 91 94 93 96 95 " }, { "input": "33", "output": "-1" }, { "input": "34", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 " }, { "input": "36", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 " }, { "input": "38", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 " }, { "input": "40", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 " }, { "input": "42", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 " }, { "input": "44", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 " }, { "input": "46", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 " }, { "input": "48", "output": "2 1 4 3 6 5 8 7 10 9 12 11 14 13 16 15 18 17 20 19 22 21 24 23 26 25 28 27 30 29 32 31 34 33 36 35 38 37 40 39 42 41 44 43 46 45 48 47 " } ]
1,673,319,165
2,147,483,647
Python 3
OK
TESTS
30
92
0
a = int(input()) if a % 2 == 1: print(-1) else: b = [0]*a for i in range(1,a+1,2): b[i-1] = i+1 b[i] = i for j in b : print(j,end = ' ')
Title: Perfect Permutation Time Limit: None seconds Memory Limit: None megabytes Problem Description: A permutation is a sequence of integers *p*1,<=*p*2,<=...,<=*p**n*, consisting of *n* distinct positive integers, each of them doesn't exceed *n*. Let's denote the *i*-th element of permutation *p* as *p**i*. We'll call number *n* the size of permutation *p*1,<=*p*2,<=...,<=*p**n*. Nickolas adores permutations. He likes some permutations more than the others. He calls such permutations perfect. A perfect permutation is such permutation *p* that for any *i* (1<=≤<=*i*<=≤<=*n*) (*n* is the permutation size) the following equations hold *p**p**i*<==<=*i* and *p**i*<=≠<=*i*. Nickolas asks you to print any perfect permutation of size *n* for the given *n*. Input Specification: A single line contains a single integer *n* (1<=≤<=*n*<=≤<=100) — the permutation size. Output Specification: If a perfect permutation of size *n* doesn't exist, print a single integer -1. Otherwise print *n* distinct integers from 1 to *n*, *p*1,<=*p*2,<=...,<=*p**n* — permutation *p*, that is perfect. Separate printed numbers by whitespaces. Demo Input: ['1\n', '2\n', '4\n'] Demo Output: ['-1\n', '2 1 \n', '2 1 4 3 \n'] Note: none
```python a = int(input()) if a % 2 == 1: print(-1) else: b = [0]*a for i in range(1,a+1,2): b[i-1] = i+1 b[i] = i for j in b : print(j,end = ' ') ```
3
549
C
The Game Of Parity
PROGRAMMING
2,200
[ "games" ]
null
null
There are *n* cities in Westeros. The *i*-th city is inhabited by *a**i* people. Daenerys and Stannis play the following game: in one single move, a player chooses a certain town and burns it to the ground. Thus all its residents, sadly, die. Stannis starts the game. The game ends when Westeros has exactly *k* cities left. The prophecy says that if the total number of surviving residents is even, then Daenerys wins: Stannis gets beheaded, and Daenerys rises on the Iron Throne. If the total number of surviving residents is odd, Stannis wins and everything goes in the completely opposite way. Lord Petyr Baelish wants to know which candidates to the throne he should support, and therefore he wonders, which one of them has a winning strategy. Answer to this question of Lord Baelish and maybe you will become the next Lord of Harrenholl.
The first line contains two positive space-separated integers, *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=2·105) — the initial number of cities in Westeros and the number of cities at which the game ends. The second line contains *n* space-separated positive integers *a**i* (1<=≤<=*a**i*<=≤<=106), which represent the population of each city in Westeros.
Print string "Daenerys" (without the quotes), if Daenerys wins and "Stannis" (without the quotes), if Stannis wins.
[ "3 1\n1 2 1\n", "3 1\n2 2 1\n", "6 3\n5 20 12 7 14 101\n" ]
[ "Stannis\n", "Daenerys\n", "Stannis\n" ]
In the first sample Stannis will use his move to burn a city with two people and Daenerys will be forced to burn a city with one resident. The only survivor city will have one resident left, that is, the total sum is odd, and thus Stannis wins. In the second sample, if Stannis burns a city with two people, Daenerys burns the city with one resident, or vice versa. In any case, the last remaining city will be inhabited by two people, that is, the total sum is even, and hence Daenerys wins.
2,000
[ { "input": "3 1\n1 2 1", "output": "Stannis" }, { "input": "3 1\n2 2 1", "output": "Daenerys" }, { "input": "6 3\n5 20 12 7 14 101", "output": "Stannis" }, { "input": "6 3\n346 118 330 1403 5244 480", "output": "Daenerys" }, { "input": "7 4\n11 3532 99 3512 12 8 22", "output": "Stannis" }, { "input": "9 4\n2 6 8 1 2 4 2 8 2", "output": "Daenerys" }, { "input": "8 2\n1 3 22 45 21 132 78 901", "output": "Daenerys" }, { "input": "1 1\n912959", "output": "Stannis" }, { "input": "1 1\n107540", "output": "Daenerys" }, { "input": "2 2\n67427 727097", "output": "Daenerys" }, { "input": "2 2\n346010 923112", "output": "Daenerys" }, { "input": "2 2\n125572 610583", "output": "Stannis" }, { "input": "3 3\n198331 216610 697947", "output": "Daenerys" }, { "input": "3 3\n349371 489962 45420", "output": "Stannis" }, { "input": "4 4\n194368 948570 852413 562719", "output": "Daenerys" }, { "input": "3 3\n814664 27142 437959", "output": "Stannis" }, { "input": "3 3\n767153 643472 154791", "output": "Daenerys" }, { "input": "4 4\n391529 690539 830662 546622", "output": "Daenerys" }, { "input": "4 1\n1 1 2 2", "output": "Stannis" }, { "input": "2 2\n1 2", "output": "Stannis" }, { "input": "4 4\n2 5 5 5", "output": "Stannis" } ]
1,507,719,529
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
13
155
13,824,000
n,k=[int(i) for i in input().split()] l=[int(i) for i in input().split()] no=0 for i in l: no+=i%2 ne=n-no if no<=(n-k)//2: print("Daenerys") else: if no%2: if (n-k)%2 and ne<=(n-k)//2 and ne%2==0: print("Daenerys") elif (n-k)%2==0 and (ne>(n-k)//2 or ne%2): print("Daenerys") else: print("Stannis") else: if (n-k)%2 and ne<=(n-k)//2 and ne%2: print("Daenerys") elif (n-k)%2==0 and (ne>(n-k)//2 or ne%2==0): print("Daenerys") else: print("Stannis")
Title: The Game Of Parity Time Limit: None seconds Memory Limit: None megabytes Problem Description: There are *n* cities in Westeros. The *i*-th city is inhabited by *a**i* people. Daenerys and Stannis play the following game: in one single move, a player chooses a certain town and burns it to the ground. Thus all its residents, sadly, die. Stannis starts the game. The game ends when Westeros has exactly *k* cities left. The prophecy says that if the total number of surviving residents is even, then Daenerys wins: Stannis gets beheaded, and Daenerys rises on the Iron Throne. If the total number of surviving residents is odd, Stannis wins and everything goes in the completely opposite way. Lord Petyr Baelish wants to know which candidates to the throne he should support, and therefore he wonders, which one of them has a winning strategy. Answer to this question of Lord Baelish and maybe you will become the next Lord of Harrenholl. Input Specification: The first line contains two positive space-separated integers, *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=2·105) — the initial number of cities in Westeros and the number of cities at which the game ends. The second line contains *n* space-separated positive integers *a**i* (1<=≤<=*a**i*<=≤<=106), which represent the population of each city in Westeros. Output Specification: Print string "Daenerys" (without the quotes), if Daenerys wins and "Stannis" (without the quotes), if Stannis wins. Demo Input: ['3 1\n1 2 1\n', '3 1\n2 2 1\n', '6 3\n5 20 12 7 14 101\n'] Demo Output: ['Stannis\n', 'Daenerys\n', 'Stannis\n'] Note: In the first sample Stannis will use his move to burn a city with two people and Daenerys will be forced to burn a city with one resident. The only survivor city will have one resident left, that is, the total sum is odd, and thus Stannis wins. In the second sample, if Stannis burns a city with two people, Daenerys burns the city with one resident, or vice versa. In any case, the last remaining city will be inhabited by two people, that is, the total sum is even, and hence Daenerys wins.
```python n,k=[int(i) for i in input().split()] l=[int(i) for i in input().split()] no=0 for i in l: no+=i%2 ne=n-no if no<=(n-k)//2: print("Daenerys") else: if no%2: if (n-k)%2 and ne<=(n-k)//2 and ne%2==0: print("Daenerys") elif (n-k)%2==0 and (ne>(n-k)//2 or ne%2): print("Daenerys") else: print("Stannis") else: if (n-k)%2 and ne<=(n-k)//2 and ne%2: print("Daenerys") elif (n-k)%2==0 and (ne>(n-k)//2 or ne%2==0): print("Daenerys") else: print("Stannis") ```
0
313
D
Ilya and Roads
PROGRAMMING
2,100
[ "dp" ]
null
null
Everything is great about Ilya's city, except the roads. The thing is, the only ZooVille road is represented as *n* holes in a row. We will consider the holes numbered from 1 to *n*, from left to right. Ilya is really keep on helping his city. So, he wants to fix at least *k* holes (perharps he can fix more) on a single ZooVille road. The city has *m* building companies, the *i*-th company needs *c**i* money units to fix a road segment containing holes with numbers of at least *l**i* and at most *r**i*. The companies in ZooVille are very greedy, so, if they fix a segment containing some already fixed holes, they do not decrease the price for fixing the segment. Determine the minimum money Ilya will need to fix at least *k* holes.
The first line contains three integers *n*,<=*m*,<=*k* (1<=≤<=*n*<=≤<=300,<=1<=≤<=*m*<=≤<=105,<=1<=≤<=*k*<=≤<=*n*). The next *m* lines contain the companies' description. The *i*-th line contains three integers *l**i*,<=*r**i*,<=*c**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*,<=1<=≤<=*c**i*<=≤<=109).
Print a single integer — the minimum money Ilya needs to fix at least *k* holes. If it is impossible to fix at least *k* holes, print -1. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier.
[ "10 4 6\n7 9 11\n6 9 13\n7 7 7\n3 5 6\n", "10 7 1\n3 4 15\n8 9 8\n5 6 8\n9 10 6\n1 4 2\n1 4 10\n8 10 13\n", "10 1 9\n5 10 14\n" ]
[ "17\n", "2\n", "-1\n" ]
none
2,500
[ { "input": "10 4 6\n7 9 11\n6 9 13\n7 7 7\n3 5 6", "output": "17" }, { "input": "10 7 1\n3 4 15\n8 9 8\n5 6 8\n9 10 6\n1 4 2\n1 4 10\n8 10 13", "output": "2" }, { "input": "10 1 9\n5 10 14", "output": "-1" }, { "input": "10 6 9\n6 8 7\n2 8 11\n2 6 10\n8 10 9\n2 5 8\n2 3 8", "output": "20" }, { "input": "10 6 8\n3 6 7\n1 4 3\n2 7 10\n4 7 4\n7 10 15\n4 7 7", "output": "18" }, { "input": "10 4 10\n1 1 11\n7 7 15\n2 3 11\n2 8 6", "output": "-1" }, { "input": "10 3 7\n4 6 6\n5 7 1\n2 10 15", "output": "15" }, { "input": "10 5 3\n2 10 10\n3 6 10\n5 5 7\n2 7 4\n2 7 6", "output": "4" }, { "input": "10 5 4\n2 8 3\n4 7 15\n1 1 13\n7 9 10\n10 10 2", "output": "3" }, { "input": "1 1 1\n1 1 1", "output": "1" }, { "input": "10 2 6\n1 7 1123\n2 10 33", "output": "33" }, { "input": "5 2 5\n1 3 1\n2 5 1", "output": "2" }, { "input": "1 3 1\n1 1 5\n1 1 3\n1 1 12", "output": "3" }, { "input": "3 3 3\n1 2 1000000000\n2 3 1000000000\n1 1 1000000000", "output": "2000000000" } ]
1,691,734,334
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
0
60
0
print("_RANDOM_GUESS_1691734334.8755386")# 1691734334.8755558
Title: Ilya and Roads Time Limit: None seconds Memory Limit: None megabytes Problem Description: Everything is great about Ilya's city, except the roads. The thing is, the only ZooVille road is represented as *n* holes in a row. We will consider the holes numbered from 1 to *n*, from left to right. Ilya is really keep on helping his city. So, he wants to fix at least *k* holes (perharps he can fix more) on a single ZooVille road. The city has *m* building companies, the *i*-th company needs *c**i* money units to fix a road segment containing holes with numbers of at least *l**i* and at most *r**i*. The companies in ZooVille are very greedy, so, if they fix a segment containing some already fixed holes, they do not decrease the price for fixing the segment. Determine the minimum money Ilya will need to fix at least *k* holes. Input Specification: The first line contains three integers *n*,<=*m*,<=*k* (1<=≤<=*n*<=≤<=300,<=1<=≤<=*m*<=≤<=105,<=1<=≤<=*k*<=≤<=*n*). The next *m* lines contain the companies' description. The *i*-th line contains three integers *l**i*,<=*r**i*,<=*c**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*,<=1<=≤<=*c**i*<=≤<=109). Output Specification: Print a single integer — the minimum money Ilya needs to fix at least *k* holes. If it is impossible to fix at least *k* holes, print -1. Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use the cin, cout streams or the %I64d specifier. Demo Input: ['10 4 6\n7 9 11\n6 9 13\n7 7 7\n3 5 6\n', '10 7 1\n3 4 15\n8 9 8\n5 6 8\n9 10 6\n1 4 2\n1 4 10\n8 10 13\n', '10 1 9\n5 10 14\n'] Demo Output: ['17\n', '2\n', '-1\n'] Note: none
```python print("_RANDOM_GUESS_1691734334.8755386")# 1691734334.8755558 ```
0
58
A
Chat room
PROGRAMMING
1,000
[ "greedy", "strings" ]
A. Chat room
1
256
Vasya has recently learned to type and log on to the Internet. He immediately entered a chat room and decided to say hello to everybody. Vasya typed the word *s*. It is considered that Vasya managed to say hello if several letters can be deleted from the typed word so that it resulted in the word "hello". For example, if Vasya types the word "ahhellllloou", it will be considered that he said hello, and if he types "hlelo", it will be considered that Vasya got misunderstood and he didn't manage to say hello. Determine whether Vasya managed to say hello by the given word *s*.
The first and only line contains the word *s*, which Vasya typed. This word consisits of small Latin letters, its length is no less that 1 and no more than 100 letters.
If Vasya managed to say hello, print "YES", otherwise print "NO".
[ "ahhellllloou\n", "hlelo\n" ]
[ "YES\n", "NO\n" ]
none
500
[ { "input": "ahhellllloou", "output": "YES" }, { "input": "hlelo", "output": "NO" }, { "input": "helhcludoo", "output": "YES" }, { "input": "hehwelloho", "output": "YES" }, { "input": "pnnepelqomhhheollvlo", "output": "YES" }, { "input": "tymbzjyqhymedasloqbq", "output": "NO" }, { "input": "yehluhlkwo", "output": "NO" }, { "input": "hatlevhhalrohairnolsvocafgueelrqmlqlleello", "output": "YES" }, { "input": "hhhtehdbllnhwmbyhvelqqyoulretpbfokflhlhreeflxeftelziclrwllrpflflbdtotvlqgoaoqldlroovbfsq", "output": "YES" }, { "input": "rzlvihhghnelqtwlexmvdjjrliqllolhyewgozkuovaiezgcilelqapuoeglnwmnlftxxiigzczlouooi", "output": "YES" }, { "input": "pfhhwctyqdlkrwhebfqfelhyebwllhemtrmeblgrynmvyhioesqklclocxmlffuormljszllpoo", "output": "YES" }, { "input": "lqllcolohwflhfhlnaow", "output": "NO" }, { "input": "heheeellollvoo", "output": "YES" }, { "input": "hellooo", "output": "YES" }, { "input": "o", "output": "NO" }, { "input": "hhqhzeclohlehljlhtesllylrolmomvuhcxsobtsckogdv", "output": "YES" }, { "input": "yoegfuzhqsihygnhpnukluutocvvwuldiighpogsifealtgkfzqbwtmgghmythcxflebrkctlldlkzlagovwlstsghbouk", "output": "YES" }, { "input": "uatqtgbvrnywfacwursctpagasnhydvmlinrcnqrry", "output": "NO" }, { "input": "tndtbldbllnrwmbyhvqaqqyoudrstpbfokfoclnraefuxtftmgzicorwisrpfnfpbdtatvwqgyalqtdtrjqvbfsq", "output": "NO" }, { "input": "rzlvirhgemelnzdawzpaoqtxmqucnahvqnwldklrmjiiyageraijfivigvozgwngiulttxxgzczptusoi", "output": "YES" }, { "input": "kgyelmchocojsnaqdsyeqgnllytbqietpdlgknwwumqkxrexgdcnwoldicwzwofpmuesjuxzrasscvyuqwspm", "output": "YES" }, { "input": "pnyvrcotjvgynbeldnxieghfltmexttuxzyac", "output": "NO" }, { "input": "dtwhbqoumejligbenxvzhjlhosqojetcqsynlzyhfaevbdpekgbtjrbhlltbceobcok", "output": "YES" }, { "input": "crrfpfftjwhhikwzeedrlwzblckkteseofjuxjrktcjfsylmlsvogvrcxbxtffujqshslemnixoeezivksouefeqlhhokwbqjz", "output": "YES" }, { "input": "jhfbndhyzdvhbvhmhmefqllujdflwdpjbehedlsqfdsqlyelwjtyloxwsvasrbqosblzbowlqjmyeilcvotdlaouxhdpoeloaovb", "output": "YES" }, { "input": "hwlghueoemiqtjhhpashjsouyegdlvoyzeunlroypoprnhlyiwiuxrghekaylndhrhllllwhbebezoglydcvykllotrlaqtvmlla", "output": "YES" }, { "input": "wshiaunnqnqxodholbipwhhjmyeblhgpeleblklpzwhdunmpqkbuzloetmwwxmeltkrcomulxauzlwmlklldjodozxryghsnwgcz", "output": "YES" }, { "input": "shvksednttggehroewuiptvvxtrzgidravtnjwuqrlnnkxbplctzkckinpkgjopjfoxdbojtcvsuvablcbkrzajrlhgobkcxeqti", "output": "YES" }, { "input": "hyyhddqhxhekehkwfhlnlsihzefwchzerevcjtokefplholrbvxlltdlafjxrfhleglrvlolojoqaolagtbeyogxlbgfolllslli", "output": "YES" }, { "input": "iaagrdhhelxpdegueiulflquvlzidoprzkehthkldaytrjwhyhprwjxlltinxvuilxohqgjqcvkkdcuoliekcnlilwgqlnlzouoo", "output": "YES" }, { "input": "wfluaeseldgxyvxpwuhkptdmlflnlhktwxiabsvkolsquymrmhzczzoybvlilhmvsuunggvgxzgyyffk", "output": "NO" }, { "input": "loee", "output": "NO" }, { "input": "izdipwylefqmjbuoznfglgcfvedeouflkeehxbasaqmiooppfsqlhprospqgxvzrcpwlfdddngoqvpwvggsnvvxhmjoslwjudjlo", "output": "NO" }, { "input": "pplynflbjlseflaegzqpdxswgunhnlglqhycrbcwdfhclmcrwekkzsoosmfblljeenwfjyifcvxihhhbyhmhlkvtskeglaovjnsi", "output": "YES" }, { "input": "xqjqmenkodmlhzyzmmvofdngktygbbxbzpluzcohohmalkoeuwfikblltaaigv", "output": "NO" }, { "input": "hello", "output": "YES" }, { "input": "oohell", "output": "NO" }, { "input": "hell", "output": "NO" }, { "input": "eloellohoelo", "output": "NO" }, { "input": "helllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllllo", "output": "YES" } ]
1,656,764,181
2,147,483,647
Python 3
WRONG_ANSWER
TESTS
4
31
0
n=list(input()) if n.index('h')<n.index('e')<n.index('l')<n.index('o'): 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 n=list(input()) if n.index('h')<n.index('e')<n.index('l')<n.index('o'): print("YES") else: print("NO") ```
0
109
A
Lucky Sum of Digits
PROGRAMMING
1,000
[ "brute force", "implementation" ]
A. Lucky Sum of Digits
2
256
Petya loves lucky numbers. We all know that lucky numbers are the positive integers whose decimal representations contain only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya wonders eagerly what minimum lucky number has the sum of digits equal to *n*. Help him cope with the task.
The single line contains an integer *n* (1<=≤<=*n*<=≤<=106) — the sum of digits of the required lucky number.
Print on the single line the result — the minimum lucky number, whose sum of digits equals *n*. If such number does not exist, print -1.
[ "11\n", "10\n" ]
[ "47\n", "-1\n" ]
none
500
[ { "input": "11", "output": "47" }, { "input": "10", "output": "-1" }, { "input": "64", "output": "4477777777" }, { "input": "1", "output": "-1" }, { "input": "4", "output": "4" }, { "input": "7", "output": "7" }, { "input": "12", "output": "444" }, { "input": "1000000", "output": "4477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "47", "output": "44477777" }, { "input": "100", "output": "4444777777777777" }, { "input": "700", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "485", "output": "44447777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "111", "output": "444447777777777777" }, { "input": "85", "output": "4477777777777" }, { "input": "114", "output": "444477777777777777" }, { "input": "474", "output": "444777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "74", "output": "47777777777" }, { "input": "1000", "output": "4444477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "1024", "output": "4444777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777" }, { "input": "4444", "output": "4444477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "45784", "output": "4777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "10000", "output": "4777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "9854", "output": "4447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "186", "output": "477777777777777777777777777" }, { "input": "10416", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "10417", "output": "4477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "3840", "output": "4777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "100000", "output": "4447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "9876", "output": "4444477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "99999", "output": "4777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "777777", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "854759", "output": "4444447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "11000", "output": "4444447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "18951", "output": "4444777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "999999", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "888887", "output": "4444477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "999998", "output": "4444477777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "40008", "output": "4444447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "10691", "output": "4444777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "5", "output": "-1" }, { "input": "6", "output": "-1" }, { "input": "9", "output": "-1" }, { "input": "8", "output": "44" }, { "input": "2", "output": "-1" }, { "input": "3", "output": "-1" }, { "input": "999997", "output": "4447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "999996", "output": "4777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "999990", "output": "4447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "999980", "output": "4444777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "800000", "output": "4447777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." }, { "input": "980000", "output": "7777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777777..." } ]
1,584,563,594
2,147,483,647
Python 3
OK
TESTS
51
218
614,400
entrada = int(input()) sete = 0 quatro = 0 quatro += entrada // 4 resto = entrada % 4 while resto % 7 != 0: if quatro == 0: break quatro -= 1 resto += 4 if resto % 7 == 0: sete += resto // 7 tmp1 = quatro // 7 tmp2 = quatro % 7 sete += tmp1 * 4 quatro = tmp2 print(quatro*"4" + sete*"7") else: print(-1)
Title: Lucky Sum of Digits Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Petya loves lucky numbers. We all know that lucky numbers are the positive integers whose decimal representations contain only the lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Petya wonders eagerly what minimum lucky number has the sum of digits equal to *n*. Help him cope with the task. Input Specification: The single line contains an integer *n* (1<=≤<=*n*<=≤<=106) — the sum of digits of the required lucky number. Output Specification: Print on the single line the result — the minimum lucky number, whose sum of digits equals *n*. If such number does not exist, print -1. Demo Input: ['11\n', '10\n'] Demo Output: ['47\n', '-1\n'] Note: none
```python entrada = int(input()) sete = 0 quatro = 0 quatro += entrada // 4 resto = entrada % 4 while resto % 7 != 0: if quatro == 0: break quatro -= 1 resto += 4 if resto % 7 == 0: sete += resto // 7 tmp1 = quatro // 7 tmp2 = quatro % 7 sete += tmp1 * 4 quatro = tmp2 print(quatro*"4" + sete*"7") else: print(-1) ```
3.944356
762
A
k-th divisor
PROGRAMMING
1,400
[ "math", "number theory" ]
null
null
You are given two integers *n* and *k*. Find *k*-th smallest divisor of *n*, or report that it doesn't exist. Divisor of *n* is any such natural number, that *n* can be divided by it without remainder.
The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=1015, 1<=≤<=*k*<=≤<=109).
If *n* has less than *k* divisors, output -1. Otherwise, output the *k*-th smallest divisor of *n*.
[ "4 2\n", "5 3\n", "12 5\n" ]
[ "2\n", "-1\n", "6\n" ]
In the first example, number 4 has three divisors: 1, 2 and 4. The second one is 2. In the second example, number 5 has only two divisors: 1 and 5. The third divisor doesn't exist, so the answer is -1.
0
[ { "input": "4 2", "output": "2" }, { "input": "5 3", "output": "-1" }, { "input": "12 5", "output": "6" }, { "input": "1 1", "output": "1" }, { "input": "866421317361600 26880", "output": "866421317361600" }, { "input": "866421317361600 26881", "output": "-1" }, { "input": "1000000000000000 1000000000", "output": "-1" }, { "input": "1000000000000000 100", "output": "1953125" }, { "input": "1 2", "output": "-1" }, { "input": "4 3", "output": "4" }, { "input": "4 4", "output": "-1" }, { "input": "9 3", "output": "9" }, { "input": "21 3", "output": "7" }, { "input": "67280421310721 1", "output": "1" }, { "input": "6 3", "output": "3" }, { "input": "3 3", "output": "-1" }, { "input": "16 3", "output": "4" }, { "input": "1 1000", "output": "-1" }, { "input": "16 4", "output": "8" }, { "input": "36 8", "output": "18" }, { "input": "49 4", "output": "-1" }, { "input": "9 4", "output": "-1" }, { "input": "16 1", "output": "1" }, { "input": "16 6", "output": "-1" }, { "input": "16 5", "output": "16" }, { "input": "25 4", "output": "-1" }, { "input": "4010815561 2", "output": "63331" }, { "input": "49 3", "output": "49" }, { "input": "36 6", "output": "9" }, { "input": "36 10", "output": "-1" }, { "input": "25 3", "output": "25" }, { "input": "22876792454961 28", "output": "7625597484987" }, { "input": "1234 2", "output": "2" }, { "input": "179458711 2", "output": "179458711" }, { "input": "900104343024121 100000", "output": "-1" }, { "input": "8 3", "output": "4" }, { "input": "100 6", "output": "20" }, { "input": "15500 26", "output": "-1" }, { "input": "111111 1", "output": "1" }, { "input": "100000000000000 200", "output": "160000000000" }, { "input": "1000000000000 100", "output": "6400000" }, { "input": "100 10", "output": "-1" }, { "input": "1000000000039 2", "output": "1000000000039" }, { "input": "64 5", "output": "16" }, { "input": "999999961946176 33", "output": "63245552" }, { "input": "376219076689 3", "output": "376219076689" }, { "input": "999999961946176 63", "output": "999999961946176" }, { "input": "1048576 12", "output": "2048" }, { "input": "745 21", "output": "-1" }, { "input": "748 6", "output": "22" }, { "input": "999999961946176 50", "output": "161082468097" }, { "input": "10 3", "output": "5" }, { "input": "1099511627776 22", "output": "2097152" }, { "input": "1000000007 100010", "output": "-1" }, { "input": "3 1", "output": "1" }, { "input": "100 8", "output": "50" }, { "input": "100 7", "output": "25" }, { "input": "7 2", "output": "7" }, { "input": "999999961946176 64", "output": "-1" }, { "input": "20 5", "output": "10" }, { "input": "999999999999989 2", "output": "999999999999989" }, { "input": "100000000000000 114", "output": "10240000" }, { "input": "99999640000243 3", "output": "9999991" }, { "input": "999998000001 566", "output": "333332666667" }, { "input": "99999820000081 2", "output": "9999991" }, { "input": "49000042000009 3", "output": "49000042000009" }, { "input": "151491429961 4", "output": "-1" }, { "input": "32416190071 2", "output": "32416190071" }, { "input": "1000 8", "output": "25" }, { "input": "1999967841 15", "output": "1999967841" }, { "input": "26880 26880", "output": "-1" }, { "input": "151491429961 3", "output": "151491429961" }, { "input": "90000000000 300", "output": "100000000" }, { "input": "98765004361 10", "output": "-1" }, { "input": "15 2", "output": "3" }, { "input": "16 2", "output": "2" }, { "input": "1996 2", "output": "2" }, { "input": "1997 2", "output": "1997" }, { "input": "1999 2", "output": "1999" }, { "input": "1998 2", "output": "2" }, { "input": "1998 1", "output": "1" }, { "input": "1998 7", "output": "27" }, { "input": "1998 8", "output": "37" }, { "input": "100000380000361 2", "output": "10000019" }, { "input": "15 1", "output": "1" }, { "input": "100000000000000 226", "output": "-1" }, { "input": "844030857550613 517", "output": "-1" }, { "input": "4567890 14", "output": "430" }, { "input": "123123123 123123123", "output": "-1" }, { "input": "24 4", "output": "4" }, { "input": "999999993568952 17", "output": "31622777" }, { "input": "99999999994190 9", "output": "241656799" }, { "input": "999997874844049 4", "output": "-1" }, { "input": "99999999999931 2", "output": "99999999999931" }, { "input": "2 3", "output": "-1" }, { "input": "67280421310721 2", "output": "67280421310721" } ]
1,528,753,531
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
4
2,000
921,600
from functools import reduce def factors(m): return set(reduce(list.__add__, ([i, m // i] for i in range(1, int(pow(m, 0.5) + 1)) if m % i == 0))) n, k = [int(j) for j in input().split()] def fact(k): lst = list(factors(n)) lst1 = sorted(lst) try: return lst1[k - 1] except IndexError: return -1 print(fact(k))
Title: k-th divisor Time Limit: None seconds Memory Limit: None megabytes Problem Description: You are given two integers *n* and *k*. Find *k*-th smallest divisor of *n*, or report that it doesn't exist. Divisor of *n* is any such natural number, that *n* can be divided by it without remainder. Input Specification: The first line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=1015, 1<=≤<=*k*<=≤<=109). Output Specification: If *n* has less than *k* divisors, output -1. Otherwise, output the *k*-th smallest divisor of *n*. Demo Input: ['4 2\n', '5 3\n', '12 5\n'] Demo Output: ['2\n', '-1\n', '6\n'] Note: In the first example, number 4 has three divisors: 1, 2 and 4. The second one is 2. In the second example, number 5 has only two divisors: 1 and 5. The third divisor doesn't exist, so the answer is -1.
```python from functools import reduce def factors(m): return set(reduce(list.__add__, ([i, m // i] for i in range(1, int(pow(m, 0.5) + 1)) if m % i == 0))) n, k = [int(j) for j in input().split()] def fact(k): lst = list(factors(n)) lst1 = sorted(lst) try: return lst1[k - 1] except IndexError: return -1 print(fact(k)) ```
0
801
A
Vicious Keyboard
PROGRAMMING
1,100
[ "brute force" ]
null
null
Tonio has a keyboard with only two letters, "V" and "K". One day, he has typed out a string *s* with only these two letters. He really likes it when the string "VK" appears, so he wishes to change at most one letter in the string (or do no changes) to maximize the number of occurrences of that string. Compute the maximum number of times "VK" can appear as a substring (i. e. a letter "K" right after a letter "V") in the resulting string.
The first line will contain a string *s* consisting only of uppercase English letters "V" and "K" with length not less than 1 and not greater than 100.
Output a single integer, the maximum number of times "VK" can appear as a substring of the given string after changing at most one character.
[ "VK\n", "VV\n", "V\n", "VKKKKKKKKKVVVVVVVVVK\n", "KVKV\n" ]
[ "1\n", "1\n", "0\n", "3\n", "1\n" ]
For the first case, we do not change any letters. "VK" appears once, which is the maximum number of times it could appear. For the second case, we can change the second character from a "V" to a "K". This will give us the string "VK". This has one occurrence of the string "VK" as a substring. For the fourth case, we can change the fourth character from a "K" to a "V". This will give us the string "VKKVKKKKKKVVVVVVVVVK". This has three occurrences of the string "VK" as a substring. We can check no other moves can give us strictly more occurrences.
500
[ { "input": "VK", "output": "1" }, { "input": "VV", "output": "1" }, { "input": "V", "output": "0" }, { "input": "VKKKKKKKKKVVVVVVVVVK", "output": "3" }, { "input": "KVKV", "output": "1" }, { "input": "VKKVVVKVKVK", "output": "5" }, { "input": "VKVVKVKVVKVKKKKVVVVVVVVKVKVVVVVVKKVKKVKVVKVKKVVVVKV", "output": "14" }, { "input": "VVKKVKKVVKKVKKVKVVKKVKKVVKKVKVVKKVKKVKVVKKVVKKVKVVKKVKVVKKVVKVVKKVKKVKKVKKVKKVKVVKKVKKVKKVKKVKKVVKVK", "output": "32" }, { "input": "KVVKKVKVKVKVKVKKVKVKVVKVKVVKVVKVKKVKVKVKVKVKVKVKVKVKVKVKVKVKVKVVKVKVVKKVKVKK", "output": "32" }, { "input": "KVVVVVKKVKVVKVVVKVVVKKKVKKKVVKVKKKVKKKKVKVVVVVKKKVVVVKKVVVVKKKVKVVVVVVVKKVKVKKKVVKVVVKVVKK", "output": "21" }, { "input": "VVVVVKKVKVKVKVVKVVKKVVKVKKKKKKKVKKKVVVVVVKKVVVKVKVVKVKKVVKVVVKKKKKVVVVVKVVVVKVVVKKVKKVKKKVKKVKKVVKKV", "output": "25" }, { "input": "KKVVKVVKVVKKVVKKVKVVKKV", "output": "7" }, { "input": "KKVVKKVVVKKVKKVKKVVVKVVVKKVKKVVVKKVVVKVVVKVVVKKVVVKKVVVKVVVKKVVVKVVKKVVVKKVVVKKVVKVVVKKVVKKVKKVVVKKV", "output": "24" }, { "input": "KVKVKVKVKVKVKVKVKVKVVKVKVKVKVKVKVKVVKVKVKKVKVKVKVKVVKVKVKVKVKVKVKVKVKKVKVKVV", "output": "35" }, { "input": "VKVVVKKKVKVVKVKVKVKVKVV", "output": "9" }, { "input": "KKKKVKKVKVKVKKKVVVVKK", "output": "6" }, { "input": "KVKVKKVVVVVVKKKVKKKKVVVVKVKKVKVVK", "output": "9" }, { "input": "KKVKKVKKKVKKKVKKKVKVVVKKVVVVKKKVKKVVKVKKVKVKVKVVVKKKVKKKKKVVKVVKVVVKKVVKVVKKKKKVK", "output": "22" }, { "input": "VVVKVKVKVVVVVKVVVKKVVVKVVVVVKKVVKVVVKVVVKVKKKVVKVVVVVKVVVVKKVVKVKKVVKKKVKVVKVKKKKVVKVVVKKKVKVKKKKKK", "output": "25" }, { "input": "VKVVKVVKKKVVKVKKKVVKKKVVKVVKVVKKVKKKVKVKKKVVKVKKKVVKVVKKKVVKKKVKKKVVKKVVKKKVKVKKKVKKKVKKKVKVKKKVVKVK", "output": "29" }, { "input": "KKVKVVVKKVV", "output": "3" }, { "input": "VKVKVKVKVKVKVKVKVKVKVVKVKVKVKVKVK", "output": "16" }, { "input": "VVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVV", "output": "13" }, { "input": "VVKKVKVKKKVVVKVVVKVKKVKKKVVVKVVKVKKVKKVKVKVVKKVVKKVKVVKKKVVKKVVVKVKVVVKVKVVKVKKVKKV", "output": "26" }, { "input": "VVKVKKVVKKVVKKVVKKVVKKVKKVVKVKKVVKKVVKKVVKKVVKKVVKVVKKVVKVVKKVVKVVKKVVKKVKKVVKVVKKVVKVVKKVV", "output": "26" }, { "input": "K", "output": "0" }, { "input": "VKVK", "output": "2" }, { "input": "VKVV", "output": "2" }, { "input": "KV", "output": "0" }, { "input": "KK", "output": "1" }, { "input": "KKVK", "output": "2" }, { "input": "KKKK", "output": "1" }, { "input": "KKV", "output": "1" }, { "input": "KKVKVK", "output": "3" }, { "input": "VKKVK", "output": "2" }, { "input": "VKKK", "output": "2" }, { "input": "KKK", "output": "1" }, { "input": "KVV", "output": "1" }, { "input": "KKVKV", "output": "2" }, { "input": "VVK", "output": "1" }, { "input": "VVVKVKVKVKVKVKVK", "output": "8" }, { "input": "KVVVK", "output": "2" }, { "input": "VVVKK", "output": "2" }, { "input": "KKVV", "output": "1" }, { "input": "KKKKKKK", "output": "1" }, { "input": "VKKKVK", "output": "3" }, { "input": "KKVVV", "output": "1" }, { "input": "VVVVVV", "output": "1" }, { "input": "KKKV", "output": "1" }, { "input": "VVKVV", "output": "2" }, { "input": "VKVKKK", "output": "3" }, { "input": "VKKV", "output": "1" }, { "input": "VKKVV", "output": "2" }, { "input": "VVKKVV", "output": "2" }, { "input": "KKVVKKV", "output": "2" }, { "input": "KKKKK", "output": "1" }, { "input": "VKVVKKVKKVVKVKKVKKKVKKVKVKK", "output": "10" }, { "input": "VKVKVV", "output": "3" }, { "input": "VKVVKVV", "output": "3" }, { "input": "VVV", "output": "1" }, { "input": "VVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVV", "output": "1" }, { "input": "VVKKKKKKVKK", "output": "3" }, { "input": "KVKVKVV", "output": "3" } ]
1,492,360,483
3,583
Python 3
OK
TESTS
63
62
5,529,600
count=0 countk=0 countv=0 def st0(List,i): global countk temp=0 while i<len(List) and List[i]=='K': temp+=1 i+=1 countk=max(countk,temp) if i==len(List): return st1(List,i+1) def st1(List,i): global count if i< len(List) and List[i]=='K': count+=1 st0(List,i+1) elif i<len(List) and List[i]=='V': st2(List,i+1) elif i==len(List): return def st2(List,i): global countv global count temp=2 while i<len(List) and List[i]=='V': temp+=1 i+=1 if i==len(List): countv=max(temp,countv) return elif List[i]=='K': count+=1 temp-=1 countv=max(temp,countv) st0(List,i+1) List=list(input().strip()) try: st0(List,0) except: pass #print(count,countv,countk) countk=max(countv-1,countk-1) if countk>0: count+=1 print(count)
Title: Vicious Keyboard Time Limit: None seconds Memory Limit: None megabytes Problem Description: Tonio has a keyboard with only two letters, "V" and "K". One day, he has typed out a string *s* with only these two letters. He really likes it when the string "VK" appears, so he wishes to change at most one letter in the string (or do no changes) to maximize the number of occurrences of that string. Compute the maximum number of times "VK" can appear as a substring (i. e. a letter "K" right after a letter "V") in the resulting string. Input Specification: The first line will contain a string *s* consisting only of uppercase English letters "V" and "K" with length not less than 1 and not greater than 100. Output Specification: Output a single integer, the maximum number of times "VK" can appear as a substring of the given string after changing at most one character. Demo Input: ['VK\n', 'VV\n', 'V\n', 'VKKKKKKKKKVVVVVVVVVK\n', 'KVKV\n'] Demo Output: ['1\n', '1\n', '0\n', '3\n', '1\n'] Note: For the first case, we do not change any letters. "VK" appears once, which is the maximum number of times it could appear. For the second case, we can change the second character from a "V" to a "K". This will give us the string "VK". This has one occurrence of the string "VK" as a substring. For the fourth case, we can change the fourth character from a "K" to a "V". This will give us the string "VKKVKKKKKKVVVVVVVVVK". This has three occurrences of the string "VK" as a substring. We can check no other moves can give us strictly more occurrences.
```python count=0 countk=0 countv=0 def st0(List,i): global countk temp=0 while i<len(List) and List[i]=='K': temp+=1 i+=1 countk=max(countk,temp) if i==len(List): return st1(List,i+1) def st1(List,i): global count if i< len(List) and List[i]=='K': count+=1 st0(List,i+1) elif i<len(List) and List[i]=='V': st2(List,i+1) elif i==len(List): return def st2(List,i): global countv global count temp=2 while i<len(List) and List[i]=='V': temp+=1 i+=1 if i==len(List): countv=max(temp,countv) return elif List[i]=='K': count+=1 temp-=1 countv=max(temp,countv) st0(List,i+1) List=list(input().strip()) try: st0(List,0) except: pass #print(count,countv,countk) countk=max(countv-1,countk-1) if countk>0: count+=1 print(count) ```
3
937
A
Olympiad
PROGRAMMING
800
[ "implementation", "sortings" ]
null
null
The recent All-Berland Olympiad in Informatics featured *n* participants with each scoring a certain amount of points. As the head of the programming committee, you are to determine the set of participants to be awarded with diplomas with respect to the following criteria: - At least one participant should get a diploma. - None of those with score equal to zero should get awarded. - When someone is awarded, all participants with score not less than his score should also be awarded. Determine the number of ways to choose a subset of participants that will receive the diplomas.
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=100) — the number of participants. The next line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=600) — participants' scores. It's guaranteed that at least one participant has non-zero score.
Print a single integer — the desired number of ways.
[ "4\n1 3 3 2\n", "3\n1 1 1\n", "4\n42 0 0 42\n" ]
[ "3\n", "1\n", "1\n" ]
There are three ways to choose a subset in sample case one. 1. Only participants with 3 points will get diplomas. 1. Participants with 2 or 3 points will get diplomas. 1. Everyone will get a diploma! The only option in sample case two is to award everyone. Note that in sample case three participants with zero scores cannot get anything.
500
[ { "input": "4\n1 3 3 2", "output": "3" }, { "input": "3\n1 1 1", "output": "1" }, { "input": "4\n42 0 0 42", "output": "1" }, { "input": "10\n1 0 1 0 1 0 0 0 0 1", "output": "1" }, { "input": "10\n572 471 540 163 50 30 561 510 43 200", "output": "10" }, { "input": "100\n122 575 426 445 172 81 247 429 97 202 175 325 382 384 417 356 132 502 328 537 57 339 518 211 479 306 140 168 268 16 140 263 593 249 391 310 555 468 231 180 157 18 334 328 276 155 21 280 322 545 111 267 467 274 291 304 235 34 365 180 21 95 501 552 325 331 302 353 296 22 289 399 7 466 32 302 568 333 75 192 284 10 94 128 154 512 9 480 243 521 551 492 420 197 207 125 367 117 438 600", "output": "94" }, { "input": "100\n600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600 600", "output": "1" }, { "input": "78\n5 4 13 2 5 6 2 10 10 1 2 6 7 9 6 3 5 7 1 10 2 2 7 0 2 11 11 3 1 13 3 10 6 2 0 3 0 5 0 1 4 11 1 1 7 0 12 7 5 12 0 2 12 9 8 3 4 3 4 11 4 10 2 3 10 12 5 6 1 11 2 0 8 7 9 1 3 12", "output": "13" }, { "input": "34\n220 387 408 343 184 447 197 307 337 414 251 319 426 322 347 242 208 412 188 185 241 235 216 259 331 372 322 284 444 384 214 297 389 391", "output": "33" }, { "input": "100\n1 2 1 0 3 0 2 0 0 1 2 0 1 3 0 3 3 1 3 0 0 2 1 2 2 1 3 3 3 3 3 2 0 0 2 1 2 3 2 3 0 1 1 3 3 2 0 3 1 0 2 2 2 1 2 3 2 1 0 3 0 2 0 3 0 2 1 0 3 1 0 2 2 1 3 1 3 0 2 3 3 1 1 3 1 3 0 3 2 0 2 3 3 0 2 0 2 0 1 3", "output": "3" }, { "input": "100\n572 471 540 163 50 30 561 510 43 200 213 387 500 424 113 487 357 333 294 337 435 202 447 494 485 465 161 344 470 559 104 356 393 207 224 213 511 514 60 386 149 216 392 229 429 173 165 401 395 150 127 579 344 390 529 296 225 425 318 79 465 447 177 110 367 212 459 270 41 500 277 567 125 436 178 9 214 342 203 112 144 24 79 155 495 556 40 549 463 281 241 316 2 246 1 396 510 293 332 55", "output": "93" }, { "input": "99\n5 4 13 2 5 6 2 10 10 1 2 6 7 9 6 3 5 7 1 10 2 2 7 0 2 11 11 3 1 13 3 10 6 2 0 3 0 5 0 1 4 11 1 1 7 0 12 7 5 12 0 2 12 9 8 3 4 3 4 11 4 10 2 3 10 12 5 6 1 11 2 0 8 7 9 1 3 12 2 3 9 3 7 13 7 13 0 11 8 12 2 5 9 4 0 6 6 2 13", "output": "13" }, { "input": "99\n1 0 1 0 1 0 0 0 0 1 0 0 1 1 0 1 1 1 1 0 0 0 1 0 0 1 1 1 1 1 1 0 0 0 0 1 0 1 0 1 0 1 1 1 1 0 0 1 1 0 0 0 0 1 0 1 0 1 0 1 0 0 0 1 0 0 1 0 1 1 0 0 0 1 1 1 1 0 0 1 1 1 1 1 1 1 0 1 0 0 0 1 1 0 0 0 0 0 1", "output": "1" }, { "input": "99\n21 74 25 44 71 80 46 28 96 1 74 24 81 83 16 55 31 1 27 36 56 38 17 10 78 5 39 67 67 15 39 62 92 48 90 9 54 67 30 79 56 17 33 27 75 54 20 79 21 44 10 66 66 73 90 3 34 33 64 79 20 94 0 51 24 30 1 52 95 21 88 98 6 65 31 1 67 32 74 91 83 9 93 27 53 11 8 79 42 20 50 91 19 96 6 24 66 16 37", "output": "61" }, { "input": "2\n0 1", "output": "1" }, { "input": "2\n0 600", "output": "1" }, { "input": "4\n1 1 1 2", "output": "2" }, { "input": "4\n0 0 1 2", "output": "2" }, { "input": "1\n5", "output": "1" }, { "input": "2\n0 5", "output": "1" }, { "input": "5\n1 0 0 1 2", "output": "2" } ]
1,665,942,791
2,147,483,647
Python 3
OK
TESTS
21
46
4,300,800
pop1=int(input()) hg2=list(map(int,input().split())) while(0 in hg2): hg2.remove(0) hg2=set(hg2) print(len(hg2)) # hg2=set(hg2) # print(len(hg2))
Title: Olympiad Time Limit: None seconds Memory Limit: None megabytes Problem Description: The recent All-Berland Olympiad in Informatics featured *n* participants with each scoring a certain amount of points. As the head of the programming committee, you are to determine the set of participants to be awarded with diplomas with respect to the following criteria: - At least one participant should get a diploma. - None of those with score equal to zero should get awarded. - When someone is awarded, all participants with score not less than his score should also be awarded. Determine the number of ways to choose a subset of participants that will receive the diplomas. Input Specification: The first line contains a single integer *n* (1<=≤<=*n*<=≤<=100) — the number of participants. The next line contains a sequence of *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=600) — participants' scores. It's guaranteed that at least one participant has non-zero score. Output Specification: Print a single integer — the desired number of ways. Demo Input: ['4\n1 3 3 2\n', '3\n1 1 1\n', '4\n42 0 0 42\n'] Demo Output: ['3\n', '1\n', '1\n'] Note: There are three ways to choose a subset in sample case one. 1. Only participants with 3 points will get diplomas. 1. Participants with 2 or 3 points will get diplomas. 1. Everyone will get a diploma! The only option in sample case two is to award everyone. Note that in sample case three participants with zero scores cannot get anything.
```python pop1=int(input()) hg2=list(map(int,input().split())) while(0 in hg2): hg2.remove(0) hg2=set(hg2) print(len(hg2)) # hg2=set(hg2) # print(len(hg2)) ```
3
59
A
Word
PROGRAMMING
800
[ "implementation", "strings" ]
A. Word
2
256
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
[ "HoUse\n", "ViP\n", "maTRIx\n" ]
[ "house\n", "VIP\n", "matrix\n" ]
none
500
[ { "input": "HoUse", "output": "house" }, { "input": "ViP", "output": "VIP" }, { "input": "maTRIx", "output": "matrix" }, { "input": "BNHWpnpawg", "output": "bnhwpnpawg" }, { "input": "VTYGP", "output": "VTYGP" }, { "input": "CHNenu", "output": "chnenu" }, { "input": "ERPZGrodyu", "output": "erpzgrodyu" }, { "input": "KSXBXWpebh", "output": "KSXBXWPEBH" }, { "input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv", "output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv" }, { "input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd", "output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd" }, { "input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv", "output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv" }, { "input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg", "output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg" }, { "input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak", "output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK" }, { "input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw", "output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW" }, { "input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB", "output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB" }, { "input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge", "output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge" }, { "input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw", "output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw" }, { "input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks", "output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks" }, { "input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz", "output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ" }, { "input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg", "output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG" }, { "input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO", "output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO" }, { "input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd", "output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD" }, { "input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas", "output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas" }, { "input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm", "output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM" }, { "input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn", "output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn" }, { "input": "t", "output": "t" }, { "input": "N", "output": "N" }, { "input": "kv", "output": "kv" }, { "input": "Ur", "output": "ur" }, { "input": "CN", "output": "CN" } ]
1,661,791,543
2,147,483,647
Python 3
RUNTIME_ERROR
TESTS
0
60
0
x = input() c1 = 0 c2 = 0 for i in x: if i.isupper(): c += 1 elif i.islower(): c2 += 1 if c1 <= c2: print(x.lower()) else: print(x.upper())
Title: Word Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word. Input Specification: The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100. Output Specification: Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one. Demo Input: ['HoUse\n', 'ViP\n', 'maTRIx\n'] Demo Output: ['house\n', 'VIP\n', 'matrix\n'] Note: none
```python x = input() c1 = 0 c2 = 0 for i in x: if i.isupper(): c += 1 elif i.islower(): c2 += 1 if c1 <= c2: print(x.lower()) else: print(x.upper()) ```
-1
86
A
Reflection
PROGRAMMING
1,600
[ "math" ]
A. Reflection
2
256
For each positive integer *n* consider the integer ψ(*n*) which is obtained from *n* by replacing every digit *a* in the decimal notation of *n* with the digit (9<=<=-<=<=*a*). We say that ψ(*n*) is the reflection of *n*. For example, reflection of 192 equals 807. Note that leading zeros (if any) should be omitted. So reflection of 9 equals 0, reflection of 91 equals 8. Let us call the weight of the number the product of the number and its reflection. Thus, the weight of the number 10 is equal to 10·89<==<=890. Your task is to find the maximum weight of the numbers in the given range [*l*,<=*r*] (boundaries are included).
Input contains two space-separated integers *l* and *r* (1<=≤<=*l*<=≤<=*r*<=≤<=109) — bounds of the range.
Output should contain single integer number: maximum value of the product *n*·ψ(*n*), where *l*<=≤<=*n*<=≤<=*r*. Please, do not use %lld specificator to read or write 64-bit integers in C++. It is preferred to use cout (also you may use %I64d).
[ "3 7\n", "1 1\n", "8 10\n" ]
[ "20", "8", "890" ]
In the third sample weight of 8 equals 8·1 = 8, weight of 9 equals 9·0 = 0, weight of 10 equals 890. Thus, maximum value of the product is equal to 890.
500
[ { "input": "3 7", "output": "20" }, { "input": "1 1", "output": "8" }, { "input": "8 10", "output": "890" }, { "input": "4 6", "output": "20" }, { "input": "10 100", "output": "89900" }, { "input": "1 999", "output": "249500" }, { "input": "40 60", "output": "2450" }, { "input": "66 74", "output": "2178" }, { "input": "27 71", "output": "2450" }, { "input": "66 95", "output": "2178" }, { "input": "48 51", "output": "2450" }, { "input": "9999999 9999999", "output": "0" }, { "input": "555555 555555", "output": "246913086420" }, { "input": "942 572335596", "output": "249999999500000000" }, { "input": "2331 77424372", "output": "2499999950000000" }, { "input": "314 592188442", "output": "249999999500000000" }, { "input": "6277 181089912", "output": "148296355590742344" }, { "input": "163 306093048", "output": "212400093659976648" }, { "input": "9265 978077465", "output": "249999999500000000" }, { "input": "934 300539101", "output": "210215349469572698" }, { "input": "850 629417171", "output": "249999999500000000" }, { "input": "9015 34697316", "output": "2265827827698828" }, { "input": "595 416293084", "output": "242993151797475860" }, { "input": "3722 867350896", "output": "249999999500000000" }, { "input": "3019 712663676", "output": "249999999500000000" }, { "input": "74 25339", "output": "1891809740" }, { "input": "99 59212", "output": "2499950000" }, { "input": "90 19714", "output": "1582738490" }, { "input": "13 43460", "output": "2457184940" }, { "input": "79 12776", "output": "1114361048" }, { "input": "93 31801", "output": "2168764598" }, { "input": "2 36352", "output": "2313695744" }, { "input": "71990 79486", "output": "2016367910" }, { "input": "58067 66986", "output": "2434865444" }, { "input": "29426 33865", "output": "2239627910" }, { "input": "86189 88384", "output": "1190270090" }, { "input": "46811 52308", "output": "2499950000" }, { "input": "960440942 978948770", "output": "37994137969711694" }, { "input": "366632331 444054372", "output": "246870086263631244" }, { "input": "291070314 465398755", "output": "248802753379051220" }, { "input": "880006277 941096188", "output": "105595228560592994" }, { "input": "191970163 690033048", "output": "249999999500000000" }, { "input": "916069265 970899369", "output": "76886365806290510" }, { "input": "609160934 909699101", "output": "238083889879086710" }, { "input": "21640850 672697171", "output": "249999999500000000" }, { "input": "645009015 679697316", "output": "228972384923720760" }, { "input": "862630595 866814866", "output": "118499050707315380" }, { "input": "51473722 970290896", "output": "249999999500000000" }, { "input": "578453019 869566694", "output": "243845123231332620" }, { "input": "484380637 865372184", "output": "249999999500000000" }, { "input": "541659852 795298538", "output": "248264456189678244" }, { "input": "491257592 512099550", "output": "249999999500000000" }, { "input": "796685541 970363166", "output": "161977688964851778" }, { "input": "733403773 763985558", "output": "195522678015960698" }, { "input": "19971607 162619978", "output": "136174720592659538" }, { "input": "446235722 812546691", "output": "249999999500000000" }, { "input": "885351316 940613198", "output": "101504362371716828" }, { "input": "578176478 671720904", "output": "243888437709339038" }, { "input": "380300819 475584338", "output": "249403874973517418" }, { "input": "419917095 599395901", "output": "249999999500000000" }, { "input": "1 1000000000", "output": "8999999999000000000" }, { "input": "9999 100000001", "output": "90000000699999998" }, { "input": "999999998 999999999", "output": "999999998" }, { "input": "1000000000 1000000000", "output": "8999999999000000000" }, { "input": "999999999 1000000000", "output": "8999999999000000000" }, { "input": "1 2", "output": "14" }, { "input": "91516955 100003356", "output": "90002684688733908" }, { "input": "91769999 100006528", "output": "90005222257378688" }, { "input": "91713375 100004340", "output": "90003471881160060" }, { "input": "91933994 100016179", "output": "90012942838223780" }, { "input": "91504334 100015113", "output": "90012090071582118" }, { "input": "91921683 100018777", "output": "90015021147405494" }, { "input": "91274316 100009110", "output": "90007287816998790" }, { "input": "91135741 100003483", "output": "90002786287865228" }, { "input": "2 2", "output": "14" }, { "input": "4999 4999", "output": "24995000" }, { "input": "4999 5000", "output": "24995000" }, { "input": "5000 5000", "output": "24995000" }, { "input": "6680315 7297787", "output": "22176534820460" }, { "input": "400000001 999999998", "output": "249999999500000000" }, { "input": "100000000 999999999", "output": "249999999500000000" }, { "input": "1 4", "output": "20" }, { "input": "999999999 999999999", "output": "0" }, { "input": "6 7", "output": "18" } ]
1,672,512,815
2,147,483,647
Python 3
TIME_LIMIT_EXCEEDED
TESTS
13
2,000
0
a = list(input().split(" ")) max = 0 for i in range(int(a[0]) , int(a[1])+1): data = str(i) + 'e' index=0 while(data[index]!='e'): index = index + 1 reflection = (10**index)-1 - i weight = i * int(reflection) if weight > max: max = weight print(max)
Title: Reflection Time Limit: 2 seconds Memory Limit: 256 megabytes Problem Description: For each positive integer *n* consider the integer ψ(*n*) which is obtained from *n* by replacing every digit *a* in the decimal notation of *n* with the digit (9<=<=-<=<=*a*). We say that ψ(*n*) is the reflection of *n*. For example, reflection of 192 equals 807. Note that leading zeros (if any) should be omitted. So reflection of 9 equals 0, reflection of 91 equals 8. Let us call the weight of the number the product of the number and its reflection. Thus, the weight of the number 10 is equal to 10·89<==<=890. Your task is to find the maximum weight of the numbers in the given range [*l*,<=*r*] (boundaries are included). Input Specification: Input contains two space-separated integers *l* and *r* (1<=≤<=*l*<=≤<=*r*<=≤<=109) — bounds of the range. Output Specification: Output should contain single integer number: maximum value of the product *n*·ψ(*n*), where *l*<=≤<=*n*<=≤<=*r*. Please, do not use %lld specificator to read or write 64-bit integers in C++. It is preferred to use cout (also you may use %I64d). Demo Input: ['3 7\n', '1 1\n', '8 10\n'] Demo Output: ['20', '8', '890'] Note: In the third sample weight of 8 equals 8·1 = 8, weight of 9 equals 9·0 = 0, weight of 10 equals 890. Thus, maximum value of the product is equal to 890.
```python a = list(input().split(" ")) max = 0 for i in range(int(a[0]) , int(a[1])+1): data = str(i) + 'e' index=0 while(data[index]!='e'): index = index + 1 reflection = (10**index)-1 - i weight = i * int(reflection) if weight > max: max = weight print(max) ```
0
262
A
Roma and Lucky Numbers
PROGRAMMING
800
[ "implementation" ]
null
null
Roma (a popular Russian name that means 'Roman') loves the Little Lvov Elephant's lucky numbers. Let us remind you that lucky numbers are positive integers whose decimal representation only contains lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Roma's got *n* positive integers. He wonders, how many of those integers have not more than *k* lucky digits? Help him, write the program that solves the problem.
The first line contains two integers *n*, *k* (1<=≤<=*n*,<=*k*<=≤<=100). The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the numbers that Roma has. The numbers in the lines are separated by single spaces.
In a single line print a single integer — the answer to the problem.
[ "3 4\n1 2 4\n", "3 2\n447 44 77\n" ]
[ "3\n", "2\n" ]
In the first sample all numbers contain at most four lucky digits, so the answer is 3. In the second sample number 447 doesn't fit in, as it contains more than two lucky digits. All other numbers are fine, so the answer is 2.
500
[ { "input": "3 4\n1 2 4", "output": "3" }, { "input": "3 2\n447 44 77", "output": "2" }, { "input": "2 2\n507978501 180480073", "output": "2" }, { "input": "9 6\n655243746 167613748 1470546 57644035 176077477 56984809 44677 215706823 369042089", "output": "9" }, { "input": "6 100\n170427799 37215529 675016434 168544291 683447134 950090227", "output": "6" }, { "input": "4 2\n194041605 706221269 69909135 257655784", "output": "3" }, { "input": "4 2\n9581849 67346651 530497 272158241", "output": "4" }, { "input": "3 47\n378261451 163985731 230342101", "output": "3" }, { "input": "2 3\n247776868 480572137", "output": "1" }, { "input": "7 77\n366496749 549646417 278840199 119255907 33557677 379268590 150378796", "output": "7" }, { "input": "40 31\n32230963 709031779 144328646 513494529 36547831 416998222 84161665 318773941 170724397 553666286 368402971 48581613 31452501 368026285 47903381 939151438 204145360 189920160 288159400 133145006 314295423 450219949 160203213 358403181 478734385 29331901 31051111 110710191 567314089 139695685 111511396 87708701 317333277 103301481 110400517 634446253 481551313 39202255 105948 738066085", "output": "40" }, { "input": "1 8\n55521105", "output": "1" }, { "input": "49 3\n34644511 150953622 136135827 144208961 359490601 86708232 719413689 188605873 64330753 488776302 104482891 63360106 437791390 46521319 70778345 339141601 136198441 292941209 299339510 582531183 555958105 437904637 74219097 439816011 236010407 122674666 438442529 186501223 63932449 407678041 596993853 92223251 849265278 480265849 30983497 330283357 186901672 20271344 794252593 123774176 27851201 52717531 479907210 196833889 149331196 82147847 255966471 278600081 899317843", "output": "44" }, { "input": "26 2\n330381357 185218042 850474297 483015466 296129476 1205865 538807493 103205601 160403321 694220263 416255901 7245756 507755361 88187633 91426751 1917161 58276681 59540376 576539745 595950717 390256887 105690055 607818885 28976353 488947089 50643601", "output": "22" }, { "input": "38 1\n194481717 126247087 815196361 106258801 381703249 283859137 15290101 40086151 213688513 577996947 513899717 371428417 107799271 11136651 5615081 323386401 381128815 34217126 17709913 520702093 201694245 570931849 169037023 417019726 282437316 7417126 271667553 11375851 185087449 410130883 383045677 5764771 905017051 328584026 215330671 299553233 15838255 234532105", "output": "20" }, { "input": "44 9\n683216389 250581469 130029957 467020047 188395565 206237982 63257361 68314981 732878407 563579660 199133851 53045209 665723851 16273169 10806790 556633156 350593410 474645249 478790761 708234243 71841230 18090541 19836685 146373571 17947452 534010506 46933264 377035021 311636557 75193963 54321761 12759959 71120181 548816939 23608621 31876417 107672995 72575155 369667956 20574379 210596751 532163173 75726739 853719629", "output": "44" }, { "input": "8 6\n204157376 10514197 65483881 347219841 263304577 296402721 11739011 229776191", "output": "8" }, { "input": "38 29\n333702889 680931737 61137217 203030505 68728281 11414209 642645708 590904616 3042901 607198177 189041074 700764043 813035201 198341461 126403544 401436841 420826465 45046581 20249976 46978855 46397957 706610773 24701041 57954481 51603266 593109701 385569073 178982291 582152863 287317968 1474090 34825141 432421977 130257781 151516903 540852403 548392 117246529", "output": "38" }, { "input": "19 3\n562569697 549131571 50676718 84501863 74567295 702372009 365895280 451459937 40378543 167666701 158635641 53639293 442332661 825055617 100109161 326616021 862332843 533271196 4791547", "output": "18" }, { "input": "1 1\n44", "output": "0" }, { "input": "1 1\n4", "output": "1" }, { "input": "10 3\n444 447 774 777 7777 4447 4 7 7 4", "output": "8" } ]
1,631,705,969
2,147,483,647
Python 3
OK
TESTS
34
154
6,758,400
n, k = map(int, input().split()) if n == 1: arr = [input()] else: arr = input().split() count = n for sample in arr: if sample.count("4")+sample.count("7")>k: count -= 1 print(count)
Title: Roma and Lucky Numbers Time Limit: None seconds Memory Limit: None megabytes Problem Description: Roma (a popular Russian name that means 'Roman') loves the Little Lvov Elephant's lucky numbers. Let us remind you that lucky numbers are positive integers whose decimal representation only contains lucky digits 4 and 7. For example, numbers 47, 744, 4 are lucky and 5, 17, 467 are not. Roma's got *n* positive integers. He wonders, how many of those integers have not more than *k* lucky digits? Help him, write the program that solves the problem. Input Specification: The first line contains two integers *n*, *k* (1<=≤<=*n*,<=*k*<=≤<=100). The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the numbers that Roma has. The numbers in the lines are separated by single spaces. Output Specification: In a single line print a single integer — the answer to the problem. Demo Input: ['3 4\n1 2 4\n', '3 2\n447 44 77\n'] Demo Output: ['3\n', '2\n'] Note: In the first sample all numbers contain at most four lucky digits, so the answer is 3. In the second sample number 447 doesn't fit in, as it contains more than two lucky digits. All other numbers are fine, so the answer is 2.
```python n, k = map(int, input().split()) if n == 1: arr = [input()] else: arr = input().split() count = n for sample in arr: if sample.count("4")+sample.count("7")>k: count -= 1 print(count) ```
3
551
A
GukiZ and Contest
PROGRAMMING
800
[ "brute force", "implementation", "sortings" ]
null
null
Professor GukiZ likes programming contests. He especially likes to rate his students on the contests he prepares. Now, he has decided to prepare a new contest. In total, *n* students will attend, and before the start, every one of them has some positive integer rating. Students are indexed from 1 to *n*. Let's denote the rating of *i*-th student as *a**i*. After the contest ends, every student will end up with some positive integer position. GukiZ expects that his students will take places according to their ratings. He thinks that each student will take place equal to . In particular, if student *A* has rating strictly lower then student *B*, *A* will get the strictly better position than *B*, and if two students have equal ratings, they will share the same position. GukiZ would like you to reconstruct the results by following his expectations. Help him and determine the position after the end of the contest for each of his students if everything goes as expected.
The first line contains integer *n* (1<=≤<=*n*<=≤<=2000), number of GukiZ's students. The second line contains *n* numbers *a*1,<=*a*2,<=... *a**n* (1<=≤<=*a**i*<=≤<=2000) where *a**i* is the rating of *i*-th student (1<=≤<=*i*<=≤<=*n*).
In a single line, print the position after the end of the contest for each of *n* students in the same order as they appear in the input.
[ "3\n1 3 3\n", "1\n1\n", "5\n3 5 3 4 5\n" ]
[ "3 1 1\n", "1\n", "4 1 4 3 1\n" ]
In the first sample, students 2 and 3 are positioned first (there is no other student with higher rating), and student 1 is positioned third since there are two students with higher rating. In the second sample, first student is the only one on the contest. In the third sample, students 2 and 5 share the first position with highest rating, student 4 is next with third position, and students 1 and 3 are the last sharing fourth position.
500
[ { "input": "3\n1 3 3", "output": "3 1 1" }, { "input": "1\n1", "output": "1" }, { "input": "5\n3 5 3 4 5", "output": "4 1 4 3 1" }, { "input": "7\n1 3 5 4 2 2 1", "output": "6 3 1 2 4 4 6" }, { "input": "11\n5 6 4 2 9 7 6 6 6 6 7", "output": "9 4 10 11 1 2 4 4 4 4 2" }, { "input": "1\n2000", "output": "1" }, { "input": "2\n2000 2000", "output": "1 1" }, { "input": "3\n500 501 502", "output": "3 2 1" }, { "input": "10\n105 106 1 1 1 11 1000 999 1000 999", "output": "6 5 8 8 8 7 1 3 1 3" }, { "input": "6\n1 2 3 4 5 6", "output": "6 5 4 3 2 1" }, { "input": "7\n6 5 4 3 2 1 1", "output": "1 2 3 4 5 6 6" }, { "input": "8\n153 100 87 14 10 8 6 5", "output": "1 2 3 4 5 6 7 8" }, { "input": "70\n11 54 37 62 1 46 13 17 38 47 28 15 63 5 61 34 49 66 32 59 3 41 58 28 23 62 41 64 20 5 14 41 10 37 51 32 65 46 61 8 15 19 16 44 31 42 19 46 66 25 26 58 60 5 19 18 69 53 20 40 45 27 24 41 32 23 57 56 62 10", "output": "62 18 35 7 70 23 61 56 34 22 42 58 6 66 10 37 21 2 38 13 69 29 14 42 48 7 29 5 50 66 60 29 63 35 20 38 4 23 10 65 58 52 57 27 41 28 52 23 2 46 45 14 12 66 52 55 1 19 50 33 26 44 47 29 38 48 16 17 7 63" }, { "input": "5\n1 2000 1 1 2000", "output": "3 1 3 3 1" } ]
1,580,749,853
2,147,483,647
Python 3
OK
TESTS
36
1,091
307,200
n=int(input()) a=list(map(int,input().split())) d=[] for i in range(len(a)) : c=1 for j in range(len(a)) : if a[i]<a[j] : c+=1 d.append(c) for i in range (len(d)) : print(d[i],end=" ")
Title: GukiZ and Contest Time Limit: None seconds Memory Limit: None megabytes Problem Description: Professor GukiZ likes programming contests. He especially likes to rate his students on the contests he prepares. Now, he has decided to prepare a new contest. In total, *n* students will attend, and before the start, every one of them has some positive integer rating. Students are indexed from 1 to *n*. Let's denote the rating of *i*-th student as *a**i*. After the contest ends, every student will end up with some positive integer position. GukiZ expects that his students will take places according to their ratings. He thinks that each student will take place equal to . In particular, if student *A* has rating strictly lower then student *B*, *A* will get the strictly better position than *B*, and if two students have equal ratings, they will share the same position. GukiZ would like you to reconstruct the results by following his expectations. Help him and determine the position after the end of the contest for each of his students if everything goes as expected. Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=2000), number of GukiZ's students. The second line contains *n* numbers *a*1,<=*a*2,<=... *a**n* (1<=≤<=*a**i*<=≤<=2000) where *a**i* is the rating of *i*-th student (1<=≤<=*i*<=≤<=*n*). Output Specification: In a single line, print the position after the end of the contest for each of *n* students in the same order as they appear in the input. Demo Input: ['3\n1 3 3\n', '1\n1\n', '5\n3 5 3 4 5\n'] Demo Output: ['3 1 1\n', '1\n', '4 1 4 3 1\n'] Note: In the first sample, students 2 and 3 are positioned first (there is no other student with higher rating), and student 1 is positioned third since there are two students with higher rating. In the second sample, first student is the only one on the contest. In the third sample, students 2 and 5 share the first position with highest rating, student 4 is next with third position, and students 1 and 3 are the last sharing fourth position.
```python n=int(input()) a=list(map(int,input().split())) d=[] for i in range(len(a)) : c=1 for j in range(len(a)) : if a[i]<a[j] : c+=1 d.append(c) for i in range (len(d)) : print(d[i],end=" ") ```
3
734
A
Anton and Danik
PROGRAMMING
800
[ "implementation", "strings" ]
null
null
Anton likes to play chess, and so does his friend Danik. Once they have played *n* games in a row. For each game it's known who was the winner — Anton or Danik. None of the games ended with a tie. Now Anton wonders, who won more games, he or Danik? Help him determine this.
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of games played. The second line contains a string *s*, consisting of *n* uppercase English letters 'A' and 'D' — the outcome of each of the games. The *i*-th character of the string is equal to 'A' if the Anton won the *i*-th game and 'D' if Danik won the *i*-th game.
If Anton won more games than Danik, print "Anton" (without quotes) in the only line of the output. If Danik won more games than Anton, print "Danik" (without quotes) in the only line of the output. If Anton and Danik won the same number of games, print "Friendship" (without quotes).
[ "6\nADAAAA\n", "7\nDDDAADA\n", "6\nDADADA\n" ]
[ "Anton\n", "Danik\n", "Friendship\n" ]
In the first sample, Anton won 6 games, while Danik — only 1. Hence, the answer is "Anton". In the second sample, Anton won 3 games and Danik won 4 games, so the answer is "Danik". In the third sample, both Anton and Danik won 3 games and the answer is "Friendship".
500
[ { "input": "6\nADAAAA", "output": "Anton" }, { "input": "7\nDDDAADA", "output": "Danik" }, { "input": "6\nDADADA", "output": "Friendship" }, { "input": "10\nDDDDADDADD", "output": "Danik" }, { "input": "40\nAAAAAAAAADDAAAAAAAAAAADADDAAAAAAAAAAADAA", "output": "Anton" }, { "input": "200\nDDDDDDDADDDDDDAADADAADAAADAADADAAADDDADDDDDDADDDAADDDAADADDDDDADDDAAAADAAADDDDDAAADAADDDAAAADDADADDDAADDAADAAADAADAAAADDAADDADAAAADADDDAAAAAADDAADAADAADADDDAAADAAAADADDADAAAAAADADADDDADDDAADDADDDAAAAD", "output": "Friendship" }, { "input": "1\nA", "output": "Anton" }, { "input": "1\nD", "output": "Danik" }, { "input": "2\nDA", "output": "Friendship" }, { "input": "4\nDADA", "output": "Friendship" }, { "input": "4\nDAAD", "output": "Friendship" }, { "input": "3\nADD", "output": "Danik" }, { "input": "3\nDAD", "output": "Danik" }, { "input": "2\nDA", "output": "Friendship" }, { "input": "379\nAADAAAAAADDAAAAAADAADADADDAAAAADADDAADAAAADDDADAAAAAAADAADAAAAAAADAAAAAAAAADAAAAAAADAAAAAAAAAAADDDADAAAAAAAADAADADAAAADAAAAAAAAAAAAAAAAADAAAADDDAADAAAAAAADAAADAAADAADDDADDAAADAAAAAADDDADDDAAADAAAADAAAAAAAAADAAADAAAAAAAAADAAAAAAAAAAAAAAAAAADADAAAAAAAAAAADAAAAADAAAADAAAAAAAAAAAAADADAADAAAAAAAADAADAAAAAAAADAAAAAAAADDDAAAAAADAAADAAAAAADAADAAAAAADAAAADADAADAAAAAADAAAADAADDAADAADAAA", "output": "Anton" } ]
1,697,100,418
2,147,483,647
Python 3
OK
TESTS
25
46
102,400
parts = int(input()) static = input() anton = static.count('A') danik = static.count('D') if anton > danik: print('Anton') elif anton < danik: print('Danik') else: print('Friendship')
Title: Anton and Danik Time Limit: None seconds Memory Limit: None megabytes Problem Description: Anton likes to play chess, and so does his friend Danik. Once they have played *n* games in a row. For each game it's known who was the winner — Anton or Danik. None of the games ended with a tie. Now Anton wonders, who won more games, he or Danik? Help him determine this. Input Specification: The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=100<=000) — the number of games played. The second line contains a string *s*, consisting of *n* uppercase English letters 'A' and 'D' — the outcome of each of the games. The *i*-th character of the string is equal to 'A' if the Anton won the *i*-th game and 'D' if Danik won the *i*-th game. Output Specification: If Anton won more games than Danik, print "Anton" (without quotes) in the only line of the output. If Danik won more games than Anton, print "Danik" (without quotes) in the only line of the output. If Anton and Danik won the same number of games, print "Friendship" (without quotes). Demo Input: ['6\nADAAAA\n', '7\nDDDAADA\n', '6\nDADADA\n'] Demo Output: ['Anton\n', 'Danik\n', 'Friendship\n'] Note: In the first sample, Anton won 6 games, while Danik — only 1. Hence, the answer is "Anton". In the second sample, Anton won 3 games and Danik won 4 games, so the answer is "Danik". In the third sample, both Anton and Danik won 3 games and the answer is "Friendship".
```python parts = int(input()) static = input() anton = static.count('A') danik = static.count('D') if anton > danik: print('Anton') elif anton < danik: print('Danik') else: print('Friendship') ```
3
962
A
Equator
PROGRAMMING
1,300
[ "implementation" ]
null
null
Polycarp has created his own training plan to prepare for the programming contests. He will train for $n$ days, all days are numbered from $1$ to $n$, beginning from the first. On the $i$-th day Polycarp will necessarily solve $a_i$ problems. One evening Polycarp plans to celebrate the equator. He will celebrate it on the first evening of such a day that from the beginning of the training and to this day inclusive he will solve half or more of all the problems. Determine the index of day when Polycarp will celebrate the equator.
The first line contains a single integer $n$ ($1 \le n \le 200\,000$) — the number of days to prepare for the programming contests. The second line contains a sequence $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 10\,000$), where $a_i$ equals to the number of problems, which Polycarp will solve on the $i$-th day.
Print the index of the day when Polycarp will celebrate the equator.
[ "4\n1 3 2 1\n", "6\n2 2 2 2 2 2\n" ]
[ "2\n", "3\n" ]
In the first example Polycarp will celebrate the equator on the evening of the second day, because up to this day (inclusive) he will solve $4$ out of $7$ scheduled problems on four days of the training. In the second example Polycarp will celebrate the equator on the evening of the third day, because up to this day (inclusive) he will solve $6$ out of $12$ scheduled problems on six days of the training.
0
[ { "input": "4\n1 3 2 1", "output": "2" }, { "input": "6\n2 2 2 2 2 2", "output": "3" }, { "input": "1\n10000", "output": "1" }, { "input": "3\n2 1 1", "output": "1" }, { "input": "2\n1 3", "output": "2" }, { "input": "4\n2 1 1 3", "output": "3" }, { "input": "3\n1 1 3", "output": "3" }, { "input": "3\n1 1 1", "output": "2" }, { "input": "2\n1 2", "output": "2" }, { "input": "3\n2 1 2", "output": "2" }, { "input": "5\n1 2 4 3 5", "output": "4" }, { "input": "5\n2 2 2 4 3", "output": "4" }, { "input": "4\n1 2 3 1", "output": "3" }, { "input": "6\n7 3 10 7 3 11", "output": "4" }, { "input": "2\n3 4", "output": "2" }, { "input": "5\n1 1 1 1 1", "output": "3" }, { "input": "4\n1 3 2 3", "output": "3" }, { "input": "2\n2 3", "output": "2" }, { "input": "3\n32 10 23", "output": "2" }, { "input": "7\n1 1 1 1 1 1 1", "output": "4" }, { "input": "3\n1 2 4", "output": "3" }, { "input": "6\n3 3 3 2 4 4", "output": "4" }, { "input": "9\n1 1 1 1 1 1 1 1 1", "output": "5" }, { "input": "5\n1 3 3 1 1", "output": "3" }, { "input": "4\n1 1 1 2", "output": "3" }, { "input": "4\n1 2 1 3", "output": "3" }, { "input": "3\n2 2 1", "output": "2" }, { "input": "4\n2 3 3 3", "output": "3" }, { "input": "4\n3 2 3 3", "output": "3" }, { "input": "4\n2 1 1 1", "output": "2" }, { "input": "3\n2 1 4", "output": "3" }, { "input": "2\n6 7", "output": "2" }, { "input": "4\n3 3 4 3", "output": "3" }, { "input": "4\n1 1 2 5", "output": "4" }, { "input": "4\n1 8 7 3", "output": "3" }, { "input": "6\n2 2 2 2 2 3", "output": "4" }, { "input": "3\n2 2 5", "output": "3" }, { "input": "4\n1 1 2 1", "output": "3" }, { "input": "5\n1 1 2 2 3", "output": "4" }, { "input": "5\n9 5 3 4 8", "output": "3" }, { "input": "3\n3 3 1", "output": "2" }, { "input": "4\n1 2 2 2", "output": "3" }, { "input": "3\n1 3 5", "output": "3" }, { "input": "4\n1 1 3 6", "output": "4" }, { "input": "6\n1 2 1 1 1 1", "output": "3" }, { "input": "3\n3 1 3", "output": "2" }, { "input": "5\n3 4 5 1 2", "output": "3" }, { "input": "11\n1 1 1 1 1 1 1 1 1 1 1", "output": "6" }, { "input": "5\n3 1 2 5 2", "output": "4" }, { "input": "4\n1 1 1 4", "output": "4" }, { "input": "4\n2 6 1 10", "output": "4" }, { "input": "4\n2 2 3 2", "output": "3" }, { "input": "4\n4 2 2 1", "output": "2" }, { "input": "6\n1 1 1 1 1 4", "output": "5" }, { "input": "3\n3 2 2", "output": "2" }, { "input": "6\n1 3 5 1 7 4", "output": "5" }, { "input": "5\n1 2 4 8 16", "output": "5" }, { "input": "5\n1 2 4 4 4", "output": "4" }, { "input": "6\n4 2 1 2 3 1", "output": "3" }, { "input": "4\n3 2 1 5", "output": "3" }, { "input": "1\n1", "output": "1" }, { "input": "3\n2 4 7", "output": "3" }, { "input": "5\n1 1 1 1 3", "output": "4" }, { "input": "3\n3 1 5", "output": "3" }, { "input": "4\n1 2 3 7", "output": "4" }, { "input": "3\n1 4 6", "output": "3" }, { "input": "4\n2 1 2 2", "output": "3" }, { "input": "2\n4 5", "output": "2" }, { "input": "5\n1 2 1 2 1", "output": "3" }, { "input": "3\n2 3 6", "output": "3" }, { "input": "6\n1 1 4 1 1 5", "output": "4" }, { "input": "5\n2 2 2 2 1", "output": "3" }, { "input": "2\n5 6", "output": "2" }, { "input": "4\n2 2 1 4", "output": "3" }, { "input": "5\n2 2 3 4 4", "output": "4" }, { "input": "4\n3 1 1 2", "output": "2" }, { "input": "5\n3 4 1 4 5", "output": "4" }, { "input": "4\n1 3 1 6", "output": "4" }, { "input": "5\n1 1 1 2 2", "output": "4" }, { "input": "4\n1 4 2 4", "output": "3" }, { "input": "10\n1 1 1 1 1 1 1 1 1 8", "output": "9" }, { "input": "4\n1 4 5 1", "output": "3" }, { "input": "5\n1 1 1 1 5", "output": "5" }, { "input": "4\n1 3 4 1", "output": "3" }, { "input": "4\n2 2 2 3", "output": "3" }, { "input": "4\n2 3 2 4", "output": "3" }, { "input": "5\n2 2 1 2 2", "output": "3" }, { "input": "3\n4 3 2", "output": "2" }, { "input": "3\n6 5 2", "output": "2" }, { "input": "69\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", "output": "35" }, { "input": "6\n1 1 1 1 1 2", "output": "4" }, { "input": "5\n1 2 5 4 5", "output": "4" }, { "input": "2\n9 10", "output": "2" }, { "input": "3\n1 1 5", "output": "3" }, { "input": "4\n3 4 3 5", "output": "3" }, { "input": "4\n1 4 3 3", "output": "3" }, { "input": "4\n7 1 3 4", "output": "2" }, { "input": "3\n100 100 1", "output": "2" }, { "input": "4\n5 2 2 2", "output": "2" } ]
1,541,351,996
2,147,483,647
Python 3
OK
TESTS
106
233
13,107,200
import math n = int(input()) a = [int(i) for i in input().split()] total = res = index = 0 for i in a: total += i for i in range(n): res += a[i] if res >= math.ceil(total / 2): index = i break print(index + 1)
Title: Equator Time Limit: None seconds Memory Limit: None megabytes Problem Description: Polycarp has created his own training plan to prepare for the programming contests. He will train for $n$ days, all days are numbered from $1$ to $n$, beginning from the first. On the $i$-th day Polycarp will necessarily solve $a_i$ problems. One evening Polycarp plans to celebrate the equator. He will celebrate it on the first evening of such a day that from the beginning of the training and to this day inclusive he will solve half or more of all the problems. Determine the index of day when Polycarp will celebrate the equator. Input Specification: The first line contains a single integer $n$ ($1 \le n \le 200\,000$) — the number of days to prepare for the programming contests. The second line contains a sequence $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 10\,000$), where $a_i$ equals to the number of problems, which Polycarp will solve on the $i$-th day. Output Specification: Print the index of the day when Polycarp will celebrate the equator. Demo Input: ['4\n1 3 2 1\n', '6\n2 2 2 2 2 2\n'] Demo Output: ['2\n', '3\n'] Note: In the first example Polycarp will celebrate the equator on the evening of the second day, because up to this day (inclusive) he will solve $4$ out of $7$ scheduled problems on four days of the training. In the second example Polycarp will celebrate the equator on the evening of the third day, because up to this day (inclusive) he will solve $6$ out of $12$ scheduled problems on six days of the training.
```python import math n = int(input()) a = [int(i) for i in input().split()] total = res = index = 0 for i in a: total += i for i in range(n): res += a[i] if res >= math.ceil(total / 2): index = i break print(index + 1) ```
3
743
A
Vladik and flights
PROGRAMMING
1,200
[ "constructive algorithms", "greedy", "implementation" ]
null
null
Vladik is a competitive programmer. This year he is going to win the International Olympiad in Informatics. But it is not as easy as it sounds: the question Vladik face now is to find the cheapest way to get to the olympiad. Vladik knows *n* airports. All the airports are located on a straight line. Each airport has unique id from 1 to *n*, Vladik's house is situated next to the airport with id *a*, and the place of the olympiad is situated next to the airport with id *b*. It is possible that Vladik's house and the place of the olympiad are located near the same airport. To get to the olympiad, Vladik can fly between any pair of airports any number of times, but he has to start his route at the airport *a* and finish it at the airport *b*. Each airport belongs to one of two companies. The cost of flight from the airport *i* to the airport *j* is zero if both airports belong to the same company, and |*i*<=-<=*j*| if they belong to different companies. Print the minimum cost Vladik has to pay to get to the olympiad.
The first line contains three integers *n*, *a*, and *b* (1<=≤<=*n*<=≤<=105, 1<=≤<=*a*,<=*b*<=≤<=*n*) — the number of airports, the id of the airport from which Vladik starts his route and the id of the airport which he has to reach. The second line contains a string with length *n*, which consists only of characters 0 and 1. If the *i*-th character in this string is 0, then *i*-th airport belongs to first company, otherwise it belongs to the second.
Print single integer — the minimum cost Vladik has to pay to get to the olympiad.
[ "4 1 4\n1010\n", "5 5 2\n10110\n" ]
[ "1", "0" ]
In the first example Vladik can fly to the airport 2 at first and pay |1 - 2| = 1 (because the airports belong to different companies), and then fly from the airport 2 to the airport 4 for free (because the airports belong to the same company). So the cost of the whole flight is equal to 1. It's impossible to get to the olympiad for free, so the answer is equal to 1. In the second example Vladik can fly directly from the airport 5 to the airport 2, because they belong to the same company.
500
[ { "input": "4 1 4\n1010", "output": "1" }, { "input": "5 5 2\n10110", "output": "0" }, { "input": "10 9 5\n1011111001", "output": "1" }, { "input": "7 3 7\n1110111", "output": "0" }, { "input": "1 1 1\n1", "output": "0" }, { "input": "10 3 3\n1001011011", "output": "0" }, { "input": "1 1 1\n0", "output": "0" }, { "input": "10 5 8\n1000001110", "output": "1" }, { "input": "10 1 10\n0000011111", "output": "1" }, { "input": "4 1 4\n0011", "output": "1" }, { "input": "10 3 7\n0000011111", "output": "1" }, { "input": "5 1 5\n11010", "output": "1" }, { "input": "6 1 6\n111000", "output": "1" }, { "input": "2 1 2\n01", "output": "1" }, { "input": "10 10 1\n0000011111", "output": "1" }, { "input": "6 1 6\n000111", "output": "1" }, { "input": "10 2 10\n0000011111", "output": "1" }, { "input": "8 1 8\n11110000", "output": "1" }, { "input": "6 1 5\n100000", "output": "1" }, { "input": "16 4 12\n0000000011111111", "output": "1" }, { "input": "6 1 5\n111000", "output": "1" }, { "input": "8 2 7\n11110000", "output": "1" }, { "input": "6 2 5\n111000", "output": "1" }, { "input": "9 9 1\n111000000", "output": "1" }, { "input": "2 2 1\n01", "output": "1" }, { "input": "5 2 5\n00001", "output": "1" }, { "input": "5 1 5\n10000", "output": "1" }, { "input": "6 1 6\n011111", "output": "1" }, { "input": "5 5 1\n11110", "output": "1" }, { "input": "2 1 2\n10", "output": "1" }, { "input": "4 2 4\n0001", "output": "1" }, { "input": "10 1 10\n1111100000", "output": "1" }, { "input": "8 4 5\n00001111", "output": "1" }, { "input": "4 4 1\n0111", "output": "1" }, { "input": "8 1 8\n00101001", "output": "1" } ]
1,498,030,618
2,147,483,647
PyPy 3
OK
TESTS
56
109
23,859,200
(n, a, b) = map(int, input().split()) t = input() a -= 1 b -= 1 if t[a] == t[b]: print(0) else: print(1)
Title: Vladik and flights Time Limit: None seconds Memory Limit: None megabytes Problem Description: Vladik is a competitive programmer. This year he is going to win the International Olympiad in Informatics. But it is not as easy as it sounds: the question Vladik face now is to find the cheapest way to get to the olympiad. Vladik knows *n* airports. All the airports are located on a straight line. Each airport has unique id from 1 to *n*, Vladik's house is situated next to the airport with id *a*, and the place of the olympiad is situated next to the airport with id *b*. It is possible that Vladik's house and the place of the olympiad are located near the same airport. To get to the olympiad, Vladik can fly between any pair of airports any number of times, but he has to start his route at the airport *a* and finish it at the airport *b*. Each airport belongs to one of two companies. The cost of flight from the airport *i* to the airport *j* is zero if both airports belong to the same company, and |*i*<=-<=*j*| if they belong to different companies. Print the minimum cost Vladik has to pay to get to the olympiad. Input Specification: The first line contains three integers *n*, *a*, and *b* (1<=≤<=*n*<=≤<=105, 1<=≤<=*a*,<=*b*<=≤<=*n*) — the number of airports, the id of the airport from which Vladik starts his route and the id of the airport which he has to reach. The second line contains a string with length *n*, which consists only of characters 0 and 1. If the *i*-th character in this string is 0, then *i*-th airport belongs to first company, otherwise it belongs to the second. Output Specification: Print single integer — the minimum cost Vladik has to pay to get to the olympiad. Demo Input: ['4 1 4\n1010\n', '5 5 2\n10110\n'] Demo Output: ['1', '0'] Note: In the first example Vladik can fly to the airport 2 at first and pay |1 - 2| = 1 (because the airports belong to different companies), and then fly from the airport 2 to the airport 4 for free (because the airports belong to the same company). So the cost of the whole flight is equal to 1. It's impossible to get to the olympiad for free, so the answer is equal to 1. In the second example Vladik can fly directly from the airport 5 to the airport 2, because they belong to the same company.
```python (n, a, b) = map(int, input().split()) t = input() a -= 1 b -= 1 if t[a] == t[b]: print(0) else: print(1) ```
3
329
D
The Evil Temple and the Moving Rocks
PROGRAMMING
2,500
[ "constructive algorithms" ]
null
null
Important: All possible tests are in the pretest, so you shouldn't hack on this problem. So, if you passed pretests, you will also pass the system test. You are an adventurer currently journeying inside an evil temple. After defeating a couple of weak monsters, you arrived at a square room consisting of tiles forming an *n*<=×<=*n* grid, surrounded entirely by walls. At the end of the room lies a door locked with evil magical forces. The following inscriptions are written on the door: Being a very senior adventurer, you immediately realize what this means. In the room next door lies an infinite number of magical rocks. There are four types of rocks: - '^': this rock moves upwards; - '&lt;': this rock moves leftwards; - '&gt;': this rock moves rightwards; - 'v': this rock moves downwards. To open the door, you first need to place the rocks on some of the tiles (one tile can be occupied by at most one rock). Then, you select a single rock that you have placed and activate it. The activated rock will then move in its direction until it hits another rock or hits the walls of the room (the rock will not move if something already blocks it in its chosen direction). The rock then deactivates. If it hits the walls, or if there have been already 107 events of rock becoming activated, the movements end. Otherwise, the rock that was hit becomes activated and this procedure is repeated. If a rock moves at least one cell before hitting either the wall or another rock, the hit produces a sound. The door will open once the number of produced sounds is at least *x*. It is okay for the rocks to continue moving after producing *x* sounds. The following picture illustrates the four possible scenarios of moving rocks. - Moves at least one cell, then hits another rock. A sound is produced, the hit rock becomes activated. - Moves at least one cell, then hits the wall (i.e., the side of the room). A sound is produced, the movements end. - Does not move because a rock is already standing in the path. The blocking rock becomes activated, but no sounds are produced. - Does not move because the wall is in the way. No sounds are produced and the movements end. Assume there's an infinite number of rocks of each type in the neighboring room. You know what to do: place the rocks and open the door!
The first line will consists of two integers *n* and *x*, denoting the size of the room and the number of sounds required to open the door. There will be exactly three test cases for this problem: - *n*<==<=5,<=*x*<==<=5; - *n*<==<=3,<=*x*<==<=2; - *n*<==<=100,<=*x*<==<=105. All of these testcases are in pretest.
Output *n* lines. Each line consists of *n* characters — the *j*-th character of the *i*-th line represents the content of the tile at the *i*-th row and the *j*-th column, and should be one of these: - '^', '&lt;', '&gt;', or 'v': a rock as described in the problem statement. - '.': an empty tile. Then, output two integers *r* and *c* (1<=≤<=*r*,<=*c*<=≤<=*n*) on the next line — this means that the rock you activate first is located at the *r*-th row from above and *c*-th column from the left. There must be a rock in this cell. If there are multiple solutions, you may output any of them.
[ "5 5\n", "3 2\n" ]
[ "&gt;...v\nv.&lt;..\n..^..\n&gt;....\n..^.&lt;\n1 1\n", "&gt;vv\n^&lt;.\n^.&lt;\n1 3\n" ]
Here's a simulation of the first example, accompanied with the number of sounds produced so far. In the picture above, the activated rock switches between the '^' rock and the '&lt;' rock. However, no sound is produced since the '^' rock didn't move even a single tile. So, still 4 sound. At this point, 5 sound are already produced, so this solution is already correct. However, for the sake of example, we will continue simulating what happens. And the movement stops. In total, it produces 8 sounds. Notice that the last move produced sound. Here's a simulation of the second example: Now, the activated stone will switch continuously from one to another without producing a sound until it reaches the 10<sup class="upper-index">7</sup> limit, after which the movement will cease. In total, it produced exactly 2 sounds, so the solution is correct.
1,500
[ { "input": "5 5", "output": ">...v\nv.<..\n..^..\n>....\n..^.<\n1 1" }, { "input": "3 2", "output": ">vv\n^<.\n^.<\n1 3" }, { "input": "100 100000", "output": ">>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>v.\n^v<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<.\n^>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>v.\n^v<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<.<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<.\n^>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>.>v.\n^..." } ]
1,692,953,930
2,147,483,647
PyPy 3-64
WRONG_ANSWER
TESTS
0
122
0
print("_RANDOM_GUESS_1692953930.1431353")# 1692953930.1431506
Title: The Evil Temple and the Moving Rocks Time Limit: None seconds Memory Limit: None megabytes Problem Description: Important: All possible tests are in the pretest, so you shouldn't hack on this problem. So, if you passed pretests, you will also pass the system test. You are an adventurer currently journeying inside an evil temple. After defeating a couple of weak monsters, you arrived at a square room consisting of tiles forming an *n*<=×<=*n* grid, surrounded entirely by walls. At the end of the room lies a door locked with evil magical forces. The following inscriptions are written on the door: Being a very senior adventurer, you immediately realize what this means. In the room next door lies an infinite number of magical rocks. There are four types of rocks: - '^': this rock moves upwards; - '&lt;': this rock moves leftwards; - '&gt;': this rock moves rightwards; - 'v': this rock moves downwards. To open the door, you first need to place the rocks on some of the tiles (one tile can be occupied by at most one rock). Then, you select a single rock that you have placed and activate it. The activated rock will then move in its direction until it hits another rock or hits the walls of the room (the rock will not move if something already blocks it in its chosen direction). The rock then deactivates. If it hits the walls, or if there have been already 107 events of rock becoming activated, the movements end. Otherwise, the rock that was hit becomes activated and this procedure is repeated. If a rock moves at least one cell before hitting either the wall or another rock, the hit produces a sound. The door will open once the number of produced sounds is at least *x*. It is okay for the rocks to continue moving after producing *x* sounds. The following picture illustrates the four possible scenarios of moving rocks. - Moves at least one cell, then hits another rock. A sound is produced, the hit rock becomes activated. - Moves at least one cell, then hits the wall (i.e., the side of the room). A sound is produced, the movements end. - Does not move because a rock is already standing in the path. The blocking rock becomes activated, but no sounds are produced. - Does not move because the wall is in the way. No sounds are produced and the movements end. Assume there's an infinite number of rocks of each type in the neighboring room. You know what to do: place the rocks and open the door! Input Specification: The first line will consists of two integers *n* and *x*, denoting the size of the room and the number of sounds required to open the door. There will be exactly three test cases for this problem: - *n*<==<=5,<=*x*<==<=5; - *n*<==<=3,<=*x*<==<=2; - *n*<==<=100,<=*x*<==<=105. All of these testcases are in pretest. Output Specification: Output *n* lines. Each line consists of *n* characters — the *j*-th character of the *i*-th line represents the content of the tile at the *i*-th row and the *j*-th column, and should be one of these: - '^', '&lt;', '&gt;', or 'v': a rock as described in the problem statement. - '.': an empty tile. Then, output two integers *r* and *c* (1<=≤<=*r*,<=*c*<=≤<=*n*) on the next line — this means that the rock you activate first is located at the *r*-th row from above and *c*-th column from the left. There must be a rock in this cell. If there are multiple solutions, you may output any of them. Demo Input: ['5 5\n', '3 2\n'] Demo Output: ['&gt;...v\nv.&lt;..\n..^..\n&gt;....\n..^.&lt;\n1 1\n', '&gt;vv\n^&lt;.\n^.&lt;\n1 3\n'] Note: Here's a simulation of the first example, accompanied with the number of sounds produced so far. In the picture above, the activated rock switches between the '^' rock and the '&lt;' rock. However, no sound is produced since the '^' rock didn't move even a single tile. So, still 4 sound. At this point, 5 sound are already produced, so this solution is already correct. However, for the sake of example, we will continue simulating what happens. And the movement stops. In total, it produces 8 sounds. Notice that the last move produced sound. Here's a simulation of the second example: Now, the activated stone will switch continuously from one to another without producing a sound until it reaches the 10<sup class="upper-index">7</sup> limit, after which the movement will cease. In total, it produced exactly 2 sounds, so the solution is correct.
```python print("_RANDOM_GUESS_1692953930.1431353")# 1692953930.1431506 ```
0
577
A
Multiplication Table
PROGRAMMING
1,000
[ "implementation", "number theory" ]
null
null
Let's consider a table consisting of *n* rows and *n* columns. The cell located at the intersection of *i*-th row and *j*-th column contains number *i*<=×<=*j*. The rows and columns are numbered starting from 1. You are given a positive integer *x*. Your task is to count the number of cells in a table that contain number *x*.
The single line contains numbers *n* and *x* (1<=≤<=*n*<=≤<=105, 1<=≤<=*x*<=≤<=109) — the size of the table and the number that we are looking for in the table.
Print a single number: the number of times *x* occurs in the table.
[ "10 5\n", "6 12\n", "5 13\n" ]
[ "2\n", "4\n", "0\n" ]
A table for the second sample test is given below. The occurrences of number 12 are marked bold.
500
[ { "input": "10 5", "output": "2" }, { "input": "6 12", "output": "4" }, { "input": "5 13", "output": "0" }, { "input": "1 1", "output": "1" }, { "input": "2 1", "output": "1" }, { "input": "100000 1", "output": "1" }, { "input": "1 1000000000", "output": "0" }, { "input": "100000 1000000000", "output": "16" }, { "input": "100000 362880", "output": "154" }, { "input": "1 4", "output": "0" }, { "input": "9 12", "output": "4" }, { "input": "10 123", "output": "0" }, { "input": "9551 975275379", "output": "0" }, { "input": "17286 948615687", "output": "0" }, { "input": "58942 936593001", "output": "0" }, { "input": "50000 989460910", "output": "4" }, { "input": "22741 989460910", "output": "0" }, { "input": "22740 989460910", "output": "0" }, { "input": "100000 989460910", "output": "4" }, { "input": "100000 98280", "output": "128" }, { "input": "100000 997920", "output": "222" }, { "input": "100000 720720", "output": "226" }, { "input": "100000 2162160", "output": "282" }, { "input": "100000 4324320", "output": "320" }, { "input": "100000 8648640", "output": "348" }, { "input": "100000 183783600", "output": "438" }, { "input": "100000 551350800", "output": "392" }, { "input": "40000 551350800", "output": "150" }, { "input": "20000 400000000", "output": "1" }, { "input": "19999 400000000", "output": "0" }, { "input": "19999 399960001", "output": "1" }, { "input": "31621 999887641", "output": "1" }, { "input": "31622 999887641", "output": "1" }, { "input": "31620 999887641", "output": "0" }, { "input": "100000 999887641", "output": "3" }, { "input": "100000 25", "output": "3" }, { "input": "100000 1", "output": "1" }, { "input": "100000 3628800", "output": "220" }, { "input": "100000 39916800", "output": "328" }, { "input": "100000 479001600", "output": "254" }, { "input": "4 9", "output": "1" }, { "input": "2 6", "output": "0" }, { "input": "20 100", "output": "3" }, { "input": "10 3", "output": "2" }, { "input": "4 4", "output": "3" }, { "input": "2 4", "output": "1" }, { "input": "89874 1", "output": "1" } ]
1,645,713,046
2,147,483,647
PyPy 3
OK
TESTS
47
78
1,331,200
#http://codeforces.com/problemset/problem/577/A n, x = map(int, input().split()) a = 0 for i in range(1, n + 1): if x % i == 0 and x/i <=n: a+=1 print(a)
Title: Multiplication Table Time Limit: None seconds Memory Limit: None megabytes Problem Description: Let's consider a table consisting of *n* rows and *n* columns. The cell located at the intersection of *i*-th row and *j*-th column contains number *i*<=×<=*j*. The rows and columns are numbered starting from 1. You are given a positive integer *x*. Your task is to count the number of cells in a table that contain number *x*. Input Specification: The single line contains numbers *n* and *x* (1<=≤<=*n*<=≤<=105, 1<=≤<=*x*<=≤<=109) — the size of the table and the number that we are looking for in the table. Output Specification: Print a single number: the number of times *x* occurs in the table. Demo Input: ['10 5\n', '6 12\n', '5 13\n'] Demo Output: ['2\n', '4\n', '0\n'] Note: A table for the second sample test is given below. The occurrences of number 12 are marked bold.
```python #http://codeforces.com/problemset/problem/577/A n, x = map(int, input().split()) a = 0 for i in range(1, n + 1): if x % i == 0 and x/i <=n: a+=1 print(a) ```
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 "internationalization» will be spelt as "i18n". You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
[ "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n" ]
[ "word\nl10n\ni18n\np43s\n" ]
none
500
[ { "input": "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis", "output": "word\nl10n\ni18n\np43s" }, { "input": "5\nabcdefgh\nabcdefghi\nabcdefghij\nabcdefghijk\nabcdefghijklm", "output": "abcdefgh\nabcdefghi\nabcdefghij\na9k\na11m" }, { "input": "3\nnjfngnrurunrgunrunvurn\njfvnjfdnvjdbfvsbdubruvbubvkdb\nksdnvidnviudbvibd", "output": "n20n\nj27b\nk15d" }, { "input": "1\ntcyctkktcctrcyvbyiuhihhhgyvyvyvyvjvytchjckt", "output": "t41t" }, { "input": "24\nyou\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nunofficially\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings", "output": "you\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nu10y\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings" }, { "input": "1\na", "output": "a" }, { "input": "26\na\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz", "output": "a\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz" }, { "input": "1\nabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghij", "output": "a98j" }, { "input": "10\ngyartjdxxlcl\nfzsck\nuidwu\nxbymclornemdmtj\nilppyoapitawgje\ncibzc\ndrgbeu\nhezplmsdekhhbo\nfeuzlrimbqbytdu\nkgdco", "output": "g10l\nfzsck\nuidwu\nx13j\ni13e\ncibzc\ndrgbeu\nh12o\nf13u\nkgdco" }, { "input": "20\nlkpmx\nkovxmxorlgwaomlswjxlpnbvltfv\nhykasjxqyjrmybejnmeumzha\ntuevlumpqbbhbww\nqgqsphvrmupxxc\ntrissbaf\nqfgrlinkzvzqdryckaizutd\nzzqtoaxkvwoscyx\noswytrlnhpjvvnwookx\nlpuzqgec\ngyzqfwxggtvpjhzmzmdw\nrlxjgmvdftvrmvbdwudra\nvsntnjpepnvdaxiporggmglhagv\nxlvcqkqgcrbgtgglj\nlyxwxbiszyhlsrgzeedzprbmcpduvq\nyrmqqvrkqskqukzqrwukpsifgtdc\nxpuohcsjhhuhvr\nvvlfrlxpvqejngwrbfbpmqeirxlw\nsvmasocxdvadmaxtrpakysmeaympy\nyuflqboqfdt", "output": "lkpmx\nk26v\nh22a\nt13w\nq12c\ntrissbaf\nq21d\nz13x\no17x\nlpuzqgec\ng18w\nr19a\nv25v\nx15j\nl28q\ny26c\nx12r\nv26w\ns27y\ny9t" }, { "input": "100\nm\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr", "output": "m\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr" } ]
1,693,315,297
2,147,483,647
PyPy 3-64
OK
TESTS
20
62
0
# -*- coding: utf-8 -*- """ Created on Tue Aug 29 20:07:37 2023 @author: Zinc """ n=int(input()) for i in range(n): word = input() length = len(word) if length>10: al = str(length-2) al_word = word[0]+al+word[-1] print(al_word) else: print(word)
Title: Way Too Long Words Time Limit: 1 seconds Memory Limit: 256 megabytes Problem Description: Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome. Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation. This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes. Thus, "localization" will be spelt as "l10n", and "internationalization» will be spelt as "i18n". You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes. Input Specification: The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters. Output Specification: Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data. Demo Input: ['4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n'] Demo Output: ['word\nl10n\ni18n\np43s\n'] Note: none
```python # -*- coding: utf-8 -*- """ Created on Tue Aug 29 20:07:37 2023 @author: Zinc """ n=int(input()) for i in range(n): word = input() length = len(word) if length>10: al = str(length-2) al_word = word[0]+al+word[-1] print(al_word) else: print(word) ```
3.969
490
A
Team Olympiad
PROGRAMMING
800
[ "greedy", "implementation", "sortings" ]
null
null
The School №0 of the capital of Berland has *n* children studying in it. All the children in this school are gifted: some of them are good at programming, some are good at maths, others are good at PE (Physical Education). Hence, for each child we know value *t**i*: - *t**i*<==<=1, if the *i*-th child is good at programming, - *t**i*<==<=2, if the *i*-th child is good at maths, - *t**i*<==<=3, if the *i*-th child is good at PE Each child happens to be good at exactly one of these three subjects. The Team Scientific Decathlon Olympias requires teams of three students. The school teachers decided that the teams will be composed of three children that are good at different subjects. That is, each team must have one mathematician, one programmer and one sportsman. Of course, each child can be a member of no more than one team. What is the maximum number of teams that the school will be able to present at the Olympiad? How should the teams be formed for that?
The first line contains integer *n* (1<=≤<=*n*<=≤<=5000) — the number of children in the school. The second line contains *n* integers *t*1,<=*t*2,<=...,<=*t**n* (1<=≤<=*t**i*<=≤<=3), where *t**i* describes the skill of the *i*-th child.
In the first line output integer *w* — the largest possible number of teams. Then print *w* lines, containing three numbers in each line. Each triple represents the indexes of the children forming the team. You can print both the teams, and the numbers in the triplets in any order. The children are numbered from 1 to *n* in the order of their appearance in the input. Each child must participate in no more than one team. If there are several solutions, print any of them. If no teams can be compiled, print the only line with value *w* equal to 0.
[ "7\n1 3 1 3 2 1 2\n", "4\n2 1 1 2\n" ]
[ "2\n3 5 2\n6 7 4\n", "0\n" ]
none
500
[ { "input": "7\n1 3 1 3 2 1 2", "output": "2\n3 5 2\n6 7 4" }, { "input": "4\n2 1 1 2", "output": "0" }, { "input": "1\n2", "output": "0" }, { "input": "2\n3 1", "output": "0" }, { "input": "3\n2 1 2", "output": "0" }, { "input": "3\n1 2 3", "output": "1\n1 2 3" }, { "input": "12\n3 3 3 3 3 3 3 3 1 3 3 2", "output": "1\n9 12 2" }, { "input": "60\n3 3 1 2 2 1 3 1 1 1 3 2 2 2 3 3 1 3 2 3 2 2 1 3 3 2 3 1 2 2 2 1 3 2 1 1 3 3 1 1 1 3 1 2 1 1 3 3 3 2 3 2 3 2 2 2 1 1 1 2", "output": "20\n6 60 1\n17 44 20\n3 5 33\n36 21 42\n59 14 2\n58 26 49\n9 29 48\n23 19 24\n10 30 37\n41 54 15\n45 31 27\n57 55 38\n39 12 25\n35 34 11\n32 52 7\n8 50 18\n43 4 53\n46 56 51\n40 22 16\n28 13 47" }, { "input": "12\n3 1 1 1 1 1 1 2 1 1 1 1", "output": "1\n3 8 1" }, { "input": "22\n2 2 2 2 2 2 2 2 2 2 3 2 2 2 2 2 2 1 2 2 2 2", "output": "1\n18 2 11" }, { "input": "138\n2 3 2 2 2 2 2 2 2 2 1 2 1 2 2 2 1 2 1 2 2 1 2 2 2 2 2 2 2 2 2 2 2 1 2 3 2 2 2 1 2 3 2 2 2 3 1 3 2 3 2 3 2 2 2 2 3 2 2 2 2 2 1 2 2 3 2 2 3 2 1 2 2 2 2 2 3 1 2 2 2 2 2 3 2 2 3 2 2 2 2 2 1 1 2 3 2 2 2 2 3 2 2 2 2 2 1 2 1 2 2 2 2 2 1 2 3 2 3 2 2 2 1 2 2 2 1 2 2 2 2 1 2 2 2 2 1 3", "output": "18\n13 91 84\n34 90 48\n11 39 77\n78 129 50\n137 68 119\n132 122 138\n19 12 96\n40 7 2\n22 88 69\n107 73 46\n115 15 52\n127 106 87\n93 92 66\n71 112 117\n63 124 42\n17 70 101\n109 121 57\n123 25 36" }, { "input": "203\n2 2 1 2 1 2 2 2 1 2 2 1 1 3 1 2 1 2 1 1 2 3 1 1 2 3 3 2 2 2 1 2 1 1 1 1 1 3 1 1 2 1 1 2 2 2 1 2 2 2 1 2 3 2 1 1 2 2 1 2 1 2 2 1 1 2 2 2 1 1 2 2 1 2 1 2 2 3 2 1 2 1 1 1 1 1 1 1 1 1 1 2 2 1 1 2 2 2 2 1 1 1 1 1 1 1 2 2 2 2 2 1 1 1 2 2 2 1 2 2 1 3 2 1 1 1 2 1 1 2 1 1 2 2 2 1 1 2 2 2 1 2 1 3 2 1 2 2 2 1 1 1 2 2 2 1 2 1 1 2 2 2 2 2 1 1 2 1 2 2 1 1 1 1 1 1 2 2 3 1 1 2 3 1 1 1 1 1 1 2 2 1 1 1 2 2 3 2 1 3 1 1 1", "output": "13\n188 72 14\n137 4 197\n158 76 122\n152 142 26\n104 119 179\n40 63 38\n12 1 78\n17 30 27\n189 60 53\n166 190 144\n129 7 183\n83 41 22\n121 81 200" }, { "input": "220\n1 1 3 1 3 1 1 3 1 3 3 3 3 1 3 3 1 3 3 3 3 3 1 1 1 3 1 1 1 3 2 3 3 3 1 1 3 3 1 1 3 3 3 3 1 3 3 1 1 1 2 3 1 1 1 2 3 3 3 2 3 1 1 3 1 1 1 3 2 1 3 2 3 1 1 3 3 3 1 3 1 1 1 3 3 2 1 3 2 1 1 3 3 1 1 1 2 1 1 3 2 1 2 1 1 1 3 1 3 3 1 2 3 3 3 3 1 3 1 1 1 1 2 3 1 1 1 1 1 1 3 2 3 1 3 1 3 1 1 3 1 3 1 3 1 3 1 3 3 2 3 1 3 3 1 3 3 3 3 1 1 3 3 3 3 1 1 3 3 3 2 1 1 1 3 3 1 3 3 3 1 1 1 3 1 3 3 1 1 1 2 3 1 1 3 1 1 1 1 2 3 1 1 2 3 3 1 3 1 3 3 3 3 1 3 2 3 1 1 3", "output": "20\n198 89 20\n141 56 131\n166 204 19\n160 132 142\n111 112 195\n45 216 92\n6 31 109\n14 150 170\n199 60 18\n173 123 140\n134 69 156\n82 191 85\n126 200 80\n24 97 46\n62 86 149\n214 101 26\n79 171 78\n125 72 118\n172 103 162\n219 51 64" }, { "input": "61\n2 3 1 3 2 2 2 3 1 3 2 3 1 2 1 1 2 2 2 2 3 2 3 1 2 1 3 1 3 2 1 1 3 2 1 3 3 3 1 3 3 1 1 3 1 3 2 2 1 2 2 2 1 3 2 3 1 3 3 1 1", "output": "20\n9 55 2\n24 34 27\n3 5 37\n35 17 41\n61 11 4\n60 19 54\n15 20 59\n26 14 29\n16 22 38\n43 50 12\n49 25 36\n57 51 40\n39 6 33\n32 30 10\n31 48 8\n13 47 23\n45 1 58\n53 52 56\n42 18 21\n28 7 44" }, { "input": "5\n1 2 2 3 3", "output": "1\n1 3 4" } ]
1,682,424,990
2,147,483,647
Python 3
OK
TESTS
41
61
0
n = int(input()) x = list(map(int, input().split())) a = [] b = [] c = [] for i in range(n): if x[i] == 1: a.append(i + 1) elif x[i] == 2: b.append(i + 1) else: c.append(i + 1) print(min(len(a), len(b), len(c))) for i in range(min(len(a), len(b), len(c))): ans = [] ans.append(str(a[i])) ans.append(str(b[i])) ans.append(str(c[i])) print(' '.join(ans))
Title: Team Olympiad Time Limit: None seconds Memory Limit: None megabytes Problem Description: The School №0 of the capital of Berland has *n* children studying in it. All the children in this school are gifted: some of them are good at programming, some are good at maths, others are good at PE (Physical Education). Hence, for each child we know value *t**i*: - *t**i*<==<=1, if the *i*-th child is good at programming, - *t**i*<==<=2, if the *i*-th child is good at maths, - *t**i*<==<=3, if the *i*-th child is good at PE Each child happens to be good at exactly one of these three subjects. The Team Scientific Decathlon Olympias requires teams of three students. The school teachers decided that the teams will be composed of three children that are good at different subjects. That is, each team must have one mathematician, one programmer and one sportsman. Of course, each child can be a member of no more than one team. What is the maximum number of teams that the school will be able to present at the Olympiad? How should the teams be formed for that? Input Specification: The first line contains integer *n* (1<=≤<=*n*<=≤<=5000) — the number of children in the school. The second line contains *n* integers *t*1,<=*t*2,<=...,<=*t**n* (1<=≤<=*t**i*<=≤<=3), where *t**i* describes the skill of the *i*-th child. Output Specification: In the first line output integer *w* — the largest possible number of teams. Then print *w* lines, containing three numbers in each line. Each triple represents the indexes of the children forming the team. You can print both the teams, and the numbers in the triplets in any order. The children are numbered from 1 to *n* in the order of their appearance in the input. Each child must participate in no more than one team. If there are several solutions, print any of them. If no teams can be compiled, print the only line with value *w* equal to 0. Demo Input: ['7\n1 3 1 3 2 1 2\n', '4\n2 1 1 2\n'] Demo Output: ['2\n3 5 2\n6 7 4\n', '0\n'] Note: none
```python n = int(input()) x = list(map(int, input().split())) a = [] b = [] c = [] for i in range(n): if x[i] == 1: a.append(i + 1) elif x[i] == 2: b.append(i + 1) else: c.append(i + 1) print(min(len(a), len(b), len(c))) for i in range(min(len(a), len(b), len(c))): ans = [] ans.append(str(a[i])) ans.append(str(b[i])) ans.append(str(c[i])) print(' '.join(ans)) ```
3
918
A
Eleven
PROGRAMMING
800
[ "brute force", "implementation" ]
null
null
Eleven wants to choose a new name for herself. As a bunch of geeks, her friends suggested an algorithm to choose a name for her. Eleven wants her name to have exactly *n* characters. Her friend suggested that her name should only consist of uppercase and lowercase letters 'O'. More precisely, they suggested that the *i*-th letter of her name should be 'O' (uppercase) if *i* is a member of Fibonacci sequence, and 'o' (lowercase) otherwise. The letters in the name are numbered from 1 to *n*. Fibonacci sequence is the sequence *f* where - *f*1<==<=1, - *f*2<==<=1, - *f**n*<==<=*f**n*<=-<=2<=+<=*f**n*<=-<=1 (*n*<=&gt;<=2). As her friends are too young to know what Fibonacci sequence is, they asked you to help Eleven determine her new name.
The first and only line of input contains an integer *n* (1<=≤<=*n*<=≤<=1000).
Print Eleven's new name on the first and only line of output.
[ "8\n", "15\n" ]
[ "OOOoOooO\n", "OOOoOooOooooOoo\n" ]
none
500
[ { "input": "8", "output": "OOOoOooO" }, { "input": "15", "output": "OOOoOooOooooOoo" }, { "input": "85", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooo" }, { "input": "381", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooo" }, { "input": "805", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." }, { "input": "1000", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." }, { "input": "1", "output": "O" }, { "input": "2", "output": "OO" }, { "input": "3", "output": "OOO" }, { "input": "5", "output": "OOOoO" }, { "input": "17", "output": "OOOoOooOooooOoooo" }, { "input": "49", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooo" }, { "input": "256", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooo" }, { "input": "512", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." }, { "input": "933", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." }, { "input": "61", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooo" }, { "input": "781", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." }, { "input": "999", "output": "OOOoOooOooooOoooooooOooooooooooooOooooooooooooooooooooOoooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooOooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooOoooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooooo..." } ]
1,562,331,444
2,147,483,647
Python 3
OK
TESTS
18
109
102,400
n = int(input()) l= [] l.append(1) c=0 a=1 b=1 while c<=n: c=a+b a=b b=c l.append(c) for i in range(1,n+1): if i in l: print('O',end="") else: print('o',end="")
Title: Eleven Time Limit: None seconds Memory Limit: None megabytes Problem Description: Eleven wants to choose a new name for herself. As a bunch of geeks, her friends suggested an algorithm to choose a name for her. Eleven wants her name to have exactly *n* characters. Her friend suggested that her name should only consist of uppercase and lowercase letters 'O'. More precisely, they suggested that the *i*-th letter of her name should be 'O' (uppercase) if *i* is a member of Fibonacci sequence, and 'o' (lowercase) otherwise. The letters in the name are numbered from 1 to *n*. Fibonacci sequence is the sequence *f* where - *f*1<==<=1, - *f*2<==<=1, - *f**n*<==<=*f**n*<=-<=2<=+<=*f**n*<=-<=1 (*n*<=&gt;<=2). As her friends are too young to know what Fibonacci sequence is, they asked you to help Eleven determine her new name. Input Specification: The first and only line of input contains an integer *n* (1<=≤<=*n*<=≤<=1000). Output Specification: Print Eleven's new name on the first and only line of output. Demo Input: ['8\n', '15\n'] Demo Output: ['OOOoOooO\n', 'OOOoOooOooooOoo\n'] Note: none
```python n = int(input()) l= [] l.append(1) c=0 a=1 b=1 while c<=n: c=a+b a=b b=c l.append(c) for i in range(1,n+1): if i in l: print('O',end="") else: print('o',end="") ```
3
0
none
none
none
0
[ "none" ]
null
null
In the official contest this problem has a different statement, for which jury's solution was working incorrectly, and for this reason it was excluded from the contest. This mistake have been fixed and the current given problem statement and model solution corresponds to what jury wanted it to be during the contest. Vova and Lesha are friends. They often meet at Vova's place and compete against each other in a computer game named The Ancient Papyri: Swordsink. Vova always chooses a warrior as his fighter and Leshac chooses an archer. After that they should choose initial positions for their characters and start the fight. A warrior is good at melee combat, so Vova will try to make the distance between fighters as small as possible. An archer prefers to keep the enemy at a distance, so Lesha will try to make the initial distance as large as possible. There are *n* (*n* is always even) possible starting positions for characters marked along the *Ox* axis. The positions are given by their distinct coordinates *x*1,<=*x*2,<=...,<=*x**n*, two characters cannot end up at the same position. Vova and Lesha take turns banning available positions, Vova moves first. During each turn one of the guys bans exactly one of the remaining positions. Banned positions cannot be used by both Vova and Lesha. They continue to make moves until there are only two possible positions remaining (thus, the total number of moves will be *n*<=-<=2). After that Vova's character takes the position with the lesser coordinate and Lesha's character takes the position with the bigger coordinate and the guys start fighting. Vova and Lesha are already tired by the game of choosing positions, as they need to play it before every fight, so they asked you (the developer of the The Ancient Papyri: Swordsink) to write a module that would automatically determine the distance at which the warrior and the archer will start fighting if both Vova and Lesha play optimally.
The first line on the input contains a single integer *n* (2<=≤<=*n*<=≤<=200<=000, *n* is even) — the number of positions available initially. The second line contains *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (0<=≤<=*x**i*<=≤<=109), giving the coordinates of the corresponding positions.
Print the distance between the warrior and the archer at the beginning of the fight, provided that both Vova and Lesha play optimally.
[ "6\n0 1 3 7 15 31\n", "2\n73 37\n" ]
[ "7\n", "36\n" ]
In the first sample one of the optimum behavior of the players looks like that: 1. Vova bans the position at coordinate 15; 1. Lesha bans the position at coordinate 3; 1. Vova bans the position at coordinate 31; 1. Lesha bans the position at coordinate 1. After these actions only positions 0 and 7 will remain, and the distance between them is equal to 7. In the second sample there are only two possible positions, so there will be no bans.
0
[ { "input": "6\n0 1 3 7 15 31", "output": "7" }, { "input": "2\n73 37", "output": "36" }, { "input": "2\n0 1000000000", "output": "1000000000" }, { "input": "8\n729541013 135019377 88372488 319157478 682081360 558614617 258129110 790518782", "output": "470242129" }, { "input": "2\n0 1", "output": "1" }, { "input": "8\n552283832 997699491 89302459 301640204 288141798 31112026 710831619 862166501", "output": "521171806" }, { "input": "4\n0 500000000 500000001 1000000000", "output": "500000000" }, { "input": "18\n515925896 832652240 279975694 570998878 28122427 209724246 898414431 709461320 358922485 439508829 403574907 358500312 596248410 968234748 187793884 728450713 30350176 528924900", "output": "369950401" }, { "input": "20\n713900269 192811911 592111899 609607891 585084800 601258511 223103775 876894656 751583891 230837577 971499807 312977833 344314550 397998873 558637732 216574673 913028292 762852863 464376621 61315042", "output": "384683838" }, { "input": "10\n805513144 38998401 16228409 266085559 293487744 471510400 138613792 649258082 904651590 244678415", "output": "277259335" }, { "input": "6\n0 166666666 333333333 499999998 666666665 833333330", "output": "499999997" }, { "input": "16\n1 62500001 125000001 187500000 250000000 312500000 375000000 437500001 500000000 562500000 625000000 687500001 750000001 812500002 875000002 937500000", "output": "499999999" }, { "input": "12\n5 83333336 166666669 250000001 333333336 416666670 500000004 583333336 666666667 750000001 833333334 916666671", "output": "499999998" }, { "input": "20\n54 50000046 100000041 150000049 200000061 250000039 300000043 350000054 400000042 450000045 500000076 550000052 600000064 650000065 700000055 750000046 800000044 850000042 900000052 950000054", "output": "499999988" } ]
1,447,005,831
5,631
Python 3
SKIPPED
TESTS
0
46
0
N = int(input()) C = [ int(c) for c in input().split() ] C.sort() import math turn = 0 while len(C) > 2: if turn == 0: turn = 1 if C[-1]-C[1] < C[-2]-C[0]: popped = C.pop(0) # print("popped:", popped) else: popped =C.pop(-1) # print("popped:", popped) elif turn == 1: turn = 0 min_diff = C[0]-C[1] pop_index = 1 for i in range(2, len(C)): diff = C[i]-C[i-1] if diff < min_diff: diff = min_diff pop_index = i popped = C.pop(pop_index) # print("popped:", popped) # print(C) print(C[-1]-C[0])
Title: none Time Limit: None seconds Memory Limit: None megabytes Problem Description: In the official contest this problem has a different statement, for which jury's solution was working incorrectly, and for this reason it was excluded from the contest. This mistake have been fixed and the current given problem statement and model solution corresponds to what jury wanted it to be during the contest. Vova and Lesha are friends. They often meet at Vova's place and compete against each other in a computer game named The Ancient Papyri: Swordsink. Vova always chooses a warrior as his fighter and Leshac chooses an archer. After that they should choose initial positions for their characters and start the fight. A warrior is good at melee combat, so Vova will try to make the distance between fighters as small as possible. An archer prefers to keep the enemy at a distance, so Lesha will try to make the initial distance as large as possible. There are *n* (*n* is always even) possible starting positions for characters marked along the *Ox* axis. The positions are given by their distinct coordinates *x*1,<=*x*2,<=...,<=*x**n*, two characters cannot end up at the same position. Vova and Lesha take turns banning available positions, Vova moves first. During each turn one of the guys bans exactly one of the remaining positions. Banned positions cannot be used by both Vova and Lesha. They continue to make moves until there are only two possible positions remaining (thus, the total number of moves will be *n*<=-<=2). After that Vova's character takes the position with the lesser coordinate and Lesha's character takes the position with the bigger coordinate and the guys start fighting. Vova and Lesha are already tired by the game of choosing positions, as they need to play it before every fight, so they asked you (the developer of the The Ancient Papyri: Swordsink) to write a module that would automatically determine the distance at which the warrior and the archer will start fighting if both Vova and Lesha play optimally. Input Specification: The first line on the input contains a single integer *n* (2<=≤<=*n*<=≤<=200<=000, *n* is even) — the number of positions available initially. The second line contains *n* distinct integers *x*1,<=*x*2,<=...,<=*x**n* (0<=≤<=*x**i*<=≤<=109), giving the coordinates of the corresponding positions. Output Specification: Print the distance between the warrior and the archer at the beginning of the fight, provided that both Vova and Lesha play optimally. Demo Input: ['6\n0 1 3 7 15 31\n', '2\n73 37\n'] Demo Output: ['7\n', '36\n'] Note: In the first sample one of the optimum behavior of the players looks like that: 1. Vova bans the position at coordinate 15; 1. Lesha bans the position at coordinate 3; 1. Vova bans the position at coordinate 31; 1. Lesha bans the position at coordinate 1. After these actions only positions 0 and 7 will remain, and the distance between them is equal to 7. In the second sample there are only two possible positions, so there will be no bans.
```python N = int(input()) C = [ int(c) for c in input().split() ] C.sort() import math turn = 0 while len(C) > 2: if turn == 0: turn = 1 if C[-1]-C[1] < C[-2]-C[0]: popped = C.pop(0) # print("popped:", popped) else: popped =C.pop(-1) # print("popped:", popped) elif turn == 1: turn = 0 min_diff = C[0]-C[1] pop_index = 1 for i in range(2, len(C)): diff = C[i]-C[i-1] if diff < min_diff: diff = min_diff pop_index = i popped = C.pop(pop_index) # print("popped:", popped) # print(C) print(C[-1]-C[0]) ```
-1
954
A
Diagonal Walking
PROGRAMMING
800
[ "implementation" ]
null
null
Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible. In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left. Your problem is to print the minimum possible length of the sequence of moves after the replacements.
The first line of the input contains one integer *n* (1<=≤<=*n*<=≤<=100) — the length of the sequence. The second line contains the sequence consisting of *n* characters U and R.
Print the minimum possible length of the sequence of moves after all replacements are done.
[ "5\nRUURU\n", "17\nUUURRRRRUUURURUUU\n" ]
[ "3\n", "13\n" ]
In the first test the shortened sequence of moves may be DUD (its length is 3). In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
0
[ { "input": "5\nRUURU", "output": "3" }, { "input": "17\nUUURRRRRUUURURUUU", "output": "13" }, { "input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUU", "output": "100" }, { "input": "100\nRRURRUUUURURRRURRRRURRRRRRURRUURRRUUURUURURRURUURUURRUURUURRURURUUUUURUUUUUURRUUURRRURRURRRUURRUUUUR", "output": "67" }, { "input": "100\nUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUUURUUUUUUUUUUUUUUUUUUUUU", "output": "99" }, { "input": "3\nRUR", "output": "2" }, { "input": "1\nR", "output": "1" }, { "input": "5\nRURUU", "output": "3" }, { "input": "1\nU", "output": "1" }, { "input": "2\nUR", "output": "1" }, { "input": "23\nUUUUUUUUUUUUUUUUUUUUUUU", "output": "23" } ]
1,637,638,501
2,147,483,647
PyPy 3
COMPILATION_ERROR
TESTS
0
0
0
n=int(input()) text=input() c=0 for i in range(n-1): if n>=1 and n<=100: if text[i]=='R' and text[i+1]=='U': c=c+1 elif text[i]=='U' and text[i+1]=='R': c=c+1 else: c=c+0 a=(n-c)+ n//c print(a)
Title: Diagonal Walking Time Limit: None seconds Memory Limit: None megabytes Problem Description: Mikhail walks on a 2D plane. He can go either up or right. You are given a sequence of Mikhail's moves. He thinks that this sequence is too long and he wants to make it as short as possible. In the given sequence moving up is described by character U and moving right is described by character R. Mikhail can replace any pair of consecutive moves RU or UR with a diagonal move (described as character D). After that, he can go on and do some other replacements, until there is no pair of consecutive moves RU or UR left. Your problem is to print the minimum possible length of the sequence of moves after the replacements. Input Specification: The first line of the input contains one integer *n* (1<=≤<=*n*<=≤<=100) — the length of the sequence. The second line contains the sequence consisting of *n* characters U and R. Output Specification: Print the minimum possible length of the sequence of moves after all replacements are done. Demo Input: ['5\nRUURU\n', '17\nUUURRRRRUUURURUUU\n'] Demo Output: ['3\n', '13\n'] Note: In the first test the shortened sequence of moves may be DUD (its length is 3). In the second test the shortened sequence of moves can be UUDRRRDUDDUUU (its length is 13).
```python n=int(input()) text=input() c=0 for i in range(n-1): if n>=1 and n<=100: if text[i]=='R' and text[i+1]=='U': c=c+1 elif text[i]=='U' and text[i+1]=='R': c=c+1 else: c=c+0 a=(n-c)+ n//c print(a) ```
-1