2021-7-25 Two Substrings
作者:互联网
难度 1500
题目 Codeforces:
A. Two Substrings time limit per test 2 seconds memory limit per test 256 megabytesYou are given string s. Your task is to determine if the given string s contains two non-overlapping substrings "AB" and "BA" (the substrings can go in any order).
InputThe only line of input contains a string s of length between 1 and 105 consisting of uppercase Latin letters.
OutputPrint "YES" (without the quotes), if string s contains two non-overlapping substrings "AB" and "BA", and "NO" otherwise.
Keyword non-overlapping 不重叠的 题目解析 题目大意是给出一个很长的字符串,要求判断里面是否有不重叠的AB和BA 举个例子ABA不行,因为AB和BA的B是重叠的,ABACAB可以,因为第二个AB和第一个BA并不重叠。 所以简单的遍历,找第一个AB后再找第一个BA,如果找不到,那么再重新找第一个BA后找第一个AB,这样就可以避免出现因为先找到一项另一项原本会出现但却因为重叠不成立的情况。 解析完毕,以下是参考代码1 #include<iostream> 2 #include<string> 3 #include<string.h> 4 using namespace std; 5 int main() 6 { 7 string s; cin >> s; 8 bool tf1 = 1, tf2 = 1; 9 for (int i = 0; i < s.size()-1; i++) 10 { 11 if (s[i] == 'A' && s[i + 1] == 'B') 12 { 13 if (tf1) 14 for (int j = i + 2; j < s.size(); j++) 15 { 16 if (s[j] == 'B' && s[j + 1] == 'A') 17 { 18 cout << "YES" << endl; 19 return 0; 20 } 21 } 22 if (tf1) tf1 = 0; 23 } 24 else if (s[i] == 'B' && s[i + 1] == 'A') 25 { 26 if (tf2) 27 for (int j = i + 2; j < s.size()-1; j++) 28 { 29 if (s[j] == 'A' && s[j + 1] == 'B') 30 { 31 cout << "YES" << endl; 32 return 0; 33 } 34 } 35 if (tf2)tf2 = 0; 36 } 37 if (!tf1 && !tf2)break; 38 } 39 cout << "NO"; 40 return 0; 41 }
标签:25,non,AB,string,Substrings,2021,重叠,include,BA 来源: https://www.cnblogs.com/lovetianyi/p/15059438.html