Let's call a string adorable if its letters can be realigned in such a way that they form two consequent groups of equal symbols (note that different groups must contain different symbols). For example, ababa is adorable (you can transform it to aaabb, where the first three letters form a group of a-s and others — a group of b-s), but cccc is not since in each possible consequent partition letters in these two groups coincide.
题目链接:http://codeforces.com/problemset/problem/955/B
题目大意:读不懂题的苦。。。美丽的字符串的标准是:能分成两部分,分成的两部分由同一个字母组成。比如aaabb就是美丽的,分成aaa与bb,ax也是美丽的,a与x。 而让我们输出yes的字符串并不是 “字符串是不是美丽”的,输出yes的条件是这个字符串可以分成两部分,这两部分都是美丽的,然后输出yes。
比如说aaabb输出yes,分成美丽的两部分ab与aab; 而zzcxx输出yes分成两个美丽的两个部分zc与zxx。 而accc输出No,因为只能分成a与ccc(都不是美丽的字符串) 或者分ac与cc(ac是美丽的字符,而cc不是,因为cc分成两部分为c与c,是相同的)
AC代码:
#include<cstdio>
#include<cmath>
#include<algorithm>
#include<cstring>
#include<iostream>
#include<cstdlib>
#include<string>
using namespace std;
const int MaxN = 1e5 + 5;
char a[MaxN];
int id[5];
int main()
{
int num = 1;
cin >> a;
int len = strlen(a);
if(len < 4) printf("No\n");
else {
sort(a, a + len);
for(int i = 1; i < len; i++) {
if(a[i] != a[i-1]) {
id[num] = i;
num++;
}
if(num > 4) {
printf("No\n");
break;
}
}
if(num == 1) printf("No\n");
else if(num == 2) {
if(id[1] >= 2 && len - id[1] >= 2 ) printf("Yes\n");
else printf("No\n");
}
else if( num == 3){
if(id[1] == 1 && fabs(id[2] - id[1]) == 1 && len - id[2] == 1)
printf("No\n");
else printf("Yes\n");
}
else if(num == 4) {
printf("Yes\n");
}
}
}