Two-gram is an ordered pair (i.e. string of length two) of capital Latin letters. For example, "AZ", "AA", "ZA" — three distinct two-grams.
You are given a string ss consisting of nn capital Latin letters. Your task is to find any two-gram contained in the given string as a substring(i.e. two consecutive characters of the string) maximal number of times. For example, for string ss = "BBAABBBA" the answer is two-gram "BB", which contained in ss three times. In other words, find any most frequent two-gram.
Note that occurrences of the two-gram can overlap with each other.
The first line of the input contains integer number nn (2≤n≤1002≤n≤100) — the length of string ss. The second line of the input contains the string ss consisting of nn capital Latin letters.
Print the only line containing exactly two capital Latin letters — any two-gram contained in the given string ss as a substring (i.e. two consecutive characters of the string) maximal number of times.
7 ABACABA
AB
5 ZZZAA
ZZ
In the first example "BA" is also valid answer.
In the second example the only two-gram "ZZ" can be printed because it contained in the string "ZZZAA" two times.
做完一次div3发现我的水平连div3都搞不定了,等啥事候出道div5我在打吧~
题目大意:就是两个字母为一组,问一个字符串中出现次数最多的那一组是哪一组。这道题直接暴力就可以了,找出出现次数最多的那一组并记录其位置,然后输出。
#include<iostream>
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
int main(){
int n;
while(~scanf("%d",&n)){
char str[110];
//char string[2];
int a[10010];
scanf("%s",str);
//int len=strlen(str);
if(n==2) printf("%c%c\n",str[0],str[1]);
else{
char string[10010][2];
for(int i=0;i<n;i++){
string[i][0]=str[i];
string[i][1]=str[i+1];
}
for(int i=0;i<n;i++){
for(int j=0;j<n;j++){
if(string[i][0]==str[j]&&string[i][1]==str[j+1]){
a[i]++;
}
}
}
int max=0,flag;
for(int i=0;i<n;i++){
if(max<a[i]){
max=a[i];
flag=i;
}
}
printf("%c%c\n",str[flag],str[flag+1]);
}
}
return 0;
}