题目大意:
求一个串中有多少个回文子串
这.....
妥妥的模板题吧....
对所有的$r[i] / 2$进行求和即可,其中,$r[i]$为以$i$为中心的回文半径
$r[i] / 2$怎么来的,画下图就知道了...
复杂度$O(n)$
#include <cstdio>
#include <cstring>
#include <iostream>
#include <algorithm>
using namespace std; #define ri register int
#define rep(io, st, ed) for(ri io = st; io <= ed; io ++) const int sid = ; int n, m, ans;
char s[sid], t[sid];
int r[sid]; int main() {
scanf("%s", s + );
n = strlen(s + ); rep(i, , n) {
t[++ m] = '#';
t[++ m] = s[i];
}
t[++ m] = '#'; r[] = ;
int mr = , pos = ;
rep(i, , m) {
r[i] = min(mr - i + , r[pos + pos - i]);
while(i > r[i] && t[i + r[i]] == t[i - r[i]]) r[i] ++;
if(i + r[i] - > mr) mr = i + r[i] - , pos = i;
} rep(i, , m) ans += r[i] / ;
printf("%d\n", ans);
return ;
}