Theme Section
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 1114 Accepted Submission(s): 579
Problem Description
It's time for music! A lot of popular musicians are invited to join us in the music festival. Each of them will play one of their representative songs. To make the programs more interesting and challenging, the hosts are going to
add some constraints to the rhythm of the songs, i.e., each song is required to have a 'theme section'. The theme section shall be played at the beginning, the middle, and the end of each song. More specifically, given a theme section E, the song will be in
the format of 'EAEBE', where section A and section B could have arbitrary number of notes. Note that there are 26 types of notes, denoted by lower case letters 'a' - 'z'.
To get well prepared for the festival, the hosts want to know the maximum possible length of the theme section of each song. Can you help us?
To get well prepared for the festival, the hosts want to know the maximum possible length of the theme section of each song. Can you help us?
Input
The integer N in the first line denotes the total number of songs in the festival. Each of the following N lines consists of one string, indicating the notes of the i-th (1 <= i <= N) song. The length of the string will not exceed
10^6.
Output
There will be N lines in the output, where the i-th line denotes the maximum possible length of the theme section of the i-th song.
Sample Input
5 xy abc aaa aaaaba aaxoaaaaa
Sample Output
0 0 1 1 2
做这题时感觉非常愉快,由于coding时用的编辑器从单调的notepad++换成了炫酷的sublime。那配色方案、主题看着舒服多了。第二个原因是这题一次性通过~。
题意:给定一个字符串,长度在10^6之内,让这个字符串去匹配EAEBE形式的串,当中AB是随意长度的串(可为0)。求E串最长是多少。
题解:首先求出给定主串的next数组。能够确定的是。若主串符合EAEBE形式。那么设next[len]==i。则在范围j属于[2*i, len-i]范围内一定有next[j]==i,这样题目就可解了。
#include <stdio.h>
#include <string.h>
#define maxn 1000002
char str[maxn];
int next[maxn];
void getNext()
{
int i = 0, j = -1;
next[0] = -1;
while(str[i]){
if(j == -1 || str[i] == str[j]){
++i; ++j;
next[i] = j; //mode 1
}else j = next[j];
}
}
int KMP()
{
getNext();
int i, j, len = strlen(str);
for(i = next[len]; i; i = next[i]){
for(j = i << 1; j <= len - i; ++j){
if(next[j] == i) return i;
}
}
return 0;
}
int main()
{
//freopen("stdin.txt", "r", stdin);
int cas;
scanf("%d", &cas);
while(cas--){
scanf("%s", str);
printf("%d
", KMP());
}
return 0;
}