1010 - The Minimum Length
Time Limit: 1s Memory Limit:
128MB
Submissions: 1382 Solved: 519
- Description
- There is a string A. The length of A is less than 1,000,000. I rewrite it again and again. Then I got a new string: AAAAAA...... Now I cut it from two different position and get a new string B. Then, give you the string B, can you tell me the length of the shortest possible string A.For example, A="abcdefg". I got abcdefgabcdefgabcdefgabcdefg.... Then I cut the red part: efgabcdefgabcde as string B. From B, you should find out the shortest A.
- Input
- Multiply Test Cases.For each line there is a string B which contains only lowercase and uppercase charactors.The length of B is no more than 1,000,000.
- Output
- For each line, output an integer, as described above.
- Sample Input
-
bcabcab efgabcdefgabcde
- Sample Output
-
3 7
这个题目是给定一个由一段字符串A重复组成的字符串B的一部分,且至少包含一个字符串A,求出那个串A的长度
这个题目再次彰显KMP的强大。。。
因为是至少包含一个完整的A,所以开头第一个字母与后面组成的一个串长为要求的串A的长度的序列一定与A是同构的,那么由KMP算法求得的第m+1位的那个字符的next值与给出的字符串总长的差一定是这个要求的串A的长度。
代码如下:
/*************************************************************************
> File Name: The_Minimum_Length.cpp
> Author: Zhanghaoran
> Mail: chilumanxi@xiyoulinux.org
> Created Time: Wed 25 Nov 2015 12:17:00 AM CST
************************************************************************/
#include <iostream>
#include <algorithm>
#include <cstring>
#include <cstdio>
#include <cstdlib>
using namespace std;
int Max = 0;
void preKmp(char x[], int m, int kmp_Next[]){
int i, j;
j = -1;
kmp_Next[0] = -1;
i = 0;
while(i < m){
if(j == -1 || x[i] == x[j]){
kmp_Next[++i] = ++ j;
}
else
j = kmp_Next[j];
if(Max < j)
Max = j;
}
kmp_Next[0] = 0;
}
int nexti[1000010];
char a[1000010];
int main(void){
while(~scanf("%s", a)){
preKmp(a, strlen(a), nexti);
cout << strlen(a) - nexti[strlen(a)] << endl;
Max = 0;
}
}