poj2406(KMP)
Power Strings
| Time Limit: 3000MS | Memory Limit: 65536K | |
| Total Submissions: 27614 | Accepted: 11566 |
Description
Given two strings a and b we define a*b to be their concatenation. For example, if a = "abc" and b = "def" then a*b = "abcdef". If we think of concatenation as multiplication, exponentiation by a non-negative integer is defined in the normal way: a^0 = "" (the empty string) and a^(n+1) = a*(a^n).
Input
Each test case is a line of input representing s, a string of printable characters. The length of s will be at least 1 and will not exceed 1 million characters. A line containing a period follows the last test case.
Output
For each s you should print the largest n such that s = a^n for some string a.
Sample Input
abcd aaaa ababab .
Sample Output
1 4 3
Hint
This problem has huge input, use scanf instead of cin to avoid time limit exceed.
Source
Waterloo local 2002.07.01
本题要求给定字符串的最小重复子串的重复次数。即求给定的字符串的最小重复单元即可。
可用KMP算法求得next[len],若len%(len-next[len])==0,则最小重复单元的长度为next[len],n=len/(len-next[len]);否则给定的字符串不能由某个字串重复得到。
#include<iostream>
#include<cstdio>
#include<cstring>
using namespace std;
const int MAXN=1000000+100;
int next[MAXN];
char str[MAXN];
void getNext(char *p)
{
int j,k;
j=0;
k=-1;
int len=strlen(p);
next[0]=-1;
while(j<len)
{
if(k==-1||p[j]==p[k])
{
j++;
k++;
next[j]=k;
}
else k=next[k];
}
}
void solve(int len)
{
if(len%(len-next[len])!=0)
printf("1\n");
else
printf("%d\n",len/(len-next[len]));
}
int main()
{
// freopen("in.txt","r",stdin);
while(~scanf("%s",str))
{
if(strcmp(str,".")==0)
break;
getNext(str);
solve(strlen(str));
}
return 0;
}