最长回文
Time Limit: 4000/2000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 3759 Accepted Submission(s): 1261
Problem Description 给出一个只由小写英文字符a,b,c…y,z组成的字符串S,求S中最长回文串的长度.
回文就是正反读都是一样的字符串,如aba, abba等
Input 输入有多组case,不超过120组,每组输入为一行小写英文字符a,b,c…y,z组成的字符串S
两组case之间由空行隔开(该空行不用处理)
字符串长度len <= 110000
Output 每一行一个整数x,对应一组case,表示该组case的字符串中所包含的最长回文长度.
Sample Input aaaa abab
Sample Output 4 3
Source
2009 Multi-University Training Contest 16 – Host by NIT
Recommend lcy 参考链接:
http://www.felix021.com/blog/read.php?2040
http://www.cppblog.com/csu-yx/archive/2012/10/24/193807.aspx 这个算法在上面讲得很清楚了。
//============================================================================ // Name : HDU3068.cpp // Author : // Version : // Copyright : Your copyright notice // Description : Hello World in C++, Ansi-style //============================================================================ #include <iostream> #include <string.h> #include <algorithm> #include <stdio.h> #include <math.h> using namespace std; int Proc(char pszIn[],char pszOut[]) { int nLen=1; pszOut[0]='$'; int i=0; while(pszIn[i]!='\0') { pszOut[nLen++]='#'; pszOut[nLen++]=pszIn[i]; i++; } pszOut[nLen++]='#'; pszOut[nLen]=0; return nLen; } void Manacher(int *p,char *str,int len) { int mx=0,id=0; for(int i=0;i<len;i++) { p[i]=mx>i?min(p[2*id-i],mx-i):1; while(str[i+p[i]]==str[i-p[i]])p[i]++; if(i+p[i]>mx) { mx=i+p[i]; id=i; } } } const int MAXN=220010; char strIn[MAXN]; char strOut[MAXN]; int p[MAXN]; int main() { while(scanf("%s",strIn)!=EOF) { int nLen=Proc(strIn,strOut); Manacher(p,strOut,nLen); int ans=1; for(int i=0;i<nLen;i++) ans=max(ans,p[i]); printf("%d\n",ans-1); } return 0; }