nyoj308 Substring(第四届河南省程序设计大赛)

Substring

时间限制: 1000 ms  |  内存限制: 65535 KB
难度: 1
描述

You are given a string input. You are to find the longest substring of input such that the reversal of the substring is also a substring of input. In case of a tie, return the string that occurs earliest in input. 

Note well: The substring and its reversal may overlap partially or completely. The entire original string is itself a valid substring . The best we can do is find a one character substring, so we implement the tie-breaker rule of taking the earliest one first.

输入
The first line of input gives a single integer, 1 ≤ N ≤ 10, the number of test cases. Then follow, for each test case, a line containing between 1 and 50 characters, inclusive. Each character of input will be an uppercase letter ('A'-'Z').
输出
Output for each test case the longest substring of input such that the reversal of the substring is also a substring of input
样例输入
3                   
ABCABA
XYZ
XCVCX
样例输出
ABA
X
XCVCX
来源
第四届河南省程序设计大赛
上传者
张云聪

我只想说这不是回文串。。

一个测试数组abvcba 答案ab

首先把原字符串翻转

把该题理解为最长公共子串,使用动态规划可以解决。

import java.util.Scanner;


public class Main {
	public static void main(String[] args) {
		Scanner sca=new Scanner(System.in);
		int n=sca.nextInt();
		while(n-->0){
			int dp[][]=new int[55][55];
			String a=sca.next();
			int len=a.length();
			String b=new StringBuffer(a).reverse().toString();
			int res=0;
			int index=0;
			for(int i=1;i<=len;i++){
				for(int j=1;j<=len;j++){
					if(a.charAt(i-1)==b.charAt(j-1)){
						dp[i][j]=dp[i-1][j-1]+1;
					}
					if(dp[i][j]>res){
						res=dp[i][j];
						index=i;
					}
				}
			}
			System.out.println(a.substring(index-res, index));
		}
	}

}



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