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Given two strings of length n,P = p1...pn and Q = q1...qn, we define M(i, j, k) as the number of mismatches between pi...pi+k-1 and qj..qj+k-1. That is in set notation, M(i, j, k) refers to the size of the set { 0<=x<k | pi+x not equal to qj+x| }.

Given an integer K, your task is to find the maximum length L such that there exists pair of indices (i,j) for which we have M(i, j, L) <= K. Of course, we should also have i+L-1 <=n and j+L-1 <=n. Input

First line of input contains a single integer T (1 <=T <=10). T test cases follow. Each test case consists of an integer K and two strings P and Q separated by a single space. Output

For each test case output a single integer L which is the maximum value for which there exists pair of indices (i,j) such that M(i, j, L) <=K.

Constraints

0 <= K <= length of the string P Both P & Q would have the same length The size of each of the string would be at the max 1500 All characters in P & Q are lower-case English letters.

Sample Input

3
2 tabriz torino
0 abacba abcaba
3 helloworld yellomarin

Sample Output

4
3
8 

Explanation: First test-case: If we take "briz" from the first string, and "orin" from the second string, then the number of mismatches between these two substrings is equal to 2, and the length of these substrings are 4. That's we have chosen i=3, j=2, L=4, and we have M(3,2,4) = 2.

Second test-case: Since K=0, we should find the longest common substring for the given input strings. We can choose "aba" as the result, and we don't have longer common substring between two strings. So, the answer is 3 for this test-case. That's we have chosen i=1, j=4, and L=3, and we have M(1,4,3)=0.

Third test-case: We can choose "hellowor" from first string and "yellomar" from the second string. So, we have chosen i=1, j=1, and L=8, and we have M(1,1,8)=3. Of course we can also choose i=2, j=2, and L=8 and we still have M(2,2,8)=3.

here is my implementation

import java.io.*;
import java.util.*;

class Solution {

    public static int mismatch(String a, String b, int ii, int jj, int xx) {
        int i, j = 0;
        for (i = 0; i < xx; i++) {
            if (a.charAt(ii) != b.charAt(jj)) {
                j++;
            }
            ii++;
            jj++;
        }
        return j;
    }

    public static boolean find(int x, String a, String b, int kx) {
        int nn = a.length();
        for (int i = 0; i <= (nn - x); i++) {
            for (int j = 0; j <= (nn - x); j++) {
                int k;
                k = mismatch(a, b, i, j, x);
                if (k == kx) {
                    return true;
                }
            }
        }
        return false;
    }

    public static void main(String args[]) throws IOException {
        Scanner scanner = new Scanner(System.in);
        int t = scanner.nextInt();
        while (t > 0) {
            int k, n;
            String a, b;
            k = scanner.nextInt();
            a = scanner.next();
            b = scanner.next();
            n = a.length();
            int i = (n + k) / 2;
            int st = k, en = n
                while (i != k || i != n) {
                boolean ch = false, chh = false;
                ch = find(i, a, b, k);
                if (i != n) {
                    chh = find(i + 1, a, b, k);
                }
                if (i == n && ch == true) {
                    System.out.println(i);
                    break;
                }
                if (ch == true && chh == false) {
                    System.out.println(i);
                    break;
                }
                if (ch) {
                    st = i;
                    i = (i + en + 1) / 2;
                } else {
                    en = i;
                    i = (st + i) / 2;
                }
            }
            t--;
        }
    }
}

the above implementation is taking 5.1 sec for input 0f 1500 string length.But maximum time limit in java is 5sec.if any one can improve this code,please kindly share yor thougths

share|improve this question
    
This looks like a homework or programming contest problem. I'm adding the homework tag. If it doesn't apply, feel free to remove it. –  Adam Mihalcin Feb 20 '12 at 4:56
    
actually i solved that problem but it is taking more time –  user1218927 Feb 20 '12 at 5:03
    
just i have to reduce 0.1 sec –  user1218927 Feb 20 '12 at 5:04
    
InterviewStreet Question.. :) –  Parth Feb 20 '12 at 5:06
    
yes.its an interviewstreet question –  user1218927 Feb 20 '12 at 5:12

2 Answers 2

up vote 1 down vote accepted

Your code doesn't take 5.1s on the site. They stop running your code as soon as it exceeds the time limit. Your code might be taking even minutes. So, even if you optimize it with this algorithm you will again get 5.1s in details section. So work on your algo, not optimization!

share|improve this answer
    
That's right, i should work on algo –  user1218927 Mar 24 '14 at 8:09

You could make a boolean array compare[n,n], for which compare[i,j]=(a[i]==b[j]). Later use it instead of making repeating comparisons. You'll have incomparably less comparisons and addressing.

public static int mismatch(String a, String b, int ii, int jj, int xx) {
    int i, j = 0;
    for (i = 0; i < xx; i++) {
        if (! compare[ii,jj]) {
            j++;
        }
        ii++;
        jj++;
    }
    return j;
}
share|improve this answer
    
ya,but its not sufficient for reducing time –  user1218927 Feb 21 '12 at 8:28
    
Have you tested it? Sorry, but it sounds impossible for me. You could also remember all your output ant at the end print it all at once - this also should save time. The same for input. –  Gangnus Feb 21 '12 at 8:50
    
yes,i tested it.The time is not decreased much –  user1218927 Feb 21 '12 at 10:00
    
And where do you count this compare[]? Not in the mismatch(), I hope? I can't understand how the optimization of the inner cycle doesn't have effect on the whole optimization. That means, you have an optimization error in the algorithm. The problem is, that without comments and sensible variables names your code is practically unreadable. –  Gangnus Feb 21 '12 at 12:37

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