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I need to write a method where I'm given a string s and I need to return the shortest string which contains s as a contiguous substring twice.

However two occurrences of s may overlap. For example,

  • aba returns ababa
  • xxxxx returns xxxxxx
  • abracadabra returns abracadabracadabra

My code so far is this:

import java.util.Scanner;

public class TwiceString {

    public static String getShortest(String s) {
        int index = -1, i, j = s.length() - 1;
        char[] arr = s.toCharArray();
        String res = s;

        for (i = 0; i < j; i++, j--) {
            if (arr[i] == arr[j]) {
                index = i;
            } else {
                break;
            }
        }

        if (index != -1) {
            for (i = index + 1; i <= j; i++) {
                String tmp = new String(arr, i, i);
                res = res + tmp;
            }
        } else {
            res = res + res;
        }

        return res;
    }

    public static void main(String args[]) {
        Scanner inp = new Scanner(System.in);
        System.out.println("Enter the string: ");
        String word = inp.next();

        System.out.println("The requires shortest string is " + getShortest(word));
    }
}

I know I'm probably wrong at the algorithmic level rather than at the coding level. What should be my algorithm?

share|improve this question
3  
+1 because i don't see why somebody down voted, this seems like a pretty valid question to me. –  John Jul 15 '12 at 7:47
1  
is this homework? –  Fahim Parkar Jul 15 '12 at 7:59
1  
This looks very much like homework. @CSSS, is this homework? –  Esko Jul 15 '12 at 8:00
1  
@CSSS: This looks a lot like homework. If it is, you should add the homework tag to your question. –  Darshan-Josiah Barber Jul 15 '12 at 8:00
    
@Esko and Fahim: No, this isn't homework. I was trying out my hands over them (just for the fun of it). –  OneMoreError Jul 15 '12 at 8:04

6 Answers 6

Use a suffix tree. In particular, after you've constructed the tree for s, go to the leaf representing the whole string and walk up until you see another end-of-string marker. This will be the leaf of the longest suffix that is also a prefix of s.

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As @phs already said, part of the problem can be translated to "find the longest prefix of s that is also a suffix of s" and a solution without a tree may be this:

public static String getShortest(String s) {
    int i = s.length();
    while(i > 0 && !s.endsWith(s.substring(0, --i))) 
        ;
    return s + s.substring(i);
}
share|improve this answer

Once you've found your index, and even if it's -1, you just need to append to the original string the substring going from index + 1 (since index is the last matching character index) to the end of the string. There's a method in String to get this substring.

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i think you should have a look at the Knuth-Morris-Pratt algorithm, the partial match table it uses is pretty much what you need (and by the way it's a very nice algorithm ;)

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If your input string s is, say, "abcde" you can easily build a regex like the following (notice that the last character "e" is missing!):

a(b(c(d)?)?)?$

and run it on the string s. This will return the starting position of the trailing repeated substring. You would then just append the missing part (i.e. the last N-M characters of s, where N is the length of s and M is the length of the match), e.g.

aba
  ^ match "a"; append the missing "ba"
xxxxxx
 ^ match "xxxxx"; append the missing "x"
abracadabra
       ^ match "abra"; append the missing "cadabra"
nooverlap
--> no match; append "nooverlap"
share|improve this answer

From my understanding you want to do this:

input: dog
output: dogdog
--------------
input: racecar
output: racecaracecar

So this is how i would do that:

 public String change(String input)
{
    StringBuilder outputBuilder = new StringBuilder(input);

    int patternLocation = input.length();
    for(int x = 1;x < input.length();x++)
    {
        StringBuilder check = new StringBuilder(input);

        for(int y = 0; y < x;y++)
            check.deleteCharAt(check.length() - 1);

        if(input.endsWith(check.toString()))
        {
            patternLocation = x;
            break;
        }
    }

    outputBuilder.delete(0,  input.length() - patternLocation);

    return outputBuilder.toString();
}

Hope this helped!

share|improve this answer
    
Doesn't satisfy the requirements, and fails since string.charAt(string.length()) obviously won't work. –  JB Nizet Jul 15 '12 at 7:59
1  
@JBNizet how does it not satisfy the requirements? –  John Jul 15 '12 at 8:01
2  
abracadabra should result to abracadabracadabra, not to abracadabrabracadabra. It's well explained in the question. You just care of the first and last chars. It's not what is being asked. –  JB Nizet Jul 15 '12 at 8:03
2  
@JBNizet ohh ok i see what you're saying, i didn't see that –  John Jul 15 '12 at 8:07
1  
If you say it works, I'll believe you. But I can't understand the algorithm. The OP's algorithm is much simpler, and doesn't need two loops. I'll remove my downvite, though. –  JB Nizet Jul 15 '12 at 8:41

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