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I wrote the code for checking if S3 is a interleaving of S1 and S2 string.

But it fails for simple strings like "AB" , "CD" -> "ACBD"

Am I missing something ?

class InterleavedString {

    // error
    public static boolean isInterleaved (String A, String B, String C)
    {
        // Iterate through all characters of C.
        int a = 0, b = 0, c = 0;
        while (C != null)
        {
            // Match first character of C with first character of A,
            // If matches them move A to next 
            if (A.charAt(a) == C.charAt(c))
                a++;

            // Else Match first character of C with first character of B,
            // If matches them move B to next 
            else if (B.charAt(b) == C.charAt(c))
                b++;

            // If doesn't match with either A or B, then return false
            else
                return false;

            // Move C to next for next iteration
            c++;
        }

        // If A or B still have some characters, then length of C is smaller 
        // than sum of lengths of A and B, so return false
        if (A != null || B != null)
            return false;

        return true;
    }

    public static void main(String [] args) {
        String A = "AB", B = "CD", C = "ACBD";
        System.out.println(isInterleaved(A, B, C));
    }
}

ERROR :

Exception in thread "main" java.lang.StringIndexOutOfBoundsException: String index out of range: 2 at java.lang.String.charAt(Unknown Source) at strings.InterleavedString.isInterleaved(InterleavedString.java:14) at strings.InterleavedString.main(InterleavedString.java:40)

EDITED :

while (c != C.length())
.....
.....
if (a != A.length() || b != B.length())
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Also .. is my code the most efficient one ? or could this be improved ? –  tm99 Jul 25 '13 at 20:20
1  
"Am I missing something?" Yes; the end of your array. –  Brian Roach Jul 25 '13 at 20:21
    
If A and C don't have any common characters, this code will keep walking through the characters in A until you receive an index out of range exception (since you ran out of characters). There are other problems with the code, but that is what is causing the error in question. –  Kevin DiTraglia Jul 25 '13 at 20:23
    
What should a correct algorithm return for this problem for this set of input: A=abd, B=dc, C=abdcd ? TRUE or FALSE ? –  Fallen Jul 25 '13 at 22:24

2 Answers 2

The condition of your while statement is wrong. You are never changing your value of C. Instead of while (C != null) you should use while c != C.length() or something similar.

The same problem is with your A != null and B != null statements because charAt does not remove any characters!

In addition you need to check the bounds of your Strings in your if clauses:

if (a < A.length() && A.charAt(a) == C.charAt(c))

Also if you are aiming for efficiency you should add this check at the beginning of your method and in turn remove the last if statement:

if (A.length() + B.length() != C.length())
    return false;
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I changed as per your suggestions...still it throws the same error –  tm99 Jul 25 '13 at 20:25
    
sorry - see my edit –  Michael Lang Jul 25 '13 at 20:26
    
does this approach works for A=abd, B=dc, C=abdcd? I doubt :) –  Fallen Jul 25 '13 at 22:23
    
@Fallen true enough :) however, I wasn't actually designing an optimal solution but helping the OP with the most basic problems at hand. –  Michael Lang Jul 26 '13 at 14:35

This is wrong .. Try with "XXY", "XXZ", "XXZXXY" .. The output will be false

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