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I'm trying to return all possible permutations of values in a String array. I've come up with the following code making all possible permutations; it works fine.

private void combineArray(String sPrefix, String[] sInput, int iLength) {
    if (iLength == sPrefix.length()) {
        //This value should be returned and concatenated:
        System.out.println(sPrefix);
    } else {
        for (int i=0; i<sInput.length; i++) {
            combineArray(sPrefix.concat(sInput[i]), ArrayUtils.removeElement(sInput, sInput[i]), iLength);
        }
    }
}

If I put in {x, y ,z} it prints to the console:

xyz
xzy
yxz
yzx
zxy
zyx

My problem is that I can't find a way to return these values to the original calling function. So I'd like this function not to return 'void' but a 'String' containing the concatened values of sPrefix.

I've been struggling with this for a while now and I can't seem to see clearly anymore. :) Any help would be appreciated.

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3  
Why not return a list with all the String combinations added? Even better, no? –  thatidiotguy Sep 27 '12 at 19:58
    
Just throwing out ideas, but could you alter an outside array during each iteration, or return an array of values that would return through each recursive level? –  Xiphos Sep 27 '12 at 20:01
    
Yeah, just return the data from the recursive routine. You can return either a regular [] array, or one of the collection classes, the latter being better as you can add to it as you return from each level. –  Hot Licks Sep 27 '12 at 20:04
    
LOL, you're all ridiculously fast. :) Thanks! I initially thought passing in a list parameter wouldn't work because Java only passes by value and not by reference, as far as I know... ? Also, is there no elegant way of using return statements? –  Michiel Meulendijk Sep 27 '12 at 20:12
    
Java passes all objects by reference. Only "scalers" -- ints, chars, floats, etc -- are passed by value. –  Hot Licks Sep 28 '12 at 2:32

3 Answers 3

up vote 3 down vote accepted

Rather than returning a list, I think it might work better to pass in a list as an argument, and populate it inside the method:

private void combineArray(List<String> lOut, String sPrefix, String[] sInput, int iLength) {
    if (iLength == sPrefix.length()) {
        //This value should be returned and concatenated:
        System.out.println(sPrefix);
        lOut.add(sPrefix);
    } else {
        for (int i=0; i<sInput.length; i++) {
            combineArray(lOut, sPrefix.concat(sInput[i]), ArrayUtils.removeElement(sInput, sInput[i]), iLength);
        }
    }
}

You can then have a wrapper method that creates the new ArrayList<String>, passes it into the above method, and returns it.

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You can have an ArrayList<String> and add all the strings to it.. And then you can return this ArrayList..

List<String> listString = new ArrayList<>();
private void combineArray(String sPrefix, String[] sInput, int iLength) {
    if (iLength == sPrefix.length()) {
        listString.add(sPrefix);
        //This value should be returned and concatenated:
        System.out.println(sPrefix);
    } else {
        for (int i=0; i<sInput.length; i++) {
            combineArray(sPrefix.concat(sInput[i]), ArrayUtils.removeElement(sInput, sInput[i]), iLength);
        }
    }
    return listString;
}
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Keep appending to the same output.. Like this:

private String combineArray(String sPrefix, String[] sInput, int iLength, String output) {
    if (iLength == sPrefix.length()) {
        //This value should be returned and concatenated:
        System.out.println(sPrefix);
        output = output+"|+sPrefix;
        return output;
    } else {
        for (int i=0; i<sInput.length; i++) {
            output = combineArray(sPrefix.concat(sInput[i]), ArrayUtils.removeElement(sInput, sInput[i]), iLength, output);
        }
    }
}

You can also use a ListArray instead of a String, once the basic concept works..

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