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I want to sort an arraylist of pairs of integers. So far I've been able to sort them according to the first element, but I get something like (1,2), (1,-2). I want to also sort them according to the second element so I can get a correct sorted arraylist, but I cant seem to make it work.

The code for the first element sorting is:

private class FirstElmComparator implements Comparator<Pair> {

    public int compare(Pair pr1, Pair pr2) {
        return pr1.compareFirstElms(pr2);
    }
}

and compareFirstElms function is the following:

protected int compareFirstElms (Pair p) {
    return (new Integer (this.p1)).compareTo(new Integer (p.p1));
}

I can think of making the second element comparator as the following:

private class SecondElmComparator implements Comparator<Pair> {

    public int compare(Pair pr1, Pair pr2) {
        return pr1.compareSecondElms(pr2);
    }
}

protected int compareSecondElms (Pair p) {
    return (new Integer (this.p2)).compareTo(new Integer (p.p2));
}

NOTE: p1 and p2 are the first and second element in a pair.

But I think it will override the first element sorting order, or am I mistaken? Can anybody help me with this.

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4 Answers 4

up vote 3 down vote accepted

You create one common comparator that evaluates both elements of the Pair.

public int compare(Pair pr1, Pair pr2) {
    int firstResult = pr1.compareFirstElms(pr2);
    if (firstResult == 0) { //First comparison returned that both elements are equal
        return pr1.compareSecondElms(pr2);
    } else {
        return firstResult;
    }
}
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It's very simple, implement it like this:

  • If the first elements of the pairs to compare are different, then sort on the first element.
  • Otherwise (if the first elements are equal), sort on the second element.
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and i implement this in the second element compareTo method? –  aizen92 Mar 26 '12 at 9:43
    
No, in your compare method just call compareFirstElms, if it indicates that the first elements are different then return the result of that call, and if they are the same then call compareSecondElms and return the result of that. –  Jesper Mar 26 '12 at 9:51

You wouldn't use two distinct comparators but one (which might in turn call others to do the internal work).

So in pseudocode, the comparison would look like this:

public int compare(Pair pr1, Pair pr2) {

  int result = compare(p1.first, p2.first);

  if( result == 0 ) {
    result = compare(p1.second, p2.second);
  }

  return result;
}
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Well, first off, you need to write an explicit method for that:

public int compare(Pair p) {
    int first = compareFirstElms(p);
    return first == 0 ? compareSecondElms(p) : first;
}

Secondly, don’t over-engineer. Comparing two ints is as simple as writing this.p1 - p.p1. No need for conversions.

Thirdly, I would choose explicit, concise yet complete names. Don’t arbitrarily abbreviate parts of words, this doesn’t exactly help readability. How about compareByFirst and compareBySecond, respectively?

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"Comparing two ints is as simple as writing this.p1 - p.p1" ... provided, that all values stay in a safe range. Integer.MAX_VALUE - Integer.MIN_VALUE == -1. –  Dirk Mar 26 '12 at 9:47
    
Integer.MIN_VALUE - X would be even worse because of the overflow. –  Max Mar 26 '12 at 9:55

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