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I have an ArrayList of video resolutions that looks like this:

"1024x768", "800x600", "1280x1024", etc

I want to sort it based on numeric value in first part of string. Ie, the above would sort out to look like this:

"800x600","1024x768","1280x1024"

Is there a quick and dirty way to do this, by that I mean in less then 2-3 lines of code? If not, what would be the proper way? The values I get are from an object not my own. It does have a getWidth() and getHeight() methods that return ints.

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1  
So is your list of Strings or of this other type of object you mention? –  ColinD Sep 15 '10 at 23:52

5 Answers 5

up vote 5 down vote accepted

If the objects in the array are Resolution instances with getWidth methods then you can use a Comparator to sort on those:

Collections.sort(resolutions, new Comparator {
    public int compare(Resolution r1, Resolution r2) {
        return Integer.valueOf(r1.getWidth()).compareTo(Integer.valueOf(r2.getWidth()));
    }
});
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Integer.valueOf() would have been nicer than new Integer(), but still +1 –  Sean Patrick Floyd Sep 15 '10 at 23:15
2  
Comparators return a negative or positive integer or zero, so you can return r1.getWidth() - r2.getWidth() instead. –  Carey Sep 15 '10 at 23:17
    
Updated to use Integer.valueOf - ta. –  Shadwell Sep 15 '10 at 23:18
1  
@Carey: Using subtractiondoes not handle overflow for very large inputs. That trick should only be used with an appropriate comment. –  bkail Sep 16 '10 at 0:16
    
Hmm, yes. That would be an interesting bug to try to find. I see that Java 7 will have a convenient Integer.compare(x,y) method, which would be easy to steal from hg.openjdk.java.net/jdk7/jdk7/jdk/file/176586cd040e/src/share/… . –  Carey Sep 16 '10 at 8:20

The proper way is to write a Comparator implementation that operates on Strings, except that it parses up to the first non-numeric character. It then creates an int out of that and compares the ints.

You can then pass an instance of that Comparator into Collections.sort() along with your List.

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Use a custom Comparator to sort the ArrayList via the Collections api.

Collections.sort(resolutionArrayList, new ResolutionComparator())
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Using a Comparator will work, but will get slow if you have lots of values because it will parse each String more than once.

An alternative is to add each value to a TreeMap, with the number you want as the key, i.e., Integer.valueOf(s.substring(0,s.indexOf('x'))), then create a new ArrayList from the sorted values in treeMap.values().

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Reading for comprehension, I see you already have the parsed numbers, so my answer doesn’t really apply. –  Carey Sep 15 '10 at 23:14
    
The List would have to be huge for Collections.sort() to get noticeably slow. And a fix could be for the comparator to cache the parsed number, so every String would only be parsed once. –  Sean Patrick Floyd Sep 15 '10 at 23:19

The solution suggested by Shadwell in his answer is correct and idiomatic.

But if you're looking for a more concise solution, then I'd advise you use lambdaj which will enable you to write code like:

List<Resolution> sortedResolutions = sort(resolutions, on(Resolution.class).getWidth());
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