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Is it possible to sort an XMLList? All the examples I can find on it create a new XMLListCollection like this:

MyXMLListCol = new XMLListCollection(MyXMLList);

I don't think the XMLListCollection in this case has any reference to the XMLList so sorting it would leave my XMLList unsorted, is this correct?

How can I sort the XMLList directly?

Thanks ~Mike

share|improve this question
    
why do you wanna do it? almost all applications of xmllist that might require sorting is done thru xmllistcollection – Amarghosh Dec 9 '09 at 5:01
    
Any specific reason why the XMLList object needs to be sorted while an XMLListCollection can easily work for you? – Srirangan Dec 9 '09 at 11:21
    
I can't describe my need for this in the 600 characters I have. My app is importing and maintaining a large XML variable, and if I start chipping off and modifying clones of nodes of that variable it would be difficult to keep the original variable up to date. I was hoping to be able to do sorting actions on the variable directly. – invertedSpear Dec 10 '09 at 15:58
up vote 2 down vote accepted

So I finally got my search terms altered enough I actually churned up an answer to this. Using the technique I got from here: http://freerpad.blogspot.com/2007/07/more-hierarchical-sorting-e4x-xml-for.html

I was able to come up with this:

public function sortXMLListByAttribute(parentNode:XML,xList:XMLList,attr:String):void{
//attr values must be ints
var xListItems:int = xList.length();
if(xListItems !=0){
	var sortingArray:Array = new Array();
	var sortAttr:Number = new Number();
	for each (var item:XML in xList){
		sortAttr = Number(item.attribute(attr));
		if(sortingArray.indexOf(sortAttr)==-1){
			sortingArray.push(sortAttr);
		}
		//piggy back the removal, just have to remove all of one localName without touching items of other localNames
		delete parentNode.child(item.localName())[0];
	}
	if( sortingArray.length > 1 ) {
		sortingArray.sort(Array.NUMERIC);
	}

	var sortedList:XMLList = new XMLList();
	for each(var sortedAttr:Number in sortingArray){
		for each (var item2:XML in xList){
			var tempVar:Number = Number(item2.attribute(attr));
			if(tempVar == sortedAttr){
				sortedList += item2
			}
		}
	}
	for each(var item3:XML in sortedList){
		parentNode.appendChild(item3);
	}
}
}

Works pretty fast and keeps my original XML variable updated. I know I may be reinventing the wheel just to not use an XMLListCollection, but I think the ability to sort XML and XMLLists can be pretty important

share|improve this answer

While there is no native equivalent to the Array.sortOn function, it is trivial enough to implement your own sorting algorithm:

// Bubble sort.

// always initialize variables -- it save memory.
var ordered:Boolean = false;
var l:int = xmlList.length();
var i:int = 0;
var curr:XML = null;
var plus:XML = null;
while( !ordered )
{
	// Assume that the order is correct
	ordered = true;
	for( i = 0; i < l; i++ )
	{
		curr = xmlList[ i ];
		plus = xmlList[ i + 1 ];	

		// If the order is incorrect, swap and set ordered to false.
		if( Number( curr.@order ) < Number( plus.@order ) )
		{
			xmlList[ i ] 	 = plus;
			xmlList[ i + 1 ] = curr;
			ordered = false;
		}
	}
}

but, realistically, it is far easier and less buggy to use XMLListCollection. Further, if someone else is reading your code, they will find it easier to understand. Please do yourself a favor and avoid re-inventing the wheel on this.

share|improve this answer
    
This is a great code snippet. Simple and to the point. Thank you. – invertedSpear Dec 10 '09 at 16:00
    
After a few attempts I gave up on getting this code to work, it seems to be going into an infinate (or at least a very very long loop) – invertedSpear Dec 10 '09 at 21:38
    
Admittedly, with XMLLists, if length is excessive, this code won't work terribly efficiently. But, you might be able to look into the SDK directly and see how XMLListCollection implements sort. – cwallenpoole Dec 11 '09 at 4:06

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