12

How can I convert the following XMLList to an Array of Strings without using a loop?

<labels>
    <label>All</label>
    <label>your</label>
    <label>base</label>
    <label>are</label>
    <label>belong</label>
    <label>to</label>
    <label>us.</label>
</labels>

I want this result:

["All","your","base","are","belong","to","us."]

Right now, I am doing the following:

var labelsArray:Array /* of String */ = [];

for each (var labelText:String in labels.label)
{
    labelsArray.push(labelText);
}

I was wondering if there is a simpler way to do this in ActionScript 3.0

2
  • Your 'result' implies you want a string, did you mean ["All","your","base","are","belong","to","us."] ? Feb 25, 2009 at 10:32
  • Meme sneak win. Just saying. (And a useful question.) Nov 6, 2012 at 4:22

6 Answers 6

14

This works good but uses some odd syntax of the XMLList. The last statement can be placed on one line if desired.

    var labels:XML = <labels>
                    <label>All</label>
                    <label>your</label>
                    <label>base</label>
                    <label>are</label>
                    <label>belong</label>
                    <label>to</label>
                    <label>us.</label>
                </labels>;

var labelsArray:Array /* of String */ = [];

labels.label.
(
              labelsArray.push(toString())
);  

The toString() call can be replaced with an attribute() call to pull out attributes.

1
  • I like this, as well as not liking it. :< :>
    – Jono
    Sep 14, 2013 at 20:27
4

This one works pretty well:

public static function xmlListToArray($x:XMLList):Array {           
    var a:Array=[], i:String;
    for (i in $x) a[i] = $x[i];
    return a;
}
2

Your current implementation is more than sufficient. The only optimisation you could make (though I wouldn't bother unless you are using Vector.<>) is to pass in the initial capacity into the Array constructor:

var xmlLabels : XMLList = labels.label;
var labelsArray:Array /* of String */ = new Array(xmlLabels.length);

var index : int = 0;

for each (var labelText:String in xmlLabels)
{
    labelsArray[index++] = labelText;
}
2

Despite the earnest uses of for loops and logically working on the XML object as given, this is a job for XMLList.
It would best look something like this:

var xml:XML = 
<labels>
    <label>All</label>
    <label>your</label>
    <label>base</label>
    <label>are</label>
    <label>belong</label>
    <label>to</label>
    <label>us.</label>
</labels>
;
var list:XMLList = xml.label;
var labels:XMLList = list.text(); //Optional
trace(list[0]);
trace(list[3]);
trace(list[6]);

This would output:

All
are
us.

I've confirmed this in flash myself. Personally it makes sense to me to use the optional line, and reference labels[0] etc. but that's not needed here.

I know you're asking for an array of strings as the output, but basically I'm asking you why you can't just use the array accessors of an XMLList object.

Here's a fine walk-through on that: Senocular on E4X.

1
  • @Eric Belair if you tried it as it was you probably found issues with x being defined in most movieClips already and XMLLists not type coercing to Arrays as I expected. I have fixed this, and continue to insist that the XMLList way is the better way over for loops and string splits.
    – dlamblin
    Jan 28, 2010 at 21:56
1

for loops are extremely fast in AS. Why'd you need that? But you could give this a try:

private function toArray():void {
    var xml:XML = <labels>
               <label>all</label>
               <label>your</label>
              </labels>;

    var array:* = xml.label.text().toXMLString().split("\n") ;
    trace(array as Array);
}
10
  • Don't "need" it, per se. I was just wondering if there was a more elegant/simpler way to do it - i.e. a one line command. Feb 24, 2009 at 20:48
  • Maybe you could now give this function a try :)
    – dirkgently
    Feb 24, 2009 at 21:01
  • 2
    Splitting on a new line? Looks like a bad idea to me. What if there's a newline in the label? Feb 24, 2009 at 21:16
  • Not the best, I admit. It's a hack. as I've said, something can be done :)
    – dirkgently
    Feb 24, 2009 at 21:18
  • 'array' does not need to be typed as any (*) since String.split() returns an Array. Feb 25, 2009 at 10:28
0

i feel like there's a one-liner for this out there somewhere... oh well.

question: why does .length fail here? (always 0)

 public static function xmlListToArray($x:XMLList):Array {
        var t:int = $x.length;
        var a:Array=new Array(t), i:int;
        for (i = 0; i < t; ++i) a[i] = $x[i];
        return a;
    }
1
  • for XML length is a method, not a property. it should be var t:int = $x.length(). Not sure, but I think you get 0 because it is trying to find a length node, can't so returns nothing, which when cast with int becomes 0. Jan 20, 2010 at 15:19

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