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I'm trying to set up an array through jQuery's .each() function, but it seems like I'm not properly doing it?

I have attributes in the html such as:

<div class="cheers" data-fname = "fname" data-lname="lname">some ish..</div><!-- going through a while loop!-->

Then I have a jquery function that does something like this

var arrayMe = [];
$(".cheers").each(function(index){
    arrayMe[index] = $(".cheers").attr('data-fname')+","+$(".cheers").attr('data-lname');
});

Then, when I try to do various alerts:

alert(arrayMe); //this gives me the fname,lname
alert(arrayMe[0]); //this gives me the first fname,lname in the array
alert(arrayMe[0][1]); //this SUPPOSED to give me the first lname, but it gives me a letter...
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5 Answers 5

up vote 4 down vote accepted

You have to use arrayMe[1] instead of arrayMe[0][1].

You get a letter, because arrayMe[0] is a string, and arrayMe[0][1] retrieves the second character of the given string. It's equivalent to arrayMe[0].charAt(1).

If you want to build a 2D array, use:

var arrayMe = [];
$(".cheers").each(function(index){
    var $this = $(this);
    arrayMe[index] = [$this.attr('data-fname'),
                      $this.attr('data-lname')];
});
alert(arrayMe);        // Array. Shows all pairs, eg: [['fname', 'lname'], ...]
alert(arrayMe[0]);     // Array. Shows first pair, eg: ['fname', 'lname']
alert(arrayMe[0][0]);  // String. fname            eg:  'fname'
alert(arrayMe[0][1]);  // String. lname            eg:           'lname'

(I have also fixed another issue in your code by replacing $('.cheers') with $(this))

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perfect! I see how it works now! –  andrewliu Feb 4 '12 at 21:32

If you want to access fname and lname separately, put them in an array:

var arrayMe = [];
$(".cheers").each(function(index){
    arrayMe[index] = [$(this).attr('data-fname'),$(this).attr('data-lname')];
});

Also, $(this).attr will give you the attribute of the current element, where $(".cheers").attr will always give you the attribute of the first element

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What about this:

var arrayMe = $(".cheers").map(function() {
    return [[ $(this).data('fname'), $(this).data('lname') ]];
}).get();

See squint's comment for explanation why double return-array needed.

share|improve this answer
    
.map() has a strange quirk where if you return an Array, instead of being added to the Array being built, it instead is concatenated into it. To overcome this, you need to wrap the return value in yet another Array so that that's the one that gets concatenated. return [ [ ..., ... ] ]; –  squint Feb 4 '12 at 21:29
    
Wow! this is interesting. Just tested and you are right!! Thank you, I didn't know about that.. now looking into jQuery source code, interesting.. –  dfsq Feb 4 '12 at 21:33
    
Additionally, .map returns a jQuery object. To convert it to an array, you have to add .toArray() in the end. –  Rob W Feb 4 '12 at 21:34
    
Yes, forgot.. Thanks –  dfsq Feb 4 '12 at 21:36
    
FYI, here's a bug report. They have no intention of fixing it. .map was an internal use function that they decided to expose irrespective of a few things that are unexpected for .map. Unfortunte. +1 though. –  squint Feb 4 '12 at 21:40

From what I can see you are not adding the values into an array, but instead into a string which is being stored in arrayMe[index].

Try using when storing into the array to achieve what I believe you want:

var arrayMe = [];
$(".cheers").each(function(index){
    arrayMe[index][0] = $(".cheers").attr('data-fname');
    arrayMe[index][1] = $(".cheers").attr('data-lname');
});
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You will have to change your code to:

arrayMe[index] = [$(".cheers").attr('data-fname'), $(".cheers").attr('data-lname')];
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