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I don't understand why the following code doesn't work. (jQuery 1.6.4)

HTML:

<div class="test"></div>
<div class="test"></div>
<div class="test"></div>
<div class="test"></div>
<div class="test"></div>
<div class="test me"></div>
<div class="test me"></div>
<div class="test me"></div>

JS:

var rows = $([]);

console.debug('Divs we want: ', $('div:not(.me)').length);

console.debug('Rows before: ', rows.length);

$('div:not(.me)').each(function() {
    if (1==1) { // some conditional
        console.debug($(this));
        rows.add($(this));
    }
});

console.debug('Rows after: ', rows.length);
share|improve this question
2  
what do you mean by not work??? –  Laurence Burke Oct 27 '11 at 15:34
    
$([]); should just be $(). –  Rocket Hazmat Oct 27 '11 at 15:37

2 Answers 2

up vote 7 down vote accepted

add() builds and returns a new jQuery object from the contents of the one it's called on and the argument you supply. It does not update the object it's called on.

You probably want to write:

rows = rows.add(this);

As an aside, since jQuery 1.4 the canonical way to construct an empty jQuery object is to call $() without arguments:

var rows = $();
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Ah, thank you, I didn't realize jQuery was creating a new collection with that call :) –  Muers Oct 27 '11 at 16:38

The reason why is that add returns a new jQuery object with the added element. It doesn't modify the existing jQuery object inline. You need to capture this result. Change

rows.add($(this));

To

rows = rows.add($(this));

Note: As Rocket pointed out it's much simpler to remove the extra object and simply say

rows = rows.add(this);
share|improve this answer
1  
Note: you can do rows = rows.add(this);, saves a call to the jQuery function. –  Rocket Hazmat Oct 27 '11 at 15:44
    
@Rocket indeed. Updated my answer. Thanks! –  JaredPar Oct 27 '11 at 15:45

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