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I'm trying to clean up my jQuery code a bit and I'm doing that by definen functions in my code, but I'm pretty new to it so I ran into a little problem

    function appendToContent_vragen() {
    $(this).closest('.container_vragen').fadeOut(400, function() {
        $(this).closest('.container_vragen').css({overflow : 'hidden', color : 'black'});

$('#geregeld , #niet_geregeld').on('click','.container_vragen').click(appendToContent_vragen);

The problem with this code is that the click function doesn't work. If I do it like this


It does work but it selects the wrong .container_vragen (since it's not in the #geregeld , #niet_geregeld div.

Here's a jsFiddle of the whole project. On the top is the function.

share|improve this question
jsFiddle seems down for me. – Peter Boomsma Jan 10 '13 at 10:03
Post your html markup here – OptimusCrime Jan 10 '13 at 10:06
its very difficult to understand when you are not showing relevant code or put it somewhere – Milind Anantwar Jan 10 '13 at 10:06
Without more code, it's very hard to see what is going wrong. Tip though: you can merge those 3 lines $(this).closest into 1 line; $(this).closest('.container_vragen').appendTo('#content_vragen').closest('.cont‌​ainer_vragen').css({overflow : 'hidden', color : 'black'}).closest('.container_vragen').fadeIn(400); If you do a $(this) 3 times, jQuery has to re-select your element on every iteration, chaining (like my example) will speed it up, as the element is only selected once. – c_kick Jan 10 '13 at 10:08 Here's the jsFiddle. – Peter Boomsma Jan 10 '13 at 10:39

2 Answers 2

you can use jQuery .children() to select children after a jquery element selector

$('#geregeld , #niet_geregeld').children('.container_vragen').click(appendToContent_vragen)
share|improve this answer
Sounds logical but the click does not call the function. – Peter Boomsma Jan 10 '13 at 10:37
what prints when you console.log() the selector? is the click being bound to the right element? – jye265 Jan 10 '13 at 10:52

This line should be line:

$('#geregeld , #niet_geregeld').on('click','.container_vragen').click(appendToContent_vragen);

Should be like this:

$('#geregeld , #niet_geregeld').on('click',function(){
    $('.container_vragen', this).click(appendToContent_vragen);

Correcting the answer:

 $('#geregeld , #niet_geregeld .container_vragen').on('click',appendToContent_vragen);
share|improve this answer
This method seems to work but I have to click on the .container_vragen element twice for it to do the function appendToContent_vragen – Peter Boomsma Jan 10 '13 at 10:37
Corrected to let it work as described – Saligor Jan 10 '13 at 10:52
I'm afraid that this method does not react to the on click in the element. – Peter Boomsma Jan 10 '13 at 18:31

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