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I know it is quite a common issue, but even with research I was not able to understand what goes wrong in my call to document.ready() Javascript function.

For some reason, it gets called twice, even when I don't execute anything else than an alert.

As I said in the title, I am using jQuery, and figured something could come from $(function(){}), so I removed any execution in there as well. Nothing changes, document.ready() is still called twice.

What can be the origin of this issue? How to troubleshoot/solve it?

Thanks in advance!

Here's the code I've tried :

$(function(){
    //$( "#tabs" ).tabs();
});

$(document).ready(function() {
    //getTableEntity("organisation", "getentitytable", "#testtable");
    //standardDataTable('#tableOrga');
    alert("document.ready");
});

Edit : I know I'm using the same function twice. Putting everything in one function doesn't solve the problem.

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4  
Show us some code bruv? –  Tats_innit Jun 25 '12 at 7:54
2  
post your code that you tried. and document.ready() should $(document).ready() –  thecodeparadox Jun 25 '12 at 7:54
    
Post updated, code set. –  Gabriel Theron Jun 25 '12 at 7:57
    
@GabrielTheron jsfiddle.net/tdgM8/16 working here? :) cannot se any 2 alerts? –  Tats_innit Jun 25 '12 at 7:57
    
Yep, it's working in jsfiddle –  Gabriel Theron Jun 25 '12 at 7:59
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4 Answers

up vote 5 down vote accepted

Do you use a template-Engine such smarty or .net or something else? It could be that there is a double script source for jquery. Then there are side effects.

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I'm using Twig. I'll look into that, thanks –  Gabriel Theron Jun 25 '12 at 8:08
    
I was calling the javascript in the {% block javascripts %} of my Twig, which was probably calling it twice. When placed in the body, it fires only once now. Thank you! –  Gabriel Theron Jun 25 '12 at 8:12
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You can check if the dom is ready with this code. Place code in your javascript source file.

// If the DOM is already ready
if ( jQuery.isReady ) {
// Execute the function immediately
fn.call( document, jQuery );
} // ...
share|improve this answer
    
That makes no change, which means jQuery is ready from the start. –  Gabriel Theron Jun 25 '12 at 8:07
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should use one of them... and put your code on one of the following jquery function

$(function(){
    //$( "#tabs" ).tabs();
});

OR

$(document).ready(function() {
    //getTableEntity("organisation", "getentitytable", "#testtable");
    //standardDataTable('#tableOrga');
    alert("document.ready");
});

$(function(){ is equal to $(document.ready)

Read here on jquery

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i think this demo will help you

<script>
    $(function(){
        $('#test1').appendTo('#test2');
        console.log(1);
    })
</script>
<div id="test1">
<script>
    $(function(){
        console.log(2);     
    });
</script>
</div>

<div id="test2"></div>

the console.log(2) will fire twice.

share|improve this answer
    
are you guessing???...like to see a demo of that because it won't fire twice –  charlietfl Jun 25 '12 at 8:26
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