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If I have multiple $(document).ready(...) functions, do they overwrite each other? For the sake of argument, pretend proper coding is thrown out the door on this one.

Say I have a $(document).ready(function() {...}); in my site's script file. Then I use a third party plugin that also uses $(document).ready(function() {...});. Will this overwrite my already created function or does jQuery "queue" these functions to all run when the document is ready?

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marked as duplicate by acme, Sergio, madth3, falsetru, chrylis Sep 4 '13 at 4:03

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No, just keep this in mind if you're using it a lot: encosia.com/dont-let-jquerys-document-ready-slow-you-down –  Paulpro Jul 21 '11 at 0:37
    
@PaulPRO - Great link. I never thought about that. –  Spidy Jul 21 '11 at 0:43
    
@Spidy: did you even look a the suggested questions when creating this question? There is a ton of these questions already. It's a direct duplicate of about 5 other questions. –  Alastair Pitts Jul 21 '11 at 1:03
    
@Alastair - I did a search and looked at the suggested questions. I always do. Not my fault stackoverflow didn't show them. –  Spidy Jul 21 '11 at 1:18

2 Answers 2

up vote 13 down vote accepted

No, they do not override each other. Each function is executed.

You could of course check this easily yourself: http://jsfiddle.net/6jgGt/

Or understand from the jQuery code itself:

Line 255 is the ready function where the jQuery.bindReady(); is called which among other things initialises the readyList object on line 429 with readyList = jQuery._Deferred();

And once it's a deferred object the function passed in is appended with readyList.done( fn ); and we can see in the done method on line 41 that the element is added to an array with callbacks.push( elem ); so each one is saved separately...

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No, they don't overwrite each other. They are queued, like you said.

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