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I have a doubt about the .ready() function in JQuery. In particular, consider a situation where someone has bound some handler to the document ready event, and I execute

$(document).ready(function(){ /* my code here */ })

Will this overwrite the previously registered handler, or only add a new one (mine) to the event?

Thank you

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1  
It will add your event. – jwatts1980 Jan 31 '12 at 23:03
3  
This is something that you could have easily figured out by yourself: $( func1 ); $( func2 ); – Šime Vidas Jan 31 '12 at 23:06
up vote 3 down vote accepted

Agreed. You can use that function as many times as you like. Here's the JQuery documentation.

http://docs.jquery.com/Tutorials:Multiple_$(document).ready()

All the functions, $(document).ready(), $(window).load() along with binds like click all get added to the stack. This way you can use the $(document).ready on all your javaascript files.

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The answer is: it is added to the set of event handlers for this event. It is also easy to test:

$(document).ready(function(){alert('test1');});
$(document).ready(function(){alert('test2');});
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It will add your new event handler to the existing handlers if those handlers were also added with jQuery.ready. If they were added directly via DOM, they will be overwritten.

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No, it adds your handler to the set.

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It will push to the stack, so no it won't override.

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As with all event handlers that you bind via jQuery, it will be added to a queue of event handler for the element/event.

jQuery has the event.stopImmediatePropagation() to stop the execution of event handler attached to the same element: http://api.jquery.com/event.stopImmediatePropagation/

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This will add the new function to the handler stack. Furthermore, if it is run after the DOM has been initialized, the function will be executed instantly.

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