2

Guy's i am bit confused about the following code, in bellow code has two function then which will execute first Function1() or Function2 () ?

$(document).ready(function() {
  // some code here for function1()
});
$(document).ready(function() {
  // other code here for function2()
});
12
  • 9
    why do you need two? – Omar Jul 5 '13 at 11:28
  • 1
    The top one will execute first. Why 2 document ready's on one page? – Doink Jul 5 '13 at 11:29
  • I sometimes use 2 $(document).ready if I have an aspx page and ascx user control, so there can be some excuse ;) In a rendered document it will make 2 $(document).ready (or more, if more .ascx files are added and need to handle it) – Kamil T Jul 5 '13 at 11:30
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    First is 1st, Second is 2nd.. That's It...! – suresh.g Jul 5 '13 at 11:32
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    @user2553512 show a proof of random behaviour, most likely it has something to do with the specific code inside the function. If the function contains console.log() only it will always log the first message first. – Maxim Krizhanovsky Jul 5 '13 at 11:35
1

Both will be executed. You are registering events to trigger when document is ready. You can register more than one event for a given object, even if it's triggered by the same action.

Normally, I would expect the code that is declared first to trigger first, but I wouldn't write code that has dependencies in different blocks as it will be failure prone.

I would assume such a scenario in component based frameworks (like Wicket), where each component can have it's ready block, but if they are independant from each other, you wouldn't have to care about which one executes first.

If you have code where the execution order is an issue, I would recommend searching for some other approach to avoid this. As other answers have already stated, you can expect one order, but I wouldn't trust in all browser implementations, and worse than that, in future implementations.

So, as a general rule: keep things simple, if you need more than one event for one object it's fine as long as they're not dependant, else put them in the same block.

3

Function 1 will execute first. jQuery will always execute event handlers in the order they were bound (bearing in mind that delegated handlers will be executed after direct handlers because they only happen as the event bubbles up through the DOM - but that doesn't apply here).

This is documented in a parenthetical in the on method docs:

(Event handlers bound to an element are called in the same order that they were bound.)

7
  • This is true even for addEventListener – Paul S. Jul 5 '13 at 11:29
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    @PaulS.: More accurately, it was explicitly not specified in DOM2, but then the order was specified in DOM3 (also flagged up here). – T.J. Crowder Jul 5 '13 at 11:36
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    It might have been nice to mention the random behaviour in your question. You're not doing something asynchronous in one or both functions are you? E.g., an Ajax call? – nnnnnn Jul 5 '13 at 11:37
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    Thanks @T.J.Crowder - you're doing all the heavy lifting on this answer. I hadn't seen that point in the DOM3 spec, and indeed although I knew I had seen the relevant bit in the DOM2 spec I couldn't find it again with Google. Apologies to PaulS. – nnnnnn Jul 5 '13 at 11:38
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    @nnnnnn: Happy to pitch in. :-) – T.J. Crowder Jul 5 '13 at 11:39
0

First document.ready will execute first.

0

First function 1 will execute first, as jQuery always executes handlers as they were written

Plus

You can have as many of them as you wish, and they will be executed in the order that the $() or $(document).ready() functions are executed. (i.e. each handler is added to the queue)

1
  • @NULL The $(document).ready function adds to what is essentially an event queue - the functions in these declarations will all be executed, either at the document.ready event, or immediately if that event has already fired, in order of declaration. – Dhaval Marthak Jul 5 '13 at 11:32

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