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I have a div like this

<div id="sale">
    ........
</div>

and I tried to use both

$('#sale').delay(3000).slideDown(500);

and

setTimeout(sale(), 3000);

function sale() {
    $('#sale').slideDown(500);
}

but neither of them are working. The jQuery delay says $('#sale').delay() is not a function while the setTimeout way says useless setTimeout call (missing quotes). If i add double quotes around the sale() call, it just says "Sale is not defined".

Why won't either of these work?

All i'm trying to do is make a div appear 3 seconds after the page is loaded.

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setTimeout(sale, 3000);, not setTimeout(sale(), 3000); –  Reigel Nov 24 '10 at 1:37
2  
The .delay() method was added in jQuery 1.4. What version are you using? –  user113716 Nov 24 '10 at 1:46

5 Answers 5

up vote 13 down vote accepted

In case of setTimeout you're simply doing it wrong.

setTimeout(sale(), 3000); // will call sale and use the RETURN value in the callback but sale returns undefined

You need to pass in a function:

function sale() {
    $('#sale').slideDown(500);
}

setTimeout(sale, 3000); // just pass in the reference to sale()

Other possibility:

// no difference in this case
// Note: if it were obj.sale() then you would need to do this version
//       otherwise sale() will get called with the this set to window
setTimeout(function(){sale()}, 3000) 

And last but not least:

setTimeout(function() { $('#sale').slideDown(500); }, 3000);
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There's no point in the extra function. –  Matthew Flaschen Nov 24 '10 at 1:36
    
@Matthew I know, fixed it, just habit since I always end up with the need of a that when I use setTimeout ;) –  Ivo Wetzel Nov 24 '10 at 1:37
    
alternatively you could just put the animation inside the anonymous function –  Alex Nov 24 '10 at 1:38

You need to be in a queue for delay() to work.

$('#sale').queue(function() {

   $(this).delay(3000).slideDown(500).dequeue();

});

See it.

Patrick Dw has informed in the comments you don't need to be in a queue() if your next method chain is an animation. See his JSFiddle.

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delay() can't be the first element of an animation chain? –  AndreKR Nov 24 '10 at 1:36
    
@AndreKR - Yes it can. This answer is wrong. jsfiddle.net/patrick_dw/Uts7t –  user113716 Nov 24 '10 at 1:42
    
@patrick dw I could of sworn I recently read you need to be in a queue() for delay() to work... Oh well. Is this a recent jQuery development? –  alex Nov 24 '10 at 1:43
    
this gives the same error i originally had –  Catfish Nov 24 '10 at 1:43
2  
@alex - Well you do, but animations are added to a queue automatically. If you were to call something like .css() after .delay(), it would need to be manually queued. –  user113716 Nov 24 '10 at 1:45
setTimeout(sale, 3000);

Before, you were passing setTimeout the return value from sale. This passes the actual function.

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In your first solution it seems that jQuery is not even loaded.

In the second code you have to do setTimeout(sale, 3000); (omit the parentheses) because with them you are calling setTimeout with the return of sale(), which is undefined.

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Nope, it's undefined –  Šime Vidas Nov 24 '10 at 1:36
    
Argh, I wasn't sure... lost the 50/50 chance. ;) –  AndreKR Nov 24 '10 at 1:37
    
jquery is loaded. i just didn't post that part –  Catfish Nov 24 '10 at 1:44
    
It's ok to omit that part but here it's possibly the problem. Does a simple $('#sale').slideDown(500); without delay work? –  AndreKR Nov 24 '10 at 1:48
setTimeout("sale();", 3000);
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1  
Bad idea - this internally evokes an eval() type function. Just pass sale as the argument. –  alex Nov 24 '10 at 1:42
    
Another possible issue with this is that it isn't uncommon to define functions within the .ready() handler. If that's the case, sale would be inaccessible to the setTimeout which attempts to evaluate the string in the global context. –  user113716 Nov 24 '10 at 1:58

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