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By oddities, I mean these two things:

  1. Functions in the first parameter need to be surrounded by quotations, or else the delay is set to 0 (Everything is executed instantly).
  2. Everything after the timeout needs to have a delay after it as well, or else it is executed prior to the timeout finishing.

If there's a way around #2 - that would be awesome, but right now I'm just curious on this.

Short snippet to explain what I'm talking about:

for (var i=0; i<10; i++) setTimeout("addInput('.')",i*500);
setTimeout('addInput("</br>")',5100);

In the above, unless addInput('.') is surrounded by quotations, the delay is ignored and the code is just executed; also unless I add a timeout to the second line, it will be executed before the first timeout is finished.

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Well, addInput('.') in quotes is a string declaration and without a function call. –  Gumbo Feb 11 '12 at 20:16
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3 Answers

up vote 5 down vote accepted

Functions in the first parameter need to be surrounded by quotations, or else the delay is set to 0 (Everything is executed instantly).

Not necessarily. In fact it is recommended to use the overload which takes directly a function pointer instead of a string to avoid the overhead of parsing it:

for (var i=0; i<10; i++) {
    setTimeout(function() {
        addInput('.');
    }, i * 500);
}

or its equivalent (warning: doesn't work in IE):

for (var i=0; i<10; i++) {
    setTimeout(addInput, i * 500, '.');
}

The following setTimeout overload is the one that is most commonly used:

var timeoutID = window.setTimeout(func, delay, [param1, param2, ...]);
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1  
Note that passing extra arguments to setTimeout (to be passed to the callback upon invocation) does not work in IE. –  josh3736 Feb 11 '12 at 20:24
    
@josh3736, thanks for pointing this out. I have updated my answer to include this valuable information. –  Darin Dimitrov Feb 11 '12 at 20:27
    
Very interesting, thank-you! Do you happen to have an answer for the second part of my question as well? - Or will using the function properly as suggested solve that? –  TJ Biddle Feb 11 '12 at 21:07
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  1. That's because you are calling the function first, then sending the return value to the setTimeout method. You can use just the function name, or if you need to send in parameters, make an anonymous function:

    setTimeout(function() { addInput('.') }, i*500);

  2. The setTimeout method doesn't delay the code, it puts the code in the callback of a timer. The code following the setTimeout call follows immediately.

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setTimeout takes a function reference. That means you need to pass it the name of a function or an anonymous function, not the result of executing a function.

So this works:

setTimeout(fn, 1000);

But, this does not:

setTimeout(fn(), 1000);

The second example executes fn() immediately and passes the return value from that function to setTimeout() which is usually not what you want (you get no delay).

If you need to pass a parameter to your function, then you need to wrap it in a container function like this because setTimeout will call your function with no parameters:

setTimeout(function() {addInput('.')}, i*500);
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