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What does the exclamation mark do before the function?

I was looking through the Twitter Bootstrap JavaScript code and I noticed all their plugins are wrapped in negating self invoking functions.

I am aware that function ($) { ... }(window.jQuery); invokes the function immediately.

But what is the ! for?

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marked as duplicate by Andrew Whitaker, I Hate Lazy, Niet the Dark Absol, Hailwood, Dennis Nov 28 '12 at 4:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
See : stackoverflow.com/questions/5827290/… –  c-smile Nov 28 '12 at 3:52
    
function ($) { ... }(window.jQuery); ...does not invoke the function immediately. It introduces a SyntaxError, which is why you need the ! (or any operator that will cause the function to be interpreted as part of an expression). –  I Hate Lazy Nov 28 '12 at 3:55
    
Yes, I forgot to take into account how I normally wrap it in (), which I now know is the same as ! –  Hailwood Nov 28 '12 at 5:05
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1 Answer

up vote 2 down vote accepted

1) if you just do:

function () { /* ... */ }();

You will get an error.
JS will not allow you to fire off a function declaration (because of a concept of "variable hoisting", which isn't technically correct, but is much easier for a lot of people to think about).
If you use declarative functions:

function myFunc () { /* ... */ }

The JS engine will create them in the scope you're in, before creating the variables of the scope -- even if the vars are all on the top and the functions are all on the bottom.

So when you write:

function myFunc () { /* ... */ }();

There's an error there, because the vars which don't even exist yet, in the current scope might be called inside, which is a guaranteed crash.

To further that, if you don't give your function-declaration a name:

function () { /* ... */ }

...then there's an error there, regardless, because you can't call the function yet, but you have no way of getting at it, because it doesn't have a name, and you didn't assign it to a variable.

Operators like () or + or ! -- anything which will force the engine to evaluate whatever comes next, will allow you to fire the function like:

+function () { /* ... */ }();

As long as there is no variable listening for a return statement, you're fine.

2) Additionally, in the case of !function () { /*...*/ }();, if that function doesn't have a return statement naturally, then it will return undefined.
The opposite of undefined is true when coerced in that way...

...so if you really, REALLY wanted, you could do something like:

var success = !function () { /* ... */ }();
if (success) { doStuff(); }
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