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I have a self invoking function like this:

var f = (function f(){ return "123"; }, 
         function g(){ return 2; },
         function h(){ return "test"; })();

typeof f;

typeof f is always the type of what is returned in the last function definition. Like if h is last, then it is "string", but if I remove h and have g as last, then "number".

Could someone explain why?

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1  
I'm not sure what you mean by 'self-invoking function' - you have a series of functions, the last one of which (h) is invoked. –  codebox Aug 6 '12 at 11:49

3 Answers 3

up vote 2 down vote accepted

Let's break this down.

The comma operator in Javascript evaluates several expressions, and returns the last one:

>>> "a", 1
1
>>> 1, "a"
"a"

So when you take three anonymous functions and string them together with commas, it evaluates to the last one:

>>> (function f(){ return "123"; }, function g(){ return 2; }, function h(){ return "test"; })
function h(){ return "test"; }

Evaluating that result executes the function, returning "test".

Whichever function is last in the comma-separated list will be executed, and decide the overall return value.

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Comma is also used in variable declaration list where it has different semantics I.E var a, b, c; –  Esailija Aug 6 '12 at 11:57
    
Yes. This is the comma operator: developer.mozilla.org/en-US/docs/JavaScript/Reference/Operators/… –  kevingessner Aug 6 '12 at 12:45
    
Thanks a lot for the answer. –  sabu Aug 6 '12 at 15:37

Because the functions are separated by the , comma operator.

This evaluates the separated expressions, and returns the result of the last expression.

var x = ("a", "b", "c");

console.log(x); // "c"

So in your case, the last function is returned, as the result of the enclosing () group, and that's the one invoked by the trailing () function call.

   // result from group---v   v---invoked
var f = (func1, func2, func3)()
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The comma operator returns the last item. What you are doing is like:

var f = function(){}, function(){}, "string";

Which will make f a string, because only the last function is being called.

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