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Why does passing passing an argument to an anonymous function effect the results? For instance, the below script shows a1 as a function(), and a2 as an array.

var a1=(function(){return [1*2,2*2,3*2];});
var a2=(function(v){return [1*v,2*v,3*v];})(2);
console.log(a1,a2);

results:

function() [2, 4, 6]
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2 Answers 2

up vote 1 down vote accepted

Your first line of code never calls the function.

Writing var a = function() { ... } will assign the function itself to a.

Your second line does call the function, just like any other function call, using (2).

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Really? Why not? Why does the second line actually call the function? –  user1032531 Oct 7 '13 at 17:42
    
@user1032531: Why do you think it does call the function? –  SLaks Oct 7 '13 at 17:42
    
Wow, I think I always misunderstood. The first line defines the function, the second calls it. Therefore (untested), a1(2) should return something. –  user1032531 Oct 7 '13 at 17:49
    
@user1032531: Yes; a1(2) does return something. However, that does not affect a1. –  SLaks Oct 7 '13 at 17:50
1  
@user1032531: Yes; that's called a closure. It's one of the beauties of Javascript. –  SLaks Oct 7 '13 at 18:01

because all the assignment to a1 does is create an anonymous function but doesn't actually execute it.

the assignment to a2 creates and executes the function at the same time because you've added the parens afterwards to actually invoke it.

to create equivalent code, you'd need something like this:

var a1=(function(){return [1*2,2*2,3*2];})(); <-- note the extra parens
var a2=(function(v){return [1*v,2*v,3*v];})(2);
console.log(a1,a2);
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Thanks Mike. This was a concept that I was unaware of. –  user1032531 Oct 7 '13 at 18:21

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