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If I return a function from a function as shown below, how do I execute it and set the parameter?

var func1 = function(param){
    // do stuff
};

function returnFunction(){
    return func1;
}

returnFunction() // this will return func1 but I want to execute it with certain param.
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3 Answers 3

You can just execute it like normal:

returnFunction()("whatever");

Here's a working example.

To make it a little easier to read:

var fn = returnFunction();
fn("whatever");
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O.K. Thanks. First answer. This is closed now. –  user656925 Oct 12 '12 at 13:26
    
Should have tried the easiest first..it just looks so weird to to that. –  user656925 Oct 12 '12 at 13:27
1  
@HiroProtagonist: You cannot close questions. On SO, you accept them. –  phresnel Oct 12 '12 at 13:27
    
@HiroProtagonist - Yeah it does look a little weird. If you assign the result of returnFunction to a variable, you can then invoke that and it won't look as strange! –  James Allardice Oct 12 '12 at 13:28

Like any other function call:

returnFunction()(foobar)
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You seem to regard functions as some magical construct.

Calling functions isn't magic

However, a function is simply a value that can be operated on with the () operator.

Does !(x || y) look weird to you? ! is very similar to () in a way, except that you write it before its operand whereas you write () after the operand. They take a value, operate it, and return a value, that's all there is to it.

Having understood that, x()()() won't look weird, it's simply unusual: x is obviously a function, that returns a function, which returns a function, that returns something: the value (x()()())

Applying this new understanding to your example

As you are already aware, returnFunction() will return func1. Thus, the entire expression returnFunction() yields the value func1, and since you can apply the () operator to values, that's all you need to do:

returnFunction()(arg)
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If something's terribly wrong here, why not point it out? –  phant0m Oct 12 '12 at 20:46

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