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In a curry function like this :

var curry = function() {
    var slice = Array.prototype.slice,
        args = slice.call(arguments),
        fn = args.shift();

    return function(){
        return fn.apply(null, args.concat(slice.call(arguments)));
    };
};

is there any difference between this or null in fn.apply ? I don't see a case where it could make a difference.


EDIT :

Thanks to this answer I think it's pretty clear now, here is a little example I made to undersand it :

function msg() {
    console.log(this.name);
}

var foo = { name: "foo"};

var msg_this = curry_this(msg);
var msg_null = curry_null(msg);

msg_this();         //msg.call(null) -> undefined
msg_null();         //msg.call(null) -> undefined
msg_this.call(foo); //msg.call(foo) -> foo
msg_null.call(foo); //msg.call(null) -> undefined

with curry_this returning fn.apply(this,... and curry_null returning fn.apply(null...

share|improve this question
    
Yes, it determines what will this inside of the function stand for. You could put there any arbitrary object too. –  Miszy Jan 17 '13 at 11:50
    
Learn more about this: developer.mozilla.org/en-US/docs/JavaScript/Reference/Operators/…. –  Felix Kling Jan 17 '13 at 12:05
    
I understand the concept of this but I didn't see how it could matters in this function –  rombdn Jan 17 '13 at 12:29
    

1 Answer 1

up vote 1 down vote accepted

Passing null to apply makes the context the global one (window in a browser).

From the MDN :

if the method is a function in non-strict mode code, null and undefined will be replaced with the global object, and primitive values will be boxed.

How this will impact the result depends on the fn function (the first argument to curry) and on how you call it.

See this code :

var a = {curried: curry(function(){console.log(this)})};
a.curried();

If you pass null to apply, it logs window instead of the object a.

share|improve this answer
    
Thanks your example is very clear –  rombdn Jan 17 '13 at 12:26

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