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I just experienced a behavior in JS which I couldn't understand: I wanted to create a method which calls String.prototype.replace with some args given, therefore I came up with that:

String.prototype.replace.bind("foo", /bar/g, function(){}).call

I guessed that I would get a function where I would just have to throw a string into to get my replace. Instead, I always get the initial this-value (in this case foo) returned.

Now my questions are:

  • Why is JS behaving like that? What does bind really return and how can I get the this-parameter of .call()?
  • Is there another way of doing what I want to do without creating a wrapper function?
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So you want to bind the arguments, but not the this? –  pimvdb Aug 27 '11 at 10:09
    
Yes, or let's say: I want to replace the this later on. –  fb55 Aug 27 '11 at 10:10

3 Answers 3

up vote 2 down vote accepted

Why it's happening

You pass some this value from call to the function returned by bind. bind, however, ignores that value and calls the original function with the bound this (e.g. foo). In fact, bind is meant to bind the this value. The arguments you can bind is rather something additional.

Solving it

Without a wrapper function I don't think you can do what you want. However, with a wrapper function you could do what you're after:

Function.prototype.bindArgs = function() {
    var args = arguments,
        func = this;

    return function(context) {
        return func.apply(context, args);
    }
};

E.g.

var func = function(a, b, c) {
    console.log(this, a, b, c);
};

var bound = func.bindArgs(1, 2, 3);
bound([1]); // [1] 1 2 3
bound({a: 1}); // {a: 1} 1 2 3
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Well, the first part is pretty much it. The second part is senseless for me, it would just add unnecessary overhead to my code. –  fb55 Aug 27 '11 at 10:21

Function.bind returns a new function that, when called, will always call the original function with the bound context.

One could implement Function.bind like this:

Function.prototype.bind = function(context) {
    var origFunction = this;
    return function() {
        return origFunction.apply(context, arguments);
    };
};

You can try this here: http://jsfiddle.net/HeRU6/

So when you do somefunction.bind("foo"), it returns a new function. Calling this new function will always call somefunction with "foo" as context.

You can write a function that would bind only the arguments, and not the context:

Function.prototype.curry = function() {
    var origFunction = this, args = Array.prototype.slice.call(arguments);
    return function() {
        console.log(args, arguments);
        return origFunction.apply(this, Array.prototype.concat.apply(args, arguments));
    };
};

a = function() { console.log(this, arguments); };

b = a.curry(1, 2);
b(); // Window [1, 2]
b(3); // Window [1, 2, 3]
b.call("foo", 4); // "foo" [1, 2, 4]
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1  
To pass arguments, you'd rather have to use .apply. –  pimvdb Aug 27 '11 at 10:10
    
You're right, fixed, thanks :) –  arnaud576875 Aug 27 '11 at 10:11
    
What you wrote would support what I wanted to do: You set the this inside of the wrapper function, therefore I may replace it later on. –  fb55 Aug 27 '11 at 10:13
    
oops, it was origFunction.apply(context, arguments); :) –  arnaud576875 Aug 27 '11 at 10:14
    
Also perhaps return the new function's return value, now you can't use origFunctions return value. –  pimvdb Aug 27 '11 at 10:15

Why is JS behaving like that?

Because that's the way it's defined in the standard.

What does bind really return and how can I get the this-parameter of .call()?

g = f.bind(foo, bar, ...) is exactly the same as function g() { return f.call(foo, bar, ...); } Since there is no this in g, you cannot get it back from the call.

Is there another way of doing what I want to do without creating a wrapper function?

Probably not.

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