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Editorial Team
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Asked: 2026-05-25T16:33:00+00:00

I was browsing through the JavaScript Garden when I stumbled upon the Function.call.apply hack

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I was browsing through the JavaScript Garden when I stumbled upon the Function.call.apply hack which is used to create “fast, unbound wrappers”. It says:

Another trick is to use both call and apply together to create fast, unbound wrappers.

function Foo() {}

Foo.prototype.method = function(a, b, c) {
    console.log(this, a, b, c);
};

// Create an unbound version of "method" 
// It takes the parameters: this, arg1, arg2...argN
Foo.method = function() {

    // Result: Foo.prototype.method.call(this, arg1, arg2... argN)
    Function.call.apply(Foo.prototype.method, arguments);
};

What I don’t understand is why bother using Function.call.apply when Function.apply would suffice. After all, both of them are semantically equivalent.

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1 Answer

  1. Editorial Team

    No, Function.call.apply and Function.apply are not the same in this case.

    Let’s say the original caller invokes

    Foo.method(t, x, y, z)

    With call and apply together, as in the JavaScript Garden code. This executes

    Function.call.apply(Foo.prototype.method, arguments);

    which is (loosely, writing arguments in array-notation):

    Function.call.apply(Foo.prototype.method, [t, x, y, z]);

    which invokes Function.call with this==Foo.prototype.method:

    Foo.prototype.method.call(t, x, y, z)

    which calls Foo.prototype.method with this set to t and arguments x, y, and z. Sweet. Just like in the comments. We have successfully made a wrapper.

    Now suppose you left said just Function.apply instead of Function.call.apply, which you claim is semantically equivalent. You would have

    Function.apply(Foo.prototype.method, arguments);

    which is (loosely)

    Function.apply(Foo.prototype.method, [t, x, y, z]);

    which calls the function Function (ugh!) with this set to Foo.prototype.method and arguments t, x, y, and z.

    Not the same at all.

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