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Possible Duplicate:
What’s the meaning to chain call and apply together?

I found some codes like this:

function fun() {
    return Function.prototype.call.apply(Array.prototype.slice, arguments);
}

I know the call and apply in js,however I am confused when they come together.

Then I wonder if

Function.prototype.call.apply(Array.prototype.slice, arguments)

is the same as :

Array.prototype.slice.apply(arguments);

If not,what does the first line do?

marked as duplicate by Bergi, jusio, Ravi Gadag, Sachin Shanbhag, Isaac Dec 7 '12 at 6:11

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

10

Alright, let's tackle this problem via substitution. We start with:

Function.prototype.call.apply(Array.prototype.slice, arguments);

What we know:

  1. Function.prototype.call is a function.
  2. The this pointer of call points to Function.prototype.
  3. We use apply to change the this pointer of call to Array.prototype.slice.
  4. arguments is applied (not passed as a parameter) to call.

Thus the above statement is equivalent to:

Array.prototype.slice.call(arguments[0], arguments[1], ...);

From this we see:

  1. Array.prototype.slice is a function.
  2. The this pointer of slice points to Array.prototype.
  3. We use call to change the this pointer of slice to arguments[0].
  4. arguments[1], ... are passed as parameters to slice.

This is the same as:

arguments[0].slice(arguments[1], ...);

The advantage of this is that we're creating a fast unbound wrapper for slice in a single line.

Edit: A better way to create fast unbound wrappers is as follows (note that it may not work in some older browsers, but you don't really need to worry about that now - you may always use a shim for browsers which don't support bind):

var slice = Function.prototype.call.bind(Array.prototype.slice);

This is the same as:

function slice() {
    return Function.prototype.call.apply(Array.prototype.slice, arguments);
}

How it works:

  1. Function.prototype.call is a function.
  2. The this pointer of call points to Function.prototype.
  3. We use bind to change the this pointer of call to Array.prototype.slice.
  4. bind returns a function whose arguments are applied to call.

Bonus: If your style of programming is highly functional, like mine is, then you would find that is piece of code is very useful:

var funct = Function.prototype;
var obj = Object.prototype;
var arr = Array.prototype;

var bind = funct.bind;

var unbind = bind.bind(bind);
var call = unbind(funct.call);
var apply = unbind(funct.apply);

var classOf = call(obj.toString);
var ownPropertyOf = call(obj.hasOwnProperty);
var concatenate = call(arr.concat);
var arrayFrom = call(arr.slice);
  1. Using this you may easily create unbound wrappers using either call or apply.
  2. You may use classOf to get the internal [[Class]] of a value.
  3. You may use ownPropertyOf inside for in loops.
  4. You may use concatenate to join arrays.
  5. You may use arrayFrom to create arrays.
  • 1
    Function.prototype.bind.call(Function.prototype.bind, Function.prototype.bind) :-) – Bergi Oct 26 '12 at 14:04
  • @Bergi - That's the same as Function.prototype.bind.bind(Function.prototype.bind). =) – Aadit M Shah May 30 '13 at 4:03
  • is it true? Function.prototype.bind.bind(Function.prototype.bind) === Function.prototype.bind.bind From your algorithm... @AaditMShah – Stav Alfi Aug 27 '18 at 6:39
1

With the following line, .apply is invoking the .call method with the calling context of .call being the .slice method, and the arguments collection passed as individual arguments.

Function.prototype.call.apply(Array.prototype.slice, arguments);

This effectively gives us this:

Array.prototype.slice.call(arguments[0], arguments[1], arguments[2] /*, etc */);

This means that .slice() will be invoked with the first item in the arguments object as the calling context, and the rest of the arguments as the normal arguments.

So if the content of arguments is something like this:

myarray, 0, 5

You're effectively ending up with this:

myarray.slice(0, 5)

It's basically a way of not having to do this:

var arr = arguments[0];
var rest = Array.prototype.slice(arguments, 1);

var result = arr.slice.apply(arr, rest);

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