15

I perfectly know the usages for :

Function.prototype.bind.apply(f,arguments)

Explanation - Use the original (if exists) bind method over f with arguments (which its first item will be used as context to this)

This code can be used ( for example) for creating new functions via constructor function with arguments

Example :

function newCall(Cls) {
    return new (Function.prototype.bind.apply(Cls, arguments));
 }

Execution:

var s = newCall(Something, a, b, c);

But I came across this one : Function.prototype.apply.bind(f,arguments) //word swap

Question :

As it is hard to understand its meaning - in what usages/scenario would I use this code ?

31
0

This is used to fix the first parameter of .apply.

For example, when you get the max value from an array, you do:

var max_value = Math.max.apply(null, [1,2,3]);

But you want to get the first parameter fixed to null, so you could create an new function by:

var max = Function.prototype.apply.bind(Math.max, null);

then you could just do:

var max_value = max([1,2,3]);
| improve this answer | |
  • 4
    very nice example – Royi Namir Mar 11 '14 at 10:02
  • 3
    Why it's important to pass null for bind as argument? – sAs59 Mar 13 '18 at 20:23
  • @sAs59 It's to give permanent null parameter on first parameter of generated Math.max.apply for max variable. When following gets called for example: max([1,2,3]). That calls Math.max.apply(null, [1,2,3]). Whereas with Function.prototype.apply.bind(Math.max), The generated code for max([1,2,3]) is just simply Math.max.apply([1,2,3]), which would give incorrect result. The first parameter of Math.max.apply will be assigned to this reference, the second parameter (an array) would get passed to the actual parameters of the function. Without null, the [1,2,3] goes to this. – Michael Buen May 27 at 15:48
  • @sAs59 Then the actual parameters for Math.max would receive nothing. – Michael Buen May 27 at 15:50

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