Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to understand this a bit more clearly. When I extend modify the each function inside the Array prototype, How does calling func(this[i]) call the function passed into Array.each.

Since the function definition is function(func) and func is the parameter.

Does func = function(i) { alert(i) } and thus func(this[i]) = { function(this[i]) { alert(this[i]) } ?

Array.prototype.each = function(func) {
  for (var i=0; i<this.length; i++) {
    func(this[i]);
  }
};

[1,2,3].each(function(i) {
  alert(i);
});
share|improve this question

4 Answers 4

up vote 1 down vote accepted

Please note that each function in JS is just an object. So func parameter passed to the each function is an object which is a function.

So calling func(aParam) you get the func parameter (which actually is a function) and call it passing the corresponding argument.

share|improve this answer

Yes, function(func) is basically an anonymous function with parameter 'func'

share|improve this answer

In your example: func = function(i) { alert(i); }

share|improve this answer

Inside objects, this will assume the context of the instanced prototype (in JS every type is fundamentally an object instance of some prototype, so every type has its own prototype from which to create a new object). So, in this case, this will refer to the object created from Array prototype (that is, [1,2,3]).

Passing an anonymous function to the method each, allows that method to pass the element at i position to the function (the callback) you passed to it.

I explain:

iter #1: this => [1,2,3] ; i => 0 ; func => (function(i){ alert(i); })(this[i]) => 1
iter #2: this => [1,2,3] ; i => 1 ; func => (function(i){ alert(i); })(this[i]) => 2
iter #3: this => [1,2,3] ; i => 2 ; func => (function(i){ alert(i); })(this[i]) => 3

You can read this[i] as [1,2,3][i].

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.