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I'm reading this this example and I'm stuck at understanding one line. I need to understand everything so I can't move on.

This function is supposed to hide all the elements inside an object. It's supposed to work. But to me, that for loop looks like an infinite one. Why is it not?

getChild: function (i) {
    return this.children[i];
},

hide: function () {
    for (var node, i = 0; node = this.getChild(i); i++) {
        node.hide();
    }

    this.element.hide(0);
},

From what I see, the function takes the first element of the object with getChild(0) and then calls hide again on that 0-dimension object. Then it resets the counter (i) and gets the first element of the 0-dimension object (which is the same 0-dim object) and calls the function again.

I know I'm mistaken but that's what I see. Please show me the light! Thanks

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1  
Javascript conditionals work on "falsy" and "truthy" values. If getChild(i) ever returns a null or undefined then the condition is considered false and the for loop halts. –  TheZ Nov 14 '12 at 21:52
    
What is this.element? Or do you ask for the for-loop? –  Bergi Nov 14 '12 at 21:53

4 Answers 4

In a for loop like the one above, the first bit (var node, i = 0) is only executed once, at the beginning of the loop. The loop stops executing when the middle section (node = this.getChild(i);) returns false. getChild will return false when there isn't anything at index i. (Technically, it'll return undefined, but that equates to false in this instance).

Secondly, even though hide() is called in the for loop, i is not reset. Why? This recursive call creates a new instance of hide() separate from the original. All of the variables in this new hide() are separate from the original. (and so on, down the rabbit hole).

See http://www.tizag.com/javascriptT/javascriptfor.php for more information on for loops.

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yes, but after it calls node.hide() again from inside the for loop, doesn't it reset both node and i again? –  jsebcortes Nov 14 '12 at 21:54
1  
This is the only reply that actually addresses what the OP asked (about i=0). –  meetamit Nov 14 '12 at 21:54
    
@jsebcortes Nope, that recursive call executes a different instance of that loop. –  SomeKittens Ux2666 Nov 14 '12 at 21:56
    
@jsebcortes No: everything between var and the first ; is part of the init condition, and executes only once. Note that node and i are separated by a comma - not a semicolon. People often use it to do stuff like for(var i=0, len=array.length; i<len; i++) to avoid repeatedly checking array.length. –  meetamit Nov 14 '12 at 21:57
    
Yeah, I know it will start another instance of the loop, calling to hide an object of only one element of size (dimension 0). Then it will call the function again, and getChild of that element. Which is going to return that same element. Then its going to call the node.hide() function once again. It will start infinite instances of for loops, all dealing with objects of 0-dimension. I can't see when does it get out of any of the loops it starts, as there's always going to be a getChild valid return for i=0 in every instance. –  jsebcortes Nov 14 '12 at 22:06

The variable i is not reset on each iteration. The only actions that are recurisvely executed are the boolean expression and i++. node.hide() is not the same as this.hide(). The latter is a different function being called. If it were the same function, then yes, there would be an infinite loop.

The "outer" hide function is being used to "hide" all the elements in this.getChild(i). node.hide() will call the hide() method on those elements so they are hidden. There is no infinite loop because node.hide(), although it has the same name as the function it's being used in, is not the same function.

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falsy not fasly –  TheZ Nov 14 '12 at 21:55
    
i will not be reset on each iteration, but on every instance the function is called again every node.hide() it will start a new instance of the for loop with "new" i and var variables, no? –  jsebcortes Nov 14 '12 at 22:22
    
@jsebcortes No, the for loop is not affected by node.hide() or anything inside the loop body. It's that when the function body is run, the loop will start again with the same variables. It's just that every time it iterates, the variable i is incremented. It's the same variable, with a different value. That's all. But inside the function call of hide, there are different variables created. –  0x499602D2 Nov 14 '12 at 22:24
    
I don't seem to be getting it so I'm going to keep on asking. Thanks for your patience. Yeah, I –  jsebcortes Nov 14 '12 at 22:30
    
@jsebcortes node.hide() is not the function through which it's being called! The function is not being called again. If it was, it'd be called through this.hide(). node.hide() is not the same as this.hide(). node.hide() is a completely different function. –  0x499602D2 Nov 14 '12 at 22:31
  1. The code

    node.hide();

    is still a member of the tree and still traversable. It is just hidden from being displayed.

  2. The initialization part of the for loop

    var node, i=0

    is executed only once, before the looping begins.

  3. The conditional

    node = this.getChild(i)

    evaluates to true (non-null) when there is a child node, and false (null) when it has run out of descendants, thereby breaking out of the loop.

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I understand. But then, before getting out of the first iteration of the for loop, the function calls again a node.hide and starts an "inside" instance of the loop, right? Then it evaluates again getChild(i) for i=0 on this second instance. It will always have a valid return... –  jsebcortes Nov 14 '12 at 22:16
    
With node.hide(), the node is not deleted. It is still there for code to traverse. It is just hidden from display; the display properties of the node are set to "none." –  maverick Nov 14 '12 at 22:25

If there is no child at i, getChild will return undefined and break out of the loop.

Consider the following text from the article:

Now create the GalleryImage class. Notice that it uses all of the exact same methods as the GalleryComposite. In other words, they implement the same interface, except that the image is a leaf so it doesn't actually do anything for the methods regarding children, as it cannot have any. Using the same interface is required for the composite to work because a composite element doesn't know whether it's adding another composite element or a leaf, so if it tries to call these methods on its children, it needs to work without any errors.

And consider the constructor for GalleryImage:

var GalleryImage = function (src, id) {
  this.children = [];

  this.element = $('<img />')
  .attr('id', id)
  .attr('src', src);
}

And how the images and composites are constructed:

var container = new GalleryComposite('', 'allgalleries');
var gallery1 = new GalleryComposite('Gallery 1', 'gallery1');
var gallery2 = new GalleryComposite('Gallery 2', 'gallery2');
var image1 = new GalleryImage('image1.jpg', 'img1');
var image2 = new GalleryImage('image2.jpg', 'img2');
var image3 = new GalleryImage('image3.jpg', 'img3');
var image4 = new GalleryImage('image4.jpg', 'img4');

gallery1.add(image1);
gallery1.add(image2);

gallery2.add(image3);
gallery2.add(image4);

container.add(gallery1);
container.add(gallery2);

Since an image cannot contain children, its this.children will remain an empty array. So, when the hide function finally gets called on an image (at one of the leaves of the composite tree), the loop will attempt to evaluate this.children[0] which will return undefined. This will cause the code node = this.getChild(i) to evaluate to a "false" value, and that particular for loop will terminate. Thus preventing an endless loop.

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there's always something at getChild(0) for every i=0 in every instance of recurring loop. –  jsebcortes Nov 14 '12 at 22:14
    
@jsebcortes - Not at the leaf nodes. Please see my updated answer. –  Justin Ethier Nov 14 '12 at 22:44

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