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 thought I'd got my head around context and scope in javascript. I don't understand why in one situation proxy/bind works, and in another it doesnt. Please could someone explain?

Example 1: Proxy (or bind) works:

function Cat(name){
    this.name = name;

    $("#cat").click(
        $.proxy(
            function(e){ this.meow(e); }
        , this)
    );

    this.meow = function(){ alert(this.name + "says meow"); }
}
var cat = new Cat();

Example 2: Proxy and bind don't work:

function Dog(breed){
    this.breed = breed;

    this.save = function(){
        var that = this;
        $.ajax({
            url: '/ajax/savedog.php', dataType: 'json',

            // This works?? Shouldn't scope be of .ajax()?
            data: this.breed, 

            // success: $.proxy(... // won't work? why?
            success: that.dogSaved, error: ajaxFail
        });
    };

    this.dogSaved = function(){ alert("Dog Saved"); }
}
var dog = new Dog();

Thanks

share|improve this question
1  
You forgot to wrap your code in function(){} for your second click handler. –  Musa Oct 7 '12 at 15:01
    
Thanks, changed –  Jodes Oct 7 '12 at 15:04
    
The update to your question leaves your situation unclear. You say that using $.proxy in some unspecified way doesn't work, but you don't say how exactly you use it and you don't say how exactly it doesn't work. –  Pointy Oct 7 '12 at 15:14
    
I did answer your question properly in its original incarnation. The change you made is significant, as it removed an obvious problem. Without that, all that's left is your vague statement about something not working - something you describe with "...". –  Pointy Oct 7 '12 at 15:40
    
Answer updated with a guess at what the issue might be. –  Pointy Oct 7 '12 at 15:48

1 Answer 1

up vote 1 down vote accepted

You're copying this to that inside the "click" handler. Do it outside.

The value of this is set anew for and upon each function call. Thus, inside your "click" handler, this is not a dog, it's a DOM element.

It's also important to be mindful of the order of evaluation in JavaScript. Parameters to functions are fully evaluated in the context of the calling environment. In your first example, the value of this passed in to $.proxy() is the correct one because it's a parameter in the context of the Cat constructor, and thus it is correctly a cat. In your call to $.ajax in the Dog constructor, however, the reference to this.breed will not have the correct value, as it is evaluated in the context of the "click" handler and not the constructor. The value of the "data" property should be that.breed once you've fixed the initialization of that as described above.

(Also note that as @Musa points out, the Dog constructor is syntactically incorrect; I assume that was just a transcription error.)

edit — I'm not sure what you're trying with $.proxy() in your updated question, but that "success" property should work if you set it up like this:

   success: $.proxy(that.dogSaved, that),

The first argument to $.proxy() is the function to be called, and the second is the value you want for this when the function is called. In this case, you want it to be the saved reference to the dog object. Note, however, that it will only work if the "save" function is called with this set to a dog. That is, if somewhere you do this:

   var fido = new Dog();
   fido.save();

then things should work. However, if you somehow use that "save" function in some way such that this is not a reference to a dog, then it won't work. Again, if in the "Dog" constructor you were to move that declaration of "that" out to the constructor scope instead of in "save", then it won't matter how "save" is called because "that" will always be a reference to the dog object.

share|improve this answer
    
Sorry, I'm still completely lost! I didn't mean to use a click handler in the dog example. Thanks –  Jodes Oct 7 '12 at 15:10
    
@Jodes well you did use a "click" handler. It's pretty important on Stackoverflow to make sure that the sample code you post accurately reflects the problem you're having, because it's your code that we'll focus on to provide assistance. –  Pointy Oct 7 '12 at 15:13

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.