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I have a following (simplified) code:

var myModule = {

    submitDummyForm: function(){ 
        console.log(this); // the right object is logged out
        var that = this; // keep a reference
        $.ajax({
            type:'POST',
            url: 'http://localhost/',
            data: {dummyData: 'something'},
            dataType: 'json',
            success: that.dummyFormSuccess

        });
    },

    dummyFormSuccess: function(data){ 
        console.log(this); // 'this' is logged out as some foreign object, most probably jQuery.ajax object
    }
}

It leads to 'this' being lost in the dummyFormSuccess, no matter if I use this.dummyFormSuccess or that.dummyFormSuccessfor as an argument for my ajaxSubmitForm().

But the following code gets executed as I need:

var myModule = {

    submitDummyForm: function(){ 
        console.log(this); // the right object is logged out
        var that = this; // keep a reference
        $.ajax({
            type:'POST',
            url: 'http://localhost/',
            data: {dummyData: 'something'},
            dataType: 'json',
            success: function(data) {
                 that.dummyFormSuccess(data);
            }
        });
    },

    dummyFormSuccess: function(data){ 
       console.log(this); // now 'this' is logged out correctly as the real myModule object
    }
}

I'm still not very comfortable with advanced topics of Javascript but I already know, that 'this' may get redefined, depending on where it is used. I thought if I use 'that' to store the reference to 'this', it should also keep my 'this' inside the called function. It seems weird, that I can call that.dummyFormSuccess(data) in a wrap-around function and it gets correct 'this' inside, but if I just assign it to $.ajax success, my 'this' gets lost.

Can anybody explain, where is 'this' getting lost in my case and why it works OK in the second example? Is it a problem with jQuery (maybe jQuery.ajax() overwrites my 'this' somehow in my case) or just a feature of the language?

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4 Answers 4

up vote 1 down vote accepted

Everything is correct. Your this is lost in a first example because you are assigning function that.dummyFormSuccess to jQuery ajax object's success. So, this way, deep inside jQuery, it's called something like ajax.success. So, this is overwritten with ajax object.

With second approach you create an anonymous function and assgn it to success. So inside your anonymous function, this points to ajax object, but that variable is accessible and have not been overwritten.

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You're misunderstanding this.

The value of this parameter is determined by the callsite – the code that calls your function.
When you pass that.dummyFormSuccess or this.dummyFormSuccess, you're just passing a function that happens to come from your object.
The this or that object is just used to retrieve the function instance; it isn't bundled with the function.

When jQuery calls your callback, it always calls it in the context of the jqXHR object.
When you pass function(data) { that.dummyFormSuccess(data); }, your function expression is called in the context of this jqXHR object.
However, your callback then calls dummyFormSuccess in the context of that, so its this is what you want it to be.

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You can treat 'this' in JavaScript as additional argument in function argument list. So each call of function will contain its own value in this argument. Here are all three ways of invoking function in JS

  • foo(); - inside the function this will be set to default namespace object (window in case of browser environment).

  • obj.foo(); - this will get obj reference inside the foo().

  • foo.call(obj); - 'foo' will be called with this set to obj (same as above)

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Since a function can also mean an object (and it is an object), this means that function. (different scopes)

What you need to do is put var that = this; outside of dummyForm : function (the line above it), and then do console.log(that).

var that = this;
dummyFormSuccess: function(data){ 
   console.log(that); // now 'this' is logged out correctly as the real myModule object
}
share|improve this answer
    
Wrong. this does not mean the function. –  SLaks Aug 26 '11 at 15:28

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