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.

The behavior of "this" when function bar is called is baffling me. See the code below. Is there any way to arrange for "this" to be a plain old js object instance when bar is called from a click handler, instead of being the html element?

// a class with a method

function foo() {

    this.bar();  // when called here, "this" is the foo instance

    var barf = this.bar;
    barf();   // when called here, "this" is the global object

    // when called from a click, "this" is the html element
    $("#thing").after($("<div>click me</div>").click(barf));
}

foo.prototype.bar = function() {
    alert(this);
}
share|improve this question
    
Please explain the "this" is the foo instance. The following jsfiddle(jsfiddle.net/yY6fp/1) demonstrates that this in this.bar() evaluates to the window(global) object. –  Kevin Meredith Jan 1 at 22:48

7 Answers 7

up vote 31 down vote accepted

Welcome to the world of javascript! :D

You have wandered into the realm of javascript scope and closure.

For the short answer:

this.bar()

is executed under the scope of foo, (as this refers to foo)

var barf = this.bar;
barf();

is executed under the global scope.

this.bar basically means:

execute the function pointed by this.bar, under the scope of this (foo). When you copied this.bar to barf, and run barf. Javascript understood as, run the function pointed by barf, and since there is no this, it just runs in global scope.

To correct this, you can change

barf();

to something like this:

barf.apply(this);

This tells Javascript to bind the scope of this to barf before executing it.

For jquery events, you will need to use an anonymous function, or extend the bind function in prototype to support scoping.

For more info:

share|improve this answer
1  
I'm not 100% certain on the terminology myself, but I think this answer (and the resources linked to) are confusing 'scope' with 'execution context'. The object pointed to by this is the execution context, and is entirely independent of scope (which closures have to do with). Scope is determined at a function's creation time, and determines what variables the function can see; execution context is determined whenever the function is called, and determines what this refers to. Replace 'scope' with 'execution context' everywhere here and only then will it be correct - I think! –  Mark Amery Jun 12 '13 at 22:03

There's a good explanation on this keyword in JavaScript available at QuirksMode.

share|improve this answer

Get the book: JavaScript: the Good Parts.

Also, read as much as you can by Douglas Crockford http://www.crockford.com/javascript/

share|improve this answer

You may use Function.apply on the function to set what this should refer to:

$("#thing").after($("<div>click me</div>").click(function() {
    barf.apply(document); // now this refers to the document
});
share|improve this answer
1  
Beside the fact that there is a missing closed bracket at your code - the function apply instantly executes the function barf instead of returning a function pointer. –  Martin Apr 2 '09 at 17:00
    
Thanks, I've now corrected the post :) –  moff Apr 2 '09 at 17:32

This is because this is always the instance that the function is attached to. In the case of an EventHandler it is the class that triggered the event.

You can help your self with an anonymous function like this:

function foo() {
  var obj = this;
  $("#thing").after($("<div>click me</div>").click(function(){obj.bar();}));
}

foo.prototype.bar = function() {
  alert(this);
}
share|improve this answer
this.bar();  // when called here, "this" is the foo instance

this comment is wrong when foo is used as a normal function, not as a constructor. here:

foo();//this stands for window
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.