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hi can someone explain to me the concept of jquery's callback kinda stuck on this simple code

$(document).ready(function(){
    bar('',function(){
        foo();
    });         
});

function foo()
{
    alert('foo');
}

function bar()
{
    alert('bar');
}

so that foo() get executed first then bar(), but with the code above, only foo() gets executed and bar does not execute.

here is a jsfiddle link

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1  
bar() is the only one being executed in your sample. –  Andrew Whitaker Apr 25 '11 at 3:06
    
@andre whiteaker - im implementing something in the jquery tuts docs.jquery.com/How_jQuery_Works#Callback_and_Functions –  ianace Apr 25 '11 at 3:10

1 Answer 1

up vote 6 down vote accepted

Functions are first-class members in JavaScript and as such, can be assigned to variables and passed as arguments to other functions. The idea of a callback function is that one (or more) of parameters a function receives is a function reference which can be invoked under certain conditions. In your case, you're calling bar with two arguments but never doing anything with those parameters in bar. JavaScript doesn't call back functions automatically, you as the programmer must do that.

This is probably what you want:

$(document).ready(function(){
    bar('',function(){ //this anonymous function maps to the parameter b in bar(a,b)
        foo(); //missing ; can lead to hard to track errors!
    });         
});


function foo()
{
    alert('foo');
}

//accept two parameters
// in this example code, given the call to bar() above, a will map to '' and b to the anonymous function that calls foo()
function bar(a, b) 
{
    alert('bar');
    if(typeof b === 'function'){ //check if b is a function
        b(); //invoke
    }
}

Edit

@Jared's suggestion definitely makes more sense - changed if(b) to if(typeof b === 'function'){ before invoking b

share|improve this answer
    
will update question, aside from the typo –  ianace Apr 25 '11 at 2:59
    
lining them up sequentially would defeat the purpose for me to learn callbacks, is there a callback approach with my foo() and bar() functions? –  ianace Apr 25 '11 at 3:04
    
Right, that was from before you changed your code, I'm editing my answer in reply to your edited question. –  no.good.at.coding Apr 25 '11 at 3:06
2  
@no.good.at.coding - How about if (typeof b == 'function')? –  Jared Farrish Apr 25 '11 at 3:14
2  
@ianace - That won't happen automatically, the developer needs to ensure that that's how it works. jQuery's ready() function for example, takes a callback function. If you dive into the source for jQuery, you'll see that each time you attach a callback function to ready, it gets put into an array. When the ready event fires, each entry in that callback array is invoked one by one - the jQuery developers have had to write it that way, JavaScript only provides the mechanism for such a design pattern to be possible. –  no.good.at.coding Apr 25 '11 at 3:25

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