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If I want to separate out my ajax success function so that it is defined elsewhere in my <script>, does it have to be inside the

$(document).ready(function()
{

section or could it be defined along with non-jQuery javascript functions?

  $.ajax(
  {
    url: '/load_prayer',
    cache: false,
    dataType: 'json',
    type: 'POST',
    data: ({ 'prayerId' : prayerId }),
    success: function(data)
    {
        $('#prayer_date').html(data.Date);
        console.log(data);
    },
    error: function(e, xhr)
    {
        console.log(e);
    }
  });

The reason I don't want to define it inside the call to ajax is it will eventually be a large function and it will be confusing to read if it's mixed in with the other ajax call parameters.

For example, would this work:

$.ajax(
{
    url: '/load_prayer',
    cache: false,
    dataType: 'json',
    type: 'POST',
    data: ({ 'prayerId' : prayerId }),
    success: handlePrayer(data),
    error: function(e, xhr)
    {
        console.log(e);
    }
});

handlePrayer(data)
{
    $('#prayer_date').html(data.Date);
    console.log(data);
}
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3 Answers 3

You have to change it so its only the function name. Like so:

$.ajax(
{
    url: '/load_prayer',
    cache: false,
    dataType: 'json',
    type: 'POST',
    data: ({ 'prayerId' : prayerId }),
    success: handlePrayer,
    error: function(e, xhr)
    {
        console.log(e);
    }
});

And you need put function where you declare it like so

function handlePrayer(data)
{
    $('#prayer_date').html(data.Date);
    console.log(data);
}
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@Ken, if any of these solved your problem then please do accept one of them :) –  Amir Raminfar Nov 2 '10 at 18:48

As long as the function has been loaded before $.ajax is called, it should work. That means it can be outside $(document).ready(...).

With one exception: All variables that need to be accessed need to be outside that success function. The below ajaxCallWorked() function would be able to access outside but not inside.

var outside;

function ajaxCallWorked(data) {
    ...
}

$(document).ready(function() {
    var inside;
    $.ajax({
        ...
        success: ajaxCallWorked,
        ...
    });
}
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For pointing out that 'ajaxCallWorked' is just an expression for a function-object (just as a function-expression is...) :-) It's all explained here: jibbering.com/faq/notes/closures (somewhere) –  user166390 Oct 24 '10 at 22:41
    
So, if ajaxCallWorked is defined inside $(document).ready(...), it can access inside and the $.ajax() call can also access it? –  Ken Hume Oct 24 '10 at 22:43

i believe you can define the function outside the scope of both the ajax call and the onready.

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