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I have some jQuery that is triggered on click of a link with the class 'changetag'. I'm using $.ajax() to update the database via changetag.php.

I then change the visual appearance of the link by toggling the class between on/off. The code is as follows:

$(function() {
$(".changetag").click(function(){
    var element = $(this);
    var I = element.attr("id");
    var info = 'switch_tag=' + I;

    $.ajax({
        type: "POST",
        url: "_js/changetag.php",
        data: info,
        success: function(){}
    });

    $("#li_"+I).toggleClass("off on");
    element.toggleClass("off on");

    return false;
});
});

Works perfectly. But now I want to add in a second PHP call which will pull data and update another area of the page if the above was successful.

What I'm trying to add is:

$.ajax({
    url: "_js/loaddata.php",
    success: function(results){
        $('#listresults').empty();
        $('#listresults').append(results);
    }
});

But just adding it into success: function(){} doesn't seem to be working. To clarify, here is the complete code I'm testing:

$(function() {
$.ajaxSetup ({cache: false});
$(".changetag").click(function(){
    var element = $(this);
    var I = element.attr("id");
    var info = 'switch_tag=' + I;

    $.ajax({
        type: "POST",
        url: "_js/changetag.php",
        data: info,
        success: function(){
            $.ajax({
                url: "_js/loaddata.php",
                success: function(results){
                    $('#listresults').empty();
                    $('#listresults').append(results);
                }
            });
        }
    });

    $("#li_"+I).toggleClass("off on");
    element.toggleClass("off on");

    return false;
});
});

The PHP scripts are both called successfully and the toggle class works, but the data pulled is not written to #listresults for some reason.

share|improve this question
    
how is it not working? are you getting an error? is your result variable returning data? –  Patrick Mar 30 '11 at 13:28
1  
Try chaining them - $.ajax({}).ajax({}); –  Elad Lachmi Mar 30 '11 at 13:29
    
@partick @elad-lachmi actually both calls seem to be successful, I think its just the $('#listresults').empty(); and $('#listresults').append(results); that is failing to update the page –  Paul Mar 30 '11 at 13:36
1  
Is results an html string? I believe append needs to take a DOM element, html string, etc. It can't take just any type of content. –  McStretch Mar 30 '11 at 13:51
    
There's no reason to .empty() and then .append(). Just do $('#listresults').html(results); –  Matt Ball Mar 30 '11 at 13:56

1 Answer 1

up vote 5 down vote accepted

Ajax calls are (by default) asynchronous. That means that this code:

$("#li_"+I).toggleClass("off on");
element.toggleClass("off on");

return false;

could be executed before the ajax call preceding it is finished. This is a common problem for programmers who are new to ajax and asynchronous code execution. Anything you want to be executed after the ajax call is done must be put into a callback, such as your success handler:

$.ajax({
    type: "POST",
    url: "_js/changetag.php",
    data: info,
    success: function(){
        $("#li_"+I).toggleClass("off on");
        element.toggleClass("off on");
    }
});

Likewise, you could put the second ajax call in there as well:

$.ajax({
    type: "POST",
    url: "_js/changetag.php",
    data: info,
    success: function(){
        $("#li_"+I).toggleClass("off on");
        element.toggleClass("off on");

        $.ajax({
            url: "_js/loaddeals_v2.php",
            success: function(results){
                $('#listresults').empty();
                $('#listresults').append(results);
            }
        });
    }
});

With jQuery 1.5's Deferred Object, you can make this slicker.

function firstAjax() {
    return $.ajax({
        type: "POST",
        url: "_js/changetag.php",
        data: info,
        success: function(){
            $("#li_"+I).toggleClass("off on");
            element.toggleClass("off on");
        }
    });
}

// you can simplify this second call and just use $.get()
function secondAjax() {
    return $.get("_js/loaddata.php", function(results){
        $('#listresults').html(results);
    });
}

// do the actual ajax calls
firstAjax().success(secondAjax);

This is nice because it lets you un-nest callbacks - you can write code that executes asynchronously, but is written like synchronously-executed code.

share|improve this answer
    
I've applied all of the suggested fixes (here and in the comments) and all is working perfectly. –  Paul Mar 30 '11 at 13:59
    
See my edit re:deferred if you want to get fancy (you need jQuery 1.5.1). –  Matt Ball Mar 30 '11 at 14:06

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