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.

I am creating a page that a user can click a link and it will $.ajax load the content into a container div. The problem is the source files all have $.ajax requests of there own, so when a user clicks 2 or more links, it begins incrementing the amount of $.ajax requests and the container div is overrun with data. Basically my goal is for the user to click a link and it loads the requested page (and begins $.ajax refreshing from the ajax loaded source). And when they click another link it clears the old $.ajax requests from the previous ajax loaded content.

$(function(){
                $("a.text").click(function(){
                    $("#botscontainer").remove();
                    $("#botsparent").append("<div id=\"botscontainer\"></div>");
                    $.ajax({
                      url: $(this).attr("id") + ".html",
                      cache: false,
                      success: function(data){
                        $("#botscontainer").hide().append(data).fadeIn("slow");
                      }
                    });

                    return false;
                });
            });

You can see when user clicks link with class text, it will send an ajax request to a page with more ajax content (that is on an interval). So I need to clear the old "data" when the user clicks another link. I even went as far as completely removing the parent element and recreating it, but it won't remove the $.ajax requests from the data. Any help is appreciated.

share|improve this question
add comment

3 Answers

Abort the previous requests... Try this...

       $(function()
       {
            $("a.text").bind('click', Request);
       });

       function Request()
            {
                /* I put try catch so that if the xhr object doesn't exist it won't throw error */
                try{
                xhr.abort();
                }
                catch(e){}
                xhr = null;
                xhr = $.ajax({
                  url: $(this).attr("id") + ".html",
                  cache: false,
                  success: function(data){
                    $("#botscontainer").hide().html(data).fadeIn("slow");
                  }
                }
                return false;
            }

Bind links to just one function... You are basically assigning them to their own AJAX.

share|improve this answer
    
Same result. I originally had that, then changed it to append thinking that .remove() might not work with .html(). Either way it still is requesting all $.ajax requests from other "clicks". The content replaces fine, but the $.ajax requests that are on an interval don't stop –  Ed R Jul 6 '11 at 2:36
    
@Ed Why do you have to run the function simultaneously using interval? –  dpp Jul 6 '11 at 2:39
    
It is the url: that the $.ajax loads that has content on an interval. The loaded content pulls data from a query and refreshes the container every 4 seconds so new data will show up. –  Ed R Jul 6 '11 at 2:41
    
@Ed try my revised answer.. –  dpp Jul 6 '11 at 2:43
    
Same issue. The .html() has no problem replacing the frontend content (i.e. text), but for some reason it won't stop the interval ajax requests from previous .click() events –  Ed R Jul 6 '11 at 2:46
show 4 more comments

You could cancel the request

var x;//in the outer scope of ajax call

x.abort();
x = $.ajax(params);
share|improve this answer
add comment
up vote 0 down vote accepted

To do this you need to be using setInterval(). Simply make the var that holds the setInterval global, and on the first page you want to load ajax content into, use clearInterval(var) to stop the previous ajax requests.

$(function(){
                $("a.text").click(function()
                {
                    clearInterval(refreshId2);
                    $.ajax({
                      url: $(this).attr("id") + ".html",
                      cache: false,
                      success: function(data){
                        $("#botscontainer").hide().html(data).fadeIn("slow");
                      }
                    });

                    return false;
                });
            });
share|improve this answer
add comment

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.