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 <form class="follow-form" method="post" action="listen.php">
    <input name="followID" value="123456" type="hidden">
    <button type="submit" value="Actions" class="btn follow" title="123456">
        <i></i><span>follow</span>
    </button>
</form>

javascript file:

jQuery(function ($) {
         /* fetch elements and stop form event */
         $("form.follow-form").submit(function (e) {
          /* stop event */
          e.preventDefault();
          /* "on request" */
          $(this).find('i').addClass('active');
          /* send ajax request */
          $.post('listen.php', {
           followID: $(this).find('input').val()
          }, function () {
           /* find and hide button, create element */
           $(e.currentTarget)
             .find('button').hide()
             .after('<span class="following"><span></span>Following!</span>');
          });
         });
        });

i wanted to know what kind of process would go in the listen.php via ajax, i know its a mysql statement, but then what after!!

what it deos is : when you click the follow button, this sends the ajax request to listen.php and then if successfull it transfroms into following, showing that you followed the user

thanks i have been up all night

share|improve this question
1  
It depends what you want to do after you've run your MySQL statement. Do you want to display something? – Calvin Sep 9 '10 at 3:43
    
at the button of the javascript file it says .after <span.... thats what happens when the listen.php finshes..!! if you get what i mean – getaway Sep 9 '10 at 3:45
    
A good sleep will definitely clear your mind. – TheVillageIdiot Sep 9 '10 at 3:48
    
lool, i promised myself i have to finsh this before i sleep, its coursework for my university, i need show a jquery working script!! thanks for the advice though – getaway Sep 9 '10 at 3:50
    
I'm still unclear to what you want to do after your AJAX call is complete, can you be a bit more clear? And yes, you should get some sleep. – Calvin Sep 9 '10 at 3:51
up vote 1 down vote accepted

Well, there really isn't anything wrong with the code you have here. I've set up a jsfiddle to test it, and it works fine. The only problem, and it shouldn't affect whether the submit event is captured by the event handler, is that the HTML fragment you're trying to insert after the button is invalid - you've got your opening and closing tags mixed up. This is the code I have after that minor edit:

jQuery(function($) {
    $("form.follow-form").submit(function(e) {
        e.preventDefault();

        $(this).find('i').addClass('active');

        $.post('/ajax_html_echo/', {
            followID: $(this).find('input').val()
        }, function() {
            $(e.currentTarget).find('button').hide().after('<span class="following">Following!</span>');
        });
    });
});

Other than that, it works fine - that is, assuming you want the following span to display no matter what the outcome of the ajax request is.

share|improve this answer
    
thank you very much, but where would i put the mysql statments – getaway Sep 9 '10 at 4:32
    
@getaway You have to do that in listen.php – Yi Jiang Sep 9 '10 at 4:37

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