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I am using AJAX to submit a form behind the scenes, without refreshing the page. The problem I am running into is I can only submit the form once. After I submit it once, the on('submit') function no longer works and I am getting no errors. This completely defeats the purpose of using AJAX to submit the form :/

           $(document).on('submit', '#myForm', function(e) {
                $.post('mail.php', $(this).serialize(), function (data) {
                    //SUCCESS
                    $('.successORfail').html(data);
                     setTimeout(function(){
                      $(".successORfail").fadeOut("slow", function () {
                        $(".successORfail").remove();
                      });
                    }, 4500);

                }).error(function() {
                    alert("Fatal Error: mail.php not found!");
                });
                e.preventDefault();
            });

I was wondering if someone ran into a similar problem or knows how to solve this? I would like to be able to submit the form more than once, making changes to the form input values after each submit, if needed.

Many thanks in advance

share|improve this question
    
You have a caching problem! Try setting cache to false as specified here: api.jquery.com/jQuery.ajax Also disable caching on the server event. –  asawyer Jan 9 '13 at 13:49
    
Why would you want to cache a post submission? –  Blazemonger Jan 9 '13 at 14:13

5 Answers 5

up vote 2 down vote accepted

Are you sure the AJAX request is not happening? It looks like you are removing the .successORfail element from the page, and thus the there is nothing to append the content to on subsequent calls.

Check your console and you will probably notice an ajax call happening each time.

Try changing your setTimeout to this:

var msgEl = $(".successORfail");
setTimeout(function() {
    msgEl.fadeOut("slow", function () {
        msgEl.empty().show();
    });
}, 4500);
share|improve this answer
    
+1 Thanks for the reply. This worked great. However, I used your previous code before the edit. Your new code seems like an over-complicated version of that. –  AnchovyLegend Jan 9 '13 at 13:57
    
@MHZ The reason for the edit was to foist some best practices into the answer. :) Every time you call $(".successORfail"), jQuery has to traverse your DOM and find it, which can get very slow with a large page. Storing the jQuery object and re-using it is much more efficient, especially since you are using a class selector. –  Stephen Jan 9 '13 at 14:39

Your success event handler:

$('.successORfail').html(data);
setTimeout(function () {
  $(".successORfail").fadeOut("slow", function () {
    $(".successORfail").remove();
  });
}, 4500);

is setting content in an element (.successORfail), then removing that element. The next time you submit the form, get a successful response, and that function is executed the element is no longer there to set the content into so you wouldn't see anything change.

share|improve this answer

Instead of removing the element, just .hide() it so that the next time it can be populated. You'll need to .show() it each time too.

       $(document).on('submit', '#myForm', function(e) {
            $.post('mail.php', $(this).serialize(), function (data) {
                //SUCCESS
                $('.successORfail').html(data).show(); //<-- show

                 setTimeout(function(){
                  $(".successORfail").fadeOut("slow", function () {
                    $(this).hide(); //<-- hide
                  });
                }, 4500);

            }).error(function() {
                alert("Fatal Error: mail.php not found!");
            });
            e.preventDefault();
        });

Also in the fadeOut() function, you can access the element with $(this) instead of re-selecting it based on the class name.

share|improve this answer

Can you add some HTML-snippet? Its hard to help without knowledge about your html-structure, because if you are replacing the form via $('.successORfail').html(data); the listener isn't re-bound to the form. You should also return FALSE because the form-data is sent via javascript.

share|improve this answer

Well, it seems that you append your result to $('.successORfail').html(data); and the remove it. Take out the following and it should work multiple times...

$('.successORfail').remove();

Without that element, the change can't be made.

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