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http://www.malsup.com/jquery/form/#html

I have multiple forms on a single page. They all use the same class "myForm". Using the above extension I can get them to successfully process and POST to ajax-process.php.

<script> 
    // wait for the DOM to be loaded 
    $(document).ready(function() { 
        // bind 'myForm' and provide a simple callback function 
        $('.myForm').ajaxForm(function() { 
            alert("Thank you for your comment!"); 
        }); 
    }); 
</script>

I'm having an issue however with the response. I need to get the comment that the user submitted to be displayed in the respective div that it was submitted from. I can either set this as a hidden field in the form, or as text in the ajax-process.php file.

I can't work out how to get the response from ajax-process.php into something I can work with in the script, if I run the following it appends to all the forms (obviously).

The only way I can think to do it is to repeat the script using individual DIV ID's instead of a single class. However there must be a way of updating the div that the ajax-process.php returns.

// prepare the form when the DOM is ready 
$(document).ready(function() { 
    // bind form using ajaxForm 
    $('.myForm').ajaxForm({ 
        // target identifies the element(s) to update with the server response 
        target: '.myDiv', 

        // success identifies the function to invoke when the server response 
        // has been received; here we apply a fade-in effect to the new content 
        success: function() { 
            $('.myDiv').fadeIn('slow'); 
        } 
    }); 
});

Any suggestions?

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2 Answers 2

up vote 0 down vote accepted


Documentation:

success

Callback function to be invoked after the form has been submitted. If a 'success' callback function is provided it is invoked after the response has been returned from the server. It is passed the following arguments:

  1. responseText or responseXML value (depending on the value of the dataType option).
  2. statusText
  3. xhr (or the jQuery-wrapped form element if using jQuery < 1.4)
  4. jQuery-wrapped form element (or undefined if using jQuery < 1.4)

That means that your options can look like this:

$('.myForm').ajaxForm({
    // success identifies the function to invoke when the server response 
    // has been received; here we apply a fade-in effect to the new content 
    success: function(response, undefined, undefined, form) {
        //find .myDiv class in the current form
        form.find('.myDiv').html(response).fadeIn('slow');
    }
});​

demo

share|improve this answer
    
Thanks, but the problem is I have 5 forms with 5 different divs! myDiv1, myDiv2 etc. I need to update the right one! –  Craig Wilson Dec 15 '12 at 22:26
    
$(this).find('.MyDiv') not works ? –  eicto Dec 15 '12 at 22:26
    
I'm sure it would, but it will always update the same div regardless of which form submitted the data right? It would update myDiv instead of myDiv2 if form2 submitted the AJAX request? –  Craig Wilson Dec 15 '12 at 22:29
    
fixed answer try now. –  eicto Dec 15 '12 at 22:43
    
Thanks. So how would I implement this? Does the ajax-process.php need to return the div name? (bit of a jQuery novice!) –  Craig Wilson Dec 15 '12 at 22:48

Try this code:

// prepare the form when the DOM is ready
$(document).ready(function() {
    // bind form using ajaxForm
    $('.myDiv').each(function() {
        var self = this;
        $(this).find("form").ajaxForm({
            // target identifies the element(s) to update with the server response
            target: this,

            // success identifies the function to invoke when the server response
            // has been received; here we apply a fade-in effect to the new content
            success: function() {
                $(self).fadeIn('slow');
            }
        });
    });
});

Working sample (Press "run" before pressing buttons)

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1  
4th parameter of success calback is current form –  eicto Dec 15 '12 at 23:07
    
(or undefined if using jQuery < 1.4) –  Andriy F. Dec 15 '12 at 23:09
    
show me one who use qQuery 1.4 for new code... and why self not $(this) ? –  eicto Dec 15 '12 at 23:11
    
because this in context of anonymous function would be different –  Andriy F. Dec 15 '12 at 23:33
    
why var self=this and not var self=$(this) ? –  eicto Dec 15 '12 at 23:34

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