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I am using the jquery form (http://jquery.malsup.com/form/) to submit a form on this page: http://licf.ronaldboadi.com/practice/test.html. Here is the code below:

<script type="text/javascript">
// prepare the form when the DOM is ready 
$(document).ready(function() { 
    var options = { 
        target:        '#submitform',   // target element(s) to be updated with server response 
        beforeSubmit:  showRequest,  // pre-submit callback 
        success:       showResponse  // post-submit callback 

        // $.ajax options can be used here too, for example: 
        //timeout:   3000 
    }; 

    // bind to the form's submit event 
    $('#camperapplicationForm').submit(function() { 
        // inside event callbacks 'this' is the DOM element so we first 
        // wrap it in a jQuery object and then invoke ajaxSubmit 
        $(this).ajaxSubmit(options); 

        // !!! Important !!! 
        // always return false to prevent standard browser submit and page navigation 
        return false; 
    }); 
}); 

// pre-submit callback 
function showRequest(formData, jqForm, options) { 
    var queryString = $.param(formData); 
   // var formElement = jqForm[0]; 

    alert('About to submit: \n\n' + queryString); 
    return true; 
} 

// post-submit callback 
function showResponse(responseText, statusText, xhr, $form)  { 
    alert('status: ' + statusText + '\n\nresponseText: \n' + responseText + 
        '\n\nThe output div should have already been updated with the responseText.'); 
} 
</script>

I have settled on using a loading gif while I am processing data and once I have the div ready I can use a fade in animation.

This would involve adding a simple img element (loading gif) to the div when I submit the form. When I have the result, for example in the success method of an $.ajax call, I need to hide the div, replace the img element with the result I got from the server then add the fade in animation.

But I've been wondering how I can implement the below code into my current code... any ideas how to?

//Assuming you have a $.ajax request to submit the form:

//add the loading gif
$('#submitform').html('<img src="loading.gif" />');

//send your form data
$.ajax({
    url: "process.php",
    data: {
        param1: 1,
        param2: 2,
        param3: 3
    },
    success: function(data){
        //hide the div, assuming the process.php return simple html code to your page update the div content, then add the fade in animation
        $('#submitform').hide().html(data).fadeIn('slow');
    }
});
share|improve this question
    
Can you post the code from the link that is relevant? Eg, construct a small, silo'd question out of this. This way it's easier to answer and future people will be able to follow this without that site having to stay up in it's current form. –  rfunduk Mar 25 '12 at 12:49
    
Sorry about that will do! –  CJS Mar 25 '12 at 12:50
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2 Answers

up vote 1 down vote accepted

You may do it like so:

var siteUrl = 'http://localhost/';

//send your form data
$.ajax({
    url: "process.php",
    data: {
        param1: 1,
        param2: 2,
        param3: 3
    },
    beforeSend:function(){
        $('#main').append('<div class="loading"><img src="' + siteUrl + 'resources/imgs/ajax-loader.gif" alt="Loading..." /></div>');
    },
    success: function(data){
        $('.loading').remove();
        //hide the div, assuming the process.php return simple html code to your page update the div content, then add the fade in animation
        $('#submitform').hide().html(data).fadeIn('slow');
    }
});

Update

my solution is for the jQuery ajax code you posted. For the malsup according to their options documentation http://jquery.malsup.com/form/#options-object, you may try:

//Show loading image before submit
beforeSubmit: function(arr, $form, options) { 
   $('#main').append('<div class="loading"><img src="' + siteUrl + 'resources/imgs/ajax-loader.gif" alt="Loading..." /></div>');
}
//Remove loading image after response
function showResponse(responseText, statusText, xhr, $form)  {
    $('.loading').remove();
    alert('status: ' + statusText + '\n\nresponseText: \n' + responseText + 
        '\n\nThe output div should have already been updated with the responseText.'); 
}

That's the idea...

share|improve this answer
    
How would I implement this feature into the jquery form plugin (jquery.malsup.com/form) I'm using? –  CJS Mar 25 '12 at 12:54
    
check edit, but also read the options page to see where to implement the addon code correctly so it does what you need –  w0rldart Mar 25 '12 at 13:03
    
Everytime I add the beforeSubmit function it seems to break the jquery form process by jumping directly to process.php instead of remaining on the same page. –  CJS Mar 25 '12 at 13:33
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You can use the jQuery ajaxStart and ajaxStop events to show/hide your loading indicator. This is called automatically by jQuery whenever you make an ajax call.

$("#loadingIndicator")
.bind('ajaxStart', function() {
   $(this).show();
})
.bind('ajaxStop', function() {
   $(this).hide();
});
share|improve this answer
    
How would I implement this feature into the jquery form plugin (jquery.malsup.com/form) I'm using? –  CJS Mar 25 '12 at 12:53
add comment

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