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I upgrade my DOM ajax to jquery ajax in passing a value using post, the problem now is the loading image, i tried to follow some of the sample here but to no success. here's my code:

function passLetter(str)
    {       
        $('#loadingImage').attr('style','display:');
        // $('#retail_group').html('<img src="/admin/images/ajax-loader.gif" style="text-align:center;">');
                    //$('#loadingImage').show();                                
        $.ajax({
        url: "getRetailGroup.php",
        type: "GET",
        async: false,
        data:  {"letter": str},
        success: function(data){
                $("#retail_group").html(data);
                //$('#loadingImage').hide();
            }
        });
        getletter = str;
    }

for the div:

<div id="retail_group">
<div id="loadingImage" style = "display:none">
<img src="/admin/images/ajax-loader.gif" style="text-align:center;" alt = "Loader" title = "Loader">
</div>
</div>  
share|improve this question
    
reason for the downvote please? –  Reb Tuble Jul 30 '12 at 18:31
    
has anything helped you? or have abandon this question? –  Eonasdan Jul 31 '12 at 11:41
    
none has helped me so far. no i haven't abandon this question and i am still open for ideas. –  Reb Tuble Jul 31 '12 at 18:10
    
ok well you need to tell us what's not working. Did you try the answers given? –  Eonasdan Jul 31 '12 at 19:34
    
@Eonasdan all of them actually. it works fine using the old DOM ajax but then i wanted to make it simplier. –  Reb Tuble Jul 31 '12 at 20:30

4 Answers 4

Try this:

 $('#loadingImage').show();

OR

 $('#loadingImage').css('display','block');     

I think your #loadingImage div has already CSS display: none.

share|improve this answer
    
tried that with .show and .hide but still nothing. also tried: $('#retail_group').html('<img src="/admin/images/ajax-loader.gif" style="text-align:center;">'); but still nothing. –  Reb Tuble Jul 30 '12 at 19:05

instead of:

$('#loadingImage').attr('style','display:');

try:

$('#loadingImage').show();
share|improve this answer

Simply change to $('#loadingImage').css('display','block'); or even simpler: $('#loadingImage').show();

share|improve this answer

For one, you should be using jquery's show() and hide() functions instead.

$('#loadingImage').show();

secondly make sure that you can in fact get to the image based on your image path in the browser

http://site.com/admin/images/ajax-loader.gif

if you use jquery's show/hide then you need to remove

style = "display:none">

Put $('#loadingImage').hide(); in your document ready block

Oh, and if you want to set css to an element with jquery it should be like this

$('#loadingImage').css("display","block");

Edit

Your real problem is that you are replacing retail_group's html with the ajax result. When you do that the next time the function is called there is no more loadingImage div to show

$("#retail_group").html(data);

You need to to change your function like this:

function passLetter(str)
    {       
     $('#retail_group').html('<img src="/admin/images/ajax-loader.gif"/>');                       
        $.ajax({
        url: "getRetailGroup.php",
        type: "GET",
        async: false,
        data:  {"letter": str},
        success: function(data){
                $("#retail_group").html(data);
            }
        });
        getletter = str;
    }

now each time the function is called the inside of retail_group will be the image until the ajax has completed successfully

share|improve this answer
    
actually that's what i did before and its still not working. i tried removing .html(data) and the loading appears. i guess its too fast that it skips the first .html –  Reb Tuble Aug 1 '12 at 17:36
    
look at the php sleep function. add that to your getRetailGroup.php for testing purposes. see if that image displays then –  Eonasdan Aug 1 '12 at 18:02
    
still nothing. it seems it is ignoring the first .html and proceeds directly and waits for the success to appear –  Reb Tuble Aug 1 '12 at 20:06
    
check this jsfiddle there has to be something else wrong. comment out the $("#retail_group").html(data); part and make sure the image shows –  Eonasdan Aug 1 '12 at 21:01

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