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I am new to jquery and php, so I apologize if the question is to simple. I have to change the image displayed depending on the option selected in the list box. So far my jquery is able to retrieve and display the desired img id.I intially tried to post the image id back to the php script and then retrieve the image, but later realised I can directly manipulate the img tag(since my images are name 1.jpg,2.jpg).Can someone please help me? Thank you! Here s the relevant code:

HTML:
<img id="design"  class ="img-rounded" alt="Ad Picture" width="450p" height="450"/>
<input type="button" id="GetImage" class="btn" value="Get Image">
Jquery:
$('#GetImage').live("click",function() {
var imageid= $('#UserIds').val();
$.ajax({
    type:'POST',
    url:'ProvidingFeedback.php',
    data:{id:imageid},
    success: function(msg){ 
       if(result=='success') {
            $('#design').attr('src','/img/2.jpg');

       }
 }
});


});

I

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1  
What happen after the ajax post? Did you try to debug it in JS console or firebug? Are you sure the ajax is successful? –  R.S Dec 2 '12 at 13:47
    
Yes the Ajax post was successful.Used an alert box to display success and checked in Firebug. –  Namrata Kannan Dec 2 '12 at 14:19
    
Where are you getting result from, there is no variable with that name, and why would you need to check if the ajax call was successful inside the success callback, which is only fired if the ajax call was successful? Remove the if statement. –  adeneo Dec 2 '12 at 14:28

2 Answers 2

up vote 0 down vote accepted

because you are selecting image as id try only img or #design

 $('#img').attr('src','/img/2.jpg');

should be

 $('#design').attr('src','/img/2.jpg');

and

  if(msg=='success') {

should be

  if(msg=='success') {
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I am sorry, I was just playing around with the code..i had changed the id in between.It does not work with #design either :( –  Namrata Kannan Dec 2 '12 at 13:44
    
try <img id="design" src="" class ="img-rounded" alt="Ad Picture" width="450p" height="450"/> put src here than change –  obi NullPoiиteя kenobi Dec 2 '12 at 13:46
    
also make sure that you are echoing only success on success in ProvidingFeedback.php –  obi NullPoiиteя kenobi Dec 2 '12 at 13:49
    
Hi all, thank you so much..I got it. The issue was the if condition in the success part. The code is working ok now.However, If anyone can answer, why was the result==success causing issue? –  Namrata Kannan Dec 2 '12 at 14:21
1  
Got it!..Thanks again! –  Namrata Kannan Dec 2 '12 at 14:35

Try

$.ajax({
  type:'POST',
  url:'ProvidingFeedback.php',
  data:{id:imageid},
  success: function(msg){ 
   //if(result=='success') { // 'result' is not define in you code above should be 'msg'
        $('#design').attr('src','/img/2.jpg');

   //}
 }

If you want to get the result using msg

To better help you debug you code you may want to take a look @ Chrome Developer Tools: Breakpoints or Firebug Breakpoints

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