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I am new to jquery and ajax. Although I've gone through some of the web tutorial but I was not able to accomplish the following requirement. Intentionally I've made my DIV hidden which spreads when clicked upon it and again closed when clicked on the div for the second time. it displays a single text box containing the email-id of the logged-in user for editing purpose.

          <body>
              <div class="toggle" >Email-ID</div>
                   <div  class="hidden" id="email_details" style="display:none;"> <!-- This div contains the hidden field -->
                     <table align="center">
                       <tr>
                         <td>Email-ID :</td><td><?php echo form_input(array('name' => 'txtPrimaryEmail', 'id' => 'txtPrimaryEmail', 'class' => 'txtPrimaryEmail', 'value' => $user -> us_email_id ))?></td>
                       </tr>
                       <tr>
                         <td><?php echo form_submit(array('name' => 'btnUpdate3', 'id' => 'btnUpdate3', 'value' => 'Update Email', 'class' => 'btn btn-primary')); ?></td>
                       </tr>
                     </table>
                   </div> <!-- Div to hide contents, get over here -->
              </div>
          </body>

If user edit the textbox and close the DIV without updating it then text box contains the edited information. say initially when DIV is opened by clicking on it , textbox contains email-id rocks@gmail.com and user edits it to rock@gm.com . He closes the DIV and again when he opens the DIV he sees rock@gm.com as an email-ID but actually it should be rocks@gmail.com ( this is what I want that when ever user click to open the DIV , it should fetch the email-ID from the database. ). Is there anyway to connect it to database using ajax and hence textbox will always be updated with the updated information from the database. Please help me.

share|improve this question
    
What does <?php echo site_url('userHome/update_email'); ?> outputs? This should be the server page that will process and yield your answer. –  aldux May 4 '12 at 11:13
    
Could you try to clarify your problem? I tried to follow it but this is just a big confusing sentence in the end. –  Ohemgi Istal Les May 4 '12 at 11:16
    
Hi thanks for the quick response. It is the path to the page where I am accessing the data passed from the form. This is CODEIGNITER hence this is the way we are passing the data. But this is only to pass the data and update it. What I want is to make the division dynamic so that whenever it clicked to open and view the text box it sees the data from the database that is email-id should be fetched from the database all the time. –  Shashi Roy May 4 '12 at 11:18
    
this text box within DIV is editable and this DIV can be closed and opened by clicking on the DIV ( DIV is clickable ). SO when DIV is closed , textbox is hidden and and when it is open , we can view the textbox. Now when somebody edit the textbox and without updating he closes the DIV, and next time when he open the DIV by clicking upon, he should see the actual Email-ID because he did not update it last time . So basically I want my div to be connected with the ajax so that when we click on it, it updates the textbox from the database and shows the real data. –  Shashi Roy May 4 '12 at 11:23
    
Have you alerted the msg from jquery response? what do you get? –  nithi May 4 '12 at 11:36

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