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Let's suppose that I want to have the following small code

<div id="field"> Some links here with a database call. </div>

The problem is that I want to be able to work with ajax on them and call them when the user adds a new link through the appropriate form.

So instead of having this div, I use a function and call it whenever needed using ajax.

     <?php  
  function testfield ($id) {  Database call
     ?>
      <div id="field"> <?php The links in here  ?> </div>
      }
   <html>
      <body>
        <?php testfield($_GET['id']); ?> 
     </body>
   </html>

So when a user adds a new link, I just call with ajax the function and I'm set.

Is there any other better way to do this? Thank you in advance

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2 Answers 2

When user adds a new link, you send data with AJAX to PHP script, which works with database, on success you should refresh DIV with javascript - write new information(you have this already) at the end of DIV, or render all DIV with information, you get from JSON massive, returned with success from PHP script

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For example you should use JSON and return data into your div. For AJAX try use jQuery.

PHP code:

$linkarray = array();
$linkarray[] = 'link1';
$linkarray[] = 'link2';
$linkarray[] = 'link3';
echo json_encode($linkarray);

HTML:

<html>
<body><div id="linklist"></div></body>
</html>

JS:

$.ajax({
 url:'getlinklist.php',
        dataType:'json',
        type:'POST',
        success: function(data){
            $('#linklist').html('');
            $.each(datamfunction(key,value){
                $('#linklist').append(value+'<br/>');                 
            });
        }
    });
share|improve this answer
    
How come you suggest json instead of plain text? Also I'm not sure that I understood what exactly you're trying to do. FYI I'm not familiar with json. What more does this approach offers –  viper Nov 7 '11 at 10:21
    
JSON is not to hard understand. Try execute my code, and look at firebug when code is handling. –  Evgeniy Nov 7 '11 at 10:44
    
json is great and easy - read more about it here: json.org –  oyatek Nov 7 '11 at 11:09
    
And one last question, ok I call it on $(document).ready but do I have to copy the ajax part again as a function to call it later ? Because that's what my question was in the first place. I do not want to have the same code twice. –  viper Nov 7 '11 at 11:22
    
create function and add allJS code into it. At first code handling on $(document).ready(); and then you may crete a button or link and send AJAX request when user push the button/click the link –  Evgeniy Nov 7 '11 at 11:50

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