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I am trying to load content from a PHP page when user clicks on a link:

The user can click the link to get the AJAX data in the file: message.php

I currently have this code in message.php

            $('#pmid<?php echo $convoData['id']; ?>').click(function(){
                  $.ajax({
                    type:"GET", //this is the default
                    url: "/index.php?i=pm&p=rr",
                    data: {id:"<?php echo $convoData['id']; ?>"}
                  })
                  .done(function( stuff ) {
                  $( "#name" ).html( stuff ); 
                  $( "#post" ).html( otherstuff );
                  $( "")
                  });
              });

And the HTML:

    Chat with <span id="name"></span> //The $name should be added to here
    <ul id="post"></ul> //The $post should be added to here

The page where the AJAX is getting the data from is named: get.php, it looks like this:

    $id = $_GET['id'];
    $get=mysql_query("SELECT * FROM private_messages WHERE id='$id'");
    $getData=mysql_fetch_assoc($get);


    //Set the variables that needs to be send back to the other page.
    $getUser=$user->getUserData($getData['sender_id']);


    $name=$getUser['username'];
    $post = '
    <li>
      <img width="30" height="30" src="images/avatar-male.jpg">
      <div class="bubble">
        <a class="user-name" href="">'.$name.'</a>
        <p class="message">
          '.$getData['subject'].'
        </p>
        <p class="time">

        </p>
      </div>
    </li>
    ';
echo $name;
echo $post;

So, the problem is that currently all the data is just being printed in #name

How can I do so the $name will get printed in #name and the $post in #post?

share|improve this question
    
retun the output as a json encoded array with two keys and on the response show the values based on keys –  웃웃웃웃웃 Oct 24 '13 at 10:32
    
have you tried retrieving a json encoded array from the php page then splitting the data using jquery and allocating to the right container –  Liam Sorsby Oct 24 '13 at 10:33
    
How do I do that? Could one of you make an example of that? –  oliverbj Oct 24 '13 at 10:33
    
echo '{ "name" : "'.$name.'", "post" : "'.$post'" }'; Or be lazy and use json_encode –  DarkBee Oct 24 '13 at 10:42

3 Answers 3

up vote 0 down vote accepted

Return the output as a json encoded array with two keys and on the response show the values based on keys like this

In your php

$arrRet = array();
$arrRet['name'] = $name;
$arrRet['post'] = $post;
echo json_encode($arrRet); 
die();

In the ajax

$.ajax({
     type:"GET",
     url: "/index.php?i=pm&p=rr",
     dataType:'json',
     data: {id:"<?php echo $convoData['id']; ?>"},
     success : function(res){
       if(res){
        $( "#name").html(res.name); 
        $( "#post").html(res.post);
       }
     }
});
share|improve this answer
    
I get unexpected identifier error. –  oliverbj Oct 24 '13 at 10:38
    
Oh sorry i missed some commas.Sorry i updated the answer. –  웃웃웃웃웃 Oct 24 '13 at 10:40
    
Whenever I click, nothing happens.. –  oliverbj Oct 24 '13 at 10:41
    
check in the browser console for if you have any erros or the request is triggering –  웃웃웃웃웃 Oct 24 '13 at 10:42
    
No errors. It's empty.. –  oliverbj Oct 24 '13 at 10:42

I'd use json to pass the two variables:

JS:

$('#pmid<?php echo $convoData['id']; ?>').click(function(){
                  $.ajax({
                    type:"GET", //this is the default
                    url: "/index.php?i=pm&p=rr",
                    data: {id:"<?php echo $convoData['id']; ?>",},
                    dataType: 'json'
                  })
                  .done(function( stuff ) {
                  $( "#name" ).html( stuff[0] ); 
                  $( "#post" ).html( stuff[1] );
                  $( "")
                  });
              });

PHP:

echo json_encode(array($name,$post));
share|improve this answer

try returning it like this:

$output = array();
$output['name'] = $name;
$output['post'] = $post;
$output = json_encode($output);
echo json_encode($output); exit;

Then with the return in js try :

function(data){
     $( "#name" ).html( data.name ); 
     $( "#post" ).html( data.post );
}
share|improve this answer

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