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When i try to display the data with getJSON nothing happens, $('#child-left-container-2') should display data from the php file. Where did i go wrong?... Below is brief example of my code.

php file

while($row = mysql_fetch_assoc($query)) {

//code

    $array[] = "<div class='array-container-2' $style id='$id' data-sid='$sid' data-user='$user'>$details1</div>";


            }

            echo json_encode($array);

jquery

$(function() {
    $('.next_button').click(function() {

var id =  $('#container').find('.graphic-blank:visible').siblings().attr('id');

        $.getJSON('fetchstack.php?id='+id,function(data) {

            $('#child-left-container-2').html(''); //clear div

            $.each(data,function(i,result) {
                $('#child-left-container-2').append(result);
            });
        });

          });
});
share|improve this question
1  
Try console.log() on the data object to see if it is the dom insertion or the json get that is having issues – Zak Henry Jan 19 '12 at 22:22
1  
check in the firebug console for errors... – 3nigma Jan 19 '12 at 22:22
1  
It means you have error in your PHP script and you are not receiving JSON response. – dev-null-dweller Jan 19 '12 at 22:32
    
k thx got it working – user892134 Jan 19 '12 at 22:33

I dont't know if this would solve the problem you are experiencing but this would be how I would solve this particular problem. Give this code a try, if it works, stopping sending html thru json would be a bonus.

$key = 0;
while($row = mysql_fetch_assoc($query)) {
    //code
    $array[$key]['id']      = $id;
    $array[$key]['sid']     = $sid;
    $array[$key]['user']    = $user;
    $array[$key]['content'] = $details1;
    $array[$key]['style']   = $style;
    $key++;
}

echo json_encode($array);

JS:

$(function() {
    $('.next_button').click(function() {

        var id =  $('#container').find('.graphic-blank:visible').siblings().attr('id');
        $.getJSON('fetchstack.php?id='+id,function(data) {
            $('#child-left-container-2').html(''); //clear div

            for (var i in data){
                var id      = data[i].id;
                var sid     = data[i].sid;
                var user    = data[i].user;
                var content = data[i].content;
                var style   = data[i].style;
                $('#child-left-container-2').append($('<div />').addClass('array-container-2')attr('id', id)
               .attr('data-sid', sid).attr('data-user', user).html(content);
            }           
       });
   });
});

I confess that not knowing what $style is or how it would appear rendered I couldn't add it to the chain. If you post the content of $style I can update the anwser. I hope this helps.

share|improve this answer
    
the questioner must try this. – VKGS Apr 13 '12 at 7:55

In the second line of your jQuery

var id =  $('#container').find('.graphic-blank:visible').siblings().attr('id');

you are trying to access the id attribute of an array of jQuery objects (the siblings()). You need to specify one jQuery object to get the id for your $getJSON function

Update If there is only one sibling, specify this by doing

var id =  $('#container').find('.graphic-blank:visible').siblings().eq(0).attr('id');
share|improve this answer
    
there is only one sibling. – user892134 Jan 19 '12 at 22:29

I don't mean to insult you at all, but what you are doing is bad practice. If you create the HTML from the client side you can have shorter requests. Also, if you use firebug, you can see a chart of your output JSON. Its really a nifty feature. You can also check to see if its being saved under the DOM section in Firebug. Good Luck.

share|improve this answer
    
Not insulted! You're right! it can be viewed in the console but as i said at start of answer (this is my solution) and it works well for me. I use this because my app is inside an XCODE project, so no console for native app and all my JSON data generated is also viewed on app. I pay a lot of attention to my generated JSON and i advice all to do that thing. And this bad practice is very reliable! – aki Feb 3 '12 at 15:41

Why don't you simply echo the HTML in the PHP-file and then fill the container with it?

while($row = mysql_fetch_assoc($query)) {
    echo "<div class='array-container-2' $style id='$id' data-sid='$sid' data-user='$user'>$details1</div>";
}

$.getJSON('fetchstack.php?id='+id,function(data) {
    $('#child-left-container-2').html(data);
});
share|improve this answer

Well this is my solution and works flawless:

PHP:

<?php

ini_set('magic_quotes_gpc', false);
header('Content-type: text/plain');

      //DB connection credentials
$dbhost = 'hostname';
$dbuser = 'database_username';
$dbpass = 'database_password';
$dbname = 'database_name';

// allow cross-browser acces
header('Access-Control-Allow-Origin: *');

// query SQL
$sql = "do your DB query SELECT what ever here";

  //do our thingies withouth hacks (SQL Injection, etc)
try {
$dbh = new PDO("mysql:host=$dbhost;dbname=$dbname", $dbuser, $dbpass);
$dbh->query("set names utf8");
$dbh->setAttribute(PDO::ATTR_ERRMODE, PDO::ERRMODE_EXCEPTION);
$stmt = $dbh->query($sql);  
$json_export = $stmt->fetchAll(PDO::FETCH_OBJ);
$dbh = null;

    // return JSON format DATA
echo '{"items":'. json_encode($json_export) .'}'; 
} catch(PDOException $e) {

    // return error
echo '{"error":{"text":'. $e->getMessage() .'}}'; 
}

?>

HTML LISTVIEW:

<div data-role="page" id="myPage"><div data-role="content" id="myContent">
       //my HTML list tag
  <ul data-role="listview" id="myList"></ul>
</div></div>

JAVASCRIPT

  //trigger script on show page
$('#myPage').live('pageshow',function (event) {
       //get our JSON data
    $.getJSON('path_to_your_php_json_generator_file_declared_upper',function(data){
          //append our JSON data to a variable
       var json_entries = data.items;
                //for each JSON data, append it to our list as one element
       $.each(json_entries,function(index,entry){
           $('#myList').append('<li><a href="#">' + entry.title + '</a></li>');
             //assuming we have a field named "title" in JSON data
       });
             //refresh the list for layout (style) loading
       $('#myList').listview('refresh');
    });
});

And this is how you populate a list on jQuery Mobile with JSON data generated by a php file. You can adapt this kind of script to every JSON interpreter in your jQuery code, even with parameters (id,category, etc)!

Hope it helps one way or another!

share|improve this answer

try to put this juste before echo json_encode($array);. Eventually put an exit call to avoid extra output.

header('Content-type:application/json;charset=utf-8');
echo json_encode($array);
exit();
share|improve this answer

before you set the response to html elements with to debug it with console.log,

i dont see you created a div to response = $('#child-left-container-2') check if you have

<div id="child-left-container-2" />

and check you response, maby the json in under array... try console.log(data) and open debbuger with F12

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