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Please can anyone assist I'm trying to get my JSON data displayed on my html5 localhost page,

I'm still new to JSON

I get the following returned but no data is loading on the page.


Please if anyone can assist.

Below is my php script

`mysql_select_db($database_xxx, $xxx); $rsfet = "SELECT * FROM cs_tracking "; $fet = mysql_query($rsfet, $xxx) or die(mysql_error()); $json = array(); while($r=mysql_fetch_array($fet)){ $json[] = $r; }

header('Access-Control-Allow-Origin: *');
echo $callback ='('.json_encode($json).')';`

and my javascript to display the table data

    url: '',
    type: 'GET',
    contentType: "application/json; charset=utf-8",
    dataType: "jsonp",
    jsonp: true,
    success: function(data){
                 var tblRow =""
    +"" ;
    $(tblRow).appendTo("#userdata tbody");

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2 Answers 2

The $callback variable is not magically declared in your script (at least, it shouldn't be); you can access the value via $_GET['callback'] but make sure to sanitize its value:

if (isset($_GET['callback']) && preg_match('/[A-Z]\w*/i', $_GET['callback']) {
    header('Content-Type: application/javascript');
    header('Access-Control-Allow-Origin: *');
    printf('%s(%s);', $_GET['callback'], json_encode($json));
share|improve this answer
I tried the code and my php script is generating the JSON, my table displays undefined for each value. – user948354 Feb 16 '14 at 5:03

You have two GET parameter of callback one is valid but empty and second is invalid.


url: '',

So remove your parameter and try with this:

url: '',
share|improve this answer
i have found the problem; – user948354 Feb 16 '14 at 5:09
I didn't call the correct data inside the table. i used data.CS_Track_Child instead of item.CS_Track_Child, i also changed (i,photo) to (i,item) Thank You for all the help. – user948354 Feb 16 '14 at 5:12

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