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Here I have a simple php script which displays some values from a database in json format.

$source = $_GET['source'];

$query = mysql_query("SELECT * FROM images WHERE big_thumb = '" . $source . "'");

$results = array();

while($row = mysql_fetch_array($query))
{
   $results[] = array(
      'title' => $row['title'],
      'date' => $row['upload_date'],
      'time' => $row['upload_time']
   );
}

$json = json_encode($results);

echo $json;

This displays fine, heres an output example:

[{"title":"Torus","date":"2012-04-04","time":"23:06:14"}]

Then when an image is clicked this jquery is called:

var image_src = $(this).attr("alt"); // <= This works fine

    $.ajax({
        url: 'inc/get_image_details.php',
        data: {source : image_src},
        dataType: "json",
        success: function(data)
        {
            title = data.title;
            alert(title);

            date = data.date;
            alert(date);

            time = data.time;
            alert(time);
        }
    });

However, the (title, date & time) variables display as 'undefined' in the alert box. I've tried multiple ways of implementing the ajax call and the same thing happens every time. It is the first time I've tried it alright but I can't figure it.

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3  
Did you use a proper header for your PHP script? header('Content-Type: application/json'); – holodoc Apr 6 '12 at 16:06
up vote 10 down vote accepted

Your json string has an array format. You need to access the json object properties like this

title = data[0].title;
alert(title);

date = data[0].date;
alert(date);

time = data[0].time;
alert(time);

If you control the json format and an array is not necessary, use a json object with this format.

{"title":"Torus","date":"2012-04-04","time":"23:06:14"}

In this case you can keep your code as it is now.

share|improve this answer
    
Thats it alright. Thankyou Claudio. – loxyboi Apr 6 '12 at 16:11

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