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I have a json_encode in my php script which seems to fail the Jquery side of things if the json_encode is called inside a while loop.

When i view the result in a browser window other than the page i need the result in i can see that it does actually does work.

For example:

while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data = array("id" => $id,
    "title" => $title,
    "success" => true
    );
echo json_encode($data); // Inside the While Loop

}

and the output in the browser is:

{"id":"15","title":"Advanced Booking Examples","success":true}
{"id":"14","title":"Advanced Booking Fields","success":true}
{"id":"11","title":"Add New Driver","success":true}
{"id":"10","title":"Registering a Driver \/ Add New Vehicle","success":true}
{"id":"8","title":"Dispatch Controls","success":true}
{"id":"7","title":"Troubleshooting Driver Device Checklist","success":true}
{"id":"6","title":"Requirements Checklist","success":true}

In the jQuery response this is actually blank but if I leave the echo json_encode($data); just outside the while loop the jQuery picks up the response, however only 1 record - being the last record in the loop.

I need the jQuery to pick up all results from the loop.

Here's the JS

$.ajax({ // Send it off for prcessing
        type: "POST",
        dataType: 'json',
        url: "includes/auto_suggest.php",
        data: {
            q: inputString
        },
        success: function (result) {
            if (result.success) {             
                var id = result.id;
                var title = result.title;                    
                $('#auto_id').append("<input type='text' class='hideid' id='hideid_" + id + "' value='" + id + "'/>");              
        $('#auto_title').prepend("<p>" + title + "</p>");
            }
        }
    });

Any ideas?

Thanks in advance

share|improve this question
2  
This is not one json object. You have to change your data structure to one JSON object. You can put all of them in an array. –  Tooraj Jun 7 '12 at 18:35
    
Thanks to all for the great responses, much appreciated –  Woz Jun 7 '12 at 18:47
add comment

8 Answers

up vote 6 down vote accepted

JSON needs to all be on one array or object. You need to append each row to an array, then json_encode that.

$data = array();
while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data[] = array(
      "id" => $id,
      "title" => $title,
      "success" => true
    );
}
echo json_encode($data);

Then in JavaScript, you will have an array of objects, that you can loop through.

$.ajax({ // Send it off for prcessing
    type: "POST",
    dataType: 'json',
    url: "includes/auto_suggest.php",
    data: {
        q: inputString
    },
    success: function (result) {
        $.each(result, function(){
          if (this.success) {
            var id = this.id;
            var title = this.title;
            $('#auto_id').append("<input type='text' class='hideid' id='hideid_" + id + "' value='" + id + "'/>");
            $('#auto_title').prepend("<p>" + title + "</p>");
         }
        });
    }
});
share|improve this answer
    
Brilliant, thanks Rocket, good work –  Woz Jun 7 '12 at 18:47
    
You're welcome! :-) –  Rocket Hazmat Jun 7 '12 at 18:49
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Well, you are not sending valid JSON. Store the objects in an array and then json_encode that array after the loop.

$data = array();
while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data[] = array("id" => $id,
        "title" => $title,
        "success" => true
    );
}
echo json_encode($data);

You then need to change your JavaScript code to properly handle an array instead of an object. Since nobody here knows what exactly you intend to do you'll have to do that on your own or provide more information.

share|improve this answer
    
Thanks for the response ThiefMaster, much appreciated –  Woz Jun 7 '12 at 18:45
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You need to add the resulting data to an array and call json_encode once, like so:

$data = array();
while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data[] = array("id" => $id,
    "title" => $title,
    "success" => true
    );
}

echo json_encode($data);

This will change your outputted JSON (since currently your JSON is invalid), which you now have to loop over in your jQuery callback.

share|improve this answer
    
Thanks for the response Nickb, much appreciated –  Woz Jun 7 '12 at 18:46
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The JSON that gets returned when that line is inside the loop isn't valid as a whole. It's multiple JSON strings together. You would need to split them up.

I would make an array and inside the loop add each $data to that array. Then, outside of the loop, json_encode it and echo it. This will create one JSON string to return to your javascript.

share|improve this answer
    
Thanks for the response Sachleen, much appreciated –  Woz Jun 7 '12 at 18:47
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Perhaps...

$data = array();
while( WHATEVER ){
    // other code
    $data[] = array('id' => $id, 'title' => $title, 'success' => true);
}

echo json_encode($data);

Store all your information in one array, then encode that array.

share|improve this answer
    
Thanks for the response Marcus, much appreciated –  Woz Jun 7 '12 at 18:46
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You can't pass multiple objects like that to jQuery. Put the in array and print the array of objects when the while loop is done.

share|improve this answer
    
Thanks for the response Vahur, much appreciated –  Woz Jun 7 '12 at 18:46
add comment

You need to encode json outside the while loop. it will return single json, which is actually correct

while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data[] = array("id" => $id,
    "title" => $title,
    "success" => true
    );


}
echo json_encode($data); 
share|improve this answer
    
Thanks for the response Moyed, much appreciated –  Woz Jun 7 '12 at 18:46
add comment

Your JSON output is not valid. Try this complete code (EDIT):

$result = Array();
while ($row = mysql_fetch_array($result)) {     
    $id = $row['id'];
    $title = $row['title'];
    $content = $row['content'];

    $data = array("id" => $id,
        "title" => $title,
    );
    $result[] = $data;
}
echo json_encode(Array('data'=>$result,'success'=>true)); // Outside the While Loop

And in your javascript code

$.ajax({ // Send it off for prcessing
        type: "POST",
        dataType: 'json',
        url: "includes/auto_suggest.php",
        data: {
            q: inputString
        },
        success: function (results) {
            if (results.success) {
                for(var i in results.data) {
                    var result = results.data[i];             
                    var id = result.id;
                    var title = result.title;                    
                    var $newfield = $("<input type='text' class='hideid' id='hideid_" + id + "' value='" + id + "'/>");              
                    $newfield.prepend("<p>" + title + "</p>");
                    $('#auto_title').append($newfield);
                }
            }
        }
    });
share|improve this answer
    
Your JavaScript won't work. result will be an array, not an object. You need to loop over result. –  Rocket Hazmat Jun 7 '12 at 18:37
    
@Rocket whops... I forgot it... I'm editing –  chumkiu Jun 7 '12 at 18:45
    
Thanks for the response Chumkiu, much appreciated –  Woz Jun 7 '12 at 18:46
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