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I'm getting an [object object] from my ajax response.

        $.ajax({
            type: "GET",
            data: "id_1="+id_1+"&id_2="+id_2,
            url:"ajax/url.php"
        }).done(function(data){
            var left= $(data).find("#left");
        $("#left").html(left);
            alert(left);


        });

In my url, I just have a simple coding

if(isset($_GET["id_1"]) && isset($_GET['id_2'])){
    $id_1 = $_GET["id_1"];
    $id_2 = $_GET['id_2'];

    $right= $dbh->prepare("SELECT COUNT(*) FROM table WHERE id_1 = ?");
    $right->execute(array($id_1));
    $left= $dbh->prepare("SELECT COUNT(*) FROM table WHERE id_1 = ? ");
    $left->execute(array($id_2));


    <div id='right'><?php echo $right->fetchColumn();?></div>

    <div id='left'><?php echo $left->fetchColumn();?></div>



}

When I this is all done, it alerts back [object object]

anyone know why it does that?

Thanks!

EDIT:

I added some coding in the .done(function())

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5 Answers

data is an object. [object Object] is just the object's toString() response.

You need to access the object's data. Try using console.log(data) to check its contents.

It looks like from your PHP example that you have not provided the code as is. The code you posted will be a syntax error.

Also, check the MIME type of your response. You may want to force the dataType as html.

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2  
+1 Because console.log() is your best friend. –  msanford Mar 28 '12 at 4:00
1  
Everyone should be forced to read SSCCE before posting a question on SO –  Phil Mar 28 '12 at 4:01
1  
make sure to strip your code of all console.log() before you publish though because IE gets stuck on it. I've spent hours debugging only to find I left a console.log() hanging out in my code... –  VictorKilo Mar 28 '12 at 4:04
1  
@JoshV.K. Quick-and-dirty console = console || { log: function(msg) { alert(msg); } }. It's a very basic implementation and doesn't support 1% of the features but the idea is there :) –  alex Mar 28 '12 at 4:15
1  
andrew, have you not tried console.log yet? it will give you an array of objects which you can use to reference any of the objects. Just try console.log(left);. What does it pop out? –  VictorKilo Mar 28 '12 at 4:22
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up vote 1 down vote accepted

I Have solved my problem. The issue was that I needed to wrap my div's within another . After that the find() method would be able to capture those id's and return the proper objects.

if(isset($_GET["id_1"]) && isset($_GET['id_2'])){
    $id_1 = $_GET["id_1"];
    $id_2 = $_GET['id_2'];

    $right= $dbh->prepare("SELECT COUNT(*) FROM table WHERE id_1 = ?");
    $right->execute(array($id_1));
    $left= $dbh->prepare("SELECT COUNT(*) FROM table WHERE id_1 = ? ");
    $left->execute(array($id_2));

<div> // wrapper
    <div id='right'><?php echo $right->fetchColumn();?></div>

    <div id='left'><?php echo $left->fetchColumn();?></div>
</div>



}
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You are getting an object back, and not a simple string... It looks like "data" would contain the response from your page "url.php" What are you trying to do with "data" in your real app? I am assuming the alert is just a debug measure?

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Hook up a JS debugger (in a browser) to see what you have to work with here :-) –  TGH Mar 28 '12 at 4:01
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Where are you creating your JSON response? I assume it's the fetchColumn() method. Double-check to make sure that you're preparing with json_encode() properly...

What do you get when you dump everything?

var_dump( $right );
var_dump( $down );
var_dump( $right->fetchColumn() );
var_dump( $down->fetchColumn() );
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Try ..

$response = "";
$response .="<div id='right'>".$right->fetchColumn()."</div>";
$response .="<div id='down'>".$down->fetchColumn()."</div>";

echo $response;exit;
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