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My js:

$('#select').change(function() {
    var name = $(this).val();
    $.ajax({
        type: "POST",
        url: "data/grab.php",
        data: { type: "hops", name: name },
        dataType: "json",
        success: function(data) {
                    alert(data);
            var aa = data['aa'];
            $('#hops-aa').val(aa);
        }
    });
});

grab.php

<?php

$type = $_POST['type'];
$name = $_POST['name'];

if ($type == 'hops') {
    $result = $name;
}

$result = json_encode($result);
return $result;

I added the alert() in the ajax call to double check what I'm getting back from the script, and it's always null. Anything I'm missing?

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3 Answers 3

up vote 3 down vote accepted

You need to actually echo or print the $result. In PHP using return from the file scope does not send the returned value to the output stream.

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Ahh, thanks. Forgot about this. –  MaxMackie Aug 26 '12 at 20:12

You use echo to print out the results in PHP, not return:

echo $result;
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(As previous answers stated) You need to echo/print the $result variable.

<?php

$type = $_POST['type'];
$name = $_POST['name'];

if ($type == 'hops') {
    $result = $name;
}

$result = json_encode($result);
echo $result; // return $result;
?>
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Not that, especially when using special output formats and not in the context of a template file, you should not use the PHP closing tag ?> –  ctrahey Aug 26 '12 at 20:16
    
Why is that? Does ?> output a newline? Forgive my ignorance - I've been out of the PHP game for a while. –  emurano Aug 27 '12 at 4:30
2  
Essentially, yes. It's simply a best-practice to avoid any data being given to the output buffer which is not explicitly sent there by the programmer. It's perfectly normal in templates (for obvious reasons) but in "pure-code" files, they are highly discouraged nowadays. Cheers! –  ctrahey Aug 27 '12 at 4:45

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