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I have been trying to rack my brains on this one for a while and the documentation on both MySQL and MySQLi is confusing me. Would it be possible to get any help?

I have a table called track_table and it contains two rows hash and track

    hash              |  track
    sdfsdfsdfsdfsdfsd |  Azelia Banks - 1991

I want to display the track name but I don't know how to. I have tried 'mysqli_fetch_assoc' and various other functions but nothing. Here is the query I have so far.

    $hash = $_GET['sub'];

    $check_track = "SELECT track FROM track_table WHERE hash = '.$hash.' ";
    $track_res = mysqli_query($mysqli, $check_track) or die (mysqli_error($mysqli));

    $result = mysqli_fetch_assoc($track_res);
    echo $result['track'];

I just want to be able to display the track name on a webpage.

I know I haven't implemented any security features and I'm taking data straight from the user, I shall do this later, once I have fixed this problem.

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2 Answers 2

up vote 1 down vote accepted

There's a problem with the string-literal . variable . string-literal part of your script.

if ( !isset($_GET['sub']) ) {
    die('missing paraemter sub');
}

$check_track = "
    SELECT
        track
    FROM
        track_table
    WHERE
        hash = '".mysqli_real_escape_string($mysqli, $_GET['sub'])."'
";
$track_res = mysqli_query($mysqli, $check_track) or die (mysqli_error($mysqli));

$result = mysqli_fetch_assoc($track_res);
if ( !$result ) {
    echo 'no such record';
}
else {
    echo $result['track'];
}
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I have tried your solution just now but its still failing to display the track name :( –  Greg Valantine Aug 20 '12 at 9:55
    
does it display anything? –  VolkerK Aug 20 '12 at 10:04
    
Appologies, just check my Apache logs and it was a problem with connecting to the database. Your solution works perfect now. Thanks a lot :) –  Greg Valantine Aug 20 '12 at 10:05

try this one

$hash = mysql_real_escape_string($_GET['sub']);

$check_track = "SELECT track FROM track_table WHERE hash = '.$hash.' ";
$track_res = mysql_query($check_track) or die (mysql_error());

$result = mysql_fetch_assoc($track_res);
print_r($result);

be sure about the names of table, column or input type. i hope it will help you.

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OP asked for mysqli –  rybo111 Dec 16 '13 at 20:29

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