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I'm getting this error

Warning: mysql_result(): supplied argument is not a valid MySQL result resource in /#####/######/######/#####/###################/########/somewebsite.com/func.inc.php on line 16
http://somewebsite.com/63fghZ <- Output that I want and output that should work.

Here's the function:

function code_exists($code) {
  $code = mysql_real_escape_string($code);
  $code_exists = mysql_query("SELECT COUNT(`url_id`) FROM urls WHERE `code`='$code' LIMIT 1");
  return (mysql_result($code_exists, 0) == 1) ? true : false;
}

The second last line (return, etc, etc) is line 16.

I have no idea what's going on, this error never came up when I was testing this in localhost. Please help!

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marked as duplicate by thecodeparadox, Fluffeh, andrewsi, M Khalid Junaid, CRABOLO Jul 2 '14 at 1:56

This question was marked as an exact duplicate of an existing question.

2  
please put an echo mysql_error(); just before the return statement. then tell us what it says. – tobyodavies Jul 26 '11 at 15:09
    
Ahaha! It said no database selected. That's why I hate porting stuff from localhost to public servers. Thanks! – Hugo Jul 26 '11 at 15:13

Expanding on my comment for future readers - always check for errors after calling mysql_query and make sure you have correct credentials and have selected a database

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