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I have no idea what's wrong with the follow &sql select statement. TABLE_PREFIX is perfectly fine. If I echo $content['content_id'] on the line before the $sql it returns the proper value.

$sql = "SELECT UNIX_TIMESTAMP(release_date) FROM ".TABLE_PREFIX."content WHERE content_id='".$content['content_id']."'";
$result= mysql_query($sql, $db);
$row = mysql_fetch_assoc($result);
echo $row['release_date'];

I've even tried specify $content['content_id'] by replacing it with "2" which is a valid content_id. Why do I keep getting Warning: mysql_query(): supplied argument is not a valid MySQL-Link resource in...?

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marked as duplicate by Andy Lester, RAS, zhangyangyu, Vamsi Krishna B, Sergio Aug 9 '13 at 11:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

show us what's in $db – Matías Aug 9 '13 at 1:49
You should be checking the value of $result after querying the database, if $result is FALSE you should check the output of mysql_error(). – Carl Groner Aug 9 '13 at 1:49
You are leaving yourself wide open to SQL injection. Please learn about using parametrized queries, preferably with the PDO module, to protect your web app. has examples to get you started. – Andy Lester Aug 9 '13 at 3:17

2 Answers 2

This means u have not connected to the MySql server before your query. Google mysql_connect Also, u want to move away from mysql_* functions and use mysqli_* functions or PDO

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Turns out I needed to use $this->db instead of $db.

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