Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have problem with mysql_num_rows() function. I've checked query (it has proper syntax and I'm getting the result in sql) and connection to database and everything seems to be able to work.

// some code here, connecting to database and working query to db
$query = "SELECT FROM ff_order, ff_client WHERE = '$order_number' AND ff_order.client_id = AND = '$email'";
if (!$result = mysqli_query($db, $query))   {
    echo '<p>Query wasn\'t found.</p>';
if (!$num = mysql_num_rows($result)) {   // < the problem
    echo 'error';
if ($num == 0) {
    echo '<p>Insert proper email address.</p>';
    $_SESSION['crazyfotoApp']['token'] = $order_number;
    $_SESSION['crazyfotoApp']['multiformat'] = 1;

I got this result:

Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in /mnt/sda3/www/ on line 37
Insert proper email address.
share|improve this question
You may want to remove "[php][mysql]" from the title. The post is tagged correctly though... :) – Jakob Gade Aug 14 '09 at 9:46

3 Answers 3

up vote 4 down vote accepted

try mysqli_num_rows instead of mysql_num_rows

share|improve this answer

That's because $result is only known inside the first if-statement. You need to break it out and make it "globally" accessable.

Also, if the $result fails, you will get that error, so you need to nest your sub-ifs inside if(!$row =....

share|improve this answer
I don't think that is the case with the scope of $result - even though I wish it was with PHP sometimes - it should be scoped for the whole function, despite being inside the if. – Meep3D Aug 14 '09 at 9:42

What does mysql_error(); say? What does var_dump(); say when you check $result? var_dump($result);

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.