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I'm sure some of you are tired of my posts since they seem to be pretty basic but I've run into a similar problem with "mysql_result()". My code keeps outputting this error:

Warning: mysql_result() expects parameter 1 to be resource, boolean given in C:\Program Files (x86)\EasyPHP-5.3.9\www\Image Upload\func\user.func.php on line 10

when I've checked for backticks being in the right spot..I don't see where my error could be..here's the code:

function login_check($email, $password){
       $email = mysql_real_escape_string($email);
       $login_query = mysql_query("SELECT COUNT (`user_id`) as `count`, `user_id` FROM `users` WHERE `email` = '$email' AND `password` = '".md5($password)."'");
       return (mysql_result($login_query, 0) == 1) ? mysql_result($login_query, 0, '$user_id') : false;
}

Here is line 10:

return (mysql_result($login_query, 0) == 1) ? mysql_result($login_query, 0, '$user_id') : false;

Thanks for all the patience and help! -TechGuy24

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echo mysql_error(); PS: you don't need COUNT(...) there. Just check if there is a user_id in a response –  zerkms Aug 29 '12 at 4:23
    
1. Use PDO or MySQLi. 2. Use prepared statements, *_escape_string can be worked around. 3. Use Try-Catch-Throw. (example: if(!$conn) throw new Exception('Could not connect to the database server!');) –  uınbɐɥs Aug 29 '12 at 5:18
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closed as too localized by Jocelyn, Ocramius, cryptic ツ, hjpotter92, Tikhon Jelvis Apr 28 '13 at 6:45

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3 Answers

Syntax error:

$login_query = mysql_query("SELECT COUNT (`user_id`) as `count`, `user_id` FROM `users` WHERE `email` = '$email' AND `password` = '".md5($password)."'");
                                                        ^--   ^--

backticks are used to escape reserved words in field/table specifications. an as alias does not need to be escaped, as it's obviously not a field/table name.

You are also using an aggregate function, count(), but also selecting non-aggregate fields (user_id), without a group by clause, so mysql will complain about that too.

If your code was structure as follows:

$result = mysql_query($sql) or die(mysql_error());
                           ^^^^^^^^^^^^^^^^^^^^^^

you'd see the syntax error messages. Never assume a query has suceeded. ALWAYS check for errors. Even if your SQL syntax is 100% perfect, there's far too many other reasons for failure to not check.

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It looks like there was an error in executing the SQL statement mysql_query only returns a resource on success. On error, it returns false (see PHP Manual on mysql_query). That explains the error, since you are calling mysql_result with the values false as the first parameter.

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Sorry about the duplicate answer on this post. Deleting it now. –  Andrew Aug 29 '12 at 4:57
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As zerkms said, you don't need COUNT.

The problem: COUNT doesn't like spaces between it and the parentheses, so:

COUNT (

should be

COUNT(

EDIT:

This should work better:

SQL:

SELECT `user_id` FROM `users` WHERE `email` = '<email>' AND `password` = '<hash>'

PHP:

$result = mysql_query($query);
$login = mysql_result($result);
if(mysql_num_rows($result) == 0) return false;
return $login['user_id'];

By the way, you are at risk of...

SQL INJECTION    *------==========[');SQL--|----]=====0

You should use MySQLi or PDO, with prepared statements.

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I took out the space in between count that was there..now I'm getting this error: "Warning: mysql_result() [function.mysql-result]: $user_id not found in MySQL result index 11 in C:\Program Files (x86)\EasyPHP-5.3.9\www\Image Upload\func\user.func.php on line 10" ... What am I doing wrong? –  TechGuy24 Aug 29 '12 at 4:40
    
@TechGuy24 Try taking out the backticks around user_id, and see if that works. –  uınbɐɥs Aug 29 '12 at 5:04
    
no difference, same error –  TechGuy24 Aug 29 '12 at 5:07
    
@TechGuy24 What about SELECT COUNT(`user_id`), `user_id` AS `count`, `user_id` FROM ...? –  uınbɐɥs Aug 29 '12 at 5:10
    
didn't do anything. I still have that error. –  TechGuy24 Aug 29 '12 at 5:22
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