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Here is my code :

$sql1 = 'SELECT * FROM login WHERE age= "$age", town = "$town" and ID != "$id"';
$result1 = mysql_query($sql1);
$numResults1 = mysql_num_rows($result1);

My variables are fine, they have data in them. The error is this :

Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in.....

There is a possibility that numResults could equal 0 but it still should not cause this.

Could it be the != in the first line that is causing it??

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!= and <> are both valid MySQL not equal operators. –  Dirk Jul 24 '11 at 19:32
3  
I don't like that your SO username is an advertisement. –  Lightness Races in Orbit Jul 24 '11 at 19:40
    
You can see MySQL errors if you change the second line to $result1 = mysql_query($sql1) or die( mysql_error() ); –  Juhana Jul 24 '11 at 19:41
1  
@Backslap, try accepting more answers. –  Mike Jul 24 '11 at 20:49
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3 Answers

The problem is you have a bad SQL query:

$sql1 = 'SELECT * FROM login WHERE age= "$age", town = "$town" and ID != "$id"';

Note the improper , after age = "$age" in the WHERE clause. It should be something like:

$sql1 = "SELECT * FROM login WHERE age= '$age' AND town = '$town' and ID != '$id'";
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Why should you use single quotes? –  Lightness Races in Orbit Jul 24 '11 at 19:38
    
Actually, the quotes don't matter to mysql - it is php that doesn't replace $var with the value when enclosed in single quoted-strings. –  Inca Jul 24 '11 at 19:41
    
I thought you had to, but I see you don't. –  Dirk Jul 24 '11 at 19:42
    
The problem is not that he's using double quotes in his MySQL (see dev.mysql.com/doc/refman/5.1/en/string-syntax.html); the problem is that variables within single quotes are not evaluated by PHP. –  Mike Jul 24 '11 at 19:43
1  
Your previous answer was correct and you have now made it incorrect. What was wrong was your statement saying that MySQL doesn't accept double quotes. Now you are misusing quotes and the variables $age, $town and $id will not be evaluated by PHP. –  Mike Jul 24 '11 at 19:54
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Your query has a syntax error. Check $result1 before attempting to use it; print mysql_error() when it's FALSE. You'll be told what the problem is.

Also, your use of single quotes for the SQL query string means that variable interpolation will not occur... so you are unlikely to ever get rows returned.

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You're getting your single and double quotes mixed up. Make all single quotes double quotes and vice versa.

Try echoing $sql1 to see what I mean

There is a possibility that numResults could equal 0 but it still should not cause this.

No. It means you have a problem with your SQL.

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I'm not, its fine –  Niall Jul 24 '11 at 19:36
1  
Seriously, you are. $var = 3; echo '$var'; will echo literally $var instead of 3. –  Mike Jul 24 '11 at 19:39
1  
@Backslap: Why do you say that? (a) Yes, you do; (b) Your code doesn't even check. –  Lightness Races in Orbit Jul 24 '11 at 19:39
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