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PHP (MySQL) error : “Warning: mysql_num_rows() expects parameter 1 to be resource”

I've been getting an annoying error with my code..

48. mysql_select_db("serverip_gamepwn", $con);
49. $username_session = $_COOKIE['GamePwN_LOL_Username'];
50. $username_session = mysql_real_escape_string($username_session);
51. $result = mysql_query("SELECT * FROM orders WHERE username='$username_session'");
52. $count = mysql_num_rows($result);
53. if($count != 1){

The error code is:

Warning: mysql_num_rows() expects parameter 1 to be resource, boolean given in /home/serverip/public_html/gamepwn.net/lol/status.php on line 52
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marked as duplicate by Alok Save, Book Of Zeus, casperOne Jan 30 '12 at 15:29

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.

    
There doesn't appear to be any syntax problem with your query (unless the table or column don't exist). You probably had an error in your mysql_connect() call or no permission to use the database selected. –  Michael Berkowski Jan 28 '12 at 13:18

3 Answers 3

Replace

$count = mysql_num_rows($result);

with

$count = mysql_num_rows($result) or die(mysql_error());

and see what it says

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It's more normal to add the or die() statement on the same line as mysql_query, isn't it? I'm not sure your suggestion will have the intended behaviour. –  grahamparks Jan 28 '12 at 14:35
    
Thanks! This helped a ton. –  anonymous Apr 26 '12 at 23:17

$result is no valid Resultset, probably your query contains a syntax error and therefore the result became false. You can fetch the error-message via mysql_error()

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//use this way it will workout 

$result = mysql_query("SELECT * FROM orders WHERE username= '".$username_session."'");

$count = mysql_num_rows($result);

//now the count will be one

if($count != 1){
}else{
}
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