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I am getting the error: Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in.... on line ..

Please can you tell me what I am doing wrong to cause this. I don't believe that I am.

        if (mysql_num_rows(mysql_query("SELECT * FROM Likes WHERE `postID` = '$postID' AND `userID` = '$accountID'")) < 1) {
            exit("Cant like a post twice");
        }
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mysql_query returns boolean FALSE if the query causes an error for ANY reason. Passing its results to mysql_num_rows will cause this error as num_rows expects a statement handle, but is getting that error condition FALSE instead. –  Marc B Jun 5 '11 at 23:40

4 Answers 4

up vote 2 down vote accepted

you can also simplify your sql by selecting the count directly from the database, which is more efficient then selecting all the rows, and then calculating the count

$res = mysql_query("SELECT COUNT(*) FROM Likes WHERE 
                      `postID` = '$postID' AND `userID` = '$accountID'");

// check for mysql errors
if (mysql_error()) {
    die(mysql_error());
}

list($count) = mysql_fetch_row($res);
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As advised by yes123, mysql_error() will give you the reason. Two comments however:

  • You shouldn't use mysql_num_rows() to count a result set. Instead, issue a SELECT COUNT(*) and check the returned value. This is way more efficient.

  • There is a better solution for your specific problem: just add a UNIQUE key to the (postID, userID) fields, and you can skip this test. Instead, just try to INSERT your new record, and check the mysql_errno() value after that. If it returns 0, then the insert worked; if it returns 1062 (ER_DUP_ENTRY), the insert failed because a similar record already exists.

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Never nest call like that.

Run before a

mysql_query("SELECT * FROM Likes WHERE 
                      `postID` = '$postID' AND `userID` = '$accountID'") 
or die(mysql_error());

to check what is the error.

To check for errors I prefer this notation (as stated in the comment)

   $res= mysql_query("SELECT * FROM Likes WHERE 
                          `postID` = '$postID' AND `userID` = '$accountID'");

   if(!is_resource($res))
     die(mysql_error());
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6  
This ugly or die() error handling needs to die. Or actually, the mysql_* functions need to die - at least unless they are used with a proper wrapper. –  ThiefMaster Jun 5 '11 at 23:00
    
@thief +1. I never use that. I just used here because is short –  dynamic Jun 5 '11 at 23:01

First I hope you have correctly escaped your $postID and $accountID in your query as if not you open a big door to SQL injection.

Then you should check the result of your query before putting it directly in the mysql_num_rows. I suppose you have an error in you query (or connection) and then you end up to call mysq_num_rows(false). Try to check if there's an error returned by your query with mysql_error. Does this give you any more information ?

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