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Possible Duplicate:
mysql_fetch_array() expects parameter 1 to be resource, boolean given in select

Following is my simple search query but It's show

Warning: mysql_num_rows() expects parameter 1 to be resource, boolean given in 
C:\xampp\htdocs\project\p\answer.php on line 52
No Result Found 

52 Lines:

$numserach = mysql_num_rows($search_sql);

Php Code:

$search_sql = mysql_query("SELECT * FROM questions WHERE q_name LIKE %$search%");
            $numserach = mysql_num_rows($search_sql);

            if($numserach == 1)
            {
                echo $numserach. "Result found";
            }
            else
            {
                echo "No Result Found";
            }

Thanks:)

marked as duplicate by casperOne Aug 9 '12 at 12:35

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  • 3
    1. var_dump("SELECT * FROM questions WHERE q_name LIKE %$search%"); 2. google for "sql injections" 3. stop using mysql_query and use PDO/mysqli instead – zerkms Jul 2 '12 at 5:21
  • OK @zerkms, Thanks.. – Shibbir Jul 2 '12 at 5:23
  • use single quotes around the like parameter. SELECT * FROM questions WHERE q_name LIKE '%$search%' – Ahamed Mustafa M Jul 2 '12 at 5:23
  • OH Thanks...@AhamedMustafaM. It's working.... – Shibbir Jul 2 '12 at 5:25
5

You have error in your query, use single quotes to enclose your LIKE query part like this:

"SELECT * FROM questions WHERE q_name LIKE '%$search%'"

Since you had an error, $search_sql didn't resolve to sql result resource and mysql_num_rows showed you an error because of that.

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