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mysql_fetch_array() expects parameter 1 to be resource, boolean given in select
PHP error: mysqli_num_rows() expects parameter 1 to be mysqli_result, boolean given

Warning: mysqli_num_rows() expects parameter 1 to be mysqli_result, boolean given in [absolute path to file] on line 120

Line 120 of file=

    $numrows = mysqli_num_rows($result);

The REALLY puzzling thing is that when I run the page and query on my localhost computer (PHP 5.4.7; MySQL 5.5.27) it runs fine and returns a list, just as it should. It's only when the files are transferred to and run on the remote server (PHP 5.2 or 5.4, MySQL 5.0 - 1and1.com) that it fails to run (I have changed all the database accesses and passwords!).

I'm sure it's something simple and stupid, but I'm at a loss! Assistance would be appreciated!!

Code is below.

Thank you!!

    <?php
    error_reporting(E_ALL);
    ini_set( 'display_errors','1'); 

    if (isset($_POST['submitted'])) {

    // connect to database
    include('../connect.php');

    $category = $_POST['category'];
    $criteria = $_POST['criteria'];
    $query = "SELECT * FROM erstallions WHERE $category LIKE '%".$criteria."%'";
    $result = mysqli_query($dbcon, $query);
    $numrows = mysqli_num_rows($result);


 // If the query has results ...
 if ($numrows > 0)
 {
     // ... print out a header
     if ($criteria == '')
     {
     print "<br /><center><font size=\"+2\"><b>Stallion Listing</b></font></center><br>";
     }
     else
     {
     print "<center><font size=\"+2\"><b>Information about the stallion '$criteria'<br>(Frozen by <i>Equine-Reproduction.com LLC</i>)</b></font></center><br>";
     };

     // and start a <table>.
     print "\n<table width=\"100%\" border=\"1\" align=\"center\">\n<tr>" .
           "\n\t<th>Stallion Name</th>" .
           "\n\t<th>Owner</th>" .
           "\n\t<th>Breed</th>" .
           "\n\t<th>Reg. Number</th>" .
           "\n\t<th>Birth Date/Year</th>\n</tr>";

     // Fetch each of the query rows
     while ($row = mysqli_fetch_array($result, MYSQLI_ASSOC)) 
     {
        // Print one row of results
          print "\n<tr>\n\t<td><a href=\"StallionDetails.php?StallionName={$row["StallionName"]}\" target=\"_blank\">{$row["StallionName"]}</a></td>" .
          "\n\t<td>{$row["OwnerName"]}</td>" .
          "\n\t<td>{$row["StallionBreed"]}</td>" .
          "\n\t<td>{$row["StallionRegNo"]}</td>" .
          "\n\t<td><center>{$row["DoB"]}</center></td>\n</tr>";
     } // end while loop body

     // Finish the <table>
     print "\n</table>";
 } // end if $rowsFound body

 // Report how many rows were found
          print "<center>{$numrows} record(s) found matching your criteria</center><br>";


    } //End of main if statement

    ?>
share|improve this question

marked as duplicate by mario, Madara Uchiha, John Conde, Jocelyn, hakre Jan 6 '13 at 23:32

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.

    
SQL injection, check mysql_error(), and all the duplicates for the error message itself. –  mario Jan 6 '13 at 23:06
    
Welcome to Stack Overflow! Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  Madara Uchiha Jan 6 '13 at 23:07
1  
@MadaraUchiha Those are mysqli_*() not mysql_*(). (understand the impulse though) –  Michael Berkowski Jan 6 '13 at 23:09
    
While you are using mysqli instead of the soon-deprecated mysql extension, you are getting none of the security benefits and you're still vulnerable to SQL injection. Start reading about prepared statements –  Michael Berkowski Jan 6 '13 at 23:10
1  
this question shouldn't be closed. But who cares on the site of automated answers. –  Your Common Sense Jan 6 '13 at 23:33

1 Answer 1

Please revise your code here:

     $query = "SELECT * FROM erstallions WHERE $category LIKE '%".$criteria."%'";

It should be

         $query = "SELECT * FROM erstallions WHERE category LIKE '%".$criteria."%'";
share|improve this answer
    
$category is a variable from $_POST. –  Michael Berkowski Jan 6 '13 at 23:12
    
As noted by Michael, the $category was correct - although just to see if it did make a difference I tried removing the $ anyway. It didn't!! :) –  user1953595 Jan 7 '13 at 0:57

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