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I'm trying to calculate the number of students who've completed an their homework for an online gradebook, and I can't figure the code out...

    // SELECT THE TOTAL
$gettotal = "SELECT enroll FROM student_course WHERE classID = $classID";
$showtotal = @mysqli_query ($dbc, $gettotal); // Run the query.

//THIS IS LINE 108
$numtotal = mysql_num_rows($showtotal);

echo '$numtotal';

// SELECT THOSE PASSED
$getpassed = "SELECT entry FROM grades WHERE classID = $classID AND test_result >= 80";
$showpassed = @mysqli_query ($dbc, $getpassed); // Run the query.

$numpassed = mysql_num_rows($showpassed);

//THIS IS LINE 117
echo '$numpassed';

        // PERFORM THE PERCENTAGE FUNCTION

        function percent($numpassed, $numtotal) {
            $count1 = $numpassed / $numtotal;
            $count2 = $count1 * 100;
            $count = number_format($count2, 0);
            echo $count;
        }

//THIS IS LINE 124
        percent($numpassed, $numtotal);

I get the following error:

Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource on line 108 $numtotal Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource on line 117 $numpassed Warning: Division by zero in on line 124 0

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2  
You shouldn't be using @ to suppress errors. –  meagar Mar 3 '11 at 15:09
    
The queries are probably failing. Also, why are you using echo '$variable'? That will print the literal $variable. Do echo $variable (no quotes) instead. –  NullUserException Mar 3 '11 at 15:17
    
if(Death of developer == @) { echo "condition is always true no else part needed"; } remove it please please –  Framework Mar 3 '11 at 15:18
    
let me know why are you using @ as it is death of developer and if you dont want to show errors, off the errors in production environment –  Framework Mar 3 '11 at 15:25

3 Answers 3

Okay - while I thank everyone for their concern removing the @ ... no one noticed that the problem was using mysqli_query and then mysql_num_rows. It needed to be changed to mysqli_num_rows.

Thanks though :)

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Chances are the query has failed.

Also mysql_query will return FALSE on error so you can check for that.

$result = mysql_query('SELECT * WHERE 1=1');
if (!$result) {
    die('Invalid query: ' . mysql_error());
}

Btw: You might want to remove the @ operator before mysql_query so you see if something goes wrong there.

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Remove error suppression (@) in your code and use inspection methods print_r($var) and var_dump($var) to verify the returned database call values.

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