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Error:

Fatal error: Call to a member function bind_param() on a non-object in /var/www/web55/web/pdftest/events.php on line 76

Code:

public function countDaysWithoutEvents(){		
	$sql = "SELECT 7 - COUNT(*) AS NumDaysWithoutEvents
			FROM    
			(SELECT d.date 
				FROM cali_events e
				LEFT JOIN cali_dates d
				ON e.event_id = d.event_id
				WHERE YEARWEEK(d.date) = YEARWEEK(CURRENT_DATE())
				AND c.category_id = ?
				GROUP BY DAY(d.date)
			) AS UniqueDates";

	$stmt = $this->link->prepare($sql);
	$stmt->bind_param('i', $this->locationID);
	$stmt->execute();

	$stmt->bind_result($count);
	$stmt->close();

	return $count;
}

$this->link->prepare($sql) creates a prepared statement for MySQLi.

Why am I getting this error?

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2  
try doing a var_dump($stmt) before the bind_param() –  Flavius Stef Jun 5 '09 at 20:47
    
bool(false) ... Odd. –  Malfist Jun 5 '09 at 20:49
    
On a different note, the bind_param() should have 1 as its first parameter. –  Flavius Stef Jun 5 '09 at 21:06
    
@Flavius: No, it should have the type as the first parameter as documented here: us2.php.net/manual/en/mysqli-stmt.bind-param.php –  Powerlord Jun 5 '09 at 21:15
    
possible duplicate of Call to a member function on a non-object, mysqli why does this happens?... –  outis Dec 23 '11 at 7:40

3 Answers 3

up vote 3 down vote accepted

AND c.category_id = ? - there is no table alias c in your query.

Besides that try

$stmt = $this->link->prepare($sql);
if (!$stmt) {
  throw new ErrorException($this->link->error, $this->link->errno);
}

if (!$stmt->bind_param('i', $this->locationID) || !$stmt->execute()) {
  throw new ErrorException($stmt->error, $stmt->errno);
}
share|improve this answer
    
+1: I didn't notice c was missing when I read through it. Whoops. –  Powerlord Jun 5 '09 at 21:17
    
The query has a certain "smell" anyway, at least it seems suboptimal if not wrong ;-) –  VolkerK Jun 5 '09 at 21:27
    
AH! Duh! It should be e.category_id. headdesk –  Malfist Jun 8 '09 at 13:20

I think the problem is obviously with the prepare function..

The function is probably failing, in which case $stmt would be FALSE and hence not have the bind_param method as a member.

From the php mysqli manual:
mysqli_prepare() returns a statement object or FALSE if an error occurred.

Check your query! Maybe there is a problem with your SELECT statement. And also check for FALSE before trying to execute any member function on what you think is an object returned by the prepare function.

if($stmt === FALSE)
    die("Prepare failed... ");// Handle Error Here

// Normal flow resumes here
$stmt->bind_param("i","");



EDIT

I would suspect that the statement may be erroring out because of the sub-query:

SELECT d.date 
 FROM cali_events e
 LEFT JOIN cali_dates d
 ON e.event_id = d.event_id
 WHERE YEARWEEK(d.date) = YEARWEEK(CURRENT_DATE())
 AND c.category_id = ?
 GROUP BY DAY(d.date)

Instead, why don't you write your query like this:

public function countDaysWithoutEvents()
{
    $count = FALSE;

    $sql  = "SELECT COUNT(d.date) ";
    $sql .= " FROM cali_events e ";
    $sql .= "      LEFT JOIN cali_dates d ON e.event_id = d.event_id ";
    $sql .= " WHERE YEARWEEK(d.date) = YEARWEEK(CURRENT_DATE()) ";
    $sql .= "       AND c.category_id = ? ";
    $sql .= " GROUP BY DAY(d.date) ";

    $stmt = $this->link->prepare($sql);
    if($stmt !== FALSE)
    {                
        $stmt->bind_param('i', $this->locationID);
        $stmt->execute();
        $stmt->bind_result($count);
        $stmt->fetch();                    // I think you need to do a fetch
                                           // here to get the result data..
        $stmt->close();
    }else                                  // Or, provide your own error
        die("Error preparing Statement");  // handling here

    return (7 - $count);
}

P.S. I think you also had a missing a call to fetch as well.. (see example above)

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but the query executes fine in the console –  Malfist Jun 5 '09 at 20:51
    
well, that may be, but that doesn't mean that MySQLi can't complain about something. I know there are some limitations with executing MySQL code from PHP mostly for preventing SQL injection.. mostly regarding subqueries.. –  Miky Dinescu Jun 5 '09 at 20:54
    
mysqli->error is empty. –  Malfist Jun 5 '09 at 20:55
    
how can I correct it, that sub query really needs to be there. –  Malfist Jun 5 '09 at 20:58
    
see the latest code sample. Does that solve the problem? –  Miky Dinescu Jun 5 '09 at 21:06

$this->link->prepare this statement is not returning the object so it is giving you the error

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