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I have a query that works in phpmyadmin however does not work in my code! I have tried various variable dumps to see if I have been loosing data before the query is executed, all seems ok, the same variables contents I have used in the successful query in phpmyadmin

To test I replaced:

$account_id = $account->getAccountId(); //output below
string(2) "59" string(4) "main" NULL NULL array(2) { ["id"]=> NULL["name"]=>NULL}

With

$account_id = 59; //output below
int(59) string(4) "main" NULL NULL array(2) { ["id"]=> NULL ["name"]=> NULL }

below is the code extract and I am using mysqli:

        $account = $Add_Profile_Image->getUserAccount();
        $account_id = $account->getAccountId();
        $status = $account->getType();
        var_dump($account_id);
        var_dump($status);
        $conn = $this->create_connection('read');
        $stmt = $conn->prepare('SELECT add_profile_images.image_id, image_name FROM add_profile_images, users_profile_images WHERE users_profile_images.account_id=? AND users_profile_images.status=?');
        $stmt->bind_param('is',$account_id,$status);
        $stmt->bind_result($id,$imageName);
        $stmt->execute();
        var_dump($id);
        var_dump($imageName);
        $result['id'] = $id;
        $result['name'] = $imageName;

I have replaced

image_name //in the query

To

add_profile_images.image_name //in the query

but the result is still NULL?

So I have tried the following examples in this post: PHP Prepared Statement Returns -1 When I dump the mysqli object it does return -1 however when I implement the below no errors are shown!

if($conn->connect_error) {
            printf('connect error (%d) %s', $conn->connect_errno, htmlspecialchars($conn->connect_error));
                        die;
        }
        $stmt = $conn->prepare('SELECT add_profile_images.image_id, add_profile_images.image_name FROM add_profile_images, users_profile_images WHERE users_profile_images.account_id=? AND users_profile_images.status=?');
        if ( false===$stmt ) {
            printf('prepare failed: %s', htmlspecialchars($conn->error));
            die;
        }

        $rc = $stmt->bind_param('is',$account_id,$status);
        if ( false===$rc ) {
            printf('bind_param failed: %s', htmlspecialchars($stmt->error));
        die;
        }

        $rc= $stmt->execute();
        if ( false===$rc ) {
                printf('execute failed: %s', htmlspecialchars($stmt->error));
                die;
        }
        $rc = $stmt->bind_result($id,$imageName);
        if ( false===$rc ) {
                printf('bind_result failed: %s', htmlspecialchars($stmt->error));
                die;
        }

Where am I going wrong?

Hope someone can help!

Thanks

share|improve this question
    
What do you mean when you say the prepared statement returns NULL? Does the $mysqli->prepare() return NULL? Or are $id and $imageName NULL after $mysqli->execute()? –  Ryan P Mar 14 '12 at 14:28
    
after the execute the bind parameters are NULL when they should be $id=(int) and $imageName = (String) –  Alan Mar 14 '12 at 14:32
    
Have you verified that your query does return results? I think you may have some issues with your query anyway. You do an INNER JOIN on two tables, but never specify any join conditions. Did you intend to match every record in add_profile_images with every record in users_profile_images? There's nothing wrong with doing that if that's what you want, I'm just making sure you actually intended those results. –  Ryan P Mar 14 '12 at 14:35
    
yes the image id (Pk) is referenced as the (FK) in users_profile_images the users_profile_images has a compound key with account_id and image_id. Is this a bad idea? –  Alan Mar 14 '12 at 14:42
    
Defining a foreign key doesn't cause your joins to automatically match those fields - it's meant as a way to ensure data integrity. If you want to match rows in your tables on that foreign key relationship, you need to specify it. Something like this: FROM add_profile_images JOIN users_profile_images USING( image_id ) –  Ryan P Mar 14 '12 at 14:46

1 Answer 1

up vote 5 down vote accepted

You need to state $stmt->bind_result() AFTER $stmt->execute() (see: http://php.net/manual/en/mysqli-stmt.bind-result.php)

share|improve this answer
1  
Nice find. Also, Alan needs to fetch the data after calling bind_result(). $stmt->bind_result() specifies where to put the data, but you still need to call $stmt->fetch() until it returns null. See Example #1 on the linked page. –  Ryan P Mar 14 '12 at 14:48
    
Thanks for the suggestion Jam6549, when testing for errors I moved bind_result under execute, result still NULL –  Alan Mar 14 '12 at 14:48
    
Thanks I have added while ($stmt->fetch()) { $result['id'] = $id; $result['name'] = $imageName; } @jam6549 and Ryan P Thanks for the link! –  Alan Mar 14 '12 at 14:52

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