-2

I am trying to convert my sql class into a more suitable one. The class constructor looks like this:

class sql{

private $db_name = CONFIG_DB_NAME;
private $db_user = CONFIG_DB_USER;
private $db_pass = CONFIG_DB_PASS;      
private $db_host = CONFIG_DB_HOST;
private $use_pconnect = CONFIG_DB_USEP;


function __construct(){

    if($this->use_pconnect){

        $connection = new mysqli('p:'.$this->db_host, $this->db_user, $this->db_pass, $this->db_name);
    }else{

        $connection = new mysqli($this->db_host, $this->db_user, $this->db_pass, $this->db_name);
    }   

    if($connection->connect_errno){

        $this->sql_handle_errors($connection->connect_error, __FILE__, __LINE__);
        exit();
    }

    $this->connection = $connection;

    // Set DB charset
    if(!mysqli_set_charset($this->connection, CONFIG_CHARSET)){

        $this->sql_handle_errors(mysqli_error($this->connection), __FILE__, __LINE__);
    }

    if(file_exists(PATH_LOGS.'sql.txt')){

        $this->test_query = true;
    }
}
}

$sql = new sql;

And the result I am testing looks like this:

$result = $sql->connection->prepare("SELECT * FROM admin WHERE id = :id LIMIT 1");
$result->bind_param(':id', '1');
$result->execute();
$result->store_result();
$result->fetch();

Its saying bind_param function can't be found. Any reason why? Thanks.

1
  • Have you checked for an error after you prepare your statement? – Jon Oct 20 '13 at 2:44
0

If whole code is in above and you want to make an inheritance class from MySQL make below change:

class sql  

To

class sql extends mysqli

AND create a new instance from SQL class

$sql = new sql(//);
$result .../////
5
  • I just tried this and I am still getting the same error. :( – Jay Oct 15 '13 at 23:46
  • is it your whole class definition? where did you define db_host and other variable? – Aqil Oct 15 '13 at 23:57
  • They are defined in the class as private Everything connects and works because I have the db system working without prepared statements, now I am trying to convert the class into prepared statement ready. – Jay Oct 15 '13 at 23:59
  • See edited code above mate. – Jay Oct 16 '13 at 0:03
  • I redone the class and used this way – Jay Oct 20 '13 at 0:35
1

Your SQL class has multiple problems.

Starting at the end: A constructor never returns anything! return $connection; does not serve any purpose. Remove it.

Then you are using multiple class properties that are not declared: $this->use_pconnect, $this->db_host etc. Did you omit them in your code, or are they really not there? That would be an error, too.

Also, you are calling several methods that are also not present in your code, like $this->sql_handle_errors().

You should be able to avoid using the procedural style in this line: if(!mysqli_set_charset($this->connection, CONFIG_CHARSET)) should be if(!$this->connection->set_charset(CONFIG_CHARSET)), because that is the proper object oriented style.

And last but not least: Your usage of your class is not great. Basically you use it to create an instance of mysqli, and then want to always use that instance. While this isn't bad per se, there is no real value in doing so, because all the things you'd usually want on top of mysqli require wrapping this instance, not exposing it and using it directly.

One final hint: You should learn to debug. Use var_dump() to see what kind of value is inside your variable. Dump the return value of $sql->connection->prepare() to see if it is an instance of mysqli_stmt or not.

5
  • All stuff that you mentioned about not being in the class are in there I just took it out so you guys could read less. Thanks for your input. Which way would you suggest making this class work so I can atleast get to use just $sql as the global variable anywhere in the site. Thanks mate – Jay Oct 15 '13 at 23:39
  • var_dump gives me thus: boolean false – Jay Oct 15 '13 at 23:41
  • Something went wrong, and the error was not handled. That's what I mean with you working with the original mysqli instance. You should program a method prepare() in your own class that passes the SQL to the internal mysqli instance, and checks for errors and handles them for you. If there are no errors, it's probably a good idea to return not the original mysqli_stmt object, but another wrapped object that can help you further. Besides that: Having the configuration hardcoded in properties does not help very much, because you cannot change them before instantiation, and then its too late. – Sven Oct 15 '13 at 23:46
  • Please can you show me how to do this properly? Thanks – Jay Oct 15 '13 at 23:52
  • Some example: codereview.stackexchange.com/questions/14701/… – Sven Oct 16 '13 at 0:03

Not the answer you're looking for? Browse other questions tagged or ask your own question.