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This should be a very basic question for Yii coders, but I am not understanding the OOP relation here…

In my /protected/models/User.php I have a function like this…

public function encrypt($param)
{
...
}

For the User Authentication i.e., in the Class “class UserIdentity extends CUserIdentity” I have the Authenticate function like this…

public function authenticate()
{
$user = User::model()->findByAttributes(array('email'=>$this->username));
...
...
...
if($user->password !== $user->encrypt($this->password))

How is this possible? encrypt is a method within User Class. Then it should be accessed in the following way…

$user = new User;
$user->encrypt();

But in the above code, $user is already accessing the static method model and then finds the record. So, how can we use $user as an object or instance.

Can anybody clarify this?

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2 Answers 2

User::model()->findByAttributes returns an instance of model (or null if nothing found) which you're correctly assigning to $user variable. Afterwards, you can call encrypt() or any other non-static method on $user just fine.

EDIT:

User::model() (or MyModel::model() in general) is a static method which returns instance of AR class which, among other things, can be used to perform find* calls. It does not represent any model inside database.

Actually, all find* methods should have been static (like User::findBy), but since Yii can't use PHP 5.3 features like LSB, it's impossible to implement it that way. So Yii developers ended up with CActiveRecord::model() method which acts like a static instance of a model.

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if User::model()->find* returns instance, than what is this User::model(); model() is already a method within User class. –  Jay Dec 27 '13 at 10:28
    
Okay! Then, I should be able to call the encrypt() method in this way $user = new User; $user->encrypt(); Is it correct. –  Jay Dec 27 '13 at 14:04
    
@user2554706 Well, yes, nothing prevents you from doing that way. However, I don't see anything wrong with the code you posted in question –  galymzhan Dec 28 '13 at 5:21

Lets understand both the statements

 $user= User::model()->findByAttributes(array('email'=>$this->username));

Lets first understand findByAttributes()
This is defined in the CActiveRecord class, which all database models should extend. In theory, you could create an instance of the class and then use that instance’s method:

$model = new Page;
$model = $model->findByPk($id);

That would work, but it’s a bit verbose, redundant, and illogical. The alternative is to use a static class instance. A static class instance is a more advanced OOP concept.
Now User::model()

If you will look into your User.php you will find a function like

public static function model($className=__CLASS__)
            {
                    return parent::model($className);
            }

So what does User::model() does?

Here model() is a static method and here it represents model() method of User class .
So basically User::model() returns a User class object.
Hence when you execute this statement

$user= User::model()->findByAttributes(array('email'=>$this->username));

Then in turn you get a User class object in the form of $user.

And this is the reason that you can access encrypt() method like $user->encrypt()

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