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I'm attempting to implement something that sort of resemble the the repository pattern. To do this I have a interface that all repos implement and a model base class that all models extend.

I get the following error message from PHP

Fatal error: Declaration of MVCBP\Repositories\UserRepository::add() must be compatible with MVCBP\Core\RepositoryInterface::add(MVCBP\Core\Model $model) in D:\wamp\www\mvc\MVCBP\Repositories\UserRepository.php on line 9

What I want is that my methods in the repository classes should accept an instance of Model as argument according to the Interface. However I want to type hint a specific Model in the implementation. Is this doable in PHP?

RepositoryInterface.php

  <?php
  namespace MVCBP\Core;

  use MVCBP\Core\ModelInterface;

  interface RepositoryInterface
  {
    public function add(ModelInterface $model);
  }

UserRepository.php

<?php
namespace MVCBP\Repositories;

use MVCBP\Core\PDOMySQL;
use MVCBP\Core\RepositoryInterface;
use MVCBP\Models\User;

class UserRepository extends PDOMySQL implements RepositoryInterface
{
    public function add(User $user)
    {
        //Omitted
    }

    //Omitted
}

ModelInterface.php

<?php
namespace MVCBP\Core;

interface ModelInterface {}

User.php

<?php
namespace MVCBP\Models;

use MVCBP\Core\ModelInterface;
use MVCBP\Core\Validate;
use MVCBP\Repositories\UserRepository;

require_once(__DIR__ . '/../lib/password.php');

class User implements ModelInterface
{
    //Omitted
}
share|improve this question
    
Why do you assume that model is a class? –  tereško Apr 17 '13 at 19:18

1 Answer 1

You can do that. You must modify your UserRepository definition. Your add method accept only MVCBP\Core\Model instances.

UserRepository.php

<?php
namespace MVCBP\Repositories;

use MVCBP\Core\PDOMySQL;
use MVCBP\Core\RepositoryInterface;

//There was another mistake. Your User class is in MVCBP\Models namespace;
//use MVCBP\Core\Models\User; -> wrong one
use MVCBP\Models\User; //correct one
use MVCBP\Core\Model;

class UserRepository extends PDOMySQL implements RepositoryInterface
{
    public function add(Model $user)
    {
        if (!$user instanceof User)
            throw new \Exception('Exception msg', 101); //example exception
        //Omitted
    }

    //Omitted
}

I prefer to require an interface instance ie.

public function add(SomeInterface $user)
{
    if (!$user instanceof User)
       throw new \Exception('Exception msg', 101); //example exception
}

class User implements SomeInterface {
//some code
}

And then ReposituryInterface.php looks like this:

<?php
namespace MVCBP\Core;

use MVCBP\Core\Model;
use MVCBP\Core\SomeInterface;

interface RepositoryInterface
{
    //We must change method definition so it can take SomeInterface implementation
    public function add(SomeInterface $model);
    public function find($id);
    public function edit(Model $model);
    public function remove($id);
    public function all();
}
share|improve this answer
    
I've edited my code to use interfaces but the error persists. –  Gabriel Smoljár Apr 18 '13 at 5:07
    
Ok. But did You change your RepositoryInterface to use interface in add method ? I have edited my answer and place code for RepositoryInterface. Could you show your code ? –  Soyale Apr 18 '13 at 7:11

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