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I have this example class

class Class
{
    public function getStuff()
    {
        $data = $this->getData('Here');

        $data2 = $this->getData('There');

        return $data . ' ' . $data2;
    }

    public function getData( $string )
    {
        return $string;
    }
}

I want to be able to test the getStuff method and mock the getData method.

What would be the best way of mocking this method?

Thanks

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1 Answer

up vote 2 down vote accepted

I think the getData method should be part of a different class, separating data from logic. You could then pass a mock of that class to the TestClass instance as a dependency:

class TestClass
{
  protected $repository;

  public function __construct(TestRepository $repository) {
    $this->repository = $repository;
  }

  public function getStuff()
  {
    $data  = $this->repository->getData('Here');
    $data2 = $this->repository->getData('There');

    return $data . ' ' . $data2;
  }
}

$repository = new TestRepositoryMock();
$testclass  = new TestClass($repository);

The mock would have to implement a TestRepository interface. This is called dependency injection. E.g.:

interface TestRepository {
  public function getData($whatever);
}

class TestRepositoryMock implements TestRepository {
  public function getData($whatever) {
    return "foo";
  }
}

The advantage of using an interface and enforcing it in the TestClass constructor method is that an interface guarantees presence of certain methods that you define, like getData() above - whatever the implementation is, the method must be there.

share|improve this answer
    
Thanks Gargon, that sounds like a good solution. How would this be done using the PHPUnit Mock Objects? –  Paulund Feb 17 '13 at 15:29
    
I think it's $mock = $this->getMock('TestRepository');. Refer to the PHPUnit documentation for more examples –  Gargron Feb 17 '13 at 15:35
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