47

Lets say I have a class that contains a function that uses type hinting like this:

class Testable 
{
    function foo (Dependency $dependency) 
    {

    }
}

And I want to unit test this class Testable using this code:

$dependencyMock = $this->getMockBuilder('Dependency')
        ->disableOriginalConstructor()
        ->getMock();


$testable = new Testable($dependencyMock);

If I use PHPUnit to create a stub of $dependency and then try to call the function foo using this mock (like above), I will get a fatal error that says:

Argument 1 passed to function foo() must be an instance of Dependency, instance of Mock_Foo given

How can I unit test this function with PHPUnit and still stub $dependency?

6
  • show your testcode where you create your mock. Dec 7, 2013 at 21:37
  • are you sure Dependency is a class that exists? Shouldn't it have a namespace?
    – Wouter J
    Dec 8, 2013 at 14:08
  • 1
    try to use full namespace like \some\name\space\Dependency when you use mocking, it should fix
    – Shakil
    Dec 8, 2013 at 16:36
  • Thank you! Using a namespace fixes the error. Dec 8, 2013 at 22:27
  • 1
    @Shakil you should move your comment to an answer so it may be accepted. Dec 9, 2013 at 18:23

3 Answers 3

49

Use full namespace when you use mocking, it will fix the mockery inheritance problem.

$dependencyMock = $this->getMockBuilder('\Some\Name\Space\Dependency')
    ->disableOriginalConstructor()
    ->getMock();
$testable = new Testable($dependencyMock);
2
  • Thanks for this. I don't think the fact that you need the full namespace was clear in the documentation. Once I saw your post I thought "oh! of course" but I def didn't get that from the documentation. Jun 1, 2016 at 21:27
  • For a more robust way to do this in PHP 5.5+ stackoverflow.com/questions/20446771/…
    – GWed
    Dec 25, 2018 at 11:10
21

The easiest way to use a full namespace in PHP 5.4+ is with the class static method:

SomeClass::class

So in the OP's example:

$dependencyMock = $this->getMockBuilder(Dependency::class)
    ->disableOriginalConstructor()
    ->getMock();
$testable = new Testable($dependencyMock);

This makes refactoring with an IDE a lot easier

2
  • 3
    This is better than the other answers (in PHP 5.4+). ::class is the way to go to ensure the correct class is being used
    – dKen
    Jan 14, 2016 at 10:28
  • With this answer, I finally got it. Thanks a lot! Apr 6, 2016 at 6:31
5

My explication for the Shakil's answer:

I had the same problem.

Following the symfony2 cookbook, I created a mock of

\Doctrine\Common\Persistence\ObjectManager

and my service constructor was:

use Doctrine\ORM\EntityManager;

/* ... */

public function __construct(EntityManager $oEm)
{
    $this->oEm = $oEm;
}

So I created my unit test (following symfony2 cookbook):

$entityManager = $this->getMockBuilder('\Doctrine\Common\Persistence\ObjectManager')
    ->disableOriginalConstructor()
    ->getMock();

$myService = new MyService($entityManager);

Then I had the error:

Argument 1 passed to MyService::__construct() must be an instance of Doctrine\ORM\EntityManager, instance of Mock_ObjectManager_f4068b7f given

First I though that type hinting was incompatible with unit tests, because a mock instance was passed to the constructor instead of an instance of EntityManager.

So after some research, the class Mock_ObjectManager_f4068b7f is in fact a dynamic class extending the class of your mock (in my case Doctrine\ORM\EntityManager), so the type hinting is not a problem and works well.

My solution was to create a mock of Doctrine\ORM\EntityManager instead of \Doctrine\Common\Persistence\ObjectManager:

$entityManager = $this->getMockBuilder('\Doctrine\ORM\EntityManager')
    ->disableOriginalConstructor()
    ->getMock();

$myService = new MyService($entityManager);

I am just beginning with unit tests, so you may find my explication evident :p

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