If I have a dependency IObjectA which contains PropertyA of type IObjectB having a public method Foo() in IObjectB.

In order to Verify() Foo() was called can either of these be done, which is correct?

Mock<IObjectA> objectA = new Mock<IObjectA>();
Mock<IObjectB> objectB = new Mock<IObjectB>();

//A
objectA.Verify(x => x.PropertyA.Foo());

//B
objectA.Verify(x => x.PropertyA);
objectB.Verify(x => x.Foo());

"B" seems more correct but does not verify and contradicts my debugging "step through", "A" however gets the correct results. Can objectA be interrogated for its properties and those properties used for invocation even though it is a mocked type?

up vote 4 down vote accepted

Why do you think B seems more correct?

Example A is saying inside object A check that PropertyA had foo called on it.

objectA and objectB are not tied in anyway together in this example. So example B seems misleading in its current form, since it is trying to indicate there is some sort of relation.

Now if you use setup to assign objectB to objectA then both examples should work (because you are telling Moq how objectA relates to objectB). Doing this setup creates the relationship you are looking to verify.

Something along the lines of:

objectA.Setup(x => x.PropertyA).Returns(objectB)

This basically says "when PropertyA is called give me back objectB."

  • 1
    Thanks, yes returning objectB from PropertyA does the trick. objectA.Verify(x => x.PropertyA.Foo()) also verifies the Foo() call, was that a false positive? Some people have told me that x.PropertyA.Foo() is an invalid call since objectA's properties cannot be used for invocation, is this correct? – TheWolf Feb 28 '12 at 3:00
  • Your right and correct in regard to A. I apologize, I was reading and thinking of that wrong. I was thinking from the perspective of testing i.e. how mock would handle understanding child invocations, rather than the perspective of the actual invocation from the concrete implementation under test. – Joshua Enfield Feb 28 '12 at 3:23

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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