34

Here is my code:

type IA interface {
    FB() IB
}

type IB interface {
    Bar() string
}

type A struct {
    b *B
}

func (a *A) FB() *B {
    return a.b
}

type B struct{}

func (b *B) Bar() string {
    return "Bar!"
}

I get an error:

cannot use a (type *A) as type IA in function argument:
    *A does not implement IA (wrong type for FB method)
        have FB() *B
        want FB() IB

Here is the full code: http://play.golang.org/p/udhsZgW3W2
I should edit the IA interface or modifi my A struct?
What if I define IA, IB in a other package (so I can share these interface), I must import my package and use the IB as returned type of A.FB(), is it right?

1 Answer 1

21

Just change

func (a *A) FB() *B {
    return a.b
}

into

func (a *A) FB() IB {
    return a.b
}

Surely IB can be defined in another package. So if both interfaces are defined in package foo and the implementations are in package bar, then the declaration is

type IA interface {
    FB() IB
}

while the implementation is

func (a *A) FB() foo.IB {
    return a.b
}
5
  • 4
    This does not answer the question. The problem is that we would like to have the interfaces in a new file without being able to change the original definition.
    – epsalon
    Jan 26, 2017 at 0:13
  • @epsalon How does your problem relate to the original one? Please describe s bit more.
    – themue
    Jan 26, 2017 at 5:56
  • 16
    I think @epsalon's question is quite pertinent. Assuming both A and B are defined in a package that is separate and inaccessible. How can one define interfaces IA and IB retrospectively? An example of when you might want to do this is if you are trying to define these interfaces in order to use mocks for both A and B in a completely different package without being able to modify the original files where A and B are declared.
    – ishaaq
    Apr 24, 2017 at 19:28
  • Yes, @ishaaq, that's exactly my issue.
    – epsalon
    Apr 24, 2017 at 23:17
  • @ishaaq, I have exactly the same issue in mocking objects. Any solution? Sep 16, 2019 at 8:18

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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