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I have a derived type t_file with a finalization routine close which simply writes "Finalization" to the screen. There is also a function returning an instance of the type t_file. The output of this program is

Finalization.
Finalization.
Just opened
     2000
Done.

I have two questions:

  • Why does the finalization occur before the Just opened output?
  • Why does the finalization occur twice?

My compiler is Intel(R) Visual Fortran Composer XE 2011 12.1.3526.2010.

Here is the code:

module m_file
    implicit none


    type t_file
        integer::iu=1000

        contains

        final::close
    end type

    contains

    function openFile() result(f)
        implicit none

        type(t_file)::f

        f%iu = 2000

    end function

    subroutine close(this)
        implicit none

        type(t_file)::this

        write(*,*) 'Finalization.'

    end subroutine

end module

program foo
    use m_file
    implicit none

    type(t_file)::f

    f = openFile()
    write(*,*) 'Just opened'
    write(*,*) f%iu

    write(*,*) 'Done.'    
    read(*,*)

end program
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2 Answers

up vote 5 down vote accepted

This behaviour surprised me too. I've been getting to grips with Fortran's new(-ish) OO features but haven't yet needed to write final procedures. I think that I can provide an explanation, of sorts, for this behaviour.

On p282 of Modern Fortran Explained the authors write:

When a finalizable object is about to cease to exist (for example, by being deallocated or from execution of a return statement), the final subroutine is invoked with the object as its actual argument. This also occurs when the object is passed to an intent out dummy argument, or is the variable on the left-hand side of an intrinsic assignment statement. In the latter case, the final subroutine is invoked after the expression on the right-hand side has been evaluated, but before it is assigned to the variable.

It looks to me as if you are hitting both of the two cases mentioned in this paragraph. You get the first Finalization when the entity named f inside the function openFile is about to go out of scope on return from that function.

You get the second Finalization when the variable f in the program scope is used on the lhs of the assignment f = openFile().

From all of this I conclude that you are not seeing premature finalisation of f in the program scope, but something subtly different.

I'm not entirely convinced that this is what is happening, and I cannot think of a good reason why the language's behaviour should be as it is. I'm a bit surprised, now that I've looked into it, that you don't get a third Finalization message as the program ends and f goes out of scope.

With any luck a real Fortran guru will come past soon and enlighten us all.

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I think your explanation is very good. I would also expect the third one. I think the design is logical, as you may need it in all those cases. –  Vladimir F Jun 25 '12 at 15:03
    
Unfortunately I wanted the finalization to close a file unit for me, so it had the behaviour of closing the unit before I'd even used it. I guess I can simply do without finalization. –  bdforbes Jun 25 '12 at 23:36
    
On another note, in other parts of the full program, it actually worked fine and didn't finalize prematurely. I haven't yet been able to distill an example of that down though. –  bdforbes Jun 25 '12 at 23:38
    
I think you are getting it wrong. It would not close your file prematurely. –  Vladimir F Jun 26 '12 at 13:46
    
It would if instead of writing "Finalization" the final routine closed the file unit... –  bdforbes Jun 27 '12 at 0:54
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Minor correction to answer given by High Performance Mark: The first finalization is actually the variable f in the program scope. This can be seen simply by having the final routine print this%iu and setting f%iu in the program scope to some arbitrary value.

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