14

Say I have a Fortran derived type

type :: atype
    integer :: n
    integer :: a(10)
    integer, allocatable :: b(:)
 end type

and I have two instances of this type

type(atype) :: t1, t2

what exactly happens when I do the following assignment?

t2 = t1

I am interested in this because I would like to correctly make copies of derived type variables meaning, the scalar components should be equal, each element of array components should be equal and allocatable arrays should have the same allocated size and elements should be equal. At the moment I would just write a subroutine which copies and allocates the components correctly.

subroutine copy_atype(from, to)
    type(atype) :: from, to
    to%n = from%n
    to%a = from%a
    if (allocated(to%b)) deallocate(to%b)
    if (allocated(from%b) then
        allocate(to%b(size(from%b)))
        to%b = from%b
    end if
end subroutine

I would appreciate directions to appropriate sections in the standards.

I am using gfortran 4.7.

14

In the absence of a suitable defined assignment procedure being accessible for the assignment of one atype to another, intrinsic derived type assignment happens. This is described in F2008 7.2.1.3. For your type definition, intrinsic derived type assignment basically does what your procedure does:

  • The non-allocatable components (that don't themselves have type bound defined assignment) are assigned across using intrinsic assignment. If they do have type bound assignment, that is used.

  • Allocatable components in the object being assigned to are deallocated if already allocated, reallocated with the same type, type parameters and bounds of the expression being assigned, and then type bound defined assignment (if applicable) or intrinsic assignment is used to transfer the value.

Also:

  • pointer components are pointer assigned across;

  • coarray components must match in allocation status between the variable and expression, and are transferred using intrinsic assignment.

4
  • 1
    In the original example t2=t1, let's say t1%b is not allocated and t2%b is allocated. When you do t2=t1 will t1%b get deallocated? The answer is a little unclear about this situation.
    – Alex
    Sep 28 '18 at 3:03
  • 1
    I think you mix up your t1's and t2's. See first part of second dot point - the deallocation action is unconditional on the allocation status of a component in the value on the right hand side of the =. The reallocation of the component is necessarily conditional.
    – IanH
    Sep 28 '18 at 22:15
  • I'm not familiar with pointers as implemented/used in Fortran, but am in C/C++. What do you mean by "pointer assigned" in this context?
    – jvriesem
    Feb 20 '19 at 18:28
  • @jvriesem The action of Fortran pointer assignment, i.e. lhs_pointer => rhs_target.
    – IanH
    Feb 21 '19 at 20:05
2

This is very similar to a question asked a few days back: Nested derived type with overloaded assignment. See the accepted answer there for a detailed explanation.

You can use you're subroutine copy_atype directly to form an assignment operator:

type :: atype
    integer :: n
    integer :: a(10)
    integer, allocatable :: b(:)
contains
    procedure :: copy_atype
    generic :: assignment(=) => copy_atype
end type

This way, you can directly assign values of the same type to a variable of type atype. You could even extend the assignment to other types of variables by giving a comma-separated list of appropriate subroutines.

2
  • Good to know, although not exactly what I was looking for.
    – stiaan
    Oct 1 '13 at 12:38
  • Is there any reason why you use generic rather than procedure when declaring the assignment(=) operator?
    – jvriesem
    Feb 20 '19 at 18:29

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