Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to define a array of arrays. I have defined:

  integer,dimension(2,2):: & 
    x=reshape(source= (/0,1,1,0/),  shape=(/2,2/)), & 
    y=reshape(source= (/1,0,0,1/),  shape=(/2,2/)), & 
    z=reshape(source= (/1,1,1,1/),  shape=(/2,2/)) 

I want to define an array, say, s(3), of which, (x/y/z) are components, i.e.

s(1)=x 
s(2)=y 
and s(3)=z

how can I achieve that?

share|improve this question

3 Answers 3

up vote 3 down vote accepted

The simplest approach might be to define s as a rank-3 array, perhaps

integer, dimension(3,2,2) :: s

and then you can write statements such as

s(1,:,:) = x
s(2,:,:) = y
...

This is the 'natural' way to implement an array of arrays in Fortran. An alternative, which might appeal to you more would be something like:

type :: twodarray
   integer, dimension(2,2) :: elements
end type twodarray

type(twodarray), dimension(3) :: s

s(1)%elements = x

If you don't like the wordiness of s(1)%elements = x you could redefine the operation = for your type twodarray, I don't have time right now to write that code for you.

share|improve this answer

I was unable to find an eBook to the hard copy of my Fortan 77 book to provide you. However, this should prove useful to you:

http://www.owlnet.rice.edu/~ceng303/manuals/fortran/FOR5_3.html

share|improve this answer

You can always use pointers (in Fortran 95)

program main
  implicit none

  type :: my_type
     integer, pointer :: my_size(:)      ! F95
     !integer, allocatable :: my_size(:) ! F95 + TR 15581 or F2003
  end type my_type

  type(my_type), allocatable :: x(:)

  allocate(x(3))

  allocate(x(1)%my_size(3))
  allocate(x(2)%my_size(2))
  allocate(x(3)%my_size(1))

  print*, x(1)%my_size
  print*, x(2)%my_size
  print*, x(3)%my_size

  deallocate(x(3)%my_size, x(2)%my_size, x(1)%my_size)
  deallocate(x)

end program main

It will print

       0           0           0
       0           0
       0
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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