I do not understand the behavior of the present() intrinsic function with pgf90 7.2. I wrote a 20 line sample program to test this, but the results still make no sense to me. Observe:
subroutine testopt(one,two,three,four,five)
implicit none
integer, intent(in) :: one,two
integer, intent(out) :: three
integer, intent(in), optional :: four
integer, intent(out), optional :: five
three = one + two
print *,"present check: ",present(four),present(five)
if (present(four) .and. present(five)) then
five = four*four
end if
end subroutine testopt
if I: call testopt(1,2,(any variable)) from my main program, it prints: "present check: T F". However if I: call testopt(1,2,(any variable)) from a subprogram it prints: "present check: T T". I expected to see "present check: F F" in either case, because I am only calling the subroutine with the 3 non-optional arguments, and neither of the optional ones. I cannot fathom why it would behave this way, and this is causing a major bug in a program I am working on. I appreciate any insight. Thanks.
Are you placing this subroutine in a module and then having a "use" statement for that module in the calling routine (main program or subroutine)? A typical rule is that many of the advanced / new features of Fortran 90 require an explicit interface so that both the caller and callee pass the arguments consistently. The easiest and best way to accomplish this is with module / use. Just a guess...
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