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've looked around, and though there are a lot of EXC_BAD_ACCESS issues, none of them helped.

I'm using Mountain Lion (OSX 10.8 I think?), and PGI 12.

I can't seem to call fortran functions from C, I've written a simplified case and it seems that I can't pass integers.

My fortran function is:

  1 integer function smallFortran(a) result(res) bind(c,name='smallFortran_')
  2 !integer function smallFortran(a) result(res)
  3     
  4     use ISO_C_BINDING
  5     implicit none
  6     
  7     integer(kind=c_int), intent(IN) :: a
  8     !integer, intent(IN) :: a
  9     
 10     print *,'A = ', a
 11     res = a;
 12 
 13 endfunction smallFortran

And my C function is,

int main() {
   int ier=7;
   ier = smallFortran_(8);
}

Build it..

matt@pontus:diffFst$ make                                                                                                               
pgcc -c cDoDiffFst.c                                                                                                                    
PGC-W-0267-#warning --  "Unsupported compiler detected" (/usr/include/sys/cdefs.h: 81)                                                  
PGC/x86-64 OSX 12.9-0: compilation completed with warnings                                                                              
pgcc -g -O0 -traceback -o cDoDiffFst cDoDiffFst.o smallFortran.o -lpgf90 -lpghpf2 -lpgf90rtl -lpgftnrtl -lpghpf_rpm

(I hope that warning isn't what's causing my problems, the PGI user forum responds to this by saying they'll send a newer version of the file, but I haven't been replied to yet. And no idea why PGI requires so many extra libraries to be specified)

When I run it in the debugger..

matt@pontus:diffFst$ gdb cDoDiffFst                                                                                                     
(gdb) run
Starting program: /Users/matt/aurams/trunk/utils/diffFst/cDoDiffFst 
Reading symbols for shared libraries +............................. done

Program received signal EXC_BAD_ACCESS, Could not access memory.
Reason: KERN_INVALID_ADDRESS at address: 0x0000000000000008
0x0000000100001906 in _smallFortran_ (a=Cannot access memory at address 0x8
) at smallFortran.f90:10
10              print *,'A = ', a
(gdb)

I'm totally lost, why can't I send an int? I've tried assigning a value to an integer and sending it, no dice. I've tried it as a subroutine, I've tried it without a return value.. nothing works.

share|improve this question
2  
There are so many things that can go wrong.... One is that C and Fortran generally use different parameter-passing protocols -- C is by value and Fortran is often (depending on the compiler and other issues) by reference. –  Hot Licks Jan 3 '13 at 1:36
    
@HotLicks - Hmm, didn't think of that like that. Maybe I can try passing the int as a reference? (my C is bad, I'll try as a pointer, and by reference) –  Matt Jan 3 '13 at 1:50
add comment

2 Answers 2

up vote 3 down vote accepted

The error should make clear what's going wrong; smallFortran_ expects its argument to be passed by reference (as are all arguments in fortran -- note that I'm being slightly fast and loose here), and tries to access the data at the pointer 8, which fails. Fix is easy; the function expects a pointer, so give it one:

int main() {
  int ier = 7;
  int arg = 8;
  ier = smallFortran_(&arg);
}

This assumes that the fortran integer type corresponds to a C int with the compilers in question; you may need to make arg a long otherwise.

share|improve this answer
    
@hotLicks comment made me notice that (it seems obvious now, but I totally missed it.) Thanks! I'm trying that right now and will post my results. (struggling at this for a while, so am excited for a response. And I'm bad at C and new to mixing C and fortran, so that's maybe why I didn't notice. :( ) Thanks! –  Matt Jan 3 '13 at 1:54
1  
Totally works. Thanks! –  Matt Jan 3 '13 at 1:55
add comment

Here is an alternative solution that shows how to write Fortran to match the original C of the question. The key is the value qualifier on the declaration. With the Fortran ISO C Binding you match various ways C passes arguments. You can also do away with underscores in routine names ... that's a purpose of the name keyword of bind.

The C code without the underscore in the call:

int main() {
   int ier=7;
   ier = smallFortran (8);
}

and the matching Fortran:

function smallFortran(a) result(res) bind(c,name='smallFortran')

     use ISO_C_BINDING
     implicit none

     integer(kind=c_int), intent(IN), value :: a
     integer(kind=c_int) :: res

     print *,'A = ', a
     res = a;

 endfunction smallFortran
share|improve this answer
add comment

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.