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A small test program returns a segmentation fault with gfortran (4.4.5) on linux 64bit. The fault is not present with n=2_8**22_8. Gdb indicates the segmentation fault occurs in function mylen during the first iteration of the loop.

allocate, stat=           0
size :              8388608
len, switch=false :              8388608
Segmentation fault

Thanks

function mylen(abc,n, switch) 

implicit none

logical, intent(in) :: switch
integer(kind=8), intent(in) :: n
logical, dimension(1:n), intent(in) :: abc
integer(kind=8) :: mylen
character(len=size(abc,dim=1,kind=8)) :: tmp
integer(kind=8) :: i

mylen=len(tmp,kind=8)
if (switch) then
  do i=1,len(tmp,kind=8)
    tmp(i:i)='a'
  enddo
endif

end function mylen

program test

implicit none

integer(kind=8) :: n
logical, allocatable :: abc(:)
integer(kind=8) :: mylen
integer :: ierr

n=2_8**23_8
allocate(abc(n),stat=ierr)
print *,'allocate, stat=',ierr
print *,'size :', size(abc,dim=1,kind=8)
print *,'len, switch=false :', mylen(abc,n,.false.)
print *,'len, switch=true  :', mylen(abc,n,.true.)

end program test
share|improve this question
2  
I find no problem with gfortran version 4.8.1 on Ubuntu 10.04. Can you update gfortran? –  darthbith Aug 20 '13 at 14:13
    
Unfortunately, no :-/ –  user1824346 Aug 20 '13 at 14:20
1  
You may try to install an alternate compiler, without updating the one installed with OS. See here : gcc.gnu.org/wiki/GFortranBinaries If you try this, you may have to set some environment variables (LIBRARY_PATH or alike). –  Jean-Claude Arbaut Aug 20 '13 at 14:51
1  
I suspect stack space has overflowed because of dynamic arrays declared in mylen. A workaround would be to declare them as allocatable and allocate them. –  Jean-Claude Arbaut Aug 21 '13 at 6:26
    
@darthbith: using a gfortran 4.8.2 64bit binary, I have reproduced the segmentation fault. Can you post the output of "ulimit -a"? –  user1824346 Aug 21 '13 at 7:18

2 Answers 2

up vote 4 down vote accepted

I tested this, and realized that if the character array is too large, you blow the stack. If you use an allocatable length string and allocate that at the top of "mylen", it goes on the heap and the program works.

share|improve this answer
    
Nice solution. Can you tell me what part of the stack in "ulimit -a" is responsible for the error? Thanks –  user1824346 Aug 21 '13 at 7:15
1  
@Sean. Damned, you had already found when I wrote my comment :-) –  Jean-Claude Arbaut Aug 21 '13 at 7:21
    
@user1824346, I'm not sure "ulimit -a" will help you much here: actually, with -a, all limits are to their max, and there is indeed a max stack space, even in that case (probably depends on machine and OS, I think I have seen once 64MB, but you can check with "limits"). You'd better not rely on this, and declare allocatable arrays. It souldn't change anything to program logic, anyway. –  Jean-Claude Arbaut Aug 21 '13 at 7:25
    
I believe ulimit -s is the overall stack size. But as @arbautjc says, the OS may set a hard limit that you can't exceed. –  Sean Patrick Santos Aug 21 '13 at 10:19

Edit: I still stand by my answer, that in case ierr is nonzero, the program still accesses the not allocated array which leads to an undefined behavior. It is not the cause of the original segmentation fault, however.


Your program is not standard conforming. It is not possible to call array inquire intrinsics like size or len on not allocated allocatable arrays. The same holds for your function mylen, it cannot accept dummy arguments, which are not associated pointer or not allocated allocatable variables.

share|improve this answer
    
That's not the case; abc is allocated. –  Sean Patrick Santos Aug 21 '13 at 3:33
    
You do not test for that in your program after the allocate statement. –  Vladimir F Aug 21 '13 at 9:29
    
It is not my program. In any case, there is only one allocatable array, and the status code from its allocation is checked, which is sufficient. –  Sean Patrick Santos Aug 21 '13 at 10:17
    
Ok, but the status is only printed, but the array is then accessed regardless of it. –  Vladimir F Aug 21 '13 at 11:49
    
True, but the fact that it is printed means that we can see that the allocation was successful in this case. Sure, it's a good policy to check statuses. My point is that that's not related to the original question here, since that question already showed that the status was zero. –  Sean Patrick Santos Aug 21 '13 at 14:28

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