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I am new in Fortran and i have this problem.

When i ran this DO is ok:

integer, parameter :: Int10Type = selected_int_kind (10)
INTEGER (Int10Type), PARAMETER :: TOTAL_TIME = 1000, TOTAL_INI = 200
INTEGER (Int10Type):: t, z
REAL (16), DIMENSION(TOTAL_Z, TOTAL_TIME) :: current
DO t = 1, TOTAL_TIME
   current(TOTAL_Z, t) = TEMP_INI
END DO
DO t = 1, TOTAL_TIME - 1
  DO z = 2, (TOTAL_Z - 1)
    current(z, t + 1) = current (z, t) + KAPPA*DELTA_T*((current(z - 1, t) -2.0*current(z, t) + current(z + 1, t)) / DELTA_Z**2)
  END DO
END DO

But, when i increment var limite

    integer, parameter :: Int10Type = selected_int_kind (10)
INTEGER (Int10Type), PARAMETER :: TOTAL_TIME = 1000000000, TOTAL_INI = 200
INTEGER (Int10Type):: t, z
REAL (16), DIMENSION(TOTAL_Z, TOTAL_TIME) :: current
DO t = 1, TOTAL_TIME
   current(TOTAL_Z, t) = TEMP_INI
END DO
DO t = 1, TOTAL_TIME - 1
  DO z = 2, (TOTAL_Z - 1)
    current(z, t + 1) = current (z, t) + KAPPA*DELTA_T*((current(z - 1, t) -2.0*current(z, t) + current(z + 1, t)) / DELTA_Z**2)
  END DO
END DO

The output of the program is 'killed'
Why? what i do bad?

share|improve this question
    
I'm curious, in which capacity you're learning FORTRAN? Academic, pure curiosity, or job related? –  Martheen Mar 5 '13 at 3:39
    
it's academic. i'm student of physical in Argentina –  F.N.B Mar 5 '13 at 11:43

1 Answer 1

up vote 1 down vote accepted

integer(10) means integer(kind=10), not an integer with at least 10 decimal digits. It is up to a compiler what kind=10 means. There is no guarantee that kind=10 even exists! If you want to specify 10 decimal digits you should use:

integer, parameter :: Int10Type = selected_int_kind (10)
integer (kind=Int10Type) :: i

Then write your program as:

integer, parameter :: Int10Type = selected_int_kind (10)

INTEGER (Int10Type), PARAMETER :: limite = 1000000000_Int10Type, lim = 200
INTEGER (Int10Type):: i, j
DO i = 1, limite
  DO j = 1, lim
     !I work with a matrix
  END DO
END DO

Notice that the type has also been specified on the large constant value.

Alternatively, if your compiler provides the ISO Fortran Environment feature of Fortran 2003, you can request an 8 byte (64 bit) integer in a portable way:

use iso_fortran_env

INTEGER (INT64), PARAMETER :: limite = 1000000000_INT64, lim = 200
INTEGER (INT64):: i, j
DO i = 1, limite
  DO j = 1, lim
     !I work with a matrix
  END DO
END DO

P.S. 1000000000 should fit into a 4-byte (signed) integer since 2**31 = 2,147,483,648, so the default integer of most Fortran compilers should work. You can probably just use integer without specifying a kind! With iso_fortran_env, INT32 should suffice. If this doesn't solve your problem, perhaps your array is too big ... you may need to show us more code.

P.P.S. In response to the additional source code. The t do loop goes from 1 to total_time, but you use the 2nd index as t+1, which means that the largest value will be total_time+1. This exceeds the 2nd dimension of current. You have an array subscripting error. If you compile with subscript bounds checking the compiler will find this for you. With gfortran, either use -fcheck=all or -fbounds-check.

share|improve this answer
    
Your iso_fortran_env needs to have a F2008 flavour for the bitwise kind parameters. –  IanH Mar 5 '13 at 18:39
    
I try this but don't work. I put all my program. i us a very big array, and is possible to the error is here. I us this compiler: GNU Fortran (Ubuntu/Linaro 4.7.2-2ubuntu1) 4.7.2 Copyright (C) 2012 Free Software Foundation, Inc. –  F.N.B Mar 5 '13 at 23:45
    
i forget the -1 in do limtis, but this isn't the error. It's possible to the problem is in the dimension of marix? thanks –  F.N.B Mar 6 '13 at 0:30
    
This large array might exceed the stack size of your process. You may need to either increase the stack size or make the array allocatable and allocate it. That will typically place it on the heap instead of on the stack. There are Fortran stackoverflow questions on this topic. –  M. S. B. Mar 6 '13 at 0:33
    
Here is how to try the allocation approach: real, dimension (:,:), allocatable :: current. Then in the active code: allocate ( current (TOTAL_Z, TOTAL_TIME) ) –  M. S. B. Mar 6 '13 at 13:49

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