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I am making a program that converts a decimal integer into its binary representation. Here is my code:

program test
implicit none
integer, dimension(:), allocatable :: binary
integer :: decimalnum, i, initvalue

print*, "Enter decimal number to convert: "
read*,initvalue

decimalnum = initvalue
i = 0

do while (decimalnum > 0)
    if (MOD(decimalnum,2)==0) then
        binary(i) = 0                  ! this is as far as the program executes up to 
        decimalnum = decimalnum / 2
        i = i + 1
    else if (MOD(decimalnum,2)==1) then
        binary(i) = 1
        decimalnum = (decimalnum -1) / 2
        i = i + 1
    end if
end do
end program test

At the marked point, it returns the error Segmentation fault and exits with code 139.

Why does this happen?

Thanks in advance.

share|improve this question
    
Do you have access to a debug? such gdb –  Jack Oct 8 '12 at 6:43
    
No, I don't know how to use one. –  RileyH Oct 8 '12 at 6:44
    
I don't really know much about Fortran, but I just looked up 'allocatable' and it looks like you still need an 'allocate' statement to actually reserve space. –  Nathan Andrew Mullenax Oct 8 '12 at 6:50
    
I changed that line to be allocate(binary(i) = 0) but the compiler returned syntax error in allocate statement –  RileyH Oct 8 '12 at 6:54
1  
Also: arrays start with the index 1. –  Nathan Andrew Mullenax Oct 8 '12 at 7:59
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3 Answers

up vote -1 down vote accepted

so this is probably awful form, and certainly bad runtime (it copies the array for every single bit), but here's what I came up with. It seems to work.

  program test
      implicit none
      integer, dimension(:), allocatable :: binary
      integer :: decimalnum, i, initvalue, curSize, curBit


      print*, "Enter decimal number to convert: "
      read*,initvalue

      decimalnum = initvalue
      i = 1
      ALLOCATE ( binary(1) )
      curSize = 1

      DO WHILE (decimalnum > 0)
        IF (i > curSize ) THEN
            curSize = curSize * 2
            CALL expandArray( curSize, i-1 )
        END IF

        IF (MOD(decimalnum,2)==0) then
            binary(i) = 0                  ! this is as far as the program executes up to 
            decimalnum = decimalnum / 2
            i = i + 1
        ELSE IF (MOD(decimalnum,2)==1) then
            binary(i) = 1
            decimalnum = (decimalnum -1) / 2
            i = i + 1
        END IF

      end do
      PRINT*, binary


  CONTAINS
      SUBROUTINE expandArray( newSize, oldSize )
          IMPLICIT NONE
          INTEGER, DIMENSION(:), ALLOCATABLE :: temp
          INTEGER :: j, newSize, oldSize
          ALLOCATE( temp(newSize) )
          DO j=1,oldSize
              temp(j) = binary(j)
          END DO
          DEALLOCATE (binary)
          ALLOCATE( binary(newSize) )
          DO j=1,oldSize
              binary(j) = temp(j)
          END DO
          DO j=oldSize+1,newSize
              binary(j) = 0
          END DO
          DEALLOCATE (temp)
      END SUBROUTINE

  END PROGRAM test
share|improve this answer
    
Thanks. Your code works fine. –  RileyH Oct 8 '12 at 8:24
    
Note: just edited--I erroneously had binary as a parameter to expandArray instead of a global variable. For some reason it worked anyway. In any case, it's fixed now. –  Nathan Andrew Mullenax Oct 8 '12 at 8:28
3  
I agree with the author, this code is probably awful and it copies the array for every bit. It uses features (specifically the continue statements) of FORTRAN77 which have been replaced with better facilities. –  High Performance Mark Oct 8 '12 at 8:28
    
@HighPerformanceMark Tried sprucing it up a bit--better array re-allocation, got rid of do/continue. I'm still not a Fortran programmer, obviously, so edits/feedback from a pro would be much appreciated. –  Nathan Andrew Mullenax Oct 8 '12 at 8:46
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As per the comments, you need to have executed an allocate statement (or something which does an allocation for you under the covers) before you can define the binary array. The simplest form of allocation statement would look something like ALLOCATE(binary(10)), which would given the binary array 10 elements, using the default (it can be changed for that array using the allocate statement) starting array index of 1.

Where the size of the allocation is not easily known before working with an array there are two basic approaches:

  • Do two passes, the first pass of which simply counts how many elements are required, then the array is allocated, then the second pass actually does the assignment to the relevant elements.
  • Allocate the array to an initial size (which may be zero), the progressively grow the array as required.

There are trade-offs associated with the decision around the approach to use associated with the relative overheads of things like allocation and the evaluation of each test when counting.

In Fortran 90 (time to move on to at least Fortran 95!), growing an allocatable array is somewhat convoluted (allocate a temporary, copy data from original to temporary, deallocate original, allocate original to new size, copy data from temporary back to resized original, deallocate temporary). In Fortran 2003 this operation becomes trivial.

share|improve this answer
    
Thanks. Time to learn Fortran 95 –  RileyH Oct 8 '12 at 8:21
2  
No, time to learn Fortran 2003. –  High Performance Mark Oct 8 '12 at 8:28
    
Why not '08 then? –  RileyH Oct 8 '12 at 8:37
1  
@AussieGamer: you'll struggle to find a compiler which accepts much of the additional syntax added by the 2008 revision of the language; most of the compilers on the market now implement most of Fortran 2003. –  High Performance Mark Oct 8 '12 at 8:51
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Here's a simple way to convert an integer i to its binary representation:

write(*,'(b16)') i

As written, this won't write any leading 0s. If you want the leading 0s, try

write(*,'(b16.16)') i

Of course, the preceding code writes the binary representation to the default output unit but using Fortran's internal write capabilities I could just as easily write the bits to a character variable. For example:

character(len=16) :: bits
...
write(bits,'(b16.16)') i

writes the binary digits of i into the character variable bits.

Now, if what you really want is to create an array of integers each representing one bit of the binary representation, then something like this

integer, dimension(16) :: bitarray
...
bitarray = 0
...
do ix = 1,len(bits)
    if (bits(ix:ix)=='1') bitarray(ix) = 1
end do

would probably work.

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