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 have a program in Fortran that saves the results to a file. At the moment I open the file using

OPEN (1, FILE = 'Output.TXT')

However, I now want to run a loop, and save the results of each iteration to the files 'Output1.TXT', 'Output2.TXT', 'Output3.txt', ...

Is there an easy way in Fortran to constuct filenames from the loop counter i?

share|improve this question

5 Answers 5

up vote 22 down vote accepted

you can write to a unit, but you can also write to a string

program foo
    character(len=1024) :: filename

    write (filename, "(A5,I2)") "hello", 10

    print *, trim(filename)
end program

Please note (this is the second trick I was talking about) that you can also build a format string programmatically.

program foo

    character(len=1024) :: filename
    character(len=1024) :: format_string
    integer :: i

    do i=1, 10
        if (i < 10) then
            format_string = "(A5,I1)"
        else
            format_string = "(A5,I2)"
        endif

        write (filename,format_string) "hello", i
        print *, trim(filename)
    enddo

end program
share|improve this answer
9  
Two comments: - you don't have to discriminate on the value of I; the format (I0) will output an integer without any space; also, if you want a fixed width and padding with zeroes (like "output001.txt"), you need to used (I0.3) - the format (A5I2) is not valid Fortran according to any norm, as format specifiers are to be separated by commas: (A5,I2) –  F'x Aug 12 '09 at 14:47
    
Well, it was for educational purposes, not intended to be the solution. In general I use the padding zeros (as it sorts nicely), but the I0 thingie I didn't know about. Thanks!! (fixed the commas, I think my style was the old one, still accepted) –  Stefano Borini Aug 12 '09 at 15:53
    
@F'x thanks for the comment, really useful. Indeed even trim won't work if the number k of digits is not equal to "(Ik)" in the format, so just use "(I0)" so that one doesn't need to adapt the format. –  gluuke Jan 16 at 16:57

A much easier solution IMHO ...................

character(len=8) :: fmt ! format descriptor

fmt = '(I5.5)' ! an integer of width 5 with zeros at the left

i1= 59

write (x1,fmt) i1 ! converting integer to string using a 'internal file'

filename='output'//trim(x1)//'.dat'

! ====> filename: output00059.dat
share|improve this answer
    
CORRECTION: filename='output'//trim(x1)//'.dat' –  Alejandro Apr 29 '11 at 9:11
    
may just be my compiler, but i was needed to declare a character variable for the output string written to (i.e. character(5) x1). thanks! –  shootingstars Mar 5 at 20:13

Well here is a simple function which will return the left justified string version of an integer:

character(len=20) function str(k)
!   "Convert an integer to string."
    integer, intent(in) :: k
    write (str, *) k
    str = adjustl(str)
end function str

And here is a test code:

program x
integer :: i
do i=1, 100
    open(11, file='Output'//trim(str(i))//'.txt')
    write (11, *) i
    close (11)
end do
end program x
share|improve this answer

For a shorten version. If all the indices are smaller than 10, then use the following:

do i=0,9
   fid=100+i
   fname='OUTPUT'//NCHAR(i+48) //'.txt'
   open(fid, file=fname)
   !....
end do

For a general version:

character(len=5) :: charI
do i = 0,100
   fid = 100 + i
   write(charI,"(A)"), i
   fname ='OUTPUT' // trim(charI) // '.txt'
   open(fid, file=fname)
end do

That's all.

share|improve this answer

Here is my subroutine approach to this problem. it transforms an integer in the range 0 : 9999 as a character. For example, the INTEGER 123 is transformed into the character 0123. hope it helps.

P.S. - sorry for the comments; they make sense in Romanian :P

 subroutine nume_fisier (i,filename_tot)

   implicit none
   integer :: i

   integer :: integer_zeci,rest_zeci,integer_sute,rest_sute,integer_mii,rest_mii
   character(1) :: filename1,filename2,filename3,filename4
   character(4) :: filename_tot

! Subrutina ce transforma un INTEGER de la 0 la 9999 in o serie de CARACTERE cu acelasi numar

! pentru a fi folosite in numerotarea si denumirea fisierelor de rezultate.

 if(i<=9) then

  filename1=char(48+0)
  filename2=char(48+0)
  filename3=char(48+0)
  filename4=char(48+i)  

 elseif(i>=10.and.i<=99) then

  integer_zeci=int(i/10)
  rest_zeci=mod(i,10)
  filename1=char(48+0)
  filename2=char(48+0)
  filename3=char(48+integer_zeci)
  filename4=char(48+rest_zeci)

 elseif(i>=100.and.i<=999) then

  integer_sute=int(i/100)
  rest_sute=mod(i,100)
  integer_zeci=int(rest_sute/10)
  rest_zeci=mod(rest_sute,10)
  filename1=char(48+0)
  filename2=char(48+integer_sute)
  filename3=char(48+integer_zeci)
  filename4=char(48+rest_zeci)

 elseif(i>=1000.and.i<=9999) then

  integer_mii=int(i/1000)
  rest_mii=mod(i,1000)
  integer_sute=int(rest_mii/100)
  rest_sute=mod(rest_mii,100)
  integer_zeci=int(rest_sute/10)
  rest_zeci=mod(rest_sute,10)
  filename1=char(48+integer_mii)
  filename2=char(48+integer_sute)
  filename3=char(48+integer_zeci) 
  filename4=char(48+rest_zeci)

 endif

 filename_tot=''//filename1//''//filename2//''//filename3//''//filename4//''
 return
 end subroutine nume_fisier
share|improve this answer
3  
This is a very bad answer. As the accepted answer already shows Fortran provides a mechanism for writing the value of an integer into a character variable; all this fiddling around with encoding and decoding character indices is a horrid hack which serves no useful purpose. –  High Performance Mark Jun 28 '12 at 8:59

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.