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I need some help in generating pair of numbers in orders using FORTRAN code.

The order is like following.

loop_1: 1,2 2,3 3,4 4,5 5,6 6,7 7,8 ..... until <= 2000

loop_2: 1,3 3,5, 5,7 7,9 9,11 11,13 ........until <= 2000

loop_3: 1,4, 4,7 7,10 10,13 13,17 ..... until <= 2000

loop_4: 1,5 5,9 9,13 13,17 17,21 .... until <= 2000

. . . . until loop_100:

I have tried with simple code such as

program loopJump
implicit none
!

 integer :: i,j,k

 do k = 1, 6
 do i =  1, 5

    j=(i+k)

   print*, i,"   ",j

 enddo
 enddo

 stop
 end

But I can not get as I wanted.

Thanks in advance

share|improve this question
3  
Your inner variable i has to advance by k, not by 1, in the inner loop. –  Kerrek SB Aug 9 '11 at 11:09

2 Answers 2

This is one way to do it. EDIT: with correct formatting.

program loopJump

  implicit none
  !

  integer :: i,j,k
  integer :: loopend
  character(len=*),parameter :: fmt1 = "('loop_',I1,' ',I4)"
  character(len=*),parameter :: fmt2 = "(', ',I4,', ',I4 )"

  do k = 1, 6
     write(*,fmt1,advance='NO') k,1
     loopend = (2000-1)/k
     do i =  1, loopend

        j=1+i*k
        write(*,fmt2,advance='NO') j,j
     enddo
     write(*,fmt="(2X)")
  enddo

  stop

end program

EDIT2: After a careful look, it seems Kerrek SB answered this question earlier through a comment above. With that method, the loop would look like this:

 do k = 1, 6
     write(*,fmt1,advance='NO') k,1
     do i =  k+1, 20, k
        write(*,fmt2,advance='NO') i,i
     enddo
     write(*,fmt="(2X)")
 enddo
share|improve this answer
    
Thanks. Your tips helped me to write the code. It works now. –  Vijay Aug 9 '11 at 15:57

I dont know fortran, but this pseudo code might help you out:

let i := 1
let n := 1

while i <= 100 do
  while n <= 2000 do
    print n
    n := n + i
    print ",", n, " "
  done
  print "\n"
  i := i + 1
done
share|improve this answer
    
Your Idea too helped me. Thanks –  Vijay Aug 9 '11 at 15:58

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