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.

this is the assembly code written in .com file for 16 bit machine: it is a code for gcd calculation, have 2 functions: calc_gcd calling to clac_mod. calc_mod works fine and i assume calc_gcd as well, but the printing in calc_gcd prints the digit 2 (the correct answer BTW) infinity number of times to the screen. why is that?

        org 100h
        mov ax,0006
        mov bx,0002

        call calc_gcd
        mov ah,4Ch
        int 21h 
        msg dw ' ','$'

        calc_mod:   
           start_mod:
           cmp ax, bx
           jbe end_mod
           sub ax,bx
           jmp start_mod
    end_mod: 
        ret

        calc_gcd:

       cmp bx,0000h
       je end_gcd
       call calc_mod
       xor ax, bx
       xor bx, ax
       xor ax, bx
       add ax, '0'
       mov [msg], ax
       mov dx,msg
       mov ah,9
       int 21h  

      call calc_gcd
        end_gcd: 
         ret
share|improve this question
1  
You really need to use a debugger to see how the register values are getting messed up. –  Hans Passant Nov 5 '11 at 18:59

1 Answer 1

up vote 0 down vote accepted

There are a few logic mistakes in your code:

mov ax,0006        ;ax = 6
mov bx,0002        ;bx = 2
[...]
calc_mod:          ;you don't need 2 labels, choose 1
start_mod:
cmp ax, bx         ;6 = 2?
jbe end_mod        ;exit call
sub ax,bx          ;ax = 6-2 = 4
jmp start_mod      ;loop until ax=bx=2

So in this code you declare 2 variables x=6 and y=2

Then you substract x-y until x <= y

So at this point, with the numbers you used, AX=2 and BX=2

calc_gcd:
    cmp bx,0000h         ;BX=2 and is never touched in the code
    je end_gcd           ;jmp never taken
    call calc_mod
    xor ax, bx           ;AX = 2 xor 2 = 0
    xor bx, ax           ;BX = 2 xor 0 = 2
    xor ax, bx           ;AX = 0 xor 2 = 2
    add ax, '0'          ;AX = 32h
    mov [msg], ax
    mov dx,msg           ;msg = '2'
    [...]
    call calc_gcd        ;do this again and again
end_gcd:
    ret

Searching 'gcd assembly' on google gives you a lot of code examples to calculate the gcd.

Start from there.

share|improve this answer

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.