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.
;print out division message
mov rcx, 0                       ;zero out register
mov rax, [input]
mov rcx, [input2]
idiv rcx                        ;divide rax by rcx
mov rdi, rax                    ;for printing purposes
call print_int

I can't seem to figure out why this isn't dividing, I'm getting a enrror "Floating Point Exception" I'm using a 64bit machine and the values are integers not floating point.... ideas?

I know after the division takes place the quotient should be in rax, and the remainder should be in rdx i believe, but as of right now i'm just trying to get my hands on the quotient.

share|improve this question
    
possible duplicate of nasm x86-64 bit division –  Paul R Jan 14 '12 at 16:18

2 Answers 2

up vote 2 down vote accepted

Your function looks a little bit complicated to me. idiv works as expected for me here with this function:

_mydiv:
  xor  %rdx, %rdx ; clear high bits of dividend
  mov  %rdi, %rax ; copy dividend argument into rax
  idiv %rsi       ; divide by divisor argument
  ret             ; return (quotient is in rax)

Translated into NASM syntax and to the windows ABI, I think that would be something like:

_mydiv:
  mov  r8, rdx    ; copy divisor argument to scratch register
  xor  rdx, rdx   ; clear high bits of dividend
  mov  rax, rcx   ; copy dividend argument into rax
  idiv r8         ; divide by divisor in scratch register
  ret             ; return (quotient is in rax)

Are you maybe stomping on your parameters and confusing something along the way?

Edit: looking at your code, it occurs to me that it might not be written as a proper function at all. The important steps are:

  1. Put dividend in RDX:RAX - for you that probably means clearing out RDX and putting the input dividend in RAX.
  2. Put divisor in some other register - you chose RCX, that should be fine.
  3. Divide - idiv rcx.
  4. Result will be in RAX.

You should pay particular attention to step 1 - make sure that RDX:RAX has sane contents! Why you're getting a floating point exception I can't guess from the code you've shown.

share|improve this answer
    
that was it, the guided steps helped a lot, i wasn't clearing out the rdx register prior, thanks a lot!!! –  user1050632 Jan 13 '12 at 22:50

You're actually dividing a 128-bit number in RDX:RAX by RCX. So if RDX is uninitialized the result will likely be larger than 64-bits, resulting in an overflow exception. Try adding a CQO before the division to sign-extend RAX into RDX.

I can't explain the floating-point bit though, maybe someone decided to reuse an interrupt vector for generic math errors somewhere down the line?

share|improve this answer
    
For future reference, where does one find instructions like cqo? In GAS syntax, it's cqto, and it doesn't seem clear what it should convert to in MASM syntax. –  Vortico Jan 11 '14 at 0:39
    
@Vortico: The Intel Architecture Manuals are always a good start. As for CQO specifically I confess I didn't know the proper suffix for a 128-bit word but had to look up CBW/CWD/CDQ to see what the 64-bit equivalent might be called –  doynax Jan 11 '14 at 1:04

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.