203 lines
6.8 KiB
NASM
203 lines
6.8 KiB
NASM
;*******************************************************************************
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;llrem.asm - signed long remainder routine
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;
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; Copyright (c) Microsoft Corporation. All rights reserved.
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;
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;Purpose:
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; defines the signed long remainder routine
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; __allrem
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;
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;*******************************************************************************
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include hal.inc
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;***
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;llrem - signed long remainder
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;
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;Purpose:
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; Does a signed long remainder of the arguments. Arguments are
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; not changed.
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;
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;Entry:
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; Arguments are passed on the stack:
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; 1st pushed: divisor (QWORD)
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; 2nd pushed: dividend (QWORD)
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;
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;Exit:
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; EDX:EAX contains the remainder (dividend%divisor)
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; NOTE: this routine removes the parameters from the stack.
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;
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;Uses:
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; ECX
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;
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;Exceptions:
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;
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;*******************************************************************************
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__allrem PROC NEAR
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push ebx
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push edi
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; Set up the local stack and save the index registers. When this is done
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; the stack frame will look as follows (assuming that the expression a%b will
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; generate a call to lrem(a, b)):
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;
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; -----------------
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; | |
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; |---------------|
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; | |
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; |--divisor (b)--|
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; | |
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; |---------------|
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; | |
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; |--dividend (a)-|
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; | |
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; |---------------|
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; | return addr** |
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; |---------------|
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; | EBX |
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; |---------------|
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; ESP---->| EDI |
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; -----------------
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;
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DVND equ [esp + 12] ; stack address of dividend (a)
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DVSR equ [esp + 20] ; stack address of divisor (b)
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; Determine sign of the result (edi = 0 if result is positive, non-zero
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; otherwise) and make operands positive.
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xor edi,edi ; result sign assumed positive
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mov eax,HIWORD(DVND) ; hi word of a
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or eax,eax ; test to see if signed
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jge short L1 ; skip rest if a is already positive
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inc edi ; complement result sign flag bit
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mov edx,LOWORD(DVND) ; lo word of a
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neg eax ; make a positive
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neg edx
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sbb eax,0
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mov HIWORD(DVND),eax ; save positive value
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mov LOWORD(DVND),edx
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L1:
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mov eax,HIWORD(DVSR) ; hi word of b
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or eax,eax ; test to see if signed
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jge short L2 ; skip rest if b is already positive
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mov edx,LOWORD(DVSR) ; lo word of b
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neg eax ; make b positive
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neg edx
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sbb eax,0
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mov HIWORD(DVSR),eax ; save positive value
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mov LOWORD(DVSR),edx
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L2:
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;
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; Now do the divide. First look to see if the divisor is less than 4194304K.
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; If so, then we can use a simple algorithm with word divides, otherwise
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; things get a little more complex.
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;
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; NOTE - eax currently contains the high order word of DVSR
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;
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or eax,eax ; check to see if divisor < 4194304K
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jnz short L3 ; nope, gotta do this the hard way
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mov ecx,LOWORD(DVSR) ; load divisor
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mov eax,HIWORD(DVND) ; load high word of dividend
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xor edx,edx
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div ecx ; edx <- remainder
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mov eax,LOWORD(DVND) ; edx:eax <- remainder:lo word of dividend
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div ecx ; edx <- final remainder
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mov eax,edx ; edx:eax <- remainder
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xor edx,edx
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dec edi ; check result sign flag
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jns short L4 ; negate result, restore stack and return
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jmp short L8 ; result sign ok, restore stack and return
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;
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; Here we do it the hard way. Remember, eax contains the high word of DVSR
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;
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L3:
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mov ebx,eax ; ebx:ecx <- divisor
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mov ecx,LOWORD(DVSR)
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mov edx,HIWORD(DVND) ; edx:eax <- dividend
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mov eax,LOWORD(DVND)
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L5:
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shr ebx,1 ; shift divisor right one bit
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rcr ecx,1
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shr edx,1 ; shift dividend right one bit
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rcr eax,1
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or ebx,ebx
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jnz short L5 ; loop until divisor < 4194304K
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div ecx ; now divide, ignore remainder
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;
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; We may be off by one, so to check, we will multiply the quotient
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; by the divisor and check the result against the orignal dividend
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; Note that we must also check for overflow, which can occur if the
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; dividend is close to 2**64 and the quotient is off by 1.
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;
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mov ecx,eax ; save a copy of quotient in ECX
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mul dword ptr HIWORD(DVSR)
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xchg ecx,eax ; save product, get quotient in EAX
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mul dword ptr LOWORD(DVSR)
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add edx,ecx ; EDX:EAX = QUOT * DVSR
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jc short L6 ; carry means Quotient is off by 1
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;
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; do long compare here between original dividend and the result of the
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; multiply in edx:eax. If original is larger or equal, we are ok, otherwise
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; subtract the original divisor from the result.
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;
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cmp edx,HIWORD(DVND) ; compare hi words of result and original
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ja short L6 ; if result > original, do subtract
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jb short L7 ; if result < original, we are ok
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cmp eax,LOWORD(DVND) ; hi words are equal, compare lo words
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jbe short L7 ; if less or equal we are ok, else subtract
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L6:
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sub eax,LOWORD(DVSR) ; subtract divisor from result
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sbb edx,HIWORD(DVSR)
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L7:
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;
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; Calculate remainder by subtracting the result from the original dividend.
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; Since the result is already in a register, we will do the subtract in the
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; opposite direction and negate the result if necessary.
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;
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sub eax,LOWORD(DVND) ; subtract dividend from result
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sbb edx,HIWORD(DVND)
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;
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; Now check the result sign flag to see if the result is supposed to be positive
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; or negative. It is currently negated (because we subtracted in the 'wrong'
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; direction), so if the sign flag is set we are done, otherwise we must negate
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; the result to make it positive again.
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;
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dec edi ; check result sign flag
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jns short L8 ; result is ok, restore stack and return
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L4:
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neg edx ; otherwise, negate the result
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neg eax
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sbb edx,0
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;
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; Just the cleanup left to do. edx:eax contains the quotient.
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; Restore the saved registers and return.
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;
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L8:
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pop edi
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pop ebx
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ret 16
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__allrem ENDP
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end
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