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238 lines
5.7 KiB
238 lines
5.7 KiB
;++
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;
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; File Name:
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;
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; macro.inc
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;
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; Author:
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;
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; Thomas Parslow [tomp]
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;
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; Created:
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;
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; 27-Feb-91
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;
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; Abstract:
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;
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; The macros used for creating the exported entry points the
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; OS loader will use for basic h/w dependent services. These
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; services are:
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;
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; o Disk I/O
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; o Character I/O
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;
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;
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;--
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;++
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;
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; EXPORT_ENTRY_MACRO
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; We arrive here from the OS loader with a 32bit CS. That is, we're
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; executing the code with cs:eip where cs contains a selector for a
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; 32bit flat segment. We want to get to a 16bit cs. That is, cs:ip.
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; The entry points are exported as 32bit near pointers to the OS loader.
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; All code in the SU module is identity mapped so the flat 32bit offset
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; is equal to the physical address.
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;
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; Therefore, we export the 32bit physical address as the
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; entry point and the code may be executed with either the 32bit
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; flat cs or the SU module's 16bit based cs. Before we can switch
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; modes we must load all of the segment registers with selectors for
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; 16bit segments. We start by pushing a far pointer to a label in
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; the macro and then doing a retf. This allows us to fall through
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; to the next instruction, but we're now executing through cs:ip
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; with a 16bit CS.
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;
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; Output:
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;
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; (ebx) = pointer to stack frame (and top of 32bit stack).
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;
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EXPORT_ENTRY_MACRO macro entryname
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LOCAL exp1
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_TEXT32 segment para use32 public 'CODE'
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ASSUME CS:_TEXT32
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ALIGN 4
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Public EntryName
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EntryName LABEL near
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;
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; We've go a 32bit CS:EIP - go to a 16bit CS:IP
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push dword ptr SuCodeSelector
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push dword ptr (offset exp1)
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retf
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_TEXT32 ends
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ASSUME CS:_TEXT
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ALIGN 4
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exp1:
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;
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; Save caller's EBP register and stack pointer (ESP)
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;
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push ebp
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push ebx
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push esi
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push edi
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mov ebx,esp
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;
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; Load all the segment registers with 16bit segment selectors
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;
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mov ax,SuDataSelector
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mov ds,ax
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mov ss,ax
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;
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; Set the stack to the top of the segment. We can do this now since
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; all of the OS loader's code has already be relocated. Also, we need
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; plenty of stack since we'll be calling BIOS routines.
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;
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mov esp,EXPORT_STACK
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push ebx ; save the caller's esp
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endm
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;
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; EXPORT_ENTRY_MACRO end
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;
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;++
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;
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; Name:
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;
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; ExportExit
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;
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; Arguments:
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;
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;
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; Notes:
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;
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; EAX = return code and MUST be preserved by this macro.
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;
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;--
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EXPORT_EXIT_MACRO macro
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;
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; Next get caller's esp that we saved upon entry on the 16bit stack
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;
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pop ebx ; get caller's esp
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;
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; Restore flat selectors in segment registers.
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;
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mov dx,KeDataSelector
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mov ds,dx
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mov ss,dx
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mov es,dx
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mov esp,ebx
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;
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; Restore callers' ebp that we saved on the 32bit stack
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;
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pop edi
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pop esi
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pop ebx
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pop ebp ; (ebp) = caller's ebp
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;
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; Pull callers flat return address off stack and push the
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; flat code selector followed by the return offset, then
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; execute a far return and we'll be back in the OS loaders code space.
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;
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pop edx ; (edx) = caller's return address
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push dword ptr KeCodeSelector
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push edx
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db OVERRIDE
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retf
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endm
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;++
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;
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;
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;
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;--
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RE_ENABLE_PAGING_MACRO macro
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extrn _EnableProtectPaging:near
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push RE_ENABLING
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call _EnableProtectPaging
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add sp,2
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endm
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ENTER_REALMODE_MACRO macro
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extrn _RealMode:near
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call _RealMode
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endm
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WAIT_FOREVER_MACRO macro
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LOCAL wf1
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wf1: jmp wf1
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endm
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;++
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;
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; MAKE_STACK_FRAME_MACRO
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;
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; Arguments:
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;
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; _FrameName_ - is the name of the structure defining the
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; stack frame layout.
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;
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; _PointerRegister_ - is the register containing the linear pointer to
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; the top of the stack frame.
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; ProtectMode ONLY
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;
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;--
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MAKE_STACK_FRAME_MACRO macro _FrameName_ , _PointerRegister_
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Local msf1
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mov ecx, (size _FrameName_)/2
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mov esi,_PointerRegister_ ; (esi) = offset of argument frame
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add esi,20 ; account for ebp, ebx, esi, edi and
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; return address
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push KeDataSelector ; (ax) = Flat 32bit segment selector
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pop ds ; (ds:esi) points to argument frame
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push ss ;
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pop es ; (es) = 16bit stack selector
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sub sp, size _FrameName_ ; make room for the arguments
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xor edi,edi ; clear out upper 16bits of edi
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mov di,sp ; (es:edi) points to top of stack
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msf1:
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mov ax,[esi]
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mov es:[edi],ax
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add esi,2
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add edi,2
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loop msf1
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push es ;
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pop ds ; put 16bit selector back into ds
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endm
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REMOVE_STACK_FRAME_MACRO macro _FrameName_
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add sp, size _FrameName_
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endm
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;BuildDescriptor macro Base,Limit,Access,Dpl,Stype
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; dw (Limit AND 0ffffh)
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; dw (Base AND 0ffffh)
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; db ((Base SHR 16) AND 0ffh)
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; db (Gran + Dpl + Stype)
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; db ((Limit SHR 16) AND 0ffh)
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; db ((Base SHR 24) AND 0ffh)
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; endm
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;
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;
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;
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RETURNCODE_IN_EAX_MACRO macro
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shl edx,16
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mov dx,ax
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mov eax,edx
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endm
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