x86emu.c revision 1.7 1 1.7 joerg /* $NetBSD: x86emu.c,v 1.7 2009/02/03 19:26:29 joerg Exp $ */
2 1.1 joerg
3 1.1 joerg /****************************************************************************
4 1.1 joerg *
5 1.1 joerg * Realmode X86 Emulator Library
6 1.1 joerg *
7 1.1 joerg * Copyright (C) 1996-1999 SciTech Software, Inc.
8 1.1 joerg * Copyright (C) David Mosberger-Tang
9 1.1 joerg * Copyright (C) 1999 Egbert Eich
10 1.1 joerg * Copyright (C) 2007 Joerg Sonnenberger
11 1.1 joerg *
12 1.1 joerg * ========================================================================
13 1.1 joerg *
14 1.1 joerg * Permission to use, copy, modify, distribute, and sell this software and
15 1.1 joerg * its documentation for any purpose is hereby granted without fee,
16 1.1 joerg * provided that the above copyright notice appear in all copies and that
17 1.1 joerg * both that copyright notice and this permission notice appear in
18 1.1 joerg * supporting documentation, and that the name of the authors not be used
19 1.1 joerg * in advertising or publicity pertaining to distribution of the software
20 1.1 joerg * without specific, written prior permission. The authors makes no
21 1.1 joerg * representations about the suitability of this software for any purpose.
22 1.1 joerg * It is provided "as is" without express or implied warranty.
23 1.1 joerg *
24 1.1 joerg * THE AUTHORS DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE,
25 1.1 joerg * INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS, IN NO
26 1.1 joerg * EVENT SHALL THE AUTHORS BE LIABLE FOR ANY SPECIAL, INDIRECT OR
27 1.1 joerg * CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF
28 1.1 joerg * USE, DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR
29 1.1 joerg * OTHER TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
30 1.1 joerg * PERFORMANCE OF THIS SOFTWARE.
31 1.1 joerg *
32 1.1 joerg ****************************************************************************/
33 1.1 joerg
34 1.1 joerg #ifndef _KERNEL
35 1.1 joerg #include <stdbool.h>
36 1.1 joerg #endif
37 1.1 joerg
38 1.2 joerg #include <x86emu/x86emu.h>
39 1.2 joerg #include <x86emu/x86emu_regs.h>
40 1.1 joerg
41 1.1 joerg static void x86emu_intr_raise (struct X86EMU *, uint8_t type);
42 1.1 joerg
43 1.1 joerg static void X86EMU_exec_one_byte(struct X86EMU *);
44 1.1 joerg static void X86EMU_exec_two_byte(struct X86EMU *);
45 1.1 joerg
46 1.1 joerg static void fetch_decode_modrm (struct X86EMU *);
47 1.1 joerg static uint8_t fetch_byte_imm (struct X86EMU *);
48 1.1 joerg static uint16_t fetch_word_imm (struct X86EMU *);
49 1.1 joerg static uint32_t fetch_long_imm (struct X86EMU *);
50 1.1 joerg static uint8_t fetch_data_byte (struct X86EMU *, uint32_t offset);
51 1.1 joerg static uint8_t fetch_byte (struct X86EMU *, uint segment, uint32_t offset);
52 1.1 joerg static uint16_t fetch_data_word (struct X86EMU *, uint32_t offset);
53 1.1 joerg static uint16_t fetch_word (struct X86EMU *, uint32_t segment, uint32_t offset);
54 1.1 joerg static uint32_t fetch_data_long (struct X86EMU *, uint32_t offset);
55 1.1 joerg static uint32_t fetch_long (struct X86EMU *, uint32_t segment, uint32_t offset);
56 1.1 joerg static void store_data_byte (struct X86EMU *, uint32_t offset, uint8_t val);
57 1.1 joerg static void store_byte (struct X86EMU *, uint32_t segment, uint32_t offset, uint8_t val);
58 1.1 joerg static void store_data_word (struct X86EMU *, uint32_t offset, uint16_t val);
59 1.1 joerg static void store_word (struct X86EMU *, uint32_t segment, uint32_t offset, uint16_t val);
60 1.1 joerg static void store_data_long (struct X86EMU *, uint32_t offset, uint32_t val);
61 1.1 joerg static void store_long (struct X86EMU *, uint32_t segment, uint32_t offset, uint32_t val);
62 1.1 joerg static uint8_t* decode_rl_byte_register(struct X86EMU *);
63 1.1 joerg static uint16_t* decode_rl_word_register(struct X86EMU *);
64 1.1 joerg static uint32_t* decode_rl_long_register(struct X86EMU *);
65 1.1 joerg static uint8_t* decode_rh_byte_register(struct X86EMU *);
66 1.1 joerg static uint16_t* decode_rh_word_register(struct X86EMU *);
67 1.1 joerg static uint32_t* decode_rh_long_register(struct X86EMU *);
68 1.1 joerg static uint16_t* decode_rh_seg_register(struct X86EMU *);
69 1.1 joerg static uint32_t decode_rl_address(struct X86EMU *);
70 1.1 joerg
71 1.1 joerg static uint8_t decode_and_fetch_byte(struct X86EMU *);
72 1.1 joerg static uint16_t decode_and_fetch_word(struct X86EMU *);
73 1.1 joerg static uint32_t decode_and_fetch_long(struct X86EMU *);
74 1.1 joerg
75 1.1 joerg static uint8_t decode_and_fetch_byte_imm8(struct X86EMU *, uint8_t *);
76 1.1 joerg static uint16_t decode_and_fetch_word_imm8(struct X86EMU *, uint8_t *);
77 1.1 joerg static uint32_t decode_and_fetch_long_imm8(struct X86EMU *, uint8_t *);
78 1.1 joerg
79 1.1 joerg static uint16_t decode_and_fetch_word_disp(struct X86EMU *, int16_t);
80 1.1 joerg static uint32_t decode_and_fetch_long_disp(struct X86EMU *, int16_t);
81 1.1 joerg
82 1.1 joerg static void write_back_byte(struct X86EMU *, uint8_t);
83 1.1 joerg static void write_back_word(struct X86EMU *, uint16_t);
84 1.1 joerg static void write_back_long(struct X86EMU *, uint32_t);
85 1.1 joerg
86 1.1 joerg static uint16_t aaa_word (struct X86EMU *, uint16_t d);
87 1.1 joerg static uint16_t aas_word (struct X86EMU *, uint16_t d);
88 1.1 joerg static uint16_t aad_word (struct X86EMU *, uint16_t d);
89 1.1 joerg static uint16_t aam_word (struct X86EMU *, uint8_t d);
90 1.1 joerg static uint8_t adc_byte (struct X86EMU *, uint8_t d, uint8_t s);
91 1.1 joerg static uint16_t adc_word (struct X86EMU *, uint16_t d, uint16_t s);
92 1.1 joerg static uint32_t adc_long (struct X86EMU *, uint32_t d, uint32_t s);
93 1.1 joerg static uint8_t add_byte (struct X86EMU *, uint8_t d, uint8_t s);
94 1.1 joerg static uint16_t add_word (struct X86EMU *, uint16_t d, uint16_t s);
95 1.1 joerg static uint32_t add_long (struct X86EMU *, uint32_t d, uint32_t s);
96 1.1 joerg static uint8_t and_byte (struct X86EMU *, uint8_t d, uint8_t s);
97 1.1 joerg static uint16_t and_word (struct X86EMU *, uint16_t d, uint16_t s);
98 1.1 joerg static uint32_t and_long (struct X86EMU *, uint32_t d, uint32_t s);
99 1.1 joerg static uint8_t cmp_byte (struct X86EMU *, uint8_t d, uint8_t s);
100 1.1 joerg static uint16_t cmp_word (struct X86EMU *, uint16_t d, uint16_t s);
101 1.1 joerg static uint32_t cmp_long (struct X86EMU *, uint32_t d, uint32_t s);
102 1.1 joerg static void cmp_byte_no_return (struct X86EMU *, uint8_t d, uint8_t s);
103 1.1 joerg static void cmp_word_no_return (struct X86EMU *, uint16_t d, uint16_t s);
104 1.1 joerg static void cmp_long_no_return (struct X86EMU *, uint32_t d, uint32_t s);
105 1.1 joerg static uint8_t daa_byte (struct X86EMU *, uint8_t d);
106 1.1 joerg static uint8_t das_byte (struct X86EMU *, uint8_t d);
107 1.1 joerg static uint8_t dec_byte (struct X86EMU *, uint8_t d);
108 1.1 joerg static uint16_t dec_word (struct X86EMU *, uint16_t d);
109 1.1 joerg static uint32_t dec_long (struct X86EMU *, uint32_t d);
110 1.1 joerg static uint8_t inc_byte (struct X86EMU *, uint8_t d);
111 1.1 joerg static uint16_t inc_word (struct X86EMU *, uint16_t d);
112 1.1 joerg static uint32_t inc_long (struct X86EMU *, uint32_t d);
113 1.1 joerg static uint8_t or_byte (struct X86EMU *, uint8_t d, uint8_t s);
114 1.1 joerg static uint16_t or_word (struct X86EMU *, uint16_t d, uint16_t s);
115 1.1 joerg static uint32_t or_long (struct X86EMU *, uint32_t d, uint32_t s);
116 1.1 joerg static uint8_t neg_byte (struct X86EMU *, uint8_t s);
117 1.1 joerg static uint16_t neg_word (struct X86EMU *, uint16_t s);
118 1.1 joerg static uint32_t neg_long (struct X86EMU *, uint32_t s);
119 1.1 joerg static uint8_t rcl_byte (struct X86EMU *, uint8_t d, uint8_t s);
120 1.1 joerg static uint16_t rcl_word (struct X86EMU *, uint16_t d, uint8_t s);
121 1.1 joerg static uint32_t rcl_long (struct X86EMU *, uint32_t d, uint8_t s);
122 1.1 joerg static uint8_t rcr_byte (struct X86EMU *, uint8_t d, uint8_t s);
123 1.1 joerg static uint16_t rcr_word (struct X86EMU *, uint16_t d, uint8_t s);
124 1.1 joerg static uint32_t rcr_long (struct X86EMU *, uint32_t d, uint8_t s);
125 1.1 joerg static uint8_t rol_byte (struct X86EMU *, uint8_t d, uint8_t s);
126 1.1 joerg static uint16_t rol_word (struct X86EMU *, uint16_t d, uint8_t s);
127 1.1 joerg static uint32_t rol_long (struct X86EMU *, uint32_t d, uint8_t s);
128 1.1 joerg static uint8_t ror_byte (struct X86EMU *, uint8_t d, uint8_t s);
129 1.1 joerg static uint16_t ror_word (struct X86EMU *, uint16_t d, uint8_t s);
130 1.1 joerg static uint32_t ror_long (struct X86EMU *, uint32_t d, uint8_t s);
131 1.1 joerg static uint8_t shl_byte (struct X86EMU *, uint8_t d, uint8_t s);
132 1.1 joerg static uint16_t shl_word (struct X86EMU *, uint16_t d, uint8_t s);
133 1.1 joerg static uint32_t shl_long (struct X86EMU *, uint32_t d, uint8_t s);
134 1.1 joerg static uint8_t shr_byte (struct X86EMU *, uint8_t d, uint8_t s);
135 1.1 joerg static uint16_t shr_word (struct X86EMU *, uint16_t d, uint8_t s);
136 1.1 joerg static uint32_t shr_long (struct X86EMU *, uint32_t d, uint8_t s);
137 1.1 joerg static uint8_t sar_byte (struct X86EMU *, uint8_t d, uint8_t s);
138 1.1 joerg static uint16_t sar_word (struct X86EMU *, uint16_t d, uint8_t s);
139 1.1 joerg static uint32_t sar_long (struct X86EMU *, uint32_t d, uint8_t s);
140 1.1 joerg static uint16_t shld_word (struct X86EMU *, uint16_t d, uint16_t fill, uint8_t s);
141 1.1 joerg static uint32_t shld_long (struct X86EMU *, uint32_t d, uint32_t fill, uint8_t s);
142 1.1 joerg static uint16_t shrd_word (struct X86EMU *, uint16_t d, uint16_t fill, uint8_t s);
143 1.1 joerg static uint32_t shrd_long (struct X86EMU *, uint32_t d, uint32_t fill, uint8_t s);
144 1.1 joerg static uint8_t sbb_byte (struct X86EMU *, uint8_t d, uint8_t s);
145 1.1 joerg static uint16_t sbb_word (struct X86EMU *, uint16_t d, uint16_t s);
146 1.1 joerg static uint32_t sbb_long (struct X86EMU *, uint32_t d, uint32_t s);
147 1.1 joerg static uint8_t sub_byte (struct X86EMU *, uint8_t d, uint8_t s);
148 1.1 joerg static uint16_t sub_word (struct X86EMU *, uint16_t d, uint16_t s);
149 1.1 joerg static uint32_t sub_long (struct X86EMU *, uint32_t d, uint32_t s);
150 1.1 joerg static void test_byte (struct X86EMU *, uint8_t d, uint8_t s);
151 1.1 joerg static void test_word (struct X86EMU *, uint16_t d, uint16_t s);
152 1.1 joerg static void test_long (struct X86EMU *, uint32_t d, uint32_t s);
153 1.1 joerg static uint8_t xor_byte (struct X86EMU *, uint8_t d, uint8_t s);
154 1.1 joerg static uint16_t xor_word (struct X86EMU *, uint16_t d, uint16_t s);
155 1.1 joerg static uint32_t xor_long (struct X86EMU *, uint32_t d, uint32_t s);
156 1.1 joerg static void imul_byte (struct X86EMU *, uint8_t s);
157 1.1 joerg static void imul_word (struct X86EMU *, uint16_t s);
158 1.1 joerg static void imul_long (struct X86EMU *, uint32_t s);
159 1.1 joerg static void mul_byte (struct X86EMU *, uint8_t s);
160 1.1 joerg static void mul_word (struct X86EMU *, uint16_t s);
161 1.1 joerg static void mul_long (struct X86EMU *, uint32_t s);
162 1.1 joerg static void idiv_byte (struct X86EMU *, uint8_t s);
163 1.1 joerg static void idiv_word (struct X86EMU *, uint16_t s);
164 1.1 joerg static void idiv_long (struct X86EMU *, uint32_t s);
165 1.1 joerg static void div_byte (struct X86EMU *, uint8_t s);
166 1.1 joerg static void div_word (struct X86EMU *, uint16_t s);
167 1.1 joerg static void div_long (struct X86EMU *, uint32_t s);
168 1.1 joerg static void ins (struct X86EMU *, int size);
169 1.1 joerg static void outs (struct X86EMU *, int size);
170 1.1 joerg static void push_word (struct X86EMU *, uint16_t w);
171 1.1 joerg static void push_long (struct X86EMU *, uint32_t w);
172 1.1 joerg static uint16_t pop_word (struct X86EMU *);
173 1.1 joerg static uint32_t pop_long (struct X86EMU *);
174 1.1 joerg
175 1.1 joerg /****************************************************************************
176 1.1 joerg REMARKS:
177 1.1 joerg Handles any pending asychronous interrupts.
178 1.1 joerg ****************************************************************************/
179 1.3 joerg static void
180 1.3 joerg x86emu_intr_dispatch(struct X86EMU *emu, uint8_t intno)
181 1.3 joerg {
182 1.3 joerg if (emu->_X86EMU_intrTab[intno]) {
183 1.3 joerg (*emu->_X86EMU_intrTab[intno]) (emu, intno);
184 1.3 joerg } else {
185 1.3 joerg push_word(emu, (uint16_t) emu->x86.R_FLG);
186 1.3 joerg CLEAR_FLAG(F_IF);
187 1.3 joerg CLEAR_FLAG(F_TF);
188 1.3 joerg push_word(emu, emu->x86.R_CS);
189 1.3 joerg emu->x86.R_CS = fetch_word(emu, 0, intno * 4 + 2);
190 1.3 joerg push_word(emu, emu->x86.R_IP);
191 1.3 joerg emu->x86.R_IP = fetch_word(emu, 0, intno * 4);
192 1.3 joerg }
193 1.3 joerg }
194 1.3 joerg
195 1.1 joerg static void
196 1.1 joerg x86emu_intr_handle(struct X86EMU *emu)
197 1.1 joerg {
198 1.1 joerg uint8_t intno;
199 1.1 joerg
200 1.1 joerg if (emu->x86.intr & INTR_SYNCH) {
201 1.1 joerg intno = emu->x86.intno;
202 1.3 joerg emu->x86.intr = 0;
203 1.3 joerg x86emu_intr_dispatch(emu, intno);
204 1.1 joerg }
205 1.1 joerg }
206 1.1 joerg /****************************************************************************
207 1.1 joerg PARAMETERS:
208 1.1 joerg intrnum - Interrupt number to raise
209 1.1 joerg
210 1.1 joerg REMARKS:
211 1.1 joerg Raise the specified interrupt to be handled before the execution of the
212 1.1 joerg next instruction.
213 1.1 joerg ****************************************************************************/
214 1.1 joerg void
215 1.1 joerg x86emu_intr_raise(struct X86EMU *emu, uint8_t intrnum)
216 1.1 joerg {
217 1.1 joerg emu->x86.intno = intrnum;
218 1.1 joerg emu->x86.intr |= INTR_SYNCH;
219 1.1 joerg }
220 1.1 joerg /****************************************************************************
221 1.1 joerg REMARKS:
222 1.1 joerg Main execution loop for the emulator. We return from here when the system
223 1.1 joerg halts, which is normally caused by a stack fault when we return from the
224 1.1 joerg original real mode call.
225 1.1 joerg ****************************************************************************/
226 1.1 joerg void
227 1.1 joerg X86EMU_exec(struct X86EMU *emu)
228 1.1 joerg {
229 1.1 joerg emu->x86.intr = 0;
230 1.1 joerg
231 1.1 joerg #ifdef _KERNEL
232 1.1 joerg if (setjmp(&emu->exec_state))
233 1.1 joerg return;
234 1.1 joerg #else
235 1.1 joerg if (setjmp(emu->exec_state))
236 1.1 joerg return;
237 1.1 joerg #endif
238 1.1 joerg
239 1.1 joerg for (;;) {
240 1.1 joerg if (emu->x86.intr) {
241 1.1 joerg if (((emu->x86.intr & INTR_SYNCH) && (emu->x86.intno == 0 || emu->x86.intno == 2)) ||
242 1.1 joerg !ACCESS_FLAG(F_IF)) {
243 1.1 joerg x86emu_intr_handle(emu);
244 1.1 joerg }
245 1.1 joerg }
246 1.7 joerg if (emu->x86.R_CS == 0 && emu->x86.R_IP == 0)
247 1.7 joerg return;
248 1.1 joerg X86EMU_exec_one_byte(emu);
249 1.1 joerg ++emu->cur_cycles;
250 1.1 joerg }
251 1.1 joerg }
252 1.1 joerg
253 1.1 joerg void
254 1.1 joerg X86EMU_exec_call(struct X86EMU *emu, uint16_t seg, uint16_t off)
255 1.1 joerg {
256 1.1 joerg push_word(emu, 0);
257 1.1 joerg push_word(emu, 0);
258 1.1 joerg emu->x86.R_CS = seg;
259 1.1 joerg emu->x86.R_IP = off;
260 1.1 joerg
261 1.1 joerg X86EMU_exec(emu);
262 1.1 joerg }
263 1.1 joerg
264 1.1 joerg void
265 1.1 joerg X86EMU_exec_intr(struct X86EMU *emu, uint8_t intr)
266 1.1 joerg {
267 1.1 joerg push_word(emu, emu->x86.R_FLG);
268 1.1 joerg CLEAR_FLAG(F_IF);
269 1.1 joerg CLEAR_FLAG(F_TF);
270 1.1 joerg push_word(emu, 0);
271 1.1 joerg push_word(emu, 0);
272 1.1 joerg emu->x86.R_CS = (*emu->emu_rdw)(emu, intr * 4 + 2);
273 1.1 joerg emu->x86.R_IP = (*emu->emu_rdw)(emu, intr * 4);
274 1.1 joerg emu->x86.intr = 0;
275 1.1 joerg
276 1.1 joerg X86EMU_exec(emu);
277 1.1 joerg }
278 1.1 joerg /****************************************************************************
279 1.1 joerg REMARKS:
280 1.1 joerg Halts the system by setting the halted system flag.
281 1.1 joerg ****************************************************************************/
282 1.1 joerg void
283 1.1 joerg X86EMU_halt_sys(struct X86EMU *emu)
284 1.1 joerg {
285 1.1 joerg #ifdef _KERNEL
286 1.1 joerg longjmp(&emu->exec_state);
287 1.1 joerg #else
288 1.1 joerg longjmp(emu->exec_state, 1);
289 1.1 joerg #endif
290 1.1 joerg }
291 1.1 joerg /****************************************************************************
292 1.1 joerg PARAMETERS:
293 1.1 joerg mod - Mod value from decoded byte
294 1.1 joerg regh - Reg h value from decoded byte
295 1.1 joerg regl - Reg l value from decoded byte
296 1.1 joerg
297 1.1 joerg REMARKS:
298 1.1 joerg Raise the specified interrupt to be handled before the execution of the
299 1.1 joerg next instruction.
300 1.1 joerg
301 1.1 joerg NOTE: Do not inline this function, as (*emu->emu_rdb) is already inline!
302 1.1 joerg ****************************************************************************/
303 1.1 joerg static void
304 1.1 joerg fetch_decode_modrm(struct X86EMU *emu)
305 1.1 joerg {
306 1.1 joerg int fetched;
307 1.1 joerg
308 1.1 joerg fetched = fetch_byte_imm(emu);
309 1.1 joerg emu->cur_mod = (fetched >> 6) & 0x03;
310 1.1 joerg emu->cur_rh = (fetched >> 3) & 0x07;
311 1.1 joerg emu->cur_rl = (fetched >> 0) & 0x07;
312 1.1 joerg }
313 1.1 joerg /****************************************************************************
314 1.1 joerg RETURNS:
315 1.1 joerg Immediate byte value read from instruction queue
316 1.1 joerg
317 1.1 joerg REMARKS:
318 1.1 joerg This function returns the immediate byte from the instruction queue, and
319 1.1 joerg moves the instruction pointer to the next value.
320 1.1 joerg
321 1.1 joerg NOTE: Do not inline this function, as (*emu->emu_rdb) is already inline!
322 1.1 joerg ****************************************************************************/
323 1.1 joerg static uint8_t
324 1.1 joerg fetch_byte_imm(struct X86EMU *emu)
325 1.1 joerg {
326 1.1 joerg uint8_t fetched;
327 1.1 joerg
328 1.1 joerg fetched = fetch_byte(emu, emu->x86.R_CS, emu->x86.R_IP);
329 1.1 joerg emu->x86.R_IP++;
330 1.1 joerg return fetched;
331 1.1 joerg }
332 1.1 joerg /****************************************************************************
333 1.1 joerg RETURNS:
334 1.1 joerg Immediate word value read from instruction queue
335 1.1 joerg
336 1.1 joerg REMARKS:
337 1.1 joerg This function returns the immediate byte from the instruction queue, and
338 1.1 joerg moves the instruction pointer to the next value.
339 1.1 joerg
340 1.1 joerg NOTE: Do not inline this function, as (*emu->emu_rdw) is already inline!
341 1.1 joerg ****************************************************************************/
342 1.1 joerg static uint16_t
343 1.1 joerg fetch_word_imm(struct X86EMU *emu)
344 1.1 joerg {
345 1.1 joerg uint16_t fetched;
346 1.1 joerg
347 1.1 joerg fetched = fetch_word(emu, emu->x86.R_CS, emu->x86.R_IP);
348 1.1 joerg emu->x86.R_IP += 2;
349 1.1 joerg return fetched;
350 1.1 joerg }
351 1.1 joerg /****************************************************************************
352 1.1 joerg RETURNS:
353 1.1 joerg Immediate lone value read from instruction queue
354 1.1 joerg
355 1.1 joerg REMARKS:
356 1.1 joerg This function returns the immediate byte from the instruction queue, and
357 1.1 joerg moves the instruction pointer to the next value.
358 1.1 joerg
359 1.1 joerg NOTE: Do not inline this function, as (*emu->emu_rdw) is already inline!
360 1.1 joerg ****************************************************************************/
361 1.1 joerg static uint32_t
362 1.1 joerg fetch_long_imm(struct X86EMU *emu)
363 1.1 joerg {
364 1.1 joerg uint32_t fetched;
365 1.1 joerg
366 1.1 joerg fetched = fetch_long(emu, emu->x86.R_CS, emu->x86.R_IP);
367 1.1 joerg emu->x86.R_IP += 4;
368 1.1 joerg return fetched;
369 1.1 joerg }
370 1.1 joerg /****************************************************************************
371 1.1 joerg RETURNS:
372 1.1 joerg Value of the default data segment
373 1.1 joerg
374 1.1 joerg REMARKS:
375 1.1 joerg Inline function that returns the default data segment for the current
376 1.1 joerg instruction.
377 1.1 joerg
378 1.1 joerg On the x86 processor, the default segment is not always DS if there is
379 1.1 joerg no segment override. Address modes such as -3[BP] or 10[BP+SI] all refer to
380 1.1 joerg addresses relative to SS (ie: on the stack). So, at the minimum, all
381 1.1 joerg decodings of addressing modes would have to set/clear a bit describing
382 1.1 joerg whether the access is relative to DS or SS. That is the function of the
383 1.1 joerg cpu-state-varible emu->x86.mode. There are several potential states:
384 1.1 joerg
385 1.1 joerg repe prefix seen (handled elsewhere)
386 1.1 joerg repne prefix seen (ditto)
387 1.1 joerg
388 1.1 joerg cs segment override
389 1.1 joerg ds segment override
390 1.1 joerg es segment override
391 1.1 joerg fs segment override
392 1.1 joerg gs segment override
393 1.1 joerg ss segment override
394 1.1 joerg
395 1.1 joerg ds/ss select (in absense of override)
396 1.1 joerg
397 1.1 joerg Each of the above 7 items are handled with a bit in the mode field.
398 1.1 joerg ****************************************************************************/
399 1.1 joerg static uint32_t
400 1.1 joerg get_data_segment(struct X86EMU *emu)
401 1.1 joerg {
402 1.1 joerg switch (emu->x86.mode & SYSMODE_SEGMASK) {
403 1.1 joerg case 0: /* default case: use ds register */
404 1.1 joerg case SYSMODE_SEGOVR_DS:
405 1.1 joerg case SYSMODE_SEGOVR_DS | SYSMODE_SEG_DS_SS:
406 1.1 joerg return emu->x86.R_DS;
407 1.1 joerg case SYSMODE_SEG_DS_SS:/* non-overridden, use ss register */
408 1.1 joerg return emu->x86.R_SS;
409 1.1 joerg case SYSMODE_SEGOVR_CS:
410 1.1 joerg case SYSMODE_SEGOVR_CS | SYSMODE_SEG_DS_SS:
411 1.1 joerg return emu->x86.R_CS;
412 1.1 joerg case SYSMODE_SEGOVR_ES:
413 1.1 joerg case SYSMODE_SEGOVR_ES | SYSMODE_SEG_DS_SS:
414 1.1 joerg return emu->x86.R_ES;
415 1.1 joerg case SYSMODE_SEGOVR_FS:
416 1.1 joerg case SYSMODE_SEGOVR_FS | SYSMODE_SEG_DS_SS:
417 1.1 joerg return emu->x86.R_FS;
418 1.1 joerg case SYSMODE_SEGOVR_GS:
419 1.1 joerg case SYSMODE_SEGOVR_GS | SYSMODE_SEG_DS_SS:
420 1.1 joerg return emu->x86.R_GS;
421 1.1 joerg case SYSMODE_SEGOVR_SS:
422 1.1 joerg case SYSMODE_SEGOVR_SS | SYSMODE_SEG_DS_SS:
423 1.1 joerg return emu->x86.R_SS;
424 1.1 joerg }
425 1.1 joerg X86EMU_halt_sys(emu);
426 1.1 joerg }
427 1.1 joerg /****************************************************************************
428 1.1 joerg PARAMETERS:
429 1.1 joerg offset - Offset to load data from
430 1.1 joerg
431 1.1 joerg RETURNS:
432 1.1 joerg Byte value read from the absolute memory location.
433 1.1 joerg
434 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
435 1.1 joerg ****************************************************************************/
436 1.1 joerg static uint8_t
437 1.1 joerg fetch_data_byte(struct X86EMU *emu, uint32_t offset)
438 1.1 joerg {
439 1.1 joerg return fetch_byte(emu, get_data_segment(emu), offset);
440 1.1 joerg }
441 1.1 joerg /****************************************************************************
442 1.1 joerg PARAMETERS:
443 1.1 joerg offset - Offset to load data from
444 1.1 joerg
445 1.1 joerg RETURNS:
446 1.1 joerg Word value read from the absolute memory location.
447 1.1 joerg
448 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
449 1.1 joerg ****************************************************************************/
450 1.1 joerg static uint16_t
451 1.1 joerg fetch_data_word(struct X86EMU *emu, uint32_t offset)
452 1.1 joerg {
453 1.1 joerg return fetch_word(emu, get_data_segment(emu), offset);
454 1.1 joerg }
455 1.1 joerg /****************************************************************************
456 1.1 joerg PARAMETERS:
457 1.1 joerg offset - Offset to load data from
458 1.1 joerg
459 1.1 joerg RETURNS:
460 1.1 joerg Long value read from the absolute memory location.
461 1.1 joerg
462 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
463 1.1 joerg ****************************************************************************/
464 1.1 joerg static uint32_t
465 1.1 joerg fetch_data_long(struct X86EMU *emu, uint32_t offset)
466 1.1 joerg {
467 1.1 joerg return fetch_long(emu, get_data_segment(emu), offset);
468 1.1 joerg }
469 1.1 joerg /****************************************************************************
470 1.1 joerg PARAMETERS:
471 1.1 joerg segment - Segment to load data from
472 1.1 joerg offset - Offset to load data from
473 1.1 joerg
474 1.1 joerg RETURNS:
475 1.1 joerg Byte value read from the absolute memory location.
476 1.1 joerg
477 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
478 1.1 joerg ****************************************************************************/
479 1.1 joerg static uint8_t
480 1.1 joerg fetch_byte(struct X86EMU *emu, uint32_t segment, uint32_t offset)
481 1.1 joerg {
482 1.1 joerg return (*emu->emu_rdb) (emu, ((uint32_t) segment << 4) + offset);
483 1.1 joerg }
484 1.1 joerg /****************************************************************************
485 1.1 joerg PARAMETERS:
486 1.1 joerg segment - Segment to load data from
487 1.1 joerg offset - Offset to load data from
488 1.1 joerg
489 1.1 joerg RETURNS:
490 1.1 joerg Word value read from the absolute memory location.
491 1.1 joerg
492 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
493 1.1 joerg ****************************************************************************/
494 1.1 joerg static uint16_t
495 1.1 joerg fetch_word(struct X86EMU *emu, uint32_t segment, uint32_t offset)
496 1.1 joerg {
497 1.1 joerg return (*emu->emu_rdw) (emu, ((uint32_t) segment << 4) + offset);
498 1.1 joerg }
499 1.1 joerg /****************************************************************************
500 1.1 joerg PARAMETERS:
501 1.1 joerg segment - Segment to load data from
502 1.1 joerg offset - Offset to load data from
503 1.1 joerg
504 1.1 joerg RETURNS:
505 1.1 joerg Long value read from the absolute memory location.
506 1.1 joerg
507 1.1 joerg NOTE: Do not inline this function as (*emu->emu_rdX) is already inline!
508 1.1 joerg ****************************************************************************/
509 1.1 joerg static uint32_t
510 1.1 joerg fetch_long(struct X86EMU *emu, uint32_t segment, uint32_t offset)
511 1.1 joerg {
512 1.1 joerg return (*emu->emu_rdl) (emu, ((uint32_t) segment << 4) + offset);
513 1.1 joerg }
514 1.1 joerg /****************************************************************************
515 1.1 joerg PARAMETERS:
516 1.1 joerg offset - Offset to store data at
517 1.1 joerg val - Value to store
518 1.1 joerg
519 1.1 joerg REMARKS:
520 1.1 joerg Writes a word value to an segmented memory location. The segment used is
521 1.1 joerg the current 'default' segment, which may have been overridden.
522 1.1 joerg
523 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
524 1.1 joerg ****************************************************************************/
525 1.1 joerg static void
526 1.1 joerg store_data_byte(struct X86EMU *emu, uint32_t offset, uint8_t val)
527 1.1 joerg {
528 1.1 joerg store_byte(emu, get_data_segment(emu), offset, val);
529 1.1 joerg }
530 1.1 joerg /****************************************************************************
531 1.1 joerg PARAMETERS:
532 1.1 joerg offset - Offset to store data at
533 1.1 joerg val - Value to store
534 1.1 joerg
535 1.1 joerg REMARKS:
536 1.1 joerg Writes a word value to an segmented memory location. The segment used is
537 1.1 joerg the current 'default' segment, which may have been overridden.
538 1.1 joerg
539 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
540 1.1 joerg ****************************************************************************/
541 1.1 joerg static void
542 1.1 joerg store_data_word(struct X86EMU *emu, uint32_t offset, uint16_t val)
543 1.1 joerg {
544 1.1 joerg store_word(emu, get_data_segment(emu), offset, val);
545 1.1 joerg }
546 1.1 joerg /****************************************************************************
547 1.1 joerg PARAMETERS:
548 1.1 joerg offset - Offset to store data at
549 1.1 joerg val - Value to store
550 1.1 joerg
551 1.1 joerg REMARKS:
552 1.1 joerg Writes a long value to an segmented memory location. The segment used is
553 1.1 joerg the current 'default' segment, which may have been overridden.
554 1.1 joerg
555 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
556 1.1 joerg ****************************************************************************/
557 1.1 joerg static void
558 1.1 joerg store_data_long(struct X86EMU *emu, uint32_t offset, uint32_t val)
559 1.1 joerg {
560 1.1 joerg store_long(emu, get_data_segment(emu), offset, val);
561 1.1 joerg }
562 1.1 joerg /****************************************************************************
563 1.1 joerg PARAMETERS:
564 1.1 joerg segment - Segment to store data at
565 1.1 joerg offset - Offset to store data at
566 1.1 joerg val - Value to store
567 1.1 joerg
568 1.1 joerg REMARKS:
569 1.1 joerg Writes a byte value to an absolute memory location.
570 1.1 joerg
571 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
572 1.1 joerg ****************************************************************************/
573 1.1 joerg static void
574 1.1 joerg store_byte(struct X86EMU *emu, uint32_t segment, uint32_t offset, uint8_t val)
575 1.1 joerg {
576 1.1 joerg (*emu->emu_wrb) (emu, ((uint32_t) segment << 4) + offset, val);
577 1.1 joerg }
578 1.1 joerg /****************************************************************************
579 1.1 joerg PARAMETERS:
580 1.1 joerg segment - Segment to store data at
581 1.1 joerg offset - Offset to store data at
582 1.1 joerg val - Value to store
583 1.1 joerg
584 1.1 joerg REMARKS:
585 1.1 joerg Writes a word value to an absolute memory location.
586 1.1 joerg
587 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
588 1.1 joerg ****************************************************************************/
589 1.1 joerg static void
590 1.1 joerg store_word(struct X86EMU *emu, uint32_t segment, uint32_t offset, uint16_t val)
591 1.1 joerg {
592 1.1 joerg (*emu->emu_wrw) (emu, ((uint32_t) segment << 4) + offset, val);
593 1.1 joerg }
594 1.1 joerg /****************************************************************************
595 1.1 joerg PARAMETERS:
596 1.1 joerg segment - Segment to store data at
597 1.1 joerg offset - Offset to store data at
598 1.1 joerg val - Value to store
599 1.1 joerg
600 1.1 joerg REMARKS:
601 1.1 joerg Writes a long value to an absolute memory location.
602 1.1 joerg
603 1.1 joerg NOTE: Do not inline this function as (*emu->emu_wrX) is already inline!
604 1.1 joerg ****************************************************************************/
605 1.1 joerg static void
606 1.1 joerg store_long(struct X86EMU *emu, uint32_t segment, uint32_t offset, uint32_t val)
607 1.1 joerg {
608 1.1 joerg (*emu->emu_wrl) (emu, ((uint32_t) segment << 4) + offset, val);
609 1.1 joerg }
610 1.1 joerg /****************************************************************************
611 1.1 joerg PARAMETERS:
612 1.1 joerg reg - Register to decode
613 1.1 joerg
614 1.1 joerg RETURNS:
615 1.1 joerg Pointer to the appropriate register
616 1.1 joerg
617 1.1 joerg REMARKS:
618 1.1 joerg Return a pointer to the register given by the R/RM field of the
619 1.1 joerg modrm byte, for byte operands. Also enables the decoding of instructions.
620 1.1 joerg ****************************************************************************/
621 1.1 joerg static uint8_t *
622 1.1 joerg decode_rm_byte_register(struct X86EMU *emu, int reg)
623 1.1 joerg {
624 1.1 joerg switch (reg) {
625 1.1 joerg case 0:
626 1.1 joerg return &emu->x86.R_AL;
627 1.1 joerg case 1:
628 1.1 joerg return &emu->x86.R_CL;
629 1.1 joerg case 2:
630 1.1 joerg return &emu->x86.R_DL;
631 1.1 joerg case 3:
632 1.1 joerg return &emu->x86.R_BL;
633 1.1 joerg case 4:
634 1.1 joerg return &emu->x86.R_AH;
635 1.1 joerg case 5:
636 1.1 joerg return &emu->x86.R_CH;
637 1.1 joerg case 6:
638 1.1 joerg return &emu->x86.R_DH;
639 1.1 joerg case 7:
640 1.1 joerg return &emu->x86.R_BH;
641 1.1 joerg default:
642 1.1 joerg X86EMU_halt_sys(emu);
643 1.1 joerg }
644 1.1 joerg }
645 1.1 joerg
646 1.1 joerg static uint8_t *
647 1.1 joerg decode_rl_byte_register(struct X86EMU *emu)
648 1.1 joerg {
649 1.1 joerg return decode_rm_byte_register(emu, emu->cur_rl);
650 1.1 joerg }
651 1.1 joerg
652 1.1 joerg static uint8_t *
653 1.1 joerg decode_rh_byte_register(struct X86EMU *emu)
654 1.1 joerg {
655 1.1 joerg return decode_rm_byte_register(emu, emu->cur_rh);
656 1.1 joerg }
657 1.1 joerg /****************************************************************************
658 1.1 joerg PARAMETERS:
659 1.1 joerg reg - Register to decode
660 1.1 joerg
661 1.1 joerg RETURNS:
662 1.1 joerg Pointer to the appropriate register
663 1.1 joerg
664 1.1 joerg REMARKS:
665 1.1 joerg Return a pointer to the register given by the R/RM field of the
666 1.1 joerg modrm byte, for word operands. Also enables the decoding of instructions.
667 1.1 joerg ****************************************************************************/
668 1.1 joerg static uint16_t *
669 1.1 joerg decode_rm_word_register(struct X86EMU *emu, int reg)
670 1.1 joerg {
671 1.1 joerg switch (reg) {
672 1.1 joerg case 0:
673 1.1 joerg return &emu->x86.R_AX;
674 1.1 joerg case 1:
675 1.1 joerg return &emu->x86.R_CX;
676 1.1 joerg case 2:
677 1.1 joerg return &emu->x86.R_DX;
678 1.1 joerg case 3:
679 1.1 joerg return &emu->x86.R_BX;
680 1.1 joerg case 4:
681 1.1 joerg return &emu->x86.R_SP;
682 1.1 joerg case 5:
683 1.1 joerg return &emu->x86.R_BP;
684 1.1 joerg case 6:
685 1.1 joerg return &emu->x86.R_SI;
686 1.1 joerg case 7:
687 1.1 joerg return &emu->x86.R_DI;
688 1.1 joerg default:
689 1.1 joerg X86EMU_halt_sys(emu);
690 1.1 joerg }
691 1.1 joerg }
692 1.1 joerg
693 1.1 joerg static uint16_t *
694 1.1 joerg decode_rl_word_register(struct X86EMU *emu)
695 1.1 joerg {
696 1.1 joerg return decode_rm_word_register(emu, emu->cur_rl);
697 1.1 joerg }
698 1.1 joerg
699 1.1 joerg static uint16_t *
700 1.1 joerg decode_rh_word_register(struct X86EMU *emu)
701 1.1 joerg {
702 1.1 joerg return decode_rm_word_register(emu, emu->cur_rh);
703 1.1 joerg }
704 1.1 joerg /****************************************************************************
705 1.1 joerg PARAMETERS:
706 1.1 joerg reg - Register to decode
707 1.1 joerg
708 1.1 joerg RETURNS:
709 1.1 joerg Pointer to the appropriate register
710 1.1 joerg
711 1.1 joerg REMARKS:
712 1.1 joerg Return a pointer to the register given by the R/RM field of the
713 1.1 joerg modrm byte, for dword operands. Also enables the decoding of instructions.
714 1.1 joerg ****************************************************************************/
715 1.1 joerg static uint32_t *
716 1.1 joerg decode_rm_long_register(struct X86EMU *emu, int reg)
717 1.1 joerg {
718 1.1 joerg switch (reg) {
719 1.1 joerg case 0:
720 1.1 joerg return &emu->x86.R_EAX;
721 1.1 joerg case 1:
722 1.1 joerg return &emu->x86.R_ECX;
723 1.1 joerg case 2:
724 1.1 joerg return &emu->x86.R_EDX;
725 1.1 joerg case 3:
726 1.1 joerg return &emu->x86.R_EBX;
727 1.1 joerg case 4:
728 1.1 joerg return &emu->x86.R_ESP;
729 1.1 joerg case 5:
730 1.1 joerg return &emu->x86.R_EBP;
731 1.1 joerg case 6:
732 1.1 joerg return &emu->x86.R_ESI;
733 1.1 joerg case 7:
734 1.1 joerg return &emu->x86.R_EDI;
735 1.1 joerg default:
736 1.1 joerg X86EMU_halt_sys(emu);
737 1.1 joerg }
738 1.1 joerg }
739 1.1 joerg
740 1.1 joerg static uint32_t *
741 1.1 joerg decode_rl_long_register(struct X86EMU *emu)
742 1.1 joerg {
743 1.1 joerg return decode_rm_long_register(emu, emu->cur_rl);
744 1.1 joerg }
745 1.1 joerg
746 1.1 joerg static uint32_t *
747 1.1 joerg decode_rh_long_register(struct X86EMU *emu)
748 1.1 joerg {
749 1.1 joerg return decode_rm_long_register(emu, emu->cur_rh);
750 1.1 joerg }
751 1.1 joerg
752 1.1 joerg /****************************************************************************
753 1.1 joerg PARAMETERS:
754 1.1 joerg reg - Register to decode
755 1.1 joerg
756 1.1 joerg RETURNS:
757 1.1 joerg Pointer to the appropriate register
758 1.1 joerg
759 1.1 joerg REMARKS:
760 1.1 joerg Return a pointer to the register given by the R/RM field of the
761 1.1 joerg modrm byte, for word operands, modified from above for the weirdo
762 1.1 joerg special case of segreg operands. Also enables the decoding of instructions.
763 1.1 joerg ****************************************************************************/
764 1.1 joerg static uint16_t *
765 1.1 joerg decode_rh_seg_register(struct X86EMU *emu)
766 1.1 joerg {
767 1.1 joerg switch (emu->cur_rh) {
768 1.1 joerg case 0:
769 1.1 joerg return &emu->x86.R_ES;
770 1.1 joerg case 1:
771 1.1 joerg return &emu->x86.R_CS;
772 1.1 joerg case 2:
773 1.1 joerg return &emu->x86.R_SS;
774 1.1 joerg case 3:
775 1.1 joerg return &emu->x86.R_DS;
776 1.1 joerg case 4:
777 1.1 joerg return &emu->x86.R_FS;
778 1.1 joerg case 5:
779 1.1 joerg return &emu->x86.R_GS;
780 1.1 joerg default:
781 1.1 joerg X86EMU_halt_sys(emu);
782 1.1 joerg }
783 1.1 joerg }
784 1.1 joerg /*
785 1.1 joerg *
786 1.1 joerg * return offset from the SIB Byte
787 1.1 joerg */
788 1.1 joerg static uint32_t
789 1.1 joerg decode_sib_address(struct X86EMU *emu, int sib, int mod)
790 1.1 joerg {
791 1.1 joerg uint32_t base = 0, i = 0, scale = 1;
792 1.1 joerg
793 1.1 joerg switch (sib & 0x07) {
794 1.1 joerg case 0:
795 1.1 joerg base = emu->x86.R_EAX;
796 1.1 joerg break;
797 1.1 joerg case 1:
798 1.1 joerg base = emu->x86.R_ECX;
799 1.1 joerg break;
800 1.1 joerg case 2:
801 1.1 joerg base = emu->x86.R_EDX;
802 1.1 joerg break;
803 1.1 joerg case 3:
804 1.1 joerg base = emu->x86.R_EBX;
805 1.1 joerg break;
806 1.1 joerg case 4:
807 1.1 joerg base = emu->x86.R_ESP;
808 1.1 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
809 1.1 joerg break;
810 1.1 joerg case 5:
811 1.1 joerg if (mod == 0) {
812 1.1 joerg base = fetch_long_imm(emu);
813 1.1 joerg } else {
814 1.6 joerg base = emu->x86.R_EBP;
815 1.1 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
816 1.1 joerg }
817 1.1 joerg break;
818 1.1 joerg case 6:
819 1.1 joerg base = emu->x86.R_ESI;
820 1.1 joerg break;
821 1.1 joerg case 7:
822 1.1 joerg base = emu->x86.R_EDI;
823 1.1 joerg break;
824 1.1 joerg }
825 1.1 joerg switch ((sib >> 3) & 0x07) {
826 1.1 joerg case 0:
827 1.1 joerg i = emu->x86.R_EAX;
828 1.1 joerg break;
829 1.1 joerg case 1:
830 1.1 joerg i = emu->x86.R_ECX;
831 1.1 joerg break;
832 1.1 joerg case 2:
833 1.1 joerg i = emu->x86.R_EDX;
834 1.1 joerg break;
835 1.1 joerg case 3:
836 1.1 joerg i = emu->x86.R_EBX;
837 1.1 joerg break;
838 1.1 joerg case 4:
839 1.1 joerg i = 0;
840 1.1 joerg break;
841 1.1 joerg case 5:
842 1.1 joerg i = emu->x86.R_EBP;
843 1.1 joerg break;
844 1.1 joerg case 6:
845 1.1 joerg i = emu->x86.R_ESI;
846 1.1 joerg break;
847 1.1 joerg case 7:
848 1.1 joerg i = emu->x86.R_EDI;
849 1.1 joerg break;
850 1.1 joerg }
851 1.1 joerg scale = 1 << ((sib >> 6) & 0x03);
852 1.1 joerg return base + (i * scale);
853 1.1 joerg }
854 1.1 joerg /****************************************************************************
855 1.1 joerg PARAMETERS:
856 1.1 joerg rm - RM value to decode
857 1.1 joerg
858 1.1 joerg RETURNS:
859 1.1 joerg Offset in memory for the address decoding
860 1.1 joerg
861 1.1 joerg REMARKS:
862 1.1 joerg Return the offset given by mod=00, mod=01 or mod=10 addressing.
863 1.1 joerg Also enables the decoding of instructions.
864 1.1 joerg ****************************************************************************/
865 1.1 joerg static uint32_t
866 1.1 joerg decode_rl_address(struct X86EMU *emu)
867 1.1 joerg {
868 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_ADDR) {
869 1.1 joerg uint32_t offset, sib;
870 1.1 joerg /* 32-bit addressing */
871 1.1 joerg switch (emu->cur_rl) {
872 1.1 joerg case 0:
873 1.1 joerg offset = emu->x86.R_EAX;
874 1.1 joerg break;
875 1.1 joerg case 1:
876 1.1 joerg offset = emu->x86.R_ECX;
877 1.1 joerg break;
878 1.1 joerg case 2:
879 1.1 joerg offset = emu->x86.R_EDX;
880 1.1 joerg break;
881 1.1 joerg case 3:
882 1.1 joerg offset = emu->x86.R_EBX;
883 1.1 joerg break;
884 1.1 joerg case 4:
885 1.1 joerg sib = fetch_byte_imm(emu);
886 1.1 joerg offset = decode_sib_address(emu, sib, 0);
887 1.1 joerg break;
888 1.1 joerg case 5:
889 1.6 joerg if (emu->cur_mod == 0) {
890 1.1 joerg offset = fetch_long_imm(emu);
891 1.6 joerg } else {
892 1.6 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
893 1.1 joerg offset = emu->x86.R_EBP;
894 1.6 joerg }
895 1.1 joerg break;
896 1.1 joerg case 6:
897 1.1 joerg offset = emu->x86.R_ESI;
898 1.1 joerg break;
899 1.1 joerg case 7:
900 1.1 joerg offset = emu->x86.R_EDI;
901 1.1 joerg break;
902 1.1 joerg default:
903 1.1 joerg X86EMU_halt_sys(emu);
904 1.1 joerg }
905 1.1 joerg if (emu->cur_mod == 1)
906 1.1 joerg offset += (int8_t)fetch_byte_imm(emu);
907 1.1 joerg else if (emu->cur_mod == 2)
908 1.1 joerg offset += fetch_long_imm(emu);
909 1.1 joerg return offset;
910 1.1 joerg } else {
911 1.1 joerg uint16_t offset;
912 1.1 joerg
913 1.1 joerg /* 16-bit addressing */
914 1.1 joerg switch (emu->cur_rl) {
915 1.1 joerg case 0:
916 1.1 joerg offset = emu->x86.R_BX + emu->x86.R_SI;
917 1.1 joerg break;
918 1.1 joerg case 1:
919 1.1 joerg offset = emu->x86.R_BX + emu->x86.R_DI;
920 1.1 joerg break;
921 1.1 joerg case 2:
922 1.1 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
923 1.1 joerg offset = emu->x86.R_BP + emu->x86.R_SI;
924 1.1 joerg break;
925 1.1 joerg case 3:
926 1.1 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
927 1.1 joerg offset = emu->x86.R_BP + emu->x86.R_DI;
928 1.1 joerg break;
929 1.1 joerg case 4:
930 1.1 joerg offset = emu->x86.R_SI;
931 1.1 joerg break;
932 1.1 joerg case 5:
933 1.1 joerg offset = emu->x86.R_DI;
934 1.1 joerg break;
935 1.1 joerg case 6:
936 1.6 joerg if (emu->cur_mod == 0) {
937 1.1 joerg offset = fetch_word_imm(emu);
938 1.6 joerg } else {
939 1.6 joerg emu->x86.mode |= SYSMODE_SEG_DS_SS;
940 1.1 joerg offset = emu->x86.R_BP;
941 1.6 joerg }
942 1.1 joerg break;
943 1.1 joerg case 7:
944 1.1 joerg offset = emu->x86.R_BX;
945 1.1 joerg break;
946 1.1 joerg default:
947 1.1 joerg X86EMU_halt_sys(emu);
948 1.1 joerg }
949 1.1 joerg if (emu->cur_mod == 1)
950 1.1 joerg offset += (int8_t)fetch_byte_imm(emu);
951 1.1 joerg else if (emu->cur_mod == 2)
952 1.1 joerg offset += fetch_word_imm(emu);
953 1.1 joerg return offset;
954 1.1 joerg }
955 1.1 joerg }
956 1.1 joerg
957 1.1 joerg static uint8_t
958 1.1 joerg decode_and_fetch_byte(struct X86EMU *emu)
959 1.1 joerg {
960 1.1 joerg if (emu->cur_mod != 3) {
961 1.1 joerg emu->cur_offset = decode_rl_address(emu);
962 1.1 joerg return fetch_data_byte(emu, emu->cur_offset);
963 1.1 joerg } else {
964 1.1 joerg return *decode_rl_byte_register(emu);
965 1.1 joerg }
966 1.1 joerg }
967 1.1 joerg
968 1.1 joerg static uint16_t
969 1.1 joerg decode_and_fetch_word_disp(struct X86EMU *emu, int16_t disp)
970 1.1 joerg {
971 1.1 joerg if (emu->cur_mod != 3) {
972 1.1 joerg /* TODO: A20 gate emulation */
973 1.1 joerg emu->cur_offset = decode_rl_address(emu) + disp;
974 1.1 joerg if ((emu->x86.mode & SYSMODE_PREFIX_ADDR) == 0)
975 1.1 joerg emu->cur_offset &= 0xffff;
976 1.1 joerg return fetch_data_word(emu, emu->cur_offset);
977 1.1 joerg } else {
978 1.1 joerg return *decode_rl_word_register(emu);
979 1.1 joerg }
980 1.1 joerg }
981 1.1 joerg
982 1.1 joerg static uint32_t
983 1.1 joerg decode_and_fetch_long_disp(struct X86EMU *emu, int16_t disp)
984 1.1 joerg {
985 1.1 joerg if (emu->cur_mod != 3) {
986 1.1 joerg /* TODO: A20 gate emulation */
987 1.1 joerg emu->cur_offset = decode_rl_address(emu) + disp;
988 1.1 joerg if ((emu->x86.mode & SYSMODE_PREFIX_ADDR) == 0)
989 1.1 joerg emu->cur_offset &= 0xffff;
990 1.1 joerg return fetch_data_long(emu, emu->cur_offset);
991 1.1 joerg } else {
992 1.1 joerg return *decode_rl_long_register(emu);
993 1.1 joerg }
994 1.1 joerg }
995 1.1 joerg
996 1.1 joerg uint16_t
997 1.1 joerg decode_and_fetch_word(struct X86EMU *emu)
998 1.1 joerg {
999 1.1 joerg return decode_and_fetch_word_disp(emu, 0);
1000 1.1 joerg }
1001 1.1 joerg
1002 1.1 joerg uint32_t
1003 1.1 joerg decode_and_fetch_long(struct X86EMU *emu)
1004 1.1 joerg {
1005 1.1 joerg return decode_and_fetch_long_disp(emu, 0);
1006 1.1 joerg }
1007 1.1 joerg
1008 1.1 joerg uint8_t
1009 1.1 joerg decode_and_fetch_byte_imm8(struct X86EMU *emu, uint8_t *imm)
1010 1.1 joerg {
1011 1.1 joerg if (emu->cur_mod != 3) {
1012 1.1 joerg emu->cur_offset = decode_rl_address(emu);
1013 1.1 joerg *imm = fetch_byte_imm(emu);
1014 1.1 joerg return fetch_data_byte(emu, emu->cur_offset);
1015 1.1 joerg } else {
1016 1.1 joerg *imm = fetch_byte_imm(emu);
1017 1.1 joerg return *decode_rl_byte_register(emu);
1018 1.1 joerg }
1019 1.1 joerg }
1020 1.1 joerg
1021 1.1 joerg static uint16_t
1022 1.1 joerg decode_and_fetch_word_imm8(struct X86EMU *emu, uint8_t *imm)
1023 1.1 joerg {
1024 1.1 joerg if (emu->cur_mod != 3) {
1025 1.1 joerg emu->cur_offset = decode_rl_address(emu);
1026 1.1 joerg *imm = fetch_byte_imm(emu);
1027 1.1 joerg return fetch_data_word(emu, emu->cur_offset);
1028 1.1 joerg } else {
1029 1.1 joerg *imm = fetch_byte_imm(emu);
1030 1.1 joerg return *decode_rl_word_register(emu);
1031 1.1 joerg }
1032 1.1 joerg }
1033 1.1 joerg
1034 1.1 joerg static uint32_t
1035 1.1 joerg decode_and_fetch_long_imm8(struct X86EMU *emu, uint8_t *imm)
1036 1.1 joerg {
1037 1.1 joerg if (emu->cur_mod != 3) {
1038 1.1 joerg emu->cur_offset = decode_rl_address(emu);
1039 1.1 joerg *imm = fetch_byte_imm(emu);
1040 1.1 joerg return fetch_data_long(emu, emu->cur_offset);
1041 1.1 joerg } else {
1042 1.1 joerg *imm = fetch_byte_imm(emu);
1043 1.1 joerg return *decode_rl_long_register(emu);
1044 1.1 joerg }
1045 1.1 joerg }
1046 1.1 joerg
1047 1.1 joerg static void
1048 1.1 joerg write_back_byte(struct X86EMU *emu, uint8_t val)
1049 1.1 joerg {
1050 1.1 joerg if (emu->cur_mod != 3)
1051 1.1 joerg store_data_byte(emu, emu->cur_offset, val);
1052 1.1 joerg else
1053 1.1 joerg *decode_rl_byte_register(emu) = val;
1054 1.1 joerg }
1055 1.1 joerg
1056 1.1 joerg static void
1057 1.1 joerg write_back_word(struct X86EMU *emu, uint16_t val)
1058 1.1 joerg {
1059 1.1 joerg if (emu->cur_mod != 3)
1060 1.1 joerg store_data_word(emu, emu->cur_offset, val);
1061 1.1 joerg else
1062 1.1 joerg *decode_rl_word_register(emu) = val;
1063 1.1 joerg }
1064 1.1 joerg
1065 1.1 joerg static void
1066 1.1 joerg write_back_long(struct X86EMU *emu, uint32_t val)
1067 1.1 joerg {
1068 1.1 joerg if (emu->cur_mod != 3)
1069 1.1 joerg store_data_long(emu, emu->cur_offset, val);
1070 1.1 joerg else
1071 1.1 joerg *decode_rl_long_register(emu) = val;
1072 1.1 joerg }
1073 1.1 joerg
1074 1.1 joerg static void
1075 1.1 joerg common_inc_word_long(struct X86EMU *emu, union X86EMU_register *reg)
1076 1.1 joerg {
1077 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1078 1.1 joerg reg->I32_reg.e_reg = inc_long(emu, reg->I32_reg.e_reg);
1079 1.1 joerg else
1080 1.1 joerg reg->I16_reg.x_reg = inc_word(emu, reg->I16_reg.x_reg);
1081 1.1 joerg }
1082 1.1 joerg
1083 1.1 joerg static void
1084 1.1 joerg common_dec_word_long(struct X86EMU *emu, union X86EMU_register *reg)
1085 1.1 joerg {
1086 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1087 1.1 joerg reg->I32_reg.e_reg = dec_long(emu, reg->I32_reg.e_reg);
1088 1.1 joerg else
1089 1.1 joerg reg->I16_reg.x_reg = dec_word(emu, reg->I16_reg.x_reg);
1090 1.1 joerg }
1091 1.1 joerg
1092 1.1 joerg static void
1093 1.1 joerg common_binop_byte_rm_r(struct X86EMU *emu, uint8_t (*binop)(struct X86EMU *, uint8_t, uint8_t))
1094 1.1 joerg {
1095 1.1 joerg uint32_t destoffset;
1096 1.1 joerg uint8_t *destreg, srcval;
1097 1.1 joerg uint8_t destval;
1098 1.1 joerg
1099 1.1 joerg fetch_decode_modrm(emu);
1100 1.1 joerg srcval = *decode_rh_byte_register(emu);
1101 1.1 joerg if (emu->cur_mod != 3) {
1102 1.1 joerg destoffset = decode_rl_address(emu);
1103 1.1 joerg destval = fetch_data_byte(emu, destoffset);
1104 1.1 joerg destval = (*binop)(emu, destval, srcval);
1105 1.1 joerg store_data_byte(emu, destoffset, destval);
1106 1.1 joerg } else {
1107 1.1 joerg destreg = decode_rl_byte_register(emu);
1108 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1109 1.1 joerg }
1110 1.1 joerg }
1111 1.1 joerg
1112 1.1 joerg static void
1113 1.1 joerg common_binop_ns_byte_rm_r(struct X86EMU *emu, void (*binop)(struct X86EMU *, uint8_t, uint8_t))
1114 1.1 joerg {
1115 1.1 joerg uint32_t destoffset;
1116 1.1 joerg uint8_t destval, srcval;
1117 1.1 joerg
1118 1.1 joerg fetch_decode_modrm(emu);
1119 1.1 joerg srcval = *decode_rh_byte_register(emu);
1120 1.1 joerg if (emu->cur_mod != 3) {
1121 1.1 joerg destoffset = decode_rl_address(emu);
1122 1.1 joerg destval = fetch_data_byte(emu, destoffset);
1123 1.1 joerg } else {
1124 1.1 joerg destval = *decode_rl_byte_register(emu);
1125 1.1 joerg }
1126 1.1 joerg (*binop)(emu, destval, srcval);
1127 1.1 joerg }
1128 1.1 joerg
1129 1.1 joerg static void
1130 1.1 joerg common_binop_word_rm_r(struct X86EMU *emu, uint16_t (*binop)(struct X86EMU *, uint16_t, uint16_t))
1131 1.1 joerg {
1132 1.1 joerg uint32_t destoffset;
1133 1.1 joerg uint16_t destval, *destreg, srcval;
1134 1.1 joerg
1135 1.1 joerg fetch_decode_modrm(emu);
1136 1.1 joerg srcval = *decode_rh_word_register(emu);
1137 1.1 joerg if (emu->cur_mod != 3) {
1138 1.1 joerg destoffset = decode_rl_address(emu);
1139 1.1 joerg destval = fetch_data_word(emu, destoffset);
1140 1.1 joerg destval = (*binop)(emu, destval, srcval);
1141 1.1 joerg store_data_word(emu, destoffset, destval);
1142 1.1 joerg } else {
1143 1.1 joerg destreg = decode_rl_word_register(emu);
1144 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1145 1.1 joerg }
1146 1.1 joerg }
1147 1.1 joerg
1148 1.1 joerg static void
1149 1.1 joerg common_binop_byte_r_rm(struct X86EMU *emu, uint8_t (*binop)(struct X86EMU *, uint8_t, uint8_t))
1150 1.1 joerg {
1151 1.1 joerg uint8_t *destreg, srcval;
1152 1.1 joerg uint32_t srcoffset;
1153 1.1 joerg
1154 1.1 joerg fetch_decode_modrm(emu);
1155 1.1 joerg destreg = decode_rh_byte_register(emu);
1156 1.1 joerg if (emu->cur_mod != 3) {
1157 1.1 joerg srcoffset = decode_rl_address(emu);
1158 1.1 joerg srcval = fetch_data_byte(emu, srcoffset);
1159 1.1 joerg } else {
1160 1.1 joerg srcval = *decode_rl_byte_register(emu);
1161 1.1 joerg }
1162 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1163 1.1 joerg }
1164 1.1 joerg
1165 1.1 joerg static void
1166 1.1 joerg common_binop_long_rm_r(struct X86EMU *emu, uint32_t (*binop)(struct X86EMU *, uint32_t, uint32_t))
1167 1.1 joerg {
1168 1.1 joerg uint32_t destoffset;
1169 1.1 joerg uint32_t destval, *destreg, srcval;
1170 1.1 joerg
1171 1.1 joerg fetch_decode_modrm(emu);
1172 1.1 joerg srcval = *decode_rh_long_register(emu);
1173 1.1 joerg if (emu->cur_mod != 3) {
1174 1.1 joerg destoffset = decode_rl_address(emu);
1175 1.1 joerg destval = fetch_data_long(emu, destoffset);
1176 1.1 joerg destval = (*binop)(emu, destval, srcval);
1177 1.1 joerg store_data_long(emu, destoffset, destval);
1178 1.1 joerg } else {
1179 1.1 joerg destreg = decode_rl_long_register(emu);
1180 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1181 1.1 joerg }
1182 1.1 joerg }
1183 1.1 joerg
1184 1.1 joerg static void
1185 1.1 joerg common_binop_word_long_rm_r(struct X86EMU *emu,
1186 1.1 joerg uint16_t (*binop16)(struct X86EMU *, uint16_t, uint16_t), uint32_t (*binop32)(struct X86EMU *, uint32_t, uint32_t))
1187 1.1 joerg {
1188 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1189 1.1 joerg common_binop_long_rm_r(emu, binop32);
1190 1.1 joerg else
1191 1.1 joerg common_binop_word_rm_r(emu, binop16);
1192 1.1 joerg }
1193 1.1 joerg
1194 1.1 joerg static void
1195 1.1 joerg common_binop_ns_word_rm_r(struct X86EMU *emu, void (*binop)(struct X86EMU *, uint16_t, uint16_t))
1196 1.1 joerg {
1197 1.1 joerg uint32_t destoffset;
1198 1.1 joerg uint16_t destval, srcval;
1199 1.1 joerg
1200 1.1 joerg fetch_decode_modrm(emu);
1201 1.1 joerg srcval = *decode_rh_word_register(emu);
1202 1.1 joerg if (emu->cur_mod != 3) {
1203 1.1 joerg destoffset = decode_rl_address(emu);
1204 1.1 joerg destval = fetch_data_word(emu, destoffset);
1205 1.1 joerg } else {
1206 1.1 joerg destval = *decode_rl_word_register(emu);
1207 1.1 joerg }
1208 1.1 joerg (*binop)(emu, destval, srcval);
1209 1.1 joerg }
1210 1.1 joerg
1211 1.1 joerg
1212 1.1 joerg static void
1213 1.1 joerg common_binop_ns_long_rm_r(struct X86EMU *emu, void (*binop)(struct X86EMU *, uint32_t, uint32_t))
1214 1.1 joerg {
1215 1.1 joerg uint32_t destoffset;
1216 1.1 joerg uint32_t destval, srcval;
1217 1.1 joerg
1218 1.1 joerg fetch_decode_modrm(emu);
1219 1.1 joerg srcval = *decode_rh_long_register(emu);
1220 1.1 joerg if (emu->cur_mod != 3) {
1221 1.1 joerg destoffset = decode_rl_address(emu);
1222 1.1 joerg destval = fetch_data_long(emu, destoffset);
1223 1.1 joerg } else {
1224 1.1 joerg destval = *decode_rl_long_register(emu);
1225 1.1 joerg }
1226 1.1 joerg (*binop)(emu, destval, srcval);
1227 1.1 joerg }
1228 1.1 joerg
1229 1.1 joerg static void
1230 1.1 joerg common_binop_ns_word_long_rm_r(struct X86EMU *emu,
1231 1.1 joerg void (*binop16)(struct X86EMU *, uint16_t, uint16_t), void (*binop32)(struct X86EMU *, uint32_t, uint32_t))
1232 1.1 joerg {
1233 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1234 1.1 joerg common_binop_ns_long_rm_r(emu, binop32);
1235 1.1 joerg else
1236 1.1 joerg common_binop_ns_word_rm_r(emu, binop16);
1237 1.1 joerg }
1238 1.1 joerg
1239 1.1 joerg static void
1240 1.1 joerg common_binop_long_r_rm(struct X86EMU *emu, uint32_t (*binop)(struct X86EMU *, uint32_t, uint32_t))
1241 1.1 joerg {
1242 1.1 joerg uint32_t srcoffset;
1243 1.1 joerg uint32_t *destreg, srcval;
1244 1.1 joerg
1245 1.1 joerg fetch_decode_modrm(emu);
1246 1.1 joerg destreg = decode_rh_long_register(emu);
1247 1.1 joerg if (emu->cur_mod != 3) {
1248 1.1 joerg srcoffset = decode_rl_address(emu);
1249 1.1 joerg srcval = fetch_data_long(emu, srcoffset);
1250 1.1 joerg } else {
1251 1.1 joerg srcval = *decode_rl_long_register(emu);
1252 1.1 joerg }
1253 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1254 1.1 joerg }
1255 1.1 joerg
1256 1.1 joerg static void
1257 1.1 joerg common_binop_word_r_rm(struct X86EMU *emu, uint16_t (*binop)(struct X86EMU *, uint16_t, uint16_t))
1258 1.1 joerg {
1259 1.1 joerg uint32_t srcoffset;
1260 1.1 joerg uint16_t *destreg, srcval;
1261 1.1 joerg
1262 1.1 joerg fetch_decode_modrm(emu);
1263 1.1 joerg destreg = decode_rh_word_register(emu);
1264 1.1 joerg if (emu->cur_mod != 3) {
1265 1.1 joerg srcoffset = decode_rl_address(emu);
1266 1.1 joerg srcval = fetch_data_word(emu, srcoffset);
1267 1.1 joerg } else {
1268 1.1 joerg srcval = *decode_rl_word_register(emu);
1269 1.1 joerg }
1270 1.1 joerg *destreg = (*binop)(emu, *destreg, srcval);
1271 1.1 joerg }
1272 1.1 joerg
1273 1.1 joerg static void
1274 1.1 joerg common_binop_word_long_r_rm(struct X86EMU *emu,
1275 1.1 joerg uint16_t (*binop16)(struct X86EMU *, uint16_t, uint16_t), uint32_t (*binop32)(struct X86EMU *, uint32_t, uint32_t))
1276 1.1 joerg {
1277 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1278 1.1 joerg common_binop_long_r_rm(emu, binop32);
1279 1.1 joerg else
1280 1.1 joerg common_binop_word_r_rm(emu, binop16);
1281 1.1 joerg }
1282 1.1 joerg
1283 1.1 joerg static void
1284 1.1 joerg common_binop_byte_imm(struct X86EMU *emu, uint8_t (*binop)(struct X86EMU *, uint8_t, uint8_t))
1285 1.1 joerg {
1286 1.1 joerg uint8_t srcval;
1287 1.1 joerg
1288 1.1 joerg srcval = fetch_byte_imm(emu);
1289 1.1 joerg emu->x86.R_AL = (*binop)(emu, emu->x86.R_AL, srcval);
1290 1.1 joerg }
1291 1.1 joerg
1292 1.1 joerg static void
1293 1.1 joerg common_binop_word_long_imm(struct X86EMU *emu,
1294 1.1 joerg uint16_t (*binop16)(struct X86EMU *, uint16_t, uint16_t), uint32_t (*binop32)(struct X86EMU *, uint32_t, uint32_t))
1295 1.1 joerg {
1296 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1297 1.1 joerg uint32_t srcval;
1298 1.1 joerg
1299 1.1 joerg srcval = fetch_long_imm(emu);
1300 1.1 joerg emu->x86.R_EAX = (*binop32)(emu, emu->x86.R_EAX, srcval);
1301 1.1 joerg } else {
1302 1.1 joerg uint16_t srcval;
1303 1.1 joerg
1304 1.1 joerg srcval = fetch_word_imm(emu);
1305 1.1 joerg emu->x86.R_AX = (*binop16)(emu, emu->x86.R_AX, srcval);
1306 1.1 joerg }
1307 1.1 joerg }
1308 1.1 joerg
1309 1.1 joerg static void
1310 1.1 joerg common_push_word_long(struct X86EMU *emu, union X86EMU_register *reg)
1311 1.1 joerg {
1312 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1313 1.1 joerg push_long(emu, reg->I32_reg.e_reg);
1314 1.1 joerg else
1315 1.1 joerg push_word(emu, reg->I16_reg.x_reg);
1316 1.1 joerg }
1317 1.1 joerg
1318 1.1 joerg static void
1319 1.1 joerg common_pop_word_long(struct X86EMU *emu, union X86EMU_register *reg)
1320 1.1 joerg {
1321 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1322 1.1 joerg reg->I32_reg.e_reg = pop_long(emu);
1323 1.1 joerg else
1324 1.1 joerg reg->I16_reg.x_reg = pop_word(emu);
1325 1.1 joerg }
1326 1.1 joerg
1327 1.1 joerg static void
1328 1.1 joerg common_imul_long_IMM(struct X86EMU *emu, bool byte_imm)
1329 1.1 joerg {
1330 1.1 joerg uint32_t srcoffset;
1331 1.1 joerg uint32_t *destreg, srcval;
1332 1.1 joerg int32_t imm;
1333 1.1 joerg uint64_t res;
1334 1.1 joerg
1335 1.1 joerg fetch_decode_modrm(emu);
1336 1.1 joerg destreg = decode_rh_long_register(emu);
1337 1.1 joerg if (emu->cur_mod != 3) {
1338 1.1 joerg srcoffset = decode_rl_address(emu);
1339 1.1 joerg srcval = fetch_data_long(emu, srcoffset);
1340 1.1 joerg } else {
1341 1.1 joerg srcval = *decode_rl_long_register(emu);
1342 1.1 joerg }
1343 1.1 joerg
1344 1.1 joerg if (byte_imm)
1345 1.1 joerg imm = (int8_t)fetch_byte_imm(emu);
1346 1.1 joerg else
1347 1.1 joerg imm = fetch_long_imm(emu);
1348 1.1 joerg res = (int32_t)srcval * imm;
1349 1.1 joerg
1350 1.1 joerg if (res > 0xffffffff) {
1351 1.1 joerg SET_FLAG(F_CF);
1352 1.1 joerg SET_FLAG(F_OF);
1353 1.1 joerg } else {
1354 1.1 joerg CLEAR_FLAG(F_CF);
1355 1.1 joerg CLEAR_FLAG(F_OF);
1356 1.1 joerg }
1357 1.1 joerg *destreg = (uint32_t)res;
1358 1.1 joerg }
1359 1.1 joerg
1360 1.1 joerg static void
1361 1.1 joerg common_imul_word_IMM(struct X86EMU *emu, bool byte_imm)
1362 1.1 joerg {
1363 1.1 joerg uint32_t srcoffset;
1364 1.1 joerg uint16_t *destreg, srcval;
1365 1.1 joerg int16_t imm;
1366 1.1 joerg uint32_t res;
1367 1.1 joerg
1368 1.1 joerg fetch_decode_modrm(emu);
1369 1.1 joerg destreg = decode_rh_word_register(emu);
1370 1.1 joerg if (emu->cur_mod != 3) {
1371 1.1 joerg srcoffset = decode_rl_address(emu);
1372 1.1 joerg srcval = fetch_data_word(emu, srcoffset);
1373 1.1 joerg } else {
1374 1.1 joerg srcval = *decode_rl_word_register(emu);
1375 1.1 joerg }
1376 1.1 joerg
1377 1.1 joerg if (byte_imm)
1378 1.1 joerg imm = (int8_t)fetch_byte_imm(emu);
1379 1.1 joerg else
1380 1.1 joerg imm = fetch_word_imm(emu);
1381 1.1 joerg res = (int16_t)srcval * imm;
1382 1.1 joerg
1383 1.1 joerg if (res > 0xffff) {
1384 1.1 joerg SET_FLAG(F_CF);
1385 1.1 joerg SET_FLAG(F_OF);
1386 1.1 joerg } else {
1387 1.1 joerg CLEAR_FLAG(F_CF);
1388 1.1 joerg CLEAR_FLAG(F_OF);
1389 1.1 joerg }
1390 1.1 joerg *destreg = (uint16_t) res;
1391 1.1 joerg }
1392 1.1 joerg
1393 1.1 joerg static void
1394 1.1 joerg common_imul_imm(struct X86EMU *emu, bool byte_imm)
1395 1.1 joerg {
1396 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1397 1.1 joerg common_imul_long_IMM(emu, byte_imm);
1398 1.1 joerg else
1399 1.1 joerg common_imul_word_IMM(emu, byte_imm);
1400 1.1 joerg }
1401 1.1 joerg
1402 1.1 joerg static void
1403 1.1 joerg common_jmp_near(struct X86EMU *emu, bool cond)
1404 1.1 joerg {
1405 1.1 joerg int8_t offset;
1406 1.1 joerg uint16_t target;
1407 1.1 joerg
1408 1.1 joerg offset = (int8_t) fetch_byte_imm(emu);
1409 1.1 joerg target = (uint16_t) (emu->x86.R_IP + (int16_t) offset);
1410 1.1 joerg if (cond)
1411 1.1 joerg emu->x86.R_IP = target;
1412 1.1 joerg }
1413 1.1 joerg
1414 1.1 joerg static void
1415 1.1 joerg common_load_far_pointer(struct X86EMU *emu, uint16_t *seg)
1416 1.1 joerg {
1417 1.1 joerg uint16_t *dstreg;
1418 1.1 joerg uint32_t srcoffset;
1419 1.1 joerg
1420 1.1 joerg fetch_decode_modrm(emu);
1421 1.1 joerg if (emu->cur_mod == 3)
1422 1.1 joerg X86EMU_halt_sys(emu);
1423 1.1 joerg
1424 1.1 joerg dstreg = decode_rh_word_register(emu);
1425 1.1 joerg srcoffset = decode_rl_address(emu);
1426 1.1 joerg *dstreg = fetch_data_word(emu, srcoffset);
1427 1.1 joerg *seg = fetch_data_word(emu, srcoffset + 2);
1428 1.1 joerg }
1429 1.1 joerg
1430 1.1 joerg /*----------------------------- Implementation ----------------------------*/
1431 1.1 joerg /****************************************************************************
1432 1.1 joerg REMARKS:
1433 1.1 joerg Handles opcode 0x3a
1434 1.1 joerg ****************************************************************************/
1435 1.1 joerg static void
1436 1.1 joerg x86emuOp_cmp_byte_R_RM(struct X86EMU *emu)
1437 1.1 joerg {
1438 1.1 joerg uint8_t *destreg, srcval;
1439 1.1 joerg
1440 1.1 joerg fetch_decode_modrm(emu);
1441 1.1 joerg destreg = decode_rh_byte_register(emu);
1442 1.1 joerg srcval = decode_and_fetch_byte(emu);
1443 1.1 joerg cmp_byte(emu, *destreg, srcval);
1444 1.1 joerg }
1445 1.1 joerg /****************************************************************************
1446 1.1 joerg REMARKS:
1447 1.1 joerg Handles opcode 0x3b
1448 1.1 joerg ****************************************************************************/
1449 1.1 joerg static void
1450 1.1 joerg x86emuOp32_cmp_word_R_RM(struct X86EMU *emu)
1451 1.1 joerg {
1452 1.1 joerg uint32_t srcval, *destreg;
1453 1.1 joerg
1454 1.1 joerg fetch_decode_modrm(emu);
1455 1.1 joerg destreg = decode_rh_long_register(emu);
1456 1.1 joerg srcval = decode_and_fetch_long(emu);
1457 1.1 joerg cmp_long(emu, *destreg, srcval);
1458 1.1 joerg }
1459 1.1 joerg
1460 1.1 joerg static void
1461 1.1 joerg x86emuOp16_cmp_word_R_RM(struct X86EMU *emu)
1462 1.1 joerg {
1463 1.1 joerg uint16_t srcval, *destreg;
1464 1.1 joerg
1465 1.1 joerg fetch_decode_modrm(emu);
1466 1.1 joerg destreg = decode_rh_word_register(emu);
1467 1.1 joerg srcval = decode_and_fetch_word(emu);
1468 1.1 joerg cmp_word(emu, *destreg, srcval);
1469 1.1 joerg }
1470 1.1 joerg
1471 1.1 joerg static void
1472 1.1 joerg x86emuOp_cmp_word_R_RM(struct X86EMU *emu)
1473 1.1 joerg {
1474 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1475 1.1 joerg x86emuOp32_cmp_word_R_RM(emu);
1476 1.1 joerg else
1477 1.1 joerg x86emuOp16_cmp_word_R_RM(emu);
1478 1.1 joerg }
1479 1.1 joerg /****************************************************************************
1480 1.1 joerg REMARKS:
1481 1.1 joerg Handles opcode 0x3c
1482 1.1 joerg ****************************************************************************/
1483 1.1 joerg static void
1484 1.1 joerg x86emuOp_cmp_byte_AL_IMM(struct X86EMU *emu)
1485 1.1 joerg {
1486 1.1 joerg uint8_t srcval;
1487 1.1 joerg
1488 1.1 joerg srcval = fetch_byte_imm(emu);
1489 1.1 joerg cmp_byte(emu, emu->x86.R_AL, srcval);
1490 1.1 joerg }
1491 1.1 joerg /****************************************************************************
1492 1.1 joerg REMARKS:
1493 1.1 joerg Handles opcode 0x3d
1494 1.1 joerg ****************************************************************************/
1495 1.1 joerg static void
1496 1.1 joerg x86emuOp32_cmp_word_AX_IMM(struct X86EMU *emu)
1497 1.1 joerg {
1498 1.1 joerg uint32_t srcval;
1499 1.1 joerg
1500 1.1 joerg srcval = fetch_long_imm(emu);
1501 1.1 joerg cmp_long(emu, emu->x86.R_EAX, srcval);
1502 1.1 joerg }
1503 1.1 joerg
1504 1.1 joerg static void
1505 1.1 joerg x86emuOp16_cmp_word_AX_IMM(struct X86EMU *emu)
1506 1.1 joerg {
1507 1.1 joerg uint16_t srcval;
1508 1.1 joerg
1509 1.1 joerg srcval = fetch_word_imm(emu);
1510 1.1 joerg cmp_word(emu, emu->x86.R_AX, srcval);
1511 1.1 joerg }
1512 1.1 joerg
1513 1.1 joerg static void
1514 1.1 joerg x86emuOp_cmp_word_AX_IMM(struct X86EMU *emu)
1515 1.1 joerg {
1516 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1517 1.1 joerg x86emuOp32_cmp_word_AX_IMM(emu);
1518 1.1 joerg else
1519 1.1 joerg x86emuOp16_cmp_word_AX_IMM(emu);
1520 1.1 joerg }
1521 1.1 joerg /****************************************************************************
1522 1.1 joerg REMARKS:
1523 1.1 joerg Handles opcode 0x60
1524 1.1 joerg ****************************************************************************/
1525 1.1 joerg static void
1526 1.1 joerg x86emuOp_push_all(struct X86EMU *emu)
1527 1.1 joerg {
1528 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1529 1.1 joerg uint32_t old_sp = emu->x86.R_ESP;
1530 1.1 joerg
1531 1.1 joerg push_long(emu, emu->x86.R_EAX);
1532 1.1 joerg push_long(emu, emu->x86.R_ECX);
1533 1.1 joerg push_long(emu, emu->x86.R_EDX);
1534 1.1 joerg push_long(emu, emu->x86.R_EBX);
1535 1.1 joerg push_long(emu, old_sp);
1536 1.1 joerg push_long(emu, emu->x86.R_EBP);
1537 1.1 joerg push_long(emu, emu->x86.R_ESI);
1538 1.1 joerg push_long(emu, emu->x86.R_EDI);
1539 1.1 joerg } else {
1540 1.1 joerg uint16_t old_sp = emu->x86.R_SP;
1541 1.1 joerg
1542 1.1 joerg push_word(emu, emu->x86.R_AX);
1543 1.1 joerg push_word(emu, emu->x86.R_CX);
1544 1.1 joerg push_word(emu, emu->x86.R_DX);
1545 1.1 joerg push_word(emu, emu->x86.R_BX);
1546 1.1 joerg push_word(emu, old_sp);
1547 1.1 joerg push_word(emu, emu->x86.R_BP);
1548 1.1 joerg push_word(emu, emu->x86.R_SI);
1549 1.1 joerg push_word(emu, emu->x86.R_DI);
1550 1.1 joerg }
1551 1.1 joerg }
1552 1.1 joerg /****************************************************************************
1553 1.1 joerg REMARKS:
1554 1.1 joerg Handles opcode 0x61
1555 1.1 joerg ****************************************************************************/
1556 1.1 joerg static void
1557 1.1 joerg x86emuOp_pop_all(struct X86EMU *emu)
1558 1.1 joerg {
1559 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1560 1.1 joerg emu->x86.R_EDI = pop_long(emu);
1561 1.1 joerg emu->x86.R_ESI = pop_long(emu);
1562 1.1 joerg emu->x86.R_EBP = pop_long(emu);
1563 1.1 joerg emu->x86.R_ESP += 4; /* skip ESP */
1564 1.1 joerg emu->x86.R_EBX = pop_long(emu);
1565 1.1 joerg emu->x86.R_EDX = pop_long(emu);
1566 1.1 joerg emu->x86.R_ECX = pop_long(emu);
1567 1.1 joerg emu->x86.R_EAX = pop_long(emu);
1568 1.1 joerg } else {
1569 1.1 joerg emu->x86.R_DI = pop_word(emu);
1570 1.1 joerg emu->x86.R_SI = pop_word(emu);
1571 1.1 joerg emu->x86.R_BP = pop_word(emu);
1572 1.1 joerg emu->x86.R_SP += 2;/* skip SP */
1573 1.1 joerg emu->x86.R_BX = pop_word(emu);
1574 1.1 joerg emu->x86.R_DX = pop_word(emu);
1575 1.1 joerg emu->x86.R_CX = pop_word(emu);
1576 1.1 joerg emu->x86.R_AX = pop_word(emu);
1577 1.1 joerg }
1578 1.1 joerg }
1579 1.1 joerg /*opcode 0x62 ILLEGAL OP, calls x86emuOp_illegal_op() */
1580 1.1 joerg /*opcode 0x63 ILLEGAL OP, calls x86emuOp_illegal_op() */
1581 1.1 joerg
1582 1.1 joerg /****************************************************************************
1583 1.1 joerg REMARKS:
1584 1.1 joerg Handles opcode 0x68
1585 1.1 joerg ****************************************************************************/
1586 1.1 joerg static void
1587 1.1 joerg x86emuOp_push_word_IMM(struct X86EMU *emu)
1588 1.1 joerg {
1589 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1590 1.1 joerg uint32_t imm;
1591 1.1 joerg
1592 1.1 joerg imm = fetch_long_imm(emu);
1593 1.1 joerg push_long(emu, imm);
1594 1.1 joerg } else {
1595 1.1 joerg uint16_t imm;
1596 1.1 joerg
1597 1.1 joerg imm = fetch_word_imm(emu);
1598 1.1 joerg push_word(emu, imm);
1599 1.1 joerg }
1600 1.1 joerg }
1601 1.1 joerg /****************************************************************************
1602 1.1 joerg REMARKS:
1603 1.1 joerg Handles opcode 0x6a
1604 1.1 joerg ****************************************************************************/
1605 1.1 joerg static void
1606 1.1 joerg x86emuOp_push_byte_IMM(struct X86EMU *emu)
1607 1.1 joerg {
1608 1.1 joerg int16_t imm;
1609 1.1 joerg
1610 1.1 joerg imm = (int8_t) fetch_byte_imm(emu);
1611 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1612 1.1 joerg push_long(emu, (int32_t) imm);
1613 1.1 joerg } else {
1614 1.1 joerg push_word(emu, imm);
1615 1.1 joerg }
1616 1.1 joerg }
1617 1.1 joerg /****************************************************************************
1618 1.1 joerg REMARKS:
1619 1.1 joerg Handles opcode 0x6c
1620 1.1 joerg ****************************************************************************/
1621 1.1 joerg /****************************************************************************
1622 1.1 joerg REMARKS:
1623 1.1 joerg Handles opcode 0x6d
1624 1.1 joerg ****************************************************************************/
1625 1.1 joerg static void
1626 1.1 joerg x86emuOp_ins_word(struct X86EMU *emu)
1627 1.1 joerg {
1628 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1629 1.1 joerg ins(emu, 4);
1630 1.1 joerg } else {
1631 1.1 joerg ins(emu, 2);
1632 1.1 joerg }
1633 1.1 joerg }
1634 1.1 joerg /****************************************************************************
1635 1.1 joerg REMARKS:
1636 1.1 joerg Handles opcode 0x6f
1637 1.1 joerg ****************************************************************************/
1638 1.1 joerg static void
1639 1.1 joerg x86emuOp_outs_word(struct X86EMU *emu)
1640 1.1 joerg {
1641 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
1642 1.1 joerg outs(emu, 4);
1643 1.1 joerg } else {
1644 1.1 joerg outs(emu, 2);
1645 1.1 joerg }
1646 1.1 joerg }
1647 1.1 joerg /****************************************************************************
1648 1.1 joerg REMARKS:
1649 1.1 joerg Handles opcode 0x7c
1650 1.1 joerg ****************************************************************************/
1651 1.1 joerg static void
1652 1.1 joerg x86emuOp_jump_near_L(struct X86EMU *emu)
1653 1.1 joerg {
1654 1.1 joerg bool sf, of;
1655 1.1 joerg
1656 1.1 joerg sf = ACCESS_FLAG(F_SF) != 0;
1657 1.1 joerg of = ACCESS_FLAG(F_OF) != 0;
1658 1.1 joerg
1659 1.1 joerg common_jmp_near(emu, sf != of);
1660 1.1 joerg }
1661 1.1 joerg /****************************************************************************
1662 1.1 joerg REMARKS:
1663 1.1 joerg Handles opcode 0x7d
1664 1.1 joerg ****************************************************************************/
1665 1.1 joerg static void
1666 1.1 joerg x86emuOp_jump_near_NL(struct X86EMU *emu)
1667 1.1 joerg {
1668 1.1 joerg bool sf, of;
1669 1.1 joerg
1670 1.1 joerg sf = ACCESS_FLAG(F_SF) != 0;
1671 1.1 joerg of = ACCESS_FLAG(F_OF) != 0;
1672 1.1 joerg
1673 1.1 joerg common_jmp_near(emu, sf == of);
1674 1.1 joerg }
1675 1.1 joerg /****************************************************************************
1676 1.1 joerg REMARKS:
1677 1.1 joerg Handles opcode 0x7e
1678 1.1 joerg ****************************************************************************/
1679 1.1 joerg static void
1680 1.1 joerg x86emuOp_jump_near_LE(struct X86EMU *emu)
1681 1.1 joerg {
1682 1.1 joerg bool sf, of;
1683 1.1 joerg
1684 1.1 joerg sf = ACCESS_FLAG(F_SF) != 0;
1685 1.1 joerg of = ACCESS_FLAG(F_OF) != 0;
1686 1.1 joerg
1687 1.1 joerg common_jmp_near(emu, sf != of || ACCESS_FLAG(F_ZF));
1688 1.1 joerg }
1689 1.1 joerg /****************************************************************************
1690 1.1 joerg REMARKS:
1691 1.1 joerg Handles opcode 0x7f
1692 1.1 joerg ****************************************************************************/
1693 1.1 joerg static void
1694 1.1 joerg x86emuOp_jump_near_NLE(struct X86EMU *emu)
1695 1.1 joerg {
1696 1.1 joerg bool sf, of;
1697 1.1 joerg
1698 1.1 joerg sf = ACCESS_FLAG(F_SF) != 0;
1699 1.1 joerg of = ACCESS_FLAG(F_OF) != 0;
1700 1.1 joerg
1701 1.1 joerg common_jmp_near(emu, sf == of && !ACCESS_FLAG(F_ZF));
1702 1.1 joerg }
1703 1.1 joerg
1704 1.1 joerg static
1705 1.1 joerg uint8_t(*const opc80_byte_operation[]) (struct X86EMU *, uint8_t d, uint8_t s) =
1706 1.1 joerg {
1707 1.1 joerg add_byte, /* 00 */
1708 1.1 joerg or_byte, /* 01 */
1709 1.1 joerg adc_byte, /* 02 */
1710 1.1 joerg sbb_byte, /* 03 */
1711 1.1 joerg and_byte, /* 04 */
1712 1.1 joerg sub_byte, /* 05 */
1713 1.1 joerg xor_byte, /* 06 */
1714 1.1 joerg cmp_byte, /* 07 */
1715 1.1 joerg };
1716 1.1 joerg /****************************************************************************
1717 1.1 joerg REMARKS:
1718 1.1 joerg Handles opcode 0x80
1719 1.1 joerg ****************************************************************************/
1720 1.1 joerg static void
1721 1.1 joerg x86emuOp_opc80_byte_RM_IMM(struct X86EMU *emu)
1722 1.1 joerg {
1723 1.1 joerg uint8_t imm, destval;
1724 1.1 joerg
1725 1.1 joerg /*
1726 1.1 joerg * Weirdo special case instruction format. Part of the opcode
1727 1.1 joerg * held below in "RH". Doubly nested case would result, except
1728 1.1 joerg * that the decoded instruction
1729 1.1 joerg */
1730 1.1 joerg fetch_decode_modrm(emu);
1731 1.1 joerg destval = decode_and_fetch_byte(emu);
1732 1.1 joerg imm = fetch_byte_imm(emu);
1733 1.1 joerg destval = (*opc80_byte_operation[emu->cur_rh]) (emu, destval, imm);
1734 1.1 joerg if (emu->cur_rh != 7)
1735 1.1 joerg write_back_byte(emu, destval);
1736 1.1 joerg }
1737 1.1 joerg
1738 1.1 joerg static
1739 1.1 joerg uint16_t(* const opc81_word_operation[]) (struct X86EMU *, uint16_t d, uint16_t s) =
1740 1.1 joerg {
1741 1.1 joerg add_word, /* 00 */
1742 1.1 joerg or_word, /* 01 */
1743 1.1 joerg adc_word, /* 02 */
1744 1.1 joerg sbb_word, /* 03 */
1745 1.1 joerg and_word, /* 04 */
1746 1.1 joerg sub_word, /* 05 */
1747 1.1 joerg xor_word, /* 06 */
1748 1.1 joerg cmp_word, /* 07 */
1749 1.1 joerg };
1750 1.1 joerg
1751 1.1 joerg static
1752 1.1 joerg uint32_t(* const opc81_long_operation[]) (struct X86EMU *, uint32_t d, uint32_t s) =
1753 1.1 joerg {
1754 1.1 joerg add_long, /* 00 */
1755 1.1 joerg or_long, /* 01 */
1756 1.1 joerg adc_long, /* 02 */
1757 1.1 joerg sbb_long, /* 03 */
1758 1.1 joerg and_long, /* 04 */
1759 1.1 joerg sub_long, /* 05 */
1760 1.1 joerg xor_long, /* 06 */
1761 1.1 joerg cmp_long, /* 07 */
1762 1.1 joerg };
1763 1.1 joerg /****************************************************************************
1764 1.1 joerg REMARKS:
1765 1.1 joerg Handles opcode 0x81
1766 1.1 joerg ****************************************************************************/
1767 1.1 joerg static void
1768 1.1 joerg x86emuOp32_opc81_word_RM_IMM(struct X86EMU *emu)
1769 1.1 joerg {
1770 1.1 joerg uint32_t destval, imm;
1771 1.1 joerg
1772 1.1 joerg /*
1773 1.1 joerg * Weirdo special case instruction format. Part of the opcode
1774 1.1 joerg * held below in "RH". Doubly nested case would result, except
1775 1.1 joerg * that the decoded instruction
1776 1.1 joerg */
1777 1.1 joerg fetch_decode_modrm(emu);
1778 1.1 joerg destval = decode_and_fetch_long(emu);
1779 1.1 joerg imm = fetch_long_imm(emu);
1780 1.1 joerg destval = (*opc81_long_operation[emu->cur_rh]) (emu, destval, imm);
1781 1.1 joerg if (emu->cur_rh != 7)
1782 1.1 joerg write_back_long(emu, destval);
1783 1.1 joerg }
1784 1.1 joerg
1785 1.1 joerg static void
1786 1.1 joerg x86emuOp16_opc81_word_RM_IMM(struct X86EMU *emu)
1787 1.1 joerg {
1788 1.1 joerg uint16_t destval, imm;
1789 1.1 joerg
1790 1.1 joerg /*
1791 1.1 joerg * Weirdo special case instruction format. Part of the opcode
1792 1.1 joerg * held below in "RH". Doubly nested case would result, except
1793 1.1 joerg * that the decoded instruction
1794 1.1 joerg */
1795 1.1 joerg fetch_decode_modrm(emu);
1796 1.1 joerg destval = decode_and_fetch_word(emu);
1797 1.1 joerg imm = fetch_word_imm(emu);
1798 1.1 joerg destval = (*opc81_word_operation[emu->cur_rh]) (emu, destval, imm);
1799 1.1 joerg if (emu->cur_rh != 7)
1800 1.1 joerg write_back_word(emu, destval);
1801 1.1 joerg }
1802 1.1 joerg
1803 1.1 joerg static void
1804 1.1 joerg x86emuOp_opc81_word_RM_IMM(struct X86EMU *emu)
1805 1.1 joerg {
1806 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1807 1.1 joerg x86emuOp32_opc81_word_RM_IMM(emu);
1808 1.1 joerg else
1809 1.1 joerg x86emuOp16_opc81_word_RM_IMM(emu);
1810 1.1 joerg }
1811 1.1 joerg
1812 1.1 joerg static
1813 1.1 joerg uint8_t(* const opc82_byte_operation[]) (struct X86EMU *, uint8_t s, uint8_t d) =
1814 1.1 joerg {
1815 1.1 joerg add_byte, /* 00 */
1816 1.1 joerg or_byte, /* 01 *//* YYY UNUSED ???? */
1817 1.1 joerg adc_byte, /* 02 */
1818 1.1 joerg sbb_byte, /* 03 */
1819 1.1 joerg and_byte, /* 04 *//* YYY UNUSED ???? */
1820 1.1 joerg sub_byte, /* 05 */
1821 1.1 joerg xor_byte, /* 06 *//* YYY UNUSED ???? */
1822 1.1 joerg cmp_byte, /* 07 */
1823 1.1 joerg };
1824 1.1 joerg /****************************************************************************
1825 1.1 joerg REMARKS:
1826 1.1 joerg Handles opcode 0x82
1827 1.1 joerg ****************************************************************************/
1828 1.1 joerg static void
1829 1.1 joerg x86emuOp_opc82_byte_RM_IMM(struct X86EMU *emu)
1830 1.1 joerg {
1831 1.1 joerg uint8_t imm, destval;
1832 1.1 joerg
1833 1.1 joerg /*
1834 1.1 joerg * Weirdo special case instruction format. Part of the opcode
1835 1.1 joerg * held below in "RH". Doubly nested case would result, except
1836 1.1 joerg * that the decoded instruction Similar to opcode 81, except that
1837 1.1 joerg * the immediate byte is sign extended to a word length.
1838 1.1 joerg */
1839 1.1 joerg fetch_decode_modrm(emu);
1840 1.1 joerg destval = decode_and_fetch_byte(emu);
1841 1.1 joerg imm = fetch_byte_imm(emu);
1842 1.1 joerg destval = (*opc82_byte_operation[emu->cur_rh]) (emu, destval, imm);
1843 1.1 joerg if (emu->cur_rh != 7)
1844 1.1 joerg write_back_byte(emu, destval);
1845 1.1 joerg }
1846 1.1 joerg
1847 1.1 joerg static
1848 1.1 joerg uint16_t(* const opc83_word_operation[]) (struct X86EMU *, uint16_t s, uint16_t d) =
1849 1.1 joerg {
1850 1.1 joerg add_word, /* 00 */
1851 1.1 joerg or_word, /* 01 *//* YYY UNUSED ???? */
1852 1.1 joerg adc_word, /* 02 */
1853 1.1 joerg sbb_word, /* 03 */
1854 1.1 joerg and_word, /* 04 *//* YYY UNUSED ???? */
1855 1.1 joerg sub_word, /* 05 */
1856 1.1 joerg xor_word, /* 06 *//* YYY UNUSED ???? */
1857 1.1 joerg cmp_word, /* 07 */
1858 1.1 joerg };
1859 1.1 joerg
1860 1.1 joerg static
1861 1.1 joerg uint32_t(* const opc83_long_operation[]) (struct X86EMU *, uint32_t s, uint32_t d) =
1862 1.1 joerg {
1863 1.1 joerg add_long, /* 00 */
1864 1.1 joerg or_long, /* 01 *//* YYY UNUSED ???? */
1865 1.1 joerg adc_long, /* 02 */
1866 1.1 joerg sbb_long, /* 03 */
1867 1.1 joerg and_long, /* 04 *//* YYY UNUSED ???? */
1868 1.1 joerg sub_long, /* 05 */
1869 1.1 joerg xor_long, /* 06 *//* YYY UNUSED ???? */
1870 1.1 joerg cmp_long, /* 07 */
1871 1.1 joerg };
1872 1.1 joerg /****************************************************************************
1873 1.1 joerg REMARKS:
1874 1.1 joerg Handles opcode 0x83
1875 1.1 joerg ****************************************************************************/
1876 1.1 joerg static void
1877 1.1 joerg x86emuOp32_opc83_word_RM_IMM(struct X86EMU *emu)
1878 1.1 joerg {
1879 1.1 joerg uint32_t destval, imm;
1880 1.1 joerg
1881 1.1 joerg fetch_decode_modrm(emu);
1882 1.1 joerg destval = decode_and_fetch_long(emu);
1883 1.1 joerg imm = (int8_t) fetch_byte_imm(emu);
1884 1.1 joerg destval = (*opc83_long_operation[emu->cur_rh]) (emu, destval, imm);
1885 1.1 joerg if (emu->cur_rh != 7)
1886 1.1 joerg write_back_long(emu, destval);
1887 1.1 joerg }
1888 1.1 joerg
1889 1.1 joerg static void
1890 1.1 joerg x86emuOp16_opc83_word_RM_IMM(struct X86EMU *emu)
1891 1.1 joerg {
1892 1.1 joerg uint16_t destval, imm;
1893 1.1 joerg
1894 1.1 joerg fetch_decode_modrm(emu);
1895 1.1 joerg destval = decode_and_fetch_word(emu);
1896 1.1 joerg imm = (int8_t) fetch_byte_imm(emu);
1897 1.1 joerg destval = (*opc83_word_operation[emu->cur_rh]) (emu, destval, imm);
1898 1.1 joerg if (emu->cur_rh != 7)
1899 1.1 joerg write_back_word(emu, destval);
1900 1.1 joerg }
1901 1.1 joerg
1902 1.1 joerg static void
1903 1.1 joerg x86emuOp_opc83_word_RM_IMM(struct X86EMU *emu)
1904 1.1 joerg {
1905 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1906 1.1 joerg x86emuOp32_opc83_word_RM_IMM(emu);
1907 1.1 joerg else
1908 1.1 joerg x86emuOp16_opc83_word_RM_IMM(emu);
1909 1.1 joerg }
1910 1.1 joerg /****************************************************************************
1911 1.1 joerg REMARKS:
1912 1.1 joerg Handles opcode 0x86
1913 1.1 joerg ****************************************************************************/
1914 1.1 joerg static void
1915 1.1 joerg x86emuOp_xchg_byte_RM_R(struct X86EMU *emu)
1916 1.1 joerg {
1917 1.1 joerg uint8_t *srcreg, destval, tmp;
1918 1.1 joerg
1919 1.1 joerg fetch_decode_modrm(emu);
1920 1.1 joerg destval = decode_and_fetch_byte(emu);
1921 1.1 joerg srcreg = decode_rh_byte_register(emu);
1922 1.1 joerg tmp = destval;
1923 1.1 joerg destval = *srcreg;
1924 1.1 joerg *srcreg = tmp;
1925 1.1 joerg write_back_byte(emu, destval);
1926 1.1 joerg }
1927 1.1 joerg /****************************************************************************
1928 1.1 joerg REMARKS:
1929 1.1 joerg Handles opcode 0x87
1930 1.1 joerg ****************************************************************************/
1931 1.1 joerg static void
1932 1.1 joerg x86emuOp32_xchg_word_RM_R(struct X86EMU *emu)
1933 1.1 joerg {
1934 1.1 joerg uint32_t *srcreg, destval, tmp;
1935 1.1 joerg
1936 1.1 joerg fetch_decode_modrm(emu);
1937 1.1 joerg destval = decode_and_fetch_long(emu);
1938 1.1 joerg srcreg = decode_rh_long_register(emu);
1939 1.1 joerg tmp = destval;
1940 1.1 joerg destval = *srcreg;
1941 1.1 joerg *srcreg = tmp;
1942 1.1 joerg write_back_long(emu, destval);
1943 1.1 joerg }
1944 1.1 joerg
1945 1.1 joerg static void
1946 1.1 joerg x86emuOp16_xchg_word_RM_R(struct X86EMU *emu)
1947 1.1 joerg {
1948 1.1 joerg uint16_t *srcreg, destval, tmp;
1949 1.1 joerg
1950 1.1 joerg fetch_decode_modrm(emu);
1951 1.1 joerg destval = decode_and_fetch_word(emu);
1952 1.1 joerg srcreg = decode_rh_word_register(emu);
1953 1.1 joerg tmp = destval;
1954 1.1 joerg destval = *srcreg;
1955 1.1 joerg *srcreg = tmp;
1956 1.1 joerg write_back_word(emu, destval);
1957 1.1 joerg }
1958 1.1 joerg
1959 1.1 joerg static void
1960 1.1 joerg x86emuOp_xchg_word_RM_R(struct X86EMU *emu)
1961 1.1 joerg {
1962 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
1963 1.1 joerg x86emuOp32_xchg_word_RM_R(emu);
1964 1.1 joerg else
1965 1.1 joerg x86emuOp16_xchg_word_RM_R(emu);
1966 1.1 joerg }
1967 1.1 joerg /****************************************************************************
1968 1.1 joerg REMARKS:
1969 1.1 joerg Handles opcode 0x88
1970 1.1 joerg ****************************************************************************/
1971 1.1 joerg static void
1972 1.1 joerg x86emuOp_mov_byte_RM_R(struct X86EMU *emu)
1973 1.1 joerg {
1974 1.1 joerg uint8_t *destreg, *srcreg;
1975 1.1 joerg uint32_t destoffset;
1976 1.1 joerg
1977 1.1 joerg fetch_decode_modrm(emu);
1978 1.1 joerg srcreg = decode_rh_byte_register(emu);
1979 1.1 joerg if (emu->cur_mod != 3) {
1980 1.1 joerg destoffset = decode_rl_address(emu);
1981 1.1 joerg store_data_byte(emu, destoffset, *srcreg);
1982 1.1 joerg } else {
1983 1.1 joerg destreg = decode_rl_byte_register(emu);
1984 1.1 joerg *destreg = *srcreg;
1985 1.1 joerg }
1986 1.1 joerg }
1987 1.1 joerg /****************************************************************************
1988 1.1 joerg REMARKS:
1989 1.1 joerg Handles opcode 0x89
1990 1.1 joerg ****************************************************************************/
1991 1.1 joerg static void
1992 1.1 joerg x86emuOp32_mov_word_RM_R(struct X86EMU *emu)
1993 1.1 joerg {
1994 1.1 joerg uint32_t destoffset;
1995 1.1 joerg uint32_t *destreg, srcval;
1996 1.1 joerg
1997 1.1 joerg fetch_decode_modrm(emu);
1998 1.1 joerg srcval = *decode_rh_long_register(emu);
1999 1.1 joerg if (emu->cur_mod != 3) {
2000 1.1 joerg destoffset = decode_rl_address(emu);
2001 1.1 joerg store_data_long(emu, destoffset, srcval);
2002 1.1 joerg } else {
2003 1.1 joerg destreg = decode_rl_long_register(emu);
2004 1.1 joerg *destreg = srcval;
2005 1.1 joerg }
2006 1.1 joerg }
2007 1.1 joerg
2008 1.1 joerg static void
2009 1.1 joerg x86emuOp16_mov_word_RM_R(struct X86EMU *emu)
2010 1.1 joerg {
2011 1.1 joerg uint32_t destoffset;
2012 1.1 joerg uint16_t *destreg, srcval;
2013 1.1 joerg
2014 1.1 joerg fetch_decode_modrm(emu);
2015 1.1 joerg srcval = *decode_rh_word_register(emu);
2016 1.1 joerg if (emu->cur_mod != 3) {
2017 1.1 joerg destoffset = decode_rl_address(emu);
2018 1.1 joerg store_data_word(emu, destoffset, srcval);
2019 1.1 joerg } else {
2020 1.1 joerg destreg = decode_rl_word_register(emu);
2021 1.1 joerg *destreg = srcval;
2022 1.1 joerg }
2023 1.1 joerg }
2024 1.1 joerg
2025 1.1 joerg static void
2026 1.1 joerg x86emuOp_mov_word_RM_R(struct X86EMU *emu)
2027 1.1 joerg {
2028 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2029 1.1 joerg x86emuOp32_mov_word_RM_R(emu);
2030 1.1 joerg else
2031 1.1 joerg x86emuOp16_mov_word_RM_R(emu);
2032 1.1 joerg }
2033 1.1 joerg /****************************************************************************
2034 1.1 joerg REMARKS:
2035 1.1 joerg Handles opcode 0x8a
2036 1.1 joerg ****************************************************************************/
2037 1.1 joerg static void
2038 1.1 joerg x86emuOp_mov_byte_R_RM(struct X86EMU *emu)
2039 1.1 joerg {
2040 1.1 joerg uint8_t *destreg;
2041 1.1 joerg
2042 1.1 joerg fetch_decode_modrm(emu);
2043 1.1 joerg destreg = decode_rh_byte_register(emu);
2044 1.1 joerg *destreg = decode_and_fetch_byte(emu);
2045 1.1 joerg }
2046 1.1 joerg /****************************************************************************
2047 1.1 joerg REMARKS:
2048 1.1 joerg Handles opcode 0x8b
2049 1.1 joerg ****************************************************************************/
2050 1.1 joerg static void
2051 1.1 joerg x86emuOp_mov_word_R_RM(struct X86EMU *emu)
2052 1.1 joerg {
2053 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2054 1.1 joerg uint32_t *destreg;
2055 1.1 joerg
2056 1.1 joerg fetch_decode_modrm(emu);
2057 1.1 joerg destreg = decode_rh_long_register(emu);
2058 1.1 joerg *destreg = decode_and_fetch_long(emu);
2059 1.1 joerg } else {
2060 1.1 joerg uint16_t *destreg;
2061 1.1 joerg
2062 1.1 joerg fetch_decode_modrm(emu);
2063 1.1 joerg destreg = decode_rh_word_register(emu);
2064 1.1 joerg *destreg = decode_and_fetch_word(emu);
2065 1.1 joerg }
2066 1.1 joerg }
2067 1.1 joerg /****************************************************************************
2068 1.1 joerg REMARKS:
2069 1.1 joerg Handles opcode 0x8c
2070 1.1 joerg ****************************************************************************/
2071 1.1 joerg static void
2072 1.1 joerg x86emuOp_mov_word_RM_SR(struct X86EMU *emu)
2073 1.1 joerg {
2074 1.1 joerg uint16_t *destreg, srcval;
2075 1.1 joerg uint32_t destoffset;
2076 1.1 joerg
2077 1.1 joerg fetch_decode_modrm(emu);
2078 1.1 joerg srcval = *decode_rh_seg_register(emu);
2079 1.1 joerg if (emu->cur_mod != 3) {
2080 1.1 joerg destoffset = decode_rl_address(emu);
2081 1.1 joerg store_data_word(emu, destoffset, srcval);
2082 1.1 joerg } else {
2083 1.1 joerg destreg = decode_rl_word_register(emu);
2084 1.1 joerg *destreg = srcval;
2085 1.1 joerg }
2086 1.1 joerg }
2087 1.1 joerg /****************************************************************************
2088 1.1 joerg REMARKS:
2089 1.1 joerg Handles opcode 0x8d
2090 1.1 joerg ****************************************************************************/
2091 1.1 joerg static void
2092 1.1 joerg x86emuOp_lea_word_R_M(struct X86EMU *emu)
2093 1.1 joerg {
2094 1.1 joerg uint16_t *srcreg;
2095 1.1 joerg uint32_t destoffset;
2096 1.1 joerg
2097 1.1 joerg /*
2098 1.1 joerg * TODO: Need to handle address size prefix!
2099 1.1 joerg *
2100 1.1 joerg * lea eax,[eax+ebx*2] ??
2101 1.1 joerg */
2102 1.1 joerg fetch_decode_modrm(emu);
2103 1.1 joerg if (emu->cur_mod == 3)
2104 1.1 joerg X86EMU_halt_sys(emu);
2105 1.1 joerg
2106 1.1 joerg srcreg = decode_rh_word_register(emu);
2107 1.1 joerg destoffset = decode_rl_address(emu);
2108 1.1 joerg *srcreg = (uint16_t) destoffset;
2109 1.1 joerg }
2110 1.1 joerg /****************************************************************************
2111 1.1 joerg REMARKS:
2112 1.1 joerg Handles opcode 0x8e
2113 1.1 joerg ****************************************************************************/
2114 1.1 joerg static void
2115 1.1 joerg x86emuOp_mov_word_SR_RM(struct X86EMU *emu)
2116 1.1 joerg {
2117 1.1 joerg uint16_t *destreg;
2118 1.1 joerg
2119 1.1 joerg fetch_decode_modrm(emu);
2120 1.1 joerg destreg = decode_rh_seg_register(emu);
2121 1.1 joerg *destreg = decode_and_fetch_word(emu);
2122 1.1 joerg /*
2123 1.1 joerg * Clean up, and reset all the R_xSP pointers to the correct
2124 1.1 joerg * locations. This is about 3x too much overhead (doing all the
2125 1.1 joerg * segreg ptrs when only one is needed, but this instruction
2126 1.1 joerg * *cannot* be that common, and this isn't too much work anyway.
2127 1.1 joerg */
2128 1.1 joerg }
2129 1.1 joerg /****************************************************************************
2130 1.1 joerg REMARKS:
2131 1.1 joerg Handles opcode 0x8f
2132 1.1 joerg ****************************************************************************/
2133 1.1 joerg static void
2134 1.1 joerg x86emuOp32_pop_RM(struct X86EMU *emu)
2135 1.1 joerg {
2136 1.1 joerg uint32_t destoffset;
2137 1.1 joerg uint32_t destval, *destreg;
2138 1.1 joerg
2139 1.1 joerg fetch_decode_modrm(emu);
2140 1.1 joerg if (emu->cur_mod != 3) {
2141 1.1 joerg destoffset = decode_rl_address(emu);
2142 1.1 joerg destval = pop_long(emu);
2143 1.1 joerg store_data_long(emu, destoffset, destval);
2144 1.1 joerg } else {
2145 1.1 joerg destreg = decode_rl_long_register(emu);
2146 1.1 joerg *destreg = pop_long(emu);
2147 1.1 joerg }
2148 1.1 joerg }
2149 1.1 joerg
2150 1.1 joerg static void
2151 1.1 joerg x86emuOp16_pop_RM(struct X86EMU *emu)
2152 1.1 joerg {
2153 1.1 joerg uint32_t destoffset;
2154 1.1 joerg uint16_t destval, *destreg;
2155 1.1 joerg
2156 1.1 joerg fetch_decode_modrm(emu);
2157 1.1 joerg if (emu->cur_mod != 3) {
2158 1.1 joerg destoffset = decode_rl_address(emu);
2159 1.1 joerg destval = pop_word(emu);
2160 1.1 joerg store_data_word(emu, destoffset, destval);
2161 1.1 joerg } else {
2162 1.1 joerg destreg = decode_rl_word_register(emu);
2163 1.1 joerg *destreg = pop_word(emu);
2164 1.1 joerg }
2165 1.1 joerg }
2166 1.1 joerg
2167 1.1 joerg static void
2168 1.1 joerg x86emuOp_pop_RM(struct X86EMU *emu)
2169 1.1 joerg {
2170 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2171 1.1 joerg x86emuOp32_pop_RM(emu);
2172 1.1 joerg else
2173 1.1 joerg x86emuOp16_pop_RM(emu);
2174 1.1 joerg }
2175 1.1 joerg /****************************************************************************
2176 1.1 joerg REMARKS:
2177 1.1 joerg Handles opcode 0x91
2178 1.1 joerg ****************************************************************************/
2179 1.1 joerg static void
2180 1.1 joerg x86emuOp_xchg_word_AX_CX(struct X86EMU *emu)
2181 1.1 joerg {
2182 1.1 joerg uint32_t tmp;
2183 1.1 joerg
2184 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2185 1.1 joerg tmp = emu->x86.R_EAX;
2186 1.1 joerg emu->x86.R_EAX = emu->x86.R_ECX;
2187 1.1 joerg emu->x86.R_ECX = tmp;
2188 1.1 joerg } else {
2189 1.1 joerg tmp = emu->x86.R_AX;
2190 1.1 joerg emu->x86.R_AX = emu->x86.R_CX;
2191 1.1 joerg emu->x86.R_CX = (uint16_t) tmp;
2192 1.1 joerg }
2193 1.1 joerg }
2194 1.1 joerg /****************************************************************************
2195 1.1 joerg REMARKS:
2196 1.1 joerg Handles opcode 0x92
2197 1.1 joerg ****************************************************************************/
2198 1.1 joerg static void
2199 1.1 joerg x86emuOp_xchg_word_AX_DX(struct X86EMU *emu)
2200 1.1 joerg {
2201 1.1 joerg uint32_t tmp;
2202 1.1 joerg
2203 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2204 1.1 joerg tmp = emu->x86.R_EAX;
2205 1.1 joerg emu->x86.R_EAX = emu->x86.R_EDX;
2206 1.1 joerg emu->x86.R_EDX = tmp;
2207 1.1 joerg } else {
2208 1.1 joerg tmp = emu->x86.R_AX;
2209 1.1 joerg emu->x86.R_AX = emu->x86.R_DX;
2210 1.1 joerg emu->x86.R_DX = (uint16_t) tmp;
2211 1.1 joerg }
2212 1.1 joerg }
2213 1.1 joerg /****************************************************************************
2214 1.1 joerg REMARKS:
2215 1.1 joerg Handles opcode 0x93
2216 1.1 joerg ****************************************************************************/
2217 1.1 joerg static void
2218 1.1 joerg x86emuOp_xchg_word_AX_BX(struct X86EMU *emu)
2219 1.1 joerg {
2220 1.1 joerg uint32_t tmp;
2221 1.1 joerg
2222 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2223 1.1 joerg tmp = emu->x86.R_EAX;
2224 1.1 joerg emu->x86.R_EAX = emu->x86.R_EBX;
2225 1.1 joerg emu->x86.R_EBX = tmp;
2226 1.1 joerg } else {
2227 1.1 joerg tmp = emu->x86.R_AX;
2228 1.1 joerg emu->x86.R_AX = emu->x86.R_BX;
2229 1.1 joerg emu->x86.R_BX = (uint16_t) tmp;
2230 1.1 joerg }
2231 1.1 joerg }
2232 1.1 joerg /****************************************************************************
2233 1.1 joerg REMARKS:
2234 1.1 joerg Handles opcode 0x94
2235 1.1 joerg ****************************************************************************/
2236 1.1 joerg static void
2237 1.1 joerg x86emuOp_xchg_word_AX_SP(struct X86EMU *emu)
2238 1.1 joerg {
2239 1.1 joerg uint32_t tmp;
2240 1.1 joerg
2241 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2242 1.1 joerg tmp = emu->x86.R_EAX;
2243 1.1 joerg emu->x86.R_EAX = emu->x86.R_ESP;
2244 1.1 joerg emu->x86.R_ESP = tmp;
2245 1.1 joerg } else {
2246 1.1 joerg tmp = emu->x86.R_AX;
2247 1.1 joerg emu->x86.R_AX = emu->x86.R_SP;
2248 1.1 joerg emu->x86.R_SP = (uint16_t) tmp;
2249 1.1 joerg }
2250 1.1 joerg }
2251 1.1 joerg /****************************************************************************
2252 1.1 joerg REMARKS:
2253 1.1 joerg Handles opcode 0x95
2254 1.1 joerg ****************************************************************************/
2255 1.1 joerg static void
2256 1.1 joerg x86emuOp_xchg_word_AX_BP(struct X86EMU *emu)
2257 1.1 joerg {
2258 1.1 joerg uint32_t tmp;
2259 1.1 joerg
2260 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2261 1.1 joerg tmp = emu->x86.R_EAX;
2262 1.1 joerg emu->x86.R_EAX = emu->x86.R_EBP;
2263 1.1 joerg emu->x86.R_EBP = tmp;
2264 1.1 joerg } else {
2265 1.1 joerg tmp = emu->x86.R_AX;
2266 1.1 joerg emu->x86.R_AX = emu->x86.R_BP;
2267 1.1 joerg emu->x86.R_BP = (uint16_t) tmp;
2268 1.1 joerg }
2269 1.1 joerg }
2270 1.1 joerg /****************************************************************************
2271 1.1 joerg REMARKS:
2272 1.1 joerg Handles opcode 0x96
2273 1.1 joerg ****************************************************************************/
2274 1.1 joerg static void
2275 1.1 joerg x86emuOp_xchg_word_AX_SI(struct X86EMU *emu)
2276 1.1 joerg {
2277 1.1 joerg uint32_t tmp;
2278 1.1 joerg
2279 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2280 1.1 joerg tmp = emu->x86.R_EAX;
2281 1.1 joerg emu->x86.R_EAX = emu->x86.R_ESI;
2282 1.1 joerg emu->x86.R_ESI = tmp;
2283 1.1 joerg } else {
2284 1.1 joerg tmp = emu->x86.R_AX;
2285 1.1 joerg emu->x86.R_AX = emu->x86.R_SI;
2286 1.1 joerg emu->x86.R_SI = (uint16_t) tmp;
2287 1.1 joerg }
2288 1.1 joerg }
2289 1.1 joerg /****************************************************************************
2290 1.1 joerg REMARKS:
2291 1.1 joerg Handles opcode 0x97
2292 1.1 joerg ****************************************************************************/
2293 1.1 joerg static void
2294 1.1 joerg x86emuOp_xchg_word_AX_DI(struct X86EMU *emu)
2295 1.1 joerg {
2296 1.1 joerg uint32_t tmp;
2297 1.1 joerg
2298 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2299 1.1 joerg tmp = emu->x86.R_EAX;
2300 1.1 joerg emu->x86.R_EAX = emu->x86.R_EDI;
2301 1.1 joerg emu->x86.R_EDI = tmp;
2302 1.1 joerg } else {
2303 1.1 joerg tmp = emu->x86.R_AX;
2304 1.1 joerg emu->x86.R_AX = emu->x86.R_DI;
2305 1.1 joerg emu->x86.R_DI = (uint16_t) tmp;
2306 1.1 joerg }
2307 1.1 joerg }
2308 1.1 joerg /****************************************************************************
2309 1.1 joerg REMARKS:
2310 1.1 joerg Handles opcode 0x98
2311 1.1 joerg ****************************************************************************/
2312 1.1 joerg static void
2313 1.1 joerg x86emuOp_cbw(struct X86EMU *emu)
2314 1.1 joerg {
2315 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2316 1.1 joerg if (emu->x86.R_AX & 0x8000) {
2317 1.1 joerg emu->x86.R_EAX |= 0xffff0000;
2318 1.1 joerg } else {
2319 1.1 joerg emu->x86.R_EAX &= 0x0000ffff;
2320 1.1 joerg }
2321 1.1 joerg } else {
2322 1.1 joerg if (emu->x86.R_AL & 0x80) {
2323 1.1 joerg emu->x86.R_AH = 0xff;
2324 1.1 joerg } else {
2325 1.1 joerg emu->x86.R_AH = 0x0;
2326 1.1 joerg }
2327 1.1 joerg }
2328 1.1 joerg }
2329 1.1 joerg /****************************************************************************
2330 1.1 joerg REMARKS:
2331 1.1 joerg Handles opcode 0x99
2332 1.1 joerg ****************************************************************************/
2333 1.1 joerg static void
2334 1.1 joerg x86emuOp_cwd(struct X86EMU *emu)
2335 1.1 joerg {
2336 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2337 1.1 joerg if (emu->x86.R_EAX & 0x80000000) {
2338 1.1 joerg emu->x86.R_EDX = 0xffffffff;
2339 1.1 joerg } else {
2340 1.1 joerg emu->x86.R_EDX = 0x0;
2341 1.1 joerg }
2342 1.1 joerg } else {
2343 1.1 joerg if (emu->x86.R_AX & 0x8000) {
2344 1.1 joerg emu->x86.R_DX = 0xffff;
2345 1.1 joerg } else {
2346 1.1 joerg emu->x86.R_DX = 0x0;
2347 1.1 joerg }
2348 1.1 joerg }
2349 1.1 joerg }
2350 1.1 joerg /****************************************************************************
2351 1.1 joerg REMARKS:
2352 1.1 joerg Handles opcode 0x9a
2353 1.1 joerg ****************************************************************************/
2354 1.1 joerg static void
2355 1.1 joerg x86emuOp_call_far_IMM(struct X86EMU *emu)
2356 1.1 joerg {
2357 1.1 joerg uint16_t farseg, faroff;
2358 1.1 joerg
2359 1.1 joerg faroff = fetch_word_imm(emu);
2360 1.1 joerg farseg = fetch_word_imm(emu);
2361 1.1 joerg /* XXX
2362 1.1 joerg *
2363 1.1 joerg * Hooked interrupt vectors calling into our "BIOS" will cause problems
2364 1.1 joerg * unless all intersegment stuff is checked for BIOS access. Check
2365 1.1 joerg * needed here. For moment, let it alone. */
2366 1.1 joerg push_word(emu, emu->x86.R_CS);
2367 1.1 joerg emu->x86.R_CS = farseg;
2368 1.1 joerg push_word(emu, emu->x86.R_IP);
2369 1.1 joerg emu->x86.R_IP = faroff;
2370 1.1 joerg }
2371 1.1 joerg /****************************************************************************
2372 1.1 joerg REMARKS:
2373 1.1 joerg Handles opcode 0x9c
2374 1.1 joerg ****************************************************************************/
2375 1.1 joerg static void
2376 1.1 joerg x86emuOp_pushf_word(struct X86EMU *emu)
2377 1.1 joerg {
2378 1.1 joerg uint32_t flags;
2379 1.1 joerg
2380 1.1 joerg /* clear out *all* bits not representing flags, and turn on real bits */
2381 1.1 joerg flags = (emu->x86.R_EFLG & F_MSK) | F_ALWAYS_ON;
2382 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2383 1.1 joerg push_long(emu, flags);
2384 1.1 joerg } else {
2385 1.1 joerg push_word(emu, (uint16_t) flags);
2386 1.1 joerg }
2387 1.1 joerg }
2388 1.1 joerg /****************************************************************************
2389 1.1 joerg REMARKS:
2390 1.1 joerg Handles opcode 0x9d
2391 1.1 joerg ****************************************************************************/
2392 1.1 joerg static void
2393 1.1 joerg x86emuOp_popf_word(struct X86EMU *emu)
2394 1.1 joerg {
2395 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2396 1.1 joerg emu->x86.R_EFLG = pop_long(emu);
2397 1.1 joerg } else {
2398 1.1 joerg emu->x86.R_FLG = pop_word(emu);
2399 1.1 joerg }
2400 1.1 joerg }
2401 1.1 joerg /****************************************************************************
2402 1.1 joerg REMARKS:
2403 1.1 joerg Handles opcode 0x9e
2404 1.1 joerg ****************************************************************************/
2405 1.1 joerg static void
2406 1.1 joerg x86emuOp_sahf(struct X86EMU *emu)
2407 1.1 joerg {
2408 1.1 joerg /* clear the lower bits of the flag register */
2409 1.1 joerg emu->x86.R_FLG &= 0xffffff00;
2410 1.1 joerg /* or in the AH register into the flags register */
2411 1.1 joerg emu->x86.R_FLG |= emu->x86.R_AH;
2412 1.1 joerg }
2413 1.1 joerg /****************************************************************************
2414 1.1 joerg REMARKS:
2415 1.1 joerg Handles opcode 0x9f
2416 1.1 joerg ****************************************************************************/
2417 1.1 joerg static void
2418 1.1 joerg x86emuOp_lahf(struct X86EMU *emu)
2419 1.1 joerg {
2420 1.1 joerg emu->x86.R_AH = (uint8_t) (emu->x86.R_FLG & 0xff);
2421 1.1 joerg /* undocumented TC++ behavior??? Nope. It's documented, but you have
2422 1.1 joerg * too look real hard to notice it. */
2423 1.1 joerg emu->x86.R_AH |= 0x2;
2424 1.1 joerg }
2425 1.1 joerg /****************************************************************************
2426 1.1 joerg REMARKS:
2427 1.1 joerg Handles opcode 0xa0
2428 1.1 joerg ****************************************************************************/
2429 1.1 joerg static void
2430 1.1 joerg x86emuOp_mov_AL_M_IMM(struct X86EMU *emu)
2431 1.1 joerg {
2432 1.1 joerg uint16_t offset;
2433 1.1 joerg
2434 1.1 joerg offset = fetch_word_imm(emu);
2435 1.1 joerg emu->x86.R_AL = fetch_data_byte(emu, offset);
2436 1.1 joerg }
2437 1.1 joerg /****************************************************************************
2438 1.1 joerg REMARKS:
2439 1.1 joerg Handles opcode 0xa1
2440 1.1 joerg ****************************************************************************/
2441 1.1 joerg static void
2442 1.1 joerg x86emuOp_mov_AX_M_IMM(struct X86EMU *emu)
2443 1.1 joerg {
2444 1.1 joerg uint16_t offset;
2445 1.1 joerg
2446 1.1 joerg offset = fetch_word_imm(emu);
2447 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2448 1.1 joerg emu->x86.R_EAX = fetch_data_long(emu, offset);
2449 1.1 joerg } else {
2450 1.1 joerg emu->x86.R_AX = fetch_data_word(emu, offset);
2451 1.1 joerg }
2452 1.1 joerg }
2453 1.1 joerg /****************************************************************************
2454 1.1 joerg REMARKS:
2455 1.1 joerg Handles opcode 0xa2
2456 1.1 joerg ****************************************************************************/
2457 1.1 joerg static void
2458 1.1 joerg x86emuOp_mov_M_AL_IMM(struct X86EMU *emu)
2459 1.1 joerg {
2460 1.1 joerg uint16_t offset;
2461 1.1 joerg
2462 1.1 joerg offset = fetch_word_imm(emu);
2463 1.1 joerg store_data_byte(emu, offset, emu->x86.R_AL);
2464 1.1 joerg }
2465 1.1 joerg /****************************************************************************
2466 1.1 joerg REMARKS:
2467 1.1 joerg Handles opcode 0xa3
2468 1.1 joerg ****************************************************************************/
2469 1.1 joerg static void
2470 1.1 joerg x86emuOp_mov_M_AX_IMM(struct X86EMU *emu)
2471 1.1 joerg {
2472 1.1 joerg uint16_t offset;
2473 1.1 joerg
2474 1.1 joerg offset = fetch_word_imm(emu);
2475 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2476 1.1 joerg store_data_long(emu, offset, emu->x86.R_EAX);
2477 1.1 joerg } else {
2478 1.1 joerg store_data_word(emu, offset, emu->x86.R_AX);
2479 1.1 joerg }
2480 1.1 joerg }
2481 1.1 joerg /****************************************************************************
2482 1.1 joerg REMARKS:
2483 1.1 joerg Handles opcode 0xa4
2484 1.1 joerg ****************************************************************************/
2485 1.1 joerg static void
2486 1.1 joerg x86emuOp_movs_byte(struct X86EMU *emu)
2487 1.1 joerg {
2488 1.1 joerg uint8_t val;
2489 1.1 joerg uint32_t count;
2490 1.1 joerg int inc;
2491 1.1 joerg
2492 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2493 1.1 joerg inc = -1;
2494 1.1 joerg else
2495 1.1 joerg inc = 1;
2496 1.1 joerg count = 1;
2497 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2498 1.1 joerg /* dont care whether REPE or REPNE */
2499 1.1 joerg /* move them until CX is ZERO. */
2500 1.1 joerg count = emu->x86.R_CX;
2501 1.1 joerg emu->x86.R_CX = 0;
2502 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2503 1.1 joerg }
2504 1.1 joerg while (count--) {
2505 1.1 joerg val = fetch_data_byte(emu, emu->x86.R_SI);
2506 1.1 joerg store_byte(emu, emu->x86.R_ES, emu->x86.R_DI, val);
2507 1.1 joerg emu->x86.R_SI += inc;
2508 1.1 joerg emu->x86.R_DI += inc;
2509 1.1 joerg }
2510 1.1 joerg }
2511 1.1 joerg /****************************************************************************
2512 1.1 joerg REMARKS:
2513 1.1 joerg Handles opcode 0xa5
2514 1.1 joerg ****************************************************************************/
2515 1.1 joerg static void
2516 1.1 joerg x86emuOp_movs_word(struct X86EMU *emu)
2517 1.1 joerg {
2518 1.1 joerg uint32_t val;
2519 1.1 joerg int inc;
2520 1.1 joerg uint32_t count;
2521 1.1 joerg
2522 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2523 1.1 joerg inc = 4;
2524 1.1 joerg else
2525 1.1 joerg inc = 2;
2526 1.1 joerg
2527 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2528 1.1 joerg inc = -inc;
2529 1.1 joerg
2530 1.1 joerg count = 1;
2531 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2532 1.1 joerg /* dont care whether REPE or REPNE */
2533 1.1 joerg /* move them until CX is ZERO. */
2534 1.1 joerg count = emu->x86.R_CX;
2535 1.1 joerg emu->x86.R_CX = 0;
2536 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2537 1.1 joerg }
2538 1.1 joerg while (count--) {
2539 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2540 1.1 joerg val = fetch_data_long(emu, emu->x86.R_SI);
2541 1.1 joerg store_long(emu, emu->x86.R_ES, emu->x86.R_DI, val);
2542 1.1 joerg } else {
2543 1.1 joerg val = fetch_data_word(emu, emu->x86.R_SI);
2544 1.1 joerg store_word(emu, emu->x86.R_ES, emu->x86.R_DI, (uint16_t) val);
2545 1.1 joerg }
2546 1.1 joerg emu->x86.R_SI += inc;
2547 1.1 joerg emu->x86.R_DI += inc;
2548 1.1 joerg }
2549 1.1 joerg }
2550 1.1 joerg /****************************************************************************
2551 1.1 joerg REMARKS:
2552 1.1 joerg Handles opcode 0xa6
2553 1.1 joerg ****************************************************************************/
2554 1.1 joerg static void
2555 1.1 joerg x86emuOp_cmps_byte(struct X86EMU *emu)
2556 1.1 joerg {
2557 1.1 joerg int8_t val1, val2;
2558 1.1 joerg int inc;
2559 1.1 joerg
2560 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2561 1.1 joerg inc = -1;
2562 1.1 joerg else
2563 1.1 joerg inc = 1;
2564 1.1 joerg
2565 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_REPE) {
2566 1.1 joerg /* REPE */
2567 1.1 joerg /* move them until CX is ZERO. */
2568 1.1 joerg while (emu->x86.R_CX != 0) {
2569 1.1 joerg val1 = fetch_data_byte(emu, emu->x86.R_SI);
2570 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2571 1.1 joerg cmp_byte(emu, val1, val2);
2572 1.1 joerg emu->x86.R_CX -= 1;
2573 1.1 joerg emu->x86.R_SI += inc;
2574 1.1 joerg emu->x86.R_DI += inc;
2575 1.1 joerg if (ACCESS_FLAG(F_ZF) == 0)
2576 1.1 joerg break;
2577 1.1 joerg }
2578 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPE;
2579 1.1 joerg } else if (emu->x86.mode & SYSMODE_PREFIX_REPNE) {
2580 1.1 joerg /* REPNE */
2581 1.1 joerg /* move them until CX is ZERO. */
2582 1.1 joerg while (emu->x86.R_CX != 0) {
2583 1.1 joerg val1 = fetch_data_byte(emu, emu->x86.R_SI);
2584 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2585 1.1 joerg cmp_byte(emu, val1, val2);
2586 1.1 joerg emu->x86.R_CX -= 1;
2587 1.1 joerg emu->x86.R_SI += inc;
2588 1.1 joerg emu->x86.R_DI += inc;
2589 1.1 joerg if (ACCESS_FLAG(F_ZF))
2590 1.1 joerg break; /* zero flag set means equal */
2591 1.1 joerg }
2592 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPNE;
2593 1.1 joerg } else {
2594 1.1 joerg val1 = fetch_data_byte(emu, emu->x86.R_SI);
2595 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2596 1.1 joerg cmp_byte(emu, val1, val2);
2597 1.1 joerg emu->x86.R_SI += inc;
2598 1.1 joerg emu->x86.R_DI += inc;
2599 1.1 joerg }
2600 1.1 joerg }
2601 1.1 joerg /****************************************************************************
2602 1.1 joerg REMARKS:
2603 1.1 joerg Handles opcode 0xa7
2604 1.1 joerg ****************************************************************************/
2605 1.1 joerg static void
2606 1.1 joerg x86emuOp_cmps_word(struct X86EMU *emu)
2607 1.1 joerg {
2608 1.1 joerg uint32_t val1, val2;
2609 1.1 joerg int inc;
2610 1.1 joerg
2611 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2612 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2613 1.1 joerg inc = -4;
2614 1.1 joerg else
2615 1.1 joerg inc = 4;
2616 1.1 joerg } else {
2617 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2618 1.1 joerg inc = -2;
2619 1.1 joerg else
2620 1.1 joerg inc = 2;
2621 1.1 joerg }
2622 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_REPE) {
2623 1.1 joerg /* REPE */
2624 1.1 joerg /* move them until CX is ZERO. */
2625 1.1 joerg while (emu->x86.R_CX != 0) {
2626 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2627 1.1 joerg val1 = fetch_data_long(emu, emu->x86.R_SI);
2628 1.1 joerg val2 = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2629 1.1 joerg cmp_long(emu, val1, val2);
2630 1.1 joerg } else {
2631 1.1 joerg val1 = fetch_data_word(emu, emu->x86.R_SI);
2632 1.1 joerg val2 = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2633 1.1 joerg cmp_word(emu, (uint16_t) val1, (uint16_t) val2);
2634 1.1 joerg }
2635 1.1 joerg emu->x86.R_CX -= 1;
2636 1.1 joerg emu->x86.R_SI += inc;
2637 1.1 joerg emu->x86.R_DI += inc;
2638 1.1 joerg if (ACCESS_FLAG(F_ZF) == 0)
2639 1.1 joerg break;
2640 1.1 joerg }
2641 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPE;
2642 1.1 joerg } else if (emu->x86.mode & SYSMODE_PREFIX_REPNE) {
2643 1.1 joerg /* REPNE */
2644 1.1 joerg /* move them until CX is ZERO. */
2645 1.1 joerg while (emu->x86.R_CX != 0) {
2646 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2647 1.1 joerg val1 = fetch_data_long(emu, emu->x86.R_SI);
2648 1.1 joerg val2 = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2649 1.1 joerg cmp_long(emu, val1, val2);
2650 1.1 joerg } else {
2651 1.1 joerg val1 = fetch_data_word(emu, emu->x86.R_SI);
2652 1.1 joerg val2 = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2653 1.1 joerg cmp_word(emu, (uint16_t) val1, (uint16_t) val2);
2654 1.1 joerg }
2655 1.1 joerg emu->x86.R_CX -= 1;
2656 1.1 joerg emu->x86.R_SI += inc;
2657 1.1 joerg emu->x86.R_DI += inc;
2658 1.1 joerg if (ACCESS_FLAG(F_ZF))
2659 1.1 joerg break; /* zero flag set means equal */
2660 1.1 joerg }
2661 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPNE;
2662 1.1 joerg } else {
2663 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2664 1.1 joerg val1 = fetch_data_long(emu, emu->x86.R_SI);
2665 1.1 joerg val2 = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2666 1.1 joerg cmp_long(emu, val1, val2);
2667 1.1 joerg } else {
2668 1.1 joerg val1 = fetch_data_word(emu, emu->x86.R_SI);
2669 1.1 joerg val2 = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2670 1.1 joerg cmp_word(emu, (uint16_t) val1, (uint16_t) val2);
2671 1.1 joerg }
2672 1.1 joerg emu->x86.R_SI += inc;
2673 1.1 joerg emu->x86.R_DI += inc;
2674 1.1 joerg }
2675 1.1 joerg }
2676 1.1 joerg /****************************************************************************
2677 1.1 joerg REMARKS:
2678 1.1 joerg Handles opcode 0xa9
2679 1.1 joerg ****************************************************************************/
2680 1.1 joerg static void
2681 1.1 joerg x86emuOp_test_AX_IMM(struct X86EMU *emu)
2682 1.1 joerg {
2683 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2684 1.1 joerg test_long(emu, emu->x86.R_EAX, fetch_long_imm(emu));
2685 1.1 joerg } else {
2686 1.1 joerg test_word(emu, emu->x86.R_AX, fetch_word_imm(emu));
2687 1.1 joerg }
2688 1.1 joerg }
2689 1.1 joerg /****************************************************************************
2690 1.1 joerg REMARKS:
2691 1.1 joerg Handles opcode 0xaa
2692 1.1 joerg ****************************************************************************/
2693 1.1 joerg static void
2694 1.1 joerg x86emuOp_stos_byte(struct X86EMU *emu)
2695 1.1 joerg {
2696 1.1 joerg int inc;
2697 1.1 joerg
2698 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2699 1.1 joerg inc = -1;
2700 1.1 joerg else
2701 1.1 joerg inc = 1;
2702 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2703 1.1 joerg /* dont care whether REPE or REPNE */
2704 1.1 joerg /* move them until CX is ZERO. */
2705 1.1 joerg while (emu->x86.R_CX != 0) {
2706 1.1 joerg store_byte(emu, emu->x86.R_ES, emu->x86.R_DI, emu->x86.R_AL);
2707 1.1 joerg emu->x86.R_CX -= 1;
2708 1.1 joerg emu->x86.R_DI += inc;
2709 1.1 joerg }
2710 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2711 1.1 joerg } else {
2712 1.1 joerg store_byte(emu, emu->x86.R_ES, emu->x86.R_DI, emu->x86.R_AL);
2713 1.1 joerg emu->x86.R_DI += inc;
2714 1.1 joerg }
2715 1.1 joerg }
2716 1.1 joerg /****************************************************************************
2717 1.1 joerg REMARKS:
2718 1.1 joerg Handles opcode 0xab
2719 1.1 joerg ****************************************************************************/
2720 1.1 joerg static void
2721 1.1 joerg x86emuOp_stos_word(struct X86EMU *emu)
2722 1.1 joerg {
2723 1.1 joerg int inc;
2724 1.1 joerg uint32_t count;
2725 1.1 joerg
2726 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2727 1.1 joerg inc = 4;
2728 1.1 joerg else
2729 1.1 joerg inc = 2;
2730 1.1 joerg
2731 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2732 1.1 joerg inc = -inc;
2733 1.1 joerg
2734 1.1 joerg count = 1;
2735 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2736 1.1 joerg /* dont care whether REPE or REPNE */
2737 1.1 joerg /* move them until CX is ZERO. */
2738 1.1 joerg count = emu->x86.R_CX;
2739 1.1 joerg emu->x86.R_CX = 0;
2740 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2741 1.1 joerg }
2742 1.1 joerg while (count--) {
2743 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2744 1.1 joerg store_long(emu, emu->x86.R_ES, emu->x86.R_DI, emu->x86.R_EAX);
2745 1.1 joerg } else {
2746 1.1 joerg store_word(emu, emu->x86.R_ES, emu->x86.R_DI, emu->x86.R_AX);
2747 1.1 joerg }
2748 1.1 joerg emu->x86.R_DI += inc;
2749 1.1 joerg }
2750 1.1 joerg }
2751 1.1 joerg /****************************************************************************
2752 1.1 joerg REMARKS:
2753 1.1 joerg Handles opcode 0xac
2754 1.1 joerg ****************************************************************************/
2755 1.1 joerg static void
2756 1.1 joerg x86emuOp_lods_byte(struct X86EMU *emu)
2757 1.1 joerg {
2758 1.1 joerg int inc;
2759 1.1 joerg
2760 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2761 1.1 joerg inc = -1;
2762 1.1 joerg else
2763 1.1 joerg inc = 1;
2764 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2765 1.1 joerg /* dont care whether REPE or REPNE */
2766 1.1 joerg /* move them until CX is ZERO. */
2767 1.1 joerg while (emu->x86.R_CX != 0) {
2768 1.1 joerg emu->x86.R_AL = fetch_data_byte(emu, emu->x86.R_SI);
2769 1.1 joerg emu->x86.R_CX -= 1;
2770 1.1 joerg emu->x86.R_SI += inc;
2771 1.1 joerg }
2772 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2773 1.1 joerg } else {
2774 1.1 joerg emu->x86.R_AL = fetch_data_byte(emu, emu->x86.R_SI);
2775 1.1 joerg emu->x86.R_SI += inc;
2776 1.1 joerg }
2777 1.1 joerg }
2778 1.1 joerg /****************************************************************************
2779 1.1 joerg REMARKS:
2780 1.1 joerg Handles opcode 0xad
2781 1.1 joerg ****************************************************************************/
2782 1.1 joerg static void
2783 1.1 joerg x86emuOp_lods_word(struct X86EMU *emu)
2784 1.1 joerg {
2785 1.1 joerg int inc;
2786 1.1 joerg uint32_t count;
2787 1.1 joerg
2788 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2789 1.1 joerg inc = 4;
2790 1.1 joerg else
2791 1.1 joerg inc = 2;
2792 1.1 joerg
2793 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2794 1.1 joerg inc = -inc;
2795 1.1 joerg
2796 1.1 joerg count = 1;
2797 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
2798 1.1 joerg /* dont care whether REPE or REPNE */
2799 1.1 joerg /* move them until CX is ZERO. */
2800 1.1 joerg count = emu->x86.R_CX;
2801 1.1 joerg emu->x86.R_CX = 0;
2802 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
2803 1.1 joerg }
2804 1.1 joerg while (count--) {
2805 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2806 1.1 joerg emu->x86.R_EAX = fetch_data_long(emu, emu->x86.R_SI);
2807 1.1 joerg } else {
2808 1.1 joerg emu->x86.R_AX = fetch_data_word(emu, emu->x86.R_SI);
2809 1.1 joerg }
2810 1.1 joerg emu->x86.R_SI += inc;
2811 1.1 joerg }
2812 1.1 joerg }
2813 1.1 joerg /****************************************************************************
2814 1.1 joerg REMARKS:
2815 1.1 joerg Handles opcode 0xae
2816 1.1 joerg ****************************************************************************/
2817 1.1 joerg static void
2818 1.1 joerg x86emuOp_scas_byte(struct X86EMU *emu)
2819 1.1 joerg {
2820 1.1 joerg int8_t val2;
2821 1.1 joerg int inc;
2822 1.1 joerg
2823 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2824 1.1 joerg inc = -1;
2825 1.1 joerg else
2826 1.1 joerg inc = 1;
2827 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_REPE) {
2828 1.1 joerg /* REPE */
2829 1.1 joerg /* move them until CX is ZERO. */
2830 1.1 joerg while (emu->x86.R_CX != 0) {
2831 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2832 1.1 joerg cmp_byte(emu, emu->x86.R_AL, val2);
2833 1.1 joerg emu->x86.R_CX -= 1;
2834 1.1 joerg emu->x86.R_DI += inc;
2835 1.1 joerg if (ACCESS_FLAG(F_ZF) == 0)
2836 1.1 joerg break;
2837 1.1 joerg }
2838 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPE;
2839 1.1 joerg } else if (emu->x86.mode & SYSMODE_PREFIX_REPNE) {
2840 1.1 joerg /* REPNE */
2841 1.1 joerg /* move them until CX is ZERO. */
2842 1.1 joerg while (emu->x86.R_CX != 0) {
2843 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2844 1.1 joerg cmp_byte(emu, emu->x86.R_AL, val2);
2845 1.1 joerg emu->x86.R_CX -= 1;
2846 1.1 joerg emu->x86.R_DI += inc;
2847 1.1 joerg if (ACCESS_FLAG(F_ZF))
2848 1.1 joerg break; /* zero flag set means equal */
2849 1.1 joerg }
2850 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPNE;
2851 1.1 joerg } else {
2852 1.1 joerg val2 = fetch_byte(emu, emu->x86.R_ES, emu->x86.R_DI);
2853 1.1 joerg cmp_byte(emu, emu->x86.R_AL, val2);
2854 1.1 joerg emu->x86.R_DI += inc;
2855 1.1 joerg }
2856 1.1 joerg }
2857 1.1 joerg /****************************************************************************
2858 1.1 joerg REMARKS:
2859 1.1 joerg Handles opcode 0xaf
2860 1.1 joerg ****************************************************************************/
2861 1.1 joerg static void
2862 1.1 joerg x86emuOp_scas_word(struct X86EMU *emu)
2863 1.1 joerg {
2864 1.1 joerg int inc;
2865 1.1 joerg uint32_t val;
2866 1.1 joerg
2867 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2868 1.1 joerg inc = 4;
2869 1.1 joerg else
2870 1.1 joerg inc = 2;
2871 1.1 joerg
2872 1.1 joerg if (ACCESS_FLAG(F_DF)) /* down */
2873 1.1 joerg inc = -inc;
2874 1.1 joerg
2875 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_REPE) {
2876 1.1 joerg /* REPE */
2877 1.1 joerg /* move them until CX is ZERO. */
2878 1.1 joerg while (emu->x86.R_CX != 0) {
2879 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2880 1.1 joerg val = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2881 1.1 joerg cmp_long(emu, emu->x86.R_EAX, val);
2882 1.1 joerg } else {
2883 1.1 joerg val = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2884 1.1 joerg cmp_word(emu, emu->x86.R_AX, (uint16_t) val);
2885 1.1 joerg }
2886 1.1 joerg emu->x86.R_CX -= 1;
2887 1.1 joerg emu->x86.R_DI += inc;
2888 1.1 joerg if (ACCESS_FLAG(F_ZF) == 0)
2889 1.1 joerg break;
2890 1.1 joerg }
2891 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPE;
2892 1.1 joerg } else if (emu->x86.mode & SYSMODE_PREFIX_REPNE) {
2893 1.1 joerg /* REPNE */
2894 1.1 joerg /* move them until CX is ZERO. */
2895 1.1 joerg while (emu->x86.R_CX != 0) {
2896 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2897 1.1 joerg val = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2898 1.1 joerg cmp_long(emu, emu->x86.R_EAX, val);
2899 1.1 joerg } else {
2900 1.1 joerg val = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2901 1.1 joerg cmp_word(emu, emu->x86.R_AX, (uint16_t) val);
2902 1.1 joerg }
2903 1.1 joerg emu->x86.R_CX -= 1;
2904 1.1 joerg emu->x86.R_DI += inc;
2905 1.1 joerg if (ACCESS_FLAG(F_ZF))
2906 1.1 joerg break; /* zero flag set means equal */
2907 1.1 joerg }
2908 1.1 joerg emu->x86.mode &= ~SYSMODE_PREFIX_REPNE;
2909 1.1 joerg } else {
2910 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
2911 1.1 joerg val = fetch_long(emu, emu->x86.R_ES, emu->x86.R_DI);
2912 1.1 joerg cmp_long(emu, emu->x86.R_EAX, val);
2913 1.1 joerg } else {
2914 1.1 joerg val = fetch_word(emu, emu->x86.R_ES, emu->x86.R_DI);
2915 1.1 joerg cmp_word(emu, emu->x86.R_AX, (uint16_t) val);
2916 1.1 joerg }
2917 1.1 joerg emu->x86.R_DI += inc;
2918 1.1 joerg }
2919 1.1 joerg }
2920 1.1 joerg /****************************************************************************
2921 1.1 joerg REMARKS:
2922 1.1 joerg Handles opcode 0xb8
2923 1.1 joerg ****************************************************************************/
2924 1.1 joerg static void
2925 1.1 joerg x86emuOp_mov_word_AX_IMM(struct X86EMU *emu)
2926 1.1 joerg {
2927 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2928 1.1 joerg emu->x86.R_EAX = fetch_long_imm(emu);
2929 1.1 joerg else
2930 1.1 joerg emu->x86.R_AX = fetch_word_imm(emu);
2931 1.1 joerg }
2932 1.1 joerg /****************************************************************************
2933 1.1 joerg REMARKS:
2934 1.1 joerg Handles opcode 0xb9
2935 1.1 joerg ****************************************************************************/
2936 1.1 joerg static void
2937 1.1 joerg x86emuOp_mov_word_CX_IMM(struct X86EMU *emu)
2938 1.1 joerg {
2939 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2940 1.1 joerg emu->x86.R_ECX = fetch_long_imm(emu);
2941 1.1 joerg else
2942 1.1 joerg emu->x86.R_CX = fetch_word_imm(emu);
2943 1.1 joerg }
2944 1.1 joerg /****************************************************************************
2945 1.1 joerg REMARKS:
2946 1.1 joerg Handles opcode 0xba
2947 1.1 joerg ****************************************************************************/
2948 1.1 joerg static void
2949 1.1 joerg x86emuOp_mov_word_DX_IMM(struct X86EMU *emu)
2950 1.1 joerg {
2951 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2952 1.1 joerg emu->x86.R_EDX = fetch_long_imm(emu);
2953 1.1 joerg else
2954 1.1 joerg emu->x86.R_DX = fetch_word_imm(emu);
2955 1.1 joerg }
2956 1.1 joerg /****************************************************************************
2957 1.1 joerg REMARKS:
2958 1.1 joerg Handles opcode 0xbb
2959 1.1 joerg ****************************************************************************/
2960 1.1 joerg static void
2961 1.1 joerg x86emuOp_mov_word_BX_IMM(struct X86EMU *emu)
2962 1.1 joerg {
2963 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2964 1.1 joerg emu->x86.R_EBX = fetch_long_imm(emu);
2965 1.1 joerg else
2966 1.1 joerg emu->x86.R_BX = fetch_word_imm(emu);
2967 1.1 joerg }
2968 1.1 joerg /****************************************************************************
2969 1.1 joerg REMARKS:
2970 1.1 joerg Handles opcode 0xbc
2971 1.1 joerg ****************************************************************************/
2972 1.1 joerg static void
2973 1.1 joerg x86emuOp_mov_word_SP_IMM(struct X86EMU *emu)
2974 1.1 joerg {
2975 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2976 1.1 joerg emu->x86.R_ESP = fetch_long_imm(emu);
2977 1.1 joerg else
2978 1.1 joerg emu->x86.R_SP = fetch_word_imm(emu);
2979 1.1 joerg }
2980 1.1 joerg /****************************************************************************
2981 1.1 joerg REMARKS:
2982 1.1 joerg Handles opcode 0xbd
2983 1.1 joerg ****************************************************************************/
2984 1.1 joerg static void
2985 1.1 joerg x86emuOp_mov_word_BP_IMM(struct X86EMU *emu)
2986 1.1 joerg {
2987 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
2988 1.1 joerg emu->x86.R_EBP = fetch_long_imm(emu);
2989 1.1 joerg else
2990 1.1 joerg emu->x86.R_BP = fetch_word_imm(emu);
2991 1.1 joerg }
2992 1.1 joerg /****************************************************************************
2993 1.1 joerg REMARKS:
2994 1.1 joerg Handles opcode 0xbe
2995 1.1 joerg ****************************************************************************/
2996 1.1 joerg static void
2997 1.1 joerg x86emuOp_mov_word_SI_IMM(struct X86EMU *emu)
2998 1.1 joerg {
2999 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
3000 1.1 joerg emu->x86.R_ESI = fetch_long_imm(emu);
3001 1.1 joerg else
3002 1.1 joerg emu->x86.R_SI = fetch_word_imm(emu);
3003 1.1 joerg }
3004 1.1 joerg /****************************************************************************
3005 1.1 joerg REMARKS:
3006 1.1 joerg Handles opcode 0xbf
3007 1.1 joerg ****************************************************************************/
3008 1.1 joerg static void
3009 1.1 joerg x86emuOp_mov_word_DI_IMM(struct X86EMU *emu)
3010 1.1 joerg {
3011 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
3012 1.1 joerg emu->x86.R_EDI = fetch_long_imm(emu);
3013 1.1 joerg else
3014 1.1 joerg emu->x86.R_DI = fetch_word_imm(emu);
3015 1.1 joerg }
3016 1.1 joerg /* used by opcodes c0, d0, and d2. */
3017 1.1 joerg static
3018 1.1 joerg uint8_t(* const opcD0_byte_operation[]) (struct X86EMU *, uint8_t d, uint8_t s) =
3019 1.1 joerg {
3020 1.1 joerg rol_byte,
3021 1.1 joerg ror_byte,
3022 1.1 joerg rcl_byte,
3023 1.1 joerg rcr_byte,
3024 1.1 joerg shl_byte,
3025 1.1 joerg shr_byte,
3026 1.1 joerg shl_byte, /* sal_byte === shl_byte by definition */
3027 1.1 joerg sar_byte,
3028 1.1 joerg };
3029 1.1 joerg /****************************************************************************
3030 1.1 joerg REMARKS:
3031 1.1 joerg Handles opcode 0xc0
3032 1.1 joerg ****************************************************************************/
3033 1.1 joerg static void
3034 1.1 joerg x86emuOp_opcC0_byte_RM_MEM(struct X86EMU *emu)
3035 1.1 joerg {
3036 1.1 joerg uint8_t destval, amt;
3037 1.1 joerg
3038 1.1 joerg /*
3039 1.1 joerg * Yet another weirdo special case instruction format. Part of
3040 1.1 joerg * the opcode held below in "RH". Doubly nested case would
3041 1.1 joerg * result, except that the decoded instruction
3042 1.1 joerg */
3043 1.1 joerg fetch_decode_modrm(emu);
3044 1.1 joerg /* know operation, decode the mod byte to find the addressing mode. */
3045 1.1 joerg destval = decode_and_fetch_byte_imm8(emu, &amt);
3046 1.1 joerg destval = (*opcD0_byte_operation[emu->cur_rh]) (emu, destval, amt);
3047 1.1 joerg write_back_byte(emu, destval);
3048 1.1 joerg }
3049 1.1 joerg /* used by opcodes c1, d1, and d3. */
3050 1.1 joerg static
3051 1.1 joerg uint16_t(* const opcD1_word_operation[]) (struct X86EMU *, uint16_t s, uint8_t d) =
3052 1.1 joerg {
3053 1.1 joerg rol_word,
3054 1.1 joerg ror_word,
3055 1.1 joerg rcl_word,
3056 1.1 joerg rcr_word,
3057 1.1 joerg shl_word,
3058 1.1 joerg shr_word,
3059 1.1 joerg shl_word, /* sal_byte === shl_byte by definition */
3060 1.1 joerg sar_word,
3061 1.1 joerg };
3062 1.1 joerg /* used by opcodes c1, d1, and d3. */
3063 1.1 joerg static
3064 1.1 joerg uint32_t(* const opcD1_long_operation[]) (struct X86EMU *, uint32_t s, uint8_t d) =
3065 1.1 joerg {
3066 1.1 joerg rol_long,
3067 1.1 joerg ror_long,
3068 1.1 joerg rcl_long,
3069 1.1 joerg rcr_long,
3070 1.1 joerg shl_long,
3071 1.1 joerg shr_long,
3072 1.1 joerg shl_long, /* sal_byte === shl_byte by definition */
3073 1.1 joerg sar_long,
3074 1.1 joerg };
3075 1.1 joerg /****************************************************************************
3076 1.1 joerg REMARKS:
3077 1.1 joerg Handles opcode 0xc1
3078 1.1 joerg ****************************************************************************/
3079 1.1 joerg static void
3080 1.1 joerg x86emuOp_opcC1_word_RM_MEM(struct X86EMU *emu)
3081 1.1 joerg {
3082 1.1 joerg uint8_t amt;
3083 1.1 joerg
3084 1.1 joerg /*
3085 1.1 joerg * Yet another weirdo special case instruction format. Part of
3086 1.1 joerg * the opcode held below in "RH". Doubly nested case would
3087 1.1 joerg * result, except that the decoded instruction
3088 1.1 joerg */
3089 1.1 joerg fetch_decode_modrm(emu);
3090 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3091 1.1 joerg uint32_t destval;
3092 1.1 joerg
3093 1.1 joerg destval = decode_and_fetch_long_imm8(emu, &amt);
3094 1.1 joerg destval = (*opcD1_long_operation[emu->cur_rh]) (emu, destval, amt);
3095 1.1 joerg write_back_long(emu, destval);
3096 1.1 joerg } else {
3097 1.1 joerg uint16_t destval;
3098 1.1 joerg
3099 1.1 joerg destval = decode_and_fetch_word_imm8(emu, &amt);
3100 1.1 joerg destval = (*opcD1_word_operation[emu->cur_rh]) (emu, destval, amt);
3101 1.1 joerg write_back_word(emu, destval);
3102 1.1 joerg }
3103 1.1 joerg }
3104 1.1 joerg /****************************************************************************
3105 1.1 joerg REMARKS:
3106 1.1 joerg Handles opcode 0xc2
3107 1.1 joerg ****************************************************************************/
3108 1.1 joerg static void
3109 1.1 joerg x86emuOp_ret_near_IMM(struct X86EMU *emu)
3110 1.1 joerg {
3111 1.1 joerg uint16_t imm;
3112 1.1 joerg
3113 1.1 joerg imm = fetch_word_imm(emu);
3114 1.1 joerg emu->x86.R_IP = pop_word(emu);
3115 1.1 joerg emu->x86.R_SP += imm;
3116 1.1 joerg }
3117 1.1 joerg /****************************************************************************
3118 1.1 joerg REMARKS:
3119 1.1 joerg Handles opcode 0xc6
3120 1.1 joerg ****************************************************************************/
3121 1.1 joerg static void
3122 1.1 joerg x86emuOp_mov_byte_RM_IMM(struct X86EMU *emu)
3123 1.1 joerg {
3124 1.1 joerg uint8_t *destreg;
3125 1.1 joerg uint32_t destoffset;
3126 1.1 joerg uint8_t imm;
3127 1.1 joerg
3128 1.1 joerg fetch_decode_modrm(emu);
3129 1.1 joerg if (emu->cur_rh != 0)
3130 1.1 joerg X86EMU_halt_sys(emu);
3131 1.1 joerg if (emu->cur_mod != 3) {
3132 1.1 joerg destoffset = decode_rl_address(emu);
3133 1.1 joerg imm = fetch_byte_imm(emu);
3134 1.1 joerg store_data_byte(emu, destoffset, imm);
3135 1.1 joerg } else {
3136 1.1 joerg destreg = decode_rl_byte_register(emu);
3137 1.1 joerg imm = fetch_byte_imm(emu);
3138 1.1 joerg *destreg = imm;
3139 1.1 joerg }
3140 1.1 joerg }
3141 1.1 joerg /****************************************************************************
3142 1.1 joerg REMARKS:
3143 1.1 joerg Handles opcode 0xc7
3144 1.1 joerg ****************************************************************************/
3145 1.1 joerg static void
3146 1.1 joerg x86emuOp32_mov_word_RM_IMM(struct X86EMU *emu)
3147 1.1 joerg {
3148 1.1 joerg uint32_t destoffset;
3149 1.1 joerg uint32_t imm, *destreg;
3150 1.1 joerg
3151 1.1 joerg fetch_decode_modrm(emu);
3152 1.1 joerg if (emu->cur_rh != 0)
3153 1.1 joerg X86EMU_halt_sys(emu);
3154 1.1 joerg
3155 1.1 joerg if (emu->cur_mod != 3) {
3156 1.1 joerg destoffset = decode_rl_address(emu);
3157 1.1 joerg imm = fetch_long_imm(emu);
3158 1.1 joerg store_data_long(emu, destoffset, imm);
3159 1.1 joerg } else {
3160 1.1 joerg destreg = decode_rl_long_register(emu);
3161 1.1 joerg imm = fetch_long_imm(emu);
3162 1.1 joerg *destreg = imm;
3163 1.1 joerg }
3164 1.1 joerg }
3165 1.1 joerg
3166 1.1 joerg static void
3167 1.1 joerg x86emuOp16_mov_word_RM_IMM(struct X86EMU *emu)
3168 1.1 joerg {
3169 1.1 joerg uint32_t destoffset;
3170 1.1 joerg uint16_t imm, *destreg;
3171 1.1 joerg
3172 1.1 joerg fetch_decode_modrm(emu);
3173 1.1 joerg if (emu->cur_rh != 0)
3174 1.1 joerg X86EMU_halt_sys(emu);
3175 1.1 joerg
3176 1.1 joerg if (emu->cur_mod != 3) {
3177 1.1 joerg destoffset = decode_rl_address(emu);
3178 1.1 joerg imm = fetch_word_imm(emu);
3179 1.1 joerg store_data_word(emu, destoffset, imm);
3180 1.1 joerg } else {
3181 1.1 joerg destreg = decode_rl_word_register(emu);
3182 1.1 joerg imm = fetch_word_imm(emu);
3183 1.1 joerg *destreg = imm;
3184 1.1 joerg }
3185 1.1 joerg }
3186 1.1 joerg
3187 1.1 joerg static void
3188 1.1 joerg x86emuOp_mov_word_RM_IMM(struct X86EMU *emu)
3189 1.1 joerg {
3190 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
3191 1.1 joerg x86emuOp32_mov_word_RM_IMM(emu);
3192 1.1 joerg else
3193 1.1 joerg x86emuOp16_mov_word_RM_IMM(emu);
3194 1.1 joerg }
3195 1.1 joerg /****************************************************************************
3196 1.1 joerg REMARKS:
3197 1.1 joerg Handles opcode 0xc8
3198 1.1 joerg ****************************************************************************/
3199 1.1 joerg static void
3200 1.1 joerg x86emuOp_enter(struct X86EMU *emu)
3201 1.1 joerg {
3202 1.1 joerg uint16_t local, frame_pointer;
3203 1.1 joerg uint8_t nesting;
3204 1.1 joerg int i;
3205 1.1 joerg
3206 1.1 joerg local = fetch_word_imm(emu);
3207 1.1 joerg nesting = fetch_byte_imm(emu);
3208 1.1 joerg push_word(emu, emu->x86.R_BP);
3209 1.1 joerg frame_pointer = emu->x86.R_SP;
3210 1.1 joerg if (nesting > 0) {
3211 1.1 joerg for (i = 1; i < nesting; i++) {
3212 1.1 joerg emu->x86.R_BP -= 2;
3213 1.1 joerg push_word(emu, fetch_word(emu, emu->x86.R_SS, emu->x86.R_BP));
3214 1.1 joerg }
3215 1.1 joerg push_word(emu, frame_pointer);
3216 1.1 joerg }
3217 1.1 joerg emu->x86.R_BP = frame_pointer;
3218 1.1 joerg emu->x86.R_SP = (uint16_t) (emu->x86.R_SP - local);
3219 1.1 joerg }
3220 1.1 joerg /****************************************************************************
3221 1.1 joerg REMARKS:
3222 1.1 joerg Handles opcode 0xc9
3223 1.1 joerg ****************************************************************************/
3224 1.1 joerg static void
3225 1.1 joerg x86emuOp_leave(struct X86EMU *emu)
3226 1.1 joerg {
3227 1.1 joerg emu->x86.R_SP = emu->x86.R_BP;
3228 1.1 joerg emu->x86.R_BP = pop_word(emu);
3229 1.1 joerg }
3230 1.1 joerg /****************************************************************************
3231 1.1 joerg REMARKS:
3232 1.1 joerg Handles opcode 0xca
3233 1.1 joerg ****************************************************************************/
3234 1.1 joerg static void
3235 1.1 joerg x86emuOp_ret_far_IMM(struct X86EMU *emu)
3236 1.1 joerg {
3237 1.1 joerg uint16_t imm;
3238 1.1 joerg
3239 1.1 joerg imm = fetch_word_imm(emu);
3240 1.1 joerg emu->x86.R_IP = pop_word(emu);
3241 1.1 joerg emu->x86.R_CS = pop_word(emu);
3242 1.1 joerg emu->x86.R_SP += imm;
3243 1.1 joerg }
3244 1.1 joerg /****************************************************************************
3245 1.1 joerg REMARKS:
3246 1.1 joerg Handles opcode 0xcb
3247 1.1 joerg ****************************************************************************/
3248 1.1 joerg static void
3249 1.1 joerg x86emuOp_ret_far(struct X86EMU *emu)
3250 1.1 joerg {
3251 1.1 joerg emu->x86.R_IP = pop_word(emu);
3252 1.1 joerg emu->x86.R_CS = pop_word(emu);
3253 1.1 joerg }
3254 1.1 joerg /****************************************************************************
3255 1.1 joerg REMARKS:
3256 1.1 joerg Handles opcode 0xcc
3257 1.1 joerg ****************************************************************************/
3258 1.1 joerg static void
3259 1.1 joerg x86emuOp_int3(struct X86EMU *emu)
3260 1.1 joerg {
3261 1.3 joerg x86emu_intr_dispatch(emu, 3);
3262 1.1 joerg }
3263 1.1 joerg /****************************************************************************
3264 1.1 joerg REMARKS:
3265 1.1 joerg Handles opcode 0xcd
3266 1.1 joerg ****************************************************************************/
3267 1.1 joerg static void
3268 1.1 joerg x86emuOp_int_IMM(struct X86EMU *emu)
3269 1.1 joerg {
3270 1.1 joerg uint8_t intnum;
3271 1.1 joerg
3272 1.1 joerg intnum = fetch_byte_imm(emu);
3273 1.3 joerg x86emu_intr_dispatch(emu, intnum);
3274 1.1 joerg }
3275 1.1 joerg /****************************************************************************
3276 1.1 joerg REMARKS:
3277 1.1 joerg Handles opcode 0xce
3278 1.1 joerg ****************************************************************************/
3279 1.1 joerg static void
3280 1.1 joerg x86emuOp_into(struct X86EMU *emu)
3281 1.1 joerg {
3282 1.3 joerg if (ACCESS_FLAG(F_OF))
3283 1.3 joerg x86emu_intr_dispatch(emu, 4);
3284 1.1 joerg }
3285 1.1 joerg /****************************************************************************
3286 1.1 joerg REMARKS:
3287 1.1 joerg Handles opcode 0xcf
3288 1.1 joerg ****************************************************************************/
3289 1.1 joerg static void
3290 1.1 joerg x86emuOp_iret(struct X86EMU *emu)
3291 1.1 joerg {
3292 1.1 joerg emu->x86.R_IP = pop_word(emu);
3293 1.1 joerg emu->x86.R_CS = pop_word(emu);
3294 1.1 joerg emu->x86.R_FLG = pop_word(emu);
3295 1.1 joerg }
3296 1.1 joerg /****************************************************************************
3297 1.1 joerg REMARKS:
3298 1.1 joerg Handles opcode 0xd0
3299 1.1 joerg ****************************************************************************/
3300 1.1 joerg static void
3301 1.1 joerg x86emuOp_opcD0_byte_RM_1(struct X86EMU *emu)
3302 1.1 joerg {
3303 1.1 joerg uint8_t destval;
3304 1.1 joerg
3305 1.1 joerg fetch_decode_modrm(emu);
3306 1.1 joerg destval = decode_and_fetch_byte(emu);
3307 1.1 joerg destval = (*opcD0_byte_operation[emu->cur_rh]) (emu, destval, 1);
3308 1.1 joerg write_back_byte(emu, destval);
3309 1.1 joerg }
3310 1.1 joerg /****************************************************************************
3311 1.1 joerg REMARKS:
3312 1.1 joerg Handles opcode 0xd1
3313 1.1 joerg ****************************************************************************/
3314 1.1 joerg static void
3315 1.1 joerg x86emuOp_opcD1_word_RM_1(struct X86EMU *emu)
3316 1.1 joerg {
3317 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3318 1.1 joerg uint32_t destval;
3319 1.1 joerg
3320 1.1 joerg fetch_decode_modrm(emu);
3321 1.1 joerg destval = decode_and_fetch_long(emu);
3322 1.1 joerg destval = (*opcD1_long_operation[emu->cur_rh]) (emu, destval, 1);
3323 1.1 joerg write_back_long(emu, destval);
3324 1.1 joerg } else {
3325 1.1 joerg uint16_t destval;
3326 1.1 joerg
3327 1.1 joerg fetch_decode_modrm(emu);
3328 1.1 joerg destval = decode_and_fetch_word(emu);
3329 1.1 joerg destval = (*opcD1_word_operation[emu->cur_rh]) (emu, destval, 1);
3330 1.1 joerg write_back_word(emu, destval);
3331 1.1 joerg }
3332 1.1 joerg }
3333 1.1 joerg /****************************************************************************
3334 1.1 joerg REMARKS:
3335 1.1 joerg Handles opcode 0xd2
3336 1.1 joerg ****************************************************************************/
3337 1.1 joerg static void
3338 1.1 joerg x86emuOp_opcD2_byte_RM_CL(struct X86EMU *emu)
3339 1.1 joerg {
3340 1.1 joerg uint8_t destval;
3341 1.1 joerg
3342 1.1 joerg fetch_decode_modrm(emu);
3343 1.1 joerg destval = decode_and_fetch_byte(emu);
3344 1.1 joerg destval = (*opcD0_byte_operation[emu->cur_rh]) (emu, destval, emu->x86.R_CL);
3345 1.1 joerg write_back_byte(emu, destval);
3346 1.1 joerg }
3347 1.1 joerg /****************************************************************************
3348 1.1 joerg REMARKS:
3349 1.1 joerg Handles opcode 0xd3
3350 1.1 joerg ****************************************************************************/
3351 1.1 joerg static void
3352 1.1 joerg x86emuOp_opcD3_word_RM_CL(struct X86EMU *emu)
3353 1.1 joerg {
3354 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3355 1.1 joerg uint32_t destval;
3356 1.1 joerg
3357 1.1 joerg fetch_decode_modrm(emu);
3358 1.1 joerg destval = decode_and_fetch_long(emu);
3359 1.1 joerg destval = (*opcD1_long_operation[emu->cur_rh]) (emu, destval, emu->x86.R_CL);
3360 1.1 joerg write_back_long(emu, destval);
3361 1.1 joerg } else {
3362 1.1 joerg uint16_t destval;
3363 1.1 joerg
3364 1.1 joerg fetch_decode_modrm(emu);
3365 1.1 joerg destval = decode_and_fetch_word(emu);
3366 1.1 joerg destval = (*opcD1_word_operation[emu->cur_rh]) (emu, destval, emu->x86.R_CL);
3367 1.1 joerg write_back_word(emu, destval);
3368 1.1 joerg }
3369 1.1 joerg }
3370 1.1 joerg /****************************************************************************
3371 1.1 joerg REMARKS:
3372 1.1 joerg Handles opcode 0xd4
3373 1.1 joerg ****************************************************************************/
3374 1.1 joerg static void
3375 1.1 joerg x86emuOp_aam(struct X86EMU *emu)
3376 1.1 joerg {
3377 1.1 joerg uint8_t a;
3378 1.1 joerg
3379 1.1 joerg a = fetch_byte_imm(emu); /* this is a stupid encoding. */
3380 1.1 joerg if (a != 10) {
3381 1.1 joerg /* fix: add base decoding aam_word(uint8_t val, int base a) */
3382 1.1 joerg X86EMU_halt_sys(emu);
3383 1.1 joerg }
3384 1.1 joerg /* note the type change here --- returning AL and AH in AX. */
3385 1.1 joerg emu->x86.R_AX = aam_word(emu, emu->x86.R_AL);
3386 1.1 joerg }
3387 1.1 joerg /****************************************************************************
3388 1.1 joerg REMARKS:
3389 1.1 joerg Handles opcode 0xd5
3390 1.1 joerg ****************************************************************************/
3391 1.1 joerg static void
3392 1.1 joerg x86emuOp_aad(struct X86EMU *emu)
3393 1.1 joerg {
3394 1.1 joerg uint8_t a;
3395 1.1 joerg
3396 1.1 joerg a = fetch_byte_imm(emu);
3397 1.1 joerg if (a != 10) {
3398 1.1 joerg /* fix: add base decoding aad_word(uint16_t val, int base a) */
3399 1.1 joerg X86EMU_halt_sys(emu);
3400 1.1 joerg }
3401 1.1 joerg emu->x86.R_AX = aad_word(emu, emu->x86.R_AX);
3402 1.1 joerg }
3403 1.1 joerg /* opcode 0xd6 ILLEGAL OPCODE */
3404 1.1 joerg
3405 1.1 joerg /****************************************************************************
3406 1.1 joerg REMARKS:
3407 1.1 joerg Handles opcode 0xd7
3408 1.1 joerg ****************************************************************************/
3409 1.1 joerg static void
3410 1.1 joerg x86emuOp_xlat(struct X86EMU *emu)
3411 1.1 joerg {
3412 1.1 joerg uint16_t addr;
3413 1.1 joerg
3414 1.1 joerg addr = (uint16_t) (emu->x86.R_BX + (uint8_t) emu->x86.R_AL);
3415 1.1 joerg emu->x86.R_AL = fetch_data_byte(emu, addr);
3416 1.1 joerg }
3417 1.1 joerg
3418 1.1 joerg /* opcode=0xd8 */
3419 1.1 joerg static void
3420 1.1 joerg x86emuOp_esc_coprocess_d8(struct X86EMU *emu)
3421 1.1 joerg {
3422 1.1 joerg }
3423 1.1 joerg /* opcode=0xd9 */
3424 1.1 joerg static void
3425 1.1 joerg x86emuOp_esc_coprocess_d9(struct X86EMU *emu)
3426 1.1 joerg {
3427 1.1 joerg fetch_decode_modrm(emu);
3428 1.1 joerg if (emu->cur_mod != 3)
3429 1.1 joerg decode_rl_address(emu);
3430 1.1 joerg }
3431 1.1 joerg /* opcode=0xda */
3432 1.1 joerg static void
3433 1.1 joerg x86emuOp_esc_coprocess_da(struct X86EMU *emu)
3434 1.1 joerg {
3435 1.1 joerg fetch_decode_modrm(emu);
3436 1.1 joerg if (emu->cur_mod != 3)
3437 1.1 joerg decode_rl_address(emu);
3438 1.1 joerg }
3439 1.1 joerg /* opcode=0xdb */
3440 1.1 joerg static void
3441 1.1 joerg x86emuOp_esc_coprocess_db(struct X86EMU *emu)
3442 1.1 joerg {
3443 1.1 joerg fetch_decode_modrm(emu);
3444 1.1 joerg if (emu->cur_mod != 3)
3445 1.1 joerg decode_rl_address(emu);
3446 1.1 joerg }
3447 1.1 joerg /* opcode=0xdc */
3448 1.1 joerg static void
3449 1.1 joerg x86emuOp_esc_coprocess_dc(struct X86EMU *emu)
3450 1.1 joerg {
3451 1.1 joerg fetch_decode_modrm(emu);
3452 1.1 joerg if (emu->cur_mod != 3)
3453 1.1 joerg decode_rl_address(emu);
3454 1.1 joerg }
3455 1.1 joerg /* opcode=0xdd */
3456 1.1 joerg static void
3457 1.1 joerg x86emuOp_esc_coprocess_dd(struct X86EMU *emu)
3458 1.1 joerg {
3459 1.1 joerg fetch_decode_modrm(emu);
3460 1.1 joerg if (emu->cur_mod != 3)
3461 1.1 joerg decode_rl_address(emu);
3462 1.1 joerg }
3463 1.1 joerg /* opcode=0xde */
3464 1.1 joerg static void
3465 1.1 joerg x86emuOp_esc_coprocess_de(struct X86EMU *emu)
3466 1.1 joerg {
3467 1.1 joerg fetch_decode_modrm(emu);
3468 1.1 joerg if (emu->cur_mod != 3)
3469 1.1 joerg decode_rl_address(emu);
3470 1.1 joerg }
3471 1.1 joerg /* opcode=0xdf */
3472 1.1 joerg static void
3473 1.1 joerg x86emuOp_esc_coprocess_df(struct X86EMU *emu)
3474 1.1 joerg {
3475 1.1 joerg fetch_decode_modrm(emu);
3476 1.1 joerg if (emu->cur_mod != 3)
3477 1.1 joerg decode_rl_address(emu);
3478 1.1 joerg }
3479 1.1 joerg
3480 1.1 joerg /****************************************************************************
3481 1.1 joerg REMARKS:
3482 1.1 joerg Handles opcode 0xe0
3483 1.1 joerg ****************************************************************************/
3484 1.1 joerg static void
3485 1.1 joerg x86emuOp_loopne(struct X86EMU *emu)
3486 1.1 joerg {
3487 1.1 joerg int16_t ip;
3488 1.1 joerg
3489 1.1 joerg ip = (int8_t) fetch_byte_imm(emu);
3490 1.1 joerg ip += (int16_t) emu->x86.R_IP;
3491 1.1 joerg emu->x86.R_CX -= 1;
3492 1.1 joerg if (emu->x86.R_CX != 0 && !ACCESS_FLAG(F_ZF)) /* CX != 0 and !ZF */
3493 1.1 joerg emu->x86.R_IP = ip;
3494 1.1 joerg }
3495 1.1 joerg /****************************************************************************
3496 1.1 joerg REMARKS:
3497 1.1 joerg Handles opcode 0xe1
3498 1.1 joerg ****************************************************************************/
3499 1.1 joerg static void
3500 1.1 joerg x86emuOp_loope(struct X86EMU *emu)
3501 1.1 joerg {
3502 1.1 joerg int16_t ip;
3503 1.1 joerg
3504 1.1 joerg ip = (int8_t) fetch_byte_imm(emu);
3505 1.1 joerg ip += (int16_t) emu->x86.R_IP;
3506 1.1 joerg emu->x86.R_CX -= 1;
3507 1.1 joerg if (emu->x86.R_CX != 0 && ACCESS_FLAG(F_ZF)) /* CX != 0 and ZF */
3508 1.1 joerg emu->x86.R_IP = ip;
3509 1.1 joerg }
3510 1.1 joerg /****************************************************************************
3511 1.1 joerg REMARKS:
3512 1.1 joerg Handles opcode 0xe2
3513 1.1 joerg ****************************************************************************/
3514 1.1 joerg static void
3515 1.1 joerg x86emuOp_loop(struct X86EMU *emu)
3516 1.1 joerg {
3517 1.1 joerg int16_t ip;
3518 1.1 joerg
3519 1.1 joerg ip = (int8_t) fetch_byte_imm(emu);
3520 1.1 joerg ip += (int16_t) emu->x86.R_IP;
3521 1.1 joerg emu->x86.R_CX -= 1;
3522 1.1 joerg if (emu->x86.R_CX != 0)
3523 1.1 joerg emu->x86.R_IP = ip;
3524 1.1 joerg }
3525 1.1 joerg /****************************************************************************
3526 1.1 joerg REMARKS:
3527 1.1 joerg Handles opcode 0xe3
3528 1.1 joerg ****************************************************************************/
3529 1.1 joerg static void
3530 1.1 joerg x86emuOp_jcxz(struct X86EMU *emu)
3531 1.1 joerg {
3532 1.1 joerg uint16_t target;
3533 1.1 joerg int8_t offset;
3534 1.1 joerg
3535 1.1 joerg /* jump to byte offset if overflow flag is set */
3536 1.1 joerg offset = (int8_t) fetch_byte_imm(emu);
3537 1.1 joerg target = (uint16_t) (emu->x86.R_IP + offset);
3538 1.1 joerg if (emu->x86.R_CX == 0)
3539 1.1 joerg emu->x86.R_IP = target;
3540 1.1 joerg }
3541 1.1 joerg /****************************************************************************
3542 1.1 joerg REMARKS:
3543 1.1 joerg Handles opcode 0xe4
3544 1.1 joerg ****************************************************************************/
3545 1.1 joerg static void
3546 1.1 joerg x86emuOp_in_byte_AL_IMM(struct X86EMU *emu)
3547 1.1 joerg {
3548 1.1 joerg uint8_t port;
3549 1.1 joerg
3550 1.1 joerg port = (uint8_t) fetch_byte_imm(emu);
3551 1.1 joerg emu->x86.R_AL = (*emu->emu_inb) (emu, port);
3552 1.1 joerg }
3553 1.1 joerg /****************************************************************************
3554 1.1 joerg REMARKS:
3555 1.1 joerg Handles opcode 0xe5
3556 1.1 joerg ****************************************************************************/
3557 1.1 joerg static void
3558 1.1 joerg x86emuOp_in_word_AX_IMM(struct X86EMU *emu)
3559 1.1 joerg {
3560 1.1 joerg uint8_t port;
3561 1.1 joerg
3562 1.1 joerg port = (uint8_t) fetch_byte_imm(emu);
3563 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3564 1.1 joerg emu->x86.R_EAX = (*emu->emu_inl) (emu, port);
3565 1.1 joerg } else {
3566 1.1 joerg emu->x86.R_AX = (*emu->emu_inw) (emu, port);
3567 1.1 joerg }
3568 1.1 joerg }
3569 1.1 joerg /****************************************************************************
3570 1.1 joerg REMARKS:
3571 1.1 joerg Handles opcode 0xe6
3572 1.1 joerg ****************************************************************************/
3573 1.1 joerg static void
3574 1.1 joerg x86emuOp_out_byte_IMM_AL(struct X86EMU *emu)
3575 1.1 joerg {
3576 1.1 joerg uint8_t port;
3577 1.1 joerg
3578 1.1 joerg port = (uint8_t) fetch_byte_imm(emu);
3579 1.1 joerg (*emu->emu_outb) (emu, port, emu->x86.R_AL);
3580 1.1 joerg }
3581 1.1 joerg /****************************************************************************
3582 1.1 joerg REMARKS:
3583 1.1 joerg Handles opcode 0xe7
3584 1.1 joerg ****************************************************************************/
3585 1.1 joerg static void
3586 1.1 joerg x86emuOp_out_word_IMM_AX(struct X86EMU *emu)
3587 1.1 joerg {
3588 1.1 joerg uint8_t port;
3589 1.1 joerg
3590 1.1 joerg port = (uint8_t) fetch_byte_imm(emu);
3591 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3592 1.1 joerg (*emu->emu_outl) (emu, port, emu->x86.R_EAX);
3593 1.1 joerg } else {
3594 1.1 joerg (*emu->emu_outw) (emu, port, emu->x86.R_AX);
3595 1.1 joerg }
3596 1.1 joerg }
3597 1.1 joerg /****************************************************************************
3598 1.1 joerg REMARKS:
3599 1.1 joerg Handles opcode 0xe8
3600 1.1 joerg ****************************************************************************/
3601 1.1 joerg static void
3602 1.1 joerg x86emuOp_call_near_IMM(struct X86EMU *emu)
3603 1.1 joerg {
3604 1.1 joerg int16_t ip;
3605 1.1 joerg
3606 1.1 joerg ip = (int16_t) fetch_word_imm(emu);
3607 1.1 joerg ip += (int16_t) emu->x86.R_IP; /* CHECK SIGN */
3608 1.1 joerg push_word(emu, emu->x86.R_IP);
3609 1.1 joerg emu->x86.R_IP = ip;
3610 1.1 joerg }
3611 1.1 joerg /****************************************************************************
3612 1.1 joerg REMARKS:
3613 1.1 joerg Handles opcode 0xe9
3614 1.1 joerg ****************************************************************************/
3615 1.1 joerg static void
3616 1.1 joerg x86emuOp_jump_near_IMM(struct X86EMU *emu)
3617 1.1 joerg {
3618 1.1 joerg int ip;
3619 1.1 joerg
3620 1.1 joerg ip = (int16_t) fetch_word_imm(emu);
3621 1.1 joerg ip += (int16_t) emu->x86.R_IP;
3622 1.1 joerg emu->x86.R_IP = (uint16_t) ip;
3623 1.1 joerg }
3624 1.1 joerg /****************************************************************************
3625 1.1 joerg REMARKS:
3626 1.1 joerg Handles opcode 0xea
3627 1.1 joerg ****************************************************************************/
3628 1.1 joerg static void
3629 1.1 joerg x86emuOp_jump_far_IMM(struct X86EMU *emu)
3630 1.1 joerg {
3631 1.1 joerg uint16_t cs, ip;
3632 1.1 joerg
3633 1.1 joerg ip = fetch_word_imm(emu);
3634 1.1 joerg cs = fetch_word_imm(emu);
3635 1.1 joerg emu->x86.R_IP = ip;
3636 1.1 joerg emu->x86.R_CS = cs;
3637 1.1 joerg }
3638 1.1 joerg /****************************************************************************
3639 1.1 joerg REMARKS:
3640 1.1 joerg Handles opcode 0xeb
3641 1.1 joerg ****************************************************************************/
3642 1.1 joerg static void
3643 1.1 joerg x86emuOp_jump_byte_IMM(struct X86EMU *emu)
3644 1.1 joerg {
3645 1.1 joerg uint16_t target;
3646 1.1 joerg int8_t offset;
3647 1.1 joerg
3648 1.1 joerg offset = (int8_t) fetch_byte_imm(emu);
3649 1.1 joerg target = (uint16_t) (emu->x86.R_IP + offset);
3650 1.1 joerg emu->x86.R_IP = target;
3651 1.1 joerg }
3652 1.1 joerg /****************************************************************************
3653 1.1 joerg REMARKS:
3654 1.1 joerg Handles opcode 0xec
3655 1.1 joerg ****************************************************************************/
3656 1.1 joerg static void
3657 1.1 joerg x86emuOp_in_byte_AL_DX(struct X86EMU *emu)
3658 1.1 joerg {
3659 1.1 joerg emu->x86.R_AL = (*emu->emu_inb) (emu, emu->x86.R_DX);
3660 1.1 joerg }
3661 1.1 joerg /****************************************************************************
3662 1.1 joerg REMARKS:
3663 1.1 joerg Handles opcode 0xed
3664 1.1 joerg ****************************************************************************/
3665 1.1 joerg static void
3666 1.1 joerg x86emuOp_in_word_AX_DX(struct X86EMU *emu)
3667 1.1 joerg {
3668 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3669 1.1 joerg emu->x86.R_EAX = (*emu->emu_inl) (emu, emu->x86.R_DX);
3670 1.1 joerg } else {
3671 1.1 joerg emu->x86.R_AX = (*emu->emu_inw) (emu, emu->x86.R_DX);
3672 1.1 joerg }
3673 1.1 joerg }
3674 1.1 joerg /****************************************************************************
3675 1.1 joerg REMARKS:
3676 1.1 joerg Handles opcode 0xee
3677 1.1 joerg ****************************************************************************/
3678 1.1 joerg static void
3679 1.1 joerg x86emuOp_out_byte_DX_AL(struct X86EMU *emu)
3680 1.1 joerg {
3681 1.1 joerg (*emu->emu_outb) (emu, emu->x86.R_DX, emu->x86.R_AL);
3682 1.1 joerg }
3683 1.1 joerg /****************************************************************************
3684 1.1 joerg REMARKS:
3685 1.1 joerg Handles opcode 0xef
3686 1.1 joerg ****************************************************************************/
3687 1.1 joerg static void
3688 1.1 joerg x86emuOp_out_word_DX_AX(struct X86EMU *emu)
3689 1.1 joerg {
3690 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
3691 1.1 joerg (*emu->emu_outl) (emu, emu->x86.R_DX, emu->x86.R_EAX);
3692 1.1 joerg } else {
3693 1.1 joerg (*emu->emu_outw) (emu, emu->x86.R_DX, emu->x86.R_AX);
3694 1.1 joerg }
3695 1.1 joerg }
3696 1.1 joerg /****************************************************************************
3697 1.1 joerg REMARKS:
3698 1.1 joerg Handles opcode 0xf0
3699 1.1 joerg ****************************************************************************/
3700 1.1 joerg static void
3701 1.1 joerg x86emuOp_lock(struct X86EMU *emu)
3702 1.1 joerg {
3703 1.1 joerg }
3704 1.1 joerg /*opcode 0xf1 ILLEGAL OPERATION */
3705 1.1 joerg
3706 1.1 joerg /****************************************************************************
3707 1.1 joerg REMARKS:
3708 1.1 joerg Handles opcode 0xf5
3709 1.1 joerg ****************************************************************************/
3710 1.1 joerg static void
3711 1.1 joerg x86emuOp_cmc(struct X86EMU *emu)
3712 1.1 joerg {
3713 1.1 joerg if (ACCESS_FLAG(F_CF))
3714 1.1 joerg CLEAR_FLAG(F_CF);
3715 1.1 joerg else
3716 1.1 joerg SET_FLAG(F_CF);
3717 1.1 joerg }
3718 1.1 joerg /****************************************************************************
3719 1.1 joerg REMARKS:
3720 1.1 joerg Handles opcode 0xf6
3721 1.1 joerg ****************************************************************************/
3722 1.1 joerg static void
3723 1.1 joerg x86emuOp_opcF6_byte_RM(struct X86EMU *emu)
3724 1.1 joerg {
3725 1.1 joerg uint8_t destval, srcval;
3726 1.1 joerg
3727 1.1 joerg /* long, drawn out code follows. Double switch for a total of 32
3728 1.1 joerg * cases. */
3729 1.1 joerg fetch_decode_modrm(emu);
3730 1.1 joerg if (emu->cur_rh == 1)
3731 1.1 joerg X86EMU_halt_sys(emu);
3732 1.1 joerg
3733 1.1 joerg if (emu->cur_rh == 0) {
3734 1.1 joerg destval = decode_and_fetch_byte_imm8(emu, &srcval);
3735 1.1 joerg test_byte(emu, destval, srcval);
3736 1.1 joerg return;
3737 1.1 joerg }
3738 1.1 joerg destval = decode_and_fetch_byte(emu);
3739 1.1 joerg switch (emu->cur_rh) {
3740 1.1 joerg case 2:
3741 1.1 joerg destval = ~destval;
3742 1.1 joerg write_back_byte(emu, destval);
3743 1.1 joerg break;
3744 1.1 joerg case 3:
3745 1.1 joerg destval = neg_byte(emu, destval);
3746 1.1 joerg write_back_byte(emu, destval);
3747 1.1 joerg break;
3748 1.1 joerg case 4:
3749 1.1 joerg mul_byte(emu, destval);
3750 1.1 joerg break;
3751 1.1 joerg case 5:
3752 1.1 joerg imul_byte(emu, destval);
3753 1.1 joerg break;
3754 1.1 joerg case 6:
3755 1.1 joerg div_byte(emu, destval);
3756 1.1 joerg break;
3757 1.1 joerg case 7:
3758 1.1 joerg idiv_byte(emu, destval);
3759 1.1 joerg break;
3760 1.1 joerg }
3761 1.1 joerg }
3762 1.1 joerg /****************************************************************************
3763 1.1 joerg REMARKS:
3764 1.1 joerg Handles opcode 0xf7
3765 1.1 joerg ****************************************************************************/
3766 1.1 joerg static void
3767 1.1 joerg x86emuOp32_opcF7_word_RM(struct X86EMU *emu)
3768 1.1 joerg {
3769 1.1 joerg uint32_t destval, srcval;
3770 1.1 joerg
3771 1.1 joerg /* long, drawn out code follows. Double switch for a total of 32
3772 1.1 joerg * cases. */
3773 1.1 joerg fetch_decode_modrm(emu);
3774 1.1 joerg if (emu->cur_rh == 1)
3775 1.1 joerg X86EMU_halt_sys(emu);
3776 1.1 joerg
3777 1.1 joerg if (emu->cur_rh == 0) {
3778 1.1 joerg if (emu->cur_mod != 3) {
3779 1.1 joerg uint32_t destoffset;
3780 1.1 joerg
3781 1.1 joerg destoffset = decode_rl_address(emu);
3782 1.1 joerg srcval = fetch_long_imm(emu);
3783 1.1 joerg destval = fetch_data_long(emu, destoffset);
3784 1.1 joerg } else {
3785 1.1 joerg srcval = fetch_long_imm(emu);
3786 1.1 joerg destval = *decode_rl_long_register(emu);
3787 1.1 joerg }
3788 1.1 joerg test_long(emu, destval, srcval);
3789 1.1 joerg return;
3790 1.1 joerg }
3791 1.1 joerg destval = decode_and_fetch_long(emu);
3792 1.1 joerg switch (emu->cur_rh) {
3793 1.1 joerg case 2:
3794 1.1 joerg destval = ~destval;
3795 1.1 joerg write_back_long(emu, destval);
3796 1.1 joerg break;
3797 1.1 joerg case 3:
3798 1.1 joerg destval = neg_long(emu, destval);
3799 1.1 joerg write_back_long(emu, destval);
3800 1.1 joerg break;
3801 1.1 joerg case 4:
3802 1.1 joerg mul_long(emu, destval);
3803 1.1 joerg break;
3804 1.1 joerg case 5:
3805 1.1 joerg imul_long(emu, destval);
3806 1.1 joerg break;
3807 1.1 joerg case 6:
3808 1.1 joerg div_long(emu, destval);
3809 1.1 joerg break;
3810 1.1 joerg case 7:
3811 1.1 joerg idiv_long(emu, destval);
3812 1.1 joerg break;
3813 1.1 joerg }
3814 1.1 joerg }
3815 1.1 joerg static void
3816 1.1 joerg x86emuOp16_opcF7_word_RM(struct X86EMU *emu)
3817 1.1 joerg {
3818 1.1 joerg uint16_t destval, srcval;
3819 1.1 joerg
3820 1.1 joerg /* long, drawn out code follows. Double switch for a total of 32
3821 1.1 joerg * cases. */
3822 1.1 joerg fetch_decode_modrm(emu);
3823 1.1 joerg if (emu->cur_rh == 1)
3824 1.1 joerg X86EMU_halt_sys(emu);
3825 1.1 joerg
3826 1.1 joerg if (emu->cur_rh == 0) {
3827 1.1 joerg if (emu->cur_mod != 3) {
3828 1.1 joerg uint32_t destoffset;
3829 1.1 joerg
3830 1.1 joerg destoffset = decode_rl_address(emu);
3831 1.1 joerg srcval = fetch_word_imm(emu);
3832 1.1 joerg destval = fetch_data_word(emu, destoffset);
3833 1.1 joerg } else {
3834 1.1 joerg srcval = fetch_word_imm(emu);
3835 1.1 joerg destval = *decode_rl_word_register(emu);
3836 1.1 joerg }
3837 1.1 joerg test_word(emu, destval, srcval);
3838 1.1 joerg return;
3839 1.1 joerg }
3840 1.1 joerg destval = decode_and_fetch_word(emu);
3841 1.1 joerg switch (emu->cur_rh) {
3842 1.1 joerg case 2:
3843 1.1 joerg destval = ~destval;
3844 1.1 joerg write_back_word(emu, destval);
3845 1.1 joerg break;
3846 1.1 joerg case 3:
3847 1.1 joerg destval = neg_word(emu, destval);
3848 1.1 joerg write_back_word(emu, destval);
3849 1.1 joerg break;
3850 1.1 joerg case 4:
3851 1.1 joerg mul_word(emu, destval);
3852 1.1 joerg break;
3853 1.1 joerg case 5:
3854 1.1 joerg imul_word(emu, destval);
3855 1.1 joerg break;
3856 1.1 joerg case 6:
3857 1.1 joerg div_word(emu, destval);
3858 1.1 joerg break;
3859 1.1 joerg case 7:
3860 1.1 joerg idiv_word(emu, destval);
3861 1.1 joerg break;
3862 1.1 joerg }
3863 1.1 joerg }
3864 1.1 joerg static void
3865 1.1 joerg x86emuOp_opcF7_word_RM(struct X86EMU *emu)
3866 1.1 joerg {
3867 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
3868 1.1 joerg x86emuOp32_opcF7_word_RM(emu);
3869 1.1 joerg else
3870 1.1 joerg x86emuOp16_opcF7_word_RM(emu);
3871 1.1 joerg }
3872 1.1 joerg /****************************************************************************
3873 1.1 joerg REMARKS:
3874 1.1 joerg Handles opcode 0xfe
3875 1.1 joerg ****************************************************************************/
3876 1.1 joerg static void
3877 1.1 joerg x86emuOp_opcFE_byte_RM(struct X86EMU *emu)
3878 1.1 joerg {
3879 1.1 joerg uint8_t destval;
3880 1.1 joerg uint32_t destoffset;
3881 1.1 joerg uint8_t *destreg;
3882 1.1 joerg
3883 1.1 joerg /* Yet another special case instruction. */
3884 1.1 joerg fetch_decode_modrm(emu);
3885 1.1 joerg if (emu->cur_mod != 3) {
3886 1.1 joerg destoffset = decode_rl_address(emu);
3887 1.1 joerg switch (emu->cur_rh) {
3888 1.1 joerg case 0: /* inc word ptr ... */
3889 1.1 joerg destval = fetch_data_byte(emu, destoffset);
3890 1.1 joerg destval = inc_byte(emu, destval);
3891 1.1 joerg store_data_byte(emu, destoffset, destval);
3892 1.1 joerg break;
3893 1.1 joerg case 1: /* dec word ptr ... */
3894 1.1 joerg destval = fetch_data_byte(emu, destoffset);
3895 1.1 joerg destval = dec_byte(emu, destval);
3896 1.1 joerg store_data_byte(emu, destoffset, destval);
3897 1.1 joerg break;
3898 1.1 joerg }
3899 1.1 joerg } else {
3900 1.1 joerg destreg = decode_rl_byte_register(emu);
3901 1.1 joerg switch (emu->cur_rh) {
3902 1.1 joerg case 0:
3903 1.1 joerg *destreg = inc_byte(emu, *destreg);
3904 1.1 joerg break;
3905 1.1 joerg case 1:
3906 1.1 joerg *destreg = dec_byte(emu, *destreg);
3907 1.1 joerg break;
3908 1.1 joerg }
3909 1.1 joerg }
3910 1.1 joerg }
3911 1.1 joerg /****************************************************************************
3912 1.1 joerg REMARKS:
3913 1.1 joerg Handles opcode 0xff
3914 1.1 joerg ****************************************************************************/
3915 1.1 joerg static void
3916 1.1 joerg x86emuOp32_opcFF_word_RM(struct X86EMU *emu)
3917 1.1 joerg {
3918 1.1 joerg uint32_t destoffset = 0;
3919 1.1 joerg uint32_t destval, *destreg;
3920 1.1 joerg
3921 1.1 joerg if (emu->cur_mod != 3) {
3922 1.1 joerg destoffset = decode_rl_address(emu);
3923 1.1 joerg destval = fetch_data_long(emu, destoffset);
3924 1.1 joerg switch (emu->cur_rh) {
3925 1.1 joerg case 0: /* inc word ptr ... */
3926 1.1 joerg destval = inc_long(emu, destval);
3927 1.1 joerg store_data_long(emu, destoffset, destval);
3928 1.1 joerg break;
3929 1.1 joerg case 1: /* dec word ptr ... */
3930 1.1 joerg destval = dec_long(emu, destval);
3931 1.1 joerg store_data_long(emu, destoffset, destval);
3932 1.1 joerg break;
3933 1.1 joerg case 6: /* push word ptr ... */
3934 1.1 joerg push_long(emu, destval);
3935 1.1 joerg break;
3936 1.1 joerg }
3937 1.1 joerg } else {
3938 1.1 joerg destreg = decode_rl_long_register(emu);
3939 1.1 joerg switch (emu->cur_rh) {
3940 1.1 joerg case 0:
3941 1.1 joerg *destreg = inc_long(emu, *destreg);
3942 1.1 joerg break;
3943 1.1 joerg case 1:
3944 1.1 joerg *destreg = dec_long(emu, *destreg);
3945 1.1 joerg break;
3946 1.1 joerg case 6:
3947 1.1 joerg push_long(emu, *destreg);
3948 1.1 joerg break;
3949 1.1 joerg }
3950 1.1 joerg }
3951 1.1 joerg }
3952 1.1 joerg
3953 1.1 joerg static void
3954 1.1 joerg x86emuOp16_opcFF_word_RM(struct X86EMU *emu)
3955 1.1 joerg {
3956 1.1 joerg uint32_t destoffset = 0;
3957 1.1 joerg uint16_t *destreg;
3958 1.1 joerg uint16_t destval;
3959 1.1 joerg
3960 1.1 joerg if (emu->cur_mod != 3) {
3961 1.1 joerg destoffset = decode_rl_address(emu);
3962 1.1 joerg destval = fetch_data_word(emu, destoffset);
3963 1.1 joerg switch (emu->cur_rh) {
3964 1.1 joerg case 0:
3965 1.1 joerg destval = inc_word(emu, destval);
3966 1.1 joerg store_data_word(emu, destoffset, destval);
3967 1.1 joerg break;
3968 1.1 joerg case 1: /* dec word ptr ... */
3969 1.1 joerg destval = dec_word(emu, destval);
3970 1.1 joerg store_data_word(emu, destoffset, destval);
3971 1.1 joerg break;
3972 1.1 joerg case 6: /* push word ptr ... */
3973 1.1 joerg push_word(emu, destval);
3974 1.1 joerg break;
3975 1.1 joerg }
3976 1.1 joerg } else {
3977 1.1 joerg destreg = decode_rl_word_register(emu);
3978 1.1 joerg switch (emu->cur_rh) {
3979 1.1 joerg case 0:
3980 1.1 joerg *destreg = inc_word(emu, *destreg);
3981 1.1 joerg break;
3982 1.1 joerg case 1:
3983 1.1 joerg *destreg = dec_word(emu, *destreg);
3984 1.1 joerg break;
3985 1.1 joerg case 6:
3986 1.1 joerg push_word(emu, *destreg);
3987 1.1 joerg break;
3988 1.1 joerg }
3989 1.1 joerg }
3990 1.1 joerg }
3991 1.1 joerg
3992 1.1 joerg static void
3993 1.1 joerg x86emuOp_opcFF_word_RM(struct X86EMU *emu)
3994 1.1 joerg {
3995 1.1 joerg uint32_t destoffset = 0;
3996 1.1 joerg uint16_t destval, destval2;
3997 1.1 joerg
3998 1.1 joerg /* Yet another special case instruction. */
3999 1.1 joerg fetch_decode_modrm(emu);
4000 1.1 joerg if ((emu->cur_mod == 3 && (emu->cur_rh == 3 || emu->cur_rh == 5)) || emu->cur_rh == 7)
4001 1.1 joerg X86EMU_halt_sys(emu);
4002 1.1 joerg if (emu->cur_rh == 0 || emu->cur_rh == 1 || emu->cur_rh == 6) {
4003 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
4004 1.1 joerg x86emuOp32_opcFF_word_RM(emu);
4005 1.1 joerg else
4006 1.1 joerg x86emuOp16_opcFF_word_RM(emu);
4007 1.1 joerg return;
4008 1.1 joerg }
4009 1.1 joerg
4010 1.1 joerg if (emu->cur_mod != 3) {
4011 1.1 joerg destoffset = decode_rl_address(emu);
4012 1.1 joerg destval = fetch_data_word(emu, destoffset);
4013 1.1 joerg switch (emu->cur_rh) {
4014 1.1 joerg case 3: /* call far ptr ... */
4015 1.1 joerg destval2 = fetch_data_word(emu, destoffset + 2);
4016 1.1 joerg push_word(emu, emu->x86.R_CS);
4017 1.1 joerg emu->x86.R_CS = destval2;
4018 1.1 joerg push_word(emu, emu->x86.R_IP);
4019 1.1 joerg emu->x86.R_IP = destval;
4020 1.1 joerg break;
4021 1.1 joerg case 5: /* jmp far ptr ... */
4022 1.1 joerg destval2 = fetch_data_word(emu, destoffset + 2);
4023 1.1 joerg emu->x86.R_IP = destval;
4024 1.1 joerg emu->x86.R_CS = destval2;
4025 1.1 joerg break;
4026 1.1 joerg }
4027 1.1 joerg } else {
4028 1.1 joerg destval = *decode_rl_word_register(emu);
4029 1.1 joerg }
4030 1.1 joerg
4031 1.1 joerg switch (emu->cur_rh) {
4032 1.1 joerg case 2: /* call word ptr */
4033 1.1 joerg push_word(emu, emu->x86.R_IP);
4034 1.1 joerg emu->x86.R_IP = destval;
4035 1.1 joerg break;
4036 1.1 joerg case 4: /* jmp */
4037 1.1 joerg emu->x86.R_IP = destval;
4038 1.1 joerg break;
4039 1.1 joerg }
4040 1.1 joerg }
4041 1.1 joerg /***************************************************************************
4042 1.1 joerg * Single byte operation code table:
4043 1.1 joerg **************************************************************************/
4044 1.1 joerg static void
4045 1.1 joerg X86EMU_exec_one_byte(struct X86EMU * emu)
4046 1.1 joerg {
4047 1.1 joerg uint8_t op1;
4048 1.1 joerg
4049 1.1 joerg op1 = fetch_byte_imm(emu);
4050 1.1 joerg
4051 1.1 joerg switch (op1) {
4052 1.1 joerg case 0x00:
4053 1.1 joerg common_binop_byte_rm_r(emu, add_byte);
4054 1.1 joerg break;
4055 1.1 joerg case 0x01:
4056 1.1 joerg common_binop_word_long_rm_r(emu, add_word, add_long);
4057 1.1 joerg break;
4058 1.1 joerg case 0x02:
4059 1.1 joerg common_binop_byte_r_rm(emu, add_byte);
4060 1.1 joerg break;
4061 1.1 joerg case 0x03:
4062 1.1 joerg common_binop_word_long_r_rm(emu, add_word, add_long);
4063 1.1 joerg break;
4064 1.1 joerg case 0x04:
4065 1.1 joerg common_binop_byte_imm(emu, add_byte);
4066 1.1 joerg break;
4067 1.1 joerg case 0x05:
4068 1.1 joerg common_binop_word_long_imm(emu, add_word, add_long);
4069 1.1 joerg break;
4070 1.1 joerg case 0x06:
4071 1.1 joerg push_word(emu, emu->x86.R_ES);
4072 1.1 joerg break;
4073 1.1 joerg case 0x07:
4074 1.1 joerg emu->x86.R_ES = pop_word(emu);
4075 1.1 joerg break;
4076 1.1 joerg
4077 1.1 joerg case 0x08:
4078 1.1 joerg common_binop_byte_rm_r(emu, or_byte);
4079 1.1 joerg break;
4080 1.1 joerg case 0x09:
4081 1.1 joerg common_binop_word_long_rm_r(emu, or_word, or_long);
4082 1.1 joerg break;
4083 1.1 joerg case 0x0a:
4084 1.1 joerg common_binop_byte_r_rm(emu, or_byte);
4085 1.1 joerg break;
4086 1.1 joerg case 0x0b:
4087 1.1 joerg common_binop_word_long_r_rm(emu, or_word, or_long);
4088 1.1 joerg break;
4089 1.1 joerg case 0x0c:
4090 1.1 joerg common_binop_byte_imm(emu, or_byte);
4091 1.1 joerg break;
4092 1.1 joerg case 0x0d:
4093 1.1 joerg common_binop_word_long_imm(emu, or_word, or_long);
4094 1.1 joerg break;
4095 1.1 joerg case 0x0e:
4096 1.1 joerg push_word(emu, emu->x86.R_CS);
4097 1.1 joerg break;
4098 1.1 joerg case 0x0f:
4099 1.1 joerg X86EMU_exec_two_byte(emu);
4100 1.1 joerg break;
4101 1.1 joerg
4102 1.1 joerg case 0x10:
4103 1.1 joerg common_binop_byte_rm_r(emu, adc_byte);
4104 1.1 joerg break;
4105 1.1 joerg case 0x11:
4106 1.1 joerg common_binop_word_long_rm_r(emu, adc_word, adc_long);
4107 1.1 joerg break;
4108 1.1 joerg case 0x12:
4109 1.1 joerg common_binop_byte_r_rm(emu, adc_byte);
4110 1.1 joerg break;
4111 1.1 joerg case 0x13:
4112 1.1 joerg common_binop_word_long_r_rm(emu, adc_word, adc_long);
4113 1.1 joerg break;
4114 1.1 joerg case 0x14:
4115 1.1 joerg common_binop_byte_imm(emu, adc_byte);
4116 1.1 joerg break;
4117 1.1 joerg case 0x15:
4118 1.1 joerg common_binop_word_long_imm(emu, adc_word, adc_long);
4119 1.1 joerg break;
4120 1.1 joerg case 0x16:
4121 1.1 joerg push_word(emu, emu->x86.R_SS);
4122 1.1 joerg break;
4123 1.1 joerg case 0x17:
4124 1.1 joerg emu->x86.R_SS = pop_word(emu);
4125 1.1 joerg break;
4126 1.1 joerg
4127 1.1 joerg case 0x18:
4128 1.1 joerg common_binop_byte_rm_r(emu, sbb_byte);
4129 1.1 joerg break;
4130 1.1 joerg case 0x19:
4131 1.1 joerg common_binop_word_long_rm_r(emu, sbb_word, sbb_long);
4132 1.1 joerg break;
4133 1.1 joerg case 0x1a:
4134 1.1 joerg common_binop_byte_r_rm(emu, sbb_byte);
4135 1.1 joerg break;
4136 1.1 joerg case 0x1b:
4137 1.1 joerg common_binop_word_long_r_rm(emu, sbb_word, sbb_long);
4138 1.1 joerg break;
4139 1.1 joerg case 0x1c:
4140 1.1 joerg common_binop_byte_imm(emu, sbb_byte);
4141 1.1 joerg break;
4142 1.1 joerg case 0x1d:
4143 1.1 joerg common_binop_word_long_imm(emu, sbb_word, sbb_long);
4144 1.1 joerg break;
4145 1.1 joerg case 0x1e:
4146 1.1 joerg push_word(emu, emu->x86.R_DS);
4147 1.1 joerg break;
4148 1.1 joerg case 0x1f:
4149 1.1 joerg emu->x86.R_DS = pop_word(emu);
4150 1.1 joerg break;
4151 1.1 joerg
4152 1.1 joerg case 0x20:
4153 1.1 joerg common_binop_byte_rm_r(emu, and_byte);
4154 1.1 joerg break;
4155 1.1 joerg case 0x21:
4156 1.1 joerg common_binop_word_long_rm_r(emu, and_word, and_long);
4157 1.1 joerg break;
4158 1.1 joerg case 0x22:
4159 1.1 joerg common_binop_byte_r_rm(emu, and_byte);
4160 1.1 joerg break;
4161 1.1 joerg case 0x23:
4162 1.1 joerg common_binop_word_long_r_rm(emu, and_word, and_long);
4163 1.1 joerg break;
4164 1.1 joerg case 0x24:
4165 1.1 joerg common_binop_byte_imm(emu, and_byte);
4166 1.1 joerg break;
4167 1.1 joerg case 0x25:
4168 1.1 joerg common_binop_word_long_imm(emu, and_word, and_long);
4169 1.1 joerg break;
4170 1.1 joerg case 0x26:
4171 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_ES;
4172 1.1 joerg break;
4173 1.1 joerg case 0x27:
4174 1.1 joerg emu->x86.R_AL = daa_byte(emu, emu->x86.R_AL);
4175 1.1 joerg break;
4176 1.1 joerg
4177 1.1 joerg case 0x28:
4178 1.1 joerg common_binop_byte_rm_r(emu, sub_byte);
4179 1.1 joerg break;
4180 1.1 joerg case 0x29:
4181 1.1 joerg common_binop_word_long_rm_r(emu, sub_word, sub_long);
4182 1.1 joerg break;
4183 1.1 joerg case 0x2a:
4184 1.1 joerg common_binop_byte_r_rm(emu, sub_byte);
4185 1.1 joerg break;
4186 1.1 joerg case 0x2b:
4187 1.1 joerg common_binop_word_long_r_rm(emu, sub_word, sub_long);
4188 1.1 joerg break;
4189 1.1 joerg case 0x2c:
4190 1.1 joerg common_binop_byte_imm(emu, sub_byte);
4191 1.1 joerg break;
4192 1.1 joerg case 0x2d:
4193 1.1 joerg common_binop_word_long_imm(emu, sub_word, sub_long);
4194 1.1 joerg break;
4195 1.1 joerg case 0x2e:
4196 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_CS;
4197 1.1 joerg break;
4198 1.1 joerg case 0x2f:
4199 1.1 joerg emu->x86.R_AL = das_byte(emu, emu->x86.R_AL);
4200 1.1 joerg break;
4201 1.1 joerg
4202 1.1 joerg case 0x30:
4203 1.1 joerg common_binop_byte_rm_r(emu, xor_byte);
4204 1.1 joerg break;
4205 1.1 joerg case 0x31:
4206 1.1 joerg common_binop_word_long_rm_r(emu, xor_word, xor_long);
4207 1.1 joerg break;
4208 1.1 joerg case 0x32:
4209 1.1 joerg common_binop_byte_r_rm(emu, xor_byte);
4210 1.1 joerg break;
4211 1.1 joerg case 0x33:
4212 1.1 joerg common_binop_word_long_r_rm(emu, xor_word, xor_long);
4213 1.1 joerg break;
4214 1.1 joerg case 0x34:
4215 1.1 joerg common_binop_byte_imm(emu, xor_byte);
4216 1.1 joerg break;
4217 1.1 joerg case 0x35:
4218 1.1 joerg common_binop_word_long_imm(emu, xor_word, xor_long);
4219 1.1 joerg break;
4220 1.1 joerg case 0x36:
4221 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_SS;
4222 1.1 joerg break;
4223 1.1 joerg case 0x37:
4224 1.1 joerg emu->x86.R_AX = aaa_word(emu, emu->x86.R_AX);
4225 1.1 joerg break;
4226 1.1 joerg
4227 1.1 joerg case 0x38:
4228 1.1 joerg common_binop_ns_byte_rm_r(emu, cmp_byte_no_return);
4229 1.1 joerg break;
4230 1.1 joerg case 0x39:
4231 1.1 joerg common_binop_ns_word_long_rm_r(emu, cmp_word_no_return,
4232 1.1 joerg cmp_long_no_return);
4233 1.1 joerg break;
4234 1.1 joerg case 0x3a:
4235 1.1 joerg x86emuOp_cmp_byte_R_RM(emu);
4236 1.1 joerg break;
4237 1.1 joerg case 0x3b:
4238 1.1 joerg x86emuOp_cmp_word_R_RM(emu);
4239 1.1 joerg break;
4240 1.1 joerg case 0x3c:
4241 1.1 joerg x86emuOp_cmp_byte_AL_IMM(emu);
4242 1.1 joerg break;
4243 1.1 joerg case 0x3d:
4244 1.1 joerg x86emuOp_cmp_word_AX_IMM(emu);
4245 1.1 joerg break;
4246 1.1 joerg case 0x3e:
4247 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_DS;
4248 1.1 joerg break;
4249 1.1 joerg case 0x3f:
4250 1.1 joerg emu->x86.R_AX = aas_word(emu, emu->x86.R_AX);
4251 1.1 joerg break;
4252 1.1 joerg
4253 1.1 joerg case 0x40:
4254 1.1 joerg common_inc_word_long(emu, &emu->x86.register_a);
4255 1.1 joerg break;
4256 1.1 joerg case 0x41:
4257 1.1 joerg common_inc_word_long(emu, &emu->x86.register_c);
4258 1.1 joerg break;
4259 1.1 joerg case 0x42:
4260 1.1 joerg common_inc_word_long(emu, &emu->x86.register_d);
4261 1.1 joerg break;
4262 1.1 joerg case 0x43:
4263 1.1 joerg common_inc_word_long(emu, &emu->x86.register_b);
4264 1.1 joerg break;
4265 1.1 joerg case 0x44:
4266 1.1 joerg common_inc_word_long(emu, &emu->x86.register_sp);
4267 1.1 joerg break;
4268 1.1 joerg case 0x45:
4269 1.1 joerg common_inc_word_long(emu, &emu->x86.register_bp);
4270 1.1 joerg break;
4271 1.1 joerg case 0x46:
4272 1.1 joerg common_inc_word_long(emu, &emu->x86.register_si);
4273 1.1 joerg break;
4274 1.1 joerg case 0x47:
4275 1.1 joerg common_inc_word_long(emu, &emu->x86.register_di);
4276 1.1 joerg break;
4277 1.1 joerg
4278 1.1 joerg case 0x48:
4279 1.1 joerg common_dec_word_long(emu, &emu->x86.register_a);
4280 1.1 joerg break;
4281 1.1 joerg case 0x49:
4282 1.1 joerg common_dec_word_long(emu, &emu->x86.register_c);
4283 1.1 joerg break;
4284 1.1 joerg case 0x4a:
4285 1.1 joerg common_dec_word_long(emu, &emu->x86.register_d);
4286 1.1 joerg break;
4287 1.1 joerg case 0x4b:
4288 1.1 joerg common_dec_word_long(emu, &emu->x86.register_b);
4289 1.1 joerg break;
4290 1.1 joerg case 0x4c:
4291 1.1 joerg common_dec_word_long(emu, &emu->x86.register_sp);
4292 1.1 joerg break;
4293 1.1 joerg case 0x4d:
4294 1.1 joerg common_dec_word_long(emu, &emu->x86.register_bp);
4295 1.1 joerg break;
4296 1.1 joerg case 0x4e:
4297 1.1 joerg common_dec_word_long(emu, &emu->x86.register_si);
4298 1.1 joerg break;
4299 1.1 joerg case 0x4f:
4300 1.1 joerg common_dec_word_long(emu, &emu->x86.register_di);
4301 1.1 joerg break;
4302 1.1 joerg
4303 1.1 joerg case 0x50:
4304 1.1 joerg common_push_word_long(emu, &emu->x86.register_a);
4305 1.1 joerg break;
4306 1.1 joerg case 0x51:
4307 1.1 joerg common_push_word_long(emu, &emu->x86.register_c);
4308 1.1 joerg break;
4309 1.1 joerg case 0x52:
4310 1.1 joerg common_push_word_long(emu, &emu->x86.register_d);
4311 1.1 joerg break;
4312 1.1 joerg case 0x53:
4313 1.1 joerg common_push_word_long(emu, &emu->x86.register_b);
4314 1.1 joerg break;
4315 1.1 joerg case 0x54:
4316 1.1 joerg common_push_word_long(emu, &emu->x86.register_sp);
4317 1.1 joerg break;
4318 1.1 joerg case 0x55:
4319 1.1 joerg common_push_word_long(emu, &emu->x86.register_bp);
4320 1.1 joerg break;
4321 1.1 joerg case 0x56:
4322 1.1 joerg common_push_word_long(emu, &emu->x86.register_si);
4323 1.1 joerg break;
4324 1.1 joerg case 0x57:
4325 1.1 joerg common_push_word_long(emu, &emu->x86.register_di);
4326 1.1 joerg break;
4327 1.1 joerg
4328 1.1 joerg case 0x58:
4329 1.1 joerg common_pop_word_long(emu, &emu->x86.register_a);
4330 1.1 joerg break;
4331 1.1 joerg case 0x59:
4332 1.1 joerg common_pop_word_long(emu, &emu->x86.register_c);
4333 1.1 joerg break;
4334 1.1 joerg case 0x5a:
4335 1.1 joerg common_pop_word_long(emu, &emu->x86.register_d);
4336 1.1 joerg break;
4337 1.1 joerg case 0x5b:
4338 1.1 joerg common_pop_word_long(emu, &emu->x86.register_b);
4339 1.1 joerg break;
4340 1.1 joerg case 0x5c:
4341 1.1 joerg common_pop_word_long(emu, &emu->x86.register_sp);
4342 1.1 joerg break;
4343 1.1 joerg case 0x5d:
4344 1.1 joerg common_pop_word_long(emu, &emu->x86.register_bp);
4345 1.1 joerg break;
4346 1.1 joerg case 0x5e:
4347 1.1 joerg common_pop_word_long(emu, &emu->x86.register_si);
4348 1.1 joerg break;
4349 1.1 joerg case 0x5f:
4350 1.1 joerg common_pop_word_long(emu, &emu->x86.register_di);
4351 1.1 joerg break;
4352 1.1 joerg
4353 1.1 joerg case 0x60:
4354 1.1 joerg x86emuOp_push_all(emu);
4355 1.1 joerg break;
4356 1.1 joerg case 0x61:
4357 1.1 joerg x86emuOp_pop_all(emu);
4358 1.1 joerg break;
4359 1.1 joerg /* 0x62 bound */
4360 1.1 joerg /* 0x63 arpl */
4361 1.1 joerg case 0x64:
4362 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_FS;
4363 1.1 joerg break;
4364 1.1 joerg case 0x65:
4365 1.1 joerg emu->x86.mode |= SYSMODE_SEGOVR_GS;
4366 1.1 joerg break;
4367 1.1 joerg case 0x66:
4368 1.1 joerg emu->x86.mode |= SYSMODE_PREFIX_DATA;
4369 1.1 joerg break;
4370 1.1 joerg case 0x67:
4371 1.1 joerg emu->x86.mode |= SYSMODE_PREFIX_ADDR;
4372 1.1 joerg break;
4373 1.1 joerg
4374 1.1 joerg case 0x68:
4375 1.1 joerg x86emuOp_push_word_IMM(emu);
4376 1.1 joerg break;
4377 1.1 joerg case 0x69:
4378 1.1 joerg common_imul_imm(emu, false);
4379 1.1 joerg break;
4380 1.1 joerg case 0x6a:
4381 1.1 joerg x86emuOp_push_byte_IMM(emu);
4382 1.1 joerg break;
4383 1.1 joerg case 0x6b:
4384 1.1 joerg common_imul_imm(emu, true);
4385 1.1 joerg break;
4386 1.1 joerg case 0x6c:
4387 1.1 joerg ins(emu, 1);
4388 1.1 joerg break;
4389 1.1 joerg case 0x6d:
4390 1.1 joerg x86emuOp_ins_word(emu);
4391 1.1 joerg break;
4392 1.1 joerg case 0x6e:
4393 1.1 joerg outs(emu, 1);
4394 1.1 joerg break;
4395 1.1 joerg case 0x6f:
4396 1.1 joerg x86emuOp_outs_word(emu);
4397 1.1 joerg break;
4398 1.1 joerg
4399 1.1 joerg case 0x70:
4400 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_OF));
4401 1.1 joerg break;
4402 1.1 joerg case 0x71:
4403 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_OF));
4404 1.1 joerg break;
4405 1.1 joerg case 0x72:
4406 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_CF));
4407 1.1 joerg break;
4408 1.1 joerg case 0x73:
4409 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_CF));
4410 1.1 joerg break;
4411 1.1 joerg case 0x74:
4412 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_ZF));
4413 1.1 joerg break;
4414 1.1 joerg case 0x75:
4415 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_ZF));
4416 1.1 joerg break;
4417 1.1 joerg case 0x76:
4418 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_CF) || ACCESS_FLAG(F_ZF));
4419 1.1 joerg break;
4420 1.1 joerg case 0x77:
4421 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_CF) && !ACCESS_FLAG(F_ZF));
4422 1.1 joerg break;
4423 1.1 joerg
4424 1.1 joerg case 0x78:
4425 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_SF));
4426 1.1 joerg break;
4427 1.1 joerg case 0x79:
4428 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_SF));
4429 1.1 joerg break;
4430 1.1 joerg case 0x7a:
4431 1.1 joerg common_jmp_near(emu, ACCESS_FLAG(F_PF));
4432 1.1 joerg break;
4433 1.1 joerg case 0x7b:
4434 1.1 joerg common_jmp_near(emu, !ACCESS_FLAG(F_PF));
4435 1.1 joerg break;
4436 1.1 joerg case 0x7c:
4437 1.1 joerg x86emuOp_jump_near_L(emu);
4438 1.1 joerg break;
4439 1.1 joerg case 0x7d:
4440 1.1 joerg x86emuOp_jump_near_NL(emu);
4441 1.1 joerg break;
4442 1.1 joerg case 0x7e:
4443 1.1 joerg x86emuOp_jump_near_LE(emu);
4444 1.1 joerg break;
4445 1.1 joerg case 0x7f:
4446 1.1 joerg x86emuOp_jump_near_NLE(emu);
4447 1.1 joerg break;
4448 1.1 joerg
4449 1.1 joerg case 0x80:
4450 1.1 joerg x86emuOp_opc80_byte_RM_IMM(emu);
4451 1.1 joerg break;
4452 1.1 joerg case 0x81:
4453 1.1 joerg x86emuOp_opc81_word_RM_IMM(emu);
4454 1.1 joerg break;
4455 1.1 joerg case 0x82:
4456 1.1 joerg x86emuOp_opc82_byte_RM_IMM(emu);
4457 1.1 joerg break;
4458 1.1 joerg case 0x83:
4459 1.1 joerg x86emuOp_opc83_word_RM_IMM(emu);
4460 1.1 joerg break;
4461 1.1 joerg case 0x84:
4462 1.1 joerg common_binop_ns_byte_rm_r(emu, test_byte);
4463 1.1 joerg break;
4464 1.1 joerg case 0x85:
4465 1.1 joerg common_binop_ns_word_long_rm_r(emu, test_word, test_long);
4466 1.1 joerg break;
4467 1.1 joerg case 0x86:
4468 1.1 joerg x86emuOp_xchg_byte_RM_R(emu);
4469 1.1 joerg break;
4470 1.1 joerg case 0x87:
4471 1.1 joerg x86emuOp_xchg_word_RM_R(emu);
4472 1.1 joerg break;
4473 1.1 joerg
4474 1.1 joerg case 0x88:
4475 1.1 joerg x86emuOp_mov_byte_RM_R(emu);
4476 1.1 joerg break;
4477 1.1 joerg case 0x89:
4478 1.1 joerg x86emuOp_mov_word_RM_R(emu);
4479 1.1 joerg break;
4480 1.1 joerg case 0x8a:
4481 1.1 joerg x86emuOp_mov_byte_R_RM(emu);
4482 1.1 joerg break;
4483 1.1 joerg case 0x8b:
4484 1.1 joerg x86emuOp_mov_word_R_RM(emu);
4485 1.1 joerg break;
4486 1.1 joerg case 0x8c:
4487 1.1 joerg x86emuOp_mov_word_RM_SR(emu);
4488 1.1 joerg break;
4489 1.1 joerg case 0x8d:
4490 1.1 joerg x86emuOp_lea_word_R_M(emu);
4491 1.1 joerg break;
4492 1.1 joerg case 0x8e:
4493 1.1 joerg x86emuOp_mov_word_SR_RM(emu);
4494 1.1 joerg break;
4495 1.1 joerg case 0x8f:
4496 1.1 joerg x86emuOp_pop_RM(emu);
4497 1.1 joerg break;
4498 1.1 joerg
4499 1.1 joerg case 0x90:
4500 1.1 joerg /* nop */
4501 1.1 joerg break;
4502 1.1 joerg case 0x91:
4503 1.1 joerg x86emuOp_xchg_word_AX_CX(emu);
4504 1.1 joerg break;
4505 1.1 joerg case 0x92:
4506 1.1 joerg x86emuOp_xchg_word_AX_DX(emu);
4507 1.1 joerg break;
4508 1.1 joerg case 0x93:
4509 1.1 joerg x86emuOp_xchg_word_AX_BX(emu);
4510 1.1 joerg break;
4511 1.1 joerg case 0x94:
4512 1.1 joerg x86emuOp_xchg_word_AX_SP(emu);
4513 1.1 joerg break;
4514 1.1 joerg case 0x95:
4515 1.1 joerg x86emuOp_xchg_word_AX_BP(emu);
4516 1.1 joerg break;
4517 1.1 joerg case 0x96:
4518 1.1 joerg x86emuOp_xchg_word_AX_SI(emu);
4519 1.1 joerg break;
4520 1.1 joerg case 0x97:
4521 1.1 joerg x86emuOp_xchg_word_AX_DI(emu);
4522 1.1 joerg break;
4523 1.1 joerg
4524 1.1 joerg case 0x98:
4525 1.1 joerg x86emuOp_cbw(emu);
4526 1.1 joerg break;
4527 1.1 joerg case 0x99:
4528 1.1 joerg x86emuOp_cwd(emu);
4529 1.1 joerg break;
4530 1.1 joerg case 0x9a:
4531 1.1 joerg x86emuOp_call_far_IMM(emu);
4532 1.1 joerg break;
4533 1.1 joerg case 0x9b:
4534 1.1 joerg /* wait */
4535 1.1 joerg break;
4536 1.1 joerg case 0x9c:
4537 1.1 joerg x86emuOp_pushf_word(emu);
4538 1.1 joerg break;
4539 1.1 joerg case 0x9d:
4540 1.1 joerg x86emuOp_popf_word(emu);
4541 1.1 joerg break;
4542 1.1 joerg case 0x9e:
4543 1.1 joerg x86emuOp_sahf(emu);
4544 1.1 joerg break;
4545 1.1 joerg case 0x9f:
4546 1.1 joerg x86emuOp_lahf(emu);
4547 1.1 joerg break;
4548 1.1 joerg
4549 1.1 joerg case 0xa0:
4550 1.1 joerg x86emuOp_mov_AL_M_IMM(emu);
4551 1.1 joerg break;
4552 1.1 joerg case 0xa1:
4553 1.1 joerg x86emuOp_mov_AX_M_IMM(emu);
4554 1.1 joerg break;
4555 1.1 joerg case 0xa2:
4556 1.1 joerg x86emuOp_mov_M_AL_IMM(emu);
4557 1.1 joerg break;
4558 1.1 joerg case 0xa3:
4559 1.1 joerg x86emuOp_mov_M_AX_IMM(emu);
4560 1.1 joerg break;
4561 1.1 joerg case 0xa4:
4562 1.1 joerg x86emuOp_movs_byte(emu);
4563 1.1 joerg break;
4564 1.1 joerg case 0xa5:
4565 1.1 joerg x86emuOp_movs_word(emu);
4566 1.1 joerg break;
4567 1.1 joerg case 0xa6:
4568 1.1 joerg x86emuOp_cmps_byte(emu);
4569 1.1 joerg break;
4570 1.1 joerg case 0xa7:
4571 1.1 joerg x86emuOp_cmps_word(emu);
4572 1.1 joerg break;
4573 1.1 joerg
4574 1.1 joerg case 0xa8:
4575 1.1 joerg test_byte(emu, emu->x86.R_AL, fetch_byte_imm(emu));
4576 1.1 joerg break;
4577 1.1 joerg case 0xa9:
4578 1.1 joerg x86emuOp_test_AX_IMM(emu);
4579 1.1 joerg break;
4580 1.1 joerg case 0xaa:
4581 1.1 joerg x86emuOp_stos_byte(emu);
4582 1.1 joerg break;
4583 1.1 joerg case 0xab:
4584 1.1 joerg x86emuOp_stos_word(emu);
4585 1.1 joerg break;
4586 1.1 joerg case 0xac:
4587 1.1 joerg x86emuOp_lods_byte(emu);
4588 1.1 joerg break;
4589 1.1 joerg case 0xad:
4590 1.1 joerg x86emuOp_lods_word(emu);
4591 1.1 joerg break;
4592 1.1 joerg case 0xae:
4593 1.1 joerg x86emuOp_scas_byte(emu);
4594 1.1 joerg break;
4595 1.1 joerg case 0xaf:
4596 1.1 joerg x86emuOp_scas_word(emu);
4597 1.1 joerg break;
4598 1.1 joerg
4599 1.1 joerg case 0xb0:
4600 1.1 joerg emu->x86.R_AL = fetch_byte_imm(emu);
4601 1.1 joerg break;
4602 1.1 joerg case 0xb1:
4603 1.1 joerg emu->x86.R_CL = fetch_byte_imm(emu);
4604 1.1 joerg break;
4605 1.1 joerg case 0xb2:
4606 1.1 joerg emu->x86.R_DL = fetch_byte_imm(emu);
4607 1.1 joerg break;
4608 1.1 joerg case 0xb3:
4609 1.1 joerg emu->x86.R_BL = fetch_byte_imm(emu);
4610 1.1 joerg break;
4611 1.1 joerg case 0xb4:
4612 1.1 joerg emu->x86.R_AH = fetch_byte_imm(emu);
4613 1.1 joerg break;
4614 1.1 joerg case 0xb5:
4615 1.1 joerg emu->x86.R_CH = fetch_byte_imm(emu);
4616 1.1 joerg break;
4617 1.1 joerg case 0xb6:
4618 1.1 joerg emu->x86.R_DH = fetch_byte_imm(emu);
4619 1.1 joerg break;
4620 1.1 joerg case 0xb7:
4621 1.1 joerg emu->x86.R_BH = fetch_byte_imm(emu);
4622 1.1 joerg break;
4623 1.1 joerg
4624 1.1 joerg case 0xb8:
4625 1.1 joerg x86emuOp_mov_word_AX_IMM(emu);
4626 1.1 joerg break;
4627 1.1 joerg case 0xb9:
4628 1.1 joerg x86emuOp_mov_word_CX_IMM(emu);
4629 1.1 joerg break;
4630 1.1 joerg case 0xba:
4631 1.1 joerg x86emuOp_mov_word_DX_IMM(emu);
4632 1.1 joerg break;
4633 1.1 joerg case 0xbb:
4634 1.1 joerg x86emuOp_mov_word_BX_IMM(emu);
4635 1.1 joerg break;
4636 1.1 joerg case 0xbc:
4637 1.1 joerg x86emuOp_mov_word_SP_IMM(emu);
4638 1.1 joerg break;
4639 1.1 joerg case 0xbd:
4640 1.1 joerg x86emuOp_mov_word_BP_IMM(emu);
4641 1.1 joerg break;
4642 1.1 joerg case 0xbe:
4643 1.1 joerg x86emuOp_mov_word_SI_IMM(emu);
4644 1.1 joerg break;
4645 1.1 joerg case 0xbf:
4646 1.1 joerg x86emuOp_mov_word_DI_IMM(emu);
4647 1.1 joerg break;
4648 1.1 joerg
4649 1.1 joerg case 0xc0:
4650 1.1 joerg x86emuOp_opcC0_byte_RM_MEM(emu);
4651 1.1 joerg break;
4652 1.1 joerg case 0xc1:
4653 1.1 joerg x86emuOp_opcC1_word_RM_MEM(emu);
4654 1.1 joerg break;
4655 1.1 joerg case 0xc2:
4656 1.1 joerg x86emuOp_ret_near_IMM(emu);
4657 1.1 joerg break;
4658 1.1 joerg case 0xc3:
4659 1.1 joerg emu->x86.R_IP = pop_word(emu);
4660 1.1 joerg break;
4661 1.1 joerg case 0xc4:
4662 1.1 joerg common_load_far_pointer(emu, &emu->x86.R_ES);
4663 1.1 joerg break;
4664 1.1 joerg case 0xc5:
4665 1.1 joerg common_load_far_pointer(emu, &emu->x86.R_DS);
4666 1.1 joerg break;
4667 1.1 joerg case 0xc6:
4668 1.1 joerg x86emuOp_mov_byte_RM_IMM(emu);
4669 1.1 joerg break;
4670 1.1 joerg case 0xc7:
4671 1.1 joerg x86emuOp_mov_word_RM_IMM(emu);
4672 1.1 joerg break;
4673 1.1 joerg case 0xc8:
4674 1.1 joerg x86emuOp_enter(emu);
4675 1.1 joerg break;
4676 1.1 joerg case 0xc9:
4677 1.1 joerg x86emuOp_leave(emu);
4678 1.1 joerg break;
4679 1.1 joerg case 0xca:
4680 1.1 joerg x86emuOp_ret_far_IMM(emu);
4681 1.1 joerg break;
4682 1.1 joerg case 0xcb:
4683 1.1 joerg x86emuOp_ret_far(emu);
4684 1.1 joerg break;
4685 1.1 joerg case 0xcc:
4686 1.1 joerg x86emuOp_int3(emu);
4687 1.1 joerg break;
4688 1.1 joerg case 0xcd:
4689 1.1 joerg x86emuOp_int_IMM(emu);
4690 1.1 joerg break;
4691 1.1 joerg case 0xce:
4692 1.1 joerg x86emuOp_into(emu);
4693 1.1 joerg break;
4694 1.1 joerg case 0xcf:
4695 1.1 joerg x86emuOp_iret(emu);
4696 1.1 joerg break;
4697 1.1 joerg
4698 1.1 joerg case 0xd0:
4699 1.1 joerg x86emuOp_opcD0_byte_RM_1(emu);
4700 1.1 joerg break;
4701 1.1 joerg case 0xd1:
4702 1.1 joerg x86emuOp_opcD1_word_RM_1(emu);
4703 1.1 joerg break;
4704 1.1 joerg case 0xd2:
4705 1.1 joerg x86emuOp_opcD2_byte_RM_CL(emu);
4706 1.1 joerg break;
4707 1.1 joerg case 0xd3:
4708 1.1 joerg x86emuOp_opcD3_word_RM_CL(emu);
4709 1.1 joerg break;
4710 1.1 joerg case 0xd4:
4711 1.1 joerg x86emuOp_aam(emu);
4712 1.1 joerg break;
4713 1.1 joerg case 0xd5:
4714 1.1 joerg x86emuOp_aad(emu);
4715 1.1 joerg break;
4716 1.1 joerg /* 0xd6 Undocumented SETALC instruction */
4717 1.1 joerg case 0xd7:
4718 1.1 joerg x86emuOp_xlat(emu);
4719 1.1 joerg break;
4720 1.1 joerg case 0xd8:
4721 1.1 joerg x86emuOp_esc_coprocess_d8(emu);
4722 1.1 joerg break;
4723 1.1 joerg case 0xd9:
4724 1.1 joerg x86emuOp_esc_coprocess_d9(emu);
4725 1.1 joerg break;
4726 1.1 joerg case 0xda:
4727 1.1 joerg x86emuOp_esc_coprocess_da(emu);
4728 1.1 joerg break;
4729 1.1 joerg case 0xdb:
4730 1.1 joerg x86emuOp_esc_coprocess_db(emu);
4731 1.1 joerg break;
4732 1.1 joerg case 0xdc:
4733 1.1 joerg x86emuOp_esc_coprocess_dc(emu);
4734 1.1 joerg break;
4735 1.1 joerg case 0xdd:
4736 1.1 joerg x86emuOp_esc_coprocess_dd(emu);
4737 1.1 joerg break;
4738 1.1 joerg case 0xde:
4739 1.1 joerg x86emuOp_esc_coprocess_de(emu);
4740 1.1 joerg break;
4741 1.1 joerg case 0xdf:
4742 1.1 joerg x86emuOp_esc_coprocess_df(emu);
4743 1.1 joerg break;
4744 1.1 joerg
4745 1.1 joerg case 0xe0:
4746 1.1 joerg x86emuOp_loopne(emu);
4747 1.1 joerg break;
4748 1.1 joerg case 0xe1:
4749 1.1 joerg x86emuOp_loope(emu);
4750 1.1 joerg break;
4751 1.1 joerg case 0xe2:
4752 1.1 joerg x86emuOp_loop(emu);
4753 1.1 joerg break;
4754 1.1 joerg case 0xe3:
4755 1.1 joerg x86emuOp_jcxz(emu);
4756 1.1 joerg break;
4757 1.1 joerg case 0xe4:
4758 1.1 joerg x86emuOp_in_byte_AL_IMM(emu);
4759 1.1 joerg break;
4760 1.1 joerg case 0xe5:
4761 1.1 joerg x86emuOp_in_word_AX_IMM(emu);
4762 1.1 joerg break;
4763 1.1 joerg case 0xe6:
4764 1.1 joerg x86emuOp_out_byte_IMM_AL(emu);
4765 1.1 joerg break;
4766 1.1 joerg case 0xe7:
4767 1.1 joerg x86emuOp_out_word_IMM_AX(emu);
4768 1.1 joerg break;
4769 1.1 joerg
4770 1.1 joerg case 0xe8:
4771 1.1 joerg x86emuOp_call_near_IMM(emu);
4772 1.1 joerg break;
4773 1.1 joerg case 0xe9:
4774 1.1 joerg x86emuOp_jump_near_IMM(emu);
4775 1.1 joerg break;
4776 1.1 joerg case 0xea:
4777 1.1 joerg x86emuOp_jump_far_IMM(emu);
4778 1.1 joerg break;
4779 1.1 joerg case 0xeb:
4780 1.1 joerg x86emuOp_jump_byte_IMM(emu);
4781 1.1 joerg break;
4782 1.1 joerg case 0xec:
4783 1.1 joerg x86emuOp_in_byte_AL_DX(emu);
4784 1.1 joerg break;
4785 1.1 joerg case 0xed:
4786 1.1 joerg x86emuOp_in_word_AX_DX(emu);
4787 1.1 joerg break;
4788 1.1 joerg case 0xee:
4789 1.1 joerg x86emuOp_out_byte_DX_AL(emu);
4790 1.1 joerg break;
4791 1.1 joerg case 0xef:
4792 1.1 joerg x86emuOp_out_word_DX_AX(emu);
4793 1.1 joerg break;
4794 1.1 joerg
4795 1.1 joerg case 0xf0:
4796 1.1 joerg x86emuOp_lock(emu);
4797 1.1 joerg break;
4798 1.1 joerg case 0xf2:
4799 1.1 joerg emu->x86.mode |= SYSMODE_PREFIX_REPNE;
4800 1.1 joerg break;
4801 1.1 joerg case 0xf3:
4802 1.1 joerg emu->x86.mode |= SYSMODE_PREFIX_REPE;
4803 1.1 joerg break;
4804 1.1 joerg case 0xf4:
4805 1.1 joerg X86EMU_halt_sys(emu);
4806 1.1 joerg break;
4807 1.1 joerg case 0xf5:
4808 1.1 joerg x86emuOp_cmc(emu);
4809 1.1 joerg break;
4810 1.1 joerg case 0xf6:
4811 1.1 joerg x86emuOp_opcF6_byte_RM(emu);
4812 1.1 joerg break;
4813 1.1 joerg case 0xf7:
4814 1.1 joerg x86emuOp_opcF7_word_RM(emu);
4815 1.1 joerg break;
4816 1.1 joerg
4817 1.1 joerg case 0xf8:
4818 1.1 joerg CLEAR_FLAG(F_CF);
4819 1.1 joerg break;
4820 1.1 joerg case 0xf9:
4821 1.1 joerg SET_FLAG(F_CF);
4822 1.1 joerg break;
4823 1.1 joerg case 0xfa:
4824 1.1 joerg CLEAR_FLAG(F_IF);
4825 1.1 joerg break;
4826 1.1 joerg case 0xfb:
4827 1.1 joerg SET_FLAG(F_IF);
4828 1.1 joerg break;
4829 1.1 joerg case 0xfc:
4830 1.1 joerg CLEAR_FLAG(F_DF);
4831 1.1 joerg break;
4832 1.1 joerg case 0xfd:
4833 1.1 joerg SET_FLAG(F_DF);
4834 1.1 joerg break;
4835 1.1 joerg case 0xfe:
4836 1.1 joerg x86emuOp_opcFE_byte_RM(emu);
4837 1.1 joerg break;
4838 1.1 joerg case 0xff:
4839 1.1 joerg x86emuOp_opcFF_word_RM(emu);
4840 1.1 joerg break;
4841 1.1 joerg default:
4842 1.1 joerg X86EMU_halt_sys(emu);
4843 1.1 joerg break;
4844 1.1 joerg }
4845 1.1 joerg if (op1 != 0x26 && op1 != 0x2e && op1 != 0x36 && op1 != 0x3e &&
4846 1.1 joerg (op1 | 3) != 0x67)
4847 1.1 joerg emu->x86.mode &= ~SYSMODE_CLRMASK;
4848 1.1 joerg }
4849 1.1 joerg
4850 1.1 joerg static void
4851 1.1 joerg common_jmp_long(struct X86EMU *emu, bool cond)
4852 1.1 joerg {
4853 1.1 joerg int16_t target;
4854 1.1 joerg
4855 1.1 joerg target = (int16_t) fetch_word_imm(emu);
4856 1.1 joerg target += (int16_t) emu->x86.R_IP;
4857 1.1 joerg if (cond)
4858 1.1 joerg emu->x86.R_IP = (uint16_t) target;
4859 1.1 joerg }
4860 1.1 joerg
4861 1.1 joerg static void
4862 1.1 joerg common_set_byte(struct X86EMU *emu, bool cond)
4863 1.1 joerg {
4864 1.1 joerg uint32_t destoffset;
4865 1.1 joerg uint8_t *destreg, destval;
4866 1.1 joerg
4867 1.1 joerg fetch_decode_modrm(emu);
4868 1.1 joerg destval = cond ? 0x01 : 0x00;
4869 1.1 joerg if (emu->cur_mod != 3) {
4870 1.1 joerg destoffset = decode_rl_address(emu);
4871 1.1 joerg store_data_byte(emu, destoffset, destval);
4872 1.1 joerg } else {
4873 1.1 joerg destreg = decode_rl_byte_register(emu);
4874 1.1 joerg *destreg = destval;
4875 1.1 joerg }
4876 1.1 joerg }
4877 1.1 joerg
4878 1.1 joerg static void
4879 1.1 joerg common_bitstring32(struct X86EMU *emu, int op)
4880 1.1 joerg {
4881 1.1 joerg int bit;
4882 1.1 joerg uint32_t srcval, *shiftreg, mask;
4883 1.1 joerg
4884 1.1 joerg fetch_decode_modrm(emu);
4885 1.1 joerg shiftreg = decode_rh_long_register(emu);
4886 1.1 joerg srcval = decode_and_fetch_long_disp(emu, (int16_t) *shiftreg >> 5);
4887 1.1 joerg bit = *shiftreg & 0x1F;
4888 1.1 joerg mask = 0x1 << bit;
4889 1.1 joerg CONDITIONAL_SET_FLAG(srcval & mask, F_CF);
4890 1.1 joerg
4891 1.1 joerg switch (op) {
4892 1.1 joerg case 0:
4893 1.1 joerg break;
4894 1.1 joerg case 1:
4895 1.1 joerg write_back_long(emu, srcval | mask);
4896 1.1 joerg break;
4897 1.1 joerg case 2:
4898 1.1 joerg write_back_long(emu, srcval & ~mask);
4899 1.1 joerg break;
4900 1.1 joerg case 3:
4901 1.1 joerg write_back_long(emu, srcval ^ mask);
4902 1.1 joerg break;
4903 1.1 joerg }
4904 1.1 joerg }
4905 1.1 joerg
4906 1.1 joerg static void
4907 1.1 joerg common_bitstring16(struct X86EMU *emu, int op)
4908 1.1 joerg {
4909 1.1 joerg int bit;
4910 1.1 joerg uint16_t srcval, *shiftreg, mask;
4911 1.1 joerg
4912 1.1 joerg fetch_decode_modrm(emu);
4913 1.1 joerg shiftreg = decode_rh_word_register(emu);
4914 1.1 joerg srcval = decode_and_fetch_word_disp(emu, (int16_t) *shiftreg >> 4);
4915 1.1 joerg bit = *shiftreg & 0xF;
4916 1.1 joerg mask = 0x1 << bit;
4917 1.1 joerg CONDITIONAL_SET_FLAG(srcval & mask, F_CF);
4918 1.1 joerg
4919 1.1 joerg switch (op) {
4920 1.1 joerg case 0:
4921 1.1 joerg break;
4922 1.1 joerg case 1:
4923 1.1 joerg write_back_word(emu, srcval | mask);
4924 1.1 joerg break;
4925 1.1 joerg case 2:
4926 1.1 joerg write_back_word(emu, srcval & ~mask);
4927 1.1 joerg break;
4928 1.1 joerg case 3:
4929 1.1 joerg write_back_word(emu, srcval ^ mask);
4930 1.1 joerg break;
4931 1.1 joerg }
4932 1.1 joerg }
4933 1.1 joerg
4934 1.1 joerg static void
4935 1.1 joerg common_bitstring(struct X86EMU *emu, int op)
4936 1.1 joerg {
4937 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
4938 1.1 joerg common_bitstring32(emu, op);
4939 1.1 joerg else
4940 1.1 joerg common_bitstring16(emu, op);
4941 1.1 joerg }
4942 1.1 joerg
4943 1.1 joerg static void
4944 1.1 joerg common_bitsearch32(struct X86EMU *emu, int diff)
4945 1.1 joerg {
4946 1.1 joerg uint32_t srcval, *dstreg;
4947 1.1 joerg
4948 1.1 joerg fetch_decode_modrm(emu);
4949 1.1 joerg dstreg = decode_rh_long_register(emu);
4950 1.1 joerg srcval = decode_and_fetch_long(emu);
4951 1.1 joerg CONDITIONAL_SET_FLAG(srcval == 0, F_ZF);
4952 1.1 joerg for (*dstreg = 0; *dstreg < 32; *dstreg += diff) {
4953 1.1 joerg if ((srcval >> *dstreg) & 1)
4954 1.1 joerg break;
4955 1.1 joerg }
4956 1.1 joerg }
4957 1.1 joerg
4958 1.1 joerg static void
4959 1.1 joerg common_bitsearch16(struct X86EMU *emu, int diff)
4960 1.1 joerg {
4961 1.1 joerg uint16_t srcval, *dstreg;
4962 1.1 joerg
4963 1.1 joerg fetch_decode_modrm(emu);
4964 1.1 joerg dstreg = decode_rh_word_register(emu);
4965 1.1 joerg srcval = decode_and_fetch_word(emu);
4966 1.1 joerg CONDITIONAL_SET_FLAG(srcval == 0, F_ZF);
4967 1.1 joerg for (*dstreg = 0; *dstreg < 16; *dstreg += diff) {
4968 1.1 joerg if ((srcval >> *dstreg) & 1)
4969 1.1 joerg break;
4970 1.1 joerg }
4971 1.1 joerg }
4972 1.1 joerg
4973 1.1 joerg static void
4974 1.1 joerg common_bitsearch(struct X86EMU *emu, int diff)
4975 1.1 joerg {
4976 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
4977 1.1 joerg common_bitsearch32(emu, diff);
4978 1.1 joerg else
4979 1.1 joerg common_bitsearch16(emu, diff);
4980 1.1 joerg }
4981 1.1 joerg
4982 1.1 joerg static void
4983 1.1 joerg common_shift32(struct X86EMU *emu, bool shift_left, bool use_cl)
4984 1.1 joerg {
4985 1.1 joerg uint8_t shift;
4986 1.1 joerg uint32_t destval, *shiftreg;
4987 1.1 joerg
4988 1.1 joerg fetch_decode_modrm(emu);
4989 1.1 joerg shiftreg = decode_rh_long_register(emu);
4990 1.1 joerg if (use_cl) {
4991 1.1 joerg destval = decode_and_fetch_long(emu);
4992 1.1 joerg shift = emu->x86.R_CL;
4993 1.1 joerg } else {
4994 1.1 joerg destval = decode_and_fetch_long_imm8(emu, &shift);
4995 1.1 joerg }
4996 1.1 joerg if (shift_left)
4997 1.1 joerg destval = shld_long(emu, destval, *shiftreg, shift);
4998 1.1 joerg else
4999 1.1 joerg destval = shrd_long(emu, destval, *shiftreg, shift);
5000 1.1 joerg write_back_long(emu, destval);
5001 1.1 joerg }
5002 1.1 joerg
5003 1.1 joerg static void
5004 1.1 joerg common_shift16(struct X86EMU *emu, bool shift_left, bool use_cl)
5005 1.1 joerg {
5006 1.1 joerg uint8_t shift;
5007 1.1 joerg uint16_t destval, *shiftreg;
5008 1.1 joerg
5009 1.1 joerg fetch_decode_modrm(emu);
5010 1.1 joerg shiftreg = decode_rh_word_register(emu);
5011 1.1 joerg if (use_cl) {
5012 1.1 joerg destval = decode_and_fetch_word(emu);
5013 1.1 joerg shift = emu->x86.R_CL;
5014 1.1 joerg } else {
5015 1.1 joerg destval = decode_and_fetch_word_imm8(emu, &shift);
5016 1.1 joerg }
5017 1.1 joerg if (shift_left)
5018 1.1 joerg destval = shld_word(emu, destval, *shiftreg, shift);
5019 1.1 joerg else
5020 1.1 joerg destval = shrd_word(emu, destval, *shiftreg, shift);
5021 1.1 joerg write_back_word(emu, destval);
5022 1.1 joerg }
5023 1.1 joerg
5024 1.1 joerg static void
5025 1.1 joerg common_shift(struct X86EMU *emu, bool shift_left, bool use_cl)
5026 1.1 joerg {
5027 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
5028 1.1 joerg common_shift32(emu, shift_left, use_cl);
5029 1.1 joerg else
5030 1.1 joerg common_shift16(emu, shift_left, use_cl);
5031 1.1 joerg }
5032 1.1 joerg
5033 1.1 joerg /*----------------------------- Implementation ----------------------------*/
5034 1.1 joerg #define xorl(a,b) ((a) && !(b)) || (!(a) && (b))
5035 1.1 joerg
5036 1.1 joerg /****************************************************************************
5037 1.1 joerg REMARKS:
5038 1.1 joerg Handles opcode 0x0f,0x31
5039 1.1 joerg ****************************************************************************/
5040 1.1 joerg static void
5041 1.1 joerg x86emuOp2_rdtsc(struct X86EMU *emu)
5042 1.1 joerg {
5043 1.1 joerg emu->x86.R_EAX = emu->cur_cycles & 0xffffffff;
5044 1.1 joerg emu->x86.R_EDX = emu->cur_cycles >> 32;
5045 1.1 joerg }
5046 1.1 joerg /****************************************************************************
5047 1.1 joerg REMARKS:
5048 1.1 joerg Handles opcode 0x0f,0xa0
5049 1.1 joerg ****************************************************************************/
5050 1.1 joerg static void
5051 1.1 joerg x86emuOp2_push_FS(struct X86EMU *emu)
5052 1.1 joerg {
5053 1.1 joerg push_word(emu, emu->x86.R_FS);
5054 1.1 joerg }
5055 1.1 joerg /****************************************************************************
5056 1.1 joerg REMARKS:
5057 1.1 joerg Handles opcode 0x0f,0xa1
5058 1.1 joerg ****************************************************************************/
5059 1.1 joerg static void
5060 1.1 joerg x86emuOp2_pop_FS(struct X86EMU *emu)
5061 1.1 joerg {
5062 1.1 joerg emu->x86.R_FS = pop_word(emu);
5063 1.1 joerg }
5064 1.1 joerg /****************************************************************************
5065 1.1 joerg REMARKS:
5066 1.4 jmcneill Handles opcode 0x0f,0xa1
5067 1.4 jmcneill ****************************************************************************/
5068 1.4 jmcneill #if defined(__i386__) || defined(__amd64__)
5069 1.4 jmcneill static void
5070 1.4 jmcneill hw_cpuid(uint32_t *a, uint32_t *b, uint32_t *c, uint32_t *d)
5071 1.4 jmcneill {
5072 1.4 jmcneill __asm__ __volatile__("cpuid"
5073 1.4 jmcneill : "=a" (*a), "=b" (*b),
5074 1.4 jmcneill "=c" (*c), "=d" (*d)
5075 1.4 jmcneill : "a" (*a), "c" (*c)
5076 1.4 jmcneill : "cc");
5077 1.4 jmcneill }
5078 1.4 jmcneill #endif
5079 1.4 jmcneill static void
5080 1.4 jmcneill x86emuOp2_cpuid(struct X86EMU *emu)
5081 1.4 jmcneill {
5082 1.4 jmcneill #if defined(__i386__) || defined(__amd64__)
5083 1.4 jmcneill hw_cpuid(&emu->x86.R_EAX, &emu->x86.R_EBX, &emu->x86.R_ECX,
5084 1.4 jmcneill &emu->x86.R_EDX);
5085 1.4 jmcneill #endif
5086 1.4 jmcneill switch (emu->x86.R_EAX) {
5087 1.4 jmcneill case 0:
5088 1.4 jmcneill emu->x86.R_EAX = 1;
5089 1.4 jmcneill #if !defined(__i386__) && !defined(__amd64__)
5090 1.4 jmcneill /* "GenuineIntel" */
5091 1.4 jmcneill emu->x86.R_EBX = 0x756e6547;
5092 1.4 jmcneill emu->x86.R_EDX = 0x49656e69;
5093 1.4 jmcneill emu->x86.R_ECX = 0x6c65746e;
5094 1.4 jmcneill #endif
5095 1.4 jmcneill break;
5096 1.4 jmcneill case 1:
5097 1.4 jmcneill #if !defined(__i386__) && !defined(__amd64__)
5098 1.4 jmcneill emu->x86.R_EAX = 0x00000480;
5099 1.4 jmcneill emu->x86.R_EBX = emu->x86.R_ECX = 0;
5100 1.4 jmcneill emu->x86.R_EDX = 0x00000002;
5101 1.4 jmcneill #else
5102 1.4 jmcneill emu->x86.R_EDX &= 0x00000012;
5103 1.4 jmcneill #endif
5104 1.4 jmcneill break;
5105 1.4 jmcneill default:
5106 1.4 jmcneill emu->x86.R_EAX = emu->x86.R_EBX = emu->x86.R_ECX =
5107 1.4 jmcneill emu->x86.R_EDX = 0;
5108 1.4 jmcneill break;
5109 1.4 jmcneill }
5110 1.4 jmcneill }
5111 1.4 jmcneill /****************************************************************************
5112 1.4 jmcneill REMARKS:
5113 1.1 joerg Handles opcode 0x0f,0xa3
5114 1.1 joerg ****************************************************************************/
5115 1.1 joerg static void
5116 1.1 joerg x86emuOp2_bt_R(struct X86EMU *emu)
5117 1.1 joerg {
5118 1.1 joerg common_bitstring(emu, 0);
5119 1.1 joerg }
5120 1.1 joerg /****************************************************************************
5121 1.1 joerg REMARKS:
5122 1.1 joerg Handles opcode 0x0f,0xa4
5123 1.1 joerg ****************************************************************************/
5124 1.1 joerg static void
5125 1.1 joerg x86emuOp2_shld_IMM(struct X86EMU *emu)
5126 1.1 joerg {
5127 1.1 joerg common_shift(emu, true, false);
5128 1.1 joerg }
5129 1.1 joerg /****************************************************************************
5130 1.1 joerg REMARKS:
5131 1.1 joerg Handles opcode 0x0f,0xa5
5132 1.1 joerg ****************************************************************************/
5133 1.1 joerg static void
5134 1.1 joerg x86emuOp2_shld_CL(struct X86EMU *emu)
5135 1.1 joerg {
5136 1.1 joerg common_shift(emu, true, true);
5137 1.1 joerg }
5138 1.1 joerg /****************************************************************************
5139 1.1 joerg REMARKS:
5140 1.1 joerg Handles opcode 0x0f,0xa8
5141 1.1 joerg ****************************************************************************/
5142 1.1 joerg static void
5143 1.1 joerg x86emuOp2_push_GS(struct X86EMU *emu)
5144 1.1 joerg {
5145 1.1 joerg push_word(emu, emu->x86.R_GS);
5146 1.1 joerg }
5147 1.1 joerg /****************************************************************************
5148 1.1 joerg REMARKS:
5149 1.1 joerg Handles opcode 0x0f,0xa9
5150 1.1 joerg ****************************************************************************/
5151 1.1 joerg static void
5152 1.1 joerg x86emuOp2_pop_GS(struct X86EMU *emu)
5153 1.1 joerg {
5154 1.1 joerg emu->x86.R_GS = pop_word(emu);
5155 1.1 joerg }
5156 1.1 joerg /****************************************************************************
5157 1.1 joerg REMARKS:
5158 1.1 joerg Handles opcode 0x0f,0xab
5159 1.1 joerg ****************************************************************************/
5160 1.1 joerg static void
5161 1.1 joerg x86emuOp2_bts_R(struct X86EMU *emu)
5162 1.1 joerg {
5163 1.1 joerg common_bitstring(emu, 1);
5164 1.1 joerg }
5165 1.1 joerg /****************************************************************************
5166 1.1 joerg REMARKS:
5167 1.1 joerg Handles opcode 0x0f,0xac
5168 1.1 joerg ****************************************************************************/
5169 1.1 joerg static void
5170 1.1 joerg x86emuOp2_shrd_IMM(struct X86EMU *emu)
5171 1.1 joerg {
5172 1.1 joerg common_shift(emu, false, false);
5173 1.1 joerg }
5174 1.1 joerg /****************************************************************************
5175 1.1 joerg REMARKS:
5176 1.1 joerg Handles opcode 0x0f,0xad
5177 1.1 joerg ****************************************************************************/
5178 1.1 joerg static void
5179 1.1 joerg x86emuOp2_shrd_CL(struct X86EMU *emu)
5180 1.1 joerg {
5181 1.1 joerg common_shift(emu, false, true);
5182 1.1 joerg }
5183 1.1 joerg /****************************************************************************
5184 1.1 joerg REMARKS:
5185 1.1 joerg Handles opcode 0x0f,0xaf
5186 1.1 joerg ****************************************************************************/
5187 1.1 joerg static void
5188 1.1 joerg x86emuOp2_32_imul_R_RM(struct X86EMU *emu)
5189 1.1 joerg {
5190 1.1 joerg uint32_t *destreg, srcval;
5191 1.1 joerg uint64_t res;
5192 1.1 joerg
5193 1.1 joerg fetch_decode_modrm(emu);
5194 1.1 joerg destreg = decode_rh_long_register(emu);
5195 1.1 joerg srcval = decode_and_fetch_long(emu);
5196 1.1 joerg res = (int32_t) *destreg * (int32_t)srcval;
5197 1.1 joerg if (res > 0xffffffff) {
5198 1.1 joerg SET_FLAG(F_CF);
5199 1.1 joerg SET_FLAG(F_OF);
5200 1.1 joerg } else {
5201 1.1 joerg CLEAR_FLAG(F_CF);
5202 1.1 joerg CLEAR_FLAG(F_OF);
5203 1.1 joerg }
5204 1.1 joerg *destreg = (uint32_t) res;
5205 1.1 joerg }
5206 1.1 joerg
5207 1.1 joerg static void
5208 1.1 joerg x86emuOp2_16_imul_R_RM(struct X86EMU *emu)
5209 1.1 joerg {
5210 1.1 joerg uint16_t *destreg, srcval;
5211 1.1 joerg uint32_t res;
5212 1.1 joerg
5213 1.1 joerg fetch_decode_modrm(emu);
5214 1.1 joerg destreg = decode_rh_word_register(emu);
5215 1.1 joerg srcval = decode_and_fetch_word(emu);
5216 1.1 joerg res = (int16_t) * destreg * (int16_t)srcval;
5217 1.1 joerg if (res > 0xFFFF) {
5218 1.1 joerg SET_FLAG(F_CF);
5219 1.1 joerg SET_FLAG(F_OF);
5220 1.1 joerg } else {
5221 1.1 joerg CLEAR_FLAG(F_CF);
5222 1.1 joerg CLEAR_FLAG(F_OF);
5223 1.1 joerg }
5224 1.1 joerg *destreg = (uint16_t) res;
5225 1.1 joerg }
5226 1.1 joerg
5227 1.1 joerg static void
5228 1.1 joerg x86emuOp2_imul_R_RM(struct X86EMU *emu)
5229 1.1 joerg {
5230 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
5231 1.1 joerg x86emuOp2_32_imul_R_RM(emu);
5232 1.1 joerg else
5233 1.1 joerg x86emuOp2_16_imul_R_RM(emu);
5234 1.1 joerg }
5235 1.1 joerg /****************************************************************************
5236 1.1 joerg REMARKS:
5237 1.1 joerg Handles opcode 0x0f,0xb2
5238 1.1 joerg ****************************************************************************/
5239 1.1 joerg static void
5240 1.1 joerg x86emuOp2_lss_R_IMM(struct X86EMU *emu)
5241 1.1 joerg {
5242 1.1 joerg common_load_far_pointer(emu, &emu->x86.R_SS);
5243 1.1 joerg }
5244 1.1 joerg /****************************************************************************
5245 1.1 joerg REMARKS:
5246 1.1 joerg Handles opcode 0x0f,0xb3
5247 1.1 joerg ****************************************************************************/
5248 1.1 joerg static void
5249 1.1 joerg x86emuOp2_btr_R(struct X86EMU *emu)
5250 1.1 joerg {
5251 1.1 joerg common_bitstring(emu, 2);
5252 1.1 joerg }
5253 1.1 joerg /****************************************************************************
5254 1.1 joerg REMARKS:
5255 1.1 joerg Handles opcode 0x0f,0xb4
5256 1.1 joerg ****************************************************************************/
5257 1.1 joerg static void
5258 1.1 joerg x86emuOp2_lfs_R_IMM(struct X86EMU *emu)
5259 1.1 joerg {
5260 1.1 joerg common_load_far_pointer(emu, &emu->x86.R_FS);
5261 1.1 joerg }
5262 1.1 joerg /****************************************************************************
5263 1.1 joerg REMARKS:
5264 1.1 joerg Handles opcode 0x0f,0xb5
5265 1.1 joerg ****************************************************************************/
5266 1.1 joerg static void
5267 1.1 joerg x86emuOp2_lgs_R_IMM(struct X86EMU *emu)
5268 1.1 joerg {
5269 1.1 joerg common_load_far_pointer(emu, &emu->x86.R_GS);
5270 1.1 joerg }
5271 1.1 joerg /****************************************************************************
5272 1.1 joerg REMARKS:
5273 1.1 joerg Handles opcode 0x0f,0xb6
5274 1.1 joerg ****************************************************************************/
5275 1.1 joerg static void
5276 1.1 joerg x86emuOp2_32_movzx_byte_R_RM(struct X86EMU *emu)
5277 1.1 joerg {
5278 1.1 joerg uint32_t *destreg;
5279 1.1 joerg
5280 1.1 joerg fetch_decode_modrm(emu);
5281 1.1 joerg destreg = decode_rh_long_register(emu);
5282 1.1 joerg *destreg = decode_and_fetch_byte(emu);
5283 1.1 joerg }
5284 1.1 joerg
5285 1.1 joerg static void
5286 1.1 joerg x86emuOp2_16_movzx_byte_R_RM(struct X86EMU *emu)
5287 1.1 joerg {
5288 1.1 joerg uint16_t *destreg;
5289 1.1 joerg
5290 1.1 joerg fetch_decode_modrm(emu);
5291 1.1 joerg destreg = decode_rh_word_register(emu);
5292 1.1 joerg *destreg = decode_and_fetch_byte(emu);
5293 1.1 joerg }
5294 1.1 joerg
5295 1.1 joerg static void
5296 1.1 joerg x86emuOp2_movzx_byte_R_RM(struct X86EMU *emu)
5297 1.1 joerg {
5298 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
5299 1.1 joerg x86emuOp2_32_movzx_byte_R_RM(emu);
5300 1.1 joerg else
5301 1.1 joerg x86emuOp2_16_movzx_byte_R_RM(emu);
5302 1.1 joerg }
5303 1.1 joerg /****************************************************************************
5304 1.1 joerg REMARKS:
5305 1.1 joerg Handles opcode 0x0f,0xb7
5306 1.1 joerg ****************************************************************************/
5307 1.1 joerg static void
5308 1.1 joerg x86emuOp2_movzx_word_R_RM(struct X86EMU *emu)
5309 1.1 joerg {
5310 1.1 joerg uint32_t *destreg;
5311 1.1 joerg
5312 1.1 joerg fetch_decode_modrm(emu);
5313 1.1 joerg destreg = decode_rh_long_register(emu);
5314 1.1 joerg *destreg = decode_and_fetch_word(emu);
5315 1.1 joerg }
5316 1.1 joerg /****************************************************************************
5317 1.1 joerg REMARKS:
5318 1.1 joerg Handles opcode 0x0f,0xba
5319 1.1 joerg ****************************************************************************/
5320 1.1 joerg static void
5321 1.1 joerg x86emuOp2_32_btX_I(struct X86EMU *emu)
5322 1.1 joerg {
5323 1.1 joerg int bit;
5324 1.1 joerg uint32_t srcval, mask;
5325 1.1 joerg uint8_t shift;
5326 1.1 joerg
5327 1.1 joerg fetch_decode_modrm(emu);
5328 1.1 joerg if (emu->cur_rh < 4)
5329 1.1 joerg X86EMU_halt_sys(emu);
5330 1.1 joerg
5331 1.1 joerg srcval = decode_and_fetch_long_imm8(emu, &shift);
5332 1.1 joerg bit = shift & 0x1F;
5333 1.1 joerg mask = (0x1 << bit);
5334 1.1 joerg
5335 1.1 joerg switch (emu->cur_rh) {
5336 1.1 joerg case 5:
5337 1.1 joerg write_back_long(emu, srcval | mask);
5338 1.1 joerg break;
5339 1.1 joerg case 6:
5340 1.1 joerg write_back_long(emu, srcval & ~mask);
5341 1.1 joerg break;
5342 1.1 joerg case 7:
5343 1.1 joerg write_back_long(emu, srcval ^ mask);
5344 1.1 joerg break;
5345 1.1 joerg }
5346 1.1 joerg CONDITIONAL_SET_FLAG(srcval & mask, F_CF);
5347 1.1 joerg }
5348 1.1 joerg
5349 1.1 joerg static void
5350 1.1 joerg x86emuOp2_16_btX_I(struct X86EMU *emu)
5351 1.1 joerg {
5352 1.1 joerg int bit;
5353 1.1 joerg
5354 1.1 joerg uint16_t srcval, mask;
5355 1.1 joerg uint8_t shift;
5356 1.1 joerg
5357 1.1 joerg fetch_decode_modrm(emu);
5358 1.1 joerg if (emu->cur_rh < 4)
5359 1.1 joerg X86EMU_halt_sys(emu);
5360 1.1 joerg
5361 1.1 joerg srcval = decode_and_fetch_word_imm8(emu, &shift);
5362 1.1 joerg bit = shift & 0xF;
5363 1.1 joerg mask = (0x1 << bit);
5364 1.1 joerg switch (emu->cur_rh) {
5365 1.1 joerg case 5:
5366 1.1 joerg write_back_word(emu, srcval | mask);
5367 1.1 joerg break;
5368 1.1 joerg case 6:
5369 1.1 joerg write_back_word(emu, srcval & ~mask);
5370 1.1 joerg break;
5371 1.1 joerg case 7:
5372 1.1 joerg write_back_word(emu, srcval ^ mask);
5373 1.1 joerg break;
5374 1.1 joerg }
5375 1.1 joerg CONDITIONAL_SET_FLAG(srcval & mask, F_CF);
5376 1.1 joerg }
5377 1.1 joerg
5378 1.1 joerg static void
5379 1.1 joerg x86emuOp2_btX_I(struct X86EMU *emu)
5380 1.1 joerg {
5381 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
5382 1.1 joerg x86emuOp2_32_btX_I(emu);
5383 1.1 joerg else
5384 1.1 joerg x86emuOp2_16_btX_I(emu);
5385 1.1 joerg }
5386 1.1 joerg /****************************************************************************
5387 1.1 joerg REMARKS:
5388 1.1 joerg Handles opcode 0x0f,0xbb
5389 1.1 joerg ****************************************************************************/
5390 1.1 joerg static void
5391 1.1 joerg x86emuOp2_btc_R(struct X86EMU *emu)
5392 1.1 joerg {
5393 1.1 joerg common_bitstring(emu, 3);
5394 1.1 joerg }
5395 1.1 joerg /****************************************************************************
5396 1.1 joerg REMARKS:
5397 1.1 joerg Handles opcode 0x0f,0xbc
5398 1.1 joerg ****************************************************************************/
5399 1.1 joerg static void
5400 1.1 joerg x86emuOp2_bsf(struct X86EMU *emu)
5401 1.1 joerg {
5402 1.1 joerg common_bitsearch(emu, +1);
5403 1.1 joerg }
5404 1.1 joerg /****************************************************************************
5405 1.1 joerg REMARKS:
5406 1.1 joerg Handles opcode 0x0f,0xbd
5407 1.1 joerg ****************************************************************************/
5408 1.1 joerg static void
5409 1.1 joerg x86emuOp2_bsr(struct X86EMU *emu)
5410 1.1 joerg {
5411 1.1 joerg common_bitsearch(emu, -1);
5412 1.1 joerg }
5413 1.1 joerg /****************************************************************************
5414 1.1 joerg REMARKS:
5415 1.1 joerg Handles opcode 0x0f,0xbe
5416 1.1 joerg ****************************************************************************/
5417 1.1 joerg static void
5418 1.1 joerg x86emuOp2_32_movsx_byte_R_RM(struct X86EMU *emu)
5419 1.1 joerg {
5420 1.1 joerg uint32_t *destreg;
5421 1.1 joerg
5422 1.1 joerg destreg = decode_rh_long_register(emu);
5423 1.1 joerg *destreg = (int32_t)(int8_t)decode_and_fetch_byte(emu);
5424 1.1 joerg }
5425 1.1 joerg
5426 1.1 joerg static void
5427 1.1 joerg x86emuOp2_16_movsx_byte_R_RM(struct X86EMU *emu)
5428 1.1 joerg {
5429 1.1 joerg uint16_t *destreg;
5430 1.1 joerg
5431 1.1 joerg fetch_decode_modrm(emu);
5432 1.1 joerg destreg = decode_rh_word_register(emu);
5433 1.1 joerg *destreg = (int16_t)(int8_t)decode_and_fetch_byte(emu);
5434 1.1 joerg }
5435 1.1 joerg
5436 1.1 joerg static void
5437 1.1 joerg x86emuOp2_movsx_byte_R_RM(struct X86EMU *emu)
5438 1.1 joerg {
5439 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA)
5440 1.1 joerg x86emuOp2_32_movsx_byte_R_RM(emu);
5441 1.1 joerg else
5442 1.1 joerg x86emuOp2_16_movsx_byte_R_RM(emu);
5443 1.1 joerg }
5444 1.1 joerg /****************************************************************************
5445 1.1 joerg REMARKS:
5446 1.1 joerg Handles opcode 0x0f,0xbf
5447 1.1 joerg ****************************************************************************/
5448 1.1 joerg static void
5449 1.1 joerg x86emuOp2_movsx_word_R_RM(struct X86EMU *emu)
5450 1.1 joerg {
5451 1.1 joerg uint32_t *destreg;
5452 1.1 joerg
5453 1.1 joerg fetch_decode_modrm(emu);
5454 1.1 joerg destreg = decode_rh_long_register(emu);
5455 1.1 joerg *destreg = (int32_t)(int16_t)decode_and_fetch_word(emu);
5456 1.1 joerg }
5457 1.1 joerg
5458 1.1 joerg static void
5459 1.1 joerg X86EMU_exec_two_byte(struct X86EMU * emu)
5460 1.1 joerg {
5461 1.1 joerg uint8_t op2;
5462 1.1 joerg
5463 1.1 joerg op2 = fetch_byte_imm(emu);
5464 1.1 joerg
5465 1.1 joerg switch (op2) {
5466 1.1 joerg /* 0x00 Group F (ring 0 PM) */
5467 1.1 joerg /* 0x01 Group G (ring 0 PM) */
5468 1.1 joerg /* 0x02 lar (ring 0 PM) */
5469 1.1 joerg /* 0x03 lsl (ring 0 PM) */
5470 1.1 joerg /* 0x05 loadall (undocumented) */
5471 1.1 joerg /* 0x06 clts (ring 0 PM) */
5472 1.1 joerg /* 0x07 loadall (undocumented) */
5473 1.1 joerg /* 0x08 invd (ring 0 PM) */
5474 1.1 joerg /* 0x09 wbinvd (ring 0 PM) */
5475 1.1 joerg
5476 1.1 joerg /* 0x20 mov reg32(op2); break;creg (ring 0 PM) */
5477 1.1 joerg /* 0x21 mov reg32(op2); break;dreg (ring 0 PM) */
5478 1.1 joerg /* 0x22 mov creg(op2); break;reg32 (ring 0 PM) */
5479 1.1 joerg /* 0x23 mov dreg(op2); break;reg32 (ring 0 PM) */
5480 1.1 joerg /* 0x24 mov reg32(op2); break;treg (ring 0 PM) */
5481 1.1 joerg /* 0x26 mov treg(op2); break;reg32 (ring 0 PM) */
5482 1.1 joerg
5483 1.1 joerg case 0x31:
5484 1.1 joerg x86emuOp2_rdtsc(emu);
5485 1.1 joerg break;
5486 1.1 joerg
5487 1.1 joerg case 0x80:
5488 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_OF));
5489 1.1 joerg break;
5490 1.1 joerg case 0x81:
5491 1.1 joerg common_jmp_long(emu, !ACCESS_FLAG(F_OF));
5492 1.1 joerg break;
5493 1.1 joerg case 0x82:
5494 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_CF));
5495 1.1 joerg break;
5496 1.1 joerg case 0x83:
5497 1.1 joerg common_jmp_long(emu, !ACCESS_FLAG(F_CF));
5498 1.1 joerg break;
5499 1.1 joerg case 0x84:
5500 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_ZF));
5501 1.1 joerg break;
5502 1.1 joerg case 0x85:
5503 1.1 joerg common_jmp_long(emu, !ACCESS_FLAG(F_ZF));
5504 1.1 joerg break;
5505 1.1 joerg case 0x86:
5506 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_CF) || ACCESS_FLAG(F_ZF));
5507 1.1 joerg break;
5508 1.1 joerg case 0x87:
5509 1.1 joerg common_jmp_long(emu, !(ACCESS_FLAG(F_CF) || ACCESS_FLAG(F_ZF)));
5510 1.1 joerg break;
5511 1.1 joerg case 0x88:
5512 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_SF));
5513 1.1 joerg break;
5514 1.1 joerg case 0x89:
5515 1.1 joerg common_jmp_long(emu, !ACCESS_FLAG(F_SF));
5516 1.1 joerg break;
5517 1.1 joerg case 0x8a:
5518 1.1 joerg common_jmp_long(emu, ACCESS_FLAG(F_PF));
5519 1.1 joerg break;
5520 1.1 joerg case 0x8b:
5521 1.1 joerg common_jmp_long(emu, !ACCESS_FLAG(F_PF));
5522 1.1 joerg break;
5523 1.1 joerg case 0x8c:
5524 1.1 joerg common_jmp_long(emu, xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)));
5525 1.1 joerg break;
5526 1.1 joerg case 0x8d:
5527 1.1 joerg common_jmp_long(emu, !(xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF))));
5528 1.1 joerg break;
5529 1.1 joerg case 0x8e:
5530 1.1 joerg common_jmp_long(emu,
5531 1.1 joerg (xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)) || ACCESS_FLAG(F_ZF)));
5532 1.1 joerg break;
5533 1.1 joerg case 0x8f:
5534 1.1 joerg common_jmp_long(emu,
5535 1.1 joerg !(xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)) || ACCESS_FLAG(F_ZF)));
5536 1.1 joerg break;
5537 1.1 joerg
5538 1.1 joerg case 0x90:
5539 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_OF));
5540 1.1 joerg break;
5541 1.1 joerg case 0x91:
5542 1.1 joerg common_set_byte(emu, !ACCESS_FLAG(F_OF));
5543 1.1 joerg break;
5544 1.1 joerg case 0x92:
5545 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_CF));
5546 1.1 joerg break;
5547 1.1 joerg case 0x93:
5548 1.1 joerg common_set_byte(emu, !ACCESS_FLAG(F_CF));
5549 1.1 joerg break;
5550 1.1 joerg case 0x94:
5551 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_ZF));
5552 1.1 joerg break;
5553 1.1 joerg case 0x95:
5554 1.1 joerg common_set_byte(emu, !ACCESS_FLAG(F_ZF));
5555 1.1 joerg break;
5556 1.1 joerg case 0x96:
5557 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_CF) || ACCESS_FLAG(F_ZF));
5558 1.1 joerg break;
5559 1.1 joerg case 0x97:
5560 1.1 joerg common_set_byte(emu, !(ACCESS_FLAG(F_CF) || ACCESS_FLAG(F_ZF)));
5561 1.1 joerg break;
5562 1.1 joerg case 0x98:
5563 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_SF));
5564 1.1 joerg break;
5565 1.1 joerg case 0x99:
5566 1.1 joerg common_set_byte(emu, !ACCESS_FLAG(F_SF));
5567 1.1 joerg break;
5568 1.1 joerg case 0x9a:
5569 1.1 joerg common_set_byte(emu, ACCESS_FLAG(F_PF));
5570 1.1 joerg break;
5571 1.1 joerg case 0x9b:
5572 1.1 joerg common_set_byte(emu, !ACCESS_FLAG(F_PF));
5573 1.1 joerg break;
5574 1.1 joerg case 0x9c:
5575 1.1 joerg common_set_byte(emu, xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)));
5576 1.1 joerg break;
5577 1.1 joerg case 0x9d:
5578 1.1 joerg common_set_byte(emu, xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)));
5579 1.1 joerg break;
5580 1.1 joerg case 0x9e:
5581 1.1 joerg common_set_byte(emu,
5582 1.1 joerg (xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)) ||
5583 1.1 joerg ACCESS_FLAG(F_ZF)));
5584 1.1 joerg break;
5585 1.1 joerg case 0x9f:
5586 1.1 joerg common_set_byte(emu,
5587 1.1 joerg !(xorl(ACCESS_FLAG(F_SF), ACCESS_FLAG(F_OF)) ||
5588 1.1 joerg ACCESS_FLAG(F_ZF)));
5589 1.1 joerg break;
5590 1.1 joerg
5591 1.1 joerg case 0xa0:
5592 1.1 joerg x86emuOp2_push_FS(emu);
5593 1.1 joerg break;
5594 1.1 joerg case 0xa1:
5595 1.1 joerg x86emuOp2_pop_FS(emu);
5596 1.1 joerg break;
5597 1.4 jmcneill case 0xa2:
5598 1.4 jmcneill x86emuOp2_cpuid(emu);
5599 1.4 jmcneill break;
5600 1.1 joerg case 0xa3:
5601 1.1 joerg x86emuOp2_bt_R(emu);
5602 1.1 joerg break;
5603 1.1 joerg case 0xa4:
5604 1.1 joerg x86emuOp2_shld_IMM(emu);
5605 1.1 joerg break;
5606 1.1 joerg case 0xa5:
5607 1.1 joerg x86emuOp2_shld_CL(emu);
5608 1.1 joerg break;
5609 1.1 joerg case 0xa8:
5610 1.1 joerg x86emuOp2_push_GS(emu);
5611 1.1 joerg break;
5612 1.1 joerg case 0xa9:
5613 1.1 joerg x86emuOp2_pop_GS(emu);
5614 1.1 joerg break;
5615 1.1 joerg case 0xab:
5616 1.1 joerg x86emuOp2_bts_R(emu);
5617 1.1 joerg break;
5618 1.1 joerg case 0xac:
5619 1.1 joerg x86emuOp2_shrd_IMM(emu);
5620 1.1 joerg break;
5621 1.1 joerg case 0xad:
5622 1.1 joerg x86emuOp2_shrd_CL(emu);
5623 1.1 joerg break;
5624 1.1 joerg case 0xaf:
5625 1.1 joerg x86emuOp2_imul_R_RM(emu);
5626 1.1 joerg break;
5627 1.1 joerg
5628 1.1 joerg /* 0xb0 TODO: cmpxchg */
5629 1.1 joerg /* 0xb1 TODO: cmpxchg */
5630 1.1 joerg case 0xb2:
5631 1.1 joerg x86emuOp2_lss_R_IMM(emu);
5632 1.1 joerg break;
5633 1.1 joerg case 0xb3:
5634 1.1 joerg x86emuOp2_btr_R(emu);
5635 1.1 joerg break;
5636 1.1 joerg case 0xb4:
5637 1.1 joerg x86emuOp2_lfs_R_IMM(emu);
5638 1.1 joerg break;
5639 1.1 joerg case 0xb5:
5640 1.1 joerg x86emuOp2_lgs_R_IMM(emu);
5641 1.1 joerg break;
5642 1.1 joerg case 0xb6:
5643 1.1 joerg x86emuOp2_movzx_byte_R_RM(emu);
5644 1.1 joerg break;
5645 1.1 joerg case 0xb7:
5646 1.1 joerg x86emuOp2_movzx_word_R_RM(emu);
5647 1.1 joerg break;
5648 1.1 joerg case 0xba:
5649 1.1 joerg x86emuOp2_btX_I(emu);
5650 1.1 joerg break;
5651 1.1 joerg case 0xbb:
5652 1.1 joerg x86emuOp2_btc_R(emu);
5653 1.1 joerg break;
5654 1.1 joerg case 0xbc:
5655 1.1 joerg x86emuOp2_bsf(emu);
5656 1.1 joerg break;
5657 1.1 joerg case 0xbd:
5658 1.1 joerg x86emuOp2_bsr(emu);
5659 1.1 joerg break;
5660 1.1 joerg case 0xbe:
5661 1.1 joerg x86emuOp2_movsx_byte_R_RM(emu);
5662 1.1 joerg break;
5663 1.1 joerg case 0xbf:
5664 1.1 joerg x86emuOp2_movsx_word_R_RM(emu);
5665 1.1 joerg break;
5666 1.1 joerg
5667 1.1 joerg /* 0xc0 TODO: xadd */
5668 1.1 joerg /* 0xc1 TODO: xadd */
5669 1.1 joerg /* 0xc8 TODO: bswap */
5670 1.1 joerg /* 0xc9 TODO: bswap */
5671 1.1 joerg /* 0xca TODO: bswap */
5672 1.1 joerg /* 0xcb TODO: bswap */
5673 1.1 joerg /* 0xcc TODO: bswap */
5674 1.1 joerg /* 0xcd TODO: bswap */
5675 1.1 joerg /* 0xce TODO: bswap */
5676 1.1 joerg /* 0xcf TODO: bswap */
5677 1.1 joerg
5678 1.1 joerg default:
5679 1.1 joerg X86EMU_halt_sys(emu);
5680 1.1 joerg break;
5681 1.1 joerg }
5682 1.1 joerg }
5683 1.1 joerg
5684 1.1 joerg /*
5685 1.1 joerg * Carry Chain Calculation
5686 1.1 joerg *
5687 1.1 joerg * This represents a somewhat expensive calculation which is
5688 1.1 joerg * apparently required to emulate the setting of the OF and AF flag.
5689 1.1 joerg * The latter is not so important, but the former is. The overflow
5690 1.1 joerg * flag is the XOR of the top two bits of the carry chain for an
5691 1.1 joerg * addition (similar for subtraction). Since we do not want to
5692 1.1 joerg * simulate the addition in a bitwise manner, we try to calculate the
5693 1.1 joerg * carry chain given the two operands and the result.
5694 1.1 joerg *
5695 1.1 joerg * So, given the following table, which represents the addition of two
5696 1.1 joerg * bits, we can derive a formula for the carry chain.
5697 1.1 joerg *
5698 1.1 joerg * a b cin r cout
5699 1.1 joerg * 0 0 0 0 0
5700 1.1 joerg * 0 0 1 1 0
5701 1.1 joerg * 0 1 0 1 0
5702 1.1 joerg * 0 1 1 0 1
5703 1.1 joerg * 1 0 0 1 0
5704 1.1 joerg * 1 0 1 0 1
5705 1.1 joerg * 1 1 0 0 1
5706 1.1 joerg * 1 1 1 1 1
5707 1.1 joerg *
5708 1.1 joerg * Construction of table for cout:
5709 1.1 joerg *
5710 1.1 joerg * ab
5711 1.1 joerg * r \ 00 01 11 10
5712 1.1 joerg * |------------------
5713 1.1 joerg * 0 | 0 1 1 1
5714 1.1 joerg * 1 | 0 0 1 0
5715 1.1 joerg *
5716 1.1 joerg * By inspection, one gets: cc = ab + r'(a + b)
5717 1.1 joerg *
5718 1.1 joerg * That represents alot of operations, but NO CHOICE....
5719 1.1 joerg *
5720 1.1 joerg * Borrow Chain Calculation.
5721 1.1 joerg *
5722 1.1 joerg * The following table represents the subtraction of two bits, from
5723 1.1 joerg * which we can derive a formula for the borrow chain.
5724 1.1 joerg *
5725 1.1 joerg * a b bin r bout
5726 1.1 joerg * 0 0 0 0 0
5727 1.1 joerg * 0 0 1 1 1
5728 1.1 joerg * 0 1 0 1 1
5729 1.1 joerg * 0 1 1 0 1
5730 1.1 joerg * 1 0 0 1 0
5731 1.1 joerg * 1 0 1 0 0
5732 1.1 joerg * 1 1 0 0 0
5733 1.1 joerg * 1 1 1 1 1
5734 1.1 joerg *
5735 1.1 joerg * Construction of table for cout:
5736 1.1 joerg *
5737 1.1 joerg * ab
5738 1.1 joerg * r \ 00 01 11 10
5739 1.1 joerg * |------------------
5740 1.1 joerg * 0 | 0 1 0 0
5741 1.1 joerg * 1 | 1 1 1 0
5742 1.1 joerg *
5743 1.1 joerg * By inspection, one gets: bc = a'b + r(a' + b)
5744 1.1 joerg *
5745 1.1 joerg ****************************************************************************/
5746 1.1 joerg
5747 1.1 joerg /*------------------------- Global Variables ------------------------------*/
5748 1.1 joerg
5749 1.1 joerg static uint32_t x86emu_parity_tab[8] =
5750 1.1 joerg {
5751 1.1 joerg 0x96696996,
5752 1.1 joerg 0x69969669,
5753 1.1 joerg 0x69969669,
5754 1.1 joerg 0x96696996,
5755 1.1 joerg 0x69969669,
5756 1.1 joerg 0x96696996,
5757 1.1 joerg 0x96696996,
5758 1.1 joerg 0x69969669,
5759 1.1 joerg };
5760 1.1 joerg #define PARITY(x) (((x86emu_parity_tab[(x) / 32] >> ((x) % 32)) & 1) == 0)
5761 1.1 joerg #define XOR2(x) (((x) ^ ((x)>>1)) & 0x1)
5762 1.1 joerg
5763 1.1 joerg /****************************************************************************
5764 1.1 joerg REMARKS:
5765 1.1 joerg Implements the AAA instruction and side effects.
5766 1.1 joerg ****************************************************************************/
5767 1.1 joerg static uint16_t
5768 1.1 joerg aaa_word(struct X86EMU *emu, uint16_t d)
5769 1.1 joerg {
5770 1.1 joerg uint16_t res;
5771 1.1 joerg if ((d & 0xf) > 0x9 || ACCESS_FLAG(F_AF)) {
5772 1.1 joerg d += 0x6;
5773 1.1 joerg d += 0x100;
5774 1.1 joerg SET_FLAG(F_AF);
5775 1.1 joerg SET_FLAG(F_CF);
5776 1.1 joerg } else {
5777 1.1 joerg CLEAR_FLAG(F_CF);
5778 1.1 joerg CLEAR_FLAG(F_AF);
5779 1.1 joerg }
5780 1.1 joerg res = (uint16_t) (d & 0xFF0F);
5781 1.1 joerg CLEAR_FLAG(F_SF);
5782 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
5783 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5784 1.1 joerg return res;
5785 1.1 joerg }
5786 1.1 joerg /****************************************************************************
5787 1.1 joerg REMARKS:
5788 1.1 joerg Implements the AAA instruction and side effects.
5789 1.1 joerg ****************************************************************************/
5790 1.1 joerg static uint16_t
5791 1.1 joerg aas_word(struct X86EMU *emu, uint16_t d)
5792 1.1 joerg {
5793 1.1 joerg uint16_t res;
5794 1.1 joerg if ((d & 0xf) > 0x9 || ACCESS_FLAG(F_AF)) {
5795 1.1 joerg d -= 0x6;
5796 1.1 joerg d -= 0x100;
5797 1.1 joerg SET_FLAG(F_AF);
5798 1.1 joerg SET_FLAG(F_CF);
5799 1.1 joerg } else {
5800 1.1 joerg CLEAR_FLAG(F_CF);
5801 1.1 joerg CLEAR_FLAG(F_AF);
5802 1.1 joerg }
5803 1.1 joerg res = (uint16_t) (d & 0xFF0F);
5804 1.1 joerg CLEAR_FLAG(F_SF);
5805 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
5806 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5807 1.1 joerg return res;
5808 1.1 joerg }
5809 1.1 joerg /****************************************************************************
5810 1.1 joerg REMARKS:
5811 1.1 joerg Implements the AAD instruction and side effects.
5812 1.1 joerg ****************************************************************************/
5813 1.1 joerg static uint16_t
5814 1.1 joerg aad_word(struct X86EMU *emu, uint16_t d)
5815 1.1 joerg {
5816 1.1 joerg uint16_t l;
5817 1.1 joerg uint8_t hb, lb;
5818 1.1 joerg
5819 1.1 joerg hb = (uint8_t) ((d >> 8) & 0xff);
5820 1.1 joerg lb = (uint8_t) ((d & 0xff));
5821 1.1 joerg l = (uint16_t) ((lb + 10 * hb) & 0xFF);
5822 1.1 joerg
5823 1.1 joerg CLEAR_FLAG(F_CF);
5824 1.1 joerg CLEAR_FLAG(F_AF);
5825 1.1 joerg CLEAR_FLAG(F_OF);
5826 1.1 joerg CONDITIONAL_SET_FLAG(l & 0x80, F_SF);
5827 1.1 joerg CONDITIONAL_SET_FLAG(l == 0, F_ZF);
5828 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(l & 0xff), F_PF);
5829 1.1 joerg return l;
5830 1.1 joerg }
5831 1.1 joerg /****************************************************************************
5832 1.1 joerg REMARKS:
5833 1.1 joerg Implements the AAM instruction and side effects.
5834 1.1 joerg ****************************************************************************/
5835 1.1 joerg static uint16_t
5836 1.1 joerg aam_word(struct X86EMU *emu, uint8_t d)
5837 1.1 joerg {
5838 1.1 joerg uint16_t h, l;
5839 1.1 joerg
5840 1.1 joerg h = (uint16_t) (d / 10);
5841 1.1 joerg l = (uint16_t) (d % 10);
5842 1.1 joerg l |= (uint16_t) (h << 8);
5843 1.1 joerg
5844 1.1 joerg CLEAR_FLAG(F_CF);
5845 1.1 joerg CLEAR_FLAG(F_AF);
5846 1.1 joerg CLEAR_FLAG(F_OF);
5847 1.1 joerg CONDITIONAL_SET_FLAG(l & 0x80, F_SF);
5848 1.1 joerg CONDITIONAL_SET_FLAG(l == 0, F_ZF);
5849 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(l & 0xff), F_PF);
5850 1.1 joerg return l;
5851 1.1 joerg }
5852 1.1 joerg /****************************************************************************
5853 1.1 joerg REMARKS:
5854 1.1 joerg Implements the ADC instruction and side effects.
5855 1.1 joerg ****************************************************************************/
5856 1.1 joerg static uint8_t
5857 1.1 joerg adc_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
5858 1.1 joerg {
5859 1.1 joerg uint32_t res; /* all operands in native machine order */
5860 1.1 joerg uint32_t cc;
5861 1.1 joerg
5862 1.1 joerg if (ACCESS_FLAG(F_CF))
5863 1.1 joerg res = 1 + d + s;
5864 1.1 joerg else
5865 1.1 joerg res = d + s;
5866 1.1 joerg
5867 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x100, F_CF);
5868 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
5869 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
5870 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5871 1.1 joerg
5872 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
5873 1.1 joerg cc = (s & d) | ((~res) & (s | d));
5874 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 6), F_OF);
5875 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
5876 1.1 joerg return (uint8_t) res;
5877 1.1 joerg }
5878 1.1 joerg /****************************************************************************
5879 1.1 joerg REMARKS:
5880 1.1 joerg Implements the ADC instruction and side effects.
5881 1.1 joerg ****************************************************************************/
5882 1.1 joerg static uint16_t
5883 1.1 joerg adc_word(struct X86EMU *emu, uint16_t d, uint16_t s)
5884 1.1 joerg {
5885 1.1 joerg uint32_t res; /* all operands in native machine order */
5886 1.1 joerg uint32_t cc;
5887 1.1 joerg
5888 1.1 joerg if (ACCESS_FLAG(F_CF))
5889 1.1 joerg res = 1 + d + s;
5890 1.1 joerg else
5891 1.1 joerg res = d + s;
5892 1.1 joerg
5893 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x10000, F_CF);
5894 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
5895 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
5896 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5897 1.1 joerg
5898 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
5899 1.1 joerg cc = (s & d) | ((~res) & (s | d));
5900 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 14), F_OF);
5901 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
5902 1.1 joerg return (uint16_t) res;
5903 1.1 joerg }
5904 1.1 joerg /****************************************************************************
5905 1.1 joerg REMARKS:
5906 1.1 joerg Implements the ADC instruction and side effects.
5907 1.1 joerg ****************************************************************************/
5908 1.1 joerg static uint32_t
5909 1.1 joerg adc_long(struct X86EMU *emu, uint32_t d, uint32_t s)
5910 1.1 joerg {
5911 1.1 joerg uint32_t lo; /* all operands in native machine order */
5912 1.1 joerg uint32_t hi;
5913 1.1 joerg uint32_t res;
5914 1.1 joerg uint32_t cc;
5915 1.1 joerg
5916 1.1 joerg if (ACCESS_FLAG(F_CF)) {
5917 1.1 joerg lo = 1 + (d & 0xFFFF) + (s & 0xFFFF);
5918 1.1 joerg res = 1 + d + s;
5919 1.1 joerg } else {
5920 1.1 joerg lo = (d & 0xFFFF) + (s & 0xFFFF);
5921 1.1 joerg res = d + s;
5922 1.1 joerg }
5923 1.1 joerg hi = (lo >> 16) + (d >> 16) + (s >> 16);
5924 1.1 joerg
5925 1.1 joerg CONDITIONAL_SET_FLAG(hi & 0x10000, F_CF);
5926 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
5927 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
5928 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5929 1.1 joerg
5930 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
5931 1.1 joerg cc = (s & d) | ((~res) & (s | d));
5932 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 30), F_OF);
5933 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
5934 1.1 joerg return res;
5935 1.1 joerg }
5936 1.1 joerg /****************************************************************************
5937 1.1 joerg REMARKS:
5938 1.1 joerg Implements the ADD instruction and side effects.
5939 1.1 joerg ****************************************************************************/
5940 1.1 joerg static uint8_t
5941 1.1 joerg add_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
5942 1.1 joerg {
5943 1.1 joerg uint32_t res; /* all operands in native machine order */
5944 1.1 joerg uint32_t cc;
5945 1.1 joerg
5946 1.1 joerg res = d + s;
5947 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x100, F_CF);
5948 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
5949 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
5950 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5951 1.1 joerg
5952 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
5953 1.1 joerg cc = (s & d) | ((~res) & (s | d));
5954 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 6), F_OF);
5955 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
5956 1.1 joerg return (uint8_t) res;
5957 1.1 joerg }
5958 1.1 joerg /****************************************************************************
5959 1.1 joerg REMARKS:
5960 1.1 joerg Implements the ADD instruction and side effects.
5961 1.1 joerg ****************************************************************************/
5962 1.1 joerg static uint16_t
5963 1.1 joerg add_word(struct X86EMU *emu, uint16_t d, uint16_t s)
5964 1.1 joerg {
5965 1.1 joerg uint32_t res; /* all operands in native machine order */
5966 1.1 joerg uint32_t cc;
5967 1.1 joerg
5968 1.1 joerg res = d + s;
5969 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x10000, F_CF);
5970 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
5971 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
5972 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
5973 1.1 joerg
5974 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
5975 1.1 joerg cc = (s & d) | ((~res) & (s | d));
5976 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 14), F_OF);
5977 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
5978 1.1 joerg return (uint16_t) res;
5979 1.1 joerg }
5980 1.1 joerg /****************************************************************************
5981 1.1 joerg REMARKS:
5982 1.1 joerg Implements the ADD instruction and side effects.
5983 1.1 joerg ****************************************************************************/
5984 1.1 joerg static uint32_t
5985 1.1 joerg add_long(struct X86EMU *emu, uint32_t d, uint32_t s)
5986 1.1 joerg {
5987 1.1 joerg uint32_t lo; /* all operands in native machine order */
5988 1.1 joerg uint32_t hi;
5989 1.1 joerg uint32_t res;
5990 1.1 joerg uint32_t cc;
5991 1.1 joerg
5992 1.1 joerg lo = (d & 0xFFFF) + (s & 0xFFFF);
5993 1.1 joerg res = d + s;
5994 1.1 joerg hi = (lo >> 16) + (d >> 16) + (s >> 16);
5995 1.1 joerg
5996 1.1 joerg CONDITIONAL_SET_FLAG(hi & 0x10000, F_CF);
5997 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
5998 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
5999 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6000 1.1 joerg
6001 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
6002 1.1 joerg cc = (s & d) | ((~res) & (s | d));
6003 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 30), F_OF);
6004 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
6005 1.1 joerg
6006 1.1 joerg return res;
6007 1.1 joerg }
6008 1.1 joerg /****************************************************************************
6009 1.1 joerg REMARKS:
6010 1.1 joerg Implements the AND instruction and side effects.
6011 1.1 joerg ****************************************************************************/
6012 1.1 joerg static uint8_t
6013 1.1 joerg and_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6014 1.1 joerg {
6015 1.1 joerg uint8_t res; /* all operands in native machine order */
6016 1.1 joerg
6017 1.1 joerg res = d & s;
6018 1.1 joerg
6019 1.1 joerg /* set the flags */
6020 1.1 joerg CLEAR_FLAG(F_OF);
6021 1.1 joerg CLEAR_FLAG(F_CF);
6022 1.1 joerg CLEAR_FLAG(F_AF);
6023 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6024 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6025 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res), F_PF);
6026 1.1 joerg return res;
6027 1.1 joerg }
6028 1.1 joerg /****************************************************************************
6029 1.1 joerg REMARKS:
6030 1.1 joerg Implements the AND instruction and side effects.
6031 1.1 joerg ****************************************************************************/
6032 1.1 joerg static uint16_t
6033 1.1 joerg and_word(struct X86EMU *emu, uint16_t d, uint16_t s)
6034 1.1 joerg {
6035 1.1 joerg uint16_t res; /* all operands in native machine order */
6036 1.1 joerg
6037 1.1 joerg res = d & s;
6038 1.1 joerg
6039 1.1 joerg /* set the flags */
6040 1.1 joerg CLEAR_FLAG(F_OF);
6041 1.1 joerg CLEAR_FLAG(F_CF);
6042 1.1 joerg CLEAR_FLAG(F_AF);
6043 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6044 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6045 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6046 1.1 joerg return res;
6047 1.1 joerg }
6048 1.1 joerg /****************************************************************************
6049 1.1 joerg REMARKS:
6050 1.1 joerg Implements the AND instruction and side effects.
6051 1.1 joerg ****************************************************************************/
6052 1.1 joerg static uint32_t
6053 1.1 joerg and_long(struct X86EMU *emu, uint32_t d, uint32_t s)
6054 1.1 joerg {
6055 1.1 joerg uint32_t res; /* all operands in native machine order */
6056 1.1 joerg
6057 1.1 joerg res = d & s;
6058 1.1 joerg
6059 1.1 joerg /* set the flags */
6060 1.1 joerg CLEAR_FLAG(F_OF);
6061 1.1 joerg CLEAR_FLAG(F_CF);
6062 1.1 joerg CLEAR_FLAG(F_AF);
6063 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6064 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6065 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6066 1.1 joerg return res;
6067 1.1 joerg }
6068 1.1 joerg /****************************************************************************
6069 1.1 joerg REMARKS:
6070 1.1 joerg Implements the CMP instruction and side effects.
6071 1.1 joerg ****************************************************************************/
6072 1.1 joerg static uint8_t
6073 1.1 joerg cmp_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6074 1.1 joerg {
6075 1.1 joerg uint32_t res; /* all operands in native machine order */
6076 1.1 joerg uint32_t bc;
6077 1.1 joerg
6078 1.1 joerg res = d - s;
6079 1.1 joerg CLEAR_FLAG(F_CF);
6080 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6081 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
6082 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6083 1.1 joerg
6084 1.1 joerg /* calculate the borrow chain. See note at top */
6085 1.1 joerg bc = (res & (~d | s)) | (~d & s);
6086 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80, F_CF);
6087 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 6), F_OF);
6088 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6089 1.1 joerg return d;
6090 1.1 joerg }
6091 1.1 joerg
6092 1.1 joerg static void
6093 1.1 joerg cmp_byte_no_return(struct X86EMU *emu, uint8_t d, uint8_t s)
6094 1.1 joerg {
6095 1.1 joerg cmp_byte(emu, d, s);
6096 1.1 joerg }
6097 1.1 joerg /****************************************************************************
6098 1.1 joerg REMARKS:
6099 1.1 joerg Implements the CMP instruction and side effects.
6100 1.1 joerg ****************************************************************************/
6101 1.1 joerg static uint16_t
6102 1.1 joerg cmp_word(struct X86EMU *emu, uint16_t d, uint16_t s)
6103 1.1 joerg {
6104 1.1 joerg uint32_t res; /* all operands in native machine order */
6105 1.1 joerg uint32_t bc;
6106 1.1 joerg
6107 1.1 joerg res = d - s;
6108 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6109 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
6110 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6111 1.1 joerg
6112 1.1 joerg /* calculate the borrow chain. See note at top */
6113 1.1 joerg bc = (res & (~d | s)) | (~d & s);
6114 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8000, F_CF);
6115 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 14), F_OF);
6116 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6117 1.1 joerg return d;
6118 1.1 joerg }
6119 1.1 joerg
6120 1.1 joerg static void
6121 1.1 joerg cmp_word_no_return(struct X86EMU *emu, uint16_t d, uint16_t s)
6122 1.1 joerg {
6123 1.1 joerg cmp_word(emu, d, s);
6124 1.1 joerg }
6125 1.1 joerg /****************************************************************************
6126 1.1 joerg REMARKS:
6127 1.1 joerg Implements the CMP instruction and side effects.
6128 1.1 joerg ****************************************************************************/
6129 1.1 joerg static uint32_t
6130 1.1 joerg cmp_long(struct X86EMU *emu, uint32_t d, uint32_t s)
6131 1.1 joerg {
6132 1.1 joerg uint32_t res; /* all operands in native machine order */
6133 1.1 joerg uint32_t bc;
6134 1.1 joerg
6135 1.1 joerg res = d - s;
6136 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6137 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
6138 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6139 1.1 joerg
6140 1.1 joerg /* calculate the borrow chain. See note at top */
6141 1.1 joerg bc = (res & (~d | s)) | (~d & s);
6142 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80000000, F_CF);
6143 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 30), F_OF);
6144 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6145 1.1 joerg return d;
6146 1.1 joerg }
6147 1.1 joerg
6148 1.1 joerg static void
6149 1.1 joerg cmp_long_no_return(struct X86EMU *emu, uint32_t d, uint32_t s)
6150 1.1 joerg {
6151 1.1 joerg cmp_long(emu, d, s);
6152 1.1 joerg }
6153 1.1 joerg /****************************************************************************
6154 1.1 joerg REMARKS:
6155 1.1 joerg Implements the DAA instruction and side effects.
6156 1.1 joerg ****************************************************************************/
6157 1.1 joerg static uint8_t
6158 1.1 joerg daa_byte(struct X86EMU *emu, uint8_t d)
6159 1.1 joerg {
6160 1.1 joerg uint32_t res = d;
6161 1.1 joerg if ((d & 0xf) > 9 || ACCESS_FLAG(F_AF)) {
6162 1.1 joerg res += 6;
6163 1.1 joerg SET_FLAG(F_AF);
6164 1.1 joerg }
6165 1.1 joerg if (res > 0x9F || ACCESS_FLAG(F_CF)) {
6166 1.1 joerg res += 0x60;
6167 1.1 joerg SET_FLAG(F_CF);
6168 1.1 joerg }
6169 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6170 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xFF) == 0, F_ZF);
6171 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6172 1.1 joerg return (uint8_t) res;
6173 1.1 joerg }
6174 1.1 joerg /****************************************************************************
6175 1.1 joerg REMARKS:
6176 1.1 joerg Implements the DAS instruction and side effects.
6177 1.1 joerg ****************************************************************************/
6178 1.1 joerg static uint8_t
6179 1.1 joerg das_byte(struct X86EMU *emu, uint8_t d)
6180 1.1 joerg {
6181 1.1 joerg if ((d & 0xf) > 9 || ACCESS_FLAG(F_AF)) {
6182 1.1 joerg d -= 6;
6183 1.1 joerg SET_FLAG(F_AF);
6184 1.1 joerg }
6185 1.1 joerg if (d > 0x9F || ACCESS_FLAG(F_CF)) {
6186 1.1 joerg d -= 0x60;
6187 1.1 joerg SET_FLAG(F_CF);
6188 1.1 joerg }
6189 1.1 joerg CONDITIONAL_SET_FLAG(d & 0x80, F_SF);
6190 1.1 joerg CONDITIONAL_SET_FLAG(d == 0, F_ZF);
6191 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(d & 0xff), F_PF);
6192 1.1 joerg return d;
6193 1.1 joerg }
6194 1.1 joerg /****************************************************************************
6195 1.1 joerg REMARKS:
6196 1.1 joerg Implements the DEC instruction and side effects.
6197 1.1 joerg ****************************************************************************/
6198 1.1 joerg static uint8_t
6199 1.1 joerg dec_byte(struct X86EMU *emu, uint8_t d)
6200 1.1 joerg {
6201 1.1 joerg uint32_t res; /* all operands in native machine order */
6202 1.1 joerg uint32_t bc;
6203 1.1 joerg
6204 1.1 joerg res = d - 1;
6205 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6206 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
6207 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6208 1.1 joerg
6209 1.1 joerg /* calculate the borrow chain. See note at top */
6210 1.1 joerg /* based on sub_byte, uses s==1. */
6211 1.1 joerg bc = (res & (~d | 1)) | (~d & 1);
6212 1.1 joerg /* carry flag unchanged */
6213 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 6), F_OF);
6214 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6215 1.1 joerg return (uint8_t) res;
6216 1.1 joerg }
6217 1.1 joerg /****************************************************************************
6218 1.1 joerg REMARKS:
6219 1.1 joerg Implements the DEC instruction and side effects.
6220 1.1 joerg ****************************************************************************/
6221 1.1 joerg static uint16_t
6222 1.1 joerg dec_word(struct X86EMU *emu, uint16_t d)
6223 1.1 joerg {
6224 1.1 joerg uint32_t res; /* all operands in native machine order */
6225 1.1 joerg uint32_t bc;
6226 1.1 joerg
6227 1.1 joerg res = d - 1;
6228 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6229 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
6230 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6231 1.1 joerg
6232 1.1 joerg /* calculate the borrow chain. See note at top */
6233 1.1 joerg /* based on the sub_byte routine, with s==1 */
6234 1.1 joerg bc = (res & (~d | 1)) | (~d & 1);
6235 1.1 joerg /* carry flag unchanged */
6236 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 14), F_OF);
6237 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6238 1.1 joerg return (uint16_t) res;
6239 1.1 joerg }
6240 1.1 joerg /****************************************************************************
6241 1.1 joerg REMARKS:
6242 1.1 joerg Implements the DEC instruction and side effects.
6243 1.1 joerg ****************************************************************************/
6244 1.1 joerg static uint32_t
6245 1.1 joerg dec_long(struct X86EMU *emu, uint32_t d)
6246 1.1 joerg {
6247 1.1 joerg uint32_t res; /* all operands in native machine order */
6248 1.1 joerg uint32_t bc;
6249 1.1 joerg
6250 1.1 joerg res = d - 1;
6251 1.1 joerg
6252 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6253 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
6254 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6255 1.1 joerg
6256 1.1 joerg /* calculate the borrow chain. See note at top */
6257 1.1 joerg bc = (res & (~d | 1)) | (~d & 1);
6258 1.1 joerg /* carry flag unchanged */
6259 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 30), F_OF);
6260 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6261 1.1 joerg return res;
6262 1.1 joerg }
6263 1.1 joerg /****************************************************************************
6264 1.1 joerg REMARKS:
6265 1.1 joerg Implements the INC instruction and side effects.
6266 1.1 joerg ****************************************************************************/
6267 1.1 joerg static uint8_t
6268 1.1 joerg inc_byte(struct X86EMU *emu, uint8_t d)
6269 1.1 joerg {
6270 1.1 joerg uint32_t res; /* all operands in native machine order */
6271 1.1 joerg uint32_t cc;
6272 1.1 joerg
6273 1.1 joerg res = d + 1;
6274 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
6275 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6276 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6277 1.1 joerg
6278 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
6279 1.1 joerg cc = ((1 & d) | (~res)) & (1 | d);
6280 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 6), F_OF);
6281 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
6282 1.1 joerg return (uint8_t) res;
6283 1.1 joerg }
6284 1.1 joerg /****************************************************************************
6285 1.1 joerg REMARKS:
6286 1.1 joerg Implements the INC instruction and side effects.
6287 1.1 joerg ****************************************************************************/
6288 1.1 joerg static uint16_t
6289 1.1 joerg inc_word(struct X86EMU *emu, uint16_t d)
6290 1.1 joerg {
6291 1.1 joerg uint32_t res; /* all operands in native machine order */
6292 1.1 joerg uint32_t cc;
6293 1.1 joerg
6294 1.1 joerg res = d + 1;
6295 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
6296 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6297 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6298 1.1 joerg
6299 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
6300 1.1 joerg cc = (1 & d) | ((~res) & (1 | d));
6301 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 14), F_OF);
6302 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
6303 1.1 joerg return (uint16_t) res;
6304 1.1 joerg }
6305 1.1 joerg /****************************************************************************
6306 1.1 joerg REMARKS:
6307 1.1 joerg Implements the INC instruction and side effects.
6308 1.1 joerg ****************************************************************************/
6309 1.1 joerg static uint32_t
6310 1.1 joerg inc_long(struct X86EMU *emu, uint32_t d)
6311 1.1 joerg {
6312 1.1 joerg uint32_t res; /* all operands in native machine order */
6313 1.1 joerg uint32_t cc;
6314 1.1 joerg
6315 1.1 joerg res = d + 1;
6316 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
6317 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6318 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6319 1.1 joerg
6320 1.1 joerg /* calculate the carry chain SEE NOTE AT TOP. */
6321 1.1 joerg cc = (1 & d) | ((~res) & (1 | d));
6322 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(cc >> 30), F_OF);
6323 1.1 joerg CONDITIONAL_SET_FLAG(cc & 0x8, F_AF);
6324 1.1 joerg return res;
6325 1.1 joerg }
6326 1.1 joerg /****************************************************************************
6327 1.1 joerg REMARKS:
6328 1.1 joerg Implements the OR instruction and side effects.
6329 1.1 joerg ****************************************************************************/
6330 1.1 joerg static uint8_t
6331 1.1 joerg or_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6332 1.1 joerg {
6333 1.1 joerg uint8_t res; /* all operands in native machine order */
6334 1.1 joerg
6335 1.1 joerg res = d | s;
6336 1.1 joerg CLEAR_FLAG(F_OF);
6337 1.1 joerg CLEAR_FLAG(F_CF);
6338 1.1 joerg CLEAR_FLAG(F_AF);
6339 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6340 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6341 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res), F_PF);
6342 1.1 joerg return res;
6343 1.1 joerg }
6344 1.1 joerg /****************************************************************************
6345 1.1 joerg REMARKS:
6346 1.1 joerg Implements the OR instruction and side effects.
6347 1.1 joerg ****************************************************************************/
6348 1.1 joerg static uint16_t
6349 1.1 joerg or_word(struct X86EMU *emu, uint16_t d, uint16_t s)
6350 1.1 joerg {
6351 1.1 joerg uint16_t res; /* all operands in native machine order */
6352 1.1 joerg
6353 1.1 joerg res = d | s;
6354 1.1 joerg /* set the carry flag to be bit 8 */
6355 1.1 joerg CLEAR_FLAG(F_OF);
6356 1.1 joerg CLEAR_FLAG(F_CF);
6357 1.1 joerg CLEAR_FLAG(F_AF);
6358 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6359 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6360 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6361 1.1 joerg return res;
6362 1.1 joerg }
6363 1.1 joerg /****************************************************************************
6364 1.1 joerg REMARKS:
6365 1.1 joerg Implements the OR instruction and side effects.
6366 1.1 joerg ****************************************************************************/
6367 1.1 joerg static uint32_t
6368 1.1 joerg or_long(struct X86EMU *emu, uint32_t d, uint32_t s)
6369 1.1 joerg {
6370 1.1 joerg uint32_t res; /* all operands in native machine order */
6371 1.1 joerg
6372 1.1 joerg res = d | s;
6373 1.1 joerg
6374 1.1 joerg /* set the carry flag to be bit 8 */
6375 1.1 joerg CLEAR_FLAG(F_OF);
6376 1.1 joerg CLEAR_FLAG(F_CF);
6377 1.1 joerg CLEAR_FLAG(F_AF);
6378 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6379 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
6380 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6381 1.1 joerg return res;
6382 1.1 joerg }
6383 1.1 joerg /****************************************************************************
6384 1.1 joerg REMARKS:
6385 1.1 joerg Implements the OR instruction and side effects.
6386 1.1 joerg ****************************************************************************/
6387 1.1 joerg static uint8_t
6388 1.1 joerg neg_byte(struct X86EMU *emu, uint8_t s)
6389 1.1 joerg {
6390 1.1 joerg uint8_t res;
6391 1.1 joerg uint8_t bc;
6392 1.1 joerg
6393 1.1 joerg CONDITIONAL_SET_FLAG(s != 0, F_CF);
6394 1.1 joerg res = (uint8_t) - s;
6395 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
6396 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6397 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res), F_PF);
6398 1.1 joerg /* calculate the borrow chain --- modified such that d=0.
6399 1.1 joerg * substitutiing d=0 into bc= res&(~d|s)|(~d&s); (the one used for
6400 1.1 joerg * sub) and simplifying, since ~d=0xff..., ~d|s == 0xffff..., and
6401 1.1 joerg * res&0xfff... == res. Similarly ~d&s == s. So the simplified
6402 1.1 joerg * result is: */
6403 1.1 joerg bc = res | s;
6404 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 6), F_OF);
6405 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6406 1.1 joerg return res;
6407 1.1 joerg }
6408 1.1 joerg /****************************************************************************
6409 1.1 joerg REMARKS:
6410 1.1 joerg Implements the OR instruction and side effects.
6411 1.1 joerg ****************************************************************************/
6412 1.1 joerg static uint16_t
6413 1.1 joerg neg_word(struct X86EMU *emu, uint16_t s)
6414 1.1 joerg {
6415 1.1 joerg uint16_t res;
6416 1.1 joerg uint16_t bc;
6417 1.1 joerg
6418 1.1 joerg CONDITIONAL_SET_FLAG(s != 0, F_CF);
6419 1.1 joerg res = (uint16_t) - s;
6420 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
6421 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6422 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6423 1.1 joerg
6424 1.1 joerg /* calculate the borrow chain --- modified such that d=0.
6425 1.1 joerg * substitutiing d=0 into bc= res&(~d|s)|(~d&s); (the one used for
6426 1.1 joerg * sub) and simplifying, since ~d=0xff..., ~d|s == 0xffff..., and
6427 1.1 joerg * res&0xfff... == res. Similarly ~d&s == s. So the simplified
6428 1.1 joerg * result is: */
6429 1.1 joerg bc = res | s;
6430 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 14), F_OF);
6431 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6432 1.1 joerg return res;
6433 1.1 joerg }
6434 1.1 joerg /****************************************************************************
6435 1.1 joerg REMARKS:
6436 1.1 joerg Implements the OR instruction and side effects.
6437 1.1 joerg ****************************************************************************/
6438 1.1 joerg static uint32_t
6439 1.1 joerg neg_long(struct X86EMU *emu, uint32_t s)
6440 1.1 joerg {
6441 1.1 joerg uint32_t res;
6442 1.1 joerg uint32_t bc;
6443 1.1 joerg
6444 1.1 joerg CONDITIONAL_SET_FLAG(s != 0, F_CF);
6445 1.1 joerg res = (uint32_t) - s;
6446 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
6447 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6448 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6449 1.1 joerg
6450 1.1 joerg /* calculate the borrow chain --- modified such that d=0.
6451 1.1 joerg * substitutiing d=0 into bc= res&(~d|s)|(~d&s); (the one used for
6452 1.1 joerg * sub) and simplifying, since ~d=0xff..., ~d|s == 0xffff..., and
6453 1.1 joerg * res&0xfff... == res. Similarly ~d&s == s. So the simplified
6454 1.1 joerg * result is: */
6455 1.1 joerg bc = res | s;
6456 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 30), F_OF);
6457 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
6458 1.1 joerg return res;
6459 1.1 joerg }
6460 1.1 joerg /****************************************************************************
6461 1.1 joerg REMARKS:
6462 1.1 joerg Implements the RCL instruction and side effects.
6463 1.1 joerg ****************************************************************************/
6464 1.1 joerg static uint8_t
6465 1.1 joerg rcl_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6466 1.1 joerg {
6467 1.1 joerg unsigned int res, cnt, mask, cf;
6468 1.1 joerg
6469 1.1 joerg /* s is the rotate distance. It varies from 0 - 8. */
6470 1.1 joerg /* have
6471 1.1 joerg *
6472 1.1 joerg * CF B_7 B_6 B_5 B_4 B_3 B_2 B_1 B_0
6473 1.1 joerg *
6474 1.1 joerg * want to rotate through the carry by "s" bits. We could loop, but
6475 1.1 joerg * that's inefficient. So the width is 9, and we split into three
6476 1.1 joerg * parts:
6477 1.1 joerg *
6478 1.1 joerg * The new carry flag (was B_n) the stuff in B_n-1 .. B_0 the stuff in
6479 1.1 joerg * B_7 .. B_n+1
6480 1.1 joerg *
6481 1.1 joerg * The new rotate is done mod 9, and given this, for a rotation of n bits
6482 1.1 joerg * (mod 9) the new carry flag is then located n bits from the MSB.
6483 1.1 joerg * The low part is then shifted up cnt bits, and the high part is or'd
6484 1.1 joerg * in. Using CAPS for new values, and lowercase for the original
6485 1.1 joerg * values, this can be expressed as:
6486 1.1 joerg *
6487 1.1 joerg * IF n > 0 1) CF <- b_(8-n) 2) B_(7) .. B_(n) <- b_(8-(n+1)) .. b_0
6488 1.1 joerg * 3) B_(n-1) <- cf 4) B_(n-2) .. B_0 <- b_7 .. b_(8-(n-1)) */
6489 1.1 joerg res = d;
6490 1.1 joerg if ((cnt = s % 9) != 0) {
6491 1.1 joerg /* extract the new CARRY FLAG. */
6492 1.1 joerg /* CF <- b_(8-n) */
6493 1.1 joerg cf = (d >> (8 - cnt)) & 0x1;
6494 1.1 joerg
6495 1.1 joerg /* get the low stuff which rotated into the range B_7 .. B_cnt */
6496 1.1 joerg /* B_(7) .. B_(n) <- b_(8-(n+1)) .. b_0 */
6497 1.1 joerg /* note that the right hand side done by the mask */
6498 1.1 joerg res = (d << cnt) & 0xff;
6499 1.1 joerg
6500 1.1 joerg /* now the high stuff which rotated around into the positions
6501 1.1 joerg * B_cnt-2 .. B_0 */
6502 1.1 joerg /* B_(n-2) .. B_0 <- b_7 .. b_(8-(n-1)) */
6503 1.1 joerg /* shift it downward, 7-(n-2) = 9-n positions. and mask off
6504 1.1 joerg * the result before or'ing in. */
6505 1.1 joerg mask = (1 << (cnt - 1)) - 1;
6506 1.1 joerg res |= (d >> (9 - cnt)) & mask;
6507 1.1 joerg
6508 1.1 joerg /* if the carry flag was set, or it in. */
6509 1.1 joerg if (ACCESS_FLAG(F_CF)) { /* carry flag is set */
6510 1.1 joerg /* B_(n-1) <- cf */
6511 1.1 joerg res |= 1 << (cnt - 1);
6512 1.1 joerg }
6513 1.1 joerg /* set the new carry flag, based on the variable "cf" */
6514 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6515 1.1 joerg /* OVERFLOW is set *IFF* cnt==1, then it is the xor of CF and
6516 1.1 joerg * the most significant bit. Blecck. */
6517 1.1 joerg /* parenthesized this expression since it appears to be
6518 1.1 joerg * causing OF to be misset */
6519 1.1 joerg CONDITIONAL_SET_FLAG(cnt == 1 && XOR2(cf + ((res >> 6) & 0x2)),
6520 1.1 joerg F_OF);
6521 1.1 joerg
6522 1.1 joerg }
6523 1.1 joerg return (uint8_t) res;
6524 1.1 joerg }
6525 1.1 joerg /****************************************************************************
6526 1.1 joerg REMARKS:
6527 1.1 joerg Implements the RCL instruction and side effects.
6528 1.1 joerg ****************************************************************************/
6529 1.1 joerg static uint16_t
6530 1.1 joerg rcl_word(struct X86EMU *emu, uint16_t d, uint8_t s)
6531 1.1 joerg {
6532 1.1 joerg unsigned int res, cnt, mask, cf;
6533 1.1 joerg
6534 1.1 joerg res = d;
6535 1.1 joerg if ((cnt = s % 17) != 0) {
6536 1.1 joerg cf = (d >> (16 - cnt)) & 0x1;
6537 1.1 joerg res = (d << cnt) & 0xffff;
6538 1.1 joerg mask = (1 << (cnt - 1)) - 1;
6539 1.1 joerg res |= (d >> (17 - cnt)) & mask;
6540 1.1 joerg if (ACCESS_FLAG(F_CF)) {
6541 1.1 joerg res |= 1 << (cnt - 1);
6542 1.1 joerg }
6543 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6544 1.1 joerg CONDITIONAL_SET_FLAG(cnt == 1 && XOR2(cf + ((res >> 14) & 0x2)),
6545 1.1 joerg F_OF);
6546 1.1 joerg }
6547 1.1 joerg return (uint16_t) res;
6548 1.1 joerg }
6549 1.1 joerg /****************************************************************************
6550 1.1 joerg REMARKS:
6551 1.1 joerg Implements the RCL instruction and side effects.
6552 1.1 joerg ****************************************************************************/
6553 1.1 joerg static uint32_t
6554 1.1 joerg rcl_long(struct X86EMU *emu, uint32_t d, uint8_t s)
6555 1.1 joerg {
6556 1.1 joerg uint32_t res, cnt, mask, cf;
6557 1.1 joerg
6558 1.1 joerg res = d;
6559 1.1 joerg if ((cnt = s % 33) != 0) {
6560 1.1 joerg cf = (d >> (32 - cnt)) & 0x1;
6561 1.1 joerg res = (d << cnt) & 0xffffffff;
6562 1.1 joerg mask = (1 << (cnt - 1)) - 1;
6563 1.1 joerg res |= (d >> (33 - cnt)) & mask;
6564 1.1 joerg if (ACCESS_FLAG(F_CF)) { /* carry flag is set */
6565 1.1 joerg res |= 1 << (cnt - 1);
6566 1.1 joerg }
6567 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6568 1.1 joerg CONDITIONAL_SET_FLAG(cnt == 1 && XOR2(cf + ((res >> 30) & 0x2)),
6569 1.1 joerg F_OF);
6570 1.1 joerg }
6571 1.1 joerg return res;
6572 1.1 joerg }
6573 1.1 joerg /****************************************************************************
6574 1.1 joerg REMARKS:
6575 1.1 joerg Implements the RCR instruction and side effects.
6576 1.1 joerg ****************************************************************************/
6577 1.1 joerg static uint8_t
6578 1.1 joerg rcr_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6579 1.1 joerg {
6580 1.1 joerg uint32_t res, cnt;
6581 1.1 joerg uint32_t mask, cf, ocf = 0;
6582 1.1 joerg
6583 1.1 joerg /* rotate right through carry */
6584 1.1 joerg /* s is the rotate distance. It varies from 0 - 8. d is the byte
6585 1.1 joerg * object rotated.
6586 1.1 joerg *
6587 1.1 joerg * have
6588 1.1 joerg *
6589 1.1 joerg * CF B_7 B_6 B_5 B_4 B_3 B_2 B_1 B_0
6590 1.1 joerg *
6591 1.1 joerg * The new rotate is done mod 9, and given this, for a rotation of n bits
6592 1.1 joerg * (mod 9) the new carry flag is then located n bits from the LSB.
6593 1.1 joerg * The low part is then shifted up cnt bits, and the high part is or'd
6594 1.1 joerg * in. Using CAPS for new values, and lowercase for the original
6595 1.1 joerg * values, this can be expressed as:
6596 1.1 joerg *
6597 1.1 joerg * IF n > 0 1) CF <- b_(n-1) 2) B_(8-(n+1)) .. B_(0) <- b_(7) .. b_(n)
6598 1.1 joerg * 3) B_(8-n) <- cf 4) B_(7) .. B_(8-(n-1)) <- b_(n-2) .. b_(0) */
6599 1.1 joerg res = d;
6600 1.1 joerg if ((cnt = s % 9) != 0) {
6601 1.1 joerg /* extract the new CARRY FLAG. */
6602 1.1 joerg /* CF <- b_(n-1) */
6603 1.1 joerg if (cnt == 1) {
6604 1.1 joerg cf = d & 0x1;
6605 1.1 joerg /* note hackery here. Access_flag(..) evaluates to
6606 1.1 joerg * either 0 if flag not set non-zero if flag is set.
6607 1.1 joerg * doing access_flag(..) != 0 casts that into either
6608 1.1 joerg * 0..1 in any representation of the flags register
6609 1.1 joerg * (i.e. packed bit array or unpacked.) */
6610 1.1 joerg ocf = ACCESS_FLAG(F_CF) != 0;
6611 1.1 joerg } else
6612 1.1 joerg cf = (d >> (cnt - 1)) & 0x1;
6613 1.1 joerg
6614 1.1 joerg /* B_(8-(n+1)) .. B_(0) <- b_(7) .. b_n */
6615 1.1 joerg /* note that the right hand side done by the mask This is
6616 1.1 joerg * effectively done by shifting the object to the right. The
6617 1.1 joerg * result must be masked, in case the object came in and was
6618 1.1 joerg * treated as a negative number. Needed??? */
6619 1.1 joerg
6620 1.1 joerg mask = (1 << (8 - cnt)) - 1;
6621 1.1 joerg res = (d >> cnt) & mask;
6622 1.1 joerg
6623 1.1 joerg /* now the high stuff which rotated around into the positions
6624 1.1 joerg * B_cnt-2 .. B_0 */
6625 1.1 joerg /* B_(7) .. B_(8-(n-1)) <- b_(n-2) .. b_(0) */
6626 1.1 joerg /* shift it downward, 7-(n-2) = 9-n positions. and mask off
6627 1.1 joerg * the result before or'ing in. */
6628 1.1 joerg res |= (d << (9 - cnt));
6629 1.1 joerg
6630 1.1 joerg /* if the carry flag was set, or it in. */
6631 1.1 joerg if (ACCESS_FLAG(F_CF)) { /* carry flag is set */
6632 1.1 joerg /* B_(8-n) <- cf */
6633 1.1 joerg res |= 1 << (8 - cnt);
6634 1.1 joerg }
6635 1.1 joerg /* set the new carry flag, based on the variable "cf" */
6636 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6637 1.1 joerg /* OVERFLOW is set *IFF* cnt==1, then it is the xor of CF and
6638 1.1 joerg * the most significant bit. Blecck. */
6639 1.1 joerg /* parenthesized... */
6640 1.1 joerg if (cnt == 1) {
6641 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(ocf + ((d >> 6) & 0x2)),
6642 1.1 joerg F_OF);
6643 1.1 joerg }
6644 1.1 joerg }
6645 1.1 joerg return (uint8_t) res;
6646 1.1 joerg }
6647 1.1 joerg /****************************************************************************
6648 1.1 joerg REMARKS:
6649 1.1 joerg Implements the RCR instruction and side effects.
6650 1.1 joerg ****************************************************************************/
6651 1.1 joerg static uint16_t
6652 1.1 joerg rcr_word(struct X86EMU *emu, uint16_t d, uint8_t s)
6653 1.1 joerg {
6654 1.1 joerg uint32_t res, cnt;
6655 1.1 joerg uint32_t mask, cf, ocf = 0;
6656 1.1 joerg
6657 1.1 joerg /* rotate right through carry */
6658 1.1 joerg res = d;
6659 1.1 joerg if ((cnt = s % 17) != 0) {
6660 1.1 joerg if (cnt == 1) {
6661 1.1 joerg cf = d & 0x1;
6662 1.1 joerg ocf = ACCESS_FLAG(F_CF) != 0;
6663 1.1 joerg } else
6664 1.1 joerg cf = (d >> (cnt - 1)) & 0x1;
6665 1.1 joerg mask = (1 << (16 - cnt)) - 1;
6666 1.1 joerg res = (d >> cnt) & mask;
6667 1.1 joerg res |= (d << (17 - cnt));
6668 1.1 joerg if (ACCESS_FLAG(F_CF)) {
6669 1.1 joerg res |= 1 << (16 - cnt);
6670 1.1 joerg }
6671 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6672 1.1 joerg if (cnt == 1) {
6673 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(ocf + ((d >> 14) & 0x2)),
6674 1.1 joerg F_OF);
6675 1.1 joerg }
6676 1.1 joerg }
6677 1.1 joerg return (uint16_t) res;
6678 1.1 joerg }
6679 1.1 joerg /****************************************************************************
6680 1.1 joerg REMARKS:
6681 1.1 joerg Implements the RCR instruction and side effects.
6682 1.1 joerg ****************************************************************************/
6683 1.1 joerg static uint32_t
6684 1.1 joerg rcr_long(struct X86EMU *emu, uint32_t d, uint8_t s)
6685 1.1 joerg {
6686 1.1 joerg uint32_t res, cnt;
6687 1.1 joerg uint32_t mask, cf, ocf = 0;
6688 1.1 joerg
6689 1.1 joerg /* rotate right through carry */
6690 1.1 joerg res = d;
6691 1.1 joerg if ((cnt = s % 33) != 0) {
6692 1.1 joerg if (cnt == 1) {
6693 1.1 joerg cf = d & 0x1;
6694 1.1 joerg ocf = ACCESS_FLAG(F_CF) != 0;
6695 1.1 joerg } else
6696 1.1 joerg cf = (d >> (cnt - 1)) & 0x1;
6697 1.1 joerg mask = (1 << (32 - cnt)) - 1;
6698 1.1 joerg res = (d >> cnt) & mask;
6699 1.1 joerg if (cnt != 1)
6700 1.1 joerg res |= (d << (33 - cnt));
6701 1.1 joerg if (ACCESS_FLAG(F_CF)) { /* carry flag is set */
6702 1.1 joerg res |= 1 << (32 - cnt);
6703 1.1 joerg }
6704 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6705 1.1 joerg if (cnt == 1) {
6706 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(ocf + ((d >> 30) & 0x2)),
6707 1.1 joerg F_OF);
6708 1.1 joerg }
6709 1.1 joerg }
6710 1.1 joerg return res;
6711 1.1 joerg }
6712 1.1 joerg /****************************************************************************
6713 1.1 joerg REMARKS:
6714 1.1 joerg Implements the ROL instruction and side effects.
6715 1.1 joerg ****************************************************************************/
6716 1.1 joerg static uint8_t
6717 1.1 joerg rol_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6718 1.1 joerg {
6719 1.1 joerg unsigned int res, cnt, mask;
6720 1.1 joerg
6721 1.1 joerg /* rotate left */
6722 1.1 joerg /* s is the rotate distance. It varies from 0 - 8. d is the byte
6723 1.1 joerg * object rotated.
6724 1.1 joerg *
6725 1.1 joerg * have
6726 1.1 joerg *
6727 1.1 joerg * CF B_7 ... B_0
6728 1.1 joerg *
6729 1.1 joerg * The new rotate is done mod 8. Much simpler than the "rcl" or "rcr"
6730 1.1 joerg * operations.
6731 1.1 joerg *
6732 1.1 joerg * IF n > 0 1) B_(7) .. B_(n) <- b_(8-(n+1)) .. b_(0) 2) B_(n-1) ..
6733 1.1 joerg * B_(0) <- b_(7) .. b_(8-n) */
6734 1.1 joerg res = d;
6735 1.1 joerg if ((cnt = s % 8) != 0) {
6736 1.1 joerg /* B_(7) .. B_(n) <- b_(8-(n+1)) .. b_(0) */
6737 1.1 joerg res = (d << cnt);
6738 1.1 joerg
6739 1.1 joerg /* B_(n-1) .. B_(0) <- b_(7) .. b_(8-n) */
6740 1.1 joerg mask = (1 << cnt) - 1;
6741 1.1 joerg res |= (d >> (8 - cnt)) & mask;
6742 1.1 joerg
6743 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6744 1.1 joerg * of the result!!! */
6745 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6746 1.1 joerg /* OVERFLOW is set *IFF* s==1, then it is the xor of CF and
6747 1.1 joerg * the most significant bit. Blecck. */
6748 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 &&
6749 1.1 joerg XOR2((res & 0x1) + ((res >> 6) & 0x2)),
6750 1.1 joerg F_OF);
6751 1.1 joerg } if (s != 0) {
6752 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6753 1.1 joerg * of the result!!! */
6754 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6755 1.1 joerg }
6756 1.1 joerg return (uint8_t) res;
6757 1.1 joerg }
6758 1.1 joerg /****************************************************************************
6759 1.1 joerg REMARKS:
6760 1.1 joerg Implements the ROL instruction and side effects.
6761 1.1 joerg ****************************************************************************/
6762 1.1 joerg static uint16_t
6763 1.1 joerg rol_word(struct X86EMU *emu, uint16_t d, uint8_t s)
6764 1.1 joerg {
6765 1.1 joerg unsigned int res, cnt, mask;
6766 1.1 joerg
6767 1.1 joerg res = d;
6768 1.1 joerg if ((cnt = s % 16) != 0) {
6769 1.1 joerg res = (d << cnt);
6770 1.1 joerg mask = (1 << cnt) - 1;
6771 1.1 joerg res |= (d >> (16 - cnt)) & mask;
6772 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6773 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 &&
6774 1.1 joerg XOR2((res & 0x1) + ((res >> 14) & 0x2)),
6775 1.1 joerg F_OF);
6776 1.1 joerg } if (s != 0) {
6777 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6778 1.1 joerg * of the result!!! */
6779 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6780 1.1 joerg }
6781 1.1 joerg return (uint16_t) res;
6782 1.1 joerg }
6783 1.1 joerg /****************************************************************************
6784 1.1 joerg REMARKS:
6785 1.1 joerg Implements the ROL instruction and side effects.
6786 1.1 joerg ****************************************************************************/
6787 1.1 joerg static uint32_t
6788 1.1 joerg rol_long(struct X86EMU *emu, uint32_t d, uint8_t s)
6789 1.1 joerg {
6790 1.1 joerg uint32_t res, cnt, mask;
6791 1.1 joerg
6792 1.1 joerg res = d;
6793 1.1 joerg if ((cnt = s % 32) != 0) {
6794 1.1 joerg res = (d << cnt);
6795 1.1 joerg mask = (1 << cnt) - 1;
6796 1.1 joerg res |= (d >> (32 - cnt)) & mask;
6797 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6798 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 &&
6799 1.1 joerg XOR2((res & 0x1) + ((res >> 30) & 0x2)),
6800 1.1 joerg F_OF);
6801 1.1 joerg } if (s != 0) {
6802 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6803 1.1 joerg * of the result!!! */
6804 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x1, F_CF);
6805 1.1 joerg }
6806 1.1 joerg return res;
6807 1.1 joerg }
6808 1.1 joerg /****************************************************************************
6809 1.1 joerg REMARKS:
6810 1.1 joerg Implements the ROR instruction and side effects.
6811 1.1 joerg ****************************************************************************/
6812 1.1 joerg static uint8_t
6813 1.1 joerg ror_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6814 1.1 joerg {
6815 1.1 joerg unsigned int res, cnt, mask;
6816 1.1 joerg
6817 1.1 joerg /* rotate right */
6818 1.1 joerg /* s is the rotate distance. It varies from 0 - 8. d is the byte
6819 1.1 joerg * object rotated.
6820 1.1 joerg *
6821 1.1 joerg * have
6822 1.1 joerg *
6823 1.1 joerg * B_7 ... B_0
6824 1.1 joerg *
6825 1.1 joerg * The rotate is done mod 8.
6826 1.1 joerg *
6827 1.1 joerg * IF n > 0 1) B_(8-(n+1)) .. B_(0) <- b_(7) .. b_(n) 2) B_(7) ..
6828 1.1 joerg * B_(8-n) <- b_(n-1) .. b_(0) */
6829 1.1 joerg res = d;
6830 1.1 joerg if ((cnt = s % 8) != 0) { /* not a typo, do nada if cnt==0 */
6831 1.1 joerg /* B_(7) .. B_(8-n) <- b_(n-1) .. b_(0) */
6832 1.1 joerg res = (d << (8 - cnt));
6833 1.1 joerg
6834 1.1 joerg /* B_(8-(n+1)) .. B_(0) <- b_(7) .. b_(n) */
6835 1.1 joerg mask = (1 << (8 - cnt)) - 1;
6836 1.1 joerg res |= (d >> (cnt)) & mask;
6837 1.1 joerg
6838 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6839 1.1 joerg * of the result!!! */
6840 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_CF);
6841 1.1 joerg /* OVERFLOW is set *IFF* s==1, then it is the xor of the two
6842 1.1 joerg * most significant bits. Blecck. */
6843 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 && XOR2(res >> 6), F_OF);
6844 1.1 joerg } else if (s != 0) {
6845 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6846 1.1 joerg * of the result!!! */
6847 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_CF);
6848 1.1 joerg }
6849 1.1 joerg return (uint8_t) res;
6850 1.1 joerg }
6851 1.1 joerg /****************************************************************************
6852 1.1 joerg REMARKS:
6853 1.1 joerg Implements the ROR instruction and side effects.
6854 1.1 joerg ****************************************************************************/
6855 1.1 joerg static uint16_t
6856 1.1 joerg ror_word(struct X86EMU *emu, uint16_t d, uint8_t s)
6857 1.1 joerg {
6858 1.1 joerg unsigned int res, cnt, mask;
6859 1.1 joerg
6860 1.1 joerg res = d;
6861 1.1 joerg if ((cnt = s % 16) != 0) {
6862 1.1 joerg res = (d << (16 - cnt));
6863 1.1 joerg mask = (1 << (16 - cnt)) - 1;
6864 1.1 joerg res |= (d >> (cnt)) & mask;
6865 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_CF);
6866 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 && XOR2(res >> 14), F_OF);
6867 1.1 joerg } else if (s != 0) {
6868 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6869 1.1 joerg * of the result!!! */
6870 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_CF);
6871 1.1 joerg }
6872 1.1 joerg return (uint16_t) res;
6873 1.1 joerg }
6874 1.1 joerg /****************************************************************************
6875 1.1 joerg REMARKS:
6876 1.1 joerg Implements the ROR instruction and side effects.
6877 1.1 joerg ****************************************************************************/
6878 1.1 joerg static uint32_t
6879 1.1 joerg ror_long(struct X86EMU *emu, uint32_t d, uint8_t s)
6880 1.1 joerg {
6881 1.1 joerg uint32_t res, cnt, mask;
6882 1.1 joerg
6883 1.1 joerg res = d;
6884 1.1 joerg if ((cnt = s % 32) != 0) {
6885 1.1 joerg res = (d << (32 - cnt));
6886 1.1 joerg mask = (1 << (32 - cnt)) - 1;
6887 1.1 joerg res |= (d >> (cnt)) & mask;
6888 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_CF);
6889 1.1 joerg CONDITIONAL_SET_FLAG(s == 1 && XOR2(res >> 30), F_OF);
6890 1.1 joerg } else if (s != 0) {
6891 1.1 joerg /* set the new carry flag, Note that it is the low order bit
6892 1.1 joerg * of the result!!! */
6893 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_CF);
6894 1.1 joerg }
6895 1.1 joerg return res;
6896 1.1 joerg }
6897 1.1 joerg /****************************************************************************
6898 1.1 joerg REMARKS:
6899 1.1 joerg Implements the SHL instruction and side effects.
6900 1.1 joerg ****************************************************************************/
6901 1.1 joerg static uint8_t
6902 1.1 joerg shl_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
6903 1.1 joerg {
6904 1.1 joerg unsigned int cnt, res, cf;
6905 1.1 joerg
6906 1.1 joerg if (s < 8) {
6907 1.1 joerg cnt = s % 8;
6908 1.1 joerg
6909 1.1 joerg /* last bit shifted out goes into carry flag */
6910 1.1 joerg if (cnt > 0) {
6911 1.1 joerg res = d << cnt;
6912 1.1 joerg cf = d & (1 << (8 - cnt));
6913 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6914 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
6915 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
6916 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6917 1.1 joerg } else {
6918 1.1 joerg res = (uint8_t) d;
6919 1.1 joerg }
6920 1.1 joerg
6921 1.1 joerg if (cnt == 1) {
6922 1.1 joerg /* Needs simplification. */
6923 1.1 joerg CONDITIONAL_SET_FLAG(
6924 1.1 joerg (((res & 0x80) == 0x80) ^
6925 1.1 joerg (ACCESS_FLAG(F_CF) != 0)),
6926 1.1 joerg /* was (emu->x86.R_FLG&F_CF)==F_CF)), */
6927 1.1 joerg F_OF);
6928 1.1 joerg } else {
6929 1.1 joerg CLEAR_FLAG(F_OF);
6930 1.1 joerg }
6931 1.1 joerg } else {
6932 1.1 joerg res = 0;
6933 1.1 joerg CONDITIONAL_SET_FLAG((d << (s - 1)) & 0x80, F_CF);
6934 1.1 joerg CLEAR_FLAG(F_OF);
6935 1.1 joerg CLEAR_FLAG(F_SF);
6936 1.1 joerg SET_FLAG(F_PF);
6937 1.1 joerg SET_FLAG(F_ZF);
6938 1.1 joerg }
6939 1.1 joerg return (uint8_t) res;
6940 1.1 joerg }
6941 1.1 joerg /****************************************************************************
6942 1.1 joerg REMARKS:
6943 1.1 joerg Implements the SHL instruction and side effects.
6944 1.1 joerg ****************************************************************************/
6945 1.1 joerg static uint16_t
6946 1.1 joerg shl_word(struct X86EMU *emu, uint16_t d, uint8_t s)
6947 1.1 joerg {
6948 1.1 joerg unsigned int cnt, res, cf;
6949 1.1 joerg
6950 1.1 joerg if (s < 16) {
6951 1.1 joerg cnt = s % 16;
6952 1.1 joerg if (cnt > 0) {
6953 1.1 joerg res = d << cnt;
6954 1.1 joerg cf = d & (1 << (16 - cnt));
6955 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6956 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
6957 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
6958 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6959 1.1 joerg } else {
6960 1.1 joerg res = (uint16_t) d;
6961 1.1 joerg }
6962 1.1 joerg
6963 1.1 joerg if (cnt == 1) {
6964 1.1 joerg CONDITIONAL_SET_FLAG(
6965 1.1 joerg (((res & 0x8000) == 0x8000) ^
6966 1.1 joerg (ACCESS_FLAG(F_CF) != 0)),
6967 1.1 joerg F_OF);
6968 1.1 joerg } else {
6969 1.1 joerg CLEAR_FLAG(F_OF);
6970 1.1 joerg }
6971 1.1 joerg } else {
6972 1.1 joerg res = 0;
6973 1.1 joerg CONDITIONAL_SET_FLAG((d << (s - 1)) & 0x8000, F_CF);
6974 1.1 joerg CLEAR_FLAG(F_OF);
6975 1.1 joerg CLEAR_FLAG(F_SF);
6976 1.1 joerg SET_FLAG(F_PF);
6977 1.1 joerg SET_FLAG(F_ZF);
6978 1.1 joerg }
6979 1.1 joerg return (uint16_t) res;
6980 1.1 joerg }
6981 1.1 joerg /****************************************************************************
6982 1.1 joerg REMARKS:
6983 1.1 joerg Implements the SHL instruction and side effects.
6984 1.1 joerg ****************************************************************************/
6985 1.1 joerg static uint32_t
6986 1.1 joerg shl_long(struct X86EMU *emu, uint32_t d, uint8_t s)
6987 1.1 joerg {
6988 1.1 joerg unsigned int cnt, res, cf;
6989 1.1 joerg
6990 1.1 joerg if (s < 32) {
6991 1.1 joerg cnt = s % 32;
6992 1.1 joerg if (cnt > 0) {
6993 1.1 joerg res = d << cnt;
6994 1.1 joerg cf = d & (1 << (32 - cnt));
6995 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
6996 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
6997 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
6998 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
6999 1.1 joerg } else {
7000 1.1 joerg res = d;
7001 1.1 joerg }
7002 1.1 joerg if (cnt == 1) {
7003 1.1 joerg CONDITIONAL_SET_FLAG((((res & 0x80000000) == 0x80000000) ^
7004 1.1 joerg (ACCESS_FLAG(F_CF) != 0)), F_OF);
7005 1.1 joerg } else {
7006 1.1 joerg CLEAR_FLAG(F_OF);
7007 1.1 joerg }
7008 1.1 joerg } else {
7009 1.1 joerg res = 0;
7010 1.1 joerg CONDITIONAL_SET_FLAG((d << (s - 1)) & 0x80000000, F_CF);
7011 1.1 joerg CLEAR_FLAG(F_OF);
7012 1.1 joerg CLEAR_FLAG(F_SF);
7013 1.1 joerg SET_FLAG(F_PF);
7014 1.1 joerg SET_FLAG(F_ZF);
7015 1.1 joerg }
7016 1.1 joerg return res;
7017 1.1 joerg }
7018 1.1 joerg /****************************************************************************
7019 1.1 joerg REMARKS:
7020 1.1 joerg Implements the SHR instruction and side effects.
7021 1.1 joerg ****************************************************************************/
7022 1.1 joerg static uint8_t
7023 1.1 joerg shr_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7024 1.1 joerg {
7025 1.1 joerg unsigned int cnt, res, cf;
7026 1.1 joerg
7027 1.1 joerg if (s < 8) {
7028 1.1 joerg cnt = s % 8;
7029 1.1 joerg if (cnt > 0) {
7030 1.1 joerg cf = d & (1 << (cnt - 1));
7031 1.1 joerg res = d >> cnt;
7032 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7033 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
7034 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7035 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7036 1.1 joerg } else {
7037 1.1 joerg res = (uint8_t) d;
7038 1.1 joerg }
7039 1.1 joerg
7040 1.1 joerg if (cnt == 1) {
7041 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(res >> 6), F_OF);
7042 1.1 joerg } else {
7043 1.1 joerg CLEAR_FLAG(F_OF);
7044 1.1 joerg }
7045 1.1 joerg } else {
7046 1.1 joerg res = 0;
7047 1.1 joerg CONDITIONAL_SET_FLAG((d >> (s - 1)) & 0x1, F_CF);
7048 1.1 joerg CLEAR_FLAG(F_OF);
7049 1.1 joerg CLEAR_FLAG(F_SF);
7050 1.1 joerg SET_FLAG(F_PF);
7051 1.1 joerg SET_FLAG(F_ZF);
7052 1.1 joerg }
7053 1.1 joerg return (uint8_t) res;
7054 1.1 joerg }
7055 1.1 joerg /****************************************************************************
7056 1.1 joerg REMARKS:
7057 1.1 joerg Implements the SHR instruction and side effects.
7058 1.1 joerg ****************************************************************************/
7059 1.1 joerg static uint16_t
7060 1.1 joerg shr_word(struct X86EMU *emu, uint16_t d, uint8_t s)
7061 1.1 joerg {
7062 1.1 joerg unsigned int cnt, res, cf;
7063 1.1 joerg
7064 1.1 joerg if (s < 16) {
7065 1.1 joerg cnt = s % 16;
7066 1.1 joerg if (cnt > 0) {
7067 1.1 joerg cf = d & (1 << (cnt - 1));
7068 1.1 joerg res = d >> cnt;
7069 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7070 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7071 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7072 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7073 1.1 joerg } else {
7074 1.1 joerg res = d;
7075 1.1 joerg }
7076 1.1 joerg
7077 1.1 joerg if (cnt == 1) {
7078 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(res >> 14), F_OF);
7079 1.1 joerg } else {
7080 1.1 joerg CLEAR_FLAG(F_OF);
7081 1.1 joerg }
7082 1.1 joerg } else {
7083 1.1 joerg res = 0;
7084 1.1 joerg CLEAR_FLAG(F_CF);
7085 1.1 joerg CLEAR_FLAG(F_OF);
7086 1.1 joerg SET_FLAG(F_ZF);
7087 1.1 joerg CLEAR_FLAG(F_SF);
7088 1.1 joerg CLEAR_FLAG(F_PF);
7089 1.1 joerg }
7090 1.1 joerg return (uint16_t) res;
7091 1.1 joerg }
7092 1.1 joerg /****************************************************************************
7093 1.1 joerg REMARKS:
7094 1.1 joerg Implements the SHR instruction and side effects.
7095 1.1 joerg ****************************************************************************/
7096 1.1 joerg static uint32_t
7097 1.1 joerg shr_long(struct X86EMU *emu, uint32_t d, uint8_t s)
7098 1.1 joerg {
7099 1.1 joerg unsigned int cnt, res, cf;
7100 1.1 joerg
7101 1.1 joerg if (s < 32) {
7102 1.1 joerg cnt = s % 32;
7103 1.1 joerg if (cnt > 0) {
7104 1.1 joerg cf = d & (1 << (cnt - 1));
7105 1.1 joerg res = d >> cnt;
7106 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7107 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7108 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7109 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7110 1.1 joerg } else {
7111 1.1 joerg res = d;
7112 1.1 joerg }
7113 1.1 joerg if (cnt == 1) {
7114 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(res >> 30), F_OF);
7115 1.1 joerg } else {
7116 1.1 joerg CLEAR_FLAG(F_OF);
7117 1.1 joerg }
7118 1.1 joerg } else {
7119 1.1 joerg res = 0;
7120 1.1 joerg CLEAR_FLAG(F_CF);
7121 1.1 joerg CLEAR_FLAG(F_OF);
7122 1.1 joerg SET_FLAG(F_ZF);
7123 1.1 joerg CLEAR_FLAG(F_SF);
7124 1.1 joerg CLEAR_FLAG(F_PF);
7125 1.1 joerg }
7126 1.1 joerg return res;
7127 1.1 joerg }
7128 1.1 joerg /****************************************************************************
7129 1.1 joerg REMARKS:
7130 1.1 joerg Implements the SAR instruction and side effects.
7131 1.1 joerg ****************************************************************************/
7132 1.1 joerg static uint8_t
7133 1.1 joerg sar_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7134 1.1 joerg {
7135 1.1 joerg unsigned int cnt, res, cf, mask, sf;
7136 1.1 joerg
7137 1.1 joerg res = d;
7138 1.1 joerg sf = d & 0x80;
7139 1.1 joerg cnt = s % 8;
7140 1.1 joerg if (cnt > 0 && cnt < 8) {
7141 1.1 joerg mask = (1 << (8 - cnt)) - 1;
7142 1.1 joerg cf = d & (1 << (cnt - 1));
7143 1.1 joerg res = (d >> cnt) & mask;
7144 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7145 1.1 joerg if (sf) {
7146 1.1 joerg res |= ~mask;
7147 1.1 joerg }
7148 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
7149 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7150 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7151 1.1 joerg } else if (cnt >= 8) {
7152 1.1 joerg if (sf) {
7153 1.1 joerg res = 0xff;
7154 1.1 joerg SET_FLAG(F_CF);
7155 1.1 joerg CLEAR_FLAG(F_ZF);
7156 1.1 joerg SET_FLAG(F_SF);
7157 1.1 joerg SET_FLAG(F_PF);
7158 1.1 joerg } else {
7159 1.1 joerg res = 0;
7160 1.1 joerg CLEAR_FLAG(F_CF);
7161 1.1 joerg SET_FLAG(F_ZF);
7162 1.1 joerg CLEAR_FLAG(F_SF);
7163 1.1 joerg CLEAR_FLAG(F_PF);
7164 1.1 joerg }
7165 1.1 joerg }
7166 1.1 joerg return (uint8_t) res;
7167 1.1 joerg }
7168 1.1 joerg /****************************************************************************
7169 1.1 joerg REMARKS:
7170 1.1 joerg Implements the SAR instruction and side effects.
7171 1.1 joerg ****************************************************************************/
7172 1.1 joerg static uint16_t
7173 1.1 joerg sar_word(struct X86EMU *emu, uint16_t d, uint8_t s)
7174 1.1 joerg {
7175 1.1 joerg unsigned int cnt, res, cf, mask, sf;
7176 1.1 joerg
7177 1.1 joerg sf = d & 0x8000;
7178 1.1 joerg cnt = s % 16;
7179 1.1 joerg res = d;
7180 1.1 joerg if (cnt > 0 && cnt < 16) {
7181 1.1 joerg mask = (1 << (16 - cnt)) - 1;
7182 1.1 joerg cf = d & (1 << (cnt - 1));
7183 1.1 joerg res = (d >> cnt) & mask;
7184 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7185 1.1 joerg if (sf) {
7186 1.1 joerg res |= ~mask;
7187 1.1 joerg }
7188 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7189 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7190 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7191 1.1 joerg } else if (cnt >= 16) {
7192 1.1 joerg if (sf) {
7193 1.1 joerg res = 0xffff;
7194 1.1 joerg SET_FLAG(F_CF);
7195 1.1 joerg CLEAR_FLAG(F_ZF);
7196 1.1 joerg SET_FLAG(F_SF);
7197 1.1 joerg SET_FLAG(F_PF);
7198 1.1 joerg } else {
7199 1.1 joerg res = 0;
7200 1.1 joerg CLEAR_FLAG(F_CF);
7201 1.1 joerg SET_FLAG(F_ZF);
7202 1.1 joerg CLEAR_FLAG(F_SF);
7203 1.1 joerg CLEAR_FLAG(F_PF);
7204 1.1 joerg }
7205 1.1 joerg }
7206 1.1 joerg return (uint16_t) res;
7207 1.1 joerg }
7208 1.1 joerg /****************************************************************************
7209 1.1 joerg REMARKS:
7210 1.1 joerg Implements the SAR instruction and side effects.
7211 1.1 joerg ****************************************************************************/
7212 1.1 joerg static uint32_t
7213 1.1 joerg sar_long(struct X86EMU *emu, uint32_t d, uint8_t s)
7214 1.1 joerg {
7215 1.1 joerg uint32_t cnt, res, cf, mask, sf;
7216 1.1 joerg
7217 1.1 joerg sf = d & 0x80000000;
7218 1.1 joerg cnt = s % 32;
7219 1.1 joerg res = d;
7220 1.1 joerg if (cnt > 0 && cnt < 32) {
7221 1.1 joerg mask = (1 << (32 - cnt)) - 1;
7222 1.1 joerg cf = d & (1 << (cnt - 1));
7223 1.1 joerg res = (d >> cnt) & mask;
7224 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7225 1.1 joerg if (sf) {
7226 1.1 joerg res |= ~mask;
7227 1.1 joerg }
7228 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7229 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7230 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7231 1.1 joerg } else if (cnt >= 32) {
7232 1.1 joerg if (sf) {
7233 1.1 joerg res = 0xffffffff;
7234 1.1 joerg SET_FLAG(F_CF);
7235 1.1 joerg CLEAR_FLAG(F_ZF);
7236 1.1 joerg SET_FLAG(F_SF);
7237 1.1 joerg SET_FLAG(F_PF);
7238 1.1 joerg } else {
7239 1.1 joerg res = 0;
7240 1.1 joerg CLEAR_FLAG(F_CF);
7241 1.1 joerg SET_FLAG(F_ZF);
7242 1.1 joerg CLEAR_FLAG(F_SF);
7243 1.1 joerg CLEAR_FLAG(F_PF);
7244 1.1 joerg }
7245 1.1 joerg }
7246 1.1 joerg return res;
7247 1.1 joerg }
7248 1.1 joerg /****************************************************************************
7249 1.1 joerg REMARKS:
7250 1.1 joerg Implements the SHLD instruction and side effects.
7251 1.1 joerg ****************************************************************************/
7252 1.1 joerg static uint16_t
7253 1.1 joerg shld_word(struct X86EMU *emu, uint16_t d, uint16_t fill, uint8_t s)
7254 1.1 joerg {
7255 1.1 joerg unsigned int cnt, res, cf;
7256 1.1 joerg
7257 1.1 joerg if (s < 16) {
7258 1.1 joerg cnt = s % 16;
7259 1.1 joerg if (cnt > 0) {
7260 1.1 joerg res = (d << cnt) | (fill >> (16 - cnt));
7261 1.1 joerg cf = d & (1 << (16 - cnt));
7262 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7263 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7264 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7265 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7266 1.1 joerg } else {
7267 1.1 joerg res = d;
7268 1.1 joerg }
7269 1.1 joerg if (cnt == 1) {
7270 1.1 joerg CONDITIONAL_SET_FLAG((((res & 0x8000) == 0x8000) ^
7271 1.1 joerg (ACCESS_FLAG(F_CF) != 0)), F_OF);
7272 1.1 joerg } else {
7273 1.1 joerg CLEAR_FLAG(F_OF);
7274 1.1 joerg }
7275 1.1 joerg } else {
7276 1.1 joerg res = 0;
7277 1.1 joerg CONDITIONAL_SET_FLAG((d << (s - 1)) & 0x8000, F_CF);
7278 1.1 joerg CLEAR_FLAG(F_OF);
7279 1.1 joerg CLEAR_FLAG(F_SF);
7280 1.1 joerg SET_FLAG(F_PF);
7281 1.1 joerg SET_FLAG(F_ZF);
7282 1.1 joerg }
7283 1.1 joerg return (uint16_t) res;
7284 1.1 joerg }
7285 1.1 joerg /****************************************************************************
7286 1.1 joerg REMARKS:
7287 1.1 joerg Implements the SHLD instruction and side effects.
7288 1.1 joerg ****************************************************************************/
7289 1.1 joerg static uint32_t
7290 1.1 joerg shld_long(struct X86EMU *emu, uint32_t d, uint32_t fill, uint8_t s)
7291 1.1 joerg {
7292 1.1 joerg unsigned int cnt, res, cf;
7293 1.1 joerg
7294 1.1 joerg if (s < 32) {
7295 1.1 joerg cnt = s % 32;
7296 1.1 joerg if (cnt > 0) {
7297 1.1 joerg res = (d << cnt) | (fill >> (32 - cnt));
7298 1.1 joerg cf = d & (1 << (32 - cnt));
7299 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7300 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7301 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7302 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7303 1.1 joerg } else {
7304 1.1 joerg res = d;
7305 1.1 joerg }
7306 1.1 joerg if (cnt == 1) {
7307 1.1 joerg CONDITIONAL_SET_FLAG((((res & 0x80000000) == 0x80000000) ^
7308 1.1 joerg (ACCESS_FLAG(F_CF) != 0)), F_OF);
7309 1.1 joerg } else {
7310 1.1 joerg CLEAR_FLAG(F_OF);
7311 1.1 joerg }
7312 1.1 joerg } else {
7313 1.1 joerg res = 0;
7314 1.1 joerg CONDITIONAL_SET_FLAG((d << (s - 1)) & 0x80000000, F_CF);
7315 1.1 joerg CLEAR_FLAG(F_OF);
7316 1.1 joerg CLEAR_FLAG(F_SF);
7317 1.1 joerg SET_FLAG(F_PF);
7318 1.1 joerg SET_FLAG(F_ZF);
7319 1.1 joerg }
7320 1.1 joerg return res;
7321 1.1 joerg }
7322 1.1 joerg /****************************************************************************
7323 1.1 joerg REMARKS:
7324 1.1 joerg Implements the SHRD instruction and side effects.
7325 1.1 joerg ****************************************************************************/
7326 1.1 joerg static uint16_t
7327 1.1 joerg shrd_word(struct X86EMU *emu, uint16_t d, uint16_t fill, uint8_t s)
7328 1.1 joerg {
7329 1.1 joerg unsigned int cnt, res, cf;
7330 1.1 joerg
7331 1.1 joerg if (s < 16) {
7332 1.1 joerg cnt = s % 16;
7333 1.1 joerg if (cnt > 0) {
7334 1.1 joerg cf = d & (1 << (cnt - 1));
7335 1.1 joerg res = (d >> cnt) | (fill << (16 - cnt));
7336 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7337 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7338 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7339 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7340 1.1 joerg } else {
7341 1.1 joerg res = d;
7342 1.1 joerg }
7343 1.1 joerg
7344 1.1 joerg if (cnt == 1) {
7345 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(res >> 14), F_OF);
7346 1.1 joerg } else {
7347 1.1 joerg CLEAR_FLAG(F_OF);
7348 1.1 joerg }
7349 1.1 joerg } else {
7350 1.1 joerg res = 0;
7351 1.1 joerg CLEAR_FLAG(F_CF);
7352 1.1 joerg CLEAR_FLAG(F_OF);
7353 1.1 joerg SET_FLAG(F_ZF);
7354 1.1 joerg CLEAR_FLAG(F_SF);
7355 1.1 joerg CLEAR_FLAG(F_PF);
7356 1.1 joerg }
7357 1.1 joerg return (uint16_t) res;
7358 1.1 joerg }
7359 1.1 joerg /****************************************************************************
7360 1.1 joerg REMARKS:
7361 1.1 joerg Implements the SHRD instruction and side effects.
7362 1.1 joerg ****************************************************************************/
7363 1.1 joerg static uint32_t
7364 1.1 joerg shrd_long(struct X86EMU *emu, uint32_t d, uint32_t fill, uint8_t s)
7365 1.1 joerg {
7366 1.1 joerg unsigned int cnt, res, cf;
7367 1.1 joerg
7368 1.1 joerg if (s < 32) {
7369 1.1 joerg cnt = s % 32;
7370 1.1 joerg if (cnt > 0) {
7371 1.1 joerg cf = d & (1 << (cnt - 1));
7372 1.1 joerg res = (d >> cnt) | (fill << (32 - cnt));
7373 1.1 joerg CONDITIONAL_SET_FLAG(cf, F_CF);
7374 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7375 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7376 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7377 1.1 joerg } else {
7378 1.1 joerg res = d;
7379 1.1 joerg }
7380 1.1 joerg if (cnt == 1) {
7381 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(res >> 30), F_OF);
7382 1.1 joerg } else {
7383 1.1 joerg CLEAR_FLAG(F_OF);
7384 1.1 joerg }
7385 1.1 joerg } else {
7386 1.1 joerg res = 0;
7387 1.1 joerg CLEAR_FLAG(F_CF);
7388 1.1 joerg CLEAR_FLAG(F_OF);
7389 1.1 joerg SET_FLAG(F_ZF);
7390 1.1 joerg CLEAR_FLAG(F_SF);
7391 1.1 joerg CLEAR_FLAG(F_PF);
7392 1.1 joerg }
7393 1.1 joerg return res;
7394 1.1 joerg }
7395 1.1 joerg /****************************************************************************
7396 1.1 joerg REMARKS:
7397 1.1 joerg Implements the SBB instruction and side effects.
7398 1.1 joerg ****************************************************************************/
7399 1.1 joerg static uint8_t
7400 1.1 joerg sbb_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7401 1.1 joerg {
7402 1.1 joerg uint32_t res; /* all operands in native machine order */
7403 1.1 joerg uint32_t bc;
7404 1.1 joerg
7405 1.1 joerg if (ACCESS_FLAG(F_CF))
7406 1.1 joerg res = d - s - 1;
7407 1.1 joerg else
7408 1.1 joerg res = d - s;
7409 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7410 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
7411 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7412 1.1 joerg
7413 1.1 joerg /* calculate the borrow chain. See note at top */
7414 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7415 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80, F_CF);
7416 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 6), F_OF);
7417 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7418 1.1 joerg return (uint8_t) res;
7419 1.1 joerg }
7420 1.1 joerg /****************************************************************************
7421 1.1 joerg REMARKS:
7422 1.1 joerg Implements the SBB instruction and side effects.
7423 1.1 joerg ****************************************************************************/
7424 1.1 joerg static uint16_t
7425 1.1 joerg sbb_word(struct X86EMU *emu, uint16_t d, uint16_t s)
7426 1.1 joerg {
7427 1.1 joerg uint32_t res; /* all operands in native machine order */
7428 1.1 joerg uint32_t bc;
7429 1.1 joerg
7430 1.1 joerg if (ACCESS_FLAG(F_CF))
7431 1.1 joerg res = d - s - 1;
7432 1.1 joerg else
7433 1.1 joerg res = d - s;
7434 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7435 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7436 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7437 1.1 joerg
7438 1.1 joerg /* calculate the borrow chain. See note at top */
7439 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7440 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8000, F_CF);
7441 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 14), F_OF);
7442 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7443 1.1 joerg return (uint16_t) res;
7444 1.1 joerg }
7445 1.1 joerg /****************************************************************************
7446 1.1 joerg REMARKS:
7447 1.1 joerg Implements the SBB instruction and side effects.
7448 1.1 joerg ****************************************************************************/
7449 1.1 joerg static uint32_t
7450 1.1 joerg sbb_long(struct X86EMU *emu, uint32_t d, uint32_t s)
7451 1.1 joerg {
7452 1.1 joerg uint32_t res; /* all operands in native machine order */
7453 1.1 joerg uint32_t bc;
7454 1.1 joerg
7455 1.1 joerg if (ACCESS_FLAG(F_CF))
7456 1.1 joerg res = d - s - 1;
7457 1.1 joerg else
7458 1.1 joerg res = d - s;
7459 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7460 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7461 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7462 1.1 joerg
7463 1.1 joerg /* calculate the borrow chain. See note at top */
7464 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7465 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80000000, F_CF);
7466 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 30), F_OF);
7467 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7468 1.1 joerg return res;
7469 1.1 joerg }
7470 1.1 joerg /****************************************************************************
7471 1.1 joerg REMARKS:
7472 1.1 joerg Implements the SUB instruction and side effects.
7473 1.1 joerg ****************************************************************************/
7474 1.1 joerg static uint8_t
7475 1.1 joerg sub_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7476 1.1 joerg {
7477 1.1 joerg uint32_t res; /* all operands in native machine order */
7478 1.1 joerg uint32_t bc;
7479 1.1 joerg
7480 1.1 joerg res = d - s;
7481 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7482 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xff) == 0, F_ZF);
7483 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7484 1.1 joerg
7485 1.1 joerg /* calculate the borrow chain. See note at top */
7486 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7487 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80, F_CF);
7488 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 6), F_OF);
7489 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7490 1.1 joerg return (uint8_t) res;
7491 1.1 joerg }
7492 1.1 joerg /****************************************************************************
7493 1.1 joerg REMARKS:
7494 1.1 joerg Implements the SUB instruction and side effects.
7495 1.1 joerg ****************************************************************************/
7496 1.1 joerg static uint16_t
7497 1.1 joerg sub_word(struct X86EMU *emu, uint16_t d, uint16_t s)
7498 1.1 joerg {
7499 1.1 joerg uint32_t res; /* all operands in native machine order */
7500 1.1 joerg uint32_t bc;
7501 1.1 joerg
7502 1.1 joerg res = d - s;
7503 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7504 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffff) == 0, F_ZF);
7505 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7506 1.1 joerg
7507 1.1 joerg /* calculate the borrow chain. See note at top */
7508 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7509 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8000, F_CF);
7510 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 14), F_OF);
7511 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7512 1.1 joerg return (uint16_t) res;
7513 1.1 joerg }
7514 1.1 joerg /****************************************************************************
7515 1.1 joerg REMARKS:
7516 1.1 joerg Implements the SUB instruction and side effects.
7517 1.1 joerg ****************************************************************************/
7518 1.1 joerg static uint32_t
7519 1.1 joerg sub_long(struct X86EMU *emu, uint32_t d, uint32_t s)
7520 1.1 joerg {
7521 1.1 joerg uint32_t res; /* all operands in native machine order */
7522 1.1 joerg uint32_t bc;
7523 1.1 joerg
7524 1.1 joerg res = d - s;
7525 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7526 1.1 joerg CONDITIONAL_SET_FLAG((res & 0xffffffff) == 0, F_ZF);
7527 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7528 1.1 joerg
7529 1.1 joerg /* calculate the borrow chain. See note at top */
7530 1.1 joerg bc = (res & (~d | s)) | (~d & s);
7531 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x80000000, F_CF);
7532 1.1 joerg CONDITIONAL_SET_FLAG(XOR2(bc >> 30), F_OF);
7533 1.1 joerg CONDITIONAL_SET_FLAG(bc & 0x8, F_AF);
7534 1.1 joerg return res;
7535 1.1 joerg }
7536 1.1 joerg /****************************************************************************
7537 1.1 joerg REMARKS:
7538 1.1 joerg Implements the TEST instruction and side effects.
7539 1.1 joerg ****************************************************************************/
7540 1.1 joerg static void
7541 1.1 joerg test_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7542 1.1 joerg {
7543 1.1 joerg uint32_t res; /* all operands in native machine order */
7544 1.1 joerg
7545 1.1 joerg res = d & s;
7546 1.1 joerg
7547 1.1 joerg CLEAR_FLAG(F_OF);
7548 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7549 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7550 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7551 1.1 joerg /* AF == dont care */
7552 1.1 joerg CLEAR_FLAG(F_CF);
7553 1.1 joerg }
7554 1.1 joerg /****************************************************************************
7555 1.1 joerg REMARKS:
7556 1.1 joerg Implements the TEST instruction and side effects.
7557 1.1 joerg ****************************************************************************/
7558 1.1 joerg static void
7559 1.1 joerg test_word(struct X86EMU *emu, uint16_t d, uint16_t s)
7560 1.1 joerg {
7561 1.1 joerg uint32_t res; /* all operands in native machine order */
7562 1.1 joerg
7563 1.1 joerg res = d & s;
7564 1.1 joerg
7565 1.1 joerg CLEAR_FLAG(F_OF);
7566 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7567 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7568 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7569 1.1 joerg /* AF == dont care */
7570 1.1 joerg CLEAR_FLAG(F_CF);
7571 1.1 joerg }
7572 1.1 joerg /****************************************************************************
7573 1.1 joerg REMARKS:
7574 1.1 joerg Implements the TEST instruction and side effects.
7575 1.1 joerg ****************************************************************************/
7576 1.1 joerg static void
7577 1.1 joerg test_long(struct X86EMU *emu, uint32_t d, uint32_t s)
7578 1.1 joerg {
7579 1.1 joerg uint32_t res; /* all operands in native machine order */
7580 1.1 joerg
7581 1.1 joerg res = d & s;
7582 1.1 joerg
7583 1.1 joerg CLEAR_FLAG(F_OF);
7584 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7585 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7586 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7587 1.1 joerg /* AF == dont care */
7588 1.1 joerg CLEAR_FLAG(F_CF);
7589 1.1 joerg }
7590 1.1 joerg /****************************************************************************
7591 1.1 joerg REMARKS:
7592 1.1 joerg Implements the XOR instruction and side effects.
7593 1.1 joerg ****************************************************************************/
7594 1.1 joerg static uint8_t
7595 1.1 joerg xor_byte(struct X86EMU *emu, uint8_t d, uint8_t s)
7596 1.1 joerg {
7597 1.1 joerg uint8_t res; /* all operands in native machine order */
7598 1.1 joerg
7599 1.1 joerg res = d ^ s;
7600 1.1 joerg CLEAR_FLAG(F_OF);
7601 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80, F_SF);
7602 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7603 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res), F_PF);
7604 1.1 joerg CLEAR_FLAG(F_CF);
7605 1.1 joerg CLEAR_FLAG(F_AF);
7606 1.1 joerg return res;
7607 1.1 joerg }
7608 1.1 joerg /****************************************************************************
7609 1.1 joerg REMARKS:
7610 1.1 joerg Implements the XOR instruction and side effects.
7611 1.1 joerg ****************************************************************************/
7612 1.1 joerg static uint16_t
7613 1.1 joerg xor_word(struct X86EMU *emu, uint16_t d, uint16_t s)
7614 1.1 joerg {
7615 1.1 joerg uint16_t res; /* all operands in native machine order */
7616 1.1 joerg
7617 1.1 joerg res = d ^ s;
7618 1.1 joerg CLEAR_FLAG(F_OF);
7619 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x8000, F_SF);
7620 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7621 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7622 1.1 joerg CLEAR_FLAG(F_CF);
7623 1.1 joerg CLEAR_FLAG(F_AF);
7624 1.1 joerg return res;
7625 1.1 joerg }
7626 1.1 joerg /****************************************************************************
7627 1.1 joerg REMARKS:
7628 1.1 joerg Implements the XOR instruction and side effects.
7629 1.1 joerg ****************************************************************************/
7630 1.1 joerg static uint32_t
7631 1.1 joerg xor_long(struct X86EMU *emu, uint32_t d, uint32_t s)
7632 1.1 joerg {
7633 1.1 joerg uint32_t res; /* all operands in native machine order */
7634 1.1 joerg
7635 1.1 joerg res = d ^ s;
7636 1.1 joerg CLEAR_FLAG(F_OF);
7637 1.1 joerg CONDITIONAL_SET_FLAG(res & 0x80000000, F_SF);
7638 1.1 joerg CONDITIONAL_SET_FLAG(res == 0, F_ZF);
7639 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(res & 0xff), F_PF);
7640 1.1 joerg CLEAR_FLAG(F_CF);
7641 1.1 joerg CLEAR_FLAG(F_AF);
7642 1.1 joerg return res;
7643 1.1 joerg }
7644 1.1 joerg /****************************************************************************
7645 1.1 joerg REMARKS:
7646 1.1 joerg Implements the IMUL instruction and side effects.
7647 1.1 joerg ****************************************************************************/
7648 1.1 joerg static void
7649 1.1 joerg imul_byte(struct X86EMU *emu, uint8_t s)
7650 1.1 joerg {
7651 1.1 joerg int16_t res = (int16_t) ((int8_t) emu->x86.R_AL * (int8_t) s);
7652 1.1 joerg
7653 1.1 joerg emu->x86.R_AX = res;
7654 1.1 joerg if (((emu->x86.R_AL & 0x80) == 0 && emu->x86.R_AH == 0x00) ||
7655 1.1 joerg ((emu->x86.R_AL & 0x80) != 0 && emu->x86.R_AH == 0xFF)) {
7656 1.1 joerg CLEAR_FLAG(F_CF);
7657 1.1 joerg CLEAR_FLAG(F_OF);
7658 1.1 joerg } else {
7659 1.1 joerg SET_FLAG(F_CF);
7660 1.1 joerg SET_FLAG(F_OF);
7661 1.1 joerg }
7662 1.1 joerg }
7663 1.1 joerg /****************************************************************************
7664 1.1 joerg REMARKS:
7665 1.1 joerg Implements the IMUL instruction and side effects.
7666 1.1 joerg ****************************************************************************/
7667 1.1 joerg static void
7668 1.1 joerg imul_word(struct X86EMU *emu, uint16_t s)
7669 1.1 joerg {
7670 1.1 joerg int32_t res = (int16_t) emu->x86.R_AX * (int16_t) s;
7671 1.1 joerg
7672 1.1 joerg emu->x86.R_AX = (uint16_t) res;
7673 1.1 joerg emu->x86.R_DX = (uint16_t) (res >> 16);
7674 1.1 joerg if (((emu->x86.R_AX & 0x8000) == 0 && emu->x86.R_DX == 0x00) ||
7675 1.1 joerg ((emu->x86.R_AX & 0x8000) != 0 && emu->x86.R_DX == 0xFF)) {
7676 1.1 joerg CLEAR_FLAG(F_CF);
7677 1.1 joerg CLEAR_FLAG(F_OF);
7678 1.1 joerg } else {
7679 1.1 joerg SET_FLAG(F_CF);
7680 1.1 joerg SET_FLAG(F_OF);
7681 1.1 joerg }
7682 1.1 joerg }
7683 1.1 joerg /****************************************************************************
7684 1.1 joerg REMARKS:
7685 1.1 joerg Implements the IMUL instruction and side effects.
7686 1.1 joerg ****************************************************************************/
7687 1.1 joerg static void
7688 1.1 joerg imul_long(struct X86EMU *emu, uint32_t s)
7689 1.1 joerg {
7690 1.1 joerg int64_t res;
7691 1.1 joerg
7692 1.1 joerg res = (int64_t)(int32_t)emu->x86.R_EAX * (int32_t)s;
7693 1.1 joerg emu->x86.R_EAX = (uint32_t)res;
7694 1.1 joerg emu->x86.R_EDX = ((uint64_t)res) >> 32;
7695 1.1 joerg if (((emu->x86.R_EAX & 0x80000000) == 0 && emu->x86.R_EDX == 0x00) ||
7696 1.1 joerg ((emu->x86.R_EAX & 0x80000000) != 0 && emu->x86.R_EDX == 0xFF)) {
7697 1.1 joerg CLEAR_FLAG(F_CF);
7698 1.1 joerg CLEAR_FLAG(F_OF);
7699 1.1 joerg } else {
7700 1.1 joerg SET_FLAG(F_CF);
7701 1.1 joerg SET_FLAG(F_OF);
7702 1.1 joerg }
7703 1.1 joerg }
7704 1.1 joerg /****************************************************************************
7705 1.1 joerg REMARKS:
7706 1.1 joerg Implements the MUL instruction and side effects.
7707 1.1 joerg ****************************************************************************/
7708 1.1 joerg static void
7709 1.1 joerg mul_byte(struct X86EMU *emu, uint8_t s)
7710 1.1 joerg {
7711 1.1 joerg uint16_t res = (uint16_t) (emu->x86.R_AL * s);
7712 1.1 joerg
7713 1.1 joerg emu->x86.R_AX = res;
7714 1.1 joerg if (emu->x86.R_AH == 0) {
7715 1.1 joerg CLEAR_FLAG(F_CF);
7716 1.1 joerg CLEAR_FLAG(F_OF);
7717 1.1 joerg } else {
7718 1.1 joerg SET_FLAG(F_CF);
7719 1.1 joerg SET_FLAG(F_OF);
7720 1.1 joerg }
7721 1.1 joerg }
7722 1.1 joerg /****************************************************************************
7723 1.1 joerg REMARKS:
7724 1.1 joerg Implements the MUL instruction and side effects.
7725 1.1 joerg ****************************************************************************/
7726 1.1 joerg static void
7727 1.1 joerg mul_word(struct X86EMU *emu, uint16_t s)
7728 1.1 joerg {
7729 1.1 joerg uint32_t res = emu->x86.R_AX * s;
7730 1.1 joerg
7731 1.1 joerg emu->x86.R_AX = (uint16_t) res;
7732 1.1 joerg emu->x86.R_DX = (uint16_t) (res >> 16);
7733 1.1 joerg if (emu->x86.R_DX == 0) {
7734 1.1 joerg CLEAR_FLAG(F_CF);
7735 1.1 joerg CLEAR_FLAG(F_OF);
7736 1.1 joerg } else {
7737 1.1 joerg SET_FLAG(F_CF);
7738 1.1 joerg SET_FLAG(F_OF);
7739 1.1 joerg }
7740 1.1 joerg }
7741 1.1 joerg /****************************************************************************
7742 1.1 joerg REMARKS:
7743 1.1 joerg Implements the MUL instruction and side effects.
7744 1.1 joerg ****************************************************************************/
7745 1.1 joerg static void
7746 1.1 joerg mul_long(struct X86EMU *emu, uint32_t s)
7747 1.1 joerg {
7748 1.1 joerg uint64_t res = (uint64_t) emu->x86.R_EAX * s;
7749 1.1 joerg
7750 1.1 joerg emu->x86.R_EAX = (uint32_t) res;
7751 1.1 joerg emu->x86.R_EDX = (uint32_t) (res >> 32);
7752 1.1 joerg
7753 1.1 joerg if (emu->x86.R_EDX == 0) {
7754 1.1 joerg CLEAR_FLAG(F_CF);
7755 1.1 joerg CLEAR_FLAG(F_OF);
7756 1.1 joerg } else {
7757 1.1 joerg SET_FLAG(F_CF);
7758 1.1 joerg SET_FLAG(F_OF);
7759 1.1 joerg }
7760 1.1 joerg }
7761 1.1 joerg /****************************************************************************
7762 1.1 joerg REMARKS:
7763 1.1 joerg Implements the IDIV instruction and side effects.
7764 1.1 joerg ****************************************************************************/
7765 1.1 joerg static void
7766 1.1 joerg idiv_byte(struct X86EMU *emu, uint8_t s)
7767 1.1 joerg {
7768 1.1 joerg int32_t dvd, div, mod;
7769 1.1 joerg
7770 1.1 joerg dvd = (int16_t) emu->x86.R_AX;
7771 1.1 joerg if (s == 0) {
7772 1.5 joerg x86emu_intr_raise(emu, 8);
7773 1.1 joerg return;
7774 1.1 joerg }
7775 1.1 joerg div = dvd / (int8_t) s;
7776 1.1 joerg mod = dvd % (int8_t) s;
7777 1.1 joerg if (div > 0x7f || div < -0x7f) {
7778 1.5 joerg x86emu_intr_raise(emu, 8);
7779 1.1 joerg return;
7780 1.1 joerg }
7781 1.1 joerg emu->x86.R_AL = (int8_t) div;
7782 1.1 joerg emu->x86.R_AH = (int8_t) mod;
7783 1.1 joerg }
7784 1.1 joerg /****************************************************************************
7785 1.1 joerg REMARKS:
7786 1.1 joerg Implements the IDIV instruction and side effects.
7787 1.1 joerg ****************************************************************************/
7788 1.1 joerg static void
7789 1.1 joerg idiv_word(struct X86EMU *emu, uint16_t s)
7790 1.1 joerg {
7791 1.1 joerg int32_t dvd, div, mod;
7792 1.1 joerg
7793 1.1 joerg dvd = (((int32_t) emu->x86.R_DX) << 16) | emu->x86.R_AX;
7794 1.1 joerg if (s == 0) {
7795 1.5 joerg x86emu_intr_raise(emu, 8);
7796 1.1 joerg return;
7797 1.1 joerg }
7798 1.1 joerg div = dvd / (int16_t) s;
7799 1.1 joerg mod = dvd % (int16_t) s;
7800 1.1 joerg if (div > 0x7fff || div < -0x7fff) {
7801 1.5 joerg x86emu_intr_raise(emu, 8);
7802 1.1 joerg return;
7803 1.1 joerg }
7804 1.1 joerg CLEAR_FLAG(F_CF);
7805 1.1 joerg CLEAR_FLAG(F_SF);
7806 1.1 joerg CONDITIONAL_SET_FLAG(div == 0, F_ZF);
7807 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(mod & 0xff), F_PF);
7808 1.1 joerg
7809 1.1 joerg emu->x86.R_AX = (uint16_t) div;
7810 1.1 joerg emu->x86.R_DX = (uint16_t) mod;
7811 1.1 joerg }
7812 1.1 joerg /****************************************************************************
7813 1.1 joerg REMARKS:
7814 1.1 joerg Implements the IDIV instruction and side effects.
7815 1.1 joerg ****************************************************************************/
7816 1.1 joerg static void
7817 1.1 joerg idiv_long(struct X86EMU *emu, uint32_t s)
7818 1.1 joerg {
7819 1.1 joerg int64_t dvd, div, mod;
7820 1.1 joerg
7821 1.1 joerg dvd = (((int64_t) emu->x86.R_EDX) << 32) | emu->x86.R_EAX;
7822 1.1 joerg if (s == 0) {
7823 1.5 joerg x86emu_intr_raise(emu, 8);
7824 1.1 joerg return;
7825 1.1 joerg }
7826 1.1 joerg div = dvd / (int32_t) s;
7827 1.1 joerg mod = dvd % (int32_t) s;
7828 1.1 joerg if (div > 0x7fffffff || div < -0x7fffffff) {
7829 1.5 joerg x86emu_intr_raise(emu, 8);
7830 1.1 joerg return;
7831 1.1 joerg }
7832 1.1 joerg CLEAR_FLAG(F_CF);
7833 1.1 joerg CLEAR_FLAG(F_AF);
7834 1.1 joerg CLEAR_FLAG(F_SF);
7835 1.1 joerg SET_FLAG(F_ZF);
7836 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(mod & 0xff), F_PF);
7837 1.1 joerg
7838 1.1 joerg emu->x86.R_EAX = (uint32_t) div;
7839 1.1 joerg emu->x86.R_EDX = (uint32_t) mod;
7840 1.1 joerg }
7841 1.1 joerg /****************************************************************************
7842 1.1 joerg REMARKS:
7843 1.1 joerg Implements the DIV instruction and side effects.
7844 1.1 joerg ****************************************************************************/
7845 1.1 joerg static void
7846 1.1 joerg div_byte(struct X86EMU *emu, uint8_t s)
7847 1.1 joerg {
7848 1.1 joerg uint32_t dvd, div, mod;
7849 1.1 joerg
7850 1.1 joerg dvd = emu->x86.R_AX;
7851 1.1 joerg if (s == 0) {
7852 1.5 joerg x86emu_intr_raise(emu, 8);
7853 1.1 joerg return;
7854 1.1 joerg }
7855 1.1 joerg div = dvd / (uint8_t) s;
7856 1.1 joerg mod = dvd % (uint8_t) s;
7857 1.1 joerg if (div > 0xff) {
7858 1.5 joerg x86emu_intr_raise(emu, 8);
7859 1.1 joerg return;
7860 1.1 joerg }
7861 1.1 joerg emu->x86.R_AL = (uint8_t) div;
7862 1.1 joerg emu->x86.R_AH = (uint8_t) mod;
7863 1.1 joerg }
7864 1.1 joerg /****************************************************************************
7865 1.1 joerg REMARKS:
7866 1.1 joerg Implements the DIV instruction and side effects.
7867 1.1 joerg ****************************************************************************/
7868 1.1 joerg static void
7869 1.1 joerg div_word(struct X86EMU *emu, uint16_t s)
7870 1.1 joerg {
7871 1.1 joerg uint32_t dvd, div, mod;
7872 1.1 joerg
7873 1.1 joerg dvd = (((uint32_t) emu->x86.R_DX) << 16) | emu->x86.R_AX;
7874 1.1 joerg if (s == 0) {
7875 1.5 joerg x86emu_intr_raise(emu, 8);
7876 1.1 joerg return;
7877 1.1 joerg }
7878 1.1 joerg div = dvd / (uint16_t) s;
7879 1.1 joerg mod = dvd % (uint16_t) s;
7880 1.1 joerg if (div > 0xffff) {
7881 1.5 joerg x86emu_intr_raise(emu, 8);
7882 1.1 joerg return;
7883 1.1 joerg }
7884 1.1 joerg CLEAR_FLAG(F_CF);
7885 1.1 joerg CLEAR_FLAG(F_SF);
7886 1.1 joerg CONDITIONAL_SET_FLAG(div == 0, F_ZF);
7887 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(mod & 0xff), F_PF);
7888 1.1 joerg
7889 1.1 joerg emu->x86.R_AX = (uint16_t) div;
7890 1.1 joerg emu->x86.R_DX = (uint16_t) mod;
7891 1.1 joerg }
7892 1.1 joerg /****************************************************************************
7893 1.1 joerg REMARKS:
7894 1.1 joerg Implements the DIV instruction and side effects.
7895 1.1 joerg ****************************************************************************/
7896 1.1 joerg static void
7897 1.1 joerg div_long(struct X86EMU *emu, uint32_t s)
7898 1.1 joerg {
7899 1.1 joerg uint64_t dvd, div, mod;
7900 1.1 joerg
7901 1.1 joerg dvd = (((uint64_t) emu->x86.R_EDX) << 32) | emu->x86.R_EAX;
7902 1.1 joerg if (s == 0) {
7903 1.5 joerg x86emu_intr_raise(emu, 8);
7904 1.1 joerg return;
7905 1.1 joerg }
7906 1.1 joerg div = dvd / (uint32_t) s;
7907 1.1 joerg mod = dvd % (uint32_t) s;
7908 1.1 joerg if (div > 0xffffffff) {
7909 1.5 joerg x86emu_intr_raise(emu, 8);
7910 1.1 joerg return;
7911 1.1 joerg }
7912 1.1 joerg CLEAR_FLAG(F_CF);
7913 1.1 joerg CLEAR_FLAG(F_AF);
7914 1.1 joerg CLEAR_FLAG(F_SF);
7915 1.1 joerg SET_FLAG(F_ZF);
7916 1.1 joerg CONDITIONAL_SET_FLAG(PARITY(mod & 0xff), F_PF);
7917 1.1 joerg
7918 1.1 joerg emu->x86.R_EAX = (uint32_t) div;
7919 1.1 joerg emu->x86.R_EDX = (uint32_t) mod;
7920 1.1 joerg }
7921 1.1 joerg /****************************************************************************
7922 1.1 joerg REMARKS:
7923 1.1 joerg Implements the IN string instruction and side effects.
7924 1.1 joerg ****************************************************************************/
7925 1.1 joerg static void
7926 1.1 joerg ins(struct X86EMU *emu, int size)
7927 1.1 joerg {
7928 1.1 joerg int inc = size;
7929 1.1 joerg
7930 1.1 joerg if (ACCESS_FLAG(F_DF)) {
7931 1.1 joerg inc = -size;
7932 1.1 joerg }
7933 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
7934 1.1 joerg /* dont care whether REPE or REPNE */
7935 1.1 joerg /* in until CX is ZERO. */
7936 1.1 joerg uint32_t count = ((emu->x86.mode & SYSMODE_PREFIX_DATA) ?
7937 1.1 joerg emu->x86.R_ECX : emu->x86.R_CX);
7938 1.1 joerg switch (size) {
7939 1.1 joerg case 1:
7940 1.1 joerg while (count--) {
7941 1.1 joerg store_byte(emu, emu->x86.R_ES, emu->x86.R_DI,
7942 1.1 joerg (*emu->emu_inb) (emu, emu->x86.R_DX));
7943 1.1 joerg emu->x86.R_DI += inc;
7944 1.1 joerg }
7945 1.1 joerg break;
7946 1.1 joerg
7947 1.1 joerg case 2:
7948 1.1 joerg while (count--) {
7949 1.1 joerg store_word(emu, emu->x86.R_ES, emu->x86.R_DI,
7950 1.1 joerg (*emu->emu_inw) (emu, emu->x86.R_DX));
7951 1.1 joerg emu->x86.R_DI += inc;
7952 1.1 joerg }
7953 1.1 joerg break;
7954 1.1 joerg case 4:
7955 1.1 joerg while (count--) {
7956 1.1 joerg store_long(emu, emu->x86.R_ES, emu->x86.R_DI,
7957 1.1 joerg (*emu->emu_inl) (emu, emu->x86.R_DX));
7958 1.1 joerg emu->x86.R_DI += inc;
7959 1.1 joerg break;
7960 1.1 joerg }
7961 1.1 joerg }
7962 1.1 joerg emu->x86.R_CX = 0;
7963 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
7964 1.1 joerg emu->x86.R_ECX = 0;
7965 1.1 joerg }
7966 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
7967 1.1 joerg } else {
7968 1.1 joerg switch (size) {
7969 1.1 joerg case 1:
7970 1.1 joerg store_byte(emu, emu->x86.R_ES, emu->x86.R_DI,
7971 1.1 joerg (*emu->emu_inb) (emu, emu->x86.R_DX));
7972 1.1 joerg break;
7973 1.1 joerg case 2:
7974 1.1 joerg store_word(emu, emu->x86.R_ES, emu->x86.R_DI,
7975 1.1 joerg (*emu->emu_inw) (emu, emu->x86.R_DX));
7976 1.1 joerg break;
7977 1.1 joerg case 4:
7978 1.1 joerg store_long(emu, emu->x86.R_ES, emu->x86.R_DI,
7979 1.1 joerg (*emu->emu_inl) (emu, emu->x86.R_DX));
7980 1.1 joerg break;
7981 1.1 joerg }
7982 1.1 joerg emu->x86.R_DI += inc;
7983 1.1 joerg }
7984 1.1 joerg }
7985 1.1 joerg /****************************************************************************
7986 1.1 joerg REMARKS:
7987 1.1 joerg Implements the OUT string instruction and side effects.
7988 1.1 joerg ****************************************************************************/
7989 1.1 joerg static void
7990 1.1 joerg outs(struct X86EMU *emu, int size)
7991 1.1 joerg {
7992 1.1 joerg int inc = size;
7993 1.1 joerg
7994 1.1 joerg if (ACCESS_FLAG(F_DF)) {
7995 1.1 joerg inc = -size;
7996 1.1 joerg }
7997 1.1 joerg if (emu->x86.mode & (SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE)) {
7998 1.1 joerg /* dont care whether REPE or REPNE */
7999 1.1 joerg /* out until CX is ZERO. */
8000 1.1 joerg uint32_t count = ((emu->x86.mode & SYSMODE_PREFIX_DATA) ?
8001 1.1 joerg emu->x86.R_ECX : emu->x86.R_CX);
8002 1.1 joerg switch (size) {
8003 1.1 joerg case 1:
8004 1.1 joerg while (count--) {
8005 1.1 joerg (*emu->emu_outb) (emu, emu->x86.R_DX,
8006 1.1 joerg fetch_byte(emu, emu->x86.R_ES, emu->x86.R_SI));
8007 1.1 joerg emu->x86.R_SI += inc;
8008 1.1 joerg }
8009 1.1 joerg break;
8010 1.1 joerg
8011 1.1 joerg case 2:
8012 1.1 joerg while (count--) {
8013 1.1 joerg (*emu->emu_outw) (emu, emu->x86.R_DX,
8014 1.1 joerg fetch_word(emu, emu->x86.R_ES, emu->x86.R_SI));
8015 1.1 joerg emu->x86.R_SI += inc;
8016 1.1 joerg }
8017 1.1 joerg break;
8018 1.1 joerg case 4:
8019 1.1 joerg while (count--) {
8020 1.1 joerg (*emu->emu_outl) (emu, emu->x86.R_DX,
8021 1.1 joerg fetch_long(emu, emu->x86.R_ES, emu->x86.R_SI));
8022 1.1 joerg emu->x86.R_SI += inc;
8023 1.1 joerg break;
8024 1.1 joerg }
8025 1.1 joerg }
8026 1.1 joerg emu->x86.R_CX = 0;
8027 1.1 joerg if (emu->x86.mode & SYSMODE_PREFIX_DATA) {
8028 1.1 joerg emu->x86.R_ECX = 0;
8029 1.1 joerg }
8030 1.1 joerg emu->x86.mode &= ~(SYSMODE_PREFIX_REPE | SYSMODE_PREFIX_REPNE);
8031 1.1 joerg } else {
8032 1.1 joerg switch (size) {
8033 1.1 joerg case 1:
8034 1.1 joerg (*emu->emu_outb) (emu, emu->x86.R_DX,
8035 1.1 joerg fetch_byte(emu, emu->x86.R_ES, emu->x86.R_SI));
8036 1.1 joerg break;
8037 1.1 joerg case 2:
8038 1.1 joerg (*emu->emu_outw) (emu, emu->x86.R_DX,
8039 1.1 joerg fetch_word(emu, emu->x86.R_ES, emu->x86.R_SI));
8040 1.1 joerg break;
8041 1.1 joerg case 4:
8042 1.1 joerg (*emu->emu_outl) (emu, emu->x86.R_DX,
8043 1.1 joerg fetch_long(emu, emu->x86.R_ES, emu->x86.R_SI));
8044 1.1 joerg break;
8045 1.1 joerg }
8046 1.1 joerg emu->x86.R_SI += inc;
8047 1.1 joerg }
8048 1.1 joerg }
8049 1.1 joerg /****************************************************************************
8050 1.1 joerg REMARKS:
8051 1.1 joerg Pushes a word onto the stack.
8052 1.1 joerg
8053 1.1 joerg NOTE: Do not inline this, as (*emu->emu_wrX) is already inline!
8054 1.1 joerg ****************************************************************************/
8055 1.1 joerg static void
8056 1.1 joerg push_word(struct X86EMU *emu, uint16_t w)
8057 1.1 joerg {
8058 1.1 joerg emu->x86.R_SP -= 2;
8059 1.1 joerg store_word(emu, emu->x86.R_SS, emu->x86.R_SP, w);
8060 1.1 joerg }
8061 1.1 joerg /****************************************************************************
8062 1.1 joerg REMARKS:
8063 1.1 joerg Pushes a long onto the stack.
8064 1.1 joerg
8065 1.1 joerg NOTE: Do not inline this, as (*emu->emu_wrX) is already inline!
8066 1.1 joerg ****************************************************************************/
8067 1.1 joerg static void
8068 1.1 joerg push_long(struct X86EMU *emu, uint32_t w)
8069 1.1 joerg {
8070 1.1 joerg emu->x86.R_SP -= 4;
8071 1.1 joerg store_long(emu, emu->x86.R_SS, emu->x86.R_SP, w);
8072 1.1 joerg }
8073 1.1 joerg /****************************************************************************
8074 1.1 joerg REMARKS:
8075 1.1 joerg Pops a word from the stack.
8076 1.1 joerg
8077 1.1 joerg NOTE: Do not inline this, as (*emu->emu_rdX) is already inline!
8078 1.1 joerg ****************************************************************************/
8079 1.1 joerg static uint16_t
8080 1.1 joerg pop_word(struct X86EMU *emu)
8081 1.1 joerg {
8082 1.1 joerg uint16_t res;
8083 1.1 joerg
8084 1.1 joerg res = fetch_word(emu, emu->x86.R_SS, emu->x86.R_SP);
8085 1.1 joerg emu->x86.R_SP += 2;
8086 1.1 joerg return res;
8087 1.1 joerg }
8088 1.1 joerg /****************************************************************************
8089 1.1 joerg REMARKS:
8090 1.1 joerg Pops a long from the stack.
8091 1.1 joerg
8092 1.1 joerg NOTE: Do not inline this, as (*emu->emu_rdX) is already inline!
8093 1.1 joerg ****************************************************************************/
8094 1.1 joerg static uint32_t
8095 1.1 joerg pop_long(struct X86EMU *emu)
8096 1.1 joerg {
8097 1.1 joerg uint32_t res;
8098 1.1 joerg
8099 1.1 joerg res = fetch_long(emu, emu->x86.R_SS, emu->x86.R_SP);
8100 1.1 joerg emu->x86.R_SP += 4;
8101 1.1 joerg return res;
8102 1.1 joerg }
8103