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make the number of buffers settable (malc)
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1/*
2 * defines common to all virtual CPUs
3 *
4 * Copyright (c) 2003 Fabrice Bellard
5 *
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2 of the License, or (at your option) any later version.
10 *
11 * This library is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
15 *
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with this library; if not, write to the Free Software
18 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
19 */
20#ifndef CPU_ALL_H
21#define CPU_ALL_H
22
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23#if defined(__arm__) || defined(__sparc__)
24#define WORDS_ALIGNED
25#endif
26
27/* some important defines:
28 *
29 * WORDS_ALIGNED : if defined, the host cpu can only make word aligned
30 * memory accesses.
31 *
32 * WORDS_BIGENDIAN : if defined, the host cpu is big endian and
33 * otherwise little endian.
34 *
35 * (TARGET_WORDS_ALIGNED : same for target cpu (not supported yet))
36 *
37 * TARGET_WORDS_BIGENDIAN : same for target cpu
38 */
39
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40#include "bswap.h"
41
42#if defined(WORDS_BIGENDIAN) != defined(TARGET_WORDS_BIGENDIAN)
43#define BSWAP_NEEDED
44#endif
45
46#ifdef BSWAP_NEEDED
47
48static inline uint16_t tswap16(uint16_t s)
49{
50 return bswap16(s);
51}
52
53static inline uint32_t tswap32(uint32_t s)
54{
55 return bswap32(s);
56}
57
58static inline uint64_t tswap64(uint64_t s)
59{
60 return bswap64(s);
61}
62
63static inline void tswap16s(uint16_t *s)
64{
65 *s = bswap16(*s);
66}
67
68static inline void tswap32s(uint32_t *s)
69{
70 *s = bswap32(*s);
71}
72
73static inline void tswap64s(uint64_t *s)
74{
75 *s = bswap64(*s);
76}
77
78#else
79
80static inline uint16_t tswap16(uint16_t s)
81{
82 return s;
83}
84
85static inline uint32_t tswap32(uint32_t s)
86{
87 return s;
88}
89
90static inline uint64_t tswap64(uint64_t s)
91{
92 return s;
93}
94
95static inline void tswap16s(uint16_t *s)
96{
97}
98
99static inline void tswap32s(uint32_t *s)
100{
101}
102
103static inline void tswap64s(uint64_t *s)
104{
105}
106
107#endif
108
109#if TARGET_LONG_SIZE == 4
110#define tswapl(s) tswap32(s)
111#define tswapls(s) tswap32s((uint32_t *)(s))
0a962c02 112#define bswaptls(s) bswap32s(s)
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113#else
114#define tswapl(s) tswap64(s)
115#define tswapls(s) tswap64s((uint64_t *)(s))
0a962c02 116#define bswaptls(s) bswap64s(s)
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117#endif
118
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119/* NOTE: arm FPA is horrible as double 32 bit words are stored in big
120 endian ! */
0ac4bd56 121typedef union {
53cd6637 122 float64 d;
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123#if defined(WORDS_BIGENDIAN) \
124 || (defined(__arm__) && !defined(__VFP_FP__) && !defined(CONFIG_SOFTFLOAT))
0ac4bd56 125 struct {
0ac4bd56 126 uint32_t upper;
832ed0fa 127 uint32_t lower;
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128 } l;
129#else
130 struct {
0ac4bd56 131 uint32_t lower;
832ed0fa 132 uint32_t upper;
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133 } l;
134#endif
135 uint64_t ll;
136} CPU_DoubleU;
137
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138/* CPU memory access without any memory or io remapping */
139
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140/*
141 * the generic syntax for the memory accesses is:
142 *
143 * load: ld{type}{sign}{size}{endian}_{access_type}(ptr)
144 *
145 * store: st{type}{size}{endian}_{access_type}(ptr, val)
146 *
147 * type is:
148 * (empty): integer access
149 * f : float access
150 *
151 * sign is:
152 * (empty): for floats or 32 bit size
153 * u : unsigned
154 * s : signed
155 *
156 * size is:
157 * b: 8 bits
158 * w: 16 bits
159 * l: 32 bits
160 * q: 64 bits
161 *
162 * endian is:
163 * (empty): target cpu endianness or 8 bit access
164 * r : reversed target cpu endianness (not implemented yet)
165 * be : big endian (not implemented yet)
166 * le : little endian (not implemented yet)
167 *
168 * access_type is:
169 * raw : host memory access
170 * user : user mode access using soft MMU
171 * kernel : kernel mode access using soft MMU
172 */
c27004ec 173static inline int ldub_p(void *ptr)
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174{
175 return *(uint8_t *)ptr;
176}
177
c27004ec 178static inline int ldsb_p(void *ptr)
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179{
180 return *(int8_t *)ptr;
181}
182
c27004ec 183static inline void stb_p(void *ptr, int v)
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184{
185 *(uint8_t *)ptr = v;
186}
187
188/* NOTE: on arm, putting 2 in /proc/sys/debug/alignment so that the
189 kernel handles unaligned load/stores may give better results, but
190 it is a system wide setting : bad */
2df3b95d 191#if defined(WORDS_BIGENDIAN) || defined(WORDS_ALIGNED)
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192
193/* conservative code for little endian unaligned accesses */
2df3b95d 194static inline int lduw_le_p(void *ptr)
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195{
196#ifdef __powerpc__
197 int val;
198 __asm__ __volatile__ ("lhbrx %0,0,%1" : "=r" (val) : "r" (ptr));
199 return val;
200#else
201 uint8_t *p = ptr;
202 return p[0] | (p[1] << 8);
203#endif
204}
205
2df3b95d 206static inline int ldsw_le_p(void *ptr)
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207{
208#ifdef __powerpc__
209 int val;
210 __asm__ __volatile__ ("lhbrx %0,0,%1" : "=r" (val) : "r" (ptr));
211 return (int16_t)val;
212#else
213 uint8_t *p = ptr;
214 return (int16_t)(p[0] | (p[1] << 8));
215#endif
216}
217
2df3b95d 218static inline int ldl_le_p(void *ptr)
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219{
220#ifdef __powerpc__
221 int val;
222 __asm__ __volatile__ ("lwbrx %0,0,%1" : "=r" (val) : "r" (ptr));
223 return val;
224#else
225 uint8_t *p = ptr;
226 return p[0] | (p[1] << 8) | (p[2] << 16) | (p[3] << 24);
227#endif
228}
229
2df3b95d 230static inline uint64_t ldq_le_p(void *ptr)
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231{
232 uint8_t *p = ptr;
233 uint32_t v1, v2;
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234 v1 = ldl_p(p);
235 v2 = ldl_p(p + 4);
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236 return v1 | ((uint64_t)v2 << 32);
237}
238
2df3b95d 239static inline void stw_le_p(void *ptr, int v)
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240{
241#ifdef __powerpc__
242 __asm__ __volatile__ ("sthbrx %1,0,%2" : "=m" (*(uint16_t *)ptr) : "r" (v), "r" (ptr));
243#else
244 uint8_t *p = ptr;
245 p[0] = v;
246 p[1] = v >> 8;
247#endif
248}
249
2df3b95d 250static inline void stl_le_p(void *ptr, int v)
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251{
252#ifdef __powerpc__
253 __asm__ __volatile__ ("stwbrx %1,0,%2" : "=m" (*(uint32_t *)ptr) : "r" (v), "r" (ptr));
254#else
255 uint8_t *p = ptr;
256 p[0] = v;
257 p[1] = v >> 8;
258 p[2] = v >> 16;
259 p[3] = v >> 24;
260#endif
261}
262
2df3b95d 263static inline void stq_le_p(void *ptr, uint64_t v)
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264{
265 uint8_t *p = ptr;
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266 stl_p(p, (uint32_t)v);
267 stl_p(p + 4, v >> 32);
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268}
269
270/* float access */
271
2df3b95d 272static inline float32 ldfl_le_p(void *ptr)
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273{
274 union {
53cd6637 275 float32 f;
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276 uint32_t i;
277 } u;
2df3b95d 278 u.i = ldl_le_p(ptr);
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279 return u.f;
280}
281
2df3b95d 282static inline void stfl_le_p(void *ptr, float32 v)
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283{
284 union {
53cd6637 285 float32 f;
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286 uint32_t i;
287 } u;
288 u.f = v;
2df3b95d 289 stl_le_p(ptr, u.i);
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290}
291
2df3b95d 292static inline float64 ldfq_le_p(void *ptr)
5a9fdfec 293{
0ac4bd56 294 CPU_DoubleU u;
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295 u.l.lower = ldl_le_p(ptr);
296 u.l.upper = ldl_le_p(ptr + 4);
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297 return u.d;
298}
299
2df3b95d 300static inline void stfq_le_p(void *ptr, float64 v)
5a9fdfec 301{
0ac4bd56 302 CPU_DoubleU u;
5a9fdfec 303 u.d = v;
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304 stl_le_p(ptr, u.l.lower);
305 stl_le_p(ptr + 4, u.l.upper);
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306}
307
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308#else
309
310static inline int lduw_le_p(void *ptr)
311{
312 return *(uint16_t *)ptr;
313}
314
315static inline int ldsw_le_p(void *ptr)
316{
317 return *(int16_t *)ptr;
318}
93ac68bc 319
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320static inline int ldl_le_p(void *ptr)
321{
322 return *(uint32_t *)ptr;
323}
324
325static inline uint64_t ldq_le_p(void *ptr)
326{
327 return *(uint64_t *)ptr;
328}
329
330static inline void stw_le_p(void *ptr, int v)
331{
332 *(uint16_t *)ptr = v;
333}
334
335static inline void stl_le_p(void *ptr, int v)
336{
337 *(uint32_t *)ptr = v;
338}
339
340static inline void stq_le_p(void *ptr, uint64_t v)
341{
342 *(uint64_t *)ptr = v;
343}
344
345/* float access */
346
347static inline float32 ldfl_le_p(void *ptr)
348{
349 return *(float32 *)ptr;
350}
351
352static inline float64 ldfq_le_p(void *ptr)
353{
354 return *(float64 *)ptr;
355}
356
357static inline void stfl_le_p(void *ptr, float32 v)
358{
359 *(float32 *)ptr = v;
360}
361
362static inline void stfq_le_p(void *ptr, float64 v)
363{
364 *(float64 *)ptr = v;
365}
366#endif
367
368#if !defined(WORDS_BIGENDIAN) || defined(WORDS_ALIGNED)
369
370static inline int lduw_be_p(void *ptr)
93ac68bc 371{
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372#if defined(__i386__)
373 int val;
374 asm volatile ("movzwl %1, %0\n"
375 "xchgb %b0, %h0\n"
376 : "=q" (val)
377 : "m" (*(uint16_t *)ptr));
378 return val;
379#else
93ac68bc 380 uint8_t *b = (uint8_t *) ptr;
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381 return ((b[0] << 8) | b[1]);
382#endif
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383}
384
2df3b95d 385static inline int ldsw_be_p(void *ptr)
93ac68bc 386{
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387#if defined(__i386__)
388 int val;
389 asm volatile ("movzwl %1, %0\n"
390 "xchgb %b0, %h0\n"
391 : "=q" (val)
392 : "m" (*(uint16_t *)ptr));
393 return (int16_t)val;
394#else
395 uint8_t *b = (uint8_t *) ptr;
396 return (int16_t)((b[0] << 8) | b[1]);
397#endif
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398}
399
2df3b95d 400static inline int ldl_be_p(void *ptr)
93ac68bc 401{
4f2ac237 402#if defined(__i386__) || defined(__x86_64__)
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403 int val;
404 asm volatile ("movl %1, %0\n"
405 "bswap %0\n"
406 : "=r" (val)
407 : "m" (*(uint32_t *)ptr));
408 return val;
409#else
93ac68bc 410 uint8_t *b = (uint8_t *) ptr;
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411 return (b[0] << 24) | (b[1] << 16) | (b[2] << 8) | b[3];
412#endif
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413}
414
2df3b95d 415static inline uint64_t ldq_be_p(void *ptr)
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416{
417 uint32_t a,b;
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418 a = ldl_be_p(ptr);
419 b = ldl_be_p(ptr+4);
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420 return (((uint64_t)a<<32)|b);
421}
422
2df3b95d 423static inline void stw_be_p(void *ptr, int v)
93ac68bc 424{
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425#if defined(__i386__)
426 asm volatile ("xchgb %b0, %h0\n"
427 "movw %w0, %1\n"
428 : "=q" (v)
429 : "m" (*(uint16_t *)ptr), "0" (v));
430#else
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431 uint8_t *d = (uint8_t *) ptr;
432 d[0] = v >> 8;
433 d[1] = v;
83d73968 434#endif
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435}
436
2df3b95d 437static inline void stl_be_p(void *ptr, int v)
93ac68bc 438{
4f2ac237 439#if defined(__i386__) || defined(__x86_64__)
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440 asm volatile ("bswap %0\n"
441 "movl %0, %1\n"
442 : "=r" (v)
443 : "m" (*(uint32_t *)ptr), "0" (v));
444#else
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445 uint8_t *d = (uint8_t *) ptr;
446 d[0] = v >> 24;
447 d[1] = v >> 16;
448 d[2] = v >> 8;
449 d[3] = v;
83d73968 450#endif
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451}
452
2df3b95d 453static inline void stq_be_p(void *ptr, uint64_t v)
93ac68bc 454{
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455 stl_be_p(ptr, v >> 32);
456 stl_be_p(ptr + 4, v);
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457}
458
459/* float access */
460
2df3b95d 461static inline float32 ldfl_be_p(void *ptr)
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462{
463 union {
53cd6637 464 float32 f;
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465 uint32_t i;
466 } u;
2df3b95d 467 u.i = ldl_be_p(ptr);
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468 return u.f;
469}
470
2df3b95d 471static inline void stfl_be_p(void *ptr, float32 v)
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472{
473 union {
53cd6637 474 float32 f;
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475 uint32_t i;
476 } u;
477 u.f = v;
2df3b95d 478 stl_be_p(ptr, u.i);
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479}
480
2df3b95d 481static inline float64 ldfq_be_p(void *ptr)
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482{
483 CPU_DoubleU u;
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484 u.l.upper = ldl_be_p(ptr);
485 u.l.lower = ldl_be_p(ptr + 4);
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486 return u.d;
487}
488
2df3b95d 489static inline void stfq_be_p(void *ptr, float64 v)
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490{
491 CPU_DoubleU u;
492 u.d = v;
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493 stl_be_p(ptr, u.l.upper);
494 stl_be_p(ptr + 4, u.l.lower);
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495}
496
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497#else
498
2df3b95d 499static inline int lduw_be_p(void *ptr)
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500{
501 return *(uint16_t *)ptr;
502}
503
2df3b95d 504static inline int ldsw_be_p(void *ptr)
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505{
506 return *(int16_t *)ptr;
507}
508
2df3b95d 509static inline int ldl_be_p(void *ptr)
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510{
511 return *(uint32_t *)ptr;
512}
513
2df3b95d 514static inline uint64_t ldq_be_p(void *ptr)
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515{
516 return *(uint64_t *)ptr;
517}
518
2df3b95d 519static inline void stw_be_p(void *ptr, int v)
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520{
521 *(uint16_t *)ptr = v;
522}
523
2df3b95d 524static inline void stl_be_p(void *ptr, int v)
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525{
526 *(uint32_t *)ptr = v;
527}
528
2df3b95d 529static inline void stq_be_p(void *ptr, uint64_t v)
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530{
531 *(uint64_t *)ptr = v;
532}
533
534/* float access */
535
2df3b95d 536static inline float32 ldfl_be_p(void *ptr)
5a9fdfec 537{
53cd6637 538 return *(float32 *)ptr;
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539}
540
2df3b95d 541static inline float64 ldfq_be_p(void *ptr)
5a9fdfec 542{
53cd6637 543 return *(float64 *)ptr;
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544}
545
2df3b95d 546static inline void stfl_be_p(void *ptr, float32 v)
5a9fdfec 547{
53cd6637 548 *(float32 *)ptr = v;
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549}
550
2df3b95d 551static inline void stfq_be_p(void *ptr, float64 v)
5a9fdfec 552{
53cd6637 553 *(float64 *)ptr = v;
5a9fdfec 554}
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555
556#endif
557
558/* target CPU memory access functions */
559#if defined(TARGET_WORDS_BIGENDIAN)
560#define lduw_p(p) lduw_be_p(p)
561#define ldsw_p(p) ldsw_be_p(p)
562#define ldl_p(p) ldl_be_p(p)
563#define ldq_p(p) ldq_be_p(p)
564#define ldfl_p(p) ldfl_be_p(p)
565#define ldfq_p(p) ldfq_be_p(p)
566#define stw_p(p, v) stw_be_p(p, v)
567#define stl_p(p, v) stl_be_p(p, v)
568#define stq_p(p, v) stq_be_p(p, v)
569#define stfl_p(p, v) stfl_be_p(p, v)
570#define stfq_p(p, v) stfq_be_p(p, v)
571#else
572#define lduw_p(p) lduw_le_p(p)
573#define ldsw_p(p) ldsw_le_p(p)
574#define ldl_p(p) ldl_le_p(p)
575#define ldq_p(p) ldq_le_p(p)
576#define ldfl_p(p) ldfl_le_p(p)
577#define ldfq_p(p) ldfq_le_p(p)
578#define stw_p(p, v) stw_le_p(p, v)
579#define stl_p(p, v) stl_le_p(p, v)
580#define stq_p(p, v) stq_le_p(p, v)
581#define stfl_p(p, v) stfl_le_p(p, v)
582#define stfq_p(p, v) stfq_le_p(p, v)
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583#endif
584
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585/* MMU memory access macros */
586
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587/* NOTE: we use double casts if pointers and target_ulong have
588 different sizes */
589#define ldub_raw(p) ldub_p((uint8_t *)(long)(p))
590#define ldsb_raw(p) ldsb_p((uint8_t *)(long)(p))
591#define lduw_raw(p) lduw_p((uint8_t *)(long)(p))
592#define ldsw_raw(p) ldsw_p((uint8_t *)(long)(p))
593#define ldl_raw(p) ldl_p((uint8_t *)(long)(p))
594#define ldq_raw(p) ldq_p((uint8_t *)(long)(p))
595#define ldfl_raw(p) ldfl_p((uint8_t *)(long)(p))
596#define ldfq_raw(p) ldfq_p((uint8_t *)(long)(p))
597#define stb_raw(p, v) stb_p((uint8_t *)(long)(p), v)
598#define stw_raw(p, v) stw_p((uint8_t *)(long)(p), v)
599#define stl_raw(p, v) stl_p((uint8_t *)(long)(p), v)
600#define stq_raw(p, v) stq_p((uint8_t *)(long)(p), v)
601#define stfl_raw(p, v) stfl_p((uint8_t *)(long)(p), v)
602#define stfq_raw(p, v) stfq_p((uint8_t *)(long)(p), v)
603
604
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605#if defined(CONFIG_USER_ONLY)
606
607/* if user mode, no other memory access functions */
608#define ldub(p) ldub_raw(p)
609#define ldsb(p) ldsb_raw(p)
610#define lduw(p) lduw_raw(p)
611#define ldsw(p) ldsw_raw(p)
612#define ldl(p) ldl_raw(p)
613#define ldq(p) ldq_raw(p)
614#define ldfl(p) ldfl_raw(p)
615#define ldfq(p) ldfq_raw(p)
616#define stb(p, v) stb_raw(p, v)
617#define stw(p, v) stw_raw(p, v)
618#define stl(p, v) stl_raw(p, v)
619#define stq(p, v) stq_raw(p, v)
620#define stfl(p, v) stfl_raw(p, v)
621#define stfq(p, v) stfq_raw(p, v)
622
623#define ldub_code(p) ldub_raw(p)
624#define ldsb_code(p) ldsb_raw(p)
625#define lduw_code(p) lduw_raw(p)
626#define ldsw_code(p) ldsw_raw(p)
627#define ldl_code(p) ldl_raw(p)
628
629#define ldub_kernel(p) ldub_raw(p)
630#define ldsb_kernel(p) ldsb_raw(p)
631#define lduw_kernel(p) lduw_raw(p)
632#define ldsw_kernel(p) ldsw_raw(p)
633#define ldl_kernel(p) ldl_raw(p)
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634#define ldfl_kernel(p) ldfl_raw(p)
635#define ldfq_kernel(p) ldfq_raw(p)
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636#define stb_kernel(p, v) stb_raw(p, v)
637#define stw_kernel(p, v) stw_raw(p, v)
638#define stl_kernel(p, v) stl_raw(p, v)
639#define stq_kernel(p, v) stq_raw(p, v)
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640#define stfl_kernel(p, v) stfl_raw(p, v)
641#define stfq_kernel(p, vt) stfq_raw(p, v)
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642
643#endif /* defined(CONFIG_USER_ONLY) */
644
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645/* page related stuff */
646
647#define TARGET_PAGE_SIZE (1 << TARGET_PAGE_BITS)
648#define TARGET_PAGE_MASK ~(TARGET_PAGE_SIZE - 1)
649#define TARGET_PAGE_ALIGN(addr) (((addr) + TARGET_PAGE_SIZE - 1) & TARGET_PAGE_MASK)
650
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651extern unsigned long qemu_real_host_page_size;
652extern unsigned long qemu_host_page_bits;
653extern unsigned long qemu_host_page_size;
654extern unsigned long qemu_host_page_mask;
5a9fdfec 655
83fb7adf 656#define HOST_PAGE_ALIGN(addr) (((addr) + qemu_host_page_size - 1) & qemu_host_page_mask)
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657
658/* same as PROT_xxx */
659#define PAGE_READ 0x0001
660#define PAGE_WRITE 0x0002
661#define PAGE_EXEC 0x0004
662#define PAGE_BITS (PAGE_READ | PAGE_WRITE | PAGE_EXEC)
663#define PAGE_VALID 0x0008
664/* original state of the write flag (used when tracking self-modifying
665 code */
666#define PAGE_WRITE_ORG 0x0010
667
668void page_dump(FILE *f);
669int page_get_flags(unsigned long address);
670void page_set_flags(unsigned long start, unsigned long end, int flags);
671void page_unprotect_range(uint8_t *data, unsigned long data_size);
672
673#define SINGLE_CPU_DEFINES
674#ifdef SINGLE_CPU_DEFINES
675
676#if defined(TARGET_I386)
677
678#define CPUState CPUX86State
679#define cpu_init cpu_x86_init
680#define cpu_exec cpu_x86_exec
681#define cpu_gen_code cpu_x86_gen_code
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682#define cpu_signal_handler cpu_x86_signal_handler
683
684#elif defined(TARGET_ARM)
685
686#define CPUState CPUARMState
687#define cpu_init cpu_arm_init
688#define cpu_exec cpu_arm_exec
689#define cpu_gen_code cpu_arm_gen_code
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690#define cpu_signal_handler cpu_arm_signal_handler
691
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692#elif defined(TARGET_SPARC)
693
694#define CPUState CPUSPARCState
695#define cpu_init cpu_sparc_init
696#define cpu_exec cpu_sparc_exec
697#define cpu_gen_code cpu_sparc_gen_code
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698#define cpu_signal_handler cpu_sparc_signal_handler
699
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700#elif defined(TARGET_PPC)
701
702#define CPUState CPUPPCState
703#define cpu_init cpu_ppc_init
704#define cpu_exec cpu_ppc_exec
705#define cpu_gen_code cpu_ppc_gen_code
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706#define cpu_signal_handler cpu_ppc_signal_handler
707
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708#elif defined(TARGET_MIPS)
709#define CPUState CPUMIPSState
710#define cpu_init cpu_mips_init
711#define cpu_exec cpu_mips_exec
712#define cpu_gen_code cpu_mips_gen_code
713#define cpu_signal_handler cpu_mips_signal_handler
714
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715#else
716
717#error unsupported target CPU
718
719#endif
720
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721#endif /* SINGLE_CPU_DEFINES */
722
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723void cpu_dump_state(CPUState *env, FILE *f,
724 int (*cpu_fprintf)(FILE *f, const char *fmt, ...),
725 int flags);
726
972ddf78 727void cpu_abort(CPUState *env, const char *fmt, ...);
e2f22898 728extern CPUState *cpu_single_env;
9acbed06 729extern int code_copy_enabled;
5a9fdfec 730
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731#define CPU_INTERRUPT_EXIT 0x01 /* wants exit from main loop */
732#define CPU_INTERRUPT_HARD 0x02 /* hardware interrupt pending */
733#define CPU_INTERRUPT_EXITTB 0x04 /* exit the current TB (use for x86 a20 case) */
ef792f9d 734#define CPU_INTERRUPT_TIMER 0x08 /* internal timer exception pending */
4690764b 735void cpu_interrupt(CPUState *s, int mask);
b54ad049 736void cpu_reset_interrupt(CPUState *env, int mask);
68a79315 737
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738int cpu_breakpoint_insert(CPUState *env, target_ulong pc);
739int cpu_breakpoint_remove(CPUState *env, target_ulong pc);
c33a346e 740void cpu_single_step(CPUState *env, int enabled);
d95dc32d 741void cpu_reset(CPUState *s);
4c3a88a2 742
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743/* Return the physical page corresponding to a virtual one. Use it
744 only for debugging because no protection checks are done. Return -1
745 if no page found. */
746target_ulong cpu_get_phys_page_debug(CPUState *env, target_ulong addr);
747
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748#define CPU_LOG_TB_OUT_ASM (1 << 0)
749#define CPU_LOG_TB_IN_ASM (1 << 1)
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750#define CPU_LOG_TB_OP (1 << 2)
751#define CPU_LOG_TB_OP_OPT (1 << 3)
752#define CPU_LOG_INT (1 << 4)
753#define CPU_LOG_EXEC (1 << 5)
754#define CPU_LOG_PCALL (1 << 6)
fd872598 755#define CPU_LOG_IOPORT (1 << 7)
9fddaa0c 756#define CPU_LOG_TB_CPU (1 << 8)
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757
758/* define log items */
759typedef struct CPULogItem {
760 int mask;
761 const char *name;
762 const char *help;
763} CPULogItem;
764
765extern CPULogItem cpu_log_items[];
766
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767void cpu_set_log(int log_flags);
768void cpu_set_log_filename(const char *filename);
f193c797 769int cpu_str_to_log_mask(const char *str);
34865134 770
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771/* IO ports API */
772
773/* NOTE: as these functions may be even used when there is an isa
774 brige on non x86 targets, we always defined them */
775#ifndef NO_CPU_IO_DEFS
776void cpu_outb(CPUState *env, int addr, int val);
777void cpu_outw(CPUState *env, int addr, int val);
778void cpu_outl(CPUState *env, int addr, int val);
779int cpu_inb(CPUState *env, int addr);
780int cpu_inw(CPUState *env, int addr);
781int cpu_inl(CPUState *env, int addr);
782#endif
783
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784/* memory API */
785
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786extern int phys_ram_size;
787extern int phys_ram_fd;
788extern uint8_t *phys_ram_base;
1ccde1cb 789extern uint8_t *phys_ram_dirty;
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790
791/* physical memory access */
792#define IO_MEM_NB_ENTRIES 256
793#define TLB_INVALID_MASK (1 << 3)
794#define IO_MEM_SHIFT 4
795
796#define IO_MEM_RAM (0 << IO_MEM_SHIFT) /* hardcoded offset */
797#define IO_MEM_ROM (1 << IO_MEM_SHIFT) /* hardcoded offset */
798#define IO_MEM_UNASSIGNED (2 << IO_MEM_SHIFT)
1ccde1cb 799#define IO_MEM_NOTDIRTY (4 << IO_MEM_SHIFT) /* used internally, never use directly */
edf75d59 800
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801typedef void CPUWriteMemoryFunc(void *opaque, target_phys_addr_t addr, uint32_t value);
802typedef uint32_t CPUReadMemoryFunc(void *opaque, target_phys_addr_t addr);
33417e70 803
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804void cpu_register_physical_memory(target_phys_addr_t start_addr,
805 unsigned long size,
806 unsigned long phys_offset);
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807int cpu_register_io_memory(int io_index,
808 CPUReadMemoryFunc **mem_read,
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809 CPUWriteMemoryFunc **mem_write,
810 void *opaque);
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811CPUWriteMemoryFunc **cpu_get_io_memory_write(int io_index);
812CPUReadMemoryFunc **cpu_get_io_memory_read(int io_index);
33417e70 813
2e12669a 814void cpu_physical_memory_rw(target_phys_addr_t addr, uint8_t *buf,
13eb76e0 815 int len, int is_write);
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816static inline void cpu_physical_memory_read(target_phys_addr_t addr,
817 uint8_t *buf, int len)
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818{
819 cpu_physical_memory_rw(addr, buf, len, 0);
820}
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821static inline void cpu_physical_memory_write(target_phys_addr_t addr,
822 const uint8_t *buf, int len)
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823{
824 cpu_physical_memory_rw(addr, (uint8_t *)buf, len, 1);
825}
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826uint32_t ldub_phys(target_phys_addr_t addr);
827uint32_t lduw_phys(target_phys_addr_t addr);
8df1cd07 828uint32_t ldl_phys(target_phys_addr_t addr);
aab33094 829uint64_t ldq_phys(target_phys_addr_t addr);
8df1cd07 830void stl_phys_notdirty(target_phys_addr_t addr, uint32_t val);
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831void stb_phys(target_phys_addr_t addr, uint32_t val);
832void stw_phys(target_phys_addr_t addr, uint32_t val);
8df1cd07 833void stl_phys(target_phys_addr_t addr, uint32_t val);
aab33094 834void stq_phys(target_phys_addr_t addr, uint64_t val);
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835
836int cpu_memory_rw_debug(CPUState *env, target_ulong addr,
837 uint8_t *buf, int len, int is_write);
13eb76e0 838
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839#define VGA_DIRTY_FLAG 0x01
840#define CODE_DIRTY_FLAG 0x02
0a962c02 841
1ccde1cb 842/* read dirty bit (return 0 or 1) */
04c504cc 843static inline int cpu_physical_memory_is_dirty(ram_addr_t addr)
1ccde1cb 844{
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845 return phys_ram_dirty[addr >> TARGET_PAGE_BITS] == 0xff;
846}
847
04c504cc 848static inline int cpu_physical_memory_get_dirty(ram_addr_t addr,
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849 int dirty_flags)
850{
851 return phys_ram_dirty[addr >> TARGET_PAGE_BITS] & dirty_flags;
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852}
853
04c504cc 854static inline void cpu_physical_memory_set_dirty(ram_addr_t addr)
1ccde1cb 855{
0a962c02 856 phys_ram_dirty[addr >> TARGET_PAGE_BITS] = 0xff;
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857}
858
04c504cc 859void cpu_physical_memory_reset_dirty(ram_addr_t start, ram_addr_t end,
0a962c02 860 int dirty_flags);
04c504cc 861void cpu_tlb_update_dirty(CPUState *env);
1ccde1cb 862
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863void dump_exec_info(FILE *f,
864 int (*cpu_fprintf)(FILE *f, const char *fmt, ...));
865
5a9fdfec 866#endif /* CPU_ALL_H */