aml-build.c 85 KB

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  1. /* Support for generating ACPI tables and passing them to Guests
  2. *
  3. * Copyright (C) 2015 Red Hat Inc
  4. *
  5. * Author: Michael S. Tsirkin <mst@redhat.com>
  6. * Author: Igor Mammedov <imammedo@redhat.com>
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation; either version 2 of the License, or
  11. * (at your option) any later version.
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. * You should have received a copy of the GNU General Public License along
  17. * with this program; if not, see <http://www.gnu.org/licenses/>.
  18. */
  19. #include "qemu/osdep.h"
  20. #include <glib/gprintf.h>
  21. #include "hw/acpi/aml-build.h"
  22. #include "qemu/bswap.h"
  23. #include "qemu/bitops.h"
  24. #include "system/numa.h"
  25. #include "hw/boards.h"
  26. #include "hw/acpi/tpm.h"
  27. #include "hw/pci/pci_host.h"
  28. #include "hw/pci/pci_bus.h"
  29. #include "hw/pci/pci_bridge.h"
  30. #include "qemu/cutils.h"
  31. #include "qom/object.h"
  32. static GArray *build_alloc_array(void)
  33. {
  34. return g_array_new(false, true /* clear */, 1);
  35. }
  36. static void build_free_array(GArray *array)
  37. {
  38. g_array_free(array, true);
  39. }
  40. static void build_prepend_byte(GArray *array, uint8_t val)
  41. {
  42. g_array_prepend_val(array, val);
  43. }
  44. static void build_append_byte(GArray *array, uint8_t val)
  45. {
  46. g_array_append_val(array, val);
  47. }
  48. static void build_append_padded_str(GArray *array, const char *str,
  49. size_t maxlen, char pad)
  50. {
  51. size_t i;
  52. size_t len = strlen(str);
  53. g_assert(len <= maxlen);
  54. g_array_append_vals(array, str, len);
  55. for (i = maxlen - len; i > 0; i--) {
  56. g_array_append_val(array, pad);
  57. }
  58. }
  59. static void build_append_array(GArray *array, GArray *val)
  60. {
  61. g_array_append_vals(array, val->data, val->len);
  62. }
  63. #define ACPI_NAMESEG_LEN 4
  64. void crs_range_insert(GPtrArray *ranges, uint64_t base, uint64_t limit)
  65. {
  66. CrsRangeEntry *entry;
  67. entry = g_malloc(sizeof(*entry));
  68. entry->base = base;
  69. entry->limit = limit;
  70. g_ptr_array_add(ranges, entry);
  71. }
  72. static void crs_range_free(gpointer data)
  73. {
  74. CrsRangeEntry *entry = (CrsRangeEntry *)data;
  75. g_free(entry);
  76. }
  77. void crs_range_set_init(CrsRangeSet *range_set)
  78. {
  79. range_set->io_ranges = g_ptr_array_new_with_free_func(crs_range_free);
  80. range_set->mem_ranges = g_ptr_array_new_with_free_func(crs_range_free);
  81. range_set->mem_64bit_ranges =
  82. g_ptr_array_new_with_free_func(crs_range_free);
  83. }
  84. void crs_range_set_free(CrsRangeSet *range_set)
  85. {
  86. g_ptr_array_free(range_set->io_ranges, true);
  87. g_ptr_array_free(range_set->mem_ranges, true);
  88. g_ptr_array_free(range_set->mem_64bit_ranges, true);
  89. }
  90. static gint crs_range_compare(gconstpointer a, gconstpointer b)
  91. {
  92. CrsRangeEntry *entry_a = *(CrsRangeEntry **)a;
  93. CrsRangeEntry *entry_b = *(CrsRangeEntry **)b;
  94. if (entry_a->base < entry_b->base) {
  95. return -1;
  96. } else if (entry_a->base > entry_b->base) {
  97. return 1;
  98. } else {
  99. return 0;
  100. }
  101. }
  102. /*
  103. * crs_replace_with_free_ranges - given the 'used' ranges within [start - end]
  104. * interval, computes the 'free' ranges from the same interval.
  105. * Example: If the input array is { [a1 - a2],[b1 - b2] }, the function
  106. * will return { [base - a1], [a2 - b1], [b2 - limit] }.
  107. */
  108. void crs_replace_with_free_ranges(GPtrArray *ranges,
  109. uint64_t start, uint64_t end)
  110. {
  111. GPtrArray *free_ranges = g_ptr_array_new();
  112. uint64_t free_base = start;
  113. int i;
  114. g_ptr_array_sort(ranges, crs_range_compare);
  115. for (i = 0; i < ranges->len; i++) {
  116. CrsRangeEntry *used = g_ptr_array_index(ranges, i);
  117. if (free_base < used->base) {
  118. crs_range_insert(free_ranges, free_base, used->base - 1);
  119. }
  120. free_base = used->limit + 1;
  121. }
  122. if (free_base < end) {
  123. crs_range_insert(free_ranges, free_base, end);
  124. }
  125. g_ptr_array_set_size(ranges, 0);
  126. for (i = 0; i < free_ranges->len; i++) {
  127. g_ptr_array_add(ranges, g_ptr_array_index(free_ranges, i));
  128. }
  129. g_ptr_array_free(free_ranges, true);
  130. }
  131. /*
  132. * crs_range_merge - merges adjacent ranges in the given array.
  133. * Array elements are deleted and replaced with the merged ranges.
  134. */
  135. static void crs_range_merge(GPtrArray *range)
  136. {
  137. GPtrArray *tmp = g_ptr_array_new_with_free_func(crs_range_free);
  138. CrsRangeEntry *entry;
  139. uint64_t range_base, range_limit;
  140. int i;
  141. if (!range->len) {
  142. return;
  143. }
  144. g_ptr_array_sort(range, crs_range_compare);
  145. entry = g_ptr_array_index(range, 0);
  146. range_base = entry->base;
  147. range_limit = entry->limit;
  148. for (i = 1; i < range->len; i++) {
  149. entry = g_ptr_array_index(range, i);
  150. if (entry->base - 1 == range_limit) {
  151. range_limit = entry->limit;
  152. } else {
  153. crs_range_insert(tmp, range_base, range_limit);
  154. range_base = entry->base;
  155. range_limit = entry->limit;
  156. }
  157. }
  158. crs_range_insert(tmp, range_base, range_limit);
  159. g_ptr_array_set_size(range, 0);
  160. for (i = 0; i < tmp->len; i++) {
  161. entry = g_ptr_array_index(tmp, i);
  162. crs_range_insert(range, entry->base, entry->limit);
  163. }
  164. g_ptr_array_free(tmp, true);
  165. }
  166. static void
  167. build_append_nameseg(GArray *array, const char *seg)
  168. {
  169. int len;
  170. len = strlen(seg);
  171. assert(len <= ACPI_NAMESEG_LEN);
  172. g_array_append_vals(array, seg, len);
  173. /* Pad up to ACPI_NAMESEG_LEN characters if necessary. */
  174. g_array_append_vals(array, "____", ACPI_NAMESEG_LEN - len);
  175. }
  176. static void G_GNUC_PRINTF(2, 0)
  177. build_append_namestringv(GArray *array, const char *format, va_list ap)
  178. {
  179. char *s;
  180. char **segs;
  181. char **segs_iter;
  182. int seg_count = 0;
  183. s = g_strdup_vprintf(format, ap);
  184. segs = g_strsplit(s, ".", 0);
  185. g_free(s);
  186. /* count segments */
  187. segs_iter = segs;
  188. while (*segs_iter) {
  189. ++segs_iter;
  190. ++seg_count;
  191. }
  192. /*
  193. * ACPI 5.0 spec: 20.2.2 Name Objects Encoding:
  194. * "SegCount can be from 1 to 255"
  195. */
  196. assert(seg_count > 0 && seg_count <= 255);
  197. /* handle RootPath || PrefixPath */
  198. s = *segs;
  199. while (*s == '\\' || *s == '^') {
  200. build_append_byte(array, *s);
  201. ++s;
  202. }
  203. switch (seg_count) {
  204. case 1:
  205. if (!*s) {
  206. build_append_byte(array, 0x00); /* NullName */
  207. } else {
  208. build_append_nameseg(array, s);
  209. }
  210. break;
  211. case 2:
  212. build_append_byte(array, 0x2E); /* DualNamePrefix */
  213. build_append_nameseg(array, s);
  214. build_append_nameseg(array, segs[1]);
  215. break;
  216. default:
  217. build_append_byte(array, 0x2F); /* MultiNamePrefix */
  218. build_append_byte(array, seg_count);
  219. /* handle the 1st segment manually due to prefix/root path */
  220. build_append_nameseg(array, s);
  221. /* add the rest of segments */
  222. segs_iter = segs + 1;
  223. while (*segs_iter) {
  224. build_append_nameseg(array, *segs_iter);
  225. ++segs_iter;
  226. }
  227. break;
  228. }
  229. g_strfreev(segs);
  230. }
  231. G_GNUC_PRINTF(2, 3)
  232. static void build_append_namestring(GArray *array, const char *format, ...)
  233. {
  234. va_list ap;
  235. va_start(ap, format);
  236. build_append_namestringv(array, format, ap);
  237. va_end(ap);
  238. }
  239. /* 5.4 Definition Block Encoding */
  240. enum {
  241. PACKAGE_LENGTH_1BYTE_SHIFT = 6, /* Up to 63 - use extra 2 bits. */
  242. PACKAGE_LENGTH_2BYTE_SHIFT = 4,
  243. PACKAGE_LENGTH_3BYTE_SHIFT = 12,
  244. PACKAGE_LENGTH_4BYTE_SHIFT = 20,
  245. };
  246. static void
  247. build_prepend_package_length(GArray *package, unsigned length, bool incl_self)
  248. {
  249. uint8_t byte;
  250. unsigned length_bytes;
  251. if (length + 1 < (1 << PACKAGE_LENGTH_1BYTE_SHIFT)) {
  252. length_bytes = 1;
  253. } else if (length + 2 < (1 << PACKAGE_LENGTH_3BYTE_SHIFT)) {
  254. length_bytes = 2;
  255. } else if (length + 3 < (1 << PACKAGE_LENGTH_4BYTE_SHIFT)) {
  256. length_bytes = 3;
  257. } else {
  258. length_bytes = 4;
  259. }
  260. /*
  261. * NamedField uses PkgLength encoding but it doesn't include length
  262. * of PkgLength itself.
  263. */
  264. if (incl_self) {
  265. /*
  266. * PkgLength is the length of the inclusive length of the data
  267. * and PkgLength's length itself when used for terms with
  268. * explicit length.
  269. */
  270. length += length_bytes;
  271. }
  272. switch (length_bytes) {
  273. case 1:
  274. byte = length;
  275. build_prepend_byte(package, byte);
  276. return;
  277. case 4:
  278. byte = length >> PACKAGE_LENGTH_4BYTE_SHIFT;
  279. build_prepend_byte(package, byte);
  280. length &= (1 << PACKAGE_LENGTH_4BYTE_SHIFT) - 1;
  281. /* fall through */
  282. case 3:
  283. byte = length >> PACKAGE_LENGTH_3BYTE_SHIFT;
  284. build_prepend_byte(package, byte);
  285. length &= (1 << PACKAGE_LENGTH_3BYTE_SHIFT) - 1;
  286. /* fall through */
  287. case 2:
  288. byte = length >> PACKAGE_LENGTH_2BYTE_SHIFT;
  289. build_prepend_byte(package, byte);
  290. length &= (1 << PACKAGE_LENGTH_2BYTE_SHIFT) - 1;
  291. /* fall through */
  292. }
  293. /*
  294. * Most significant two bits of byte zero indicate how many following bytes
  295. * are in PkgLength encoding.
  296. */
  297. byte = ((length_bytes - 1) << PACKAGE_LENGTH_1BYTE_SHIFT) | length;
  298. build_prepend_byte(package, byte);
  299. }
  300. static void
  301. build_append_pkg_length(GArray *array, unsigned length, bool incl_self)
  302. {
  303. GArray *tmp = build_alloc_array();
  304. build_prepend_package_length(tmp, length, incl_self);
  305. build_append_array(array, tmp);
  306. build_free_array(tmp);
  307. }
  308. static void build_package(GArray *package, uint8_t op)
  309. {
  310. build_prepend_package_length(package, package->len, true);
  311. build_prepend_byte(package, op);
  312. }
  313. static void build_extop_package(GArray *package, uint8_t op)
  314. {
  315. build_package(package, op);
  316. build_prepend_byte(package, 0x5B); /* ExtOpPrefix */
  317. }
  318. void build_append_int_noprefix(GArray *table, uint64_t value, int size)
  319. {
  320. int i;
  321. for (i = 0; i < size; ++i) {
  322. build_append_byte(table, value & 0xFF);
  323. value = value >> 8;
  324. }
  325. }
  326. static void build_append_int(GArray *table, uint64_t value)
  327. {
  328. if (value == 0x00) {
  329. build_append_byte(table, 0x00); /* ZeroOp */
  330. } else if (value == 0x01) {
  331. build_append_byte(table, 0x01); /* OneOp */
  332. } else if (value <= 0xFF) {
  333. build_append_byte(table, 0x0A); /* BytePrefix */
  334. build_append_int_noprefix(table, value, 1);
  335. } else if (value <= 0xFFFF) {
  336. build_append_byte(table, 0x0B); /* WordPrefix */
  337. build_append_int_noprefix(table, value, 2);
  338. } else if (value <= 0xFFFFFFFF) {
  339. build_append_byte(table, 0x0C); /* DWordPrefix */
  340. build_append_int_noprefix(table, value, 4);
  341. } else {
  342. build_append_byte(table, 0x0E); /* QWordPrefix */
  343. build_append_int_noprefix(table, value, 8);
  344. }
  345. }
  346. /* Generic Address Structure (GAS)
  347. * ACPI 2.0/3.0: 5.2.3.1 Generic Address Structure
  348. * 2.0 compat note:
  349. * @access_width must be 0, see ACPI 2.0:Table 5-1
  350. */
  351. void build_append_gas(GArray *table, AmlAddressSpace as,
  352. uint8_t bit_width, uint8_t bit_offset,
  353. uint8_t access_width, uint64_t address)
  354. {
  355. build_append_int_noprefix(table, as, 1);
  356. build_append_int_noprefix(table, bit_width, 1);
  357. build_append_int_noprefix(table, bit_offset, 1);
  358. build_append_int_noprefix(table, access_width, 1);
  359. build_append_int_noprefix(table, address, 8);
  360. }
  361. /*
  362. * Build NAME(XXXX, 0x00000000) where 0x00000000 is encoded as a dword,
  363. * and return the offset to 0x00000000 for runtime patching.
  364. *
  365. * Warning: runtime patching is best avoided. Only use this as
  366. * a replacement for DataTableRegion (for guests that don't
  367. * support it).
  368. */
  369. int
  370. build_append_named_dword(GArray *array, const char *name_format, ...)
  371. {
  372. int offset;
  373. va_list ap;
  374. build_append_byte(array, 0x08); /* NameOp */
  375. va_start(ap, name_format);
  376. build_append_namestringv(array, name_format, ap);
  377. va_end(ap);
  378. build_append_byte(array, 0x0C); /* DWordPrefix */
  379. offset = array->len;
  380. build_append_int_noprefix(array, 0x00000000, 4);
  381. assert(array->len == offset + 4);
  382. return offset;
  383. }
  384. static GPtrArray *alloc_list;
  385. static Aml *aml_alloc(void)
  386. {
  387. Aml *var = g_new0(typeof(*var), 1);
  388. g_ptr_array_add(alloc_list, var);
  389. var->block_flags = AML_NO_OPCODE;
  390. var->buf = build_alloc_array();
  391. return var;
  392. }
  393. static Aml *aml_opcode(uint8_t op)
  394. {
  395. Aml *var = aml_alloc();
  396. var->op = op;
  397. var->block_flags = AML_OPCODE;
  398. return var;
  399. }
  400. static Aml *aml_bundle(uint8_t op, AmlBlockFlags flags)
  401. {
  402. Aml *var = aml_alloc();
  403. var->op = op;
  404. var->block_flags = flags;
  405. return var;
  406. }
  407. static void aml_free(gpointer data, gpointer user_data)
  408. {
  409. Aml *var = data;
  410. build_free_array(var->buf);
  411. g_free(var);
  412. }
  413. Aml *init_aml_allocator(void)
  414. {
  415. assert(!alloc_list);
  416. alloc_list = g_ptr_array_new();
  417. return aml_alloc();
  418. }
  419. void free_aml_allocator(void)
  420. {
  421. g_ptr_array_foreach(alloc_list, aml_free, NULL);
  422. g_ptr_array_free(alloc_list, true);
  423. alloc_list = 0;
  424. }
  425. /* pack data with DefBuffer encoding */
  426. static void build_buffer(GArray *array, uint8_t op)
  427. {
  428. GArray *data = build_alloc_array();
  429. build_append_int(data, array->len);
  430. g_array_prepend_vals(array, data->data, data->len);
  431. build_free_array(data);
  432. build_package(array, op);
  433. }
  434. void aml_append(Aml *parent_ctx, Aml *child)
  435. {
  436. GArray *buf = build_alloc_array();
  437. build_append_array(buf, child->buf);
  438. switch (child->block_flags) {
  439. case AML_OPCODE:
  440. build_append_byte(parent_ctx->buf, child->op);
  441. break;
  442. case AML_EXT_PACKAGE:
  443. build_extop_package(buf, child->op);
  444. break;
  445. case AML_PACKAGE:
  446. build_package(buf, child->op);
  447. break;
  448. case AML_RES_TEMPLATE:
  449. build_append_byte(buf, 0x79); /* EndTag */
  450. /*
  451. * checksum operations are treated as succeeded if checksum
  452. * field is zero. [ACPI Spec 1.0b, 6.4.2.8 End Tag]
  453. */
  454. build_append_byte(buf, 0);
  455. /* fall through, to pack resources in buffer */
  456. case AML_BUFFER:
  457. build_buffer(buf, child->op);
  458. break;
  459. case AML_NO_OPCODE:
  460. break;
  461. default:
  462. g_assert_not_reached();
  463. }
  464. build_append_array(parent_ctx->buf, buf);
  465. build_free_array(buf);
  466. }
  467. /* ACPI 1.0b: 16.2.5.1 Namespace Modifier Objects Encoding: DefScope */
  468. Aml *aml_scope(const char *name_format, ...)
  469. {
  470. va_list ap;
  471. Aml *var = aml_bundle(0x10 /* ScopeOp */, AML_PACKAGE);
  472. va_start(ap, name_format);
  473. build_append_namestringv(var->buf, name_format, ap);
  474. va_end(ap);
  475. return var;
  476. }
  477. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefReturn */
  478. Aml *aml_return(Aml *val)
  479. {
  480. Aml *var = aml_opcode(0xA4 /* ReturnOp */);
  481. aml_append(var, val);
  482. return var;
  483. }
  484. /* ACPI 1.0b: 16.2.6.3 Debug Objects Encoding: DebugObj */
  485. Aml *aml_debug(void)
  486. {
  487. Aml *var = aml_alloc();
  488. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  489. build_append_byte(var->buf, 0x31); /* DebugOp */
  490. return var;
  491. }
  492. /*
  493. * ACPI 1.0b: 16.2.3 Data Objects Encoding:
  494. * encodes: ByteConst, WordConst, DWordConst, QWordConst, ZeroOp, OneOp
  495. */
  496. Aml *aml_int(const uint64_t val)
  497. {
  498. Aml *var = aml_alloc();
  499. build_append_int(var->buf, val);
  500. return var;
  501. }
  502. /*
  503. * helper to construct NameString, which returns Aml object
  504. * for using with aml_append or other aml_* terms
  505. */
  506. Aml *aml_name(const char *name_format, ...)
  507. {
  508. va_list ap;
  509. Aml *var = aml_alloc();
  510. va_start(ap, name_format);
  511. build_append_namestringv(var->buf, name_format, ap);
  512. va_end(ap);
  513. return var;
  514. }
  515. /* ACPI 1.0b: 16.2.5.1 Namespace Modifier Objects Encoding: DefName */
  516. Aml *aml_name_decl(const char *name, Aml *val)
  517. {
  518. Aml *var = aml_opcode(0x08 /* NameOp */);
  519. build_append_namestring(var->buf, "%s", name);
  520. aml_append(var, val);
  521. return var;
  522. }
  523. /* ACPI 1.0b: 16.2.6.1 Arg Objects Encoding */
  524. Aml *aml_arg(int pos)
  525. {
  526. uint8_t op = 0x68 /* ARG0 op */ + pos;
  527. assert(pos <= 6);
  528. return aml_opcode(op);
  529. }
  530. /* ACPI 2.0a: 17.2.4.4 Type 2 Opcodes Encoding: DefToInteger */
  531. Aml *aml_to_integer(Aml *arg)
  532. {
  533. Aml *var = aml_opcode(0x99 /* ToIntegerOp */);
  534. aml_append(var, arg);
  535. build_append_byte(var->buf, 0x00 /* NullNameOp */);
  536. return var;
  537. }
  538. /* ACPI 2.0a: 17.2.4.4 Type 2 Opcodes Encoding: DefToHexString */
  539. Aml *aml_to_hexstring(Aml *src, Aml *dst)
  540. {
  541. Aml *var = aml_opcode(0x98 /* ToHexStringOp */);
  542. aml_append(var, src);
  543. if (dst) {
  544. aml_append(var, dst);
  545. } else {
  546. build_append_byte(var->buf, 0x00 /* NullNameOp */);
  547. }
  548. return var;
  549. }
  550. /* ACPI 2.0a: 17.2.4.4 Type 2 Opcodes Encoding: DefToBuffer */
  551. Aml *aml_to_buffer(Aml *src, Aml *dst)
  552. {
  553. Aml *var = aml_opcode(0x96 /* ToBufferOp */);
  554. aml_append(var, src);
  555. if (dst) {
  556. aml_append(var, dst);
  557. } else {
  558. build_append_byte(var->buf, 0x00 /* NullNameOp */);
  559. }
  560. return var;
  561. }
  562. /* ACPI 2.0a: 17.2.4.4 Type 2 Opcodes Encoding: DefToDecimalString */
  563. Aml *aml_to_decimalstring(Aml *src, Aml *dst)
  564. {
  565. Aml *var = aml_opcode(0x97 /* ToDecimalStringOp */);
  566. aml_append(var, src);
  567. if (dst) {
  568. aml_append(var, dst);
  569. } else {
  570. build_append_byte(var->buf, 0x00 /* NullNameOp */);
  571. }
  572. return var;
  573. }
  574. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefStore */
  575. Aml *aml_store(Aml *val, Aml *target)
  576. {
  577. Aml *var = aml_opcode(0x70 /* StoreOp */);
  578. aml_append(var, val);
  579. aml_append(var, target);
  580. return var;
  581. }
  582. /**
  583. * build_opcode_2arg_dst:
  584. * @op: 1-byte opcode
  585. * @arg1: 1st operand
  586. * @arg2: 2nd operand
  587. * @dst: optional target to store to, set to NULL if it's not required
  588. *
  589. * An internal helper to compose AML terms that have
  590. * "Op Operand Operand Target"
  591. * pattern.
  592. *
  593. * Returns: The newly allocated and composed according to pattern Aml object.
  594. */
  595. static Aml *
  596. build_opcode_2arg_dst(uint8_t op, Aml *arg1, Aml *arg2, Aml *dst)
  597. {
  598. Aml *var = aml_opcode(op);
  599. aml_append(var, arg1);
  600. aml_append(var, arg2);
  601. if (dst) {
  602. aml_append(var, dst);
  603. } else {
  604. build_append_byte(var->buf, 0x00 /* NullNameOp */);
  605. }
  606. return var;
  607. }
  608. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefAnd */
  609. Aml *aml_and(Aml *arg1, Aml *arg2, Aml *dst)
  610. {
  611. return build_opcode_2arg_dst(0x7B /* AndOp */, arg1, arg2, dst);
  612. }
  613. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefOr */
  614. Aml *aml_or(Aml *arg1, Aml *arg2, Aml *dst)
  615. {
  616. return build_opcode_2arg_dst(0x7D /* OrOp */, arg1, arg2, dst);
  617. }
  618. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLAnd */
  619. Aml *aml_land(Aml *arg1, Aml *arg2)
  620. {
  621. Aml *var = aml_opcode(0x90 /* LAndOp */);
  622. aml_append(var, arg1);
  623. aml_append(var, arg2);
  624. return var;
  625. }
  626. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLOr */
  627. Aml *aml_lor(Aml *arg1, Aml *arg2)
  628. {
  629. Aml *var = aml_opcode(0x91 /* LOrOp */);
  630. aml_append(var, arg1);
  631. aml_append(var, arg2);
  632. return var;
  633. }
  634. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefShiftLeft */
  635. Aml *aml_shiftleft(Aml *arg1, Aml *count)
  636. {
  637. return build_opcode_2arg_dst(0x79 /* ShiftLeftOp */, arg1, count, NULL);
  638. }
  639. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefShiftRight */
  640. Aml *aml_shiftright(Aml *arg1, Aml *count, Aml *dst)
  641. {
  642. return build_opcode_2arg_dst(0x7A /* ShiftRightOp */, arg1, count, dst);
  643. }
  644. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLLess */
  645. Aml *aml_lless(Aml *arg1, Aml *arg2)
  646. {
  647. Aml *var = aml_opcode(0x95 /* LLessOp */);
  648. aml_append(var, arg1);
  649. aml_append(var, arg2);
  650. return var;
  651. }
  652. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefAdd */
  653. Aml *aml_add(Aml *arg1, Aml *arg2, Aml *dst)
  654. {
  655. return build_opcode_2arg_dst(0x72 /* AddOp */, arg1, arg2, dst);
  656. }
  657. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefSubtract */
  658. Aml *aml_subtract(Aml *arg1, Aml *arg2, Aml *dst)
  659. {
  660. return build_opcode_2arg_dst(0x74 /* SubtractOp */, arg1, arg2, dst);
  661. }
  662. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefIncrement */
  663. Aml *aml_increment(Aml *arg)
  664. {
  665. Aml *var = aml_opcode(0x75 /* IncrementOp */);
  666. aml_append(var, arg);
  667. return var;
  668. }
  669. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefDecrement */
  670. Aml *aml_decrement(Aml *arg)
  671. {
  672. Aml *var = aml_opcode(0x76 /* DecrementOp */);
  673. aml_append(var, arg);
  674. return var;
  675. }
  676. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefIndex */
  677. Aml *aml_index(Aml *arg1, Aml *idx)
  678. {
  679. return build_opcode_2arg_dst(0x88 /* IndexOp */, arg1, idx, NULL);
  680. }
  681. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefNotify */
  682. Aml *aml_notify(Aml *arg1, Aml *arg2)
  683. {
  684. Aml *var = aml_opcode(0x86 /* NotifyOp */);
  685. aml_append(var, arg1);
  686. aml_append(var, arg2);
  687. return var;
  688. }
  689. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefBreak */
  690. Aml *aml_break(void)
  691. {
  692. Aml *var = aml_opcode(0xa5 /* BreakOp */);
  693. return var;
  694. }
  695. /* helper to call method without argument */
  696. Aml *aml_call0(const char *method)
  697. {
  698. Aml *var = aml_alloc();
  699. build_append_namestring(var->buf, "%s", method);
  700. return var;
  701. }
  702. /* helper to call method with 1 argument */
  703. Aml *aml_call1(const char *method, Aml *arg1)
  704. {
  705. Aml *var = aml_alloc();
  706. build_append_namestring(var->buf, "%s", method);
  707. aml_append(var, arg1);
  708. return var;
  709. }
  710. /* helper to call method with 2 arguments */
  711. Aml *aml_call2(const char *method, Aml *arg1, Aml *arg2)
  712. {
  713. Aml *var = aml_alloc();
  714. build_append_namestring(var->buf, "%s", method);
  715. aml_append(var, arg1);
  716. aml_append(var, arg2);
  717. return var;
  718. }
  719. /* helper to call method with 3 arguments */
  720. Aml *aml_call3(const char *method, Aml *arg1, Aml *arg2, Aml *arg3)
  721. {
  722. Aml *var = aml_alloc();
  723. build_append_namestring(var->buf, "%s", method);
  724. aml_append(var, arg1);
  725. aml_append(var, arg2);
  726. aml_append(var, arg3);
  727. return var;
  728. }
  729. /* helper to call method with 4 arguments */
  730. Aml *aml_call4(const char *method, Aml *arg1, Aml *arg2, Aml *arg3, Aml *arg4)
  731. {
  732. Aml *var = aml_alloc();
  733. build_append_namestring(var->buf, "%s", method);
  734. aml_append(var, arg1);
  735. aml_append(var, arg2);
  736. aml_append(var, arg3);
  737. aml_append(var, arg4);
  738. return var;
  739. }
  740. /* helper to call method with 5 arguments */
  741. Aml *aml_call5(const char *method, Aml *arg1, Aml *arg2, Aml *arg3, Aml *arg4,
  742. Aml *arg5)
  743. {
  744. Aml *var = aml_alloc();
  745. build_append_namestring(var->buf, "%s", method);
  746. aml_append(var, arg1);
  747. aml_append(var, arg2);
  748. aml_append(var, arg3);
  749. aml_append(var, arg4);
  750. aml_append(var, arg5);
  751. return var;
  752. }
  753. /* helper to call method with 5 arguments */
  754. Aml *aml_call6(const char *method, Aml *arg1, Aml *arg2, Aml *arg3, Aml *arg4,
  755. Aml *arg5, Aml *arg6)
  756. {
  757. Aml *var = aml_alloc();
  758. build_append_namestring(var->buf, "%s", method);
  759. aml_append(var, arg1);
  760. aml_append(var, arg2);
  761. aml_append(var, arg3);
  762. aml_append(var, arg4);
  763. aml_append(var, arg5);
  764. aml_append(var, arg6);
  765. return var;
  766. }
  767. /*
  768. * ACPI 5.0: 6.4.3.8.1 GPIO Connection Descriptor
  769. * Type 1, Large Item Name 0xC
  770. */
  771. static Aml *aml_gpio_connection(AmlGpioConnectionType type,
  772. AmlConsumerAndProducer con_and_pro,
  773. uint8_t flags, AmlPinConfig pin_config,
  774. uint16_t output_drive,
  775. uint16_t debounce_timeout,
  776. const uint32_t pin_list[], uint32_t pin_count,
  777. const char *resource_source_name,
  778. const uint8_t *vendor_data,
  779. uint16_t vendor_data_len)
  780. {
  781. Aml *var = aml_alloc();
  782. const uint16_t min_desc_len = 0x16;
  783. uint16_t resource_source_name_len, length;
  784. uint16_t pin_table_offset, resource_source_name_offset, vendor_data_offset;
  785. uint32_t i;
  786. assert(resource_source_name);
  787. resource_source_name_len = strlen(resource_source_name) + 1;
  788. length = min_desc_len + resource_source_name_len + vendor_data_len;
  789. pin_table_offset = min_desc_len + 1;
  790. resource_source_name_offset = pin_table_offset + pin_count * 2;
  791. vendor_data_offset = resource_source_name_offset + resource_source_name_len;
  792. build_append_byte(var->buf, 0x8C); /* GPIO Connection Descriptor */
  793. build_append_int_noprefix(var->buf, length, 2); /* Length */
  794. build_append_byte(var->buf, 1); /* Revision ID */
  795. build_append_byte(var->buf, type); /* GPIO Connection Type */
  796. /* General Flags (2 bytes) */
  797. build_append_int_noprefix(var->buf, con_and_pro, 2);
  798. /* Interrupt and IO Flags (2 bytes) */
  799. build_append_int_noprefix(var->buf, flags, 2);
  800. /* Pin Configuration 0 = Default 1 = Pull-up 2 = Pull-down 3 = No Pull */
  801. build_append_byte(var->buf, pin_config);
  802. /* Output Drive Strength (2 bytes) */
  803. build_append_int_noprefix(var->buf, output_drive, 2);
  804. /* Debounce Timeout (2 bytes) */
  805. build_append_int_noprefix(var->buf, debounce_timeout, 2);
  806. /* Pin Table Offset (2 bytes) */
  807. build_append_int_noprefix(var->buf, pin_table_offset, 2);
  808. build_append_byte(var->buf, 0); /* Resource Source Index */
  809. /* Resource Source Name Offset (2 bytes) */
  810. build_append_int_noprefix(var->buf, resource_source_name_offset, 2);
  811. /* Vendor Data Offset (2 bytes) */
  812. build_append_int_noprefix(var->buf, vendor_data_offset, 2);
  813. /* Vendor Data Length (2 bytes) */
  814. build_append_int_noprefix(var->buf, vendor_data_len, 2);
  815. /* Pin Number (2n bytes)*/
  816. for (i = 0; i < pin_count; i++) {
  817. build_append_int_noprefix(var->buf, pin_list[i], 2);
  818. }
  819. /* Resource Source Name */
  820. build_append_namestring(var->buf, "%s", resource_source_name);
  821. build_append_byte(var->buf, '\0');
  822. /* Vendor-defined Data */
  823. if (vendor_data != NULL) {
  824. g_array_append_vals(var->buf, vendor_data, vendor_data_len);
  825. }
  826. return var;
  827. }
  828. /*
  829. * ACPI 5.0: 19.5.53
  830. * GpioInt(GPIO Interrupt Connection Resource Descriptor Macro)
  831. */
  832. Aml *aml_gpio_int(AmlConsumerAndProducer con_and_pro,
  833. AmlLevelAndEdge edge_level,
  834. AmlActiveHighAndLow active_level, AmlShared shared,
  835. AmlPinConfig pin_config, uint16_t debounce_timeout,
  836. const uint32_t pin_list[], uint32_t pin_count,
  837. const char *resource_source_name,
  838. const uint8_t *vendor_data, uint16_t vendor_data_len)
  839. {
  840. uint8_t flags = edge_level | (active_level << 1) | (shared << 3);
  841. return aml_gpio_connection(AML_INTERRUPT_CONNECTION, con_and_pro, flags,
  842. pin_config, 0, debounce_timeout, pin_list,
  843. pin_count, resource_source_name, vendor_data,
  844. vendor_data_len);
  845. }
  846. /*
  847. * ACPI 1.0b: 6.4.3.4 32-Bit Fixed Location Memory Range Descriptor
  848. * (Type 1, Large Item Name 0x6)
  849. */
  850. Aml *aml_memory32_fixed(uint32_t addr, uint32_t size,
  851. AmlReadAndWrite read_and_write)
  852. {
  853. Aml *var = aml_alloc();
  854. build_append_byte(var->buf, 0x86); /* Memory32Fixed Resource Descriptor */
  855. build_append_byte(var->buf, 9); /* Length, bits[7:0] value = 9 */
  856. build_append_byte(var->buf, 0); /* Length, bits[15:8] value = 0 */
  857. build_append_byte(var->buf, read_and_write); /* Write status, 1 rw 0 ro */
  858. /* Range base address */
  859. build_append_byte(var->buf, extract32(addr, 0, 8)); /* bits[7:0] */
  860. build_append_byte(var->buf, extract32(addr, 8, 8)); /* bits[15:8] */
  861. build_append_byte(var->buf, extract32(addr, 16, 8)); /* bits[23:16] */
  862. build_append_byte(var->buf, extract32(addr, 24, 8)); /* bits[31:24] */
  863. /* Range length */
  864. build_append_byte(var->buf, extract32(size, 0, 8)); /* bits[7:0] */
  865. build_append_byte(var->buf, extract32(size, 8, 8)); /* bits[15:8] */
  866. build_append_byte(var->buf, extract32(size, 16, 8)); /* bits[23:16] */
  867. build_append_byte(var->buf, extract32(size, 24, 8)); /* bits[31:24] */
  868. return var;
  869. }
  870. /*
  871. * ACPI 5.0: 6.4.3.6 Extended Interrupt Descriptor
  872. * Type 1, Large Item Name 0x9
  873. */
  874. Aml *aml_interrupt(AmlConsumerAndProducer con_and_pro,
  875. AmlLevelAndEdge level_and_edge,
  876. AmlActiveHighAndLow high_and_low, AmlShared shared,
  877. uint32_t *irq_list, uint8_t irq_count)
  878. {
  879. int i;
  880. Aml *var = aml_alloc();
  881. uint8_t irq_flags = con_and_pro | (level_and_edge << 1)
  882. | (high_and_low << 2) | (shared << 3);
  883. const int header_bytes_in_len = 2;
  884. uint16_t len = header_bytes_in_len + irq_count * sizeof(uint32_t);
  885. assert(irq_count > 0);
  886. build_append_byte(var->buf, 0x89); /* Extended irq descriptor */
  887. build_append_byte(var->buf, len & 0xFF); /* Length, bits[7:0] */
  888. build_append_byte(var->buf, len >> 8); /* Length, bits[15:8] */
  889. build_append_byte(var->buf, irq_flags); /* Interrupt Vector Information. */
  890. build_append_byte(var->buf, irq_count); /* Interrupt table length */
  891. /* Interrupt Number List */
  892. for (i = 0; i < irq_count; i++) {
  893. build_append_int_noprefix(var->buf, irq_list[i], 4);
  894. }
  895. return var;
  896. }
  897. /* ACPI 1.0b: 6.4.2.5 I/O Port Descriptor */
  898. Aml *aml_io(AmlIODecode dec, uint16_t min_base, uint16_t max_base,
  899. uint8_t aln, uint8_t len)
  900. {
  901. Aml *var = aml_alloc();
  902. build_append_byte(var->buf, 0x47); /* IO port descriptor */
  903. build_append_byte(var->buf, dec);
  904. build_append_byte(var->buf, min_base & 0xff);
  905. build_append_byte(var->buf, (min_base >> 8) & 0xff);
  906. build_append_byte(var->buf, max_base & 0xff);
  907. build_append_byte(var->buf, (max_base >> 8) & 0xff);
  908. build_append_byte(var->buf, aln);
  909. build_append_byte(var->buf, len);
  910. return var;
  911. }
  912. /*
  913. * ACPI 1.0b: 6.4.2.1.1 ASL Macro for IRQ Descriptor
  914. *
  915. * More verbose description at:
  916. * ACPI 5.0: 19.5.64 IRQNoFlags (Interrupt Resource Descriptor Macro)
  917. * 6.4.2.1 IRQ Descriptor
  918. */
  919. Aml *aml_irq_no_flags(uint8_t irq)
  920. {
  921. uint16_t irq_mask;
  922. Aml *var = aml_alloc();
  923. assert(irq < 16);
  924. build_append_byte(var->buf, 0x22); /* IRQ descriptor 2 byte form */
  925. irq_mask = 1U << irq;
  926. build_append_byte(var->buf, irq_mask & 0xFF); /* IRQ mask bits[7:0] */
  927. build_append_byte(var->buf, irq_mask >> 8); /* IRQ mask bits[15:8] */
  928. return var;
  929. }
  930. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLNot */
  931. Aml *aml_lnot(Aml *arg)
  932. {
  933. Aml *var = aml_opcode(0x92 /* LNotOp */);
  934. aml_append(var, arg);
  935. return var;
  936. }
  937. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLEqual */
  938. Aml *aml_equal(Aml *arg1, Aml *arg2)
  939. {
  940. Aml *var = aml_opcode(0x93 /* LequalOp */);
  941. aml_append(var, arg1);
  942. aml_append(var, arg2);
  943. return var;
  944. }
  945. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLGreater */
  946. Aml *aml_lgreater(Aml *arg1, Aml *arg2)
  947. {
  948. Aml *var = aml_opcode(0x94 /* LGreaterOp */);
  949. aml_append(var, arg1);
  950. aml_append(var, arg2);
  951. return var;
  952. }
  953. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefLGreaterEqual */
  954. Aml *aml_lgreater_equal(Aml *arg1, Aml *arg2)
  955. {
  956. /* LGreaterEqualOp := LNotOp LLessOp */
  957. Aml *var = aml_opcode(0x92 /* LNotOp */);
  958. build_append_byte(var->buf, 0x95 /* LLessOp */);
  959. aml_append(var, arg1);
  960. aml_append(var, arg2);
  961. return var;
  962. }
  963. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefIfElse */
  964. Aml *aml_if(Aml *predicate)
  965. {
  966. Aml *var = aml_bundle(0xA0 /* IfOp */, AML_PACKAGE);
  967. aml_append(var, predicate);
  968. return var;
  969. }
  970. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefElse */
  971. Aml *aml_else(void)
  972. {
  973. Aml *var = aml_bundle(0xA1 /* ElseOp */, AML_PACKAGE);
  974. return var;
  975. }
  976. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefWhile */
  977. Aml *aml_while(Aml *predicate)
  978. {
  979. Aml *var = aml_bundle(0xA2 /* WhileOp */, AML_PACKAGE);
  980. aml_append(var, predicate);
  981. return var;
  982. }
  983. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefMethod */
  984. Aml *aml_method(const char *name, int arg_count, AmlSerializeFlag sflag)
  985. {
  986. Aml *var = aml_bundle(0x14 /* MethodOp */, AML_PACKAGE);
  987. int methodflags;
  988. /*
  989. * MethodFlags:
  990. * bit 0-2: ArgCount (0-7)
  991. * bit 3: SerializeFlag
  992. * 0: NotSerialized
  993. * 1: Serialized
  994. * bit 4-7: reserved (must be 0)
  995. */
  996. assert(arg_count < 8);
  997. methodflags = arg_count | (sflag << 3);
  998. build_append_namestring(var->buf, "%s", name);
  999. build_append_byte(var->buf, methodflags); /* MethodFlags: ArgCount */
  1000. return var;
  1001. }
  1002. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefDevice */
  1003. Aml *aml_device(const char *name_format, ...)
  1004. {
  1005. va_list ap;
  1006. Aml *var = aml_bundle(0x82 /* DeviceOp */, AML_EXT_PACKAGE);
  1007. va_start(ap, name_format);
  1008. build_append_namestringv(var->buf, name_format, ap);
  1009. va_end(ap);
  1010. return var;
  1011. }
  1012. /* ACPI 1.0b: 6.4.1 ASL Macros for Resource Descriptors */
  1013. Aml *aml_resource_template(void)
  1014. {
  1015. /* ResourceTemplate is a buffer of Resources with EndTag at the end */
  1016. Aml *var = aml_bundle(0x11 /* BufferOp */, AML_RES_TEMPLATE);
  1017. return var;
  1018. }
  1019. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefBuffer
  1020. * Pass byte_list as NULL to request uninitialized buffer to reserve space.
  1021. */
  1022. Aml *aml_buffer(int buffer_size, uint8_t *byte_list)
  1023. {
  1024. int i;
  1025. Aml *var = aml_bundle(0x11 /* BufferOp */, AML_BUFFER);
  1026. for (i = 0; i < buffer_size; i++) {
  1027. if (byte_list == NULL) {
  1028. build_append_byte(var->buf, 0x0);
  1029. } else {
  1030. build_append_byte(var->buf, byte_list[i]);
  1031. }
  1032. }
  1033. return var;
  1034. }
  1035. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefPackage */
  1036. Aml *aml_package(uint8_t num_elements)
  1037. {
  1038. Aml *var = aml_bundle(0x12 /* PackageOp */, AML_PACKAGE);
  1039. build_append_byte(var->buf, num_elements);
  1040. return var;
  1041. }
  1042. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefOpRegion */
  1043. Aml *aml_operation_region(const char *name, AmlRegionSpace rs,
  1044. Aml *offset, uint32_t len)
  1045. {
  1046. Aml *var = aml_alloc();
  1047. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1048. build_append_byte(var->buf, 0x80); /* OpRegionOp */
  1049. build_append_namestring(var->buf, "%s", name);
  1050. build_append_byte(var->buf, rs);
  1051. aml_append(var, offset);
  1052. build_append_int(var->buf, len);
  1053. return var;
  1054. }
  1055. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: NamedField */
  1056. Aml *aml_named_field(const char *name, unsigned length)
  1057. {
  1058. Aml *var = aml_alloc();
  1059. build_append_nameseg(var->buf, name);
  1060. build_append_pkg_length(var->buf, length, false);
  1061. return var;
  1062. }
  1063. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: ReservedField */
  1064. Aml *aml_reserved_field(unsigned length)
  1065. {
  1066. Aml *var = aml_alloc();
  1067. /* ReservedField := 0x00 PkgLength */
  1068. build_append_byte(var->buf, 0x00);
  1069. build_append_pkg_length(var->buf, length, false);
  1070. return var;
  1071. }
  1072. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefField */
  1073. Aml *aml_field(const char *name, AmlAccessType type, AmlLockRule lock,
  1074. AmlUpdateRule rule)
  1075. {
  1076. Aml *var = aml_bundle(0x81 /* FieldOp */, AML_EXT_PACKAGE);
  1077. uint8_t flags = rule << 5 | type;
  1078. flags |= lock << 4; /* LockRule at 4 bit offset */
  1079. build_append_namestring(var->buf, "%s", name);
  1080. build_append_byte(var->buf, flags);
  1081. return var;
  1082. }
  1083. static
  1084. Aml *create_field_common(int opcode, Aml *srcbuf, Aml *index, const char *name)
  1085. {
  1086. Aml *var = aml_opcode(opcode);
  1087. aml_append(var, srcbuf);
  1088. aml_append(var, index);
  1089. build_append_namestring(var->buf, "%s", name);
  1090. return var;
  1091. }
  1092. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefCreateField */
  1093. Aml *aml_create_field(Aml *srcbuf, Aml *bit_index, Aml *num_bits,
  1094. const char *name)
  1095. {
  1096. Aml *var = aml_alloc();
  1097. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1098. build_append_byte(var->buf, 0x13); /* CreateFieldOp */
  1099. aml_append(var, srcbuf);
  1100. aml_append(var, bit_index);
  1101. aml_append(var, num_bits);
  1102. build_append_namestring(var->buf, "%s", name);
  1103. return var;
  1104. }
  1105. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefCreateDWordField */
  1106. Aml *aml_create_dword_field(Aml *srcbuf, Aml *index, const char *name)
  1107. {
  1108. return create_field_common(0x8A /* CreateDWordFieldOp */,
  1109. srcbuf, index, name);
  1110. }
  1111. /* ACPI 2.0a: 17.2.4.2 Named Objects Encoding: DefCreateQWordField */
  1112. Aml *aml_create_qword_field(Aml *srcbuf, Aml *index, const char *name)
  1113. {
  1114. return create_field_common(0x8F /* CreateQWordFieldOp */,
  1115. srcbuf, index, name);
  1116. }
  1117. /* ACPI 1.0b: 16.2.3 Data Objects Encoding: String */
  1118. Aml *aml_string(const char *name_format, ...)
  1119. {
  1120. Aml *var = aml_opcode(0x0D /* StringPrefix */);
  1121. va_list ap;
  1122. char *s;
  1123. int len;
  1124. va_start(ap, name_format);
  1125. len = g_vasprintf(&s, name_format, ap);
  1126. va_end(ap);
  1127. g_array_append_vals(var->buf, s, len + 1);
  1128. g_free(s);
  1129. return var;
  1130. }
  1131. /* ACPI 1.0b: 16.2.6.2 Local Objects Encoding */
  1132. Aml *aml_local(int num)
  1133. {
  1134. uint8_t op = 0x60 /* Local0Op */ + num;
  1135. assert(num <= 7);
  1136. return aml_opcode(op);
  1137. }
  1138. /* ACPI 2.0a: 17.2.2 Data Objects Encoding: DefVarPackage */
  1139. Aml *aml_varpackage(uint32_t num_elements)
  1140. {
  1141. Aml *var = aml_bundle(0x13 /* VarPackageOp */, AML_PACKAGE);
  1142. build_append_int(var->buf, num_elements);
  1143. return var;
  1144. }
  1145. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefProcessor */
  1146. Aml *aml_processor(uint8_t proc_id, uint32_t pblk_addr, uint8_t pblk_len,
  1147. const char *name_format, ...)
  1148. {
  1149. va_list ap;
  1150. Aml *var = aml_bundle(0x83 /* ProcessorOp */, AML_EXT_PACKAGE);
  1151. va_start(ap, name_format);
  1152. build_append_namestringv(var->buf, name_format, ap);
  1153. va_end(ap);
  1154. build_append_byte(var->buf, proc_id); /* ProcID */
  1155. build_append_int_noprefix(var->buf, pblk_addr, sizeof(pblk_addr));
  1156. build_append_byte(var->buf, pblk_len); /* PblkLen */
  1157. return var;
  1158. }
  1159. static uint8_t Hex2Digit(char c)
  1160. {
  1161. if (c >= 'A') {
  1162. return c - 'A' + 10;
  1163. }
  1164. return c - '0';
  1165. }
  1166. /* ACPI 1.0b: 15.2.3.6.4.1 EISAID Macro - Convert EISA ID String To Integer */
  1167. Aml *aml_eisaid(const char *str)
  1168. {
  1169. Aml *var = aml_alloc();
  1170. uint32_t id;
  1171. g_assert(strlen(str) == 7);
  1172. id = (str[0] - 0x40) << 26 |
  1173. (str[1] - 0x40) << 21 |
  1174. (str[2] - 0x40) << 16 |
  1175. Hex2Digit(str[3]) << 12 |
  1176. Hex2Digit(str[4]) << 8 |
  1177. Hex2Digit(str[5]) << 4 |
  1178. Hex2Digit(str[6]);
  1179. build_append_byte(var->buf, 0x0C); /* DWordPrefix */
  1180. build_append_int_noprefix(var->buf, bswap32(id), sizeof(id));
  1181. return var;
  1182. }
  1183. /* ACPI 1.0b: 6.4.3.5.5 Word Address Space Descriptor: bytes 3-5 */
  1184. static Aml *aml_as_desc_header(AmlResourceType type, AmlMinFixed min_fixed,
  1185. AmlMaxFixed max_fixed, AmlDecode dec,
  1186. uint8_t type_flags)
  1187. {
  1188. uint8_t flags = max_fixed | min_fixed | dec;
  1189. Aml *var = aml_alloc();
  1190. build_append_byte(var->buf, type);
  1191. build_append_byte(var->buf, flags);
  1192. build_append_byte(var->buf, type_flags); /* Type Specific Flags */
  1193. return var;
  1194. }
  1195. /* ACPI 1.0b: 6.4.3.5.5 Word Address Space Descriptor */
  1196. static Aml *aml_word_as_desc(AmlResourceType type, AmlMinFixed min_fixed,
  1197. AmlMaxFixed max_fixed, AmlDecode dec,
  1198. uint16_t addr_gran, uint16_t addr_min,
  1199. uint16_t addr_max, uint16_t addr_trans,
  1200. uint16_t len, uint8_t type_flags)
  1201. {
  1202. Aml *var = aml_alloc();
  1203. build_append_byte(var->buf, 0x88); /* Word Address Space Descriptor */
  1204. /* minimum length since we do not encode optional fields */
  1205. build_append_byte(var->buf, 0x0D);
  1206. build_append_byte(var->buf, 0x0);
  1207. aml_append(var,
  1208. aml_as_desc_header(type, min_fixed, max_fixed, dec, type_flags));
  1209. build_append_int_noprefix(var->buf, addr_gran, sizeof(addr_gran));
  1210. build_append_int_noprefix(var->buf, addr_min, sizeof(addr_min));
  1211. build_append_int_noprefix(var->buf, addr_max, sizeof(addr_max));
  1212. build_append_int_noprefix(var->buf, addr_trans, sizeof(addr_trans));
  1213. build_append_int_noprefix(var->buf, len, sizeof(len));
  1214. return var;
  1215. }
  1216. /* ACPI 1.0b: 6.4.3.5.3 DWord Address Space Descriptor */
  1217. static Aml *aml_dword_as_desc(AmlResourceType type, AmlMinFixed min_fixed,
  1218. AmlMaxFixed max_fixed, AmlDecode dec,
  1219. uint32_t addr_gran, uint32_t addr_min,
  1220. uint32_t addr_max, uint32_t addr_trans,
  1221. uint32_t len, uint8_t type_flags)
  1222. {
  1223. Aml *var = aml_alloc();
  1224. build_append_byte(var->buf, 0x87); /* DWord Address Space Descriptor */
  1225. /* minimum length since we do not encode optional fields */
  1226. build_append_byte(var->buf, 23);
  1227. build_append_byte(var->buf, 0x0);
  1228. aml_append(var,
  1229. aml_as_desc_header(type, min_fixed, max_fixed, dec, type_flags));
  1230. build_append_int_noprefix(var->buf, addr_gran, sizeof(addr_gran));
  1231. build_append_int_noprefix(var->buf, addr_min, sizeof(addr_min));
  1232. build_append_int_noprefix(var->buf, addr_max, sizeof(addr_max));
  1233. build_append_int_noprefix(var->buf, addr_trans, sizeof(addr_trans));
  1234. build_append_int_noprefix(var->buf, len, sizeof(len));
  1235. return var;
  1236. }
  1237. /* ACPI 1.0b: 6.4.3.5.1 QWord Address Space Descriptor */
  1238. static Aml *aml_qword_as_desc(AmlResourceType type, AmlMinFixed min_fixed,
  1239. AmlMaxFixed max_fixed, AmlDecode dec,
  1240. uint64_t addr_gran, uint64_t addr_min,
  1241. uint64_t addr_max, uint64_t addr_trans,
  1242. uint64_t len, uint8_t type_flags)
  1243. {
  1244. Aml *var = aml_alloc();
  1245. build_append_byte(var->buf, 0x8A); /* QWord Address Space Descriptor */
  1246. /* minimum length since we do not encode optional fields */
  1247. build_append_byte(var->buf, 0x2B);
  1248. build_append_byte(var->buf, 0x0);
  1249. aml_append(var,
  1250. aml_as_desc_header(type, min_fixed, max_fixed, dec, type_flags));
  1251. build_append_int_noprefix(var->buf, addr_gran, sizeof(addr_gran));
  1252. build_append_int_noprefix(var->buf, addr_min, sizeof(addr_min));
  1253. build_append_int_noprefix(var->buf, addr_max, sizeof(addr_max));
  1254. build_append_int_noprefix(var->buf, addr_trans, sizeof(addr_trans));
  1255. build_append_int_noprefix(var->buf, len, sizeof(len));
  1256. return var;
  1257. }
  1258. /*
  1259. * ACPI 1.0b: 6.4.3.5.6 ASL Macros for WORD Address Descriptor
  1260. *
  1261. * More verbose description at:
  1262. * ACPI 5.0: 19.5.141 WordBusNumber (Word Bus Number Resource Descriptor Macro)
  1263. */
  1264. Aml *aml_word_bus_number(AmlMinFixed min_fixed, AmlMaxFixed max_fixed,
  1265. AmlDecode dec, uint16_t addr_gran,
  1266. uint16_t addr_min, uint16_t addr_max,
  1267. uint16_t addr_trans, uint16_t len)
  1268. {
  1269. return aml_word_as_desc(AML_BUS_NUMBER_RANGE, min_fixed, max_fixed, dec,
  1270. addr_gran, addr_min, addr_max, addr_trans, len, 0);
  1271. }
  1272. /*
  1273. * ACPI 1.0b: 6.4.3.5.6 ASL Macros for WORD Address Descriptor
  1274. *
  1275. * More verbose description at:
  1276. * ACPI 5.0: 19.5.142 WordIO (Word IO Resource Descriptor Macro)
  1277. */
  1278. Aml *aml_word_io(AmlMinFixed min_fixed, AmlMaxFixed max_fixed,
  1279. AmlDecode dec, AmlISARanges isa_ranges,
  1280. uint16_t addr_gran, uint16_t addr_min,
  1281. uint16_t addr_max, uint16_t addr_trans,
  1282. uint16_t len)
  1283. {
  1284. return aml_word_as_desc(AML_IO_RANGE, min_fixed, max_fixed, dec,
  1285. addr_gran, addr_min, addr_max, addr_trans, len,
  1286. isa_ranges);
  1287. }
  1288. /*
  1289. * ACPI 1.0b: 6.4.3.5.4 ASL Macros for DWORD Address Descriptor
  1290. *
  1291. * More verbose description at:
  1292. * ACPI 5.0: 19.5.33 DWordIO (DWord IO Resource Descriptor Macro)
  1293. */
  1294. Aml *aml_dword_io(AmlMinFixed min_fixed, AmlMaxFixed max_fixed,
  1295. AmlDecode dec, AmlISARanges isa_ranges,
  1296. uint32_t addr_gran, uint32_t addr_min,
  1297. uint32_t addr_max, uint32_t addr_trans,
  1298. uint32_t len)
  1299. {
  1300. return aml_dword_as_desc(AML_IO_RANGE, min_fixed, max_fixed, dec,
  1301. addr_gran, addr_min, addr_max, addr_trans, len,
  1302. isa_ranges);
  1303. }
  1304. /*
  1305. * ACPI 1.0b: 6.4.3.5.4 ASL Macros for DWORD Address Space Descriptor
  1306. *
  1307. * More verbose description at:
  1308. * ACPI 5.0: 19.5.34 DWordMemory (DWord Memory Resource Descriptor Macro)
  1309. */
  1310. Aml *aml_dword_memory(AmlDecode dec, AmlMinFixed min_fixed,
  1311. AmlMaxFixed max_fixed, AmlCacheable cacheable,
  1312. AmlReadAndWrite read_and_write,
  1313. uint32_t addr_gran, uint32_t addr_min,
  1314. uint32_t addr_max, uint32_t addr_trans,
  1315. uint32_t len)
  1316. {
  1317. uint8_t flags = read_and_write | (cacheable << 1);
  1318. return aml_dword_as_desc(AML_MEMORY_RANGE, min_fixed, max_fixed,
  1319. dec, addr_gran, addr_min, addr_max,
  1320. addr_trans, len, flags);
  1321. }
  1322. /*
  1323. * ACPI 1.0b: 6.4.3.5.2 ASL Macros for QWORD Address Space Descriptor
  1324. *
  1325. * More verbose description at:
  1326. * ACPI 5.0: 19.5.102 QWordMemory (QWord Memory Resource Descriptor Macro)
  1327. */
  1328. Aml *aml_qword_memory(AmlDecode dec, AmlMinFixed min_fixed,
  1329. AmlMaxFixed max_fixed, AmlCacheable cacheable,
  1330. AmlReadAndWrite read_and_write,
  1331. uint64_t addr_gran, uint64_t addr_min,
  1332. uint64_t addr_max, uint64_t addr_trans,
  1333. uint64_t len)
  1334. {
  1335. uint8_t flags = read_and_write | (cacheable << 1);
  1336. return aml_qword_as_desc(AML_MEMORY_RANGE, min_fixed, max_fixed,
  1337. dec, addr_gran, addr_min, addr_max,
  1338. addr_trans, len, flags);
  1339. }
  1340. /* ACPI 1.0b: 6.4.2.2 DMA Format/6.4.2.2.1 ASL Macro for DMA Descriptor */
  1341. Aml *aml_dma(AmlDmaType typ, AmlDmaBusMaster bm, AmlTransferSize sz,
  1342. uint8_t channel)
  1343. {
  1344. Aml *var = aml_alloc();
  1345. uint8_t flags = sz | bm << 2 | typ << 5;
  1346. assert(channel < 8);
  1347. build_append_byte(var->buf, 0x2A); /* Byte 0: DMA Descriptor */
  1348. build_append_byte(var->buf, 1U << channel); /* Byte 1: _DMA - DmaChannel */
  1349. build_append_byte(var->buf, flags); /* Byte 2 */
  1350. return var;
  1351. }
  1352. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefSleep */
  1353. Aml *aml_sleep(uint64_t msec)
  1354. {
  1355. Aml *var = aml_alloc();
  1356. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1357. build_append_byte(var->buf, 0x22); /* SleepOp */
  1358. aml_append(var, aml_int(msec));
  1359. return var;
  1360. }
  1361. static uint8_t Hex2Byte(const char *src)
  1362. {
  1363. int hi, lo;
  1364. hi = Hex2Digit(src[0]);
  1365. assert(hi >= 0);
  1366. assert(hi <= 15);
  1367. lo = Hex2Digit(src[1]);
  1368. assert(lo >= 0);
  1369. assert(lo <= 15);
  1370. return (hi << 4) | lo;
  1371. }
  1372. /*
  1373. * ACPI 3.0: 17.5.124 ToUUID (Convert String to UUID Macro)
  1374. * e.g. UUID: aabbccdd-eeff-gghh-iijj-kkllmmnnoopp
  1375. * call aml_touuid("aabbccdd-eeff-gghh-iijj-kkllmmnnoopp");
  1376. */
  1377. Aml *aml_touuid(const char *uuid)
  1378. {
  1379. Aml *var = aml_bundle(0x11 /* BufferOp */, AML_BUFFER);
  1380. assert(strlen(uuid) == 36);
  1381. assert(uuid[8] == '-');
  1382. assert(uuid[13] == '-');
  1383. assert(uuid[18] == '-');
  1384. assert(uuid[23] == '-');
  1385. build_append_byte(var->buf, Hex2Byte(uuid + 6)); /* dd - at offset 00 */
  1386. build_append_byte(var->buf, Hex2Byte(uuid + 4)); /* cc - at offset 01 */
  1387. build_append_byte(var->buf, Hex2Byte(uuid + 2)); /* bb - at offset 02 */
  1388. build_append_byte(var->buf, Hex2Byte(uuid + 0)); /* aa - at offset 03 */
  1389. build_append_byte(var->buf, Hex2Byte(uuid + 11)); /* ff - at offset 04 */
  1390. build_append_byte(var->buf, Hex2Byte(uuid + 9)); /* ee - at offset 05 */
  1391. build_append_byte(var->buf, Hex2Byte(uuid + 16)); /* hh - at offset 06 */
  1392. build_append_byte(var->buf, Hex2Byte(uuid + 14)); /* gg - at offset 07 */
  1393. build_append_byte(var->buf, Hex2Byte(uuid + 19)); /* ii - at offset 08 */
  1394. build_append_byte(var->buf, Hex2Byte(uuid + 21)); /* jj - at offset 09 */
  1395. build_append_byte(var->buf, Hex2Byte(uuid + 24)); /* kk - at offset 10 */
  1396. build_append_byte(var->buf, Hex2Byte(uuid + 26)); /* ll - at offset 11 */
  1397. build_append_byte(var->buf, Hex2Byte(uuid + 28)); /* mm - at offset 12 */
  1398. build_append_byte(var->buf, Hex2Byte(uuid + 30)); /* nn - at offset 13 */
  1399. build_append_byte(var->buf, Hex2Byte(uuid + 32)); /* oo - at offset 14 */
  1400. build_append_byte(var->buf, Hex2Byte(uuid + 34)); /* pp - at offset 15 */
  1401. return var;
  1402. }
  1403. /*
  1404. * ACPI 2.0b: 16.2.3.6.4.3 Unicode Macro (Convert Ascii String To Unicode)
  1405. */
  1406. Aml *aml_unicode(const char *str)
  1407. {
  1408. int i = 0;
  1409. Aml *var = aml_bundle(0x11 /* BufferOp */, AML_BUFFER);
  1410. do {
  1411. build_append_byte(var->buf, str[i]);
  1412. build_append_byte(var->buf, 0);
  1413. i++;
  1414. } while (i <= strlen(str));
  1415. return var;
  1416. }
  1417. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefRefOf */
  1418. Aml *aml_refof(Aml *arg)
  1419. {
  1420. Aml *var = aml_opcode(0x71 /* RefOfOp */);
  1421. aml_append(var, arg);
  1422. return var;
  1423. }
  1424. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefDerefOf */
  1425. Aml *aml_derefof(Aml *arg)
  1426. {
  1427. Aml *var = aml_opcode(0x83 /* DerefOfOp */);
  1428. aml_append(var, arg);
  1429. return var;
  1430. }
  1431. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefSizeOf */
  1432. Aml *aml_sizeof(Aml *arg)
  1433. {
  1434. Aml *var = aml_opcode(0x87 /* SizeOfOp */);
  1435. aml_append(var, arg);
  1436. return var;
  1437. }
  1438. /* ACPI 1.0b: 16.2.5.2 Named Objects Encoding: DefMutex */
  1439. Aml *aml_mutex(const char *name, uint8_t sync_level)
  1440. {
  1441. Aml *var = aml_alloc();
  1442. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1443. build_append_byte(var->buf, 0x01); /* MutexOp */
  1444. build_append_namestring(var->buf, "%s", name);
  1445. assert(!(sync_level & 0xF0));
  1446. build_append_byte(var->buf, sync_level);
  1447. return var;
  1448. }
  1449. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefAcquire */
  1450. Aml *aml_acquire(Aml *mutex, uint16_t timeout)
  1451. {
  1452. Aml *var = aml_alloc();
  1453. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1454. build_append_byte(var->buf, 0x23); /* AcquireOp */
  1455. aml_append(var, mutex);
  1456. build_append_int_noprefix(var->buf, timeout, sizeof(timeout));
  1457. return var;
  1458. }
  1459. /* ACPI 1.0b: 16.2.5.3 Type 1 Opcodes Encoding: DefRelease */
  1460. Aml *aml_release(Aml *mutex)
  1461. {
  1462. Aml *var = aml_alloc();
  1463. build_append_byte(var->buf, 0x5B); /* ExtOpPrefix */
  1464. build_append_byte(var->buf, 0x27); /* ReleaseOp */
  1465. aml_append(var, mutex);
  1466. return var;
  1467. }
  1468. /* ACPI 1.0b: 16.2.5.1 Name Space Modifier Objects Encoding: DefAlias */
  1469. Aml *aml_alias(const char *source_object, const char *alias_object)
  1470. {
  1471. Aml *var = aml_opcode(0x06 /* AliasOp */);
  1472. aml_append(var, aml_name("%s", source_object));
  1473. aml_append(var, aml_name("%s", alias_object));
  1474. return var;
  1475. }
  1476. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefConcat */
  1477. Aml *aml_concatenate(Aml *source1, Aml *source2, Aml *target)
  1478. {
  1479. return build_opcode_2arg_dst(0x73 /* ConcatOp */, source1, source2,
  1480. target);
  1481. }
  1482. /* ACPI 1.0b: 16.2.5.4 Type 2 Opcodes Encoding: DefObjectType */
  1483. Aml *aml_object_type(Aml *object)
  1484. {
  1485. Aml *var = aml_opcode(0x8E /* ObjectTypeOp */);
  1486. aml_append(var, object);
  1487. return var;
  1488. }
  1489. void acpi_table_begin(AcpiTable *desc, GArray *array)
  1490. {
  1491. desc->array = array;
  1492. desc->table_offset = array->len;
  1493. /*
  1494. * ACPI spec 1.0b
  1495. * 5.2.3 System Description Table Header
  1496. */
  1497. g_assert(strlen(desc->sig) == 4);
  1498. g_array_append_vals(array, desc->sig, 4); /* Signature */
  1499. /*
  1500. * reserve space for Length field, which will be patched by
  1501. * acpi_table_end() when the table creation is finished.
  1502. */
  1503. build_append_int_noprefix(array, 0, 4); /* Length */
  1504. build_append_int_noprefix(array, desc->rev, 1); /* Revision */
  1505. build_append_int_noprefix(array, 0, 1); /* Checksum */
  1506. build_append_padded_str(array, desc->oem_id, 6, '\0'); /* OEMID */
  1507. /* OEM Table ID */
  1508. build_append_padded_str(array, desc->oem_table_id, 8, '\0');
  1509. build_append_int_noprefix(array, 1, 4); /* OEM Revision */
  1510. g_array_append_vals(array, ACPI_BUILD_APPNAME8, 4); /* Creator ID */
  1511. build_append_int_noprefix(array, 1, 4); /* Creator Revision */
  1512. }
  1513. void acpi_table_end(BIOSLinker *linker, AcpiTable *desc)
  1514. {
  1515. /*
  1516. * ACPI spec 1.0b
  1517. * 5.2.3 System Description Table Header
  1518. * Table 5-2 DESCRIPTION_HEADER Fields
  1519. */
  1520. const unsigned checksum_offset = 9;
  1521. uint32_t table_len = desc->array->len - desc->table_offset;
  1522. uint32_t table_len_le = cpu_to_le32(table_len);
  1523. gchar *len_ptr = &desc->array->data[desc->table_offset + 4];
  1524. /* patch "Length" field that has been reserved by acpi_table_begin()
  1525. * to the actual length, i.e. accumulated table length from
  1526. * acpi_table_begin() till acpi_table_end()
  1527. */
  1528. memcpy(len_ptr, &table_len_le, sizeof table_len_le);
  1529. bios_linker_loader_add_checksum(linker, ACPI_BUILD_TABLE_FILE,
  1530. desc->table_offset, table_len, desc->table_offset + checksum_offset);
  1531. }
  1532. void *acpi_data_push(GArray *table_data, unsigned size)
  1533. {
  1534. unsigned off = table_data->len;
  1535. g_array_set_size(table_data, off + size);
  1536. return table_data->data + off;
  1537. }
  1538. unsigned acpi_data_len(GArray *table)
  1539. {
  1540. assert(g_array_get_element_size(table) == 1);
  1541. return table->len;
  1542. }
  1543. void acpi_add_table(GArray *table_offsets, GArray *table_data)
  1544. {
  1545. uint32_t offset = table_data->len;
  1546. g_array_append_val(table_offsets, offset);
  1547. }
  1548. void acpi_build_tables_init(AcpiBuildTables *tables)
  1549. {
  1550. tables->rsdp = g_array_new(false, true /* clear */, 1);
  1551. tables->table_data = g_array_new(false, true /* clear */, 1);
  1552. tables->tcpalog = g_array_new(false, true /* clear */, 1);
  1553. tables->vmgenid = g_array_new(false, true /* clear */, 1);
  1554. tables->hardware_errors = g_array_new(false, true /* clear */, 1);
  1555. tables->linker = bios_linker_loader_init();
  1556. }
  1557. void acpi_build_tables_cleanup(AcpiBuildTables *tables, bool mfre)
  1558. {
  1559. bios_linker_loader_cleanup(tables->linker);
  1560. g_array_free(tables->rsdp, true);
  1561. g_array_free(tables->table_data, true);
  1562. g_array_free(tables->tcpalog, mfre);
  1563. g_array_free(tables->vmgenid, mfre);
  1564. g_array_free(tables->hardware_errors, mfre);
  1565. }
  1566. /*
  1567. * ACPI spec 5.2.5.3 Root System Description Pointer (RSDP).
  1568. * (Revision 1.0 or later)
  1569. */
  1570. void
  1571. build_rsdp(GArray *tbl, BIOSLinker *linker, AcpiRsdpData *rsdp_data)
  1572. {
  1573. int tbl_off = tbl->len; /* Table offset in the RSDP file */
  1574. switch (rsdp_data->revision) {
  1575. case 0:
  1576. /* With ACPI 1.0, we must have an RSDT pointer */
  1577. g_assert(rsdp_data->rsdt_tbl_offset);
  1578. break;
  1579. case 2:
  1580. /* With ACPI 2.0+, we must have an XSDT pointer */
  1581. g_assert(rsdp_data->xsdt_tbl_offset);
  1582. break;
  1583. default:
  1584. /* Only revisions 0 (ACPI 1.0) and 2 (ACPI 2.0+) are valid for RSDP */
  1585. g_assert_not_reached();
  1586. }
  1587. bios_linker_loader_alloc(linker, ACPI_BUILD_RSDP_FILE, tbl, 16,
  1588. true /* fseg memory */);
  1589. g_array_append_vals(tbl, "RSD PTR ", 8); /* Signature */
  1590. build_append_int_noprefix(tbl, 0, 1); /* Checksum */
  1591. g_array_append_vals(tbl, rsdp_data->oem_id, 6); /* OEMID */
  1592. build_append_int_noprefix(tbl, rsdp_data->revision, 1); /* Revision */
  1593. build_append_int_noprefix(tbl, 0, 4); /* RsdtAddress */
  1594. if (rsdp_data->rsdt_tbl_offset) {
  1595. /* RSDT address to be filled by guest linker */
  1596. bios_linker_loader_add_pointer(linker, ACPI_BUILD_RSDP_FILE,
  1597. tbl_off + 16, 4,
  1598. ACPI_BUILD_TABLE_FILE,
  1599. *rsdp_data->rsdt_tbl_offset);
  1600. }
  1601. /* Checksum to be filled by guest linker */
  1602. bios_linker_loader_add_checksum(linker, ACPI_BUILD_RSDP_FILE,
  1603. tbl_off, 20, /* ACPI rev 1.0 RSDP size */
  1604. 8);
  1605. if (rsdp_data->revision == 0) {
  1606. /* ACPI 1.0 RSDP, we're done */
  1607. return;
  1608. }
  1609. build_append_int_noprefix(tbl, 36, 4); /* Length */
  1610. /* XSDT address to be filled by guest linker */
  1611. build_append_int_noprefix(tbl, 0, 8); /* XsdtAddress */
  1612. /* We already validated our xsdt pointer */
  1613. bios_linker_loader_add_pointer(linker, ACPI_BUILD_RSDP_FILE,
  1614. tbl_off + 24, 8,
  1615. ACPI_BUILD_TABLE_FILE,
  1616. *rsdp_data->xsdt_tbl_offset);
  1617. build_append_int_noprefix(tbl, 0, 1); /* Extended Checksum */
  1618. build_append_int_noprefix(tbl, 0, 3); /* Reserved */
  1619. /* Extended checksum to be filled by Guest linker */
  1620. bios_linker_loader_add_checksum(linker, ACPI_BUILD_RSDP_FILE,
  1621. tbl_off, 36, /* ACPI rev 2.0 RSDP size */
  1622. 32);
  1623. }
  1624. /*
  1625. * ACPI 1.0 Root System Description Table (RSDT)
  1626. */
  1627. void
  1628. build_rsdt(GArray *table_data, BIOSLinker *linker, GArray *table_offsets,
  1629. const char *oem_id, const char *oem_table_id)
  1630. {
  1631. int i;
  1632. AcpiTable table = { .sig = "RSDT", .rev = 1,
  1633. .oem_id = oem_id, .oem_table_id = oem_table_id };
  1634. acpi_table_begin(&table, table_data);
  1635. for (i = 0; i < table_offsets->len; ++i) {
  1636. uint32_t ref_tbl_offset = g_array_index(table_offsets, uint32_t, i);
  1637. uint32_t rsdt_entry_offset = table.array->len;
  1638. /* reserve space for entry */
  1639. build_append_int_noprefix(table.array, 0, 4);
  1640. /* mark position of RSDT entry to be filled by Guest linker */
  1641. bios_linker_loader_add_pointer(linker,
  1642. ACPI_BUILD_TABLE_FILE, rsdt_entry_offset, 4,
  1643. ACPI_BUILD_TABLE_FILE, ref_tbl_offset);
  1644. }
  1645. acpi_table_end(linker, &table);
  1646. }
  1647. /*
  1648. * ACPI 2.0 eXtended System Description Table (XSDT)
  1649. */
  1650. void
  1651. build_xsdt(GArray *table_data, BIOSLinker *linker, GArray *table_offsets,
  1652. const char *oem_id, const char *oem_table_id)
  1653. {
  1654. int i;
  1655. AcpiTable table = { .sig = "XSDT", .rev = 1,
  1656. .oem_id = oem_id, .oem_table_id = oem_table_id };
  1657. acpi_table_begin(&table, table_data);
  1658. for (i = 0; i < table_offsets->len; ++i) {
  1659. uint64_t ref_tbl_offset = g_array_index(table_offsets, uint32_t, i);
  1660. uint64_t xsdt_entry_offset = table.array->len;
  1661. /* reserve space for entry */
  1662. build_append_int_noprefix(table.array, 0, 8);
  1663. /* mark position of RSDT entry to be filled by Guest linker */
  1664. bios_linker_loader_add_pointer(linker,
  1665. ACPI_BUILD_TABLE_FILE, xsdt_entry_offset, 8,
  1666. ACPI_BUILD_TABLE_FILE, ref_tbl_offset);
  1667. }
  1668. acpi_table_end(linker, &table);
  1669. }
  1670. /*
  1671. * ACPI spec, Revision 4.0
  1672. * 5.2.16.2 Memory Affinity Structure
  1673. */
  1674. void build_srat_memory(GArray *table_data, uint64_t base,
  1675. uint64_t len, int node, MemoryAffinityFlags flags)
  1676. {
  1677. build_append_int_noprefix(table_data, 1, 1); /* Type */
  1678. build_append_int_noprefix(table_data, 40, 1); /* Length */
  1679. build_append_int_noprefix(table_data, node, 4); /* Proximity Domain */
  1680. build_append_int_noprefix(table_data, 0, 2); /* Reserved */
  1681. build_append_int_noprefix(table_data, base, 4); /* Base Address Low */
  1682. /* Base Address High */
  1683. build_append_int_noprefix(table_data, base >> 32, 4);
  1684. build_append_int_noprefix(table_data, len, 4); /* Length Low */
  1685. build_append_int_noprefix(table_data, len >> 32, 4); /* Length High */
  1686. build_append_int_noprefix(table_data, 0, 4); /* Reserved */
  1687. build_append_int_noprefix(table_data, flags, 4); /* Flags */
  1688. build_append_int_noprefix(table_data, 0, 8); /* Reserved */
  1689. }
  1690. /*
  1691. * ACPI Spec Revision 6.3
  1692. * Table 5-80 Device Handle - PCI
  1693. */
  1694. static void build_append_srat_pci_device_handle(GArray *table_data,
  1695. uint16_t segment,
  1696. uint8_t bus, uint8_t devfn)
  1697. {
  1698. /* PCI segment number */
  1699. build_append_int_noprefix(table_data, segment, 2);
  1700. /* PCI Bus Device Function */
  1701. build_append_int_noprefix(table_data, bus, 1);
  1702. build_append_int_noprefix(table_data, devfn, 1);
  1703. /* Reserved */
  1704. build_append_int_noprefix(table_data, 0, 12);
  1705. }
  1706. static void build_append_srat_acpi_device_handle(GArray *table_data,
  1707. const char *hid,
  1708. uint32_t uid)
  1709. {
  1710. assert(strlen(hid) == 8);
  1711. /* Device Handle - ACPI */
  1712. for (int i = 0; i < 8; i++) {
  1713. build_append_int_noprefix(table_data, hid[i], 1);
  1714. }
  1715. build_append_int_noprefix(table_data, uid, 4);
  1716. build_append_int_noprefix(table_data, 0, 4);
  1717. }
  1718. /*
  1719. * ACPI spec, Revision 6.3
  1720. * 5.2.16.6 Generic Initiator Affinity Structure
  1721. * With PCI Device Handle.
  1722. */
  1723. void build_srat_pci_generic_initiator(GArray *table_data, uint32_t node,
  1724. uint16_t segment, uint8_t bus,
  1725. uint8_t devfn)
  1726. {
  1727. /* Type */
  1728. build_append_int_noprefix(table_data, 5, 1);
  1729. /* Length */
  1730. build_append_int_noprefix(table_data, 32, 1);
  1731. /* Reserved */
  1732. build_append_int_noprefix(table_data, 0, 1);
  1733. /* Device Handle Type: PCI */
  1734. build_append_int_noprefix(table_data, 1, 1);
  1735. /* Proximity Domain */
  1736. build_append_int_noprefix(table_data, node, 4);
  1737. /* Device Handle */
  1738. build_append_srat_pci_device_handle(table_data, segment, bus, devfn);
  1739. /* Flags - GI Enabled */
  1740. build_append_int_noprefix(table_data, 1, 4);
  1741. /* Reserved */
  1742. build_append_int_noprefix(table_data, 0, 4);
  1743. }
  1744. /*
  1745. * ACPI spec, Revision 6.5
  1746. * 5.2.16.7 Generic Port Affinity Structure
  1747. * With ACPI Device Handle.
  1748. */
  1749. void build_srat_acpi_generic_port(GArray *table_data, uint32_t node,
  1750. const char *hid, uint32_t uid)
  1751. {
  1752. /* Type */
  1753. build_append_int_noprefix(table_data, 6, 1);
  1754. /* Length */
  1755. build_append_int_noprefix(table_data, 32, 1);
  1756. /* Reserved */
  1757. build_append_int_noprefix(table_data, 0, 1);
  1758. /* Device Handle Type: ACPI */
  1759. build_append_int_noprefix(table_data, 0, 1);
  1760. /* Proximity Domain */
  1761. build_append_int_noprefix(table_data, node, 4);
  1762. /* Device Handle */
  1763. build_append_srat_acpi_device_handle(table_data, hid, uid);
  1764. /* Flags - GP Enabled */
  1765. build_append_int_noprefix(table_data, 1, 4);
  1766. /* Reserved */
  1767. build_append_int_noprefix(table_data, 0, 4);
  1768. }
  1769. /*
  1770. * ACPI spec 5.2.17 System Locality Distance Information Table
  1771. * (Revision 2.0 or later)
  1772. */
  1773. void build_slit(GArray *table_data, BIOSLinker *linker, MachineState *ms,
  1774. const char *oem_id, const char *oem_table_id)
  1775. {
  1776. int i, j;
  1777. int nb_numa_nodes = ms->numa_state->num_nodes;
  1778. AcpiTable table = { .sig = "SLIT", .rev = 1,
  1779. .oem_id = oem_id, .oem_table_id = oem_table_id };
  1780. acpi_table_begin(&table, table_data);
  1781. build_append_int_noprefix(table_data, nb_numa_nodes, 8);
  1782. for (i = 0; i < nb_numa_nodes; i++) {
  1783. for (j = 0; j < nb_numa_nodes; j++) {
  1784. assert(ms->numa_state->nodes[i].distance[j]);
  1785. build_append_int_noprefix(table_data,
  1786. ms->numa_state->nodes[i].distance[j],
  1787. 1);
  1788. }
  1789. }
  1790. acpi_table_end(linker, &table);
  1791. }
  1792. /*
  1793. * ACPI spec, Revision 6.3
  1794. * 5.2.29.1 Processor hierarchy node structure (Type 0)
  1795. */
  1796. static void build_processor_hierarchy_node(GArray *tbl, uint32_t flags,
  1797. uint32_t parent, uint32_t id,
  1798. uint32_t *priv_rsrc,
  1799. uint32_t priv_num)
  1800. {
  1801. int i;
  1802. build_append_byte(tbl, 0); /* Type 0 - processor */
  1803. build_append_byte(tbl, 20 + priv_num * 4); /* Length */
  1804. build_append_int_noprefix(tbl, 0, 2); /* Reserved */
  1805. build_append_int_noprefix(tbl, flags, 4); /* Flags */
  1806. build_append_int_noprefix(tbl, parent, 4); /* Parent */
  1807. build_append_int_noprefix(tbl, id, 4); /* ACPI Processor ID */
  1808. /* Number of private resources */
  1809. build_append_int_noprefix(tbl, priv_num, 4);
  1810. /* Private resources[N] */
  1811. if (priv_num > 0) {
  1812. assert(priv_rsrc);
  1813. for (i = 0; i < priv_num; i++) {
  1814. build_append_int_noprefix(tbl, priv_rsrc[i], 4);
  1815. }
  1816. }
  1817. }
  1818. void build_spcr(GArray *table_data, BIOSLinker *linker,
  1819. const AcpiSpcrData *f, const uint8_t rev,
  1820. const char *oem_id, const char *oem_table_id, const char *name)
  1821. {
  1822. AcpiTable table = { .sig = "SPCR", .rev = rev, .oem_id = oem_id,
  1823. .oem_table_id = oem_table_id };
  1824. acpi_table_begin(&table, table_data);
  1825. /* Interface type */
  1826. build_append_int_noprefix(table_data, f->interface_type, 1);
  1827. /* Reserved */
  1828. build_append_int_noprefix(table_data, 0, 3);
  1829. /* Base Address */
  1830. build_append_gas(table_data, f->base_addr.id, f->base_addr.width,
  1831. f->base_addr.offset, f->base_addr.size,
  1832. f->base_addr.addr);
  1833. /* Interrupt type */
  1834. build_append_int_noprefix(table_data, f->interrupt_type, 1);
  1835. /* IRQ */
  1836. build_append_int_noprefix(table_data, f->pc_interrupt, 1);
  1837. /* Global System Interrupt */
  1838. build_append_int_noprefix(table_data, f->interrupt, 4);
  1839. /* Baud Rate */
  1840. build_append_int_noprefix(table_data, f->baud_rate, 1);
  1841. /* Parity */
  1842. build_append_int_noprefix(table_data, f->parity, 1);
  1843. /* Stop Bits */
  1844. build_append_int_noprefix(table_data, f->stop_bits, 1);
  1845. /* Flow Control */
  1846. build_append_int_noprefix(table_data, f->flow_control, 1);
  1847. /* Language */
  1848. build_append_int_noprefix(table_data, f->language, 1);
  1849. /* Terminal Type */
  1850. build_append_int_noprefix(table_data, f->terminal_type, 1);
  1851. /* PCI Device ID */
  1852. build_append_int_noprefix(table_data, f->pci_device_id, 2);
  1853. /* PCI Vendor ID */
  1854. build_append_int_noprefix(table_data, f->pci_vendor_id, 2);
  1855. /* PCI Bus Number */
  1856. build_append_int_noprefix(table_data, f->pci_bus, 1);
  1857. /* PCI Device Number */
  1858. build_append_int_noprefix(table_data, f->pci_device, 1);
  1859. /* PCI Function Number */
  1860. build_append_int_noprefix(table_data, f->pci_function, 1);
  1861. /* PCI Flags */
  1862. build_append_int_noprefix(table_data, f->pci_flags, 4);
  1863. /* PCI Segment */
  1864. build_append_int_noprefix(table_data, f->pci_segment, 1);
  1865. if (rev < 4) {
  1866. /* Reserved */
  1867. build_append_int_noprefix(table_data, 0, 4);
  1868. } else {
  1869. /* UartClkFreq */
  1870. build_append_int_noprefix(table_data, f->uart_clk_freq, 4);
  1871. /* PreciseBaudrate */
  1872. build_append_int_noprefix(table_data, f->precise_baudrate, 4);
  1873. /* NameSpaceStringLength */
  1874. build_append_int_noprefix(table_data, f->namespace_string_length, 2);
  1875. /* NameSpaceStringOffset */
  1876. build_append_int_noprefix(table_data, f->namespace_string_offset, 2);
  1877. /* NamespaceString[] */
  1878. g_array_append_vals(table_data, name, f->namespace_string_length);
  1879. }
  1880. acpi_table_end(linker, &table);
  1881. }
  1882. /*
  1883. * ACPI spec, Revision 6.3
  1884. * 5.2.29 Processor Properties Topology Table (PPTT)
  1885. */
  1886. void build_pptt(GArray *table_data, BIOSLinker *linker, MachineState *ms,
  1887. const char *oem_id, const char *oem_table_id)
  1888. {
  1889. MachineClass *mc = MACHINE_GET_CLASS(ms);
  1890. CPUArchIdList *cpus = ms->possible_cpus;
  1891. int64_t socket_id = -1, cluster_id = -1, core_id = -1;
  1892. uint32_t socket_offset = 0, cluster_offset = 0, core_offset = 0;
  1893. uint32_t pptt_start = table_data->len;
  1894. int n;
  1895. AcpiTable table = { .sig = "PPTT", .rev = 2,
  1896. .oem_id = oem_id, .oem_table_id = oem_table_id };
  1897. acpi_table_begin(&table, table_data);
  1898. /*
  1899. * This works with the assumption that cpus[n].props.*_id has been
  1900. * sorted from top to down levels in mc->possible_cpu_arch_ids().
  1901. * Otherwise, the unexpected and duplicated containers will be
  1902. * created.
  1903. */
  1904. for (n = 0; n < cpus->len; n++) {
  1905. if (cpus->cpus[n].props.socket_id != socket_id) {
  1906. assert(cpus->cpus[n].props.socket_id > socket_id);
  1907. socket_id = cpus->cpus[n].props.socket_id;
  1908. cluster_id = -1;
  1909. core_id = -1;
  1910. socket_offset = table_data->len - pptt_start;
  1911. build_processor_hierarchy_node(table_data,
  1912. (1 << 0), /* Physical package */
  1913. 0, socket_id, NULL, 0);
  1914. }
  1915. if (mc->smp_props.clusters_supported && mc->smp_props.has_clusters) {
  1916. if (cpus->cpus[n].props.cluster_id != cluster_id) {
  1917. assert(cpus->cpus[n].props.cluster_id > cluster_id);
  1918. cluster_id = cpus->cpus[n].props.cluster_id;
  1919. core_id = -1;
  1920. cluster_offset = table_data->len - pptt_start;
  1921. build_processor_hierarchy_node(table_data,
  1922. (0 << 0), /* Not a physical package */
  1923. socket_offset, cluster_id, NULL, 0);
  1924. }
  1925. } else {
  1926. cluster_offset = socket_offset;
  1927. }
  1928. if (ms->smp.threads == 1) {
  1929. build_processor_hierarchy_node(table_data,
  1930. (1 << 1) | /* ACPI Processor ID valid */
  1931. (1 << 3), /* Node is a Leaf */
  1932. cluster_offset, n, NULL, 0);
  1933. } else {
  1934. if (cpus->cpus[n].props.core_id != core_id) {
  1935. assert(cpus->cpus[n].props.core_id > core_id);
  1936. core_id = cpus->cpus[n].props.core_id;
  1937. core_offset = table_data->len - pptt_start;
  1938. build_processor_hierarchy_node(table_data,
  1939. (0 << 0), /* Not a physical package */
  1940. cluster_offset, core_id, NULL, 0);
  1941. }
  1942. build_processor_hierarchy_node(table_data,
  1943. (1 << 1) | /* ACPI Processor ID valid */
  1944. (1 << 2) | /* Processor is a Thread */
  1945. (1 << 3), /* Node is a Leaf */
  1946. core_offset, n, NULL, 0);
  1947. }
  1948. }
  1949. acpi_table_end(linker, &table);
  1950. }
  1951. /* build rev1/rev3/rev5.1/rev6.0 FADT */
  1952. void build_fadt(GArray *tbl, BIOSLinker *linker, const AcpiFadtData *f,
  1953. const char *oem_id, const char *oem_table_id)
  1954. {
  1955. int off;
  1956. AcpiTable table = { .sig = "FACP", .rev = f->rev,
  1957. .oem_id = oem_id, .oem_table_id = oem_table_id };
  1958. acpi_table_begin(&table, tbl);
  1959. /* FACS address to be filled by Guest linker at runtime */
  1960. off = tbl->len;
  1961. build_append_int_noprefix(tbl, 0, 4); /* FIRMWARE_CTRL */
  1962. if (f->facs_tbl_offset) { /* don't patch if not supported by platform */
  1963. bios_linker_loader_add_pointer(linker,
  1964. ACPI_BUILD_TABLE_FILE, off, 4,
  1965. ACPI_BUILD_TABLE_FILE, *f->facs_tbl_offset);
  1966. }
  1967. /* DSDT address to be filled by Guest linker at runtime */
  1968. off = tbl->len;
  1969. build_append_int_noprefix(tbl, 0, 4); /* DSDT */
  1970. if (f->dsdt_tbl_offset) { /* don't patch if not supported by platform */
  1971. bios_linker_loader_add_pointer(linker,
  1972. ACPI_BUILD_TABLE_FILE, off, 4,
  1973. ACPI_BUILD_TABLE_FILE, *f->dsdt_tbl_offset);
  1974. }
  1975. /* ACPI1.0: INT_MODEL, ACPI2.0+: Reserved */
  1976. build_append_int_noprefix(tbl, f->int_model /* Multiple APIC */, 1);
  1977. /* Preferred_PM_Profile */
  1978. build_append_int_noprefix(tbl, 0 /* Unspecified */, 1);
  1979. build_append_int_noprefix(tbl, f->sci_int, 2); /* SCI_INT */
  1980. build_append_int_noprefix(tbl, f->smi_cmd, 4); /* SMI_CMD */
  1981. build_append_int_noprefix(tbl, f->acpi_enable_cmd, 1); /* ACPI_ENABLE */
  1982. build_append_int_noprefix(tbl, f->acpi_disable_cmd, 1); /* ACPI_DISABLE */
  1983. build_append_int_noprefix(tbl, 0 /* not supported */, 1); /* S4BIOS_REQ */
  1984. /* ACPI1.0: Reserved, ACPI2.0+: PSTATE_CNT */
  1985. build_append_int_noprefix(tbl, 0, 1);
  1986. build_append_int_noprefix(tbl, f->pm1a_evt.address, 4); /* PM1a_EVT_BLK */
  1987. build_append_int_noprefix(tbl, 0, 4); /* PM1b_EVT_BLK */
  1988. build_append_int_noprefix(tbl, f->pm1a_cnt.address, 4); /* PM1a_CNT_BLK */
  1989. build_append_int_noprefix(tbl, 0, 4); /* PM1b_CNT_BLK */
  1990. build_append_int_noprefix(tbl, 0, 4); /* PM2_CNT_BLK */
  1991. build_append_int_noprefix(tbl, f->pm_tmr.address, 4); /* PM_TMR_BLK */
  1992. build_append_int_noprefix(tbl, f->gpe0_blk.address, 4); /* GPE0_BLK */
  1993. build_append_int_noprefix(tbl, 0, 4); /* GPE1_BLK */
  1994. /* PM1_EVT_LEN */
  1995. build_append_int_noprefix(tbl, f->pm1a_evt.bit_width / 8, 1);
  1996. /* PM1_CNT_LEN */
  1997. build_append_int_noprefix(tbl, f->pm1a_cnt.bit_width / 8, 1);
  1998. build_append_int_noprefix(tbl, 0, 1); /* PM2_CNT_LEN */
  1999. build_append_int_noprefix(tbl, f->pm_tmr.bit_width / 8, 1); /* PM_TMR_LEN */
  2000. /* GPE0_BLK_LEN */
  2001. build_append_int_noprefix(tbl, f->gpe0_blk.bit_width / 8, 1);
  2002. build_append_int_noprefix(tbl, 0, 1); /* GPE1_BLK_LEN */
  2003. build_append_int_noprefix(tbl, 0, 1); /* GPE1_BASE */
  2004. build_append_int_noprefix(tbl, 0, 1); /* CST_CNT */
  2005. build_append_int_noprefix(tbl, f->plvl2_lat, 2); /* P_LVL2_LAT */
  2006. build_append_int_noprefix(tbl, f->plvl3_lat, 2); /* P_LVL3_LAT */
  2007. build_append_int_noprefix(tbl, 0, 2); /* FLUSH_SIZE */
  2008. build_append_int_noprefix(tbl, 0, 2); /* FLUSH_STRIDE */
  2009. build_append_int_noprefix(tbl, 0, 1); /* DUTY_OFFSET */
  2010. build_append_int_noprefix(tbl, 0, 1); /* DUTY_WIDTH */
  2011. build_append_int_noprefix(tbl, 0, 1); /* DAY_ALRM */
  2012. build_append_int_noprefix(tbl, 0, 1); /* MON_ALRM */
  2013. build_append_int_noprefix(tbl, f->rtc_century, 1); /* CENTURY */
  2014. /* IAPC_BOOT_ARCH */
  2015. if (f->rev == 1) {
  2016. build_append_int_noprefix(tbl, 0, 2);
  2017. } else {
  2018. /* since ACPI v2.0 */
  2019. build_append_int_noprefix(tbl, f->iapc_boot_arch, 2);
  2020. }
  2021. build_append_int_noprefix(tbl, 0, 1); /* Reserved */
  2022. build_append_int_noprefix(tbl, f->flags, 4); /* Flags */
  2023. if (f->rev == 1) {
  2024. goto done;
  2025. }
  2026. build_append_gas_from_struct(tbl, &f->reset_reg); /* RESET_REG */
  2027. build_append_int_noprefix(tbl, f->reset_val, 1); /* RESET_VALUE */
  2028. /* Since ACPI 5.1 */
  2029. if ((f->rev >= 6) || ((f->rev == 5) && f->minor_ver > 0)) {
  2030. build_append_int_noprefix(tbl, f->arm_boot_arch, 2); /* ARM_BOOT_ARCH */
  2031. /* FADT Minor Version */
  2032. build_append_int_noprefix(tbl, f->minor_ver, 1);
  2033. } else {
  2034. build_append_int_noprefix(tbl, 0, 3); /* Reserved up to ACPI 5.0 */
  2035. }
  2036. build_append_int_noprefix(tbl, 0, 8); /* X_FIRMWARE_CTRL */
  2037. /* XDSDT address to be filled by Guest linker at runtime */
  2038. off = tbl->len;
  2039. build_append_int_noprefix(tbl, 0, 8); /* X_DSDT */
  2040. if (f->xdsdt_tbl_offset) {
  2041. bios_linker_loader_add_pointer(linker,
  2042. ACPI_BUILD_TABLE_FILE, off, 8,
  2043. ACPI_BUILD_TABLE_FILE, *f->xdsdt_tbl_offset);
  2044. }
  2045. build_append_gas_from_struct(tbl, &f->pm1a_evt); /* X_PM1a_EVT_BLK */
  2046. /* X_PM1b_EVT_BLK */
  2047. build_append_gas(tbl, AML_AS_SYSTEM_MEMORY, 0 , 0, 0, 0);
  2048. build_append_gas_from_struct(tbl, &f->pm1a_cnt); /* X_PM1a_CNT_BLK */
  2049. /* X_PM1b_CNT_BLK */
  2050. build_append_gas(tbl, AML_AS_SYSTEM_MEMORY, 0 , 0, 0, 0);
  2051. /* X_PM2_CNT_BLK */
  2052. build_append_gas(tbl, AML_AS_SYSTEM_MEMORY, 0 , 0, 0, 0);
  2053. build_append_gas_from_struct(tbl, &f->pm_tmr); /* X_PM_TMR_BLK */
  2054. build_append_gas_from_struct(tbl, &f->gpe0_blk); /* X_GPE0_BLK */
  2055. build_append_gas(tbl, AML_AS_SYSTEM_MEMORY, 0 , 0, 0, 0); /* X_GPE1_BLK */
  2056. if (f->rev <= 4) {
  2057. goto done;
  2058. }
  2059. /* SLEEP_CONTROL_REG */
  2060. build_append_gas_from_struct(tbl, &f->sleep_ctl);
  2061. /* SLEEP_STATUS_REG */
  2062. build_append_gas_from_struct(tbl, &f->sleep_sts);
  2063. if (f->rev == 5) {
  2064. goto done;
  2065. }
  2066. /* Hypervisor Vendor Identity */
  2067. build_append_padded_str(tbl, "QEMU", 8, '\0');
  2068. /* TODO: extra fields need to be added to support revisions above rev6 */
  2069. assert(f->rev == 6);
  2070. done:
  2071. acpi_table_end(linker, &table);
  2072. }
  2073. #ifdef CONFIG_TPM
  2074. /*
  2075. * build_tpm2 - Build the TPM2 table as specified in
  2076. * table 7: TCG Hardware Interface Description Table Format for TPM 2.0
  2077. * of TCG ACPI Specification, Family “1.2” and “2.0”, Version 1.2, Rev 8
  2078. */
  2079. void build_tpm2(GArray *table_data, BIOSLinker *linker, GArray *tcpalog,
  2080. const char *oem_id, const char *oem_table_id)
  2081. {
  2082. uint8_t start_method_params[12] = {};
  2083. unsigned log_addr_offset;
  2084. uint64_t baseaddr, control_area_start_address;
  2085. TPMIf *tpmif = tpm_find();
  2086. uint32_t start_method;
  2087. AcpiTable table = { .sig = "TPM2", .rev = 4,
  2088. .oem_id = oem_id, .oem_table_id = oem_table_id };
  2089. acpi_table_begin(&table, table_data);
  2090. /* Platform Class */
  2091. build_append_int_noprefix(table_data, TPM2_ACPI_CLASS_CLIENT, 2);
  2092. /* Reserved */
  2093. build_append_int_noprefix(table_data, 0, 2);
  2094. if (TPM_IS_TIS_ISA(tpmif) || TPM_IS_TIS_SYSBUS(tpmif)) {
  2095. control_area_start_address = 0;
  2096. start_method = TPM2_START_METHOD_MMIO;
  2097. } else if (TPM_IS_CRB(tpmif)) {
  2098. control_area_start_address = TPM_CRB_ADDR_CTRL;
  2099. start_method = TPM2_START_METHOD_CRB;
  2100. } else if (TPM_IS_CRB_SYSBUS(tpmif)) {
  2101. baseaddr = object_property_get_uint(OBJECT(tpmif), "x-baseaddr", NULL);
  2102. control_area_start_address = baseaddr + A_CRB_CTRL_REQ;
  2103. start_method = TPM2_START_METHOD_CRB;
  2104. } else {
  2105. g_assert_not_reached();
  2106. }
  2107. /* Address of Control Area */
  2108. build_append_int_noprefix(table_data, control_area_start_address, 8);
  2109. /* Start Method */
  2110. build_append_int_noprefix(table_data, start_method, 4);
  2111. /* Platform Specific Parameters */
  2112. g_array_append_vals(table_data, &start_method_params,
  2113. ARRAY_SIZE(start_method_params));
  2114. /* Log Area Minimum Length */
  2115. build_append_int_noprefix(table_data, TPM_LOG_AREA_MINIMUM_SIZE, 4);
  2116. acpi_data_push(tcpalog, TPM_LOG_AREA_MINIMUM_SIZE);
  2117. bios_linker_loader_alloc(linker, ACPI_BUILD_TPMLOG_FILE, tcpalog, 1,
  2118. false);
  2119. log_addr_offset = table_data->len;
  2120. /* Log Area Start Address to be filled by Guest linker */
  2121. build_append_int_noprefix(table_data, 0, 8);
  2122. bios_linker_loader_add_pointer(linker, ACPI_BUILD_TABLE_FILE,
  2123. log_addr_offset, 8,
  2124. ACPI_BUILD_TPMLOG_FILE, 0);
  2125. acpi_table_end(linker, &table);
  2126. }
  2127. #endif
  2128. Aml *build_crs(PCIHostState *host, CrsRangeSet *range_set, uint32_t io_offset,
  2129. uint32_t mmio32_offset, uint64_t mmio64_offset,
  2130. uint16_t bus_nr_offset)
  2131. {
  2132. Aml *crs = aml_resource_template();
  2133. CrsRangeSet temp_range_set;
  2134. CrsRangeEntry *entry;
  2135. uint8_t max_bus = pci_bus_num(host->bus);
  2136. uint8_t type;
  2137. int devfn;
  2138. int i;
  2139. crs_range_set_init(&temp_range_set);
  2140. for (devfn = 0; devfn < ARRAY_SIZE(host->bus->devices); devfn++) {
  2141. uint64_t range_base, range_limit;
  2142. PCIDevice *dev = host->bus->devices[devfn];
  2143. if (!dev) {
  2144. continue;
  2145. }
  2146. for (i = 0; i < PCI_NUM_REGIONS; i++) {
  2147. PCIIORegion *r = &dev->io_regions[i];
  2148. range_base = r->addr;
  2149. range_limit = r->addr + r->size - 1;
  2150. /*
  2151. * Work-around for old bioses
  2152. * that do not support multiple root buses
  2153. */
  2154. if (!range_base || range_base > range_limit) {
  2155. continue;
  2156. }
  2157. if (r->type & PCI_BASE_ADDRESS_SPACE_IO) {
  2158. crs_range_insert(temp_range_set.io_ranges,
  2159. range_base, range_limit);
  2160. } else { /* "memory" */
  2161. uint64_t length = range_limit - range_base + 1;
  2162. if (range_limit <= UINT32_MAX && length <= UINT32_MAX) {
  2163. crs_range_insert(temp_range_set.mem_ranges, range_base,
  2164. range_limit);
  2165. } else {
  2166. crs_range_insert(temp_range_set.mem_64bit_ranges,
  2167. range_base, range_limit);
  2168. }
  2169. }
  2170. }
  2171. type = dev->config[PCI_HEADER_TYPE] & ~PCI_HEADER_TYPE_MULTI_FUNCTION;
  2172. if (type == PCI_HEADER_TYPE_BRIDGE) {
  2173. uint8_t subordinate = dev->config[PCI_SUBORDINATE_BUS];
  2174. if (subordinate > max_bus) {
  2175. max_bus = subordinate;
  2176. }
  2177. range_base = pci_bridge_get_base(dev, PCI_BASE_ADDRESS_SPACE_IO);
  2178. range_limit = pci_bridge_get_limit(dev, PCI_BASE_ADDRESS_SPACE_IO);
  2179. /*
  2180. * Work-around for old bioses
  2181. * that do not support multiple root buses
  2182. */
  2183. if (range_base && range_base <= range_limit) {
  2184. crs_range_insert(temp_range_set.io_ranges,
  2185. range_base, range_limit);
  2186. }
  2187. range_base =
  2188. pci_bridge_get_base(dev, PCI_BASE_ADDRESS_SPACE_MEMORY);
  2189. range_limit =
  2190. pci_bridge_get_limit(dev, PCI_BASE_ADDRESS_SPACE_MEMORY);
  2191. /*
  2192. * Work-around for old bioses
  2193. * that do not support multiple root buses
  2194. */
  2195. if (range_base && range_base <= range_limit) {
  2196. uint64_t length = range_limit - range_base + 1;
  2197. if (range_limit <= UINT32_MAX && length <= UINT32_MAX) {
  2198. crs_range_insert(temp_range_set.mem_ranges,
  2199. range_base, range_limit);
  2200. } else {
  2201. crs_range_insert(temp_range_set.mem_64bit_ranges,
  2202. range_base, range_limit);
  2203. }
  2204. }
  2205. range_base =
  2206. pci_bridge_get_base(dev, PCI_BASE_ADDRESS_MEM_PREFETCH);
  2207. range_limit =
  2208. pci_bridge_get_limit(dev, PCI_BASE_ADDRESS_MEM_PREFETCH);
  2209. /*
  2210. * Work-around for old bioses
  2211. * that do not support multiple root buses
  2212. */
  2213. if (range_base && range_base <= range_limit) {
  2214. uint64_t length = range_limit - range_base + 1;
  2215. if (range_limit <= UINT32_MAX && length <= UINT32_MAX) {
  2216. crs_range_insert(temp_range_set.mem_ranges,
  2217. range_base, range_limit);
  2218. } else {
  2219. crs_range_insert(temp_range_set.mem_64bit_ranges,
  2220. range_base, range_limit);
  2221. }
  2222. }
  2223. }
  2224. }
  2225. crs_range_merge(temp_range_set.io_ranges);
  2226. for (i = 0; i < temp_range_set.io_ranges->len; i++) {
  2227. entry = g_ptr_array_index(temp_range_set.io_ranges, i);
  2228. aml_append(crs,
  2229. aml_dword_io(AML_MIN_FIXED, AML_MAX_FIXED,
  2230. AML_POS_DECODE, AML_ENTIRE_RANGE,
  2231. 0, entry->base, entry->limit, io_offset,
  2232. entry->limit - entry->base + 1));
  2233. crs_range_insert(range_set->io_ranges, entry->base, entry->limit);
  2234. }
  2235. crs_range_merge(temp_range_set.mem_ranges);
  2236. for (i = 0; i < temp_range_set.mem_ranges->len; i++) {
  2237. entry = g_ptr_array_index(temp_range_set.mem_ranges, i);
  2238. assert(entry->limit <= UINT32_MAX &&
  2239. (entry->limit - entry->base + 1) <= UINT32_MAX);
  2240. aml_append(crs,
  2241. aml_dword_memory(AML_POS_DECODE, AML_MIN_FIXED,
  2242. AML_MAX_FIXED, AML_NON_CACHEABLE,
  2243. AML_READ_WRITE,
  2244. 0, entry->base, entry->limit, mmio32_offset,
  2245. entry->limit - entry->base + 1));
  2246. crs_range_insert(range_set->mem_ranges, entry->base, entry->limit);
  2247. }
  2248. crs_range_merge(temp_range_set.mem_64bit_ranges);
  2249. for (i = 0; i < temp_range_set.mem_64bit_ranges->len; i++) {
  2250. entry = g_ptr_array_index(temp_range_set.mem_64bit_ranges, i);
  2251. aml_append(crs,
  2252. aml_qword_memory(AML_POS_DECODE, AML_MIN_FIXED,
  2253. AML_MAX_FIXED, AML_NON_CACHEABLE,
  2254. AML_READ_WRITE,
  2255. 0, entry->base, entry->limit, mmio64_offset,
  2256. entry->limit - entry->base + 1));
  2257. crs_range_insert(range_set->mem_64bit_ranges,
  2258. entry->base, entry->limit);
  2259. }
  2260. crs_range_set_free(&temp_range_set);
  2261. aml_append(crs,
  2262. aml_word_bus_number(AML_MIN_FIXED, AML_MAX_FIXED, AML_POS_DECODE,
  2263. 0,
  2264. pci_bus_num(host->bus),
  2265. max_bus,
  2266. bus_nr_offset,
  2267. max_bus - pci_bus_num(host->bus) + 1));
  2268. return crs;
  2269. }
  2270. /* ACPI 5.0: 6.4.3.8.2 Serial Bus Connection Descriptors */
  2271. static Aml *aml_serial_bus_device(uint8_t serial_bus_type, uint8_t flags,
  2272. uint16_t type_flags,
  2273. uint8_t revid, uint16_t data_length,
  2274. uint16_t resource_source_len)
  2275. {
  2276. Aml *var = aml_alloc();
  2277. uint16_t length = data_length + resource_source_len + 9;
  2278. build_append_byte(var->buf, 0x8e); /* Serial Bus Connection Descriptor */
  2279. build_append_int_noprefix(var->buf, length, sizeof(length));
  2280. build_append_byte(var->buf, 1); /* Revision ID */
  2281. build_append_byte(var->buf, 0); /* Resource Source Index */
  2282. build_append_byte(var->buf, serial_bus_type); /* Serial Bus Type */
  2283. build_append_byte(var->buf, flags); /* General Flags */
  2284. build_append_int_noprefix(var->buf, type_flags, /* Type Specific Flags */
  2285. sizeof(type_flags));
  2286. build_append_byte(var->buf, revid); /* Type Specification Revision ID */
  2287. build_append_int_noprefix(var->buf, data_length, sizeof(data_length));
  2288. return var;
  2289. }
  2290. /* ACPI 5.0: 6.4.3.8.2.1 I2C Serial Bus Connection Resource Descriptor */
  2291. Aml *aml_i2c_serial_bus_device(uint16_t address, const char *resource_source)
  2292. {
  2293. uint16_t resource_source_len = strlen(resource_source) + 1;
  2294. Aml *var = aml_serial_bus_device(AML_SERIAL_BUS_TYPE_I2C, 0, 0, 1,
  2295. 6, resource_source_len);
  2296. /* Connection Speed. Just set to 100K for now, it doesn't really matter. */
  2297. build_append_int_noprefix(var->buf, 100000, 4);
  2298. build_append_int_noprefix(var->buf, address, sizeof(address));
  2299. /* This is a string, not a name, so just copy it directly in. */
  2300. g_array_append_vals(var->buf, resource_source, resource_source_len);
  2301. return var;
  2302. }