rsparser.c 25 KB

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  1. /*
  2. * pnpacpi -- PnP ACPI driver
  3. *
  4. * Copyright (c) 2004 Matthieu Castet <castet.matthieu@free.fr>
  5. * Copyright (c) 2004 Li Shaohua <shaohua.li@intel.com>
  6. *
  7. * This program is free software; you can redistribute it and/or modify it
  8. * under the terms of the GNU General Public License as published by the
  9. * Free Software Foundation; either version 2, or (at your option) any
  10. * later version.
  11. *
  12. * This program is distributed in the hope that it will be useful, but
  13. * WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. */
  21. #include <linux/kernel.h>
  22. #include <linux/acpi.h>
  23. #include <linux/pci.h>
  24. #include "pnpacpi.h"
  25. #ifdef CONFIG_IA64
  26. #define valid_IRQ(i) (1)
  27. #else
  28. #define valid_IRQ(i) (((i) != 0) && ((i) != 2))
  29. #endif
  30. /*
  31. * Allocated Resources
  32. */
  33. static int irq_flags(int triggering, int polarity)
  34. {
  35. if (triggering == ACPI_LEVEL_SENSITIVE) {
  36. if (polarity == ACPI_ACTIVE_LOW)
  37. return IORESOURCE_IRQ_LOWLEVEL;
  38. else
  39. return IORESOURCE_IRQ_HIGHLEVEL;
  40. } else {
  41. if (polarity == ACPI_ACTIVE_LOW)
  42. return IORESOURCE_IRQ_LOWEDGE;
  43. else
  44. return IORESOURCE_IRQ_HIGHEDGE;
  45. }
  46. }
  47. static void decode_irq_flags(int flag, int *triggering, int *polarity)
  48. {
  49. switch (flag) {
  50. case IORESOURCE_IRQ_LOWLEVEL:
  51. *triggering = ACPI_LEVEL_SENSITIVE;
  52. *polarity = ACPI_ACTIVE_LOW;
  53. break;
  54. case IORESOURCE_IRQ_HIGHLEVEL:
  55. *triggering = ACPI_LEVEL_SENSITIVE;
  56. *polarity = ACPI_ACTIVE_HIGH;
  57. break;
  58. case IORESOURCE_IRQ_LOWEDGE:
  59. *triggering = ACPI_EDGE_SENSITIVE;
  60. *polarity = ACPI_ACTIVE_LOW;
  61. break;
  62. case IORESOURCE_IRQ_HIGHEDGE:
  63. *triggering = ACPI_EDGE_SENSITIVE;
  64. *polarity = ACPI_ACTIVE_HIGH;
  65. break;
  66. }
  67. }
  68. static void pnpacpi_parse_allocated_irqresource(struct pnp_resource_table *res,
  69. u32 gsi, int triggering,
  70. int polarity, int shareable)
  71. {
  72. int i = 0;
  73. int irq;
  74. if (!valid_IRQ(gsi))
  75. return;
  76. while (!(res->irq_resource[i].flags & IORESOURCE_UNSET) &&
  77. i < PNP_MAX_IRQ)
  78. i++;
  79. if (i >= PNP_MAX_IRQ)
  80. return;
  81. #ifdef CONFIG_X86
  82. if (gsi < 16 && (triggering != ACPI_EDGE_SENSITIVE ||
  83. polarity != ACPI_ACTIVE_HIGH)) {
  84. pnp_warn("BIOS BUG: legacy PNP IRQ %d should be edge trigger, "
  85. "active high", gsi);
  86. triggering = ACPI_EDGE_SENSITIVE;
  87. polarity = ACPI_ACTIVE_HIGH;
  88. }
  89. #endif
  90. res->irq_resource[i].flags = IORESOURCE_IRQ; // Also clears _UNSET flag
  91. res->irq_resource[i].flags |= irq_flags(triggering, polarity);
  92. irq = acpi_register_gsi(gsi, triggering, polarity);
  93. if (irq < 0) {
  94. res->irq_resource[i].flags |= IORESOURCE_DISABLED;
  95. return;
  96. }
  97. if (shareable)
  98. res->irq_resource[i].flags |= IORESOURCE_IRQ_SHAREABLE;
  99. res->irq_resource[i].start = irq;
  100. res->irq_resource[i].end = irq;
  101. pcibios_penalize_isa_irq(irq, 1);
  102. }
  103. static int dma_flags(int type, int bus_master, int transfer)
  104. {
  105. int flags = 0;
  106. if (bus_master)
  107. flags |= IORESOURCE_DMA_MASTER;
  108. switch (type) {
  109. case ACPI_COMPATIBILITY:
  110. flags |= IORESOURCE_DMA_COMPATIBLE;
  111. break;
  112. case ACPI_TYPE_A:
  113. flags |= IORESOURCE_DMA_TYPEA;
  114. break;
  115. case ACPI_TYPE_B:
  116. flags |= IORESOURCE_DMA_TYPEB;
  117. break;
  118. case ACPI_TYPE_F:
  119. flags |= IORESOURCE_DMA_TYPEF;
  120. break;
  121. default:
  122. /* Set a default value ? */
  123. flags |= IORESOURCE_DMA_COMPATIBLE;
  124. pnp_err("Invalid DMA type");
  125. }
  126. switch (transfer) {
  127. case ACPI_TRANSFER_8:
  128. flags |= IORESOURCE_DMA_8BIT;
  129. break;
  130. case ACPI_TRANSFER_8_16:
  131. flags |= IORESOURCE_DMA_8AND16BIT;
  132. break;
  133. case ACPI_TRANSFER_16:
  134. flags |= IORESOURCE_DMA_16BIT;
  135. break;
  136. default:
  137. /* Set a default value ? */
  138. flags |= IORESOURCE_DMA_8AND16BIT;
  139. pnp_err("Invalid DMA transfer type");
  140. }
  141. return flags;
  142. }
  143. static void pnpacpi_parse_allocated_dmaresource(struct pnp_resource_table *res,
  144. u32 dma, int type,
  145. int bus_master, int transfer)
  146. {
  147. int i = 0;
  148. while (i < PNP_MAX_DMA &&
  149. !(res->dma_resource[i].flags & IORESOURCE_UNSET))
  150. i++;
  151. if (i < PNP_MAX_DMA) {
  152. res->dma_resource[i].flags = IORESOURCE_DMA; // Also clears _UNSET flag
  153. res->dma_resource[i].flags |=
  154. dma_flags(type, bus_master, transfer);
  155. if (dma == -1) {
  156. res->dma_resource[i].flags |= IORESOURCE_DISABLED;
  157. return;
  158. }
  159. res->dma_resource[i].start = dma;
  160. res->dma_resource[i].end = dma;
  161. }
  162. }
  163. static void pnpacpi_parse_allocated_ioresource(struct pnp_resource_table *res,
  164. u64 io, u64 len, int io_decode)
  165. {
  166. int i = 0;
  167. while (!(res->port_resource[i].flags & IORESOURCE_UNSET) &&
  168. i < PNP_MAX_PORT)
  169. i++;
  170. if (i < PNP_MAX_PORT) {
  171. res->port_resource[i].flags = IORESOURCE_IO; // Also clears _UNSET flag
  172. if (io_decode == ACPI_DECODE_16)
  173. res->port_resource[i].flags |= PNP_PORT_FLAG_16BITADDR;
  174. if (len <= 0 || (io + len - 1) >= 0x10003) {
  175. res->port_resource[i].flags |= IORESOURCE_DISABLED;
  176. return;
  177. }
  178. res->port_resource[i].start = io;
  179. res->port_resource[i].end = io + len - 1;
  180. }
  181. }
  182. static void pnpacpi_parse_allocated_memresource(struct pnp_resource_table *res,
  183. u64 mem, u64 len,
  184. int write_protect)
  185. {
  186. int i = 0;
  187. while (!(res->mem_resource[i].flags & IORESOURCE_UNSET) &&
  188. (i < PNP_MAX_MEM))
  189. i++;
  190. if (i < PNP_MAX_MEM) {
  191. res->mem_resource[i].flags = IORESOURCE_MEM; // Also clears _UNSET flag
  192. if (len <= 0) {
  193. res->mem_resource[i].flags |= IORESOURCE_DISABLED;
  194. return;
  195. }
  196. if (write_protect == ACPI_READ_WRITE_MEMORY)
  197. res->mem_resource[i].flags |= IORESOURCE_MEM_WRITEABLE;
  198. res->mem_resource[i].start = mem;
  199. res->mem_resource[i].end = mem + len - 1;
  200. }
  201. }
  202. static void pnpacpi_parse_allocated_address_space(struct pnp_resource_table *res_table,
  203. struct acpi_resource *res)
  204. {
  205. struct acpi_resource_address64 addr, *p = &addr;
  206. acpi_status status;
  207. status = acpi_resource_to_address64(res, p);
  208. if (!ACPI_SUCCESS(status)) {
  209. pnp_warn("PnPACPI: failed to convert resource type %d",
  210. res->type);
  211. return;
  212. }
  213. if (p->producer_consumer == ACPI_PRODUCER)
  214. return;
  215. if (p->resource_type == ACPI_MEMORY_RANGE)
  216. pnpacpi_parse_allocated_memresource(res_table,
  217. p->minimum, p->address_length,
  218. p->info.mem.write_protect);
  219. else if (p->resource_type == ACPI_IO_RANGE)
  220. pnpacpi_parse_allocated_ioresource(res_table,
  221. p->minimum, p->address_length,
  222. p->granularity == 0xfff ? ACPI_DECODE_10 :
  223. ACPI_DECODE_16);
  224. }
  225. static acpi_status pnpacpi_allocated_resource(struct acpi_resource *res,
  226. void *data)
  227. {
  228. struct pnp_resource_table *res_table = data;
  229. int i;
  230. switch (res->type) {
  231. case ACPI_RESOURCE_TYPE_IRQ:
  232. /*
  233. * Per spec, only one interrupt per descriptor is allowed in
  234. * _CRS, but some firmware violates this, so parse them all.
  235. */
  236. for (i = 0; i < res->data.irq.interrupt_count; i++) {
  237. pnpacpi_parse_allocated_irqresource(res_table,
  238. res->data.irq.interrupts[i],
  239. res->data.irq.triggering,
  240. res->data.irq.polarity,
  241. res->data.irq.sharable);
  242. }
  243. break;
  244. case ACPI_RESOURCE_TYPE_DMA:
  245. if (res->data.dma.channel_count > 0)
  246. pnpacpi_parse_allocated_dmaresource(res_table,
  247. res->data.dma.channels[0],
  248. res->data.dma.type,
  249. res->data.dma.bus_master,
  250. res->data.dma.transfer);
  251. break;
  252. case ACPI_RESOURCE_TYPE_IO:
  253. pnpacpi_parse_allocated_ioresource(res_table,
  254. res->data.io.minimum,
  255. res->data.io.address_length,
  256. res->data.io.io_decode);
  257. break;
  258. case ACPI_RESOURCE_TYPE_START_DEPENDENT:
  259. case ACPI_RESOURCE_TYPE_END_DEPENDENT:
  260. break;
  261. case ACPI_RESOURCE_TYPE_FIXED_IO:
  262. pnpacpi_parse_allocated_ioresource(res_table,
  263. res->data.fixed_io.address,
  264. res->data.fixed_io.address_length,
  265. ACPI_DECODE_10);
  266. break;
  267. case ACPI_RESOURCE_TYPE_VENDOR:
  268. break;
  269. case ACPI_RESOURCE_TYPE_END_TAG:
  270. break;
  271. case ACPI_RESOURCE_TYPE_MEMORY24:
  272. pnpacpi_parse_allocated_memresource(res_table,
  273. res->data.memory24.minimum,
  274. res->data.memory24.address_length,
  275. res->data.memory24.write_protect);
  276. break;
  277. case ACPI_RESOURCE_TYPE_MEMORY32:
  278. pnpacpi_parse_allocated_memresource(res_table,
  279. res->data.memory32.minimum,
  280. res->data.memory32.address_length,
  281. res->data.memory32.write_protect);
  282. break;
  283. case ACPI_RESOURCE_TYPE_FIXED_MEMORY32:
  284. pnpacpi_parse_allocated_memresource(res_table,
  285. res->data.fixed_memory32.address,
  286. res->data.fixed_memory32.address_length,
  287. res->data.fixed_memory32.write_protect);
  288. break;
  289. case ACPI_RESOURCE_TYPE_ADDRESS16:
  290. case ACPI_RESOURCE_TYPE_ADDRESS32:
  291. case ACPI_RESOURCE_TYPE_ADDRESS64:
  292. pnpacpi_parse_allocated_address_space(res_table, res);
  293. break;
  294. case ACPI_RESOURCE_TYPE_EXTENDED_ADDRESS64:
  295. if (res->data.ext_address64.producer_consumer == ACPI_PRODUCER)
  296. return AE_OK;
  297. break;
  298. case ACPI_RESOURCE_TYPE_EXTENDED_IRQ:
  299. if (res->data.extended_irq.producer_consumer == ACPI_PRODUCER)
  300. return AE_OK;
  301. for (i = 0; i < res->data.extended_irq.interrupt_count; i++) {
  302. pnpacpi_parse_allocated_irqresource(res_table,
  303. res->data.extended_irq.interrupts[i],
  304. res->data.extended_irq.triggering,
  305. res->data.extended_irq.polarity,
  306. res->data.extended_irq.sharable);
  307. }
  308. break;
  309. case ACPI_RESOURCE_TYPE_GENERIC_REGISTER:
  310. break;
  311. default:
  312. pnp_warn("PnPACPI: unknown resource type %d", res->type);
  313. return AE_ERROR;
  314. }
  315. return AE_OK;
  316. }
  317. acpi_status pnpacpi_parse_allocated_resource(acpi_handle handle,
  318. struct pnp_resource_table * res)
  319. {
  320. /* Blank the resource table values */
  321. pnp_init_resource_table(res);
  322. return acpi_walk_resources(handle, METHOD_NAME__CRS,
  323. pnpacpi_allocated_resource, res);
  324. }
  325. static void pnpacpi_parse_dma_option(struct pnp_option *option,
  326. struct acpi_resource_dma *p)
  327. {
  328. int i;
  329. struct pnp_dma *dma;
  330. if (p->channel_count == 0)
  331. return;
  332. dma = kzalloc(sizeof(struct pnp_dma), GFP_KERNEL);
  333. if (!dma)
  334. return;
  335. for (i = 0; i < p->channel_count; i++)
  336. dma->map |= 1 << p->channels[i];
  337. dma->flags = dma_flags(p->type, p->bus_master, p->transfer);
  338. pnp_register_dma_resource(option, dma);
  339. }
  340. static void pnpacpi_parse_irq_option(struct pnp_option *option,
  341. struct acpi_resource_irq *p)
  342. {
  343. int i;
  344. struct pnp_irq *irq;
  345. if (p->interrupt_count == 0)
  346. return;
  347. irq = kzalloc(sizeof(struct pnp_irq), GFP_KERNEL);
  348. if (!irq)
  349. return;
  350. for (i = 0; i < p->interrupt_count; i++)
  351. if (p->interrupts[i])
  352. __set_bit(p->interrupts[i], irq->map);
  353. irq->flags = irq_flags(p->triggering, p->polarity);
  354. pnp_register_irq_resource(option, irq);
  355. }
  356. static void pnpacpi_parse_ext_irq_option(struct pnp_option *option,
  357. struct acpi_resource_extended_irq *p)
  358. {
  359. int i;
  360. struct pnp_irq *irq;
  361. if (p->interrupt_count == 0)
  362. return;
  363. irq = kzalloc(sizeof(struct pnp_irq), GFP_KERNEL);
  364. if (!irq)
  365. return;
  366. for (i = 0; i < p->interrupt_count; i++)
  367. if (p->interrupts[i])
  368. __set_bit(p->interrupts[i], irq->map);
  369. irq->flags = irq_flags(p->triggering, p->polarity);
  370. pnp_register_irq_resource(option, irq);
  371. }
  372. static void pnpacpi_parse_port_option(struct pnp_option *option,
  373. struct acpi_resource_io *io)
  374. {
  375. struct pnp_port *port;
  376. if (io->address_length == 0)
  377. return;
  378. port = kzalloc(sizeof(struct pnp_port), GFP_KERNEL);
  379. if (!port)
  380. return;
  381. port->min = io->minimum;
  382. port->max = io->maximum;
  383. port->align = io->alignment;
  384. port->size = io->address_length;
  385. port->flags = ACPI_DECODE_16 == io->io_decode ?
  386. PNP_PORT_FLAG_16BITADDR : 0;
  387. pnp_register_port_resource(option, port);
  388. }
  389. static void pnpacpi_parse_fixed_port_option(struct pnp_option *option,
  390. struct acpi_resource_fixed_io *io)
  391. {
  392. struct pnp_port *port;
  393. if (io->address_length == 0)
  394. return;
  395. port = kzalloc(sizeof(struct pnp_port), GFP_KERNEL);
  396. if (!port)
  397. return;
  398. port->min = port->max = io->address;
  399. port->size = io->address_length;
  400. port->align = 0;
  401. port->flags = PNP_PORT_FLAG_FIXED;
  402. pnp_register_port_resource(option, port);
  403. }
  404. static void pnpacpi_parse_mem24_option(struct pnp_option *option,
  405. struct acpi_resource_memory24 *p)
  406. {
  407. struct pnp_mem *mem;
  408. if (p->address_length == 0)
  409. return;
  410. mem = kzalloc(sizeof(struct pnp_mem), GFP_KERNEL);
  411. if (!mem)
  412. return;
  413. mem->min = p->minimum;
  414. mem->max = p->maximum;
  415. mem->align = p->alignment;
  416. mem->size = p->address_length;
  417. mem->flags = (ACPI_READ_WRITE_MEMORY == p->write_protect) ?
  418. IORESOURCE_MEM_WRITEABLE : 0;
  419. pnp_register_mem_resource(option, mem);
  420. }
  421. static void pnpacpi_parse_mem32_option(struct pnp_option *option,
  422. struct acpi_resource_memory32 *p)
  423. {
  424. struct pnp_mem *mem;
  425. if (p->address_length == 0)
  426. return;
  427. mem = kzalloc(sizeof(struct pnp_mem), GFP_KERNEL);
  428. if (!mem)
  429. return;
  430. mem->min = p->minimum;
  431. mem->max = p->maximum;
  432. mem->align = p->alignment;
  433. mem->size = p->address_length;
  434. mem->flags = (ACPI_READ_WRITE_MEMORY == p->write_protect) ?
  435. IORESOURCE_MEM_WRITEABLE : 0;
  436. pnp_register_mem_resource(option, mem);
  437. }
  438. static void pnpacpi_parse_fixed_mem32_option(struct pnp_option *option,
  439. struct acpi_resource_fixed_memory32 *p)
  440. {
  441. struct pnp_mem *mem;
  442. if (p->address_length == 0)
  443. return;
  444. mem = kzalloc(sizeof(struct pnp_mem), GFP_KERNEL);
  445. if (!mem)
  446. return;
  447. mem->min = mem->max = p->address;
  448. mem->size = p->address_length;
  449. mem->align = 0;
  450. mem->flags = (ACPI_READ_WRITE_MEMORY == p->write_protect) ?
  451. IORESOURCE_MEM_WRITEABLE : 0;
  452. pnp_register_mem_resource(option, mem);
  453. }
  454. static void pnpacpi_parse_address_option(struct pnp_option *option,
  455. struct acpi_resource *r)
  456. {
  457. struct acpi_resource_address64 addr, *p = &addr;
  458. acpi_status status;
  459. struct pnp_mem *mem;
  460. struct pnp_port *port;
  461. status = acpi_resource_to_address64(r, p);
  462. if (!ACPI_SUCCESS(status)) {
  463. pnp_warn("PnPACPI: failed to convert resource type %d",
  464. r->type);
  465. return;
  466. }
  467. if (p->address_length == 0)
  468. return;
  469. if (p->resource_type == ACPI_MEMORY_RANGE) {
  470. mem = kzalloc(sizeof(struct pnp_mem), GFP_KERNEL);
  471. if (!mem)
  472. return;
  473. mem->min = mem->max = p->minimum;
  474. mem->size = p->address_length;
  475. mem->align = 0;
  476. mem->flags = (p->info.mem.write_protect ==
  477. ACPI_READ_WRITE_MEMORY) ? IORESOURCE_MEM_WRITEABLE
  478. : 0;
  479. pnp_register_mem_resource(option, mem);
  480. } else if (p->resource_type == ACPI_IO_RANGE) {
  481. port = kzalloc(sizeof(struct pnp_port), GFP_KERNEL);
  482. if (!port)
  483. return;
  484. port->min = port->max = p->minimum;
  485. port->size = p->address_length;
  486. port->align = 0;
  487. port->flags = PNP_PORT_FLAG_FIXED;
  488. pnp_register_port_resource(option, port);
  489. }
  490. }
  491. struct acpipnp_parse_option_s {
  492. struct pnp_option *option;
  493. struct pnp_option *option_independent;
  494. struct pnp_dev *dev;
  495. };
  496. static acpi_status pnpacpi_option_resource(struct acpi_resource *res,
  497. void *data)
  498. {
  499. int priority = 0;
  500. struct acpipnp_parse_option_s *parse_data = data;
  501. struct pnp_dev *dev = parse_data->dev;
  502. struct pnp_option *option = parse_data->option;
  503. switch (res->type) {
  504. case ACPI_RESOURCE_TYPE_IRQ:
  505. pnpacpi_parse_irq_option(option, &res->data.irq);
  506. break;
  507. case ACPI_RESOURCE_TYPE_DMA:
  508. pnpacpi_parse_dma_option(option, &res->data.dma);
  509. break;
  510. case ACPI_RESOURCE_TYPE_START_DEPENDENT:
  511. switch (res->data.start_dpf.compatibility_priority) {
  512. case ACPI_GOOD_CONFIGURATION:
  513. priority = PNP_RES_PRIORITY_PREFERRED;
  514. break;
  515. case ACPI_ACCEPTABLE_CONFIGURATION:
  516. priority = PNP_RES_PRIORITY_ACCEPTABLE;
  517. break;
  518. case ACPI_SUB_OPTIMAL_CONFIGURATION:
  519. priority = PNP_RES_PRIORITY_FUNCTIONAL;
  520. break;
  521. default:
  522. priority = PNP_RES_PRIORITY_INVALID;
  523. break;
  524. }
  525. /* TBD: Consider performance/robustness bits */
  526. option = pnp_register_dependent_option(dev, priority);
  527. if (!option)
  528. return AE_ERROR;
  529. parse_data->option = option;
  530. break;
  531. case ACPI_RESOURCE_TYPE_END_DEPENDENT:
  532. /*only one EndDependentFn is allowed */
  533. if (!parse_data->option_independent) {
  534. pnp_warn("PnPACPI: more than one EndDependentFn");
  535. return AE_ERROR;
  536. }
  537. parse_data->option = parse_data->option_independent;
  538. parse_data->option_independent = NULL;
  539. break;
  540. case ACPI_RESOURCE_TYPE_IO:
  541. pnpacpi_parse_port_option(option, &res->data.io);
  542. break;
  543. case ACPI_RESOURCE_TYPE_FIXED_IO:
  544. pnpacpi_parse_fixed_port_option(option, &res->data.fixed_io);
  545. break;
  546. case ACPI_RESOURCE_TYPE_VENDOR:
  547. case ACPI_RESOURCE_TYPE_END_TAG:
  548. break;
  549. case ACPI_RESOURCE_TYPE_MEMORY24:
  550. pnpacpi_parse_mem24_option(option, &res->data.memory24);
  551. break;
  552. case ACPI_RESOURCE_TYPE_MEMORY32:
  553. pnpacpi_parse_mem32_option(option, &res->data.memory32);
  554. break;
  555. case ACPI_RESOURCE_TYPE_FIXED_MEMORY32:
  556. pnpacpi_parse_fixed_mem32_option(option,
  557. &res->data.fixed_memory32);
  558. break;
  559. case ACPI_RESOURCE_TYPE_ADDRESS16:
  560. case ACPI_RESOURCE_TYPE_ADDRESS32:
  561. case ACPI_RESOURCE_TYPE_ADDRESS64:
  562. pnpacpi_parse_address_option(option, res);
  563. break;
  564. case ACPI_RESOURCE_TYPE_EXTENDED_ADDRESS64:
  565. break;
  566. case ACPI_RESOURCE_TYPE_EXTENDED_IRQ:
  567. pnpacpi_parse_ext_irq_option(option, &res->data.extended_irq);
  568. break;
  569. case ACPI_RESOURCE_TYPE_GENERIC_REGISTER:
  570. break;
  571. default:
  572. pnp_warn("PnPACPI: unknown resource type %d", res->type);
  573. return AE_ERROR;
  574. }
  575. return AE_OK;
  576. }
  577. acpi_status pnpacpi_parse_resource_option_data(acpi_handle handle,
  578. struct pnp_dev * dev)
  579. {
  580. acpi_status status;
  581. struct acpipnp_parse_option_s parse_data;
  582. parse_data.option = pnp_register_independent_option(dev);
  583. if (!parse_data.option)
  584. return AE_ERROR;
  585. parse_data.option_independent = parse_data.option;
  586. parse_data.dev = dev;
  587. status = acpi_walk_resources(handle, METHOD_NAME__PRS,
  588. pnpacpi_option_resource, &parse_data);
  589. return status;
  590. }
  591. static int pnpacpi_supported_resource(struct acpi_resource *res)
  592. {
  593. switch (res->type) {
  594. case ACPI_RESOURCE_TYPE_IRQ:
  595. case ACPI_RESOURCE_TYPE_DMA:
  596. case ACPI_RESOURCE_TYPE_IO:
  597. case ACPI_RESOURCE_TYPE_FIXED_IO:
  598. case ACPI_RESOURCE_TYPE_MEMORY24:
  599. case ACPI_RESOURCE_TYPE_MEMORY32:
  600. case ACPI_RESOURCE_TYPE_FIXED_MEMORY32:
  601. case ACPI_RESOURCE_TYPE_ADDRESS16:
  602. case ACPI_RESOURCE_TYPE_ADDRESS32:
  603. case ACPI_RESOURCE_TYPE_ADDRESS64:
  604. case ACPI_RESOURCE_TYPE_EXTENDED_IRQ:
  605. return 1;
  606. }
  607. return 0;
  608. }
  609. /*
  610. * Set resource
  611. */
  612. static acpi_status pnpacpi_count_resources(struct acpi_resource *res,
  613. void *data)
  614. {
  615. int *res_cnt = data;
  616. if (pnpacpi_supported_resource(res))
  617. (*res_cnt)++;
  618. return AE_OK;
  619. }
  620. static acpi_status pnpacpi_type_resources(struct acpi_resource *res, void *data)
  621. {
  622. struct acpi_resource **resource = data;
  623. if (pnpacpi_supported_resource(res)) {
  624. (*resource)->type = res->type;
  625. (*resource)->length = sizeof(struct acpi_resource);
  626. (*resource)++;
  627. }
  628. return AE_OK;
  629. }
  630. int pnpacpi_build_resource_template(acpi_handle handle,
  631. struct acpi_buffer *buffer)
  632. {
  633. struct acpi_resource *resource;
  634. int res_cnt = 0;
  635. acpi_status status;
  636. status = acpi_walk_resources(handle, METHOD_NAME__CRS,
  637. pnpacpi_count_resources, &res_cnt);
  638. if (ACPI_FAILURE(status)) {
  639. pnp_err("Evaluate _CRS failed");
  640. return -EINVAL;
  641. }
  642. if (!res_cnt)
  643. return -EINVAL;
  644. buffer->length = sizeof(struct acpi_resource) * (res_cnt + 1) + 1;
  645. buffer->pointer = kzalloc(buffer->length - 1, GFP_KERNEL);
  646. if (!buffer->pointer)
  647. return -ENOMEM;
  648. pnp_dbg("Res cnt %d", res_cnt);
  649. resource = (struct acpi_resource *)buffer->pointer;
  650. status = acpi_walk_resources(handle, METHOD_NAME__CRS,
  651. pnpacpi_type_resources, &resource);
  652. if (ACPI_FAILURE(status)) {
  653. kfree(buffer->pointer);
  654. pnp_err("Evaluate _CRS failed");
  655. return -EINVAL;
  656. }
  657. /* resource will pointer the end resource now */
  658. resource->type = ACPI_RESOURCE_TYPE_END_TAG;
  659. return 0;
  660. }
  661. static void pnpacpi_encode_irq(struct acpi_resource *resource,
  662. struct resource *p)
  663. {
  664. int triggering, polarity;
  665. decode_irq_flags(p->flags & IORESOURCE_BITS, &triggering, &polarity);
  666. resource->data.irq.triggering = triggering;
  667. resource->data.irq.polarity = polarity;
  668. if (triggering == ACPI_EDGE_SENSITIVE)
  669. resource->data.irq.sharable = ACPI_EXCLUSIVE;
  670. else
  671. resource->data.irq.sharable = ACPI_SHARED;
  672. resource->data.irq.interrupt_count = 1;
  673. resource->data.irq.interrupts[0] = p->start;
  674. }
  675. static void pnpacpi_encode_ext_irq(struct acpi_resource *resource,
  676. struct resource *p)
  677. {
  678. int triggering, polarity;
  679. decode_irq_flags(p->flags & IORESOURCE_BITS, &triggering, &polarity);
  680. resource->data.extended_irq.producer_consumer = ACPI_CONSUMER;
  681. resource->data.extended_irq.triggering = triggering;
  682. resource->data.extended_irq.polarity = polarity;
  683. if (triggering == ACPI_EDGE_SENSITIVE)
  684. resource->data.irq.sharable = ACPI_EXCLUSIVE;
  685. else
  686. resource->data.irq.sharable = ACPI_SHARED;
  687. resource->data.extended_irq.interrupt_count = 1;
  688. resource->data.extended_irq.interrupts[0] = p->start;
  689. }
  690. static void pnpacpi_encode_dma(struct acpi_resource *resource,
  691. struct resource *p)
  692. {
  693. /* Note: pnp_assign_dma will copy pnp_dma->flags into p->flags */
  694. switch (p->flags & IORESOURCE_DMA_SPEED_MASK) {
  695. case IORESOURCE_DMA_TYPEA:
  696. resource->data.dma.type = ACPI_TYPE_A;
  697. break;
  698. case IORESOURCE_DMA_TYPEB:
  699. resource->data.dma.type = ACPI_TYPE_B;
  700. break;
  701. case IORESOURCE_DMA_TYPEF:
  702. resource->data.dma.type = ACPI_TYPE_F;
  703. break;
  704. default:
  705. resource->data.dma.type = ACPI_COMPATIBILITY;
  706. }
  707. switch (p->flags & IORESOURCE_DMA_TYPE_MASK) {
  708. case IORESOURCE_DMA_8BIT:
  709. resource->data.dma.transfer = ACPI_TRANSFER_8;
  710. break;
  711. case IORESOURCE_DMA_8AND16BIT:
  712. resource->data.dma.transfer = ACPI_TRANSFER_8_16;
  713. break;
  714. default:
  715. resource->data.dma.transfer = ACPI_TRANSFER_16;
  716. }
  717. resource->data.dma.bus_master = !!(p->flags & IORESOURCE_DMA_MASTER);
  718. resource->data.dma.channel_count = 1;
  719. resource->data.dma.channels[0] = p->start;
  720. }
  721. static void pnpacpi_encode_io(struct acpi_resource *resource,
  722. struct resource *p)
  723. {
  724. /* Note: pnp_assign_port will copy pnp_port->flags into p->flags */
  725. resource->data.io.io_decode = (p->flags & PNP_PORT_FLAG_16BITADDR) ?
  726. ACPI_DECODE_16 : ACPI_DECODE_10;
  727. resource->data.io.minimum = p->start;
  728. resource->data.io.maximum = p->end;
  729. resource->data.io.alignment = 0; /* Correct? */
  730. resource->data.io.address_length = p->end - p->start + 1;
  731. }
  732. static void pnpacpi_encode_fixed_io(struct acpi_resource *resource,
  733. struct resource *p)
  734. {
  735. resource->data.fixed_io.address = p->start;
  736. resource->data.fixed_io.address_length = p->end - p->start + 1;
  737. }
  738. static void pnpacpi_encode_mem24(struct acpi_resource *resource,
  739. struct resource *p)
  740. {
  741. /* Note: pnp_assign_mem will copy pnp_mem->flags into p->flags */
  742. resource->data.memory24.write_protect =
  743. (p->flags & IORESOURCE_MEM_WRITEABLE) ?
  744. ACPI_READ_WRITE_MEMORY : ACPI_READ_ONLY_MEMORY;
  745. resource->data.memory24.minimum = p->start;
  746. resource->data.memory24.maximum = p->end;
  747. resource->data.memory24.alignment = 0;
  748. resource->data.memory24.address_length = p->end - p->start + 1;
  749. }
  750. static void pnpacpi_encode_mem32(struct acpi_resource *resource,
  751. struct resource *p)
  752. {
  753. resource->data.memory32.write_protect =
  754. (p->flags & IORESOURCE_MEM_WRITEABLE) ?
  755. ACPI_READ_WRITE_MEMORY : ACPI_READ_ONLY_MEMORY;
  756. resource->data.memory32.minimum = p->start;
  757. resource->data.memory32.maximum = p->end;
  758. resource->data.memory32.alignment = 0;
  759. resource->data.memory32.address_length = p->end - p->start + 1;
  760. }
  761. static void pnpacpi_encode_fixed_mem32(struct acpi_resource *resource,
  762. struct resource *p)
  763. {
  764. resource->data.fixed_memory32.write_protect =
  765. (p->flags & IORESOURCE_MEM_WRITEABLE) ?
  766. ACPI_READ_WRITE_MEMORY : ACPI_READ_ONLY_MEMORY;
  767. resource->data.fixed_memory32.address = p->start;
  768. resource->data.fixed_memory32.address_length = p->end - p->start + 1;
  769. }
  770. int pnpacpi_encode_resources(struct pnp_resource_table *res_table,
  771. struct acpi_buffer *buffer)
  772. {
  773. int i = 0;
  774. /* pnpacpi_build_resource_template allocates extra mem */
  775. int res_cnt = (buffer->length - 1) / sizeof(struct acpi_resource) - 1;
  776. struct acpi_resource *resource = buffer->pointer;
  777. int port = 0, irq = 0, dma = 0, mem = 0;
  778. pnp_dbg("res cnt %d", res_cnt);
  779. while (i < res_cnt) {
  780. switch (resource->type) {
  781. case ACPI_RESOURCE_TYPE_IRQ:
  782. pnp_dbg("Encode irq");
  783. pnpacpi_encode_irq(resource,
  784. &res_table->irq_resource[irq]);
  785. irq++;
  786. break;
  787. case ACPI_RESOURCE_TYPE_DMA:
  788. pnp_dbg("Encode dma");
  789. pnpacpi_encode_dma(resource,
  790. &res_table->dma_resource[dma]);
  791. dma++;
  792. break;
  793. case ACPI_RESOURCE_TYPE_IO:
  794. pnp_dbg("Encode io");
  795. pnpacpi_encode_io(resource,
  796. &res_table->port_resource[port]);
  797. port++;
  798. break;
  799. case ACPI_RESOURCE_TYPE_FIXED_IO:
  800. pnp_dbg("Encode fixed io");
  801. pnpacpi_encode_fixed_io(resource,
  802. &res_table->
  803. port_resource[port]);
  804. port++;
  805. break;
  806. case ACPI_RESOURCE_TYPE_MEMORY24:
  807. pnp_dbg("Encode mem24");
  808. pnpacpi_encode_mem24(resource,
  809. &res_table->mem_resource[mem]);
  810. mem++;
  811. break;
  812. case ACPI_RESOURCE_TYPE_MEMORY32:
  813. pnp_dbg("Encode mem32");
  814. pnpacpi_encode_mem32(resource,
  815. &res_table->mem_resource[mem]);
  816. mem++;
  817. break;
  818. case ACPI_RESOURCE_TYPE_FIXED_MEMORY32:
  819. pnp_dbg("Encode fixed mem32");
  820. pnpacpi_encode_fixed_mem32(resource,
  821. &res_table->
  822. mem_resource[mem]);
  823. mem++;
  824. break;
  825. case ACPI_RESOURCE_TYPE_EXTENDED_IRQ:
  826. pnp_dbg("Encode ext irq");
  827. pnpacpi_encode_ext_irq(resource,
  828. &res_table->irq_resource[irq]);
  829. irq++;
  830. break;
  831. case ACPI_RESOURCE_TYPE_START_DEPENDENT:
  832. case ACPI_RESOURCE_TYPE_END_DEPENDENT:
  833. case ACPI_RESOURCE_TYPE_VENDOR:
  834. case ACPI_RESOURCE_TYPE_END_TAG:
  835. case ACPI_RESOURCE_TYPE_ADDRESS16:
  836. case ACPI_RESOURCE_TYPE_ADDRESS32:
  837. case ACPI_RESOURCE_TYPE_ADDRESS64:
  838. case ACPI_RESOURCE_TYPE_EXTENDED_ADDRESS64:
  839. case ACPI_RESOURCE_TYPE_GENERIC_REGISTER:
  840. default: /* other type */
  841. pnp_warn("unknown resource type %d", resource->type);
  842. return -EINVAL;
  843. }
  844. resource++;
  845. i++;
  846. }
  847. return 0;
  848. }