cpqphp_nvram.c 13 KB

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  1. // SPDX-License-Identifier: GPL-2.0+
  2. /*
  3. * Compaq Hot Plug Controller Driver
  4. *
  5. * Copyright (C) 1995,2001 Compaq Computer Corporation
  6. * Copyright (C) 2001 Greg Kroah-Hartman (greg@kroah.com)
  7. * Copyright (C) 2001 IBM Corp.
  8. *
  9. * All rights reserved.
  10. *
  11. * Send feedback to <greg@kroah.com>
  12. *
  13. */
  14. #include <linux/module.h>
  15. #include <linux/kernel.h>
  16. #include <linux/types.h>
  17. #include <linux/proc_fs.h>
  18. #include <linux/slab.h>
  19. #include <linux/workqueue.h>
  20. #include <linux/pci.h>
  21. #include <linux/pci_hotplug.h>
  22. #include <linux/uaccess.h>
  23. #include "cpqphp.h"
  24. #include "cpqphp_nvram.h"
  25. #define ROM_INT15_PHY_ADDR 0x0FF859
  26. #define READ_EV 0xD8A4
  27. #define WRITE_EV 0xD8A5
  28. struct register_foo {
  29. union {
  30. unsigned long lword; /* eax */
  31. unsigned short word; /* ax */
  32. struct {
  33. unsigned char low; /* al */
  34. unsigned char high; /* ah */
  35. } byte;
  36. } data;
  37. unsigned char opcode; /* see below */
  38. unsigned long length; /* if the reg. is a pointer, how much data */
  39. } __attribute__ ((packed));
  40. struct all_reg {
  41. struct register_foo eax_reg;
  42. struct register_foo ebx_reg;
  43. struct register_foo ecx_reg;
  44. struct register_foo edx_reg;
  45. struct register_foo edi_reg;
  46. struct register_foo esi_reg;
  47. struct register_foo eflags_reg;
  48. } __attribute__ ((packed));
  49. struct ev_hrt_header {
  50. u8 Version;
  51. u8 num_of_ctrl;
  52. u8 next;
  53. };
  54. struct ev_hrt_ctrl {
  55. u8 bus;
  56. u8 device;
  57. u8 function;
  58. u8 mem_avail;
  59. u8 p_mem_avail;
  60. u8 io_avail;
  61. u8 bus_avail;
  62. u8 next;
  63. };
  64. static u8 evbuffer_init;
  65. static u8 evbuffer_length;
  66. static u8 evbuffer[1024];
  67. static void __iomem *compaq_int15_entry_point;
  68. /* lock for ordering int15_bios_call() */
  69. static spinlock_t int15_lock;
  70. /* This is a series of function that deals with
  71. * setting & getting the hotplug resource table in some environment variable.
  72. */
  73. /*
  74. * We really shouldn't be doing this unless there is a _very_ good reason to!!!
  75. * greg k-h
  76. */
  77. static u32 add_byte(u32 **p_buffer, u8 value, u32 *used, u32 *avail)
  78. {
  79. u8 **tByte;
  80. if ((*used + 1) > *avail)
  81. return(1);
  82. *((u8 *)*p_buffer) = value;
  83. tByte = (u8 **)p_buffer;
  84. (*tByte)++;
  85. *used += 1;
  86. return(0);
  87. }
  88. static u32 add_dword(u32 **p_buffer, u32 value, u32 *used, u32 *avail)
  89. {
  90. if ((*used + 4) > *avail)
  91. return(1);
  92. **p_buffer = value;
  93. (*p_buffer)++;
  94. *used += 4;
  95. return(0);
  96. }
  97. /*
  98. * check_for_compaq_ROM
  99. *
  100. * this routine verifies that the ROM OEM string is 'COMPAQ'
  101. *
  102. * returns 0 for non-Compaq ROM, 1 for Compaq ROM
  103. */
  104. static int check_for_compaq_ROM(void __iomem *rom_start)
  105. {
  106. u8 temp1, temp2, temp3, temp4, temp5, temp6;
  107. int result = 0;
  108. temp1 = readb(rom_start + 0xffea + 0);
  109. temp2 = readb(rom_start + 0xffea + 1);
  110. temp3 = readb(rom_start + 0xffea + 2);
  111. temp4 = readb(rom_start + 0xffea + 3);
  112. temp5 = readb(rom_start + 0xffea + 4);
  113. temp6 = readb(rom_start + 0xffea + 5);
  114. if ((temp1 == 'C') &&
  115. (temp2 == 'O') &&
  116. (temp3 == 'M') &&
  117. (temp4 == 'P') &&
  118. (temp5 == 'A') &&
  119. (temp6 == 'Q')) {
  120. result = 1;
  121. }
  122. dbg("%s - returned %d\n", __func__, result);
  123. return result;
  124. }
  125. static u32 access_EV(u16 operation, u8 *ev_name, u8 *buffer, u32 *buf_size)
  126. {
  127. unsigned long flags;
  128. int op = operation;
  129. int ret_val;
  130. if (!compaq_int15_entry_point)
  131. return -ENODEV;
  132. spin_lock_irqsave(&int15_lock, flags);
  133. __asm__ (
  134. "xorl %%ebx,%%ebx\n" \
  135. "xorl %%edx,%%edx\n" \
  136. "pushf\n" \
  137. "push %%cs\n" \
  138. "cli\n" \
  139. "call *%6\n"
  140. : "=c" (*buf_size), "=a" (ret_val)
  141. : "a" (op), "c" (*buf_size), "S" (ev_name),
  142. "D" (buffer), "m" (compaq_int15_entry_point)
  143. : "%ebx", "%edx");
  144. spin_unlock_irqrestore(&int15_lock, flags);
  145. return((ret_val & 0xFF00) >> 8);
  146. }
  147. /*
  148. * load_HRT
  149. *
  150. * Read the hot plug Resource Table from NVRAM
  151. */
  152. static int load_HRT(void __iomem *rom_start)
  153. {
  154. u32 available;
  155. u32 temp_dword;
  156. u8 temp_byte = 0xFF;
  157. u32 rc;
  158. if (!check_for_compaq_ROM(rom_start))
  159. return -ENODEV;
  160. available = 1024;
  161. /* Now load the EV */
  162. temp_dword = available;
  163. rc = access_EV(READ_EV, "CQTHPS", evbuffer, &temp_dword);
  164. evbuffer_length = temp_dword;
  165. /* We're maintaining the resource lists so write FF to invalidate old
  166. * info
  167. */
  168. temp_dword = 1;
  169. rc = access_EV(WRITE_EV, "CQTHPS", &temp_byte, &temp_dword);
  170. return rc;
  171. }
  172. /*
  173. * store_HRT
  174. *
  175. * Save the hot plug Resource Table in NVRAM
  176. */
  177. static u32 store_HRT(void __iomem *rom_start)
  178. {
  179. u32 *buffer;
  180. u32 *pFill;
  181. u32 usedbytes;
  182. u32 available;
  183. u32 temp_dword;
  184. u32 rc;
  185. u8 loop;
  186. u8 numCtrl = 0;
  187. struct controller *ctrl;
  188. struct pci_resource *resNode;
  189. struct ev_hrt_header *p_EV_header;
  190. struct ev_hrt_ctrl *p_ev_ctrl;
  191. available = 1024;
  192. if (!check_for_compaq_ROM(rom_start))
  193. return(1);
  194. buffer = (u32 *) evbuffer;
  195. if (!buffer)
  196. return(1);
  197. pFill = buffer;
  198. usedbytes = 0;
  199. p_EV_header = (struct ev_hrt_header *) pFill;
  200. ctrl = cpqhp_ctrl_list;
  201. /* The revision of this structure */
  202. rc = add_byte(&pFill, 1 + ctrl->push_flag, &usedbytes, &available);
  203. if (rc)
  204. return(rc);
  205. /* The number of controllers */
  206. rc = add_byte(&pFill, 1, &usedbytes, &available);
  207. if (rc)
  208. return(rc);
  209. while (ctrl) {
  210. p_ev_ctrl = (struct ev_hrt_ctrl *) pFill;
  211. numCtrl++;
  212. /* The bus number */
  213. rc = add_byte(&pFill, ctrl->bus, &usedbytes, &available);
  214. if (rc)
  215. return(rc);
  216. /* The device Number */
  217. rc = add_byte(&pFill, PCI_SLOT(ctrl->pci_dev->devfn), &usedbytes, &available);
  218. if (rc)
  219. return(rc);
  220. /* The function Number */
  221. rc = add_byte(&pFill, PCI_FUNC(ctrl->pci_dev->devfn), &usedbytes, &available);
  222. if (rc)
  223. return(rc);
  224. /* Skip the number of available entries */
  225. rc = add_dword(&pFill, 0, &usedbytes, &available);
  226. if (rc)
  227. return(rc);
  228. /* Figure out memory Available */
  229. resNode = ctrl->mem_head;
  230. loop = 0;
  231. while (resNode) {
  232. loop++;
  233. /* base */
  234. rc = add_dword(&pFill, resNode->base, &usedbytes, &available);
  235. if (rc)
  236. return(rc);
  237. /* length */
  238. rc = add_dword(&pFill, resNode->length, &usedbytes, &available);
  239. if (rc)
  240. return(rc);
  241. resNode = resNode->next;
  242. }
  243. /* Fill in the number of entries */
  244. p_ev_ctrl->mem_avail = loop;
  245. /* Figure out prefetchable memory Available */
  246. resNode = ctrl->p_mem_head;
  247. loop = 0;
  248. while (resNode) {
  249. loop++;
  250. /* base */
  251. rc = add_dword(&pFill, resNode->base, &usedbytes, &available);
  252. if (rc)
  253. return(rc);
  254. /* length */
  255. rc = add_dword(&pFill, resNode->length, &usedbytes, &available);
  256. if (rc)
  257. return(rc);
  258. resNode = resNode->next;
  259. }
  260. /* Fill in the number of entries */
  261. p_ev_ctrl->p_mem_avail = loop;
  262. /* Figure out IO Available */
  263. resNode = ctrl->io_head;
  264. loop = 0;
  265. while (resNode) {
  266. loop++;
  267. /* base */
  268. rc = add_dword(&pFill, resNode->base, &usedbytes, &available);
  269. if (rc)
  270. return(rc);
  271. /* length */
  272. rc = add_dword(&pFill, resNode->length, &usedbytes, &available);
  273. if (rc)
  274. return(rc);
  275. resNode = resNode->next;
  276. }
  277. /* Fill in the number of entries */
  278. p_ev_ctrl->io_avail = loop;
  279. /* Figure out bus Available */
  280. resNode = ctrl->bus_head;
  281. loop = 0;
  282. while (resNode) {
  283. loop++;
  284. /* base */
  285. rc = add_dword(&pFill, resNode->base, &usedbytes, &available);
  286. if (rc)
  287. return(rc);
  288. /* length */
  289. rc = add_dword(&pFill, resNode->length, &usedbytes, &available);
  290. if (rc)
  291. return(rc);
  292. resNode = resNode->next;
  293. }
  294. /* Fill in the number of entries */
  295. p_ev_ctrl->bus_avail = loop;
  296. ctrl = ctrl->next;
  297. }
  298. p_EV_header->num_of_ctrl = numCtrl;
  299. /* Now store the EV */
  300. temp_dword = usedbytes;
  301. rc = access_EV(WRITE_EV, "CQTHPS", (u8 *) buffer, &temp_dword);
  302. dbg("usedbytes = 0x%x, length = 0x%x\n", usedbytes, temp_dword);
  303. evbuffer_length = temp_dword;
  304. if (rc) {
  305. err(msg_unable_to_save);
  306. return(1);
  307. }
  308. return(0);
  309. }
  310. void compaq_nvram_init(void __iomem *rom_start)
  311. {
  312. if (rom_start)
  313. compaq_int15_entry_point = (rom_start + ROM_INT15_PHY_ADDR - ROM_PHY_ADDR);
  314. dbg("int15 entry = %p\n", compaq_int15_entry_point);
  315. /* initialize our int15 lock */
  316. spin_lock_init(&int15_lock);
  317. }
  318. int compaq_nvram_load(void __iomem *rom_start, struct controller *ctrl)
  319. {
  320. u8 bus, device, function;
  321. u8 nummem, numpmem, numio, numbus;
  322. u32 rc;
  323. u8 *p_byte;
  324. struct pci_resource *mem_node;
  325. struct pci_resource *p_mem_node;
  326. struct pci_resource *io_node;
  327. struct pci_resource *bus_node;
  328. struct ev_hrt_ctrl *p_ev_ctrl;
  329. struct ev_hrt_header *p_EV_header;
  330. if (!evbuffer_init) {
  331. /* Read the resource list information in from NVRAM */
  332. if (load_HRT(rom_start))
  333. memset(evbuffer, 0, 1024);
  334. evbuffer_init = 1;
  335. }
  336. /* If we saved information in NVRAM, use it now */
  337. p_EV_header = (struct ev_hrt_header *) evbuffer;
  338. /* The following code is for systems where version 1.0 of this
  339. * driver has been loaded, but doesn't support the hardware.
  340. * In that case, the driver would incorrectly store something
  341. * in NVRAM.
  342. */
  343. if ((p_EV_header->Version == 2) ||
  344. ((p_EV_header->Version == 1) && !ctrl->push_flag)) {
  345. p_byte = &(p_EV_header->next);
  346. p_ev_ctrl = (struct ev_hrt_ctrl *) &(p_EV_header->next);
  347. p_byte += 3;
  348. if (p_byte > ((u8 *)p_EV_header + evbuffer_length))
  349. return 2;
  350. bus = p_ev_ctrl->bus;
  351. device = p_ev_ctrl->device;
  352. function = p_ev_ctrl->function;
  353. while ((bus != ctrl->bus) ||
  354. (device != PCI_SLOT(ctrl->pci_dev->devfn)) ||
  355. (function != PCI_FUNC(ctrl->pci_dev->devfn))) {
  356. nummem = p_ev_ctrl->mem_avail;
  357. numpmem = p_ev_ctrl->p_mem_avail;
  358. numio = p_ev_ctrl->io_avail;
  359. numbus = p_ev_ctrl->bus_avail;
  360. p_byte += 4;
  361. if (p_byte > ((u8 *)p_EV_header + evbuffer_length))
  362. return 2;
  363. /* Skip forward to the next entry */
  364. p_byte += (nummem + numpmem + numio + numbus) * 8;
  365. if (p_byte > ((u8 *)p_EV_header + evbuffer_length))
  366. return 2;
  367. p_ev_ctrl = (struct ev_hrt_ctrl *) p_byte;
  368. p_byte += 3;
  369. if (p_byte > ((u8 *)p_EV_header + evbuffer_length))
  370. return 2;
  371. bus = p_ev_ctrl->bus;
  372. device = p_ev_ctrl->device;
  373. function = p_ev_ctrl->function;
  374. }
  375. nummem = p_ev_ctrl->mem_avail;
  376. numpmem = p_ev_ctrl->p_mem_avail;
  377. numio = p_ev_ctrl->io_avail;
  378. numbus = p_ev_ctrl->bus_avail;
  379. p_byte += 4;
  380. if (p_byte > ((u8 *)p_EV_header + evbuffer_length))
  381. return 2;
  382. while (nummem--) {
  383. mem_node = kmalloc(sizeof(struct pci_resource), GFP_KERNEL);
  384. if (!mem_node)
  385. break;
  386. mem_node->base = *(u32 *)p_byte;
  387. dbg("mem base = %8.8x\n", mem_node->base);
  388. p_byte += 4;
  389. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  390. kfree(mem_node);
  391. return 2;
  392. }
  393. mem_node->length = *(u32 *)p_byte;
  394. dbg("mem length = %8.8x\n", mem_node->length);
  395. p_byte += 4;
  396. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  397. kfree(mem_node);
  398. return 2;
  399. }
  400. mem_node->next = ctrl->mem_head;
  401. ctrl->mem_head = mem_node;
  402. }
  403. while (numpmem--) {
  404. p_mem_node = kmalloc(sizeof(struct pci_resource), GFP_KERNEL);
  405. if (!p_mem_node)
  406. break;
  407. p_mem_node->base = *(u32 *)p_byte;
  408. dbg("pre-mem base = %8.8x\n", p_mem_node->base);
  409. p_byte += 4;
  410. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  411. kfree(p_mem_node);
  412. return 2;
  413. }
  414. p_mem_node->length = *(u32 *)p_byte;
  415. dbg("pre-mem length = %8.8x\n", p_mem_node->length);
  416. p_byte += 4;
  417. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  418. kfree(p_mem_node);
  419. return 2;
  420. }
  421. p_mem_node->next = ctrl->p_mem_head;
  422. ctrl->p_mem_head = p_mem_node;
  423. }
  424. while (numio--) {
  425. io_node = kmalloc(sizeof(struct pci_resource), GFP_KERNEL);
  426. if (!io_node)
  427. break;
  428. io_node->base = *(u32 *)p_byte;
  429. dbg("io base = %8.8x\n", io_node->base);
  430. p_byte += 4;
  431. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  432. kfree(io_node);
  433. return 2;
  434. }
  435. io_node->length = *(u32 *)p_byte;
  436. dbg("io length = %8.8x\n", io_node->length);
  437. p_byte += 4;
  438. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  439. kfree(io_node);
  440. return 2;
  441. }
  442. io_node->next = ctrl->io_head;
  443. ctrl->io_head = io_node;
  444. }
  445. while (numbus--) {
  446. bus_node = kmalloc(sizeof(struct pci_resource), GFP_KERNEL);
  447. if (!bus_node)
  448. break;
  449. bus_node->base = *(u32 *)p_byte;
  450. p_byte += 4;
  451. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  452. kfree(bus_node);
  453. return 2;
  454. }
  455. bus_node->length = *(u32 *)p_byte;
  456. p_byte += 4;
  457. if (p_byte > ((u8 *)p_EV_header + evbuffer_length)) {
  458. kfree(bus_node);
  459. return 2;
  460. }
  461. bus_node->next = ctrl->bus_head;
  462. ctrl->bus_head = bus_node;
  463. }
  464. /* If all of the following fail, we don't have any resources for
  465. * hot plug add
  466. */
  467. rc = 1;
  468. rc &= cpqhp_resource_sort_and_combine(&(ctrl->mem_head));
  469. rc &= cpqhp_resource_sort_and_combine(&(ctrl->p_mem_head));
  470. rc &= cpqhp_resource_sort_and_combine(&(ctrl->io_head));
  471. rc &= cpqhp_resource_sort_and_combine(&(ctrl->bus_head));
  472. if (rc)
  473. return(rc);
  474. } else {
  475. if ((evbuffer[0] != 0) && (!ctrl->push_flag))
  476. return 1;
  477. }
  478. return 0;
  479. }
  480. int compaq_nvram_store(void __iomem *rom_start)
  481. {
  482. int rc = 1;
  483. if (rom_start == NULL)
  484. return -ENODEV;
  485. if (evbuffer_init) {
  486. rc = store_HRT(rom_start);
  487. if (rc)
  488. err(msg_unable_to_save);
  489. }
  490. return rc;
  491. }