fsp_support.c 11 KB

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  1. /*
  2. * Copyright (C) 2013, Intel Corporation
  3. * Copyright (C) 2014, Bin Meng <bmeng.cn@gmail.com>
  4. *
  5. * SPDX-License-Identifier: Intel
  6. */
  7. #include <common.h>
  8. #include <asm/fsp/fsp_support.h>
  9. #include <asm/post.h>
  10. /**
  11. * Compares two GUIDs
  12. *
  13. * If the GUIDs are identical then true is returned.
  14. * If there are any bit differences in the two GUIDs, then false is returned.
  15. *
  16. * @guid1: A pointer to a 128 bit GUID.
  17. * @guid2: A pointer to a 128 bit GUID.
  18. *
  19. * @retval true: guid1 and guid2 are identical.
  20. * @retval false: guid1 and guid2 are not identical.
  21. */
  22. static bool compare_guid(const struct efi_guid *guid1,
  23. const struct efi_guid *guid2)
  24. {
  25. if (memcmp(guid1, guid2, sizeof(struct efi_guid)) == 0)
  26. return true;
  27. else
  28. return false;
  29. }
  30. struct fsp_header *__attribute__((optimize("O0"))) find_fsp_header(void)
  31. {
  32. /*
  33. * This function may be called before the a stack is established,
  34. * so special care must be taken. First, it cannot declare any local
  35. * variable using stack. Only register variable can be used here.
  36. * Secondly, some compiler version will add prolog or epilog code
  37. * for the C function. If so the function call may not work before
  38. * stack is ready.
  39. *
  40. * GCC 4.8.1 has been verified to be working for the following codes.
  41. */
  42. volatile register u8 *fsp asm("eax");
  43. /* Initalize the FSP base */
  44. fsp = (u8 *)CONFIG_FSP_ADDR;
  45. /* Check the FV signature, _FVH */
  46. if (((struct fv_header *)fsp)->sign == EFI_FVH_SIGNATURE) {
  47. /* Go to the end of the FV header and align the address */
  48. fsp += ((struct fv_header *)fsp)->ext_hdr_off;
  49. fsp += ((struct fv_ext_header *)fsp)->ext_hdr_size;
  50. fsp = (u8 *)(((u32)fsp + 7) & 0xFFFFFFF8);
  51. } else {
  52. fsp = 0;
  53. }
  54. /* Check the FFS GUID */
  55. if (fsp &&
  56. ((struct ffs_file_header *)fsp)->name.data1 == FSP_GUID_DATA1 &&
  57. ((struct ffs_file_header *)fsp)->name.data2 == FSP_GUID_DATA2 &&
  58. ((struct ffs_file_header *)fsp)->name.data3 == FSP_GUID_DATA3 &&
  59. ((struct ffs_file_header *)fsp)->name.data4[0] == FSP_GUID_DATA4_0 &&
  60. ((struct ffs_file_header *)fsp)->name.data4[1] == FSP_GUID_DATA4_1 &&
  61. ((struct ffs_file_header *)fsp)->name.data4[2] == FSP_GUID_DATA4_2 &&
  62. ((struct ffs_file_header *)fsp)->name.data4[3] == FSP_GUID_DATA4_3 &&
  63. ((struct ffs_file_header *)fsp)->name.data4[4] == FSP_GUID_DATA4_4 &&
  64. ((struct ffs_file_header *)fsp)->name.data4[5] == FSP_GUID_DATA4_5 &&
  65. ((struct ffs_file_header *)fsp)->name.data4[6] == FSP_GUID_DATA4_6 &&
  66. ((struct ffs_file_header *)fsp)->name.data4[7] == FSP_GUID_DATA4_7) {
  67. /* Add the FFS header size to find the raw section header */
  68. fsp += sizeof(struct ffs_file_header);
  69. } else {
  70. fsp = 0;
  71. }
  72. if (fsp &&
  73. ((struct raw_section *)fsp)->type == EFI_SECTION_RAW) {
  74. /* Add the raw section header size to find the FSP header */
  75. fsp += sizeof(struct raw_section);
  76. } else {
  77. fsp = 0;
  78. }
  79. return (struct fsp_header *)fsp;
  80. }
  81. void fsp_continue(u32 status, void *hob_list)
  82. {
  83. post_code(POST_MRC);
  84. assert(status == 0);
  85. /* The boot loader main function entry */
  86. fsp_init_done(hob_list);
  87. }
  88. void fsp_init(u32 stack_top, u32 boot_mode, void *nvs_buf)
  89. {
  90. struct fsp_config_data config_data;
  91. fsp_init_f init;
  92. struct fsp_init_params params;
  93. struct fspinit_rtbuf rt_buf;
  94. struct fsp_header *fsp_hdr;
  95. struct fsp_init_params *params_ptr;
  96. #ifdef CONFIG_FSP_USE_UPD
  97. struct vpd_region *fsp_vpd;
  98. struct upd_region *fsp_upd;
  99. #endif
  100. #ifdef CONFIG_INTERNAL_UART
  101. setup_internal_uart(1);
  102. #endif
  103. fsp_hdr = find_fsp_header();
  104. if (fsp_hdr == NULL) {
  105. /* No valid FSP info header was found */
  106. panic("Invalid FSP header");
  107. }
  108. config_data.common.fsp_hdr = fsp_hdr;
  109. config_data.common.stack_top = stack_top;
  110. config_data.common.boot_mode = boot_mode;
  111. #ifdef CONFIG_FSP_USE_UPD
  112. /* Get VPD region start */
  113. fsp_vpd = (struct vpd_region *)(fsp_hdr->img_base +
  114. fsp_hdr->cfg_region_off);
  115. /* Verify the VPD data region is valid */
  116. assert(fsp_vpd->sign == VPD_IMAGE_ID);
  117. fsp_upd = &config_data.fsp_upd;
  118. /* Copy default data from Flash */
  119. memcpy(fsp_upd, (void *)(fsp_hdr->img_base + fsp_vpd->upd_offset),
  120. sizeof(struct upd_region));
  121. /* Verify the UPD data region is valid */
  122. assert(fsp_upd->terminator == UPD_TERMINATOR);
  123. #endif
  124. memset(&rt_buf, 0, sizeof(struct fspinit_rtbuf));
  125. /* Override any configuration if required */
  126. update_fsp_configs(&config_data, &rt_buf);
  127. memset(&params, 0, sizeof(struct fsp_init_params));
  128. params.nvs_buf = nvs_buf;
  129. params.rt_buf = (struct fspinit_rtbuf *)&rt_buf;
  130. params.continuation = (fsp_continuation_f)asm_continuation;
  131. init = (fsp_init_f)(fsp_hdr->img_base + fsp_hdr->fsp_init);
  132. params_ptr = &params;
  133. post_code(POST_PRE_MRC);
  134. /* Load GDT for FSP */
  135. setup_fsp_gdt();
  136. /*
  137. * Use ASM code to ensure the register value in EAX & EDX
  138. * will be passed into fsp_continue
  139. */
  140. asm volatile (
  141. "pushl %0;"
  142. "call *%%eax;"
  143. ".global asm_continuation;"
  144. "asm_continuation:;"
  145. "movl 4(%%esp), %%eax;" /* status */
  146. "movl 8(%%esp), %%edx;" /* hob_list */
  147. "jmp fsp_continue;"
  148. : : "m"(params_ptr), "a"(init)
  149. );
  150. /*
  151. * Should never get here.
  152. * Control will continue from fsp_continue.
  153. * This line below is to prevent the compiler from optimizing
  154. * structure intialization.
  155. *
  156. * DO NOT REMOVE!
  157. */
  158. init(&params);
  159. }
  160. u32 fsp_notify(struct fsp_header *fsp_hdr, u32 phase)
  161. {
  162. fsp_notify_f notify;
  163. struct fsp_notify_params params;
  164. struct fsp_notify_params *params_ptr;
  165. u32 status;
  166. if (!fsp_hdr)
  167. fsp_hdr = (struct fsp_header *)find_fsp_header();
  168. if (fsp_hdr == NULL) {
  169. /* No valid FSP info header */
  170. panic("Invalid FSP header");
  171. }
  172. notify = (fsp_notify_f)(fsp_hdr->img_base + fsp_hdr->fsp_notify);
  173. params.phase = phase;
  174. params_ptr = &params;
  175. /*
  176. * Use ASM code to ensure correct parameter is on the stack for
  177. * FspNotify as U-Boot is using different ABI from FSP
  178. */
  179. asm volatile (
  180. "pushl %1;" /* push notify phase */
  181. "call *%%eax;" /* call FspNotify */
  182. "addl $4, %%esp;" /* clean up the stack */
  183. : "=a"(status) : "m"(params_ptr), "a"(notify), "m"(*params_ptr)
  184. );
  185. return status;
  186. }
  187. u32 fsp_get_usable_lowmem_top(const void *hob_list)
  188. {
  189. const struct hob_header *hdr;
  190. struct hob_res_desc *res_desc;
  191. phys_addr_t phys_start;
  192. u32 top;
  193. #ifdef CONFIG_FSP_BROKEN_HOB
  194. struct hob_mem_alloc *res_mem;
  195. phys_addr_t mem_base = 0;
  196. #endif
  197. /* Get the HOB list for processing */
  198. hdr = hob_list;
  199. /* * Collect memory ranges */
  200. top = FSP_LOWMEM_BASE;
  201. while (!end_of_hob(hdr)) {
  202. if (hdr->type == HOB_TYPE_RES_DESC) {
  203. res_desc = (struct hob_res_desc *)hdr;
  204. if (res_desc->type == RES_SYS_MEM) {
  205. phys_start = res_desc->phys_start;
  206. /* Need memory above 1MB to be collected here */
  207. if (phys_start >= FSP_LOWMEM_BASE &&
  208. phys_start < (phys_addr_t)FSP_HIGHMEM_BASE)
  209. top += (u32)(res_desc->len);
  210. }
  211. }
  212. #ifdef CONFIG_FSP_BROKEN_HOB
  213. /*
  214. * Find out the lowest memory base address allocated by FSP
  215. * for the boot service data
  216. */
  217. if (hdr->type == HOB_TYPE_MEM_ALLOC) {
  218. res_mem = (struct hob_mem_alloc *)hdr;
  219. if (!mem_base)
  220. mem_base = res_mem->mem_base;
  221. if (res_mem->mem_base < mem_base)
  222. mem_base = res_mem->mem_base;
  223. }
  224. #endif
  225. hdr = get_next_hob(hdr);
  226. }
  227. #ifdef CONFIG_FSP_BROKEN_HOB
  228. /*
  229. * Check whether the memory top address is below the FSP HOB list.
  230. * If not, use the lowest memory base address allocated by FSP as
  231. * the memory top address. This is to prevent U-Boot relocation
  232. * overwrites the important boot service data which is used by FSP,
  233. * otherwise the subsequent call to fsp_notify() will fail.
  234. */
  235. if (top > (u32)hob_list) {
  236. debug("Adjust memory top address due to a buggy FSP\n");
  237. top = (u32)mem_base;
  238. }
  239. #endif
  240. return top;
  241. }
  242. u64 fsp_get_usable_highmem_top(const void *hob_list)
  243. {
  244. const struct hob_header *hdr;
  245. struct hob_res_desc *res_desc;
  246. phys_addr_t phys_start;
  247. u64 top;
  248. /* Get the HOB list for processing */
  249. hdr = hob_list;
  250. /* Collect memory ranges */
  251. top = FSP_HIGHMEM_BASE;
  252. while (!end_of_hob(hdr)) {
  253. if (hdr->type == HOB_TYPE_RES_DESC) {
  254. res_desc = (struct hob_res_desc *)hdr;
  255. if (res_desc->type == RES_SYS_MEM) {
  256. phys_start = res_desc->phys_start;
  257. /* Need memory above 4GB to be collected here */
  258. if (phys_start >= (phys_addr_t)FSP_HIGHMEM_BASE)
  259. top += (u32)(res_desc->len);
  260. }
  261. }
  262. hdr = get_next_hob(hdr);
  263. }
  264. return top;
  265. }
  266. u64 fsp_get_reserved_mem_from_guid(const void *hob_list, u64 *len,
  267. struct efi_guid *guid)
  268. {
  269. const struct hob_header *hdr;
  270. struct hob_res_desc *res_desc;
  271. /* Get the HOB list for processing */
  272. hdr = hob_list;
  273. /* Collect memory ranges */
  274. while (!end_of_hob(hdr)) {
  275. if (hdr->type == HOB_TYPE_RES_DESC) {
  276. res_desc = (struct hob_res_desc *)hdr;
  277. if (res_desc->type == RES_MEM_RESERVED) {
  278. if (compare_guid(&res_desc->owner, guid)) {
  279. if (len)
  280. *len = (u32)(res_desc->len);
  281. return (u64)(res_desc->phys_start);
  282. }
  283. }
  284. }
  285. hdr = get_next_hob(hdr);
  286. }
  287. return 0;
  288. }
  289. u32 fsp_get_fsp_reserved_mem(const void *hob_list, u32 *len)
  290. {
  291. const struct efi_guid guid = FSP_HOB_RESOURCE_OWNER_FSP_GUID;
  292. u64 length;
  293. u32 base;
  294. base = (u32)fsp_get_reserved_mem_from_guid(hob_list,
  295. &length, (struct efi_guid *)&guid);
  296. if ((len != 0) && (base != 0))
  297. *len = (u32)length;
  298. return base;
  299. }
  300. u32 fsp_get_tseg_reserved_mem(const void *hob_list, u32 *len)
  301. {
  302. const struct efi_guid guid = FSP_HOB_RESOURCE_OWNER_TSEG_GUID;
  303. u64 length;
  304. u32 base;
  305. base = (u32)fsp_get_reserved_mem_from_guid(hob_list,
  306. &length, (struct efi_guid *)&guid);
  307. if ((len != 0) && (base != 0))
  308. *len = (u32)length;
  309. return base;
  310. }
  311. const struct hob_header *fsp_get_next_hob(uint type, const void *hob_list)
  312. {
  313. const struct hob_header *hdr;
  314. hdr = hob_list;
  315. /* Parse the HOB list until end of list or matching type is found */
  316. while (!end_of_hob(hdr)) {
  317. if (hdr->type == type)
  318. return hdr;
  319. hdr = get_next_hob(hdr);
  320. }
  321. return NULL;
  322. }
  323. const struct hob_header *fsp_get_next_guid_hob(const struct efi_guid *guid,
  324. const void *hob_list)
  325. {
  326. const struct hob_header *hdr;
  327. struct hob_guid *guid_hob;
  328. hdr = hob_list;
  329. while ((hdr = fsp_get_next_hob(HOB_TYPE_GUID_EXT,
  330. hdr)) != NULL) {
  331. guid_hob = (struct hob_guid *)hdr;
  332. if (compare_guid(guid, &(guid_hob->name)))
  333. break;
  334. hdr = get_next_hob(hdr);
  335. }
  336. return hdr;
  337. }
  338. void *fsp_get_guid_hob_data(const void *hob_list, u32 *len,
  339. struct efi_guid *guid)
  340. {
  341. const struct hob_header *guid_hob;
  342. guid_hob = fsp_get_next_guid_hob(guid, hob_list);
  343. if (guid_hob == NULL) {
  344. return NULL;
  345. } else {
  346. if (len)
  347. *len = get_guid_hob_data_size(guid_hob);
  348. return get_guid_hob_data(guid_hob);
  349. }
  350. }
  351. void *fsp_get_nvs_data(const void *hob_list, u32 *len)
  352. {
  353. const struct efi_guid guid = FSP_NON_VOLATILE_STORAGE_HOB_GUID;
  354. return fsp_get_guid_hob_data(hob_list, len, (struct efi_guid *)&guid);
  355. }
  356. void *fsp_get_bootloader_tmp_mem(const void *hob_list, u32 *len)
  357. {
  358. const struct efi_guid guid = FSP_BOOTLOADER_TEMP_MEM_HOB_GUID;
  359. return fsp_get_guid_hob_data(hob_list, len, (struct efi_guid *)&guid);
  360. }