ofnode.c 14 KB

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  1. /*
  2. * Copyright (c) 2017 Google, Inc
  3. * Written by Simon Glass <sjg@chromium.org>
  4. *
  5. * SPDX-License-Identifier: GPL-2.0+
  6. */
  7. #include <common.h>
  8. #include <dm.h>
  9. #include <fdtdec.h>
  10. #include <fdt_support.h>
  11. #include <libfdt.h>
  12. #include <dm/of_access.h>
  13. #include <dm/of_addr.h>
  14. #include <dm/ofnode.h>
  15. #include <linux/err.h>
  16. int ofnode_read_u32(ofnode node, const char *propname, u32 *outp)
  17. {
  18. assert(ofnode_valid(node));
  19. debug("%s: %s: ", __func__, propname);
  20. if (ofnode_is_np(node)) {
  21. return of_read_u32(ofnode_to_np(node), propname, outp);
  22. } else {
  23. const int *cell;
  24. int len;
  25. cell = fdt_getprop(gd->fdt_blob, ofnode_to_offset(node),
  26. propname, &len);
  27. if (!cell || len < sizeof(int)) {
  28. debug("(not found)\n");
  29. return -EINVAL;
  30. }
  31. *outp = fdt32_to_cpu(cell[0]);
  32. }
  33. debug("%#x (%d)\n", *outp, *outp);
  34. return 0;
  35. }
  36. int ofnode_read_u32_default(ofnode node, const char *propname, u32 def)
  37. {
  38. assert(ofnode_valid(node));
  39. ofnode_read_u32(node, propname, &def);
  40. return def;
  41. }
  42. int ofnode_read_s32_default(ofnode node, const char *propname, s32 def)
  43. {
  44. assert(ofnode_valid(node));
  45. ofnode_read_u32(node, propname, (u32 *)&def);
  46. return def;
  47. }
  48. bool ofnode_read_bool(ofnode node, const char *propname)
  49. {
  50. bool val;
  51. assert(ofnode_valid(node));
  52. debug("%s: %s: ", __func__, propname);
  53. if (ofnode_is_np(node)) {
  54. val = !!of_find_property(ofnode_to_np(node), propname, NULL);
  55. } else {
  56. val = !!fdt_getprop(gd->fdt_blob, ofnode_to_offset(node),
  57. propname, NULL);
  58. }
  59. debug("%s\n", val ? "true" : "false");
  60. return val;
  61. }
  62. const char *ofnode_read_string(ofnode node, const char *propname)
  63. {
  64. const char *str = NULL;
  65. int len = -1;
  66. assert(ofnode_valid(node));
  67. debug("%s: %s: ", __func__, propname);
  68. if (ofnode_is_np(node)) {
  69. struct property *prop = of_find_property(
  70. ofnode_to_np(node), propname, NULL);
  71. if (prop) {
  72. str = prop->value;
  73. len = prop->length;
  74. }
  75. } else {
  76. str = fdt_getprop(gd->fdt_blob, ofnode_to_offset(node),
  77. propname, &len);
  78. }
  79. if (!str) {
  80. debug("<not found>\n");
  81. return NULL;
  82. }
  83. if (strnlen(str, len) >= len) {
  84. debug("<invalid>\n");
  85. return NULL;
  86. }
  87. debug("%s\n", str);
  88. return str;
  89. }
  90. ofnode ofnode_find_subnode(ofnode node, const char *subnode_name)
  91. {
  92. ofnode subnode;
  93. assert(ofnode_valid(node));
  94. debug("%s: %s: ", __func__, subnode_name);
  95. if (ofnode_is_np(node)) {
  96. const struct device_node *np = ofnode_to_np(node);
  97. for (np = np->child; np; np = np->sibling) {
  98. if (!strcmp(subnode_name, np->name))
  99. break;
  100. }
  101. subnode = np_to_ofnode(np);
  102. } else {
  103. int ooffset = fdt_subnode_offset(gd->fdt_blob,
  104. ofnode_to_offset(node), subnode_name);
  105. subnode = offset_to_ofnode(ooffset);
  106. }
  107. debug("%s\n", ofnode_valid(subnode) ?
  108. ofnode_get_name(subnode) : "<none>");
  109. return subnode;
  110. }
  111. int ofnode_read_u32_array(ofnode node, const char *propname,
  112. u32 *out_values, size_t sz)
  113. {
  114. assert(ofnode_valid(node));
  115. debug("%s: %s: ", __func__, propname);
  116. if (ofnode_is_np(node)) {
  117. return of_read_u32_array(ofnode_to_np(node), propname,
  118. out_values, sz);
  119. } else {
  120. return fdtdec_get_int_array(gd->fdt_blob,
  121. ofnode_to_offset(node), propname,
  122. out_values, sz);
  123. }
  124. }
  125. ofnode ofnode_first_subnode(ofnode node)
  126. {
  127. assert(ofnode_valid(node));
  128. if (ofnode_is_np(node))
  129. return np_to_ofnode(node.np->child);
  130. return offset_to_ofnode(
  131. fdt_first_subnode(gd->fdt_blob, ofnode_to_offset(node)));
  132. }
  133. ofnode ofnode_next_subnode(ofnode node)
  134. {
  135. assert(ofnode_valid(node));
  136. if (ofnode_is_np(node))
  137. return np_to_ofnode(node.np->sibling);
  138. return offset_to_ofnode(
  139. fdt_next_subnode(gd->fdt_blob, ofnode_to_offset(node)));
  140. }
  141. const char *ofnode_get_name(ofnode node)
  142. {
  143. assert(ofnode_valid(node));
  144. if (ofnode_is_np(node))
  145. return strrchr(node.np->full_name, '/') + 1;
  146. return fdt_get_name(gd->fdt_blob, ofnode_to_offset(node), NULL);
  147. }
  148. int ofnode_read_size(ofnode node, const char *propname)
  149. {
  150. int len;
  151. if (ofnode_is_np(node)) {
  152. struct property *prop = of_find_property(
  153. ofnode_to_np(node), propname, NULL);
  154. if (prop)
  155. return prop->length;
  156. } else {
  157. if (fdt_getprop(gd->fdt_blob, ofnode_to_offset(node), propname,
  158. &len))
  159. return len;
  160. }
  161. return -EINVAL;
  162. }
  163. fdt_addr_t ofnode_get_addr_index(ofnode node, int index)
  164. {
  165. if (ofnode_is_np(node)) {
  166. const __be32 *prop_val;
  167. uint flags;
  168. u64 size;
  169. prop_val = of_get_address(
  170. (struct device_node *)ofnode_to_np(node), index,
  171. &size, &flags);
  172. if (!prop_val)
  173. return FDT_ADDR_T_NONE;
  174. return be32_to_cpup(prop_val);
  175. } else {
  176. return fdt_get_base_address(gd->fdt_blob,
  177. ofnode_to_offset(node));
  178. }
  179. return FDT_ADDR_T_NONE;
  180. }
  181. fdt_addr_t ofnode_get_addr(ofnode node)
  182. {
  183. return ofnode_get_addr_index(node, 0);
  184. }
  185. int ofnode_stringlist_search(ofnode node, const char *property,
  186. const char *string)
  187. {
  188. if (ofnode_is_np(node)) {
  189. return of_property_match_string(ofnode_to_np(node),
  190. property, string);
  191. } else {
  192. int ret;
  193. ret = fdt_stringlist_search(gd->fdt_blob,
  194. ofnode_to_offset(node), property,
  195. string);
  196. if (ret == -FDT_ERR_NOTFOUND)
  197. return -ENODATA;
  198. else if (ret < 0)
  199. return -EINVAL;
  200. return ret;
  201. }
  202. }
  203. int ofnode_read_string_index(ofnode node, const char *property, int index,
  204. const char **outp)
  205. {
  206. if (ofnode_is_np(node)) {
  207. return of_property_read_string_index(ofnode_to_np(node),
  208. property, index, outp);
  209. } else {
  210. int len;
  211. *outp = fdt_stringlist_get(gd->fdt_blob, ofnode_to_offset(node),
  212. property, index, &len);
  213. if (len < 0)
  214. return -EINVAL;
  215. return 0;
  216. }
  217. }
  218. int ofnode_read_string_count(ofnode node, const char *property)
  219. {
  220. if (ofnode_is_np(node)) {
  221. return of_property_count_strings(ofnode_to_np(node), property);
  222. } else {
  223. return fdt_stringlist_count(gd->fdt_blob,
  224. ofnode_to_offset(node), property);
  225. }
  226. }
  227. static void ofnode_from_fdtdec_phandle_args(struct fdtdec_phandle_args *in,
  228. struct ofnode_phandle_args *out)
  229. {
  230. assert(OF_MAX_PHANDLE_ARGS == MAX_PHANDLE_ARGS);
  231. out->node = offset_to_ofnode(in->node);
  232. out->args_count = in->args_count;
  233. memcpy(out->args, in->args, sizeof(out->args));
  234. }
  235. static void ofnode_from_of_phandle_args(struct of_phandle_args *in,
  236. struct ofnode_phandle_args *out)
  237. {
  238. assert(OF_MAX_PHANDLE_ARGS == MAX_PHANDLE_ARGS);
  239. out->node = np_to_ofnode(in->np);
  240. out->args_count = in->args_count;
  241. memcpy(out->args, in->args, sizeof(out->args));
  242. }
  243. int ofnode_parse_phandle_with_args(ofnode node, const char *list_name,
  244. const char *cells_name, int cell_count,
  245. int index,
  246. struct ofnode_phandle_args *out_args)
  247. {
  248. if (ofnode_is_np(node)) {
  249. struct of_phandle_args args;
  250. int ret;
  251. ret = of_parse_phandle_with_args(ofnode_to_np(node),
  252. list_name, cells_name, index, &args);
  253. if (ret)
  254. return ret;
  255. ofnode_from_of_phandle_args(&args, out_args);
  256. } else {
  257. struct fdtdec_phandle_args args;
  258. int ret;
  259. ret = fdtdec_parse_phandle_with_args(gd->fdt_blob,
  260. ofnode_to_offset(node), list_name, cells_name,
  261. cell_count, index, &args);
  262. if (ret)
  263. return ret;
  264. ofnode_from_fdtdec_phandle_args(&args, out_args);
  265. }
  266. return 0;
  267. }
  268. ofnode ofnode_path(const char *path)
  269. {
  270. if (of_live_active())
  271. return np_to_ofnode(of_find_node_by_path(path));
  272. else
  273. return offset_to_ofnode(fdt_path_offset(gd->fdt_blob, path));
  274. }
  275. const char *ofnode_get_chosen_prop(const char *name)
  276. {
  277. ofnode chosen_node;
  278. chosen_node = ofnode_path("/chosen");
  279. return ofnode_read_string(chosen_node, name);
  280. }
  281. ofnode ofnode_get_chosen_node(const char *name)
  282. {
  283. const char *prop;
  284. prop = ofnode_get_chosen_prop(name);
  285. if (!prop)
  286. return ofnode_null();
  287. return ofnode_path(prop);
  288. }
  289. static int decode_timing_property(ofnode node, const char *name,
  290. struct timing_entry *result)
  291. {
  292. int length, ret = 0;
  293. length = ofnode_read_size(node, name);
  294. if (length < 0) {
  295. debug("%s: could not find property %s\n",
  296. ofnode_get_name(node), name);
  297. return length;
  298. }
  299. if (length == sizeof(u32)) {
  300. result->typ = ofnode_read_u32_default(node, name, 0);
  301. result->min = result->typ;
  302. result->max = result->typ;
  303. } else {
  304. ret = ofnode_read_u32_array(node, name, &result->min, 3);
  305. }
  306. return ret;
  307. }
  308. int ofnode_decode_display_timing(ofnode parent, int index,
  309. struct display_timing *dt)
  310. {
  311. int i;
  312. ofnode timings, node;
  313. u32 val = 0;
  314. int ret = 0;
  315. timings = ofnode_find_subnode(parent, "display-timings");
  316. if (!ofnode_valid(timings))
  317. return -EINVAL;
  318. for (i = 0, node = ofnode_first_subnode(timings);
  319. ofnode_valid(node) && i != index;
  320. node = ofnode_first_subnode(node))
  321. i++;
  322. if (!ofnode_valid(node))
  323. return -EINVAL;
  324. memset(dt, 0, sizeof(*dt));
  325. ret |= decode_timing_property(node, "hback-porch", &dt->hback_porch);
  326. ret |= decode_timing_property(node, "hfront-porch", &dt->hfront_porch);
  327. ret |= decode_timing_property(node, "hactive", &dt->hactive);
  328. ret |= decode_timing_property(node, "hsync-len", &dt->hsync_len);
  329. ret |= decode_timing_property(node, "vback-porch", &dt->vback_porch);
  330. ret |= decode_timing_property(node, "vfront-porch", &dt->vfront_porch);
  331. ret |= decode_timing_property(node, "vactive", &dt->vactive);
  332. ret |= decode_timing_property(node, "vsync-len", &dt->vsync_len);
  333. ret |= decode_timing_property(node, "clock-frequency", &dt->pixelclock);
  334. dt->flags = 0;
  335. val = ofnode_read_u32_default(node, "vsync-active", -1);
  336. if (val != -1) {
  337. dt->flags |= val ? DISPLAY_FLAGS_VSYNC_HIGH :
  338. DISPLAY_FLAGS_VSYNC_LOW;
  339. }
  340. val = ofnode_read_u32_default(node, "hsync-active", -1);
  341. if (val != -1) {
  342. dt->flags |= val ? DISPLAY_FLAGS_HSYNC_HIGH :
  343. DISPLAY_FLAGS_HSYNC_LOW;
  344. }
  345. val = ofnode_read_u32_default(node, "de-active", -1);
  346. if (val != -1) {
  347. dt->flags |= val ? DISPLAY_FLAGS_DE_HIGH :
  348. DISPLAY_FLAGS_DE_LOW;
  349. }
  350. val = ofnode_read_u32_default(node, "pixelclk-active", -1);
  351. if (val != -1) {
  352. dt->flags |= val ? DISPLAY_FLAGS_PIXDATA_POSEDGE :
  353. DISPLAY_FLAGS_PIXDATA_NEGEDGE;
  354. }
  355. if (ofnode_read_bool(node, "interlaced"))
  356. dt->flags |= DISPLAY_FLAGS_INTERLACED;
  357. if (ofnode_read_bool(node, "doublescan"))
  358. dt->flags |= DISPLAY_FLAGS_DOUBLESCAN;
  359. if (ofnode_read_bool(node, "doubleclk"))
  360. dt->flags |= DISPLAY_FLAGS_DOUBLECLK;
  361. return ret;
  362. }
  363. const u32 *ofnode_read_prop(ofnode node, const char *propname, int *lenp)
  364. {
  365. if (ofnode_is_np(node)) {
  366. struct property *prop;
  367. prop = of_find_property(ofnode_to_np(node), propname, lenp);
  368. if (!prop)
  369. return NULL;
  370. return prop->value;
  371. } else {
  372. return fdt_getprop(gd->fdt_blob, ofnode_to_offset(node),
  373. propname, lenp);
  374. }
  375. }
  376. bool ofnode_is_available(ofnode node)
  377. {
  378. if (ofnode_is_np(node))
  379. return of_device_is_available(ofnode_to_np(node));
  380. else
  381. return fdtdec_get_is_enabled(gd->fdt_blob,
  382. ofnode_to_offset(node));
  383. }
  384. fdt_addr_t ofnode_get_addr_size(ofnode node, const char *property,
  385. fdt_size_t *sizep)
  386. {
  387. if (ofnode_is_np(node)) {
  388. int na, ns;
  389. int psize;
  390. const struct device_node *np = ofnode_to_np(node);
  391. const __be32 *prop = of_get_property(np, "reg", &psize);
  392. na = of_n_addr_cells(np);
  393. ns = of_n_addr_cells(np);
  394. *sizep = of_read_number(prop + na, ns);
  395. return of_read_number(prop, na);
  396. } else {
  397. return fdtdec_get_addr_size(gd->fdt_blob,
  398. ofnode_to_offset(node), property,
  399. sizep);
  400. }
  401. }
  402. const uint8_t *ofnode_read_u8_array_ptr(ofnode node, const char *propname,
  403. size_t sz)
  404. {
  405. if (ofnode_is_np(node)) {
  406. const struct device_node *np = ofnode_to_np(node);
  407. int psize;
  408. const __be32 *prop = of_get_property(np, propname, &psize);
  409. if (!prop || sz != psize)
  410. return NULL;
  411. return (uint8_t *)prop;
  412. } else {
  413. return fdtdec_locate_byte_array(gd->fdt_blob,
  414. ofnode_to_offset(node), propname, sz);
  415. }
  416. }
  417. int ofnode_read_pci_addr(ofnode node, enum fdt_pci_space type,
  418. const char *propname, struct fdt_pci_addr *addr)
  419. {
  420. const u32 *cell;
  421. int len;
  422. int ret = -ENOENT;
  423. debug("%s: %s: ", __func__, propname);
  424. /*
  425. * If we follow the pci bus bindings strictly, we should check
  426. * the value of the node's parent node's #address-cells and
  427. * #size-cells. They need to be 3 and 2 accordingly. However,
  428. * for simplicity we skip the check here.
  429. */
  430. cell = ofnode_read_prop(node, propname, &len);
  431. if (!cell)
  432. goto fail;
  433. if ((len % FDT_PCI_REG_SIZE) == 0) {
  434. int num = len / FDT_PCI_REG_SIZE;
  435. int i;
  436. for (i = 0; i < num; i++) {
  437. debug("pci address #%d: %08lx %08lx %08lx\n", i,
  438. (ulong)fdt32_to_cpu(cell[0]),
  439. (ulong)fdt32_to_cpu(cell[1]),
  440. (ulong)fdt32_to_cpu(cell[2]));
  441. if ((fdt32_to_cpu(*cell) & type) == type) {
  442. addr->phys_hi = fdt32_to_cpu(cell[0]);
  443. addr->phys_mid = fdt32_to_cpu(cell[1]);
  444. addr->phys_lo = fdt32_to_cpu(cell[1]);
  445. break;
  446. } else {
  447. cell += (FDT_PCI_ADDR_CELLS +
  448. FDT_PCI_SIZE_CELLS);
  449. }
  450. }
  451. if (i == num) {
  452. ret = -ENXIO;
  453. goto fail;
  454. }
  455. return 0;
  456. } else {
  457. ret = -EINVAL;
  458. }
  459. fail:
  460. debug("(not found)\n");
  461. return ret;
  462. }
  463. int ofnode_read_addr_cells(ofnode node)
  464. {
  465. if (ofnode_is_np(node))
  466. return of_n_addr_cells(ofnode_to_np(node));
  467. else /* NOTE: this call should walk up the parent stack */
  468. return fdt_address_cells(gd->fdt_blob, ofnode_to_offset(node));
  469. }
  470. int ofnode_read_size_cells(ofnode node)
  471. {
  472. if (ofnode_is_np(node))
  473. return of_n_size_cells(ofnode_to_np(node));
  474. else /* NOTE: this call should walk up the parent stack */
  475. return fdt_size_cells(gd->fdt_blob, ofnode_to_offset(node));
  476. }
  477. int ofnode_read_simple_addr_cells(ofnode node)
  478. {
  479. if (ofnode_is_np(node))
  480. return of_simple_addr_cells(ofnode_to_np(node));
  481. else
  482. return fdt_address_cells(gd->fdt_blob, ofnode_to_offset(node));
  483. }
  484. int ofnode_read_simple_size_cells(ofnode node)
  485. {
  486. if (ofnode_is_np(node))
  487. return of_simple_size_cells(ofnode_to_np(node));
  488. else
  489. return fdt_size_cells(gd->fdt_blob, ofnode_to_offset(node));
  490. }
  491. bool ofnode_pre_reloc(ofnode node)
  492. {
  493. if (ofnode_read_bool(node, "u-boot,dm-pre-reloc"))
  494. return true;
  495. #ifdef CONFIG_TPL_BUILD
  496. if (ofnode_read_bool(node, "u-boot,dm-tpl"))
  497. return true;
  498. #elif defined(CONFIG_SPL_BUILD)
  499. if (ofnode_read_bool(node, "u-boot,dm-spl"))
  500. return true;
  501. #else
  502. /*
  503. * In regular builds individual spl and tpl handling both
  504. * count as handled pre-relocation for later second init.
  505. */
  506. if (ofnode_read_bool(node, "u-boot,dm-spl") ||
  507. ofnode_read_bool(node, "u-boot,dm-tpl"))
  508. return true;
  509. #endif
  510. return false;
  511. }