cmd_mii.c 14 KB

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  1. /*
  2. * (C) Copyright 2001
  3. * Gerald Van Baren, Custom IDEAS, vanbaren@cideas.com
  4. *
  5. * See file CREDITS for list of people who contributed to this
  6. * project.
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License as
  10. * published by the Free Software Foundation; either version 2 of
  11. * the License, or (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program; if not, write to the Free Software
  20. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  21. * MA 02111-1307 USA
  22. */
  23. /*
  24. * MII Utilities
  25. */
  26. #include <common.h>
  27. #include <command.h>
  28. #if (CONFIG_COMMANDS & CFG_CMD_MII)
  29. #include <miiphy.h>
  30. #define CONFIG_TERSE_MII /* XXX necessary here because "miivals.h" is missing */
  31. #ifdef CONFIG_TERSE_MII
  32. /*
  33. * Display values from last command.
  34. */
  35. uint last_op;
  36. uint last_addr;
  37. uint last_data;
  38. uint last_reg;
  39. /*
  40. * MII read/write
  41. *
  42. * Syntax:
  43. * mii read {addr} {reg}
  44. * mii write {addr} {reg} {data}
  45. */
  46. int do_mii (cmd_tbl_t * cmdtp, int flag, int argc, char *argv[])
  47. {
  48. char op;
  49. unsigned char addr, reg;
  50. unsigned short data;
  51. int rcode = 0;
  52. #if defined(CONFIG_8xx) || defined(CONFIG_MCF52x2)
  53. mii_init ();
  54. #endif
  55. /*
  56. * We use the last specified parameters, unless new ones are
  57. * entered.
  58. */
  59. op = last_op;
  60. addr = last_addr;
  61. data = last_data;
  62. reg = last_reg;
  63. if ((flag & CMD_FLAG_REPEAT) == 0) {
  64. op = argv[1][0];
  65. if (argc >= 3)
  66. addr = simple_strtoul (argv[2], NULL, 16);
  67. if (argc >= 4)
  68. reg = simple_strtoul (argv[3], NULL, 16);
  69. if (argc >= 5)
  70. data = simple_strtoul (argv[4], NULL, 16);
  71. }
  72. /*
  73. * check info/read/write.
  74. */
  75. if (op == 'i') {
  76. unsigned char j, start, end;
  77. unsigned int oui;
  78. unsigned char model;
  79. unsigned char rev;
  80. /*
  81. * Look for any and all PHYs. Valid addresses are 0..31.
  82. */
  83. if (argc >= 3) {
  84. start = addr; end = addr + 1;
  85. } else {
  86. start = 0; end = 32;
  87. }
  88. for (j = start; j < end; j++) {
  89. if (miiphy_info (j, &oui, &model, &rev) == 0) {
  90. printf ("PHY 0x%02X: "
  91. "OUI = 0x%04X, "
  92. "Model = 0x%02X, "
  93. "Rev = 0x%02X, "
  94. "%3dbaseT, %s\n",
  95. j, oui, model, rev,
  96. miiphy_speed (j),
  97. miiphy_duplex (j) == FULL ? "FDX" : "HDX");
  98. }
  99. }
  100. } else if (op == 'r') {
  101. if (miiphy_read (addr, reg, &data) != 0) {
  102. puts ("Error reading from the PHY\n");
  103. rcode = 1;
  104. }
  105. printf ("%04X\n", data & 0x0000FFFF);
  106. } else if (op == 'w') {
  107. if (miiphy_write (addr, reg, data) != 0) {
  108. puts ("Error writing to the PHY\n");
  109. rcode = 1;
  110. }
  111. } else {
  112. printf ("Usage:\n%s\n", cmdtp->usage);
  113. return 1;
  114. }
  115. /*
  116. * Save the parameters for repeats.
  117. */
  118. last_op = op;
  119. last_addr = addr;
  120. last_data = data;
  121. last_reg = reg;
  122. return rcode;
  123. }
  124. /***************************************************/
  125. U_BOOT_CMD(
  126. mii, 5, 1, do_mii,
  127. "mii - MII utility commands\n",
  128. "info <addr> - display MII PHY info\n"
  129. "mii read <addr> <reg> - read MII PHY <addr> register <reg>\n"
  130. "mii write <addr> <reg> <data> - write MII PHY <addr> register <reg>\n"
  131. );
  132. #else /* ! CONFIG_TERSE_MII ================================================= */
  133. #include <miivals.h>
  134. typedef struct _MII_reg_desc_t {
  135. ushort regno;
  136. char * name;
  137. } MII_reg_desc_t;
  138. MII_reg_desc_t reg_0_5_desc_tbl[] = {
  139. { 0, "PHY control register" },
  140. { 1, "PHY status register" },
  141. { 2, "PHY ID 1 register" },
  142. { 3, "PHY ID 2 register" },
  143. { 4, "Autonegotiation advertisement register" },
  144. { 5, "Autonegotiation partner abilities register" },
  145. };
  146. typedef struct _MII_field_desc_t {
  147. ushort hi;
  148. ushort lo;
  149. ushort mask;
  150. char * name;
  151. } MII_field_desc_t;
  152. MII_field_desc_t reg_0_desc_tbl[] = {
  153. { 15, 15, 0x01, "reset" },
  154. { 14, 14, 0x01, "loopback" },
  155. { 13, 6, 0x81, "speed selection" }, /* special */
  156. { 12, 12, 0x01, "A/N enable" },
  157. { 11, 11, 0x01, "power-down" },
  158. { 10, 10, 0x01, "isolate" },
  159. { 9, 9, 0x01, "restart A/N" },
  160. { 8, 8, 0x01, "duplex" }, /* special */
  161. { 7, 7, 0x01, "collision test enable" },
  162. { 5, 0, 0x3f, "(reserved)" }
  163. };
  164. MII_field_desc_t reg_1_desc_tbl[] = {
  165. { 15, 15, 0x01, "100BASE-T4 able" },
  166. { 14, 14, 0x01, "100BASE-X full duplex able" },
  167. { 13, 13, 0x01, "100BASE-X half duplex able" },
  168. { 12, 12, 0x01, "10 Mbps full duplex able" },
  169. { 11, 11, 0x01, "10 Mbps half duplex able" },
  170. { 10, 10, 0x01, "100BASE-T2 full duplex able" },
  171. { 9, 9, 0x01, "100BASE-T2 half duplex able" },
  172. { 8, 8, 0x01, "extended status" },
  173. { 7, 7, 0x01, "(reserved)" },
  174. { 6, 6, 0x01, "MF preamble suppression" },
  175. { 5, 5, 0x01, "A/N complete" },
  176. { 4, 4, 0x01, "remote fault" },
  177. { 3, 3, 0x01, "A/N able" },
  178. { 2, 2, 0x01, "link status" },
  179. { 1, 1, 0x01, "jabber detect" },
  180. { 0, 0, 0x01, "extended capabilities" },
  181. };
  182. MII_field_desc_t reg_2_desc_tbl[] = {
  183. { 15, 0, 0xffff, "OUI portion" },
  184. };
  185. MII_field_desc_t reg_3_desc_tbl[] = {
  186. { 15, 10, 0x3f, "OUI portion" },
  187. { 9, 4, 0x3f, "manufacturer part number" },
  188. { 3, 0, 0x0f, "manufacturer rev. number" },
  189. };
  190. MII_field_desc_t reg_4_desc_tbl[] = {
  191. { 15, 15, 0x01, "next page able" },
  192. { 14, 14, 0x01, "reserved" },
  193. { 13, 13, 0x01, "remote fault" },
  194. { 12, 12, 0x01, "reserved" },
  195. { 11, 11, 0x01, "asymmetric pause" },
  196. { 10, 10, 0x01, "pause enable" },
  197. { 9, 9, 0x01, "100BASE-T4 able" },
  198. { 8, 8, 0x01, "100BASE-TX full duplex able" },
  199. { 7, 7, 0x01, "100BASE-TX able" },
  200. { 6, 6, 0x01, "10BASE-T full duplex able" },
  201. { 5, 5, 0x01, "10BASE-T able" },
  202. { 4, 0, 0x1f, "xxx to do" },
  203. };
  204. MII_field_desc_t reg_5_desc_tbl[] = {
  205. { 15, 15, 0x01, "next page able" },
  206. { 14, 14, 0x01, "acknowledge" },
  207. { 13, 13, 0x01, "remote fault" },
  208. { 12, 12, 0x01, "(reserved)" },
  209. { 11, 11, 0x01, "asymmetric pause able" },
  210. { 10, 10, 0x01, "pause able" },
  211. { 9, 9, 0x01, "100BASE-T4 able" },
  212. { 8, 8, 0x01, "100BASE-X full duplex able" },
  213. { 7, 7, 0x01, "100BASE-TX able" },
  214. { 6, 6, 0x01, "10BASE-T full duplex able" },
  215. { 5, 5, 0x01, "10BASE-T able" },
  216. { 4, 0, 0x1f, "xxx to do" },
  217. };
  218. #define DESC0LEN (sizeof(reg_0_desc_tbl)/sizeof(reg_0_desc_tbl[0]))
  219. #define DESC1LEN (sizeof(reg_1_desc_tbl)/sizeof(reg_1_desc_tbl[0]))
  220. #define DESC2LEN (sizeof(reg_2_desc_tbl)/sizeof(reg_2_desc_tbl[0]))
  221. #define DESC3LEN (sizeof(reg_3_desc_tbl)/sizeof(reg_3_desc_tbl[0]))
  222. #define DESC4LEN (sizeof(reg_4_desc_tbl)/sizeof(reg_4_desc_tbl[0]))
  223. #define DESC5LEN (sizeof(reg_5_desc_tbl)/sizeof(reg_5_desc_tbl[0]))
  224. typedef struct _MII_field_desc_and_len_t {
  225. MII_field_desc_t * pdesc;
  226. ushort len;
  227. } MII_field_desc_and_len_t;
  228. MII_field_desc_and_len_t desc_and_len_tbl[] = {
  229. { reg_0_desc_tbl, DESC0LEN },
  230. { reg_1_desc_tbl, DESC1LEN },
  231. { reg_2_desc_tbl, DESC2LEN },
  232. { reg_3_desc_tbl, DESC3LEN },
  233. { reg_4_desc_tbl, DESC4LEN },
  234. { reg_5_desc_tbl, DESC5LEN },
  235. };
  236. static void dump_reg(
  237. ushort regval,
  238. MII_reg_desc_t * prd,
  239. MII_field_desc_and_len_t * pdl);
  240. static int special_field(
  241. ushort regno,
  242. MII_field_desc_t * pdesc,
  243. ushort regval);
  244. void MII_dump_0_to_5(
  245. ushort regvals[6],
  246. uchar reglo,
  247. uchar reghi)
  248. {
  249. ulong i;
  250. for (i = 0; i < 6; i++) {
  251. if ((reglo <= i) && (i <= reghi))
  252. dump_reg(regvals[i], &reg_0_5_desc_tbl[i],
  253. &desc_and_len_tbl[i]);
  254. }
  255. }
  256. static void dump_reg(
  257. ushort regval,
  258. MII_reg_desc_t * prd,
  259. MII_field_desc_and_len_t * pdl)
  260. {
  261. ulong i;
  262. ushort mask_in_place;
  263. MII_field_desc_t * pdesc;
  264. printf("%u. (%04hx) -- %s --\n",
  265. prd->regno, regval, prd->name);
  266. for (i = 0; i < pdl->len; i++) {
  267. pdesc = &pdl->pdesc[i];
  268. mask_in_place = pdesc->mask << pdesc->lo;
  269. printf(" (%04hx:%04hx) %u.",
  270. mask_in_place,
  271. regval & mask_in_place,
  272. prd->regno);
  273. if (special_field(prd->regno, pdesc, regval)) {
  274. }
  275. else {
  276. if (pdesc->hi == pdesc->lo)
  277. printf("%2u ", pdesc->lo);
  278. else
  279. printf("%2u-%2u", pdesc->hi, pdesc->lo);
  280. printf(" = %5u %s",
  281. (regval & mask_in_place) >> pdesc->lo,
  282. pdesc->name);
  283. }
  284. printf("\n");
  285. }
  286. printf("\n");
  287. }
  288. /* Special fields:
  289. ** 0.6,13
  290. ** 0.8
  291. ** 2.15-0
  292. ** 3.15-0
  293. ** 4.4-0
  294. ** 5.4-0
  295. */
  296. static int special_field(
  297. ushort regno,
  298. MII_field_desc_t * pdesc,
  299. ushort regval)
  300. {
  301. if ((regno == 0) && (pdesc->lo == 6)) {
  302. ushort speed_bits = regval & MII_CTL_SPEED_MASK;
  303. printf("%2u,%2u = b%u%u speed selection = %s Mbps",
  304. 6, 13,
  305. (regval >> 6) & 1,
  306. (regval >> 13) & 1,
  307. speed_bits == MII_CTL_SPEED_1000_MBPS ? "1000" :
  308. speed_bits == MII_CTL_SPEED_100_MBPS ? "100" :
  309. speed_bits == MII_CTL_SPEED_10_MBPS ? "10" :
  310. "???");
  311. return 1;
  312. }
  313. else if ((regno == 0) && (pdesc->lo == 8)) {
  314. printf("%2u = %5u duplex = %s",
  315. pdesc->lo,
  316. (regval >> pdesc->lo) & 1,
  317. ((regval >> pdesc->lo) & 1) ? "full" : "half");
  318. return 1;
  319. }
  320. else if ((regno == 4) && (pdesc->lo == 0)) {
  321. ushort sel_bits = (regval >> pdesc->lo) & pdesc->mask;
  322. printf("%2u-%2u = %5u selector = %s",
  323. pdesc->hi, pdesc->lo, sel_bits,
  324. sel_bits == MII_AN_ADV_IEEE_802_3 ?
  325. "IEEE 802.3" :
  326. sel_bits == MII_AN_ADV_IEEE_802_9_ISLAN_16T ?
  327. "IEEE 802.9 ISLAN-16T" :
  328. "???");
  329. return 1;
  330. }
  331. else if ((regno == 5) && (pdesc->lo == 0)) {
  332. ushort sel_bits = (regval >> pdesc->lo) & pdesc->mask;
  333. printf("%2u-%2u = %u selector = %s",
  334. pdesc->hi, pdesc->lo, sel_bits,
  335. sel_bits == MII_AN_PARTNER_IEEE_802_3 ?
  336. "IEEE 802.3" :
  337. sel_bits == MII_AN_PARTNER_IEEE_802_9_ISLAN_16T ?
  338. "IEEE 802.9 ISLAN-16T" :
  339. "???");
  340. return 1;
  341. }
  342. return 0;
  343. }
  344. uint last_op;
  345. uint last_data;
  346. uint last_addr_lo;
  347. uint last_addr_hi;
  348. uint last_reg_lo;
  349. uint last_reg_hi;
  350. static void extract_range(
  351. char * input,
  352. unsigned char * plo,
  353. unsigned char * phi)
  354. {
  355. char * end;
  356. *plo = simple_strtoul(input, &end, 16);
  357. if (*end == '-') {
  358. end++;
  359. *phi = simple_strtoul(end, NULL, 16);
  360. }
  361. else {
  362. *phi = *plo;
  363. }
  364. }
  365. /* ---------------------------------------------------------------- */
  366. int do_mii (cmd_tbl_t * cmdtp, int flag, int argc, char *argv[])
  367. {
  368. char op;
  369. unsigned char addrlo, addrhi, reglo, reghi;
  370. unsigned char addr, reg;
  371. unsigned short data;
  372. int rcode = 0;
  373. #ifdef CONFIG_8xx
  374. mii_init ();
  375. #endif
  376. /*
  377. * We use the last specified parameters, unless new ones are
  378. * entered.
  379. */
  380. op = last_op;
  381. addrlo = last_addr_lo;
  382. addrhi = last_addr_hi;
  383. reglo = last_reg_lo;
  384. reghi = last_reg_hi;
  385. data = last_data;
  386. if ((flag & CMD_FLAG_REPEAT) == 0) {
  387. op = argv[1][0];
  388. if (argc >= 3)
  389. extract_range(argv[2], &addrlo, &addrhi);
  390. if (argc >= 4)
  391. extract_range(argv[3], &reglo, &reghi);
  392. if (argc >= 5)
  393. data = simple_strtoul (argv[4], NULL, 16);
  394. }
  395. /*
  396. * check info/read/write.
  397. */
  398. if (op == 'i') {
  399. unsigned char j, start, end;
  400. unsigned int oui;
  401. unsigned char model;
  402. unsigned char rev;
  403. /*
  404. * Look for any and all PHYs. Valid addresses are 0..31.
  405. */
  406. if (argc >= 3) {
  407. start = addr; end = addr + 1;
  408. } else {
  409. start = 0; end = 32;
  410. }
  411. for (j = start; j < end; j++) {
  412. if (miiphy_info (j, &oui, &model, &rev) == 0) {
  413. printf("PHY 0x%02X: "
  414. "OUI = 0x%04X, "
  415. "Model = 0x%02X, "
  416. "Rev = 0x%02X, "
  417. "%3dbaseT, %s\n",
  418. j, oui, model, rev,
  419. miiphy_speed (j),
  420. miiphy_duplex (j) == FULL ? "FDX" : "HDX");
  421. }
  422. }
  423. } else if (op == 'r') {
  424. for (addr = addrlo; addr <= addrhi; addr++) {
  425. for (reg = reglo; reg <= reghi; reg++) {
  426. data = 0xffff;
  427. if (miiphy_read (addr, reg, &data) != 0) {
  428. printf(
  429. "Error reading from the PHY addr=%02x reg=%02x\n",
  430. addr, reg);
  431. rcode = 1;
  432. }
  433. else {
  434. if ((addrlo != addrhi) || (reglo != reghi))
  435. printf("addr=%02x reg=%02x data=",
  436. (uint)addr, (uint)reg);
  437. printf("%04X\n", data & 0x0000FFFF);
  438. }
  439. }
  440. if ((addrlo != addrhi) && (reglo != reghi))
  441. printf("\n");
  442. }
  443. } else if (op == 'w') {
  444. for (addr = addrlo; addr <= addrhi; addr++) {
  445. for (reg = reglo; reg <= reghi; reg++) {
  446. if (miiphy_write (addr, reg, data) != 0) {
  447. printf("Error writing to the PHY addr=%02x reg=%02x\n",
  448. addr, reg);
  449. rcode = 1;
  450. }
  451. }
  452. }
  453. } else if (op == 'd') {
  454. ushort regs[6];
  455. int ok = 1;
  456. if ((reglo > 5) || (reghi > 5)) {
  457. printf(
  458. "The MII dump command only formats the "
  459. "standard MII registers, 0-5.\n");
  460. return 1;
  461. }
  462. for (addr = addrlo; addr <= addrhi; addr++) {
  463. for (reg = 0; reg < 6; reg++) {
  464. if (miiphy_read(addr, reg, &regs[reg]) != 0) {
  465. ok = 0;
  466. printf(
  467. "Error reading from the PHY addr=%02x reg=%02x\n",
  468. addr, reg);
  469. rcode = 1;
  470. }
  471. }
  472. if (ok)
  473. MII_dump_0_to_5(regs, reglo, reghi);
  474. printf("\n");
  475. }
  476. } else {
  477. printf("Usage:\n%s\n", cmdtp->usage);
  478. return 1;
  479. }
  480. /*
  481. * Save the parameters for repeats.
  482. */
  483. last_op = op;
  484. last_addr_lo = addrlo;
  485. last_addr_hi = addrhi;
  486. last_reg_lo = reglo;
  487. last_reg_hi = reghi;
  488. last_data = data;
  489. return rcode;
  490. }
  491. /***************************************************/
  492. U_BOOT_CMD(
  493. mii, 5, 1, do_mii,
  494. "mii - MII utility commands\n",
  495. "info <addr> - display MII PHY info\n"
  496. "mii read <addr> <reg> - read MII PHY <addr> register <reg>\n"
  497. "mii write <addr> <reg> <data> - write MII PHY <addr> register <reg>\n"
  498. "mii dump <addr> <reg> - pretty-print <addr> <reg> (0-5 only)\n"
  499. "Addr and/or reg may be ranges, e.g. 2-7.\n"
  500. );
  501. #endif /* CONFIG_TERSE_MII */
  502. #endif /* CFG_CMD_MII */