emuproc.c 25 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * Copyright (c) by Jaroslav Kysela <perex@perex.cz>
  4. * Lee Revell <rlrevell@joe-job.com>
  5. * James Courtier-Dutton <James@superbug.co.uk>
  6. * Oswald Buddenhagen <oswald.buddenhagen@gmx.de>
  7. * Creative Labs, Inc.
  8. *
  9. * Routines for control of EMU10K1 chips / proc interface routines
  10. */
  11. #include <linux/slab.h>
  12. #include <linux/init.h>
  13. #include <sound/core.h>
  14. #include <sound/emu10k1.h>
  15. #include "p16v.h"
  16. static void snd_emu10k1_proc_spdif_status(struct snd_emu10k1 * emu,
  17. struct snd_info_buffer *buffer,
  18. char *title,
  19. int status_reg,
  20. int rate_reg)
  21. {
  22. static const char * const clkaccy[4] = { "1000ppm", "50ppm", "variable", "unknown" };
  23. static const int samplerate[16] = { 44100, 1, 48000, 32000, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15 };
  24. static const char * const channel[16] = { "unspec", "left", "right", "3", "4", "5", "6", "7", "8", "9", "10", "11", "12", "13", "14", "15" };
  25. static const char * const emphasis[8] = { "none", "50/15 usec 2 channel", "2", "3", "4", "5", "6", "7" };
  26. unsigned int status, rate = 0;
  27. status = snd_emu10k1_ptr_read(emu, status_reg, 0);
  28. snd_iprintf(buffer, "\n%s\n", title);
  29. if (status != 0xffffffff) {
  30. snd_iprintf(buffer, "Professional Mode : %s\n", (status & SPCS_PROFESSIONAL) ? "yes" : "no");
  31. snd_iprintf(buffer, "Not Audio Data : %s\n", (status & SPCS_NOTAUDIODATA) ? "yes" : "no");
  32. snd_iprintf(buffer, "Copyright : %s\n", (status & SPCS_COPYRIGHT) ? "yes" : "no");
  33. snd_iprintf(buffer, "Emphasis : %s\n", emphasis[(status & SPCS_EMPHASISMASK) >> 3]);
  34. snd_iprintf(buffer, "Mode : %i\n", (status & SPCS_MODEMASK) >> 6);
  35. snd_iprintf(buffer, "Category Code : 0x%x\n", (status & SPCS_CATEGORYCODEMASK) >> 8);
  36. snd_iprintf(buffer, "Generation Status : %s\n", status & SPCS_GENERATIONSTATUS ? "original" : "copy");
  37. snd_iprintf(buffer, "Source Mask : %i\n", (status & SPCS_SOURCENUMMASK) >> 16);
  38. snd_iprintf(buffer, "Channel Number : %s\n", channel[(status & SPCS_CHANNELNUMMASK) >> 20]);
  39. snd_iprintf(buffer, "Sample Rate : %iHz\n", samplerate[(status & SPCS_SAMPLERATEMASK) >> 24]);
  40. snd_iprintf(buffer, "Clock Accuracy : %s\n", clkaccy[(status & SPCS_CLKACCYMASK) >> 28]);
  41. if (rate_reg > 0) {
  42. rate = snd_emu10k1_ptr_read(emu, rate_reg, 0);
  43. snd_iprintf(buffer, "S/PDIF Valid : %s\n", rate & SRCS_SPDIFVALID ? "on" : "off");
  44. snd_iprintf(buffer, "S/PDIF Locked : %s\n", rate & SRCS_SPDIFLOCKED ? "on" : "off");
  45. snd_iprintf(buffer, "Rate Locked : %s\n", rate & SRCS_RATELOCKED ? "on" : "off");
  46. /* From ((Rate * 48000 ) / 262144); */
  47. snd_iprintf(buffer, "Estimated Sample Rate : %d\n", ((rate & 0xFFFFF ) * 375) >> 11);
  48. }
  49. } else {
  50. snd_iprintf(buffer, "No signal detected.\n");
  51. }
  52. }
  53. static void snd_emu10k1_proc_read(struct snd_info_entry *entry,
  54. struct snd_info_buffer *buffer)
  55. {
  56. struct snd_emu10k1 *emu = entry->private_data;
  57. const char * const *inputs = emu->audigy ?
  58. snd_emu10k1_audigy_ins : snd_emu10k1_sblive_ins;
  59. const char * const *outputs = emu->audigy ?
  60. snd_emu10k1_audigy_outs : snd_emu10k1_sblive_outs;
  61. unsigned short extin_mask = emu->audigy ? ~0 : emu->fx8010.extin_mask;
  62. unsigned short extout_mask = emu->audigy ? ~0 : emu->fx8010.extout_mask;
  63. unsigned int val, val1, ptrx, psst, dsl, snda;
  64. int nefx = emu->audigy ? 32 : 16;
  65. int idx;
  66. snd_iprintf(buffer, "EMU10K1\n\n");
  67. snd_iprintf(buffer, "Card : %s\n",
  68. emu->card_capabilities->emu_model ? "E-MU D.A.S." :
  69. emu->card_capabilities->ecard ? "E-MU A.P.S." :
  70. emu->audigy ? "SB Audigy" : "SB Live!");
  71. snd_iprintf(buffer, "Internal TRAM (words) : 0x%x\n", emu->fx8010.itram_size);
  72. snd_iprintf(buffer, "External TRAM (words) : 0x%x\n", (int)emu->fx8010.etram_pages.bytes / 2);
  73. snd_iprintf(buffer, "\nEffect Send Routing & Amounts:\n");
  74. for (idx = 0; idx < NUM_G; idx++) {
  75. ptrx = snd_emu10k1_ptr_read(emu, PTRX, idx);
  76. psst = snd_emu10k1_ptr_read(emu, PSST, idx);
  77. dsl = snd_emu10k1_ptr_read(emu, DSL, idx);
  78. if (emu->audigy) {
  79. val = snd_emu10k1_ptr_read(emu, A_FXRT1, idx);
  80. val1 = snd_emu10k1_ptr_read(emu, A_FXRT2, idx);
  81. snda = snd_emu10k1_ptr_read(emu, A_SENDAMOUNTS, idx);
  82. snd_iprintf(buffer, "Ch%-2i: A=%2i:%02x, B=%2i:%02x, C=%2i:%02x, D=%2i:%02x, ",
  83. idx,
  84. val & 0x3f, REG_VAL_GET(PTRX_FXSENDAMOUNT_A, ptrx),
  85. (val >> 8) & 0x3f, REG_VAL_GET(PTRX_FXSENDAMOUNT_B, ptrx),
  86. (val >> 16) & 0x3f, REG_VAL_GET(PSST_FXSENDAMOUNT_C, psst),
  87. (val >> 24) & 0x3f, REG_VAL_GET(DSL_FXSENDAMOUNT_D, dsl));
  88. snd_iprintf(buffer, "E=%2i:%02x, F=%2i:%02x, G=%2i:%02x, H=%2i:%02x\n",
  89. val1 & 0x3f, (snda >> 24) & 0xff,
  90. (val1 >> 8) & 0x3f, (snda >> 16) & 0xff,
  91. (val1 >> 16) & 0x3f, (snda >> 8) & 0xff,
  92. (val1 >> 24) & 0x3f, snda & 0xff);
  93. } else {
  94. val = snd_emu10k1_ptr_read(emu, FXRT, idx);
  95. snd_iprintf(buffer, "Ch%-2i: A=%2i:%02x, B=%2i:%02x, C=%2i:%02x, D=%2i:%02x\n",
  96. idx,
  97. (val >> 16) & 0x0f, REG_VAL_GET(PTRX_FXSENDAMOUNT_A, ptrx),
  98. (val >> 20) & 0x0f, REG_VAL_GET(PTRX_FXSENDAMOUNT_B, ptrx),
  99. (val >> 24) & 0x0f, REG_VAL_GET(PSST_FXSENDAMOUNT_C, psst),
  100. (val >> 28) & 0x0f, REG_VAL_GET(DSL_FXSENDAMOUNT_D, dsl));
  101. }
  102. }
  103. snd_iprintf(buffer, "\nEffect Send Targets:\n");
  104. // Audigy actually has 64, but we don't use them all.
  105. for (idx = 0; idx < 32; idx++) {
  106. const char *c = snd_emu10k1_fxbus[idx];
  107. if (c)
  108. snd_iprintf(buffer, " Channel %02i [%s]\n", idx, c);
  109. }
  110. if (!emu->card_capabilities->emu_model) {
  111. snd_iprintf(buffer, "\nOutput Channels:\n");
  112. for (idx = 0; idx < 32; idx++)
  113. if (outputs[idx] && (extout_mask & (1 << idx)))
  114. snd_iprintf(buffer, " Channel %02i [%s]\n", idx, outputs[idx]);
  115. snd_iprintf(buffer, "\nInput Channels:\n");
  116. for (idx = 0; idx < 16; idx++)
  117. if (inputs[idx] && (extin_mask & (1 << idx)))
  118. snd_iprintf(buffer, " Channel %02i [%s]\n", idx, inputs[idx]);
  119. snd_iprintf(buffer, "\nMultichannel Capture Sources:\n");
  120. for (idx = 0; idx < nefx; idx++)
  121. if (emu->efx_voices_mask[0] & (1 << idx))
  122. snd_iprintf(buffer, " Channel %02i [Output: %s]\n",
  123. idx, outputs[idx] ? outputs[idx] : "???");
  124. if (emu->audigy) {
  125. for (idx = 0; idx < 32; idx++)
  126. if (emu->efx_voices_mask[1] & (1 << idx))
  127. snd_iprintf(buffer, " Channel %02i [Input: %s]\n",
  128. idx + 32, inputs[idx] ? inputs[idx] : "???");
  129. } else {
  130. for (idx = 0; idx < 16; idx++) {
  131. if (emu->efx_voices_mask[0] & ((1 << 16) << idx)) {
  132. if (emu->card_capabilities->sblive51) {
  133. s8 c = snd_emu10k1_sblive51_fxbus2_map[idx];
  134. if (c == -1)
  135. snd_iprintf(buffer, " Channel %02i [Output: %s]\n",
  136. idx + 16, outputs[idx + 16]);
  137. else
  138. snd_iprintf(buffer, " Channel %02i [Input: %s]\n",
  139. idx + 16, inputs[c]);
  140. } else {
  141. snd_iprintf(buffer, " Channel %02i [Input: %s]\n",
  142. idx + 16, inputs[idx] ? inputs[idx] : "???");
  143. }
  144. }
  145. }
  146. }
  147. }
  148. }
  149. static void snd_emu10k1_proc_spdif_read(struct snd_info_entry *entry,
  150. struct snd_info_buffer *buffer)
  151. {
  152. struct snd_emu10k1 *emu = entry->private_data;
  153. u32 value;
  154. u32 value2;
  155. if (emu->card_capabilities->emu_model) {
  156. snd_emu1010_fpga_lock(emu);
  157. // This represents the S/PDIF lock status on 0404b, which is
  158. // kinda weird and unhelpful, because monitoring it via IRQ is
  159. // impractical (one gets an IRQ flood as long as it is desynced).
  160. snd_emu1010_fpga_read(emu, EMU_HANA_IRQ_STATUS, &value);
  161. snd_iprintf(buffer, "Lock status 1: %#x\n", value & 0x10);
  162. // Bit 0x1 in LO being 0 is supposedly for ADAT lock.
  163. // The registers are always all zero on 0404b.
  164. snd_emu1010_fpga_read(emu, EMU_HANA_LOCK_STS_LO, &value);
  165. snd_emu1010_fpga_read(emu, EMU_HANA_LOCK_STS_HI, &value2);
  166. snd_iprintf(buffer, "Lock status 2: %#x %#x\n", value, value2);
  167. snd_iprintf(buffer, "S/PDIF rate: %dHz\n",
  168. snd_emu1010_get_raw_rate(emu, EMU_HANA_WCLOCK_HANA_SPDIF_IN));
  169. if (emu->card_capabilities->emu_model != EMU_MODEL_EMU0404) {
  170. snd_iprintf(buffer, "ADAT rate: %dHz\n",
  171. snd_emu1010_get_raw_rate(emu, EMU_HANA_WCLOCK_HANA_ADAT_IN));
  172. snd_iprintf(buffer, "Dock rate: %dHz\n",
  173. snd_emu1010_get_raw_rate(emu, EMU_HANA_WCLOCK_2ND_HANA));
  174. }
  175. if (emu->card_capabilities->emu_model == EMU_MODEL_EMU0404 ||
  176. emu->card_capabilities->emu_model == EMU_MODEL_EMU1010)
  177. snd_iprintf(buffer, "BNC rate: %dHz\n",
  178. snd_emu1010_get_raw_rate(emu, EMU_HANA_WCLOCK_SYNC_BNC));
  179. snd_emu1010_fpga_read(emu, EMU_HANA_SPDIF_MODE, &value);
  180. if (value & EMU_HANA_SPDIF_MODE_RX_INVALID)
  181. snd_iprintf(buffer, "\nS/PDIF input invalid\n");
  182. else
  183. snd_iprintf(buffer, "\nS/PDIF mode: %s%s\n",
  184. value & EMU_HANA_SPDIF_MODE_RX_PRO ? "professional" : "consumer",
  185. value & EMU_HANA_SPDIF_MODE_RX_NOCOPY ? ", no copy" : "");
  186. snd_emu1010_fpga_unlock(emu);
  187. } else {
  188. snd_emu10k1_proc_spdif_status(emu, buffer, "CD-ROM S/PDIF In", CDCS, CDSRCS);
  189. snd_emu10k1_proc_spdif_status(emu, buffer, "Optical or Coax S/PDIF In", GPSCS, GPSRCS);
  190. }
  191. #if 0
  192. val = snd_emu10k1_ptr_read(emu, ZVSRCS, 0);
  193. snd_iprintf(buffer, "\nZoomed Video\n");
  194. snd_iprintf(buffer, "Rate Locked : %s\n", val & SRCS_RATELOCKED ? "on" : "off");
  195. snd_iprintf(buffer, "Estimated Sample Rate : 0x%x\n", val & SRCS_ESTSAMPLERATE);
  196. #endif
  197. }
  198. static void snd_emu10k1_proc_rates_read(struct snd_info_entry *entry,
  199. struct snd_info_buffer *buffer)
  200. {
  201. static const int samplerate[8] = { 44100, 48000, 96000, 192000, 4, 5, 6, 7 };
  202. struct snd_emu10k1 *emu = entry->private_data;
  203. unsigned int val, tmp, n;
  204. val = snd_emu10k1_ptr20_read(emu, CAPTURE_RATE_STATUS, 0);
  205. for (n = 0; n < 4; n++) {
  206. tmp = val >> (16 + (n*4));
  207. if (tmp & 0x8) snd_iprintf(buffer, "Channel %d: Rate=%d\n", n, samplerate[tmp & 0x7]);
  208. else snd_iprintf(buffer, "Channel %d: No input\n", n);
  209. }
  210. }
  211. struct emu10k1_reg_entry {
  212. unsigned short base, size;
  213. const char *name;
  214. };
  215. static const struct emu10k1_reg_entry sblive_reg_entries[] = {
  216. { 0, 0x10, "FXBUS" },
  217. { 0x10, 0x10, "EXTIN" },
  218. { 0x20, 0x10, "EXTOUT" },
  219. { 0x30, 0x10, "FXBUS2" },
  220. { 0x40, 0x20, NULL }, // Constants
  221. { 0x100, 0x100, "GPR" },
  222. { 0x200, 0x80, "ITRAM_DATA" },
  223. { 0x280, 0x20, "ETRAM_DATA" },
  224. { 0x300, 0x80, "ITRAM_ADDR" },
  225. { 0x380, 0x20, "ETRAM_ADDR" },
  226. { 0x400, 0, NULL }
  227. };
  228. static const struct emu10k1_reg_entry audigy_reg_entries[] = {
  229. { 0, 0x40, "FXBUS" },
  230. { 0x40, 0x10, "EXTIN" },
  231. { 0x50, 0x10, "P16VIN" },
  232. { 0x60, 0x20, "EXTOUT" },
  233. { 0x80, 0x20, "FXBUS2" },
  234. { 0xa0, 0x10, "EMU32OUTH" },
  235. { 0xb0, 0x10, "EMU32OUTL" },
  236. { 0xc0, 0x20, NULL }, // Constants
  237. // This can't be quite right - overlap.
  238. //{ 0x100, 0xc0, "ITRAM_CTL" },
  239. //{ 0x1c0, 0x40, "ETRAM_CTL" },
  240. { 0x160, 0x20, "A3_EMU32IN" },
  241. { 0x1e0, 0x20, "A3_EMU32OUT" },
  242. { 0x200, 0xc0, "ITRAM_DATA" },
  243. { 0x2c0, 0x40, "ETRAM_DATA" },
  244. { 0x300, 0xc0, "ITRAM_ADDR" },
  245. { 0x3c0, 0x40, "ETRAM_ADDR" },
  246. { 0x400, 0x200, "GPR" },
  247. { 0x600, 0, NULL }
  248. };
  249. static const char * const emu10k1_const_entries[] = {
  250. "C_00000000",
  251. "C_00000001",
  252. "C_00000002",
  253. "C_00000003",
  254. "C_00000004",
  255. "C_00000008",
  256. "C_00000010",
  257. "C_00000020",
  258. "C_00000100",
  259. "C_00010000",
  260. "C_00000800",
  261. "C_10000000",
  262. "C_20000000",
  263. "C_40000000",
  264. "C_80000000",
  265. "C_7fffffff",
  266. "C_ffffffff",
  267. "C_fffffffe",
  268. "C_c0000000",
  269. "C_4f1bbcdc",
  270. "C_5a7ef9db",
  271. "C_00100000",
  272. "GPR_ACCU",
  273. "GPR_COND",
  274. "GPR_NOISE0",
  275. "GPR_NOISE1",
  276. "GPR_IRQ",
  277. "GPR_DBAC",
  278. "GPR_DBACE",
  279. "???",
  280. };
  281. static int disasm_emu10k1_reg(char *buffer,
  282. const struct emu10k1_reg_entry *entries,
  283. unsigned reg, const char *pfx)
  284. {
  285. for (int i = 0; ; i++) {
  286. unsigned base = entries[i].base;
  287. unsigned size = entries[i].size;
  288. if (!size)
  289. return sprintf(buffer, "%s0x%03x", pfx, reg);
  290. if (reg >= base && reg < base + size) {
  291. const char *name = entries[i].name;
  292. reg -= base;
  293. if (name)
  294. return sprintf(buffer, "%s%s(%u)", pfx, name, reg);
  295. return sprintf(buffer, "%s%s", pfx, emu10k1_const_entries[reg]);
  296. }
  297. }
  298. }
  299. static int disasm_sblive_reg(char *buffer, unsigned reg, const char *pfx)
  300. {
  301. return disasm_emu10k1_reg(buffer, sblive_reg_entries, reg, pfx);
  302. }
  303. static int disasm_audigy_reg(char *buffer, unsigned reg, const char *pfx)
  304. {
  305. return disasm_emu10k1_reg(buffer, audigy_reg_entries, reg, pfx);
  306. }
  307. static void snd_emu10k1_proc_acode_read(struct snd_info_entry *entry,
  308. struct snd_info_buffer *buffer)
  309. {
  310. u32 pc;
  311. struct snd_emu10k1 *emu = entry->private_data;
  312. static const char * const insns[16] = {
  313. "MAC0", "MAC1", "MAC2", "MAC3", "MACINT0", "MACINT1", "ACC3", "MACMV",
  314. "ANDXOR", "TSTNEG", "LIMITGE", "LIMITLT", "LOG", "EXP", "INTERP", "SKIP",
  315. };
  316. static const char spaces[] = " ";
  317. const int nspaces = sizeof(spaces) - 1;
  318. snd_iprintf(buffer, "FX8010 Instruction List '%s'\n", emu->fx8010.name);
  319. snd_iprintf(buffer, " Code dump :\n");
  320. for (pc = 0; pc < (emu->audigy ? 1024 : 512); pc++) {
  321. u32 low, high;
  322. int len;
  323. char buf[100];
  324. char *bufp = buf;
  325. low = snd_emu10k1_efx_read(emu, pc * 2);
  326. high = snd_emu10k1_efx_read(emu, pc * 2 + 1);
  327. if (emu->audigy) {
  328. bufp += sprintf(bufp, " %-7s ", insns[(high >> 24) & 0x0f]);
  329. bufp += disasm_audigy_reg(bufp, (high >> 12) & 0x7ff, "");
  330. bufp += disasm_audigy_reg(bufp, (high >> 0) & 0x7ff, ", ");
  331. bufp += disasm_audigy_reg(bufp, (low >> 12) & 0x7ff, ", ");
  332. bufp += disasm_audigy_reg(bufp, (low >> 0) & 0x7ff, ", ");
  333. } else {
  334. bufp += sprintf(bufp, " %-7s ", insns[(high >> 20) & 0x0f]);
  335. bufp += disasm_sblive_reg(bufp, (high >> 10) & 0x3ff, "");
  336. bufp += disasm_sblive_reg(bufp, (high >> 0) & 0x3ff, ", ");
  337. bufp += disasm_sblive_reg(bufp, (low >> 10) & 0x3ff, ", ");
  338. bufp += disasm_sblive_reg(bufp, (low >> 0) & 0x3ff, ", ");
  339. }
  340. len = (int)(ptrdiff_t)(bufp - buf);
  341. snd_iprintf(buffer, "%s %s /* 0x%04x: 0x%08x%08x */\n",
  342. buf, &spaces[nspaces - clamp(65 - len, 0, nspaces)],
  343. pc, high, low);
  344. }
  345. }
  346. #define TOTAL_SIZE_GPR (0x100*4)
  347. #define A_TOTAL_SIZE_GPR (0x200*4)
  348. #define TOTAL_SIZE_TANKMEM_DATA (0xa0*4)
  349. #define TOTAL_SIZE_TANKMEM_ADDR (0xa0*4)
  350. #define A_TOTAL_SIZE_TANKMEM_DATA (0x100*4)
  351. #define A_TOTAL_SIZE_TANKMEM_ADDR (0x100*4)
  352. #define TOTAL_SIZE_CODE (0x200*8)
  353. #define A_TOTAL_SIZE_CODE (0x400*8)
  354. static ssize_t snd_emu10k1_fx8010_read(struct snd_info_entry *entry,
  355. void *file_private_data,
  356. struct file *file, char __user *buf,
  357. size_t count, loff_t pos)
  358. {
  359. struct snd_emu10k1 *emu = entry->private_data;
  360. unsigned int offset;
  361. int tram_addr = 0;
  362. unsigned int *tmp;
  363. long res;
  364. unsigned int idx;
  365. if (!strcmp(entry->name, "fx8010_tram_addr")) {
  366. offset = TANKMEMADDRREGBASE;
  367. tram_addr = 1;
  368. } else if (!strcmp(entry->name, "fx8010_tram_data")) {
  369. offset = TANKMEMDATAREGBASE;
  370. } else if (!strcmp(entry->name, "fx8010_code")) {
  371. offset = emu->audigy ? A_MICROCODEBASE : MICROCODEBASE;
  372. } else {
  373. offset = emu->audigy ? A_FXGPREGBASE : FXGPREGBASE;
  374. }
  375. tmp = kmalloc(count + 8, GFP_KERNEL);
  376. if (!tmp)
  377. return -ENOMEM;
  378. for (idx = 0; idx < ((pos & 3) + count + 3) >> 2; idx++) {
  379. unsigned int val;
  380. val = snd_emu10k1_ptr_read(emu, offset + idx + (pos >> 2), 0);
  381. if (tram_addr && emu->audigy) {
  382. val >>= 11;
  383. val |= snd_emu10k1_ptr_read(emu, 0x100 + idx + (pos >> 2), 0) << 20;
  384. }
  385. tmp[idx] = val;
  386. }
  387. if (copy_to_user(buf, ((char *)tmp) + (pos & 3), count))
  388. res = -EFAULT;
  389. else
  390. res = count;
  391. kfree(tmp);
  392. return res;
  393. }
  394. static void snd_emu10k1_proc_voices_read(struct snd_info_entry *entry,
  395. struct snd_info_buffer *buffer)
  396. {
  397. struct snd_emu10k1 *emu = entry->private_data;
  398. struct snd_emu10k1_voice *voice;
  399. int idx;
  400. static const char * const types[] = {
  401. "Unused", "EFX", "EFX IRQ", "PCM", "PCM IRQ", "Synth"
  402. };
  403. static_assert(ARRAY_SIZE(types) == EMU10K1_NUM_TYPES);
  404. snd_iprintf(buffer, "ch\tdirty\tlast\tuse\n");
  405. for (idx = 0; idx < NUM_G; idx++) {
  406. voice = &emu->voices[idx];
  407. snd_iprintf(buffer, "%i\t%u\t%u\t%s\n",
  408. idx,
  409. voice->dirty,
  410. voice->last,
  411. types[voice->use]);
  412. }
  413. }
  414. #ifdef CONFIG_SND_DEBUG
  415. static void snd_emu_proc_emu1010_link_read(struct snd_emu10k1 *emu,
  416. struct snd_info_buffer *buffer,
  417. u32 dst)
  418. {
  419. u32 src = snd_emu1010_fpga_link_dst_src_read(emu, dst);
  420. snd_iprintf(buffer, "%04x: %04x\n", dst, src);
  421. }
  422. static void snd_emu_proc_emu1010_reg_read(struct snd_info_entry *entry,
  423. struct snd_info_buffer *buffer)
  424. {
  425. struct snd_emu10k1 *emu = entry->private_data;
  426. u32 value;
  427. int i;
  428. snd_emu1010_fpga_lock(emu);
  429. snd_iprintf(buffer, "EMU1010 Registers:\n\n");
  430. for(i = 0; i < 0x40; i+=1) {
  431. snd_emu1010_fpga_read(emu, i, &value);
  432. snd_iprintf(buffer, "%02x: %02x\n", i, value);
  433. }
  434. snd_iprintf(buffer, "\nEMU1010 Routes:\n\n");
  435. for (i = 0; i < 16; i++) // To Alice2/Tina[2] via EMU32
  436. snd_emu_proc_emu1010_link_read(emu, buffer, i);
  437. if (emu->card_capabilities->emu_model != EMU_MODEL_EMU0404)
  438. for (i = 0; i < 32; i++) // To Dock via EDI
  439. snd_emu_proc_emu1010_link_read(emu, buffer, 0x100 + i);
  440. if (emu->card_capabilities->emu_model != EMU_MODEL_EMU1616)
  441. for (i = 0; i < 8; i++) // To Hamoa/local
  442. snd_emu_proc_emu1010_link_read(emu, buffer, 0x200 + i);
  443. for (i = 0; i < 8; i++) // To Hamoa/Mana/local
  444. snd_emu_proc_emu1010_link_read(emu, buffer, 0x300 + i);
  445. if (emu->card_capabilities->emu_model == EMU_MODEL_EMU1616) {
  446. for (i = 0; i < 16; i++) // To Tina2 via EMU32
  447. snd_emu_proc_emu1010_link_read(emu, buffer, 0x400 + i);
  448. } else if (emu->card_capabilities->emu_model != EMU_MODEL_EMU0404) {
  449. for (i = 0; i < 8; i++) // To Hana ADAT
  450. snd_emu_proc_emu1010_link_read(emu, buffer, 0x400 + i);
  451. if (emu->card_capabilities->emu_model == EMU_MODEL_EMU1010B) {
  452. for (i = 0; i < 16; i++) // To Tina via EMU32
  453. snd_emu_proc_emu1010_link_read(emu, buffer, 0x500 + i);
  454. } else {
  455. // To Alice2 via I2S
  456. snd_emu_proc_emu1010_link_read(emu, buffer, 0x500);
  457. snd_emu_proc_emu1010_link_read(emu, buffer, 0x501);
  458. snd_emu_proc_emu1010_link_read(emu, buffer, 0x600);
  459. snd_emu_proc_emu1010_link_read(emu, buffer, 0x601);
  460. snd_emu_proc_emu1010_link_read(emu, buffer, 0x700);
  461. snd_emu_proc_emu1010_link_read(emu, buffer, 0x701);
  462. }
  463. }
  464. snd_emu1010_fpga_unlock(emu);
  465. }
  466. static void snd_emu_proc_io_reg_read(struct snd_info_entry *entry,
  467. struct snd_info_buffer *buffer)
  468. {
  469. struct snd_emu10k1 *emu = entry->private_data;
  470. unsigned long value;
  471. int i;
  472. snd_iprintf(buffer, "IO Registers:\n\n");
  473. for(i = 0; i < 0x40; i+=4) {
  474. value = inl(emu->port + i);
  475. snd_iprintf(buffer, "%02X: %08lX\n", i, value);
  476. }
  477. }
  478. static void snd_emu_proc_io_reg_write(struct snd_info_entry *entry,
  479. struct snd_info_buffer *buffer)
  480. {
  481. struct snd_emu10k1 *emu = entry->private_data;
  482. char line[64];
  483. u32 reg, val;
  484. while (!snd_info_get_line(buffer, line, sizeof(line))) {
  485. if (sscanf(line, "%x %x", &reg, &val) != 2)
  486. continue;
  487. if (reg < 0x40 && val <= 0xffffffff) {
  488. outl(val, emu->port + (reg & 0xfffffffc));
  489. }
  490. }
  491. }
  492. static unsigned int snd_ptr_read(struct snd_emu10k1 * emu,
  493. unsigned int iobase,
  494. unsigned int reg,
  495. unsigned int chn)
  496. {
  497. unsigned int regptr, val;
  498. regptr = (reg << 16) | chn;
  499. spin_lock_irq(&emu->emu_lock);
  500. outl(regptr, emu->port + iobase + PTR);
  501. val = inl(emu->port + iobase + DATA);
  502. spin_unlock_irq(&emu->emu_lock);
  503. return val;
  504. }
  505. static void snd_ptr_write(struct snd_emu10k1 *emu,
  506. unsigned int iobase,
  507. unsigned int reg,
  508. unsigned int chn,
  509. unsigned int data)
  510. {
  511. unsigned int regptr;
  512. regptr = (reg << 16) | chn;
  513. spin_lock_irq(&emu->emu_lock);
  514. outl(regptr, emu->port + iobase + PTR);
  515. outl(data, emu->port + iobase + DATA);
  516. spin_unlock_irq(&emu->emu_lock);
  517. }
  518. static void snd_emu_proc_ptr_reg_read(struct snd_info_entry *entry,
  519. struct snd_info_buffer *buffer, int iobase, int offset, int length, int voices)
  520. {
  521. struct snd_emu10k1 *emu = entry->private_data;
  522. unsigned long value;
  523. int i,j;
  524. if (offset+length > 0xa0) {
  525. snd_iprintf(buffer, "Input values out of range\n");
  526. return;
  527. }
  528. snd_iprintf(buffer, "Registers 0x%x\n", iobase);
  529. for(i = offset; i < offset+length; i++) {
  530. snd_iprintf(buffer, "%02X: ",i);
  531. for (j = 0; j < voices; j++) {
  532. value = snd_ptr_read(emu, iobase, i, j);
  533. snd_iprintf(buffer, "%08lX ", value);
  534. }
  535. snd_iprintf(buffer, "\n");
  536. }
  537. }
  538. static void snd_emu_proc_ptr_reg_write(struct snd_info_entry *entry,
  539. struct snd_info_buffer *buffer,
  540. int iobase, int length, int voices)
  541. {
  542. struct snd_emu10k1 *emu = entry->private_data;
  543. char line[64];
  544. unsigned int reg, channel_id , val;
  545. while (!snd_info_get_line(buffer, line, sizeof(line))) {
  546. if (sscanf(line, "%x %x %x", &reg, &channel_id, &val) != 3)
  547. continue;
  548. if (reg < length && channel_id < voices)
  549. snd_ptr_write(emu, iobase, reg, channel_id, val);
  550. }
  551. }
  552. static void snd_emu_proc_ptr_reg_write00(struct snd_info_entry *entry,
  553. struct snd_info_buffer *buffer)
  554. {
  555. snd_emu_proc_ptr_reg_write(entry, buffer, 0, 0x80, 64);
  556. }
  557. static void snd_emu_proc_ptr_reg_write20(struct snd_info_entry *entry,
  558. struct snd_info_buffer *buffer)
  559. {
  560. struct snd_emu10k1 *emu = entry->private_data;
  561. snd_emu_proc_ptr_reg_write(entry, buffer, 0x20,
  562. emu->card_capabilities->ca0108_chip ? 0xa0 : 0x80, 4);
  563. }
  564. static void snd_emu_proc_ptr_reg_read00a(struct snd_info_entry *entry,
  565. struct snd_info_buffer *buffer)
  566. {
  567. snd_emu_proc_ptr_reg_read(entry, buffer, 0, 0, 0x40, 64);
  568. }
  569. static void snd_emu_proc_ptr_reg_read00b(struct snd_info_entry *entry,
  570. struct snd_info_buffer *buffer)
  571. {
  572. snd_emu_proc_ptr_reg_read(entry, buffer, 0, 0x40, 0x40, 64);
  573. }
  574. static void snd_emu_proc_ptr_reg_read20a(struct snd_info_entry *entry,
  575. struct snd_info_buffer *buffer)
  576. {
  577. snd_emu_proc_ptr_reg_read(entry, buffer, 0x20, 0, 0x40, 4);
  578. }
  579. static void snd_emu_proc_ptr_reg_read20b(struct snd_info_entry *entry,
  580. struct snd_info_buffer *buffer)
  581. {
  582. snd_emu_proc_ptr_reg_read(entry, buffer, 0x20, 0x40, 0x40, 4);
  583. }
  584. static void snd_emu_proc_ptr_reg_read20c(struct snd_info_entry *entry,
  585. struct snd_info_buffer * buffer)
  586. {
  587. snd_emu_proc_ptr_reg_read(entry, buffer, 0x20, 0x80, 0x20, 4);
  588. }
  589. #endif
  590. static const struct snd_info_entry_ops snd_emu10k1_proc_ops_fx8010 = {
  591. .read = snd_emu10k1_fx8010_read,
  592. };
  593. int snd_emu10k1_proc_init(struct snd_emu10k1 *emu)
  594. {
  595. struct snd_info_entry *entry;
  596. #ifdef CONFIG_SND_DEBUG
  597. if (emu->card_capabilities->emu_model) {
  598. snd_card_ro_proc_new(emu->card, "emu1010_regs",
  599. emu, snd_emu_proc_emu1010_reg_read);
  600. }
  601. snd_card_rw_proc_new(emu->card, "io_regs", emu,
  602. snd_emu_proc_io_reg_read,
  603. snd_emu_proc_io_reg_write);
  604. snd_card_rw_proc_new(emu->card, "ptr_regs00a", emu,
  605. snd_emu_proc_ptr_reg_read00a,
  606. snd_emu_proc_ptr_reg_write00);
  607. snd_card_rw_proc_new(emu->card, "ptr_regs00b", emu,
  608. snd_emu_proc_ptr_reg_read00b,
  609. snd_emu_proc_ptr_reg_write00);
  610. if (!emu->card_capabilities->emu_model &&
  611. (emu->card_capabilities->ca0151_chip || emu->card_capabilities->ca0108_chip)) {
  612. snd_card_rw_proc_new(emu->card, "ptr_regs20a", emu,
  613. snd_emu_proc_ptr_reg_read20a,
  614. snd_emu_proc_ptr_reg_write20);
  615. snd_card_rw_proc_new(emu->card, "ptr_regs20b", emu,
  616. snd_emu_proc_ptr_reg_read20b,
  617. snd_emu_proc_ptr_reg_write20);
  618. if (emu->card_capabilities->ca0108_chip)
  619. snd_card_rw_proc_new(emu->card, "ptr_regs20c", emu,
  620. snd_emu_proc_ptr_reg_read20c,
  621. snd_emu_proc_ptr_reg_write20);
  622. }
  623. #endif
  624. snd_card_ro_proc_new(emu->card, "emu10k1", emu, snd_emu10k1_proc_read);
  625. if (emu->card_capabilities->emu10k2_chip)
  626. snd_card_ro_proc_new(emu->card, "spdif-in", emu,
  627. snd_emu10k1_proc_spdif_read);
  628. if (emu->card_capabilities->ca0151_chip)
  629. snd_card_ro_proc_new(emu->card, "capture-rates", emu,
  630. snd_emu10k1_proc_rates_read);
  631. snd_card_ro_proc_new(emu->card, "voices", emu,
  632. snd_emu10k1_proc_voices_read);
  633. if (! snd_card_proc_new(emu->card, "fx8010_gpr", &entry)) {
  634. entry->content = SNDRV_INFO_CONTENT_DATA;
  635. entry->private_data = emu;
  636. entry->mode = S_IFREG | 0444 /*| S_IWUSR*/;
  637. entry->size = emu->audigy ? A_TOTAL_SIZE_GPR : TOTAL_SIZE_GPR;
  638. entry->c.ops = &snd_emu10k1_proc_ops_fx8010;
  639. }
  640. if (! snd_card_proc_new(emu->card, "fx8010_tram_data", &entry)) {
  641. entry->content = SNDRV_INFO_CONTENT_DATA;
  642. entry->private_data = emu;
  643. entry->mode = S_IFREG | 0444 /*| S_IWUSR*/;
  644. entry->size = emu->audigy ? A_TOTAL_SIZE_TANKMEM_DATA : TOTAL_SIZE_TANKMEM_DATA ;
  645. entry->c.ops = &snd_emu10k1_proc_ops_fx8010;
  646. }
  647. if (! snd_card_proc_new(emu->card, "fx8010_tram_addr", &entry)) {
  648. entry->content = SNDRV_INFO_CONTENT_DATA;
  649. entry->private_data = emu;
  650. entry->mode = S_IFREG | 0444 /*| S_IWUSR*/;
  651. entry->size = emu->audigy ? A_TOTAL_SIZE_TANKMEM_ADDR : TOTAL_SIZE_TANKMEM_ADDR ;
  652. entry->c.ops = &snd_emu10k1_proc_ops_fx8010;
  653. }
  654. if (! snd_card_proc_new(emu->card, "fx8010_code", &entry)) {
  655. entry->content = SNDRV_INFO_CONTENT_DATA;
  656. entry->private_data = emu;
  657. entry->mode = S_IFREG | 0444 /*| S_IWUSR*/;
  658. entry->size = emu->audigy ? A_TOTAL_SIZE_CODE : TOTAL_SIZE_CODE;
  659. entry->c.ops = &snd_emu10k1_proc_ops_fx8010;
  660. }
  661. snd_card_ro_proc_new(emu->card, "fx8010_acode", emu,
  662. snd_emu10k1_proc_acode_read);
  663. return 0;
  664. }