1 // SPDX-License-Identifier: (GPL-2.0-only OR BSD-3-Clause) 2 // 3 // This file is provided under a dual BSD/GPLv2 license. When using or 4 // redistributing this file, you may do so under either license. 5 // 6 // Copyright(c) 2018 Intel Corporation 7 // 8 // Author: Liam Girdwood <liam.r.girdwood@linux.intel.com> 9 // 10 11 #include <linux/bits.h> 12 #include <linux/device.h> 13 #include <linux/errno.h> 14 #include <linux/firmware.h> 15 #include <linux/workqueue.h> 16 #include <sound/tlv.h> 17 #include <uapi/sound/sof/tokens.h> 18 #include "sof-priv.h" 19 #include "sof-audio.h" 20 #include "ops.h" 21 22 #define COMP_ID_UNASSIGNED 0xffffffff 23 /* 24 * Constants used in the computation of linear volume gain 25 * from dB gain 20th root of 10 in Q1.16 fixed-point notation 26 */ 27 #define VOL_TWENTIETH_ROOT_OF_TEN 73533 28 /* 40th root of 10 in Q1.16 fixed-point notation*/ 29 #define VOL_FORTIETH_ROOT_OF_TEN 69419 30 31 /* 0.5 dB step value in topology TLV */ 32 #define VOL_HALF_DB_STEP 50 33 34 /* TLV data items */ 35 #define TLV_MIN 0 36 #define TLV_STEP 1 37 #define TLV_MUTE 2 38 39 /** 40 * sof_update_ipc_object - Parse multiple sets of tokens within the token array associated with the 41 * token ID. 42 * @scomp: pointer to SOC component 43 * @object: target IPC struct to save the parsed values 44 * @token_id: token ID for the token array to be searched 45 * @tuples: pointer to the tuples array 46 * @num_tuples: number of tuples in the tuples array 47 * @object_size: size of the object 48 * @token_instance_num: number of times the same @token_id needs to be parsed i.e. the function 49 * looks for @token_instance_num of each token in the token array associated 50 * with the @token_id 51 */ 52 int sof_update_ipc_object(struct snd_soc_component *scomp, void *object, enum sof_tokens token_id, 53 struct snd_sof_tuple *tuples, int num_tuples, 54 size_t object_size, int token_instance_num) 55 { 56 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 57 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 58 const struct sof_token_info *token_list; 59 const struct sof_topology_token *tokens; 60 int i, j; 61 62 token_list = tplg_ops ? tplg_ops->token_list : NULL; 63 /* nothing to do if token_list is NULL */ 64 if (!token_list) 65 return 0; 66 67 if (token_list[token_id].count < 0) { 68 dev_err(scomp->dev, "Invalid token count for token ID: %d\n", token_id); 69 return -EINVAL; 70 } 71 72 /* No tokens to match */ 73 if (!token_list[token_id].count) 74 return 0; 75 76 tokens = token_list[token_id].tokens; 77 if (!tokens) { 78 dev_err(scomp->dev, "Invalid tokens for token id: %d\n", token_id); 79 return -EINVAL; 80 } 81 82 for (i = 0; i < token_list[token_id].count; i++) { 83 int offset = 0; 84 int num_tokens_matched = 0; 85 86 for (j = 0; j < num_tuples; j++) { 87 if (tokens[i].token == tuples[j].token) { 88 switch (tokens[i].type) { 89 case SND_SOC_TPLG_TUPLE_TYPE_WORD: 90 { 91 u32 *val = (u32 *)((u8 *)object + tokens[i].offset + 92 offset); 93 94 *val = tuples[j].value.v; 95 break; 96 } 97 case SND_SOC_TPLG_TUPLE_TYPE_SHORT: 98 case SND_SOC_TPLG_TUPLE_TYPE_BOOL: 99 { 100 u16 *val = (u16 *)((u8 *)object + tokens[i].offset + 101 offset); 102 103 *val = (u16)tuples[j].value.v; 104 break; 105 } 106 case SND_SOC_TPLG_TUPLE_TYPE_STRING: 107 { 108 if (!tokens[i].get_token) { 109 dev_err(scomp->dev, 110 "get_token not defined for token %d in %s\n", 111 tokens[i].token, token_list[token_id].name); 112 return -EINVAL; 113 } 114 115 tokens[i].get_token((void *)tuples[j].value.s, object, 116 tokens[i].offset + offset); 117 break; 118 } 119 default: 120 break; 121 } 122 123 num_tokens_matched++; 124 125 /* found all required sets of current token. Move to the next one */ 126 if (!(num_tokens_matched % token_instance_num)) 127 break; 128 129 /* move to the next object */ 130 offset += object_size; 131 } 132 } 133 } 134 135 return 0; 136 } 137 138 static inline int get_tlv_data(const int *p, int tlv[SOF_TLV_ITEMS]) 139 { 140 /* we only support dB scale TLV type at the moment */ 141 if ((int)p[SNDRV_CTL_TLVO_TYPE] != SNDRV_CTL_TLVT_DB_SCALE) 142 return -EINVAL; 143 144 /* min value in topology tlv data is multiplied by 100 */ 145 tlv[TLV_MIN] = (int)p[SNDRV_CTL_TLVO_DB_SCALE_MIN] / 100; 146 147 /* volume steps */ 148 tlv[TLV_STEP] = (int)(p[SNDRV_CTL_TLVO_DB_SCALE_MUTE_AND_STEP] & 149 TLV_DB_SCALE_MASK); 150 151 /* mute ON/OFF */ 152 if ((p[SNDRV_CTL_TLVO_DB_SCALE_MUTE_AND_STEP] & 153 TLV_DB_SCALE_MUTE) == 0) 154 tlv[TLV_MUTE] = 0; 155 else 156 tlv[TLV_MUTE] = 1; 157 158 return 0; 159 } 160 161 /* 162 * Function to truncate an unsigned 64-bit number 163 * by x bits and return 32-bit unsigned number. This 164 * function also takes care of rounding while truncating 165 */ 166 static inline u32 vol_shift_64(u64 i, u32 x) 167 { 168 /* do not truncate more than 32 bits */ 169 if (x > 32) 170 x = 32; 171 172 if (x == 0) 173 return (u32)i; 174 175 return (u32)(((i >> (x - 1)) + 1) >> 1); 176 } 177 178 /* 179 * Function to compute a ^ exp where, 180 * a is a fractional number represented by a fixed-point 181 * integer with a fractional world length of "fwl" 182 * exp is an integer 183 * fwl is the fractional word length 184 * Return value is a fractional number represented by a 185 * fixed-point integer with a fractional word length of "fwl" 186 */ 187 static u32 vol_pow32(u32 a, int exp, u32 fwl) 188 { 189 int i, iter; 190 u32 power = 1 << fwl; 191 u64 numerator; 192 193 /* if exponent is 0, return 1 */ 194 if (exp == 0) 195 return power; 196 197 /* determine the number of iterations based on the exponent */ 198 if (exp < 0) 199 iter = exp * -1; 200 else 201 iter = exp; 202 203 /* mutiply a "iter" times to compute power */ 204 for (i = 0; i < iter; i++) { 205 /* 206 * Product of 2 Qx.fwl fixed-point numbers yields a Q2*x.2*fwl 207 * Truncate product back to fwl fractional bits with rounding 208 */ 209 power = vol_shift_64((u64)power * a, fwl); 210 } 211 212 if (exp > 0) { 213 /* if exp is positive, return the result */ 214 return power; 215 } 216 217 /* if exp is negative, return the multiplicative inverse */ 218 numerator = (u64)1 << (fwl << 1); 219 do_div(numerator, power); 220 221 return (u32)numerator; 222 } 223 224 /* 225 * Function to calculate volume gain from TLV data. 226 * This function can only handle gain steps that are multiples of 0.5 dB 227 */ 228 u32 vol_compute_gain(u32 value, int *tlv) 229 { 230 int dB_gain; 231 u32 linear_gain; 232 int f_step; 233 234 /* mute volume */ 235 if (value == 0 && tlv[TLV_MUTE]) 236 return 0; 237 238 /* 239 * compute dB gain from tlv. tlv_step 240 * in topology is multiplied by 100 241 */ 242 dB_gain = tlv[TLV_MIN] + (value * tlv[TLV_STEP]) / 100; 243 244 /* 245 * compute linear gain represented by fixed-point 246 * int with VOLUME_FWL fractional bits 247 */ 248 linear_gain = vol_pow32(VOL_TWENTIETH_ROOT_OF_TEN, dB_gain, VOLUME_FWL); 249 250 /* extract the fractional part of volume step */ 251 f_step = tlv[TLV_STEP] - (tlv[TLV_STEP] / 100); 252 253 /* if volume step is an odd multiple of 0.5 dB */ 254 if (f_step == VOL_HALF_DB_STEP && (value & 1)) 255 linear_gain = vol_shift_64((u64)linear_gain * 256 VOL_FORTIETH_ROOT_OF_TEN, 257 VOLUME_FWL); 258 259 return linear_gain; 260 } 261 262 /* 263 * Set up volume table for kcontrols from tlv data 264 * "size" specifies the number of entries in the table 265 */ 266 static int set_up_volume_table(struct snd_sof_control *scontrol, 267 int tlv[SOF_TLV_ITEMS], int size) 268 { 269 struct snd_soc_component *scomp = scontrol->scomp; 270 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 271 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 272 273 if (tplg_ops && tplg_ops->control && tplg_ops->control->set_up_volume_table) 274 return tplg_ops->control->set_up_volume_table(scontrol, tlv, size); 275 276 dev_err(scomp->dev, "Mandatory op %s not set\n", __func__); 277 return -EINVAL; 278 } 279 280 struct sof_dai_types { 281 const char *name; 282 enum sof_ipc_dai_type type; 283 }; 284 285 static const struct sof_dai_types sof_dais[] = { 286 {"SSP", SOF_DAI_INTEL_SSP}, 287 {"HDA", SOF_DAI_INTEL_HDA}, 288 {"DMIC", SOF_DAI_INTEL_DMIC}, 289 {"ALH", SOF_DAI_INTEL_ALH}, 290 {"SAI", SOF_DAI_IMX_SAI}, 291 {"ESAI", SOF_DAI_IMX_ESAI}, 292 {"ACPBT", SOF_DAI_AMD_BT}, 293 {"ACPSP", SOF_DAI_AMD_SP}, 294 {"ACPDMIC", SOF_DAI_AMD_DMIC}, 295 {"ACPHS", SOF_DAI_AMD_HS}, 296 {"AFE", SOF_DAI_MEDIATEK_AFE}, 297 {"ACPSP_VIRTUAL", SOF_DAI_AMD_SP_VIRTUAL}, 298 {"ACPHS_VIRTUAL", SOF_DAI_AMD_HS_VIRTUAL}, 299 {"MICFIL", SOF_DAI_IMX_MICFIL}, 300 {"ACP_SDW", SOF_DAI_AMD_SDW}, 301 302 }; 303 304 static enum sof_ipc_dai_type find_dai(const char *name) 305 { 306 int i; 307 308 for (i = 0; i < ARRAY_SIZE(sof_dais); i++) { 309 if (strcmp(name, sof_dais[i].name) == 0) 310 return sof_dais[i].type; 311 } 312 313 return SOF_DAI_INTEL_NONE; 314 } 315 316 /* 317 * Supported Frame format types and lookup, add new ones to end of list. 318 */ 319 320 struct sof_frame_types { 321 const char *name; 322 enum sof_ipc_frame frame; 323 }; 324 325 static const struct sof_frame_types sof_frames[] = { 326 {"s16le", SOF_IPC_FRAME_S16_LE}, 327 {"s24le", SOF_IPC_FRAME_S24_4LE}, 328 {"s32le", SOF_IPC_FRAME_S32_LE}, 329 {"float", SOF_IPC_FRAME_FLOAT}, 330 }; 331 332 static enum sof_ipc_frame find_format(const char *name) 333 { 334 int i; 335 336 for (i = 0; i < ARRAY_SIZE(sof_frames); i++) { 337 if (strcmp(name, sof_frames[i].name) == 0) 338 return sof_frames[i].frame; 339 } 340 341 /* use s32le if nothing is specified */ 342 return SOF_IPC_FRAME_S32_LE; 343 } 344 345 int get_token_u32(void *elem, void *object, u32 offset) 346 { 347 struct snd_soc_tplg_vendor_value_elem *velem = elem; 348 u32 *val = (u32 *)((u8 *)object + offset); 349 350 *val = le32_to_cpu(velem->value); 351 return 0; 352 } 353 354 int get_token_u16(void *elem, void *object, u32 offset) 355 { 356 struct snd_soc_tplg_vendor_value_elem *velem = elem; 357 u16 *val = (u16 *)((u8 *)object + offset); 358 359 *val = (u16)le32_to_cpu(velem->value); 360 return 0; 361 } 362 363 int get_token_uuid(void *elem, void *object, u32 offset) 364 { 365 struct snd_soc_tplg_vendor_uuid_elem *velem = elem; 366 u8 *dst = (u8 *)object + offset; 367 368 memcpy(dst, velem->uuid, UUID_SIZE); 369 370 return 0; 371 } 372 373 /* 374 * The string gets from topology will be stored in heap, the owner only 375 * holds a char* member point to the heap. 376 */ 377 int get_token_string(void *elem, void *object, u32 offset) 378 { 379 /* "dst" here points to the char* member of the owner */ 380 char **dst = (char **)((u8 *)object + offset); 381 382 *dst = kstrdup(elem, GFP_KERNEL); 383 if (!*dst) 384 return -ENOMEM; 385 return 0; 386 }; 387 388 int get_token_comp_format(void *elem, void *object, u32 offset) 389 { 390 u32 *val = (u32 *)((u8 *)object + offset); 391 392 *val = find_format((const char *)elem); 393 return 0; 394 } 395 396 int get_token_dai_type(void *elem, void *object, u32 offset) 397 { 398 u32 *val = (u32 *)((u8 *)object + offset); 399 400 *val = find_dai((const char *)elem); 401 return 0; 402 } 403 404 /* PCM */ 405 static const struct sof_topology_token stream_tokens[] = { 406 {SOF_TKN_STREAM_PLAYBACK_COMPATIBLE_D0I3, SND_SOC_TPLG_TUPLE_TYPE_BOOL, get_token_u16, 407 offsetof(struct snd_sof_pcm, stream[0].d0i3_compatible)}, 408 {SOF_TKN_STREAM_CAPTURE_COMPATIBLE_D0I3, SND_SOC_TPLG_TUPLE_TYPE_BOOL, get_token_u16, 409 offsetof(struct snd_sof_pcm, stream[1].d0i3_compatible)}, 410 {SOF_TKN_STREAM_PLAYBACK_PAUSE_SUPPORTED, SND_SOC_TPLG_TUPLE_TYPE_BOOL, get_token_u16, 411 offsetof(struct snd_sof_pcm, stream[0].pause_supported)}, 412 {SOF_TKN_STREAM_CAPTURE_PAUSE_SUPPORTED, SND_SOC_TPLG_TUPLE_TYPE_BOOL, get_token_u16, 413 offsetof(struct snd_sof_pcm, stream[1].pause_supported)}, 414 }; 415 416 /* Leds */ 417 static const struct sof_topology_token led_tokens[] = { 418 {SOF_TKN_MUTE_LED_USE, SND_SOC_TPLG_TUPLE_TYPE_WORD, get_token_u32, 419 offsetof(struct snd_sof_led_control, use_led)}, 420 {SOF_TKN_MUTE_LED_DIRECTION, SND_SOC_TPLG_TUPLE_TYPE_WORD, get_token_u32, 421 offsetof(struct snd_sof_led_control, direction)}, 422 }; 423 424 static const struct sof_topology_token comp_pin_tokens[] = { 425 {SOF_TKN_COMP_NUM_INPUT_PINS, SND_SOC_TPLG_TUPLE_TYPE_WORD, get_token_u32, 426 offsetof(struct snd_sof_widget, num_input_pins)}, 427 {SOF_TKN_COMP_NUM_OUTPUT_PINS, SND_SOC_TPLG_TUPLE_TYPE_WORD, get_token_u32, 428 offsetof(struct snd_sof_widget, num_output_pins)}, 429 }; 430 431 static const struct sof_topology_token comp_input_pin_binding_tokens[] = { 432 {SOF_TKN_COMP_INPUT_PIN_BINDING_WNAME, SND_SOC_TPLG_TUPLE_TYPE_STRING, 433 get_token_string, 0}, 434 }; 435 436 static const struct sof_topology_token comp_output_pin_binding_tokens[] = { 437 {SOF_TKN_COMP_OUTPUT_PIN_BINDING_WNAME, SND_SOC_TPLG_TUPLE_TYPE_STRING, 438 get_token_string, 0}, 439 }; 440 441 /** 442 * sof_parse_uuid_tokens - Parse multiple sets of UUID tokens 443 * @scomp: pointer to soc component 444 * @object: target ipc struct for parsed values 445 * @offset: offset within the object pointer 446 * @tokens: array of struct sof_topology_token containing the tokens to be matched 447 * @num_tokens: number of tokens in tokens array 448 * @array: source pointer to consecutive vendor arrays in topology 449 * 450 * This function parses multiple sets of string type tokens in vendor arrays 451 */ 452 static int sof_parse_uuid_tokens(struct snd_soc_component *scomp, 453 void *object, size_t offset, 454 const struct sof_topology_token *tokens, int num_tokens, 455 struct snd_soc_tplg_vendor_array *array) 456 { 457 struct snd_soc_tplg_vendor_uuid_elem *elem; 458 int found = 0; 459 int i, j; 460 461 /* parse element by element */ 462 for (i = 0; i < le32_to_cpu(array->num_elems); i++) { 463 elem = &array->uuid[i]; 464 465 /* search for token */ 466 for (j = 0; j < num_tokens; j++) { 467 /* match token type */ 468 if (tokens[j].type != SND_SOC_TPLG_TUPLE_TYPE_UUID) 469 continue; 470 471 /* match token id */ 472 if (tokens[j].token != le32_to_cpu(elem->token)) 473 continue; 474 475 /* matched - now load token */ 476 tokens[j].get_token(elem, object, 477 offset + tokens[j].offset); 478 479 found++; 480 } 481 } 482 483 return found; 484 } 485 486 /** 487 * sof_copy_tuples - Parse tokens and copy them to the @tuples array 488 * @sdev: pointer to struct snd_sof_dev 489 * @array: source pointer to consecutive vendor arrays in topology 490 * @array_size: size of @array 491 * @token_id: Token ID associated with a token array 492 * @token_instance_num: number of times the same @token_id needs to be parsed i.e. the function 493 * looks for @token_instance_num of each token in the token array associated 494 * with the @token_id 495 * @tuples: tuples array to copy the matched tuples to 496 * @tuples_size: size of @tuples 497 * @num_copied_tuples: pointer to the number of copied tuples in the tuples array 498 * 499 */ 500 static int sof_copy_tuples(struct snd_sof_dev *sdev, struct snd_soc_tplg_vendor_array *array, 501 int array_size, u32 token_id, int token_instance_num, 502 struct snd_sof_tuple *tuples, int tuples_size, int *num_copied_tuples) 503 { 504 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 505 const struct sof_token_info *token_list; 506 const struct sof_topology_token *tokens; 507 int found = 0; 508 int num_tokens, asize; 509 int i, j; 510 511 token_list = tplg_ops ? tplg_ops->token_list : NULL; 512 /* nothing to do if token_list is NULL */ 513 if (!token_list) 514 return 0; 515 516 if (!tuples || !num_copied_tuples) { 517 dev_err(sdev->dev, "Invalid tuples array\n"); 518 return -EINVAL; 519 } 520 521 tokens = token_list[token_id].tokens; 522 num_tokens = token_list[token_id].count; 523 524 if (!tokens) { 525 dev_err(sdev->dev, "No token array defined for token ID: %d\n", token_id); 526 return -EINVAL; 527 } 528 529 /* check if there's space in the tuples array for new tokens */ 530 if (*num_copied_tuples >= tuples_size) { 531 dev_err(sdev->dev, "No space in tuples array for new tokens from %s", 532 token_list[token_id].name); 533 return -EINVAL; 534 } 535 536 while (array_size > 0 && found < num_tokens * token_instance_num) { 537 asize = le32_to_cpu(array->size); 538 539 /* validate asize */ 540 if (asize < 0) { 541 dev_err(sdev->dev, "Invalid array size 0x%x\n", asize); 542 return -EINVAL; 543 } 544 545 /* make sure there is enough data before parsing */ 546 array_size -= asize; 547 if (array_size < 0) { 548 dev_err(sdev->dev, "Invalid array size 0x%x\n", asize); 549 return -EINVAL; 550 } 551 552 /* parse element by element */ 553 for (i = 0; i < le32_to_cpu(array->num_elems); i++) { 554 /* search for token */ 555 for (j = 0; j < num_tokens; j++) { 556 /* match token type */ 557 if (!(tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_WORD || 558 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_SHORT || 559 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_BYTE || 560 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_BOOL || 561 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_STRING)) 562 continue; 563 564 if (tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_STRING) { 565 struct snd_soc_tplg_vendor_string_elem *elem; 566 567 elem = &array->string[i]; 568 569 /* match token id */ 570 if (tokens[j].token != le32_to_cpu(elem->token)) 571 continue; 572 573 tuples[*num_copied_tuples].token = tokens[j].token; 574 tuples[*num_copied_tuples].value.s = elem->string; 575 } else { 576 struct snd_soc_tplg_vendor_value_elem *elem; 577 578 elem = &array->value[i]; 579 580 /* match token id */ 581 if (tokens[j].token != le32_to_cpu(elem->token)) 582 continue; 583 584 tuples[*num_copied_tuples].token = tokens[j].token; 585 tuples[*num_copied_tuples].value.v = 586 le32_to_cpu(elem->value); 587 } 588 found++; 589 (*num_copied_tuples)++; 590 591 /* stop if there's no space for any more new tuples */ 592 if (*num_copied_tuples == tuples_size) 593 return 0; 594 } 595 596 /* stop when we've found the required token instances */ 597 if (found == num_tokens * token_instance_num) 598 return 0; 599 } 600 601 /* next array */ 602 array = (struct snd_soc_tplg_vendor_array *)((u8 *)array + asize); 603 } 604 605 return 0; 606 } 607 608 /** 609 * sof_parse_string_tokens - Parse multiple sets of tokens 610 * @scomp: pointer to soc component 611 * @object: target ipc struct for parsed values 612 * @offset: offset within the object pointer 613 * @tokens: array of struct sof_topology_token containing the tokens to be matched 614 * @num_tokens: number of tokens in tokens array 615 * @array: source pointer to consecutive vendor arrays in topology 616 * 617 * This function parses multiple sets of string type tokens in vendor arrays 618 */ 619 static int sof_parse_string_tokens(struct snd_soc_component *scomp, 620 void *object, int offset, 621 const struct sof_topology_token *tokens, int num_tokens, 622 struct snd_soc_tplg_vendor_array *array) 623 { 624 struct snd_soc_tplg_vendor_string_elem *elem; 625 int found = 0; 626 int i, j, ret; 627 628 /* parse element by element */ 629 for (i = 0; i < le32_to_cpu(array->num_elems); i++) { 630 elem = &array->string[i]; 631 632 /* search for token */ 633 for (j = 0; j < num_tokens; j++) { 634 /* match token type */ 635 if (tokens[j].type != SND_SOC_TPLG_TUPLE_TYPE_STRING) 636 continue; 637 638 /* match token id */ 639 if (tokens[j].token != le32_to_cpu(elem->token)) 640 continue; 641 642 /* matched - now load token */ 643 ret = tokens[j].get_token(elem->string, object, offset + tokens[j].offset); 644 if (ret < 0) 645 return ret; 646 647 found++; 648 } 649 } 650 651 return found; 652 } 653 654 /** 655 * sof_parse_word_tokens - Parse multiple sets of tokens 656 * @scomp: pointer to soc component 657 * @object: target ipc struct for parsed values 658 * @offset: offset within the object pointer 659 * @tokens: array of struct sof_topology_token containing the tokens to be matched 660 * @num_tokens: number of tokens in tokens array 661 * @array: source pointer to consecutive vendor arrays in topology 662 * 663 * This function parses multiple sets of word type tokens in vendor arrays 664 */ 665 static int sof_parse_word_tokens(struct snd_soc_component *scomp, 666 void *object, int offset, 667 const struct sof_topology_token *tokens, int num_tokens, 668 struct snd_soc_tplg_vendor_array *array) 669 { 670 struct snd_soc_tplg_vendor_value_elem *elem; 671 int found = 0; 672 int i, j; 673 674 /* parse element by element */ 675 for (i = 0; i < le32_to_cpu(array->num_elems); i++) { 676 elem = &array->value[i]; 677 678 /* search for token */ 679 for (j = 0; j < num_tokens; j++) { 680 /* match token type */ 681 if (!(tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_WORD || 682 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_SHORT || 683 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_BYTE || 684 tokens[j].type == SND_SOC_TPLG_TUPLE_TYPE_BOOL)) 685 continue; 686 687 /* match token id */ 688 if (tokens[j].token != le32_to_cpu(elem->token)) 689 continue; 690 691 /* load token */ 692 tokens[j].get_token(elem, object, offset + tokens[j].offset); 693 694 found++; 695 } 696 } 697 698 return found; 699 } 700 701 /** 702 * sof_parse_token_sets - Parse multiple sets of tokens 703 * @scomp: pointer to soc component 704 * @object: target ipc struct for parsed values 705 * @tokens: token definition array describing what tokens to parse 706 * @count: number of tokens in definition array 707 * @array: source pointer to consecutive vendor arrays in topology 708 * @array_size: total size of @array 709 * @token_instance_num: number of times the same tokens needs to be parsed i.e. the function 710 * looks for @token_instance_num of each token in the @tokens 711 * @object_size: offset to next target ipc struct with multiple sets 712 * 713 * This function parses multiple sets of tokens in vendor arrays into 714 * consecutive ipc structs. 715 */ 716 static int sof_parse_token_sets(struct snd_soc_component *scomp, 717 void *object, const struct sof_topology_token *tokens, 718 int count, struct snd_soc_tplg_vendor_array *array, 719 int array_size, int token_instance_num, size_t object_size) 720 { 721 size_t offset = 0; 722 int found = 0; 723 int total = 0; 724 int asize; 725 int ret; 726 727 while (array_size > 0 && total < count * token_instance_num) { 728 asize = le32_to_cpu(array->size); 729 730 /* validate asize */ 731 if (asize < 0) { /* FIXME: A zero-size array makes no sense */ 732 dev_err(scomp->dev, "error: invalid array size 0x%x\n", 733 asize); 734 return -EINVAL; 735 } 736 737 /* make sure there is enough data before parsing */ 738 array_size -= asize; 739 if (array_size < 0) { 740 dev_err(scomp->dev, "error: invalid array size 0x%x\n", 741 asize); 742 return -EINVAL; 743 } 744 745 /* call correct parser depending on type */ 746 switch (le32_to_cpu(array->type)) { 747 case SND_SOC_TPLG_TUPLE_TYPE_UUID: 748 found += sof_parse_uuid_tokens(scomp, object, offset, tokens, count, 749 array); 750 break; 751 case SND_SOC_TPLG_TUPLE_TYPE_STRING: 752 753 ret = sof_parse_string_tokens(scomp, object, offset, tokens, count, 754 array); 755 if (ret < 0) { 756 dev_err(scomp->dev, "error: no memory to copy string token\n"); 757 return ret; 758 } 759 760 found += ret; 761 break; 762 case SND_SOC_TPLG_TUPLE_TYPE_BOOL: 763 case SND_SOC_TPLG_TUPLE_TYPE_BYTE: 764 case SND_SOC_TPLG_TUPLE_TYPE_WORD: 765 case SND_SOC_TPLG_TUPLE_TYPE_SHORT: 766 found += sof_parse_word_tokens(scomp, object, offset, tokens, count, 767 array); 768 break; 769 default: 770 dev_err(scomp->dev, "error: unknown token type %d\n", 771 array->type); 772 return -EINVAL; 773 } 774 775 /* next array */ 776 array = (struct snd_soc_tplg_vendor_array *)((u8 *)array 777 + asize); 778 779 /* move to next target struct */ 780 if (found >= count) { 781 offset += object_size; 782 total += found; 783 found = 0; 784 } 785 } 786 787 return 0; 788 } 789 790 /** 791 * sof_parse_tokens - Parse one set of tokens 792 * @scomp: pointer to soc component 793 * @object: target ipc struct for parsed values 794 * @tokens: token definition array describing what tokens to parse 795 * @num_tokens: number of tokens in definition array 796 * @array: source pointer to consecutive vendor arrays in topology 797 * @array_size: total size of @array 798 * 799 * This function parses a single set of tokens in vendor arrays into 800 * consecutive ipc structs. 801 */ 802 static int sof_parse_tokens(struct snd_soc_component *scomp, void *object, 803 const struct sof_topology_token *tokens, int num_tokens, 804 struct snd_soc_tplg_vendor_array *array, 805 int array_size) 806 807 { 808 /* 809 * sof_parse_tokens is used when topology contains only a single set of 810 * identical tuples arrays. So additional parameters to 811 * sof_parse_token_sets are sets = 1 (only 1 set) and 812 * object_size = 0 (irrelevant). 813 */ 814 return sof_parse_token_sets(scomp, object, tokens, num_tokens, array, 815 array_size, 1, 0); 816 } 817 818 /* 819 * Standard Kcontrols. 820 */ 821 822 static int sof_control_load_volume(struct snd_soc_component *scomp, 823 struct snd_sof_control *scontrol, 824 struct snd_kcontrol_new *kc, 825 struct snd_soc_tplg_ctl_hdr *hdr) 826 { 827 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 828 struct snd_soc_tplg_mixer_control *mc = 829 container_of(hdr, struct snd_soc_tplg_mixer_control, hdr); 830 int tlv[SOF_TLV_ITEMS]; 831 unsigned int mask; 832 int ret; 833 834 /* validate topology data */ 835 if (le32_to_cpu(mc->num_channels) > SND_SOC_TPLG_MAX_CHAN) 836 return -EINVAL; 837 838 /* 839 * If control has more than 2 channels we need to override the info. This is because even if 840 * ASoC layer has defined topology's max channel count to SND_SOC_TPLG_MAX_CHAN = 8, the 841 * pre-defined dapm control types (and related functions) creating the actual control 842 * restrict the channels only to mono or stereo. 843 */ 844 if (le32_to_cpu(mc->num_channels) > 2) 845 kc->info = snd_sof_volume_info; 846 847 scontrol->comp_id = sdev->next_comp_id; 848 scontrol->min_volume_step = le32_to_cpu(mc->min); 849 scontrol->max_volume_step = le32_to_cpu(mc->max); 850 scontrol->num_channels = le32_to_cpu(mc->num_channels); 851 852 scontrol->max = le32_to_cpu(mc->max); 853 if (le32_to_cpu(mc->max) == 1) 854 goto skip; 855 856 /* extract tlv data */ 857 if (!kc->tlv.p || get_tlv_data(kc->tlv.p, tlv) < 0) { 858 dev_err(scomp->dev, "error: invalid TLV data\n"); 859 return -EINVAL; 860 } 861 862 /* set up volume table */ 863 ret = set_up_volume_table(scontrol, tlv, le32_to_cpu(mc->max) + 1); 864 if (ret < 0) { 865 dev_err(scomp->dev, "error: setting up volume table\n"); 866 return ret; 867 } 868 869 skip: 870 /* set up possible led control from mixer private data */ 871 ret = sof_parse_tokens(scomp, &scontrol->led_ctl, led_tokens, 872 ARRAY_SIZE(led_tokens), mc->priv.array, 873 le32_to_cpu(mc->priv.size)); 874 if (ret != 0) { 875 dev_err(scomp->dev, "error: parse led tokens failed %d\n", 876 le32_to_cpu(mc->priv.size)); 877 goto err; 878 } 879 880 if (scontrol->led_ctl.use_led) { 881 mask = scontrol->led_ctl.direction ? SNDRV_CTL_ELEM_ACCESS_MIC_LED : 882 SNDRV_CTL_ELEM_ACCESS_SPK_LED; 883 scontrol->access &= ~SNDRV_CTL_ELEM_ACCESS_LED_MASK; 884 scontrol->access |= mask; 885 kc->access &= ~SNDRV_CTL_ELEM_ACCESS_LED_MASK; 886 kc->access |= mask; 887 sdev->led_present = true; 888 } 889 890 dev_dbg(scomp->dev, "tplg: load kcontrol index %d chans %d\n", 891 scontrol->comp_id, scontrol->num_channels); 892 893 return 0; 894 895 err: 896 if (le32_to_cpu(mc->max) > 1) 897 kfree(scontrol->volume_table); 898 899 return ret; 900 } 901 902 static int sof_control_load_enum(struct snd_soc_component *scomp, 903 struct snd_sof_control *scontrol, 904 struct snd_kcontrol_new *kc, 905 struct snd_soc_tplg_ctl_hdr *hdr) 906 { 907 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 908 struct snd_soc_tplg_enum_control *ec = 909 container_of(hdr, struct snd_soc_tplg_enum_control, hdr); 910 911 /* validate topology data */ 912 if (le32_to_cpu(ec->num_channels) > SND_SOC_TPLG_MAX_CHAN) 913 return -EINVAL; 914 915 scontrol->comp_id = sdev->next_comp_id; 916 scontrol->num_channels = le32_to_cpu(ec->num_channels); 917 918 dev_dbg(scomp->dev, "tplg: load kcontrol index %d chans %d comp_id %d\n", 919 scontrol->comp_id, scontrol->num_channels, scontrol->comp_id); 920 921 return 0; 922 } 923 924 static int sof_control_load_bytes(struct snd_soc_component *scomp, 925 struct snd_sof_control *scontrol, 926 struct snd_kcontrol_new *kc, 927 struct snd_soc_tplg_ctl_hdr *hdr) 928 { 929 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 930 struct snd_soc_tplg_bytes_control *control = 931 container_of(hdr, struct snd_soc_tplg_bytes_control, hdr); 932 struct soc_bytes_ext *sbe = (struct soc_bytes_ext *)kc->private_value; 933 size_t priv_size = le32_to_cpu(control->priv.size); 934 935 scontrol->max_size = sbe->max; 936 scontrol->comp_id = sdev->next_comp_id; 937 938 dev_dbg(scomp->dev, "tplg: load kcontrol index %d\n", scontrol->comp_id); 939 940 /* copy the private data */ 941 if (priv_size > 0) { 942 scontrol->priv = kmemdup(control->priv.data, priv_size, GFP_KERNEL); 943 if (!scontrol->priv) 944 return -ENOMEM; 945 946 scontrol->priv_size = priv_size; 947 } 948 949 return 0; 950 } 951 952 /* external kcontrol init - used for any driver specific init */ 953 static int sof_control_load(struct snd_soc_component *scomp, int index, 954 struct snd_kcontrol_new *kc, 955 struct snd_soc_tplg_ctl_hdr *hdr) 956 { 957 struct soc_mixer_control *sm; 958 struct soc_bytes_ext *sbe; 959 struct soc_enum *se; 960 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 961 struct snd_soc_dobj *dobj; 962 struct snd_sof_control *scontrol; 963 int ret; 964 965 dev_dbg(scomp->dev, "tplg: load control type %d name : %s\n", 966 hdr->type, hdr->name); 967 968 scontrol = kzalloc(sizeof(*scontrol), GFP_KERNEL); 969 if (!scontrol) 970 return -ENOMEM; 971 972 scontrol->name = kstrdup(hdr->name, GFP_KERNEL); 973 if (!scontrol->name) { 974 kfree(scontrol); 975 return -ENOMEM; 976 } 977 978 scontrol->scomp = scomp; 979 scontrol->access = kc->access; 980 scontrol->info_type = le32_to_cpu(hdr->ops.info); 981 scontrol->index = kc->index; 982 983 switch (le32_to_cpu(hdr->ops.info)) { 984 case SND_SOC_TPLG_CTL_VOLSW: 985 case SND_SOC_TPLG_CTL_VOLSW_SX: 986 case SND_SOC_TPLG_CTL_VOLSW_XR_SX: 987 sm = (struct soc_mixer_control *)kc->private_value; 988 dobj = &sm->dobj; 989 ret = sof_control_load_volume(scomp, scontrol, kc, hdr); 990 break; 991 case SND_SOC_TPLG_CTL_BYTES: 992 sbe = (struct soc_bytes_ext *)kc->private_value; 993 dobj = &sbe->dobj; 994 ret = sof_control_load_bytes(scomp, scontrol, kc, hdr); 995 break; 996 case SND_SOC_TPLG_CTL_ENUM: 997 case SND_SOC_TPLG_CTL_ENUM_VALUE: 998 se = (struct soc_enum *)kc->private_value; 999 dobj = &se->dobj; 1000 ret = sof_control_load_enum(scomp, scontrol, kc, hdr); 1001 break; 1002 case SND_SOC_TPLG_CTL_RANGE: 1003 case SND_SOC_TPLG_CTL_STROBE: 1004 case SND_SOC_TPLG_DAPM_CTL_VOLSW: 1005 case SND_SOC_TPLG_DAPM_CTL_ENUM_DOUBLE: 1006 case SND_SOC_TPLG_DAPM_CTL_ENUM_VIRT: 1007 case SND_SOC_TPLG_DAPM_CTL_ENUM_VALUE: 1008 case SND_SOC_TPLG_DAPM_CTL_PIN: 1009 default: 1010 dev_warn(scomp->dev, "control type not supported %d:%d:%d\n", 1011 hdr->ops.get, hdr->ops.put, hdr->ops.info); 1012 kfree(scontrol->name); 1013 kfree(scontrol); 1014 return 0; 1015 } 1016 1017 if (ret < 0) { 1018 kfree(scontrol->name); 1019 kfree(scontrol); 1020 return ret; 1021 } 1022 1023 scontrol->led_ctl.led_value = -1; 1024 1025 dobj->private = scontrol; 1026 list_add(&scontrol->list, &sdev->kcontrol_list); 1027 return 0; 1028 } 1029 1030 static int sof_control_unload(struct snd_soc_component *scomp, 1031 struct snd_soc_dobj *dobj) 1032 { 1033 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1034 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 1035 struct snd_sof_control *scontrol = dobj->private; 1036 int ret = 0; 1037 1038 dev_dbg(scomp->dev, "tplg: unload control name : %s\n", scontrol->name); 1039 1040 if (tplg_ops && tplg_ops->control_free) { 1041 ret = tplg_ops->control_free(sdev, scontrol); 1042 if (ret < 0) 1043 dev_err(scomp->dev, "failed to free control: %s\n", scontrol->name); 1044 } 1045 1046 /* free all data before returning in case of error too */ 1047 kfree(scontrol->ipc_control_data); 1048 kfree(scontrol->priv); 1049 kfree(scontrol->name); 1050 list_del(&scontrol->list); 1051 kfree(scontrol); 1052 1053 return ret; 1054 } 1055 1056 /* 1057 * DAI Topology 1058 */ 1059 1060 static int sof_connect_dai_widget(struct snd_soc_component *scomp, 1061 struct snd_soc_dapm_widget *w, 1062 struct snd_soc_tplg_dapm_widget *tw, 1063 struct snd_sof_dai *dai) 1064 { 1065 struct snd_soc_card *card = scomp->card; 1066 struct snd_soc_pcm_runtime *rtd; 1067 struct snd_soc_dai *cpu_dai; 1068 int stream; 1069 int i; 1070 1071 if (!w->sname) { 1072 dev_err(scomp->dev, "Widget %s does not have stream\n", w->name); 1073 return -EINVAL; 1074 } 1075 1076 if (w->id == snd_soc_dapm_dai_out) 1077 stream = SNDRV_PCM_STREAM_CAPTURE; 1078 else if (w->id == snd_soc_dapm_dai_in) 1079 stream = SNDRV_PCM_STREAM_PLAYBACK; 1080 else 1081 goto end; 1082 1083 list_for_each_entry(rtd, &card->rtd_list, list) { 1084 /* does stream match DAI link ? */ 1085 if (!rtd->dai_link->stream_name || 1086 !strstr(rtd->dai_link->stream_name, w->sname)) 1087 continue; 1088 1089 for_each_rtd_cpu_dais(rtd, i, cpu_dai) { 1090 /* 1091 * Please create DAI widget in the right order 1092 * to ensure BE will connect to the right DAI 1093 * widget. 1094 */ 1095 if (!snd_soc_dai_get_widget(cpu_dai, stream)) { 1096 snd_soc_dai_set_widget(cpu_dai, stream, w); 1097 break; 1098 } 1099 } 1100 if (i == rtd->dai_link->num_cpus) { 1101 dev_err(scomp->dev, "error: can't find BE for DAI %s\n", w->name); 1102 1103 return -EINVAL; 1104 } 1105 1106 dai->name = rtd->dai_link->name; 1107 dev_dbg(scomp->dev, "tplg: connected widget %s -> DAI link %s\n", 1108 w->name, rtd->dai_link->name); 1109 } 1110 end: 1111 /* check we have a connection */ 1112 if (!dai->name) { 1113 dev_err(scomp->dev, "error: can't connect DAI %s stream %s\n", 1114 w->name, w->sname); 1115 return -EINVAL; 1116 } 1117 1118 return 0; 1119 } 1120 1121 static void sof_disconnect_dai_widget(struct snd_soc_component *scomp, 1122 struct snd_soc_dapm_widget *w) 1123 { 1124 struct snd_soc_card *card = scomp->card; 1125 struct snd_soc_pcm_runtime *rtd; 1126 const char *sname = w->sname; 1127 struct snd_soc_dai *cpu_dai; 1128 int i, stream; 1129 1130 if (!sname) 1131 return; 1132 1133 if (w->id == snd_soc_dapm_dai_out) 1134 stream = SNDRV_PCM_STREAM_CAPTURE; 1135 else if (w->id == snd_soc_dapm_dai_in) 1136 stream = SNDRV_PCM_STREAM_PLAYBACK; 1137 else 1138 return; 1139 1140 list_for_each_entry(rtd, &card->rtd_list, list) { 1141 /* does stream match DAI link ? */ 1142 if (!rtd->dai_link->stream_name || 1143 !strstr(rtd->dai_link->stream_name, sname)) 1144 continue; 1145 1146 for_each_rtd_cpu_dais(rtd, i, cpu_dai) 1147 if (snd_soc_dai_get_widget(cpu_dai, stream) == w) { 1148 snd_soc_dai_set_widget(cpu_dai, stream, NULL); 1149 break; 1150 } 1151 } 1152 } 1153 1154 /* bind PCM ID to host component ID */ 1155 static int spcm_bind(struct snd_soc_component *scomp, struct snd_sof_pcm *spcm, 1156 int dir) 1157 { 1158 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1159 struct snd_sof_widget *host_widget; 1160 1161 if (sdev->dspless_mode_selected) 1162 return 0; 1163 1164 host_widget = snd_sof_find_swidget_sname(scomp, 1165 spcm->pcm.caps[dir].name, 1166 dir); 1167 if (!host_widget) { 1168 dev_err(scomp->dev, "can't find host comp to bind pcm\n"); 1169 return -EINVAL; 1170 } 1171 1172 spcm->stream[dir].comp_id = host_widget->comp_id; 1173 1174 return 0; 1175 } 1176 1177 static int sof_get_token_value(u32 token_id, struct snd_sof_tuple *tuples, int num_tuples) 1178 { 1179 int i; 1180 1181 if (!tuples) 1182 return -EINVAL; 1183 1184 for (i = 0; i < num_tuples; i++) { 1185 if (tuples[i].token == token_id) 1186 return tuples[i].value.v; 1187 } 1188 1189 return -EINVAL; 1190 } 1191 1192 static int sof_widget_parse_tokens(struct snd_soc_component *scomp, struct snd_sof_widget *swidget, 1193 struct snd_soc_tplg_dapm_widget *tw, 1194 enum sof_tokens *object_token_list, int count) 1195 { 1196 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1197 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 1198 struct snd_soc_tplg_private *private = &tw->priv; 1199 const struct sof_token_info *token_list; 1200 int num_tuples = 0; 1201 int ret, i; 1202 1203 token_list = tplg_ops ? tplg_ops->token_list : NULL; 1204 /* nothing to do if token_list is NULL */ 1205 if (!token_list) 1206 return 0; 1207 1208 if (count > 0 && !object_token_list) { 1209 dev_err(scomp->dev, "No token list for widget %s\n", swidget->widget->name); 1210 return -EINVAL; 1211 } 1212 1213 /* calculate max size of tuples array */ 1214 for (i = 0; i < count; i++) 1215 num_tuples += token_list[object_token_list[i]].count; 1216 1217 /* allocate memory for tuples array */ 1218 swidget->tuples = kcalloc(num_tuples, sizeof(*swidget->tuples), GFP_KERNEL); 1219 if (!swidget->tuples) 1220 return -ENOMEM; 1221 1222 /* parse token list for widget */ 1223 for (i = 0; i < count; i++) { 1224 int num_sets = 1; 1225 1226 if (object_token_list[i] >= SOF_TOKEN_COUNT) { 1227 dev_err(scomp->dev, "Invalid token id %d for widget %s\n", 1228 object_token_list[i], swidget->widget->name); 1229 ret = -EINVAL; 1230 goto err; 1231 } 1232 1233 switch (object_token_list[i]) { 1234 case SOF_COMP_EXT_TOKENS: 1235 /* parse and save UUID in swidget */ 1236 ret = sof_parse_tokens(scomp, swidget, 1237 token_list[object_token_list[i]].tokens, 1238 token_list[object_token_list[i]].count, 1239 private->array, le32_to_cpu(private->size)); 1240 if (ret < 0) { 1241 dev_err(scomp->dev, "Failed parsing %s for widget %s\n", 1242 token_list[object_token_list[i]].name, 1243 swidget->widget->name); 1244 goto err; 1245 } 1246 1247 continue; 1248 case SOF_IN_AUDIO_FORMAT_TOKENS: 1249 num_sets = sof_get_token_value(SOF_TKN_COMP_NUM_INPUT_AUDIO_FORMATS, 1250 swidget->tuples, swidget->num_tuples); 1251 if (num_sets < 0) { 1252 dev_err(sdev->dev, "Invalid input audio format count for %s\n", 1253 swidget->widget->name); 1254 ret = num_sets; 1255 goto err; 1256 } 1257 break; 1258 case SOF_OUT_AUDIO_FORMAT_TOKENS: 1259 num_sets = sof_get_token_value(SOF_TKN_COMP_NUM_OUTPUT_AUDIO_FORMATS, 1260 swidget->tuples, swidget->num_tuples); 1261 if (num_sets < 0) { 1262 dev_err(sdev->dev, "Invalid output audio format count for %s\n", 1263 swidget->widget->name); 1264 ret = num_sets; 1265 goto err; 1266 } 1267 break; 1268 default: 1269 break; 1270 } 1271 1272 if (num_sets > 1) { 1273 struct snd_sof_tuple *new_tuples; 1274 1275 num_tuples += token_list[object_token_list[i]].count * (num_sets - 1); 1276 new_tuples = krealloc(swidget->tuples, 1277 sizeof(*new_tuples) * num_tuples, GFP_KERNEL); 1278 if (!new_tuples) { 1279 ret = -ENOMEM; 1280 goto err; 1281 } 1282 1283 swidget->tuples = new_tuples; 1284 } 1285 1286 /* copy one set of tuples per token ID into swidget->tuples */ 1287 ret = sof_copy_tuples(sdev, private->array, le32_to_cpu(private->size), 1288 object_token_list[i], num_sets, swidget->tuples, 1289 num_tuples, &swidget->num_tuples); 1290 if (ret < 0) { 1291 dev_err(scomp->dev, "Failed parsing %s for widget %s err: %d\n", 1292 token_list[object_token_list[i]].name, swidget->widget->name, ret); 1293 goto err; 1294 } 1295 } 1296 1297 return 0; 1298 err: 1299 kfree(swidget->tuples); 1300 return ret; 1301 } 1302 1303 static void sof_free_pin_binding(struct snd_sof_widget *swidget, 1304 bool pin_type) 1305 { 1306 char **pin_binding; 1307 u32 num_pins; 1308 int i; 1309 1310 if (pin_type == SOF_PIN_TYPE_INPUT) { 1311 pin_binding = swidget->input_pin_binding; 1312 num_pins = swidget->num_input_pins; 1313 } else { 1314 pin_binding = swidget->output_pin_binding; 1315 num_pins = swidget->num_output_pins; 1316 } 1317 1318 if (pin_binding) { 1319 for (i = 0; i < num_pins; i++) 1320 kfree(pin_binding[i]); 1321 } 1322 1323 kfree(pin_binding); 1324 } 1325 1326 static int sof_parse_pin_binding(struct snd_sof_widget *swidget, 1327 struct snd_soc_tplg_private *priv, bool pin_type) 1328 { 1329 const struct sof_topology_token *pin_binding_token; 1330 char *pin_binding[SOF_WIDGET_MAX_NUM_PINS]; 1331 int token_count; 1332 u32 num_pins; 1333 char **pb; 1334 int ret; 1335 int i; 1336 1337 if (pin_type == SOF_PIN_TYPE_INPUT) { 1338 num_pins = swidget->num_input_pins; 1339 pin_binding_token = comp_input_pin_binding_tokens; 1340 token_count = ARRAY_SIZE(comp_input_pin_binding_tokens); 1341 } else { 1342 num_pins = swidget->num_output_pins; 1343 pin_binding_token = comp_output_pin_binding_tokens; 1344 token_count = ARRAY_SIZE(comp_output_pin_binding_tokens); 1345 } 1346 1347 memset(pin_binding, 0, SOF_WIDGET_MAX_NUM_PINS * sizeof(char *)); 1348 ret = sof_parse_token_sets(swidget->scomp, pin_binding, pin_binding_token, 1349 token_count, priv->array, le32_to_cpu(priv->size), 1350 num_pins, sizeof(char *)); 1351 if (ret < 0) 1352 goto err; 1353 1354 /* copy pin binding array to swidget only if it is defined in topology */ 1355 if (pin_binding[0]) { 1356 pb = kmemdup_array(pin_binding, num_pins, sizeof(char *), GFP_KERNEL); 1357 if (!pb) { 1358 ret = -ENOMEM; 1359 goto err; 1360 } 1361 if (pin_type == SOF_PIN_TYPE_INPUT) 1362 swidget->input_pin_binding = pb; 1363 else 1364 swidget->output_pin_binding = pb; 1365 } 1366 1367 return 0; 1368 1369 err: 1370 for (i = 0; i < num_pins; i++) 1371 kfree(pin_binding[i]); 1372 1373 return ret; 1374 } 1375 1376 static int get_w_no_wname_in_long_name(void *elem, void *object, u32 offset) 1377 { 1378 struct snd_soc_tplg_vendor_value_elem *velem = elem; 1379 struct snd_soc_dapm_widget *w = object; 1380 1381 w->no_wname_in_kcontrol_name = !!le32_to_cpu(velem->value); 1382 return 0; 1383 } 1384 1385 static const struct sof_topology_token dapm_widget_tokens[] = { 1386 {SOF_TKN_COMP_NO_WNAME_IN_KCONTROL_NAME, SND_SOC_TPLG_TUPLE_TYPE_BOOL, 1387 get_w_no_wname_in_long_name, 0} 1388 }; 1389 1390 /* external widget init - used for any driver specific init */ 1391 static int sof_widget_ready(struct snd_soc_component *scomp, int index, 1392 struct snd_soc_dapm_widget *w, 1393 struct snd_soc_tplg_dapm_widget *tw) 1394 { 1395 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1396 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 1397 const struct sof_ipc_tplg_widget_ops *widget_ops; 1398 struct snd_soc_tplg_private *priv = &tw->priv; 1399 enum sof_tokens *token_list = NULL; 1400 struct snd_sof_widget *swidget; 1401 struct snd_sof_dai *dai; 1402 int token_list_size = 0; 1403 int ret = 0; 1404 1405 swidget = kzalloc(sizeof(*swidget), GFP_KERNEL); 1406 if (!swidget) 1407 return -ENOMEM; 1408 1409 swidget->scomp = scomp; 1410 swidget->widget = w; 1411 swidget->comp_id = sdev->next_comp_id++; 1412 swidget->id = w->id; 1413 swidget->pipeline_id = index; 1414 swidget->private = NULL; 1415 mutex_init(&swidget->setup_mutex); 1416 1417 ida_init(&swidget->output_queue_ida); 1418 ida_init(&swidget->input_queue_ida); 1419 1420 ret = sof_parse_tokens(scomp, w, dapm_widget_tokens, ARRAY_SIZE(dapm_widget_tokens), 1421 priv->array, le32_to_cpu(priv->size)); 1422 if (ret < 0) { 1423 dev_err(scomp->dev, "failed to parse dapm widget tokens for %s\n", 1424 w->name); 1425 goto widget_free; 1426 } 1427 1428 ret = sof_parse_tokens(scomp, swidget, comp_pin_tokens, 1429 ARRAY_SIZE(comp_pin_tokens), priv->array, 1430 le32_to_cpu(priv->size)); 1431 if (ret < 0) { 1432 dev_err(scomp->dev, "failed to parse component pin tokens for %s\n", 1433 w->name); 1434 goto widget_free; 1435 } 1436 1437 if (swidget->num_input_pins > SOF_WIDGET_MAX_NUM_PINS || 1438 swidget->num_output_pins > SOF_WIDGET_MAX_NUM_PINS) { 1439 dev_err(scomp->dev, "invalid pins for %s: [input: %d, output: %d]\n", 1440 swidget->widget->name, swidget->num_input_pins, swidget->num_output_pins); 1441 ret = -EINVAL; 1442 goto widget_free; 1443 } 1444 1445 if (swidget->num_input_pins > 1) { 1446 ret = sof_parse_pin_binding(swidget, priv, SOF_PIN_TYPE_INPUT); 1447 /* on parsing error, pin binding is not allocated, nothing to free. */ 1448 if (ret < 0) { 1449 dev_err(scomp->dev, "failed to parse input pin binding for %s\n", 1450 w->name); 1451 goto widget_free; 1452 } 1453 } 1454 1455 if (swidget->num_output_pins > 1) { 1456 ret = sof_parse_pin_binding(swidget, priv, SOF_PIN_TYPE_OUTPUT); 1457 /* on parsing error, pin binding is not allocated, nothing to free. */ 1458 if (ret < 0) { 1459 dev_err(scomp->dev, "failed to parse output pin binding for %s\n", 1460 w->name); 1461 goto widget_free; 1462 } 1463 } 1464 1465 dev_dbg(scomp->dev, 1466 "tplg: widget %d (%s) is ready [type: %d, pipe: %d, pins: %d / %d, stream: %s]\n", 1467 swidget->comp_id, w->name, swidget->id, index, 1468 swidget->num_input_pins, swidget->num_output_pins, 1469 strnlen(w->sname, SNDRV_CTL_ELEM_ID_NAME_MAXLEN) > 0 ? w->sname : "none"); 1470 1471 widget_ops = tplg_ops ? tplg_ops->widget : NULL; 1472 if (widget_ops) { 1473 token_list = widget_ops[w->id].token_list; 1474 token_list_size = widget_ops[w->id].token_list_size; 1475 } 1476 1477 /* handle any special case widgets */ 1478 switch (w->id) { 1479 case snd_soc_dapm_dai_in: 1480 case snd_soc_dapm_dai_out: 1481 dai = kzalloc(sizeof(*dai), GFP_KERNEL); 1482 if (!dai) { 1483 ret = -ENOMEM; 1484 goto widget_free; 1485 } 1486 1487 ret = sof_widget_parse_tokens(scomp, swidget, tw, token_list, token_list_size); 1488 if (!ret) 1489 ret = sof_connect_dai_widget(scomp, w, tw, dai); 1490 if (ret < 0) { 1491 kfree(dai); 1492 break; 1493 } 1494 list_add(&dai->list, &sdev->dai_list); 1495 swidget->private = dai; 1496 break; 1497 case snd_soc_dapm_effect: 1498 /* check we have some tokens - we need at least process type */ 1499 if (le32_to_cpu(tw->priv.size) == 0) { 1500 dev_err(scomp->dev, "error: process tokens not found\n"); 1501 ret = -EINVAL; 1502 break; 1503 } 1504 ret = sof_widget_parse_tokens(scomp, swidget, tw, token_list, token_list_size); 1505 break; 1506 case snd_soc_dapm_pga: 1507 if (!le32_to_cpu(tw->num_kcontrols)) { 1508 dev_err(scomp->dev, "invalid kcontrol count %d for volume\n", 1509 tw->num_kcontrols); 1510 ret = -EINVAL; 1511 break; 1512 } 1513 1514 fallthrough; 1515 case snd_soc_dapm_mixer: 1516 case snd_soc_dapm_buffer: 1517 case snd_soc_dapm_scheduler: 1518 case snd_soc_dapm_aif_out: 1519 case snd_soc_dapm_aif_in: 1520 case snd_soc_dapm_src: 1521 case snd_soc_dapm_asrc: 1522 case snd_soc_dapm_siggen: 1523 case snd_soc_dapm_mux: 1524 case snd_soc_dapm_demux: 1525 ret = sof_widget_parse_tokens(scomp, swidget, tw, token_list, token_list_size); 1526 break; 1527 case snd_soc_dapm_switch: 1528 case snd_soc_dapm_dai_link: 1529 case snd_soc_dapm_kcontrol: 1530 default: 1531 dev_dbg(scomp->dev, "widget type %d name %s not handled\n", swidget->id, tw->name); 1532 break; 1533 } 1534 1535 /* check token parsing reply */ 1536 if (ret < 0) { 1537 dev_err(scomp->dev, 1538 "failed to add widget type %d name : %s stream %s\n", 1539 swidget->id, tw->name, strnlen(tw->sname, SNDRV_CTL_ELEM_ID_NAME_MAXLEN) > 0 1540 ? tw->sname : "none"); 1541 goto widget_free; 1542 } 1543 1544 if (sof_debug_check_flag(SOF_DBG_DISABLE_MULTICORE)) { 1545 swidget->core = SOF_DSP_PRIMARY_CORE; 1546 } else { 1547 int core = sof_get_token_value(SOF_TKN_COMP_CORE_ID, swidget->tuples, 1548 swidget->num_tuples); 1549 1550 if (core >= 0) 1551 swidget->core = core; 1552 } 1553 1554 /* bind widget to external event */ 1555 if (tw->event_type) { 1556 if (widget_ops && widget_ops[w->id].bind_event) { 1557 ret = widget_ops[w->id].bind_event(scomp, swidget, 1558 le16_to_cpu(tw->event_type)); 1559 if (ret) { 1560 dev_err(scomp->dev, "widget event binding failed for %s\n", 1561 swidget->widget->name); 1562 goto free; 1563 } 1564 } 1565 } 1566 1567 /* create and add pipeline for scheduler type widgets */ 1568 if (w->id == snd_soc_dapm_scheduler) { 1569 struct snd_sof_pipeline *spipe; 1570 1571 spipe = kzalloc(sizeof(*spipe), GFP_KERNEL); 1572 if (!spipe) { 1573 ret = -ENOMEM; 1574 goto free; 1575 } 1576 1577 spipe->pipe_widget = swidget; 1578 swidget->spipe = spipe; 1579 list_add(&spipe->list, &sdev->pipeline_list); 1580 } 1581 1582 w->dobj.private = swidget; 1583 list_add(&swidget->list, &sdev->widget_list); 1584 return ret; 1585 free: 1586 kfree(swidget->private); 1587 kfree(swidget->tuples); 1588 widget_free: 1589 kfree(swidget); 1590 return ret; 1591 } 1592 1593 static int sof_route_unload(struct snd_soc_component *scomp, 1594 struct snd_soc_dobj *dobj) 1595 { 1596 struct snd_sof_route *sroute; 1597 1598 sroute = dobj->private; 1599 if (!sroute) 1600 return 0; 1601 1602 /* free sroute and its private data */ 1603 kfree(sroute->private); 1604 list_del(&sroute->list); 1605 kfree(sroute); 1606 1607 return 0; 1608 } 1609 1610 static int sof_widget_unload(struct snd_soc_component *scomp, 1611 struct snd_soc_dobj *dobj) 1612 { 1613 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1614 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 1615 const struct sof_ipc_tplg_widget_ops *widget_ops; 1616 const struct snd_kcontrol_new *kc; 1617 struct snd_soc_dapm_widget *widget; 1618 struct snd_sof_control *scontrol; 1619 struct snd_sof_widget *swidget; 1620 struct soc_mixer_control *sm; 1621 struct soc_bytes_ext *sbe; 1622 struct snd_sof_dai *dai; 1623 struct soc_enum *se; 1624 int i; 1625 1626 swidget = dobj->private; 1627 if (!swidget) 1628 return 0; 1629 1630 widget = swidget->widget; 1631 1632 switch (swidget->id) { 1633 case snd_soc_dapm_dai_in: 1634 case snd_soc_dapm_dai_out: 1635 dai = swidget->private; 1636 1637 if (dai) 1638 list_del(&dai->list); 1639 1640 sof_disconnect_dai_widget(scomp, widget); 1641 1642 break; 1643 case snd_soc_dapm_scheduler: 1644 { 1645 struct snd_sof_pipeline *spipe = swidget->spipe; 1646 1647 list_del(&spipe->list); 1648 kfree(spipe); 1649 swidget->spipe = NULL; 1650 break; 1651 } 1652 default: 1653 break; 1654 } 1655 for (i = 0; i < widget->num_kcontrols; i++) { 1656 kc = &widget->kcontrol_news[i]; 1657 switch (widget->dobj.widget.kcontrol_type[i]) { 1658 case SND_SOC_TPLG_TYPE_MIXER: 1659 sm = (struct soc_mixer_control *)kc->private_value; 1660 scontrol = sm->dobj.private; 1661 if (sm->max > 1) 1662 kfree(scontrol->volume_table); 1663 break; 1664 case SND_SOC_TPLG_TYPE_ENUM: 1665 se = (struct soc_enum *)kc->private_value; 1666 scontrol = se->dobj.private; 1667 break; 1668 case SND_SOC_TPLG_TYPE_BYTES: 1669 sbe = (struct soc_bytes_ext *)kc->private_value; 1670 scontrol = sbe->dobj.private; 1671 break; 1672 default: 1673 dev_warn(scomp->dev, "unsupported kcontrol_type\n"); 1674 goto out; 1675 } 1676 kfree(scontrol->ipc_control_data); 1677 list_del(&scontrol->list); 1678 kfree(scontrol->name); 1679 kfree(scontrol); 1680 } 1681 1682 out: 1683 /* free IPC related data */ 1684 widget_ops = tplg_ops ? tplg_ops->widget : NULL; 1685 if (widget_ops && widget_ops[swidget->id].ipc_free) 1686 widget_ops[swidget->id].ipc_free(swidget); 1687 1688 ida_destroy(&swidget->output_queue_ida); 1689 ida_destroy(&swidget->input_queue_ida); 1690 1691 sof_free_pin_binding(swidget, SOF_PIN_TYPE_INPUT); 1692 sof_free_pin_binding(swidget, SOF_PIN_TYPE_OUTPUT); 1693 1694 kfree(swidget->tuples); 1695 1696 /* remove and free swidget object */ 1697 list_del(&swidget->list); 1698 kfree(swidget); 1699 1700 return 0; 1701 } 1702 1703 /* 1704 * DAI HW configuration. 1705 */ 1706 1707 /* FE DAI - used for any driver specific init */ 1708 static int sof_dai_load(struct snd_soc_component *scomp, int index, 1709 struct snd_soc_dai_driver *dai_drv, 1710 struct snd_soc_tplg_pcm *pcm, struct snd_soc_dai *dai) 1711 { 1712 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1713 const struct sof_ipc_pcm_ops *ipc_pcm_ops = sof_ipc_get_ops(sdev, pcm); 1714 struct snd_soc_tplg_stream_caps *caps; 1715 struct snd_soc_tplg_private *private = &pcm->priv; 1716 struct snd_sof_pcm *spcm; 1717 int stream; 1718 int ret; 1719 1720 /* nothing to do for BEs atm */ 1721 if (!pcm) 1722 return 0; 1723 1724 spcm = kzalloc(sizeof(*spcm), GFP_KERNEL); 1725 if (!spcm) 1726 return -ENOMEM; 1727 1728 spcm->scomp = scomp; 1729 1730 for_each_pcm_streams(stream) { 1731 spcm->stream[stream].comp_id = COMP_ID_UNASSIGNED; 1732 if (pcm->compress) 1733 snd_sof_compr_init_elapsed_work(&spcm->stream[stream].period_elapsed_work); 1734 else 1735 snd_sof_pcm_init_elapsed_work(&spcm->stream[stream].period_elapsed_work); 1736 } 1737 1738 spcm->pcm = *pcm; 1739 dev_dbg(scomp->dev, "tplg: load pcm %s\n", pcm->dai_name); 1740 1741 /* perform pcm set op */ 1742 if (ipc_pcm_ops && ipc_pcm_ops->pcm_setup) { 1743 ret = ipc_pcm_ops->pcm_setup(sdev, spcm); 1744 if (ret < 0) { 1745 kfree(spcm); 1746 return ret; 1747 } 1748 } 1749 1750 dai_drv->dobj.private = spcm; 1751 list_add(&spcm->list, &sdev->pcm_list); 1752 1753 ret = sof_parse_tokens(scomp, spcm, stream_tokens, 1754 ARRAY_SIZE(stream_tokens), private->array, 1755 le32_to_cpu(private->size)); 1756 if (ret) { 1757 dev_err(scomp->dev, "error: parse stream tokens failed %d\n", 1758 le32_to_cpu(private->size)); 1759 return ret; 1760 } 1761 1762 /* do we need to allocate playback PCM DMA pages */ 1763 if (!spcm->pcm.playback) 1764 goto capture; 1765 1766 stream = SNDRV_PCM_STREAM_PLAYBACK; 1767 1768 caps = &spcm->pcm.caps[stream]; 1769 1770 /* allocate playback page table buffer */ 1771 ret = snd_dma_alloc_pages(SNDRV_DMA_TYPE_DEV, sdev->dev, 1772 PAGE_SIZE, &spcm->stream[stream].page_table); 1773 if (ret < 0) { 1774 dev_err(scomp->dev, "error: can't alloc page table for %s %d\n", 1775 caps->name, ret); 1776 1777 return ret; 1778 } 1779 1780 /* bind pcm to host comp */ 1781 ret = spcm_bind(scomp, spcm, stream); 1782 if (ret) { 1783 dev_err(scomp->dev, 1784 "error: can't bind pcm to host\n"); 1785 goto free_playback_tables; 1786 } 1787 1788 capture: 1789 stream = SNDRV_PCM_STREAM_CAPTURE; 1790 1791 /* do we need to allocate capture PCM DMA pages */ 1792 if (!spcm->pcm.capture) 1793 return ret; 1794 1795 caps = &spcm->pcm.caps[stream]; 1796 1797 /* allocate capture page table buffer */ 1798 ret = snd_dma_alloc_pages(SNDRV_DMA_TYPE_DEV, sdev->dev, 1799 PAGE_SIZE, &spcm->stream[stream].page_table); 1800 if (ret < 0) { 1801 dev_err(scomp->dev, "error: can't alloc page table for %s %d\n", 1802 caps->name, ret); 1803 goto free_playback_tables; 1804 } 1805 1806 /* bind pcm to host comp */ 1807 ret = spcm_bind(scomp, spcm, stream); 1808 if (ret) { 1809 dev_err(scomp->dev, 1810 "error: can't bind pcm to host\n"); 1811 snd_dma_free_pages(&spcm->stream[stream].page_table); 1812 goto free_playback_tables; 1813 } 1814 1815 return ret; 1816 1817 free_playback_tables: 1818 if (spcm->pcm.playback) 1819 snd_dma_free_pages(&spcm->stream[SNDRV_PCM_STREAM_PLAYBACK].page_table); 1820 1821 return ret; 1822 } 1823 1824 static int sof_dai_unload(struct snd_soc_component *scomp, 1825 struct snd_soc_dobj *dobj) 1826 { 1827 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1828 const struct sof_ipc_pcm_ops *ipc_pcm_ops = sof_ipc_get_ops(sdev, pcm); 1829 struct snd_sof_pcm *spcm = dobj->private; 1830 1831 /* free PCM DMA pages */ 1832 if (spcm->pcm.playback) 1833 snd_dma_free_pages(&spcm->stream[SNDRV_PCM_STREAM_PLAYBACK].page_table); 1834 1835 if (spcm->pcm.capture) 1836 snd_dma_free_pages(&spcm->stream[SNDRV_PCM_STREAM_CAPTURE].page_table); 1837 1838 /* perform pcm free op */ 1839 if (ipc_pcm_ops && ipc_pcm_ops->pcm_free) 1840 ipc_pcm_ops->pcm_free(sdev, spcm); 1841 1842 /* remove from list and free spcm */ 1843 list_del(&spcm->list); 1844 kfree(spcm); 1845 1846 return 0; 1847 } 1848 1849 static const struct sof_topology_token common_dai_link_tokens[] = { 1850 {SOF_TKN_DAI_TYPE, SND_SOC_TPLG_TUPLE_TYPE_STRING, get_token_dai_type, 1851 offsetof(struct snd_sof_dai_link, type)}, 1852 }; 1853 1854 /* DAI link - used for any driver specific init */ 1855 static int sof_link_load(struct snd_soc_component *scomp, int index, struct snd_soc_dai_link *link, 1856 struct snd_soc_tplg_link_config *cfg) 1857 { 1858 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 1859 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 1860 struct snd_soc_tplg_private *private = &cfg->priv; 1861 const struct sof_token_info *token_list; 1862 struct snd_sof_dai_link *slink; 1863 u32 token_id = 0; 1864 int num_tuples = 0; 1865 int ret, num_sets; 1866 1867 if (!link->platforms) { 1868 dev_err(scomp->dev, "error: no platforms\n"); 1869 return -EINVAL; 1870 } 1871 link->platforms->name = dev_name(scomp->dev); 1872 1873 if (tplg_ops && tplg_ops->link_setup) { 1874 ret = tplg_ops->link_setup(sdev, link); 1875 if (ret < 0) 1876 return ret; 1877 } 1878 1879 /* Set nonatomic property for FE dai links as their trigger action involves IPC's */ 1880 if (!link->no_pcm) { 1881 link->nonatomic = true; 1882 return 0; 1883 } 1884 1885 /* check we have some tokens - we need at least DAI type */ 1886 if (le32_to_cpu(private->size) == 0) { 1887 dev_err(scomp->dev, "error: expected tokens for DAI, none found\n"); 1888 return -EINVAL; 1889 } 1890 1891 slink = kzalloc(sizeof(*slink), GFP_KERNEL); 1892 if (!slink) 1893 return -ENOMEM; 1894 1895 slink->num_hw_configs = le32_to_cpu(cfg->num_hw_configs); 1896 slink->hw_configs = kmemdup_array(cfg->hw_config, 1897 slink->num_hw_configs, sizeof(*slink->hw_configs), 1898 GFP_KERNEL); 1899 if (!slink->hw_configs) { 1900 kfree(slink); 1901 return -ENOMEM; 1902 } 1903 1904 slink->default_hw_cfg_id = le32_to_cpu(cfg->default_hw_config_id); 1905 slink->link = link; 1906 1907 dev_dbg(scomp->dev, "tplg: %d hw_configs found, default id: %d for dai link %s!\n", 1908 slink->num_hw_configs, slink->default_hw_cfg_id, link->name); 1909 1910 ret = sof_parse_tokens(scomp, slink, common_dai_link_tokens, 1911 ARRAY_SIZE(common_dai_link_tokens), 1912 private->array, le32_to_cpu(private->size)); 1913 if (ret < 0) { 1914 dev_err(scomp->dev, "Failed tp parse common DAI link tokens\n"); 1915 kfree(slink->hw_configs); 1916 kfree(slink); 1917 return ret; 1918 } 1919 1920 token_list = tplg_ops ? tplg_ops->token_list : NULL; 1921 if (!token_list) 1922 goto out; 1923 1924 /* calculate size of tuples array */ 1925 num_tuples += token_list[SOF_DAI_LINK_TOKENS].count; 1926 num_sets = slink->num_hw_configs; 1927 switch (slink->type) { 1928 case SOF_DAI_INTEL_SSP: 1929 token_id = SOF_SSP_TOKENS; 1930 num_tuples += token_list[SOF_SSP_TOKENS].count * slink->num_hw_configs; 1931 break; 1932 case SOF_DAI_INTEL_DMIC: 1933 token_id = SOF_DMIC_TOKENS; 1934 num_tuples += token_list[SOF_DMIC_TOKENS].count; 1935 1936 /* Allocate memory for max PDM controllers */ 1937 num_tuples += token_list[SOF_DMIC_PDM_TOKENS].count * SOF_DAI_INTEL_DMIC_NUM_CTRL; 1938 break; 1939 case SOF_DAI_INTEL_HDA: 1940 token_id = SOF_HDA_TOKENS; 1941 num_tuples += token_list[SOF_HDA_TOKENS].count; 1942 break; 1943 case SOF_DAI_INTEL_ALH: 1944 token_id = SOF_ALH_TOKENS; 1945 num_tuples += token_list[SOF_ALH_TOKENS].count; 1946 break; 1947 case SOF_DAI_IMX_SAI: 1948 token_id = SOF_SAI_TOKENS; 1949 num_tuples += token_list[SOF_SAI_TOKENS].count; 1950 break; 1951 case SOF_DAI_IMX_ESAI: 1952 token_id = SOF_ESAI_TOKENS; 1953 num_tuples += token_list[SOF_ESAI_TOKENS].count; 1954 break; 1955 case SOF_DAI_MEDIATEK_AFE: 1956 token_id = SOF_AFE_TOKENS; 1957 num_tuples += token_list[SOF_AFE_TOKENS].count; 1958 break; 1959 case SOF_DAI_AMD_DMIC: 1960 token_id = SOF_ACPDMIC_TOKENS; 1961 num_tuples += token_list[SOF_ACPDMIC_TOKENS].count; 1962 break; 1963 case SOF_DAI_AMD_BT: 1964 case SOF_DAI_AMD_SP: 1965 case SOF_DAI_AMD_HS: 1966 case SOF_DAI_AMD_SP_VIRTUAL: 1967 case SOF_DAI_AMD_HS_VIRTUAL: 1968 token_id = SOF_ACPI2S_TOKENS; 1969 num_tuples += token_list[SOF_ACPI2S_TOKENS].count; 1970 break; 1971 case SOF_DAI_IMX_MICFIL: 1972 token_id = SOF_MICFIL_TOKENS; 1973 num_tuples += token_list[SOF_MICFIL_TOKENS].count; 1974 break; 1975 case SOF_DAI_AMD_SDW: 1976 token_id = SOF_ACP_SDW_TOKENS; 1977 num_tuples += token_list[SOF_ACP_SDW_TOKENS].count; 1978 break; 1979 default: 1980 break; 1981 } 1982 1983 /* allocate memory for tuples array */ 1984 slink->tuples = kcalloc(num_tuples, sizeof(*slink->tuples), GFP_KERNEL); 1985 if (!slink->tuples) { 1986 kfree(slink->hw_configs); 1987 kfree(slink); 1988 return -ENOMEM; 1989 } 1990 1991 if (token_list[SOF_DAI_LINK_TOKENS].tokens) { 1992 /* parse one set of DAI link tokens */ 1993 ret = sof_copy_tuples(sdev, private->array, le32_to_cpu(private->size), 1994 SOF_DAI_LINK_TOKENS, 1, slink->tuples, 1995 num_tuples, &slink->num_tuples); 1996 if (ret < 0) { 1997 dev_err(scomp->dev, "failed to parse %s for dai link %s\n", 1998 token_list[SOF_DAI_LINK_TOKENS].name, link->name); 1999 goto err; 2000 } 2001 } 2002 2003 /* nothing more to do if there are no DAI type-specific tokens defined */ 2004 if (!token_id || !token_list[token_id].tokens) 2005 goto out; 2006 2007 /* parse "num_sets" sets of DAI-specific tokens */ 2008 ret = sof_copy_tuples(sdev, private->array, le32_to_cpu(private->size), 2009 token_id, num_sets, slink->tuples, num_tuples, &slink->num_tuples); 2010 if (ret < 0) { 2011 dev_err(scomp->dev, "failed to parse %s for dai link %s\n", 2012 token_list[token_id].name, link->name); 2013 goto err; 2014 } 2015 2016 /* for DMIC, also parse all sets of DMIC PDM tokens based on active PDM count */ 2017 if (token_id == SOF_DMIC_TOKENS) { 2018 num_sets = sof_get_token_value(SOF_TKN_INTEL_DMIC_NUM_PDM_ACTIVE, 2019 slink->tuples, slink->num_tuples); 2020 2021 if (num_sets < 0) { 2022 dev_err(sdev->dev, "Invalid active PDM count for %s\n", link->name); 2023 ret = num_sets; 2024 goto err; 2025 } 2026 2027 ret = sof_copy_tuples(sdev, private->array, le32_to_cpu(private->size), 2028 SOF_DMIC_PDM_TOKENS, num_sets, slink->tuples, 2029 num_tuples, &slink->num_tuples); 2030 if (ret < 0) { 2031 dev_err(scomp->dev, "failed to parse %s for dai link %s\n", 2032 token_list[SOF_DMIC_PDM_TOKENS].name, link->name); 2033 goto err; 2034 } 2035 } 2036 out: 2037 link->dobj.private = slink; 2038 list_add(&slink->list, &sdev->dai_link_list); 2039 2040 return 0; 2041 2042 err: 2043 kfree(slink->tuples); 2044 kfree(slink->hw_configs); 2045 kfree(slink); 2046 2047 return ret; 2048 } 2049 2050 static int sof_link_unload(struct snd_soc_component *scomp, struct snd_soc_dobj *dobj) 2051 { 2052 struct snd_sof_dai_link *slink = dobj->private; 2053 2054 if (!slink) 2055 return 0; 2056 2057 slink->link->platforms->name = NULL; 2058 2059 kfree(slink->tuples); 2060 list_del(&slink->list); 2061 kfree(slink->hw_configs); 2062 kfree(slink); 2063 dobj->private = NULL; 2064 2065 return 0; 2066 } 2067 2068 /* DAI link - used for any driver specific init */ 2069 static int sof_route_load(struct snd_soc_component *scomp, int index, 2070 struct snd_soc_dapm_route *route) 2071 { 2072 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 2073 struct snd_sof_widget *source_swidget, *sink_swidget; 2074 struct snd_soc_dobj *dobj = &route->dobj; 2075 struct snd_sof_route *sroute; 2076 int ret = 0; 2077 2078 /* allocate memory for sroute and connect */ 2079 sroute = kzalloc(sizeof(*sroute), GFP_KERNEL); 2080 if (!sroute) 2081 return -ENOMEM; 2082 2083 sroute->scomp = scomp; 2084 dev_dbg(scomp->dev, "sink %s control %s source %s\n", 2085 route->sink, route->control ? route->control : "none", 2086 route->source); 2087 2088 /* source component */ 2089 source_swidget = snd_sof_find_swidget(scomp, (char *)route->source); 2090 if (!source_swidget) { 2091 dev_err(scomp->dev, "error: source %s not found\n", 2092 route->source); 2093 ret = -EINVAL; 2094 goto err; 2095 } 2096 2097 /* 2098 * Virtual widgets of type output/out_drv may be added in topology 2099 * for compatibility. These are not handled by the FW. 2100 * So, don't send routes whose source/sink widget is of such types 2101 * to the DSP. 2102 */ 2103 if (source_swidget->id == snd_soc_dapm_out_drv || 2104 source_swidget->id == snd_soc_dapm_output) 2105 goto err; 2106 2107 /* sink component */ 2108 sink_swidget = snd_sof_find_swidget(scomp, (char *)route->sink); 2109 if (!sink_swidget) { 2110 dev_err(scomp->dev, "error: sink %s not found\n", 2111 route->sink); 2112 ret = -EINVAL; 2113 goto err; 2114 } 2115 2116 /* 2117 * Don't send routes whose sink widget is of type 2118 * output or out_drv to the DSP 2119 */ 2120 if (sink_swidget->id == snd_soc_dapm_out_drv || 2121 sink_swidget->id == snd_soc_dapm_output) 2122 goto err; 2123 2124 sroute->route = route; 2125 dobj->private = sroute; 2126 sroute->src_widget = source_swidget; 2127 sroute->sink_widget = sink_swidget; 2128 2129 /* add route to route list */ 2130 list_add(&sroute->list, &sdev->route_list); 2131 2132 return 0; 2133 err: 2134 kfree(sroute); 2135 return ret; 2136 } 2137 2138 /** 2139 * sof_set_widget_pipeline - Set pipeline for a component 2140 * @sdev: pointer to struct snd_sof_dev 2141 * @spipe: pointer to struct snd_sof_pipeline 2142 * @swidget: pointer to struct snd_sof_widget that has the same pipeline ID as @pipe_widget 2143 * 2144 * Return: 0 if successful, -EINVAL on error. 2145 * The function checks if @swidget is associated with any volatile controls. If so, setting 2146 * the dynamic_pipeline_widget is disallowed. 2147 */ 2148 static int sof_set_widget_pipeline(struct snd_sof_dev *sdev, struct snd_sof_pipeline *spipe, 2149 struct snd_sof_widget *swidget) 2150 { 2151 struct snd_sof_widget *pipe_widget = spipe->pipe_widget; 2152 struct snd_sof_control *scontrol; 2153 2154 if (pipe_widget->dynamic_pipeline_widget) { 2155 /* dynamic widgets cannot have volatile kcontrols */ 2156 list_for_each_entry(scontrol, &sdev->kcontrol_list, list) 2157 if (scontrol->comp_id == swidget->comp_id && 2158 (scontrol->access & SNDRV_CTL_ELEM_ACCESS_VOLATILE)) { 2159 dev_err(sdev->dev, 2160 "error: volatile control found for dynamic widget %s\n", 2161 swidget->widget->name); 2162 return -EINVAL; 2163 } 2164 } 2165 2166 /* set the pipeline and apply the dynamic_pipeline_widget_flag */ 2167 swidget->spipe = spipe; 2168 swidget->dynamic_pipeline_widget = pipe_widget->dynamic_pipeline_widget; 2169 2170 return 0; 2171 } 2172 2173 /* completion - called at completion of firmware loading */ 2174 static int sof_complete(struct snd_soc_component *scomp) 2175 { 2176 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 2177 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 2178 const struct sof_ipc_tplg_widget_ops *widget_ops; 2179 struct snd_sof_control *scontrol; 2180 struct snd_sof_pipeline *spipe; 2181 int ret; 2182 2183 widget_ops = tplg_ops ? tplg_ops->widget : NULL; 2184 2185 /* first update all control IPC structures based on the IPC version */ 2186 if (tplg_ops && tplg_ops->control_setup) 2187 list_for_each_entry(scontrol, &sdev->kcontrol_list, list) { 2188 ret = tplg_ops->control_setup(sdev, scontrol); 2189 if (ret < 0) { 2190 dev_err(sdev->dev, "failed updating IPC struct for control %s\n", 2191 scontrol->name); 2192 return ret; 2193 } 2194 } 2195 2196 /* set up the IPC structures for the pipeline widgets */ 2197 list_for_each_entry(spipe, &sdev->pipeline_list, list) { 2198 struct snd_sof_widget *pipe_widget = spipe->pipe_widget; 2199 struct snd_sof_widget *swidget; 2200 2201 pipe_widget->instance_id = -EINVAL; 2202 2203 /* Update the scheduler widget's IPC structure */ 2204 if (widget_ops && widget_ops[pipe_widget->id].ipc_setup) { 2205 ret = widget_ops[pipe_widget->id].ipc_setup(pipe_widget); 2206 if (ret < 0) { 2207 dev_err(sdev->dev, "failed updating IPC struct for %s\n", 2208 pipe_widget->widget->name); 2209 return ret; 2210 } 2211 } 2212 2213 /* set the pipeline and update the IPC structure for the non scheduler widgets */ 2214 list_for_each_entry(swidget, &sdev->widget_list, list) 2215 if (swidget->widget->id != snd_soc_dapm_scheduler && 2216 swidget->pipeline_id == pipe_widget->pipeline_id) { 2217 ret = sof_set_widget_pipeline(sdev, spipe, swidget); 2218 if (ret < 0) 2219 return ret; 2220 2221 if (widget_ops && widget_ops[swidget->id].ipc_setup) { 2222 ret = widget_ops[swidget->id].ipc_setup(swidget); 2223 if (ret < 0) { 2224 dev_err(sdev->dev, 2225 "failed updating IPC struct for %s\n", 2226 swidget->widget->name); 2227 return ret; 2228 } 2229 } 2230 } 2231 } 2232 2233 /* verify topology components loading including dynamic pipelines */ 2234 if (sof_debug_check_flag(SOF_DBG_VERIFY_TPLG)) { 2235 if (tplg_ops && tplg_ops->set_up_all_pipelines && 2236 tplg_ops->tear_down_all_pipelines) { 2237 ret = tplg_ops->set_up_all_pipelines(sdev, true); 2238 if (ret < 0) { 2239 dev_err(sdev->dev, "Failed to set up all topology pipelines: %d\n", 2240 ret); 2241 return ret; 2242 } 2243 2244 ret = tplg_ops->tear_down_all_pipelines(sdev, true); 2245 if (ret < 0) { 2246 dev_err(sdev->dev, "Failed to tear down topology pipelines: %d\n", 2247 ret); 2248 return ret; 2249 } 2250 } 2251 } 2252 2253 /* set up static pipelines */ 2254 if (tplg_ops && tplg_ops->set_up_all_pipelines) 2255 return tplg_ops->set_up_all_pipelines(sdev, false); 2256 2257 return 0; 2258 } 2259 2260 /* manifest - optional to inform component of manifest */ 2261 static int sof_manifest(struct snd_soc_component *scomp, int index, 2262 struct snd_soc_tplg_manifest *man) 2263 { 2264 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 2265 const struct sof_ipc_tplg_ops *tplg_ops = sof_ipc_get_ops(sdev, tplg); 2266 2267 if (tplg_ops && tplg_ops->parse_manifest) 2268 return tplg_ops->parse_manifest(scomp, index, man); 2269 2270 return 0; 2271 } 2272 2273 /* vendor specific kcontrol handlers available for binding */ 2274 static const struct snd_soc_tplg_kcontrol_ops sof_io_ops[] = { 2275 {SOF_TPLG_KCTL_VOL_ID, snd_sof_volume_get, snd_sof_volume_put}, 2276 {SOF_TPLG_KCTL_BYTES_ID, snd_sof_bytes_get, snd_sof_bytes_put}, 2277 {SOF_TPLG_KCTL_ENUM_ID, snd_sof_enum_get, snd_sof_enum_put}, 2278 {SOF_TPLG_KCTL_SWITCH_ID, snd_sof_switch_get, snd_sof_switch_put}, 2279 }; 2280 2281 /* vendor specific bytes ext handlers available for binding */ 2282 static const struct snd_soc_tplg_bytes_ext_ops sof_bytes_ext_ops[] = { 2283 {SOF_TPLG_KCTL_BYTES_ID, snd_sof_bytes_ext_get, snd_sof_bytes_ext_put}, 2284 {SOF_TPLG_KCTL_BYTES_VOLATILE_RO, snd_sof_bytes_ext_volatile_get}, 2285 }; 2286 2287 static const struct snd_soc_tplg_ops sof_tplg_ops = { 2288 /* external kcontrol init - used for any driver specific init */ 2289 .control_load = sof_control_load, 2290 .control_unload = sof_control_unload, 2291 2292 /* external kcontrol init - used for any driver specific init */ 2293 .dapm_route_load = sof_route_load, 2294 .dapm_route_unload = sof_route_unload, 2295 2296 /* external widget init - used for any driver specific init */ 2297 /* .widget_load is not currently used */ 2298 .widget_ready = sof_widget_ready, 2299 .widget_unload = sof_widget_unload, 2300 2301 /* FE DAI - used for any driver specific init */ 2302 .dai_load = sof_dai_load, 2303 .dai_unload = sof_dai_unload, 2304 2305 /* DAI link - used for any driver specific init */ 2306 .link_load = sof_link_load, 2307 .link_unload = sof_link_unload, 2308 2309 /* completion - called at completion of firmware loading */ 2310 .complete = sof_complete, 2311 2312 /* manifest - optional to inform component of manifest */ 2313 .manifest = sof_manifest, 2314 2315 /* vendor specific kcontrol handlers available for binding */ 2316 .io_ops = sof_io_ops, 2317 .io_ops_count = ARRAY_SIZE(sof_io_ops), 2318 2319 /* vendor specific bytes ext handlers available for binding */ 2320 .bytes_ext_ops = sof_bytes_ext_ops, 2321 .bytes_ext_ops_count = ARRAY_SIZE(sof_bytes_ext_ops), 2322 }; 2323 2324 static int snd_sof_dspless_kcontrol(struct snd_kcontrol *kcontrol, 2325 struct snd_ctl_elem_value *ucontrol) 2326 { 2327 return 0; 2328 } 2329 2330 static const struct snd_soc_tplg_kcontrol_ops sof_dspless_io_ops[] = { 2331 {SOF_TPLG_KCTL_VOL_ID, snd_sof_dspless_kcontrol, snd_sof_dspless_kcontrol}, 2332 {SOF_TPLG_KCTL_BYTES_ID, snd_sof_dspless_kcontrol, snd_sof_dspless_kcontrol}, 2333 {SOF_TPLG_KCTL_ENUM_ID, snd_sof_dspless_kcontrol, snd_sof_dspless_kcontrol}, 2334 {SOF_TPLG_KCTL_SWITCH_ID, snd_sof_dspless_kcontrol, snd_sof_dspless_kcontrol}, 2335 }; 2336 2337 static int snd_sof_dspless_bytes_ext_get(struct snd_kcontrol *kcontrol, 2338 unsigned int __user *binary_data, 2339 unsigned int size) 2340 { 2341 return 0; 2342 } 2343 2344 static int snd_sof_dspless_bytes_ext_put(struct snd_kcontrol *kcontrol, 2345 const unsigned int __user *binary_data, 2346 unsigned int size) 2347 { 2348 return 0; 2349 } 2350 2351 static const struct snd_soc_tplg_bytes_ext_ops sof_dspless_bytes_ext_ops[] = { 2352 {SOF_TPLG_KCTL_BYTES_ID, snd_sof_dspless_bytes_ext_get, snd_sof_dspless_bytes_ext_put}, 2353 {SOF_TPLG_KCTL_BYTES_VOLATILE_RO, snd_sof_dspless_bytes_ext_get}, 2354 }; 2355 2356 /* external widget init - used for any driver specific init */ 2357 static int sof_dspless_widget_ready(struct snd_soc_component *scomp, int index, 2358 struct snd_soc_dapm_widget *w, 2359 struct snd_soc_tplg_dapm_widget *tw) 2360 { 2361 if (WIDGET_IS_DAI(w->id)) { 2362 static const struct sof_topology_token dai_tokens[] = { 2363 {SOF_TKN_DAI_TYPE, SND_SOC_TPLG_TUPLE_TYPE_STRING, get_token_dai_type, 0}}; 2364 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 2365 struct snd_soc_tplg_private *priv = &tw->priv; 2366 struct snd_sof_widget *swidget; 2367 struct snd_sof_dai *sdai; 2368 int ret; 2369 2370 swidget = kzalloc(sizeof(*swidget), GFP_KERNEL); 2371 if (!swidget) 2372 return -ENOMEM; 2373 2374 sdai = kzalloc(sizeof(*sdai), GFP_KERNEL); 2375 if (!sdai) { 2376 kfree(swidget); 2377 return -ENOMEM; 2378 } 2379 2380 ret = sof_parse_tokens(scomp, &sdai->type, dai_tokens, ARRAY_SIZE(dai_tokens), 2381 priv->array, le32_to_cpu(priv->size)); 2382 if (ret < 0) { 2383 dev_err(scomp->dev, "Failed to parse DAI tokens for %s\n", tw->name); 2384 kfree(swidget); 2385 kfree(sdai); 2386 return ret; 2387 } 2388 2389 ret = sof_connect_dai_widget(scomp, w, tw, sdai); 2390 if (ret) { 2391 kfree(swidget); 2392 kfree(sdai); 2393 return ret; 2394 } 2395 2396 swidget->scomp = scomp; 2397 swidget->widget = w; 2398 swidget->private = sdai; 2399 mutex_init(&swidget->setup_mutex); 2400 w->dobj.private = swidget; 2401 list_add(&swidget->list, &sdev->widget_list); 2402 } 2403 2404 return 0; 2405 } 2406 2407 static int sof_dspless_widget_unload(struct snd_soc_component *scomp, 2408 struct snd_soc_dobj *dobj) 2409 { 2410 struct snd_soc_dapm_widget *w = container_of(dobj, struct snd_soc_dapm_widget, dobj); 2411 2412 if (WIDGET_IS_DAI(w->id)) { 2413 struct snd_sof_widget *swidget = dobj->private; 2414 2415 sof_disconnect_dai_widget(scomp, w); 2416 2417 if (!swidget) 2418 return 0; 2419 2420 /* remove and free swidget object */ 2421 list_del(&swidget->list); 2422 kfree(swidget->private); 2423 kfree(swidget); 2424 } 2425 2426 return 0; 2427 } 2428 2429 static int sof_dspless_link_load(struct snd_soc_component *scomp, int index, 2430 struct snd_soc_dai_link *link, 2431 struct snd_soc_tplg_link_config *cfg) 2432 { 2433 link->platforms->name = dev_name(scomp->dev); 2434 2435 /* Set nonatomic property for FE dai links for FE-BE compatibility */ 2436 if (!link->no_pcm) 2437 link->nonatomic = true; 2438 2439 return 0; 2440 } 2441 2442 static const struct snd_soc_tplg_ops sof_dspless_tplg_ops = { 2443 /* external widget init - used for any driver specific init */ 2444 .widget_ready = sof_dspless_widget_ready, 2445 .widget_unload = sof_dspless_widget_unload, 2446 2447 /* FE DAI - used for any driver specific init */ 2448 .dai_load = sof_dai_load, 2449 .dai_unload = sof_dai_unload, 2450 2451 /* DAI link - used for any driver specific init */ 2452 .link_load = sof_dspless_link_load, 2453 2454 /* vendor specific kcontrol handlers available for binding */ 2455 .io_ops = sof_dspless_io_ops, 2456 .io_ops_count = ARRAY_SIZE(sof_dspless_io_ops), 2457 2458 /* vendor specific bytes ext handlers available for binding */ 2459 .bytes_ext_ops = sof_dspless_bytes_ext_ops, 2460 .bytes_ext_ops_count = ARRAY_SIZE(sof_dspless_bytes_ext_ops), 2461 }; 2462 2463 int snd_sof_load_topology(struct snd_soc_component *scomp, const char *file) 2464 { 2465 struct snd_sof_dev *sdev = snd_soc_component_get_drvdata(scomp); 2466 const struct firmware *fw; 2467 int ret; 2468 2469 dev_dbg(scomp->dev, "loading topology:%s\n", file); 2470 2471 ret = request_firmware(&fw, file, scomp->dev); 2472 if (ret < 0) { 2473 dev_err(scomp->dev, "error: tplg request firmware %s failed err: %d\n", 2474 file, ret); 2475 dev_err(scomp->dev, 2476 "you may need to download the firmware from https://github.com/thesofproject/sof-bin/\n"); 2477 return ret; 2478 } 2479 2480 if (sdev->dspless_mode_selected) 2481 ret = snd_soc_tplg_component_load(scomp, &sof_dspless_tplg_ops, fw); 2482 else 2483 ret = snd_soc_tplg_component_load(scomp, &sof_tplg_ops, fw); 2484 2485 if (ret < 0) { 2486 dev_err(scomp->dev, "error: tplg component load failed %d\n", 2487 ret); 2488 ret = -EINVAL; 2489 } 2490 2491 release_firmware(fw); 2492 2493 if (ret >= 0 && sdev->led_present) 2494 ret = snd_ctl_led_request(); 2495 2496 return ret; 2497 } 2498 EXPORT_SYMBOL(snd_sof_load_topology); 2499