xref: /linux/sound/soc/intel/atom/sst-atom-controls.c (revision e5c91aac491def6ab3f90c4cc246e3fcb0f8f058)
1 // SPDX-License-Identifier: GPL-2.0-only
2  /*
3  *  sst-atom-controls.c - Intel MID Platform driver DPCM ALSA controls for Mrfld
4  *
5  *  Copyright (C) 2013-14 Intel Corp
6  *  Author: Omair Mohammed Abdullah <omair.m.abdullah@intel.com>
7  *	Vinod Koul <vinod.koul@intel.com>
8  *  ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
9  *
10  *  In the dpcm driver modelling when a particular FE/BE/Mixer/Pipe is active
11  *  we forward the settings and parameters, rest we keep the values  in
12  *  driver and forward when DAPM enables them
13  * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
14  */
15 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
16 
17 #include <linux/cleanup.h>
18 #include <linux/slab.h>
19 #include <sound/soc.h>
20 #include <sound/tlv.h>
21 #include "sst-mfld-platform.h"
22 #include "sst-atom-controls.h"
23 
24 static int sst_fill_byte_control(struct sst_data *drv,
25 					 u8 ipc_msg, u8 block,
26 					 u8 task_id, u8 pipe_id,
27 					 u16 len, void *cmd_data)
28 {
29 	struct snd_sst_bytes_v2 *byte_data = drv->byte_stream;
30 
31 	byte_data->type = SST_CMD_BYTES_SET;
32 	byte_data->ipc_msg = ipc_msg;
33 	byte_data->block = block;
34 	byte_data->task_id = task_id;
35 	byte_data->pipe_id = pipe_id;
36 
37 	if (len > SST_MAX_BIN_BYTES - sizeof(*byte_data)) {
38 		dev_err(&drv->pdev->dev, "command length too big (%u)", len);
39 		return -EINVAL;
40 	}
41 	byte_data->len = len;
42 	memcpy(byte_data->bytes, cmd_data, len);
43 	print_hex_dump_bytes("writing to lpe: ", DUMP_PREFIX_OFFSET,
44 			     byte_data, len + sizeof(*byte_data));
45 	return 0;
46 }
47 
48 static int sst_fill_and_send_cmd_unlocked(struct sst_data *drv,
49 				 u8 ipc_msg, u8 block, u8 task_id, u8 pipe_id,
50 				 void *cmd_data, u16 len)
51 {
52 	int ret = 0;
53 
54 	WARN_ON(!mutex_is_locked(&drv->lock));
55 
56 	ret = sst_fill_byte_control(drv, ipc_msg,
57 				block, task_id, pipe_id, len, cmd_data);
58 	if (ret < 0)
59 		return ret;
60 	return sst->ops->send_byte_stream(sst->dev, drv->byte_stream);
61 }
62 
63 /**
64  * sst_fill_and_send_cmd - generate the IPC message and send it to the FW
65  * @drv: sst_data
66  * @ipc_msg: type of IPC (CMD, SET_PARAMS, GET_PARAMS)
67  * @block: block index
68  * @task_id: task index
69  * @pipe_id: pipe index
70  * @cmd_data: the IPC payload
71  * @len: length of data to be sent
72  */
73 static int sst_fill_and_send_cmd(struct sst_data *drv,
74 				 u8 ipc_msg, u8 block, u8 task_id, u8 pipe_id,
75 				 void *cmd_data, u16 len)
76 {
77 	guard(mutex)(&drv->lock);
78 
79 	return sst_fill_and_send_cmd_unlocked(drv, ipc_msg, block,
80 					      task_id, pipe_id, cmd_data, len);
81 }
82 
83 /*
84  * tx map value is a bitfield where each bit represents a FW channel
85  *
86  *			3 2 1 0		# 0 = codec0, 1 = codec1
87  *			RLRLRLRL	# 3, 4 = reserved
88  *
89  * e.g. slot 0 rx map =	00001100b -> data from slot 0 goes into codec_in1 L,R
90  */
91 static u8 sst_ssp_tx_map[SST_MAX_TDM_SLOTS] = {
92 	0x1, 0x2, 0x4, 0x8, 0x10, 0x20, 0x40, 0x80, /* default rx map */
93 };
94 
95 /*
96  * rx map value is a bitfield where each bit represents a slot
97  *
98  *			  76543210	# 0 = slot 0, 1 = slot 1
99  *
100  * e.g. codec1_0 tx map = 00000101b -> data from codec_out1_0 goes into slot 0, 2
101  */
102 static u8 sst_ssp_rx_map[SST_MAX_TDM_SLOTS] = {
103 	0x1, 0x2, 0x4, 0x8, 0x10, 0x20, 0x40, 0x80, /* default tx map */
104 };
105 
106 /*
107  * NOTE: this is invoked with lock held
108  */
109 static int sst_send_slot_map(struct sst_data *drv)
110 {
111 	struct sst_param_sba_ssp_slot_map cmd;
112 
113 	SST_FILL_DEFAULT_DESTINATION(cmd.header.dst);
114 	cmd.header.command_id = SBA_SET_SSP_SLOT_MAP;
115 	cmd.header.length = sizeof(struct sst_param_sba_ssp_slot_map)
116 				- sizeof(struct sst_dsp_header);
117 
118 	cmd.param_id = SBA_SET_SSP_SLOT_MAP;
119 	cmd.param_len = sizeof(cmd.rx_slot_map) + sizeof(cmd.tx_slot_map)
120 					+ sizeof(cmd.ssp_index);
121 	cmd.ssp_index = SSP_CODEC;
122 
123 	memcpy(cmd.rx_slot_map, &sst_ssp_tx_map[0], sizeof(cmd.rx_slot_map));
124 	memcpy(cmd.tx_slot_map, &sst_ssp_rx_map[0], sizeof(cmd.tx_slot_map));
125 
126 	return sst_fill_and_send_cmd_unlocked(drv, SST_IPC_IA_SET_PARAMS,
127 			SST_FLAG_BLOCKED, SST_TASK_SBA, 0, &cmd,
128 			      sizeof(cmd.header) + cmd.header.length);
129 }
130 
131 static int sst_slot_enum_info(struct snd_kcontrol *kcontrol,
132 		       struct snd_ctl_elem_info *uinfo)
133 {
134 	struct sst_enum *e = (struct sst_enum *)kcontrol->private_value;
135 
136 	uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
137 	uinfo->count = 1;
138 	uinfo->value.enumerated.items = e->max;
139 
140 	if (uinfo->value.enumerated.item > e->max - 1)
141 		uinfo->value.enumerated.item = e->max - 1;
142 	strscpy(uinfo->value.enumerated.name,
143 		e->texts[uinfo->value.enumerated.item]);
144 
145 	return 0;
146 }
147 
148 /**
149  * sst_slot_get - get the status of the interleaver/deinterleaver control
150  * @kcontrol: control pointer
151  * @ucontrol: User data
152  * Searches the map where the control status is stored, and gets the
153  * channel/slot which is currently set for this enumerated control. Since it is
154  * an enumerated control, there is only one possible value.
155  */
156 static int sst_slot_get(struct snd_kcontrol *kcontrol,
157 			struct snd_ctl_elem_value *ucontrol)
158 {
159 	struct sst_enum *e = (void *)kcontrol->private_value;
160 	struct snd_soc_component *c = snd_kcontrol_chip(kcontrol);
161 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
162 	unsigned int ctl_no = e->reg;
163 	unsigned int is_tx = e->tx;
164 	unsigned int val, mux;
165 	u8 *map = is_tx ? sst_ssp_rx_map : sst_ssp_tx_map;
166 
167 	guard(mutex)(&drv->lock);
168 	val = 1 << ctl_no;
169 	/* search which slot/channel has this bit set - there should be only one */
170 	for (mux = e->max; mux > 0;  mux--)
171 		if (map[mux - 1] & val)
172 			break;
173 
174 	ucontrol->value.enumerated.item[0] = mux;
175 
176 	dev_dbg(c->dev, "%s - %s map = %#x\n",
177 			is_tx ? "tx channel" : "rx slot",
178 			 e->texts[mux], mux ? map[mux - 1] : -1);
179 	return 0;
180 }
181 
182 /* sst_check_and_send_slot_map - helper for checking power state and sending
183  * slot map cmd
184  *
185  * called with lock held
186  */
187 static int sst_check_and_send_slot_map(struct sst_data *drv, struct snd_kcontrol *kcontrol)
188 {
189 	struct sst_enum *e = (void *)kcontrol->private_value;
190 	int ret = 0;
191 
192 	if (e->w && e->w->power)
193 		ret = sst_send_slot_map(drv);
194 	else if (!e->w)
195 		dev_err(&drv->pdev->dev, "Slot control: %s doesn't have DAPM widget!!!\n",
196 				kcontrol->id.name);
197 	return ret;
198 }
199 
200 /**
201  * sst_slot_put - set the status of interleaver/deinterleaver control
202  * @kcontrol: control pointer
203  * @ucontrol: User data
204  * (de)interleaver controls are defined in opposite sense to be user-friendly
205  *
206  * Instead of the enum value being the value written to the register, it is the
207  * register address; and the kcontrol number (register num) is the value written
208  * to the register. This is so that there can be only one value for each
209  * slot/channel since there is only one control for each slot/channel.
210  *
211  * This means that whenever an enum is set, we need to clear the bit
212  * for that kcontrol_no for all the interleaver OR deinterleaver registers
213  */
214 static int sst_slot_put(struct snd_kcontrol *kcontrol,
215 			struct snd_ctl_elem_value *ucontrol)
216 {
217 	struct snd_soc_component *c = snd_kcontrol_chip(kcontrol);
218 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
219 	struct sst_enum *e = (void *)kcontrol->private_value;
220 	int i, ret = 0;
221 	unsigned int ctl_no = e->reg;
222 	unsigned int is_tx = e->tx;
223 	unsigned int slot_channel_no;
224 	unsigned int val, mux;
225 	u8 *map;
226 
227 	map = is_tx ? sst_ssp_rx_map : sst_ssp_tx_map;
228 
229 	val = 1 << ctl_no;
230 	mux = ucontrol->value.enumerated.item[0];
231 	if (mux > e->max - 1)
232 		return -EINVAL;
233 
234 	guard(mutex)(&drv->lock);
235 	/* first clear all registers of this bit */
236 	for (i = 0; i < e->max; i++)
237 		map[i] &= ~val;
238 
239 	if (mux == 0) {
240 		/* kctl set to 'none' and we reset the bits so send IPC */
241 		ret = sst_check_and_send_slot_map(drv, kcontrol);
242 
243 		return ret;
244 	}
245 
246 	/* offset by one to take "None" into account */
247 	slot_channel_no = mux - 1;
248 	map[slot_channel_no] |= val;
249 
250 	dev_dbg(c->dev, "%s %s map = %#x\n",
251 			is_tx ? "tx channel" : "rx slot",
252 			e->texts[mux], map[slot_channel_no]);
253 
254 	ret = sst_check_and_send_slot_map(drv, kcontrol);
255 
256 	return ret;
257 }
258 
259 static int sst_send_algo_cmd(struct sst_data *drv,
260 			      struct sst_algo_control *bc)
261 {
262 	int len, ret = 0;
263 	struct sst_cmd_set_params *cmd;
264 
265 	/*bc->max includes sizeof algos + length field*/
266 	len = sizeof(cmd->dst) + sizeof(cmd->command_id) + bc->max;
267 
268 	cmd = kzalloc(len, GFP_KERNEL);
269 	if (cmd == NULL)
270 		return -ENOMEM;
271 
272 	SST_FILL_DESTINATION(2, cmd->dst, bc->pipe_id, bc->module_id);
273 	cmd->command_id = bc->cmd_id;
274 	memcpy(cmd->params, bc->params, bc->max);
275 
276 	ret = sst_fill_and_send_cmd_unlocked(drv, SST_IPC_IA_SET_PARAMS,
277 				SST_FLAG_BLOCKED, bc->task_id, 0, cmd, len);
278 	kfree(cmd);
279 	return ret;
280 }
281 
282 /**
283  * sst_find_and_send_pipe_algo - send all the algo parameters for a pipe
284  * @drv: sst_data
285  * @pipe: string identifier
286  * @ids: list of algorithms
287  * The algos which are in each pipeline are sent to the firmware one by one
288  *
289  * Called with lock held
290  */
291 static int sst_find_and_send_pipe_algo(struct sst_data *drv,
292 					const char *pipe, struct sst_ids *ids)
293 {
294 	int ret = 0;
295 	struct sst_algo_control *bc;
296 	struct sst_module *algo;
297 
298 	dev_dbg(&drv->pdev->dev, "Enter: widget=%s\n", pipe);
299 
300 	list_for_each_entry(algo, &ids->algo_list, node) {
301 		bc = (void *)algo->kctl->private_value;
302 
303 		dev_dbg(&drv->pdev->dev, "Found algo control name=%s pipe=%s\n",
304 				algo->kctl->id.name, pipe);
305 		ret = sst_send_algo_cmd(drv, bc);
306 		if (ret)
307 			return ret;
308 	}
309 	return ret;
310 }
311 
312 static int sst_algo_bytes_ctl_info(struct snd_kcontrol *kcontrol,
313 			    struct snd_ctl_elem_info *uinfo)
314 {
315 	struct sst_algo_control *bc = (void *)kcontrol->private_value;
316 
317 	uinfo->type = SNDRV_CTL_ELEM_TYPE_BYTES;
318 	uinfo->count = bc->max;
319 
320 	return 0;
321 }
322 
323 static int sst_algo_control_get(struct snd_kcontrol *kcontrol,
324 				struct snd_ctl_elem_value *ucontrol)
325 {
326 	struct sst_algo_control *bc = (void *)kcontrol->private_value;
327 	struct snd_soc_component *component = snd_kcontrol_chip(kcontrol);
328 
329 	switch (bc->type) {
330 	case SST_ALGO_PARAMS:
331 		memcpy(ucontrol->value.bytes.data, bc->params, bc->max);
332 		break;
333 	default:
334 		dev_err(component->dev, "Invalid Input- algo type:%d\n",
335 				bc->type);
336 		return -EINVAL;
337 
338 	}
339 	return 0;
340 }
341 
342 static int sst_algo_control_set(struct snd_kcontrol *kcontrol,
343 				struct snd_ctl_elem_value *ucontrol)
344 {
345 	int ret = 0;
346 	struct snd_soc_component *cmpnt = snd_kcontrol_chip(kcontrol);
347 	struct sst_data *drv = snd_soc_component_get_drvdata(cmpnt);
348 	struct sst_algo_control *bc = (void *)kcontrol->private_value;
349 
350 	dev_dbg(cmpnt->dev, "control_name=%s\n", kcontrol->id.name);
351 	guard(mutex)(&drv->lock);
352 	switch (bc->type) {
353 	case SST_ALGO_PARAMS:
354 		memcpy(bc->params, ucontrol->value.bytes.data, bc->max);
355 		break;
356 	default:
357 		dev_err(cmpnt->dev, "Invalid Input- algo type:%d\n",
358 				bc->type);
359 		return -EINVAL;
360 	}
361 	/*if pipe is enabled, need to send the algo params from here*/
362 	if (bc->w && bc->w->power)
363 		ret = sst_send_algo_cmd(drv, bc);
364 
365 	return ret;
366 }
367 
368 static int sst_gain_ctl_info(struct snd_kcontrol *kcontrol,
369 	struct snd_ctl_elem_info *uinfo)
370 {
371 	struct sst_gain_mixer_control *mc = (void *)kcontrol->private_value;
372 
373 	uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
374 	uinfo->count = mc->stereo ? 2 : 1;
375 	uinfo->value.integer.min = mc->min;
376 	uinfo->value.integer.max = mc->max;
377 
378 	return 0;
379 }
380 
381 /**
382  * sst_send_gain_cmd - send the gain algorithm IPC to the FW
383  * @drv: sst_data
384  * @gv:the stored value of gain (also contains rampduration)
385  * @task_id: task index
386  * @loc_id: location/position index
387  * @module_id: module index
388  * @mute: flag that indicates whether this was called from the
389  *  digital_mute callback or directly. If called from the
390  *  digital_mute callback, module will be muted/unmuted based on this
391  *  flag. The flag is always 0 if called directly.
392  *
393  * Called with sst_data.lock held
394  *
395  * The user-set gain value is sent only if the user-controllable 'mute' control
396  * is OFF (indicated by gv->mute). Otherwise, the mute value (MIN value) is
397  * sent.
398  */
399 static int sst_send_gain_cmd(struct sst_data *drv, struct sst_gain_value *gv,
400 			      u16 task_id, u16 loc_id, u16 module_id, int mute)
401 {
402 	struct sst_cmd_set_gain_dual cmd;
403 
404 	dev_dbg(&drv->pdev->dev, "Enter\n");
405 
406 	cmd.header.command_id = MMX_SET_GAIN;
407 	SST_FILL_DEFAULT_DESTINATION(cmd.header.dst);
408 	cmd.gain_cell_num = 1;
409 
410 	if (mute || gv->mute) {
411 		cmd.cell_gains[0].cell_gain_left = SST_GAIN_MIN_VALUE;
412 		cmd.cell_gains[0].cell_gain_right = SST_GAIN_MIN_VALUE;
413 	} else {
414 		cmd.cell_gains[0].cell_gain_left = gv->l_gain;
415 		cmd.cell_gains[0].cell_gain_right = gv->r_gain;
416 	}
417 
418 	SST_FILL_DESTINATION(2, cmd.cell_gains[0].dest,
419 			     loc_id, module_id);
420 	cmd.cell_gains[0].gain_time_constant = gv->ramp_duration;
421 
422 	cmd.header.length = sizeof(struct sst_cmd_set_gain_dual)
423 				- sizeof(struct sst_dsp_header);
424 
425 	/* we are with lock held, so call the unlocked api  to send */
426 	return sst_fill_and_send_cmd_unlocked(drv, SST_IPC_IA_SET_PARAMS,
427 				SST_FLAG_BLOCKED, task_id, 0, &cmd,
428 			      sizeof(cmd.header) + cmd.header.length);
429 }
430 
431 static int sst_gain_get(struct snd_kcontrol *kcontrol,
432 			struct snd_ctl_elem_value *ucontrol)
433 {
434 	struct snd_soc_component *component = snd_kcontrol_chip(kcontrol);
435 	struct sst_gain_mixer_control *mc = (void *)kcontrol->private_value;
436 	struct sst_gain_value *gv = mc->gain_val;
437 
438 	switch (mc->type) {
439 	case SST_GAIN_TLV:
440 		ucontrol->value.integer.value[0] = gv->l_gain;
441 		ucontrol->value.integer.value[1] = gv->r_gain;
442 		break;
443 
444 	case SST_GAIN_MUTE:
445 		ucontrol->value.integer.value[0] = gv->mute ? 0 : 1;
446 		break;
447 
448 	case SST_GAIN_RAMP_DURATION:
449 		ucontrol->value.integer.value[0] = gv->ramp_duration;
450 		break;
451 
452 	default:
453 		dev_err(component->dev, "Invalid Input- gain type:%d\n",
454 				mc->type);
455 		return -EINVAL;
456 	}
457 
458 	return 0;
459 }
460 
461 static int sst_gain_put(struct snd_kcontrol *kcontrol,
462 			struct snd_ctl_elem_value *ucontrol)
463 {
464 	int ret = 0;
465 	struct snd_soc_component *cmpnt = snd_kcontrol_chip(kcontrol);
466 	struct sst_data *drv = snd_soc_component_get_drvdata(cmpnt);
467 	struct sst_gain_mixer_control *mc = (void *)kcontrol->private_value;
468 	struct sst_gain_value *gv = mc->gain_val;
469 
470 	guard(mutex)(&drv->lock);
471 
472 	switch (mc->type) {
473 	case SST_GAIN_TLV:
474 		gv->l_gain = ucontrol->value.integer.value[0];
475 		gv->r_gain = ucontrol->value.integer.value[1];
476 		dev_dbg(cmpnt->dev, "%s: Volume %d, %d\n",
477 				mc->pname, gv->l_gain, gv->r_gain);
478 		break;
479 
480 	case SST_GAIN_MUTE:
481 		gv->mute = !ucontrol->value.integer.value[0];
482 		dev_dbg(cmpnt->dev, "%s: Mute %d\n", mc->pname, gv->mute);
483 		break;
484 
485 	case SST_GAIN_RAMP_DURATION:
486 		gv->ramp_duration = ucontrol->value.integer.value[0];
487 		dev_dbg(cmpnt->dev, "%s: Ramp Delay%d\n",
488 					mc->pname, gv->ramp_duration);
489 		break;
490 
491 	default:
492 		dev_err(cmpnt->dev, "Invalid Input- gain type:%d\n",
493 				mc->type);
494 		return -EINVAL;
495 	}
496 
497 	if (mc->w && mc->w->power)
498 		ret = sst_send_gain_cmd(drv, gv, mc->task_id,
499 			mc->pipe_id | mc->instance_id, mc->module_id, 0);
500 
501 	return ret;
502 }
503 
504 static int sst_set_pipe_gain(struct sst_ids *ids,
505 				struct sst_data *drv, int mute);
506 
507 static int sst_send_pipe_module_params(struct snd_soc_dapm_widget *w,
508 		struct snd_kcontrol *kcontrol)
509 {
510 	struct snd_soc_component *c = snd_soc_dapm_to_component(w->dapm);
511 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
512 	struct sst_ids *ids = w->priv;
513 
514 	guard(mutex)(&drv->lock);
515 	sst_find_and_send_pipe_algo(drv, w->name, ids);
516 	sst_set_pipe_gain(ids, drv, 0);
517 
518 	return 0;
519 }
520 
521 static int sst_generic_modules_event(struct snd_soc_dapm_widget *w,
522 				     struct snd_kcontrol *k, int event)
523 {
524 	if (SND_SOC_DAPM_EVENT_ON(event))
525 		return sst_send_pipe_module_params(w, k);
526 	return 0;
527 }
528 
529 static const DECLARE_TLV_DB_SCALE(sst_gain_tlv_common, SST_GAIN_MIN_VALUE * 10, 10, 0);
530 
531 /* Look up table to convert MIXER SW bit regs to SWM inputs */
532 static const uint swm_mixer_input_ids[SST_SWM_INPUT_COUNT] = {
533 	[SST_IP_MODEM]		= SST_SWM_IN_MODEM,
534 	[SST_IP_CODEC0]		= SST_SWM_IN_CODEC0,
535 	[SST_IP_CODEC1]		= SST_SWM_IN_CODEC1,
536 	[SST_IP_LOOP0]		= SST_SWM_IN_SPROT_LOOP,
537 	[SST_IP_LOOP1]		= SST_SWM_IN_MEDIA_LOOP1,
538 	[SST_IP_LOOP2]		= SST_SWM_IN_MEDIA_LOOP2,
539 	[SST_IP_PCM0]		= SST_SWM_IN_PCM0,
540 	[SST_IP_PCM1]		= SST_SWM_IN_PCM1,
541 	[SST_IP_MEDIA0]		= SST_SWM_IN_MEDIA0,
542 	[SST_IP_MEDIA1]		= SST_SWM_IN_MEDIA1,
543 	[SST_IP_MEDIA2]		= SST_SWM_IN_MEDIA2,
544 	[SST_IP_MEDIA3]		= SST_SWM_IN_MEDIA3,
545 };
546 
547 /**
548  * fill_swm_input - fill in the SWM input ids given the register
549  * @cmpnt: ASoC component
550  * @swm_input: array of swm_input_ids
551  * @reg: the register value is a bit-field inicated which mixer inputs are ON.
552  *
553  * Use the lookup table to get the input-id and fill it in the
554  * structure.
555  */
556 static int fill_swm_input(struct snd_soc_component *cmpnt,
557 		struct swm_input_ids *swm_input, unsigned int reg)
558 {
559 	uint i, is_set, nb_inputs = 0;
560 	u16 input_loc_id;
561 
562 	dev_dbg(cmpnt->dev, "reg: %#x\n", reg);
563 	for (i = 0; i < SST_SWM_INPUT_COUNT; i++) {
564 		is_set = reg & BIT(i);
565 		if (!is_set)
566 			continue;
567 
568 		input_loc_id = swm_mixer_input_ids[i];
569 		SST_FILL_DESTINATION(2, swm_input->input_id,
570 				     input_loc_id, SST_DEFAULT_MODULE_ID);
571 		nb_inputs++;
572 		swm_input++;
573 		dev_dbg(cmpnt->dev, "input id: %#x, nb_inputs: %d\n",
574 				input_loc_id, nb_inputs);
575 
576 		if (nb_inputs == SST_CMD_SWM_MAX_INPUTS) {
577 			dev_warn(cmpnt->dev, "SET_SWM cmd max inputs reached");
578 			break;
579 		}
580 	}
581 	return nb_inputs;
582 }
583 
584 
585 /*
586  * called with lock held
587  */
588 static int sst_set_pipe_gain(struct sst_ids *ids,
589 			struct sst_data *drv, int mute)
590 {
591 	int ret = 0;
592 	struct sst_gain_mixer_control *mc;
593 	struct sst_gain_value *gv;
594 	struct sst_module *gain;
595 
596 	list_for_each_entry(gain, &ids->gain_list, node) {
597 		struct snd_kcontrol *kctl = gain->kctl;
598 
599 		dev_dbg(&drv->pdev->dev, "control name=%s\n", kctl->id.name);
600 		mc = (void *)kctl->private_value;
601 		gv = mc->gain_val;
602 
603 		ret = sst_send_gain_cmd(drv, gv, mc->task_id,
604 			mc->pipe_id | mc->instance_id, mc->module_id, mute);
605 		if (ret)
606 			return ret;
607 	}
608 	return ret;
609 }
610 
611 static int sst_swm_mixer_event(struct snd_soc_dapm_widget *w,
612 			struct snd_kcontrol *k, int event)
613 {
614 	struct sst_cmd_set_swm cmd;
615 	struct snd_soc_component *cmpnt = snd_soc_dapm_to_component(w->dapm);
616 	struct sst_data *drv = snd_soc_component_get_drvdata(cmpnt);
617 	struct sst_ids *ids = w->priv;
618 	bool set_mixer = false;
619 	struct soc_mixer_control *mc;
620 	int val = 0;
621 	int i = 0;
622 
623 	dev_dbg(cmpnt->dev, "widget = %s\n", w->name);
624 	/*
625 	 * Identify which mixer input is on and send the bitmap of the
626 	 * inputs as an IPC to the DSP.
627 	 */
628 	for (i = 0; i < w->num_kcontrols; i++) {
629 		if (snd_soc_dapm_kcontrol_get_value(w->kcontrols[i])) {
630 			mc = (struct soc_mixer_control *)(w->kcontrols[i])->private_value;
631 			val |= 1 << mc->shift;
632 		}
633 	}
634 	dev_dbg(cmpnt->dev, "val = %#x\n", val);
635 
636 	switch (event) {
637 	case SND_SOC_DAPM_PRE_PMU:
638 	case SND_SOC_DAPM_POST_PMD:
639 		set_mixer = true;
640 		break;
641 	case SND_SOC_DAPM_POST_REG:
642 		if (w->power)
643 			set_mixer = true;
644 		break;
645 	default:
646 		set_mixer = false;
647 	}
648 
649 	if (!set_mixer)
650 		return 0;
651 
652 	if (SND_SOC_DAPM_EVENT_ON(event) ||
653 	    event == SND_SOC_DAPM_POST_REG)
654 		cmd.switch_state = SST_SWM_ON;
655 	else
656 		cmd.switch_state = SST_SWM_OFF;
657 
658 	SST_FILL_DEFAULT_DESTINATION(cmd.header.dst);
659 	/* MMX_SET_SWM == SBA_SET_SWM */
660 	cmd.header.command_id = SBA_SET_SWM;
661 
662 	SST_FILL_DESTINATION(2, cmd.output_id,
663 			     ids->location_id, SST_DEFAULT_MODULE_ID);
664 	cmd.nb_inputs =	fill_swm_input(cmpnt, &cmd.input[0], val);
665 	cmd.header.length = offsetof(struct sst_cmd_set_swm, input)
666 				- sizeof(struct sst_dsp_header)
667 				+ (cmd.nb_inputs * sizeof(cmd.input[0]));
668 
669 	return sst_fill_and_send_cmd(drv, SST_IPC_IA_CMD, SST_FLAG_BLOCKED,
670 			      ids->task_id, 0, &cmd,
671 			      sizeof(cmd.header) + cmd.header.length);
672 }
673 
674 /* SBA mixers - 16 inputs */
675 #define SST_SBA_DECLARE_MIX_CONTROLS(kctl_name)							\
676 	static const struct snd_kcontrol_new kctl_name[] = {					\
677 		SOC_DAPM_SINGLE("modem_in Switch", SND_SOC_NOPM, SST_IP_MODEM, 1, 0),		\
678 		SOC_DAPM_SINGLE("codec_in0 Switch", SND_SOC_NOPM, SST_IP_CODEC0, 1, 0),		\
679 		SOC_DAPM_SINGLE("codec_in1 Switch", SND_SOC_NOPM, SST_IP_CODEC1, 1, 0),		\
680 		SOC_DAPM_SINGLE("sprot_loop_in Switch", SND_SOC_NOPM, SST_IP_LOOP0, 1, 0),	\
681 		SOC_DAPM_SINGLE("media_loop1_in Switch", SND_SOC_NOPM, SST_IP_LOOP1, 1, 0),	\
682 		SOC_DAPM_SINGLE("media_loop2_in Switch", SND_SOC_NOPM, SST_IP_LOOP2, 1, 0),	\
683 		SOC_DAPM_SINGLE("pcm0_in Switch", SND_SOC_NOPM, SST_IP_PCM0, 1, 0),		\
684 		SOC_DAPM_SINGLE("pcm1_in Switch", SND_SOC_NOPM, SST_IP_PCM1, 1, 0),		\
685 	}
686 
687 #define SST_SBA_MIXER_GRAPH_MAP(mix_name)			\
688 	{ mix_name, "modem_in Switch",	"modem_in" },		\
689 	{ mix_name, "codec_in0 Switch",	"codec_in0" },		\
690 	{ mix_name, "codec_in1 Switch",	"codec_in1" },		\
691 	{ mix_name, "sprot_loop_in Switch",	"sprot_loop_in" },	\
692 	{ mix_name, "media_loop1_in Switch",	"media_loop1_in" },	\
693 	{ mix_name, "media_loop2_in Switch",	"media_loop2_in" },	\
694 	{ mix_name, "pcm0_in Switch",		"pcm0_in" },		\
695 	{ mix_name, "pcm1_in Switch",		"pcm1_in" }
696 
697 #define SST_MMX_DECLARE_MIX_CONTROLS(kctl_name)						\
698 	static const struct snd_kcontrol_new kctl_name[] = {				\
699 		SOC_DAPM_SINGLE("media0_in Switch", SND_SOC_NOPM, SST_IP_MEDIA0, 1, 0),	\
700 		SOC_DAPM_SINGLE("media1_in Switch", SND_SOC_NOPM, SST_IP_MEDIA1, 1, 0),	\
701 		SOC_DAPM_SINGLE("media2_in Switch", SND_SOC_NOPM, SST_IP_MEDIA2, 1, 0),	\
702 		SOC_DAPM_SINGLE("media3_in Switch", SND_SOC_NOPM, SST_IP_MEDIA3, 1, 0),	\
703 	}
704 
705 SST_MMX_DECLARE_MIX_CONTROLS(sst_mix_media0_controls);
706 SST_MMX_DECLARE_MIX_CONTROLS(sst_mix_media1_controls);
707 
708 /* 18 SBA mixers */
709 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_pcm0_controls);
710 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_pcm1_controls);
711 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_pcm2_controls);
712 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_sprot_l0_controls);
713 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_media_l1_controls);
714 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_media_l2_controls);
715 SST_SBA_DECLARE_MIX_CONTROLS(__maybe_unused sst_mix_voip_controls);
716 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_codec0_controls);
717 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_codec1_controls);
718 SST_SBA_DECLARE_MIX_CONTROLS(sst_mix_modem_controls);
719 
720 /*
721  * sst_handle_vb_timer - Start/Stop the DSP scheduler
722  *
723  * The DSP expects first cmd to be SBA_VB_START, so at first startup send
724  * that.
725  * DSP expects last cmd to be SBA_VB_IDLE, so at last shutdown send that.
726  *
727  * Do refcount internally so that we send command only at first start
728  * and last end. Since SST driver does its own ref count, invoke sst's
729  * power ops always!
730  */
731 int sst_handle_vb_timer(struct snd_soc_dai *dai, bool enable)
732 {
733 	int ret = 0;
734 	struct sst_cmd_generic cmd;
735 	struct sst_data *drv = snd_soc_dai_get_drvdata(dai);
736 	static int timer_usage;
737 
738 	if (enable)
739 		cmd.header.command_id = SBA_VB_START;
740 	else
741 		cmd.header.command_id = SBA_IDLE;
742 	dev_dbg(dai->dev, "enable=%u, usage=%d\n", enable, timer_usage);
743 
744 	SST_FILL_DEFAULT_DESTINATION(cmd.header.dst);
745 	cmd.header.length = 0;
746 
747 	if (enable) {
748 		ret = sst->ops->power(sst->dev, true);
749 		if (ret < 0)
750 			return ret;
751 	}
752 
753 	scoped_guard(mutex, &drv->lock) {
754 		if (enable)
755 			timer_usage++;
756 		else
757 			timer_usage--;
758 
759 		/*
760 		 * Send the command only if this call is the first enable or last
761 		 * disable
762 		 */
763 		if ((enable && timer_usage == 1) ||
764 		    (!enable && timer_usage == 0)) {
765 			ret = sst_fill_and_send_cmd_unlocked(drv, SST_IPC_IA_CMD,
766 							     SST_FLAG_BLOCKED,
767 							     SST_TASK_SBA, 0, &cmd,
768 							     sizeof(cmd.header) +
769 							     cmd.header.length);
770 			if (ret && enable) {
771 				timer_usage--;
772 				enable  = false;
773 			}
774 		}
775 	}
776 
777 	if (!enable)
778 		sst->ops->power(sst->dev, false);
779 	return ret;
780 }
781 
782 int sst_fill_ssp_slot(struct snd_soc_dai *dai, unsigned int tx_mask,
783 		unsigned int rx_mask, int slots, int slot_width)
784 {
785 	struct sst_data *ctx = snd_soc_dai_get_drvdata(dai);
786 
787 	ctx->ssp_cmd.nb_slots = slots;
788 	ctx->ssp_cmd.active_tx_slot_map = tx_mask;
789 	ctx->ssp_cmd.active_rx_slot_map = rx_mask;
790 	ctx->ssp_cmd.nb_bits_per_slots = slot_width;
791 
792 	return 0;
793 }
794 
795 static int sst_get_frame_sync_polarity(struct snd_soc_dai *dai,
796 		unsigned int fmt)
797 {
798 	int format;
799 
800 	format = fmt & SND_SOC_DAIFMT_INV_MASK;
801 	dev_dbg(dai->dev, "Enter:%s, format=%x\n", __func__, format);
802 
803 	switch (format) {
804 	case SND_SOC_DAIFMT_NB_NF:
805 	case SND_SOC_DAIFMT_IB_NF:
806 		return SSP_FS_ACTIVE_HIGH;
807 	case SND_SOC_DAIFMT_NB_IF:
808 	case SND_SOC_DAIFMT_IB_IF:
809 		return SSP_FS_ACTIVE_LOW;
810 	default:
811 		dev_err(dai->dev, "Invalid frame sync polarity %d\n", format);
812 	}
813 
814 	return -EINVAL;
815 }
816 
817 static int sst_get_ssp_mode(struct snd_soc_dai *dai, unsigned int fmt)
818 {
819 	int format;
820 
821 	format = (fmt & SND_SOC_DAIFMT_CLOCK_PROVIDER_MASK);
822 	dev_dbg(dai->dev, "Enter:%s, format=%x\n", __func__, format);
823 
824 	switch (format) {
825 	case SND_SOC_DAIFMT_BP_FP:
826 		return SSP_MODE_PROVIDER;
827 	case SND_SOC_DAIFMT_BC_FC:
828 		return SSP_MODE_CONSUMER;
829 	default:
830 		dev_err(dai->dev, "Invalid ssp protocol: %d\n", format);
831 	}
832 
833 	return -EINVAL;
834 }
835 
836 
837 int sst_fill_ssp_config(struct snd_soc_dai *dai, unsigned int fmt)
838 {
839 	unsigned int mode;
840 	int fs_polarity;
841 	struct sst_data *ctx = snd_soc_dai_get_drvdata(dai);
842 
843 	mode = fmt & SND_SOC_DAIFMT_FORMAT_MASK;
844 
845 	switch (mode) {
846 	case SND_SOC_DAIFMT_DSP_B:
847 		ctx->ssp_cmd.ssp_protocol = SSP_MODE_PCM;
848 		ctx->ssp_cmd.mode = sst_get_ssp_mode(dai, fmt) | (SSP_PCM_MODE_NETWORK << 1);
849 		ctx->ssp_cmd.start_delay = 0;
850 		ctx->ssp_cmd.data_polarity = 1;
851 		ctx->ssp_cmd.frame_sync_width = 1;
852 		break;
853 
854 	case SND_SOC_DAIFMT_DSP_A:
855 		ctx->ssp_cmd.ssp_protocol = SSP_MODE_PCM;
856 		ctx->ssp_cmd.mode = sst_get_ssp_mode(dai, fmt) | (SSP_PCM_MODE_NETWORK << 1);
857 		ctx->ssp_cmd.start_delay = 1;
858 		ctx->ssp_cmd.data_polarity = 1;
859 		ctx->ssp_cmd.frame_sync_width = 1;
860 		break;
861 
862 	case SND_SOC_DAIFMT_I2S:
863 		ctx->ssp_cmd.ssp_protocol = SSP_MODE_I2S;
864 		ctx->ssp_cmd.mode = sst_get_ssp_mode(dai, fmt) | (SSP_PCM_MODE_NORMAL << 1);
865 		ctx->ssp_cmd.start_delay = 1;
866 		ctx->ssp_cmd.data_polarity = 0;
867 		ctx->ssp_cmd.frame_sync_width = ctx->ssp_cmd.nb_bits_per_slots;
868 		break;
869 
870 	case SND_SOC_DAIFMT_LEFT_J:
871 		ctx->ssp_cmd.ssp_protocol = SSP_MODE_I2S;
872 		ctx->ssp_cmd.mode = sst_get_ssp_mode(dai, fmt) | (SSP_PCM_MODE_NORMAL << 1);
873 		ctx->ssp_cmd.start_delay = 0;
874 		ctx->ssp_cmd.data_polarity = 0;
875 		ctx->ssp_cmd.frame_sync_width = ctx->ssp_cmd.nb_bits_per_slots;
876 		break;
877 
878 	default:
879 		dev_dbg(dai->dev, "using default ssp configs\n");
880 	}
881 
882 	fs_polarity = sst_get_frame_sync_polarity(dai, fmt);
883 	if (fs_polarity < 0)
884 		return fs_polarity;
885 
886 	ctx->ssp_cmd.frame_sync_polarity = fs_polarity;
887 
888 	return 0;
889 }
890 
891 /*
892  * sst_ssp_config - contains SSP configuration for media UC
893  * this can be overwritten by set_dai_xxx APIs
894  */
895 static const struct sst_ssp_config sst_ssp_configs = {
896 	.ssp_id = SSP_CODEC,
897 	.bits_per_slot = 24,
898 	.slots = 4,
899 	.ssp_mode = SSP_MODE_PROVIDER,
900 	.pcm_mode = SSP_PCM_MODE_NETWORK,
901 	.duplex = SSP_DUPLEX,
902 	.ssp_protocol = SSP_MODE_PCM,
903 	.fs_width = 1,
904 	.fs_frequency = SSP_FS_48_KHZ,
905 	.active_slot_map = 0xF,
906 	.start_delay = 0,
907 	.frame_sync_polarity = SSP_FS_ACTIVE_HIGH,
908 	.data_polarity = 1,
909 };
910 
911 void sst_fill_ssp_defaults(struct snd_soc_dai *dai)
912 {
913 	const struct sst_ssp_config *config;
914 	struct sst_data *ctx = snd_soc_dai_get_drvdata(dai);
915 
916 	config = &sst_ssp_configs;
917 
918 	ctx->ssp_cmd.selection = config->ssp_id;
919 	ctx->ssp_cmd.nb_bits_per_slots = config->bits_per_slot;
920 	ctx->ssp_cmd.nb_slots = config->slots;
921 	ctx->ssp_cmd.mode = config->ssp_mode | (config->pcm_mode << 1);
922 	ctx->ssp_cmd.duplex = config->duplex;
923 	ctx->ssp_cmd.active_tx_slot_map = config->active_slot_map;
924 	ctx->ssp_cmd.active_rx_slot_map = config->active_slot_map;
925 	ctx->ssp_cmd.frame_sync_frequency = config->fs_frequency;
926 	ctx->ssp_cmd.frame_sync_polarity = config->frame_sync_polarity;
927 	ctx->ssp_cmd.data_polarity = config->data_polarity;
928 	ctx->ssp_cmd.frame_sync_width = config->fs_width;
929 	ctx->ssp_cmd.ssp_protocol = config->ssp_protocol;
930 	ctx->ssp_cmd.start_delay = config->start_delay;
931 	ctx->ssp_cmd.reserved1 = ctx->ssp_cmd.reserved2 = 0xFF;
932 }
933 
934 int send_ssp_cmd(struct snd_soc_dai *dai, const char *id, bool enable)
935 {
936 	struct sst_data *drv = snd_soc_dai_get_drvdata(dai);
937 	int ssp_id;
938 
939 	dev_dbg(dai->dev, "Enter: enable=%d port_name=%s\n", enable, id);
940 
941 	if (strcmp(id, "ssp0-port") == 0)
942 		ssp_id = SSP_MODEM;
943 	else if (strcmp(id, "ssp2-port") == 0)
944 		ssp_id = SSP_CODEC;
945 	else {
946 		dev_dbg(dai->dev, "port %s is not supported\n", id);
947 		return -1;
948 	}
949 
950 	SST_FILL_DEFAULT_DESTINATION(drv->ssp_cmd.header.dst);
951 	drv->ssp_cmd.header.command_id = SBA_HW_SET_SSP;
952 	drv->ssp_cmd.header.length = sizeof(struct sst_cmd_sba_hw_set_ssp)
953 				- sizeof(struct sst_dsp_header);
954 
955 	drv->ssp_cmd.selection = ssp_id;
956 	dev_dbg(dai->dev, "ssp_id: %u\n", ssp_id);
957 
958 	if (enable)
959 		drv->ssp_cmd.switch_state = SST_SWITCH_ON;
960 	else
961 		drv->ssp_cmd.switch_state = SST_SWITCH_OFF;
962 
963 	return sst_fill_and_send_cmd(drv, SST_IPC_IA_CMD, SST_FLAG_BLOCKED,
964 				SST_TASK_SBA, 0, &drv->ssp_cmd,
965 				sizeof(drv->ssp_cmd.header) + drv->ssp_cmd.header.length);
966 }
967 
968 static int sst_set_be_modules(struct snd_soc_dapm_widget *w,
969 			 struct snd_kcontrol *k, int event)
970 {
971 	int ret = 0;
972 	struct snd_soc_component *c = snd_soc_dapm_to_component(w->dapm);
973 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
974 
975 	dev_dbg(c->dev, "Enter: widget=%s\n", w->name);
976 
977 	if (SND_SOC_DAPM_EVENT_ON(event)) {
978 		mutex_lock(&drv->lock);
979 		ret = sst_send_slot_map(drv);
980 		mutex_unlock(&drv->lock);
981 		if (ret)
982 			return ret;
983 		ret = sst_send_pipe_module_params(w, k);
984 	}
985 	return ret;
986 }
987 
988 static int sst_set_media_path(struct snd_soc_dapm_widget *w,
989 			      struct snd_kcontrol *k, int event)
990 {
991 	int ret = 0;
992 	struct sst_cmd_set_media_path cmd;
993 	struct snd_soc_component *c = snd_soc_dapm_to_component(w->dapm);
994 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
995 	struct sst_ids *ids = w->priv;
996 
997 	dev_dbg(c->dev, "widget=%s\n", w->name);
998 	dev_dbg(c->dev, "task=%u, location=%#x\n",
999 				ids->task_id, ids->location_id);
1000 
1001 	if (SND_SOC_DAPM_EVENT_ON(event))
1002 		cmd.switch_state = SST_PATH_ON;
1003 	else
1004 		cmd.switch_state = SST_PATH_OFF;
1005 
1006 	SST_FILL_DESTINATION(2, cmd.header.dst,
1007 			     ids->location_id, SST_DEFAULT_MODULE_ID);
1008 
1009 	/* MMX_SET_MEDIA_PATH == SBA_SET_MEDIA_PATH */
1010 	cmd.header.command_id = MMX_SET_MEDIA_PATH;
1011 	cmd.header.length = sizeof(struct sst_cmd_set_media_path)
1012 				- sizeof(struct sst_dsp_header);
1013 
1014 	ret = sst_fill_and_send_cmd(drv, SST_IPC_IA_CMD, SST_FLAG_BLOCKED,
1015 			      ids->task_id, 0, &cmd,
1016 			      sizeof(cmd.header) + cmd.header.length);
1017 	if (ret)
1018 		return ret;
1019 
1020 	if (SND_SOC_DAPM_EVENT_ON(event))
1021 		ret = sst_send_pipe_module_params(w, k);
1022 	return ret;
1023 }
1024 
1025 static int sst_set_media_loop(struct snd_soc_dapm_widget *w,
1026 			struct snd_kcontrol *k, int event)
1027 {
1028 	int ret = 0;
1029 	struct sst_cmd_sba_set_media_loop_map cmd;
1030 	struct snd_soc_component *c = snd_soc_dapm_to_component(w->dapm);
1031 	struct sst_data *drv = snd_soc_component_get_drvdata(c);
1032 	struct sst_ids *ids = w->priv;
1033 
1034 	dev_dbg(c->dev, "Enter:widget=%s\n", w->name);
1035 	if (SND_SOC_DAPM_EVENT_ON(event))
1036 		cmd.switch_state = SST_SWITCH_ON;
1037 	else
1038 		cmd.switch_state = SST_SWITCH_OFF;
1039 
1040 	SST_FILL_DESTINATION(2, cmd.header.dst,
1041 			     ids->location_id, SST_DEFAULT_MODULE_ID);
1042 
1043 	cmd.header.command_id = SBA_SET_MEDIA_LOOP_MAP;
1044 	cmd.header.length = sizeof(struct sst_cmd_sba_set_media_loop_map)
1045 				 - sizeof(struct sst_dsp_header);
1046 	cmd.param.part.cfg.rate = 2; /* 48khz */
1047 
1048 	cmd.param.part.cfg.format = ids->format; /* stereo/Mono */
1049 	cmd.param.part.cfg.s_length = 1; /* 24bit left justified */
1050 	cmd.map = 0; /* Algo sequence: Gain - DRP - FIR - IIR */
1051 
1052 	ret = sst_fill_and_send_cmd(drv, SST_IPC_IA_CMD, SST_FLAG_BLOCKED,
1053 			      SST_TASK_SBA, 0, &cmd,
1054 			      sizeof(cmd.header) + cmd.header.length);
1055 	if (ret)
1056 		return ret;
1057 
1058 	if (SND_SOC_DAPM_EVENT_ON(event))
1059 		ret = sst_send_pipe_module_params(w, k);
1060 	return ret;
1061 }
1062 
1063 static const struct snd_soc_dapm_widget sst_dapm_widgets[] = {
1064 	SST_AIF_IN("modem_in", sst_set_be_modules),
1065 	SST_AIF_IN("codec_in0", sst_set_be_modules),
1066 	SST_AIF_IN("codec_in1", sst_set_be_modules),
1067 	SST_AIF_OUT("modem_out", sst_set_be_modules),
1068 	SST_AIF_OUT("codec_out0", sst_set_be_modules),
1069 	SST_AIF_OUT("codec_out1", sst_set_be_modules),
1070 
1071 	/* Media Paths */
1072 	/* MediaX IN paths are set via ALLOC, so no SET_MEDIA_PATH command */
1073 	SST_PATH_INPUT("media0_in", SST_TASK_MMX, SST_SWM_IN_MEDIA0, sst_generic_modules_event),
1074 	SST_PATH_INPUT("media1_in", SST_TASK_MMX, SST_SWM_IN_MEDIA1, NULL),
1075 	SST_PATH_INPUT("media2_in", SST_TASK_MMX, SST_SWM_IN_MEDIA2, sst_set_media_path),
1076 	SST_PATH_INPUT("media3_in", SST_TASK_MMX, SST_SWM_IN_MEDIA3, NULL),
1077 	SST_PATH_OUTPUT("media0_out", SST_TASK_MMX, SST_SWM_OUT_MEDIA0, sst_set_media_path),
1078 	SST_PATH_OUTPUT("media1_out", SST_TASK_MMX, SST_SWM_OUT_MEDIA1, sst_set_media_path),
1079 
1080 	/* SBA PCM Paths */
1081 	SST_PATH_INPUT("pcm0_in", SST_TASK_SBA, SST_SWM_IN_PCM0, sst_set_media_path),
1082 	SST_PATH_INPUT("pcm1_in", SST_TASK_SBA, SST_SWM_IN_PCM1, sst_set_media_path),
1083 	SST_PATH_OUTPUT("pcm0_out", SST_TASK_SBA, SST_SWM_OUT_PCM0, sst_set_media_path),
1084 	SST_PATH_OUTPUT("pcm1_out", SST_TASK_SBA, SST_SWM_OUT_PCM1, sst_set_media_path),
1085 	SST_PATH_OUTPUT("pcm2_out", SST_TASK_SBA, SST_SWM_OUT_PCM2, sst_set_media_path),
1086 
1087 	/* SBA Loops */
1088 	SST_PATH_INPUT("sprot_loop_in", SST_TASK_SBA, SST_SWM_IN_SPROT_LOOP, NULL),
1089 	SST_PATH_INPUT("media_loop1_in", SST_TASK_SBA, SST_SWM_IN_MEDIA_LOOP1, NULL),
1090 	SST_PATH_INPUT("media_loop2_in", SST_TASK_SBA, SST_SWM_IN_MEDIA_LOOP2, NULL),
1091 	SST_PATH_MEDIA_LOOP_OUTPUT("sprot_loop_out", SST_TASK_SBA, SST_SWM_OUT_SPROT_LOOP, SST_FMT_STEREO, sst_set_media_loop),
1092 	SST_PATH_MEDIA_LOOP_OUTPUT("media_loop1_out", SST_TASK_SBA, SST_SWM_OUT_MEDIA_LOOP1, SST_FMT_STEREO, sst_set_media_loop),
1093 	SST_PATH_MEDIA_LOOP_OUTPUT("media_loop2_out", SST_TASK_SBA, SST_SWM_OUT_MEDIA_LOOP2, SST_FMT_STEREO, sst_set_media_loop),
1094 
1095 	/* Media Mixers */
1096 	SST_SWM_MIXER("media0_out mix 0", SND_SOC_NOPM, SST_TASK_MMX, SST_SWM_OUT_MEDIA0,
1097 		      sst_mix_media0_controls, sst_swm_mixer_event),
1098 	SST_SWM_MIXER("media1_out mix 0", SND_SOC_NOPM, SST_TASK_MMX, SST_SWM_OUT_MEDIA1,
1099 		      sst_mix_media1_controls, sst_swm_mixer_event),
1100 
1101 	/* SBA PCM mixers */
1102 	SST_SWM_MIXER("pcm0_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_PCM0,
1103 		      sst_mix_pcm0_controls, sst_swm_mixer_event),
1104 	SST_SWM_MIXER("pcm1_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_PCM1,
1105 		      sst_mix_pcm1_controls, sst_swm_mixer_event),
1106 	SST_SWM_MIXER("pcm2_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_PCM2,
1107 		      sst_mix_pcm2_controls, sst_swm_mixer_event),
1108 
1109 	/* SBA Loop mixers */
1110 	SST_SWM_MIXER("sprot_loop_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_SPROT_LOOP,
1111 		      sst_mix_sprot_l0_controls, sst_swm_mixer_event),
1112 	SST_SWM_MIXER("media_loop1_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_MEDIA_LOOP1,
1113 		      sst_mix_media_l1_controls, sst_swm_mixer_event),
1114 	SST_SWM_MIXER("media_loop2_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_MEDIA_LOOP2,
1115 		      sst_mix_media_l2_controls, sst_swm_mixer_event),
1116 
1117 	/* SBA Backend mixers */
1118 	SST_SWM_MIXER("codec_out0 mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_CODEC0,
1119 		      sst_mix_codec0_controls, sst_swm_mixer_event),
1120 	SST_SWM_MIXER("codec_out1 mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_CODEC1,
1121 		      sst_mix_codec1_controls, sst_swm_mixer_event),
1122 	SST_SWM_MIXER("modem_out mix 0", SND_SOC_NOPM, SST_TASK_SBA, SST_SWM_OUT_MODEM,
1123 		      sst_mix_modem_controls, sst_swm_mixer_event),
1124 
1125 };
1126 
1127 static const struct snd_soc_dapm_route intercon[] = {
1128 	{"media0_in", NULL, "Compress Playback"},
1129 	{"media1_in", NULL, "Headset Playback"},
1130 	{"media2_in", NULL, "pcm0_out"},
1131 	{"media3_in", NULL, "Deepbuffer Playback"},
1132 
1133 	{"media0_out mix 0", "media0_in Switch", "media0_in"},
1134 	{"media0_out mix 0", "media1_in Switch", "media1_in"},
1135 	{"media0_out mix 0", "media2_in Switch", "media2_in"},
1136 	{"media0_out mix 0", "media3_in Switch", "media3_in"},
1137 	{"media1_out mix 0", "media0_in Switch", "media0_in"},
1138 	{"media1_out mix 0", "media1_in Switch", "media1_in"},
1139 	{"media1_out mix 0", "media2_in Switch", "media2_in"},
1140 	{"media1_out mix 0", "media3_in Switch", "media3_in"},
1141 
1142 	{"media0_out", NULL, "media0_out mix 0"},
1143 	{"media1_out", NULL, "media1_out mix 0"},
1144 	{"pcm0_in", NULL, "media0_out"},
1145 	{"pcm1_in", NULL, "media1_out"},
1146 
1147 	{"Headset Capture", NULL, "pcm1_out"},
1148 	{"Headset Capture", NULL, "pcm2_out"},
1149 	{"pcm0_out", NULL, "pcm0_out mix 0"},
1150 	SST_SBA_MIXER_GRAPH_MAP("pcm0_out mix 0"),
1151 	{"pcm1_out", NULL, "pcm1_out mix 0"},
1152 	SST_SBA_MIXER_GRAPH_MAP("pcm1_out mix 0"),
1153 	{"pcm2_out", NULL, "pcm2_out mix 0"},
1154 	SST_SBA_MIXER_GRAPH_MAP("pcm2_out mix 0"),
1155 
1156 	{"media_loop1_in", NULL, "media_loop1_out"},
1157 	{"media_loop1_out", NULL, "media_loop1_out mix 0"},
1158 	SST_SBA_MIXER_GRAPH_MAP("media_loop1_out mix 0"),
1159 	{"media_loop2_in", NULL, "media_loop2_out"},
1160 	{"media_loop2_out", NULL, "media_loop2_out mix 0"},
1161 	SST_SBA_MIXER_GRAPH_MAP("media_loop2_out mix 0"),
1162 	{"sprot_loop_in", NULL, "sprot_loop_out"},
1163 	{"sprot_loop_out", NULL, "sprot_loop_out mix 0"},
1164 	SST_SBA_MIXER_GRAPH_MAP("sprot_loop_out mix 0"),
1165 
1166 	{"codec_out0", NULL, "codec_out0 mix 0"},
1167 	SST_SBA_MIXER_GRAPH_MAP("codec_out0 mix 0"),
1168 	{"codec_out1", NULL, "codec_out1 mix 0"},
1169 	SST_SBA_MIXER_GRAPH_MAP("codec_out1 mix 0"),
1170 	{"modem_out", NULL, "modem_out mix 0"},
1171 	SST_SBA_MIXER_GRAPH_MAP("modem_out mix 0"),
1172 
1173 
1174 };
1175 static const char * const slot_names[] = {
1176 	"none",
1177 	"slot 0", "slot 1", "slot 2", "slot 3",
1178 	"slot 4", "slot 5", "slot 6", "slot 7", /* not supported by FW */
1179 };
1180 
1181 static const char * const channel_names[] = {
1182 	"none",
1183 	"codec_out0_0", "codec_out0_1", "codec_out1_0", "codec_out1_1",
1184 	"codec_out2_0", "codec_out2_1", "codec_out3_0", "codec_out3_1", /* not supported by FW */
1185 };
1186 
1187 #define SST_INTERLEAVER(xpname, slot_name, slotno) \
1188 	SST_SSP_SLOT_CTL(xpname, "tx interleaver", slot_name, slotno, true, \
1189 			 channel_names, sst_slot_get, sst_slot_put)
1190 
1191 #define SST_DEINTERLEAVER(xpname, channel_name, channel_no) \
1192 	SST_SSP_SLOT_CTL(xpname, "rx deinterleaver", channel_name, channel_no, false, \
1193 			 slot_names, sst_slot_get, sst_slot_put)
1194 
1195 static const struct snd_kcontrol_new sst_slot_controls[] = {
1196 	SST_INTERLEAVER("codec_out", "slot 0", 0),
1197 	SST_INTERLEAVER("codec_out", "slot 1", 1),
1198 	SST_INTERLEAVER("codec_out", "slot 2", 2),
1199 	SST_INTERLEAVER("codec_out", "slot 3", 3),
1200 	SST_DEINTERLEAVER("codec_in", "codec_in0_0", 0),
1201 	SST_DEINTERLEAVER("codec_in", "codec_in0_1", 1),
1202 	SST_DEINTERLEAVER("codec_in", "codec_in1_0", 2),
1203 	SST_DEINTERLEAVER("codec_in", "codec_in1_1", 3),
1204 };
1205 
1206 /* Gain helper with min/max set */
1207 #define SST_GAIN(name, path_id, task_id, instance, gain_var)				\
1208 	SST_GAIN_KCONTROLS(name, "Gain", SST_GAIN_MIN_VALUE, SST_GAIN_MAX_VALUE,	\
1209 		SST_GAIN_TC_MIN, SST_GAIN_TC_MAX,					\
1210 		sst_gain_get, sst_gain_put,						\
1211 		SST_MODULE_ID_GAIN_CELL, path_id, instance, task_id,			\
1212 		sst_gain_tlv_common, gain_var)
1213 
1214 #define SST_VOLUME(name, path_id, task_id, instance, gain_var)				\
1215 	SST_GAIN_KCONTROLS(name, "Volume", SST_GAIN_MIN_VALUE, SST_GAIN_MAX_VALUE,	\
1216 		SST_GAIN_TC_MIN, SST_GAIN_TC_MAX,					\
1217 		sst_gain_get, sst_gain_put,						\
1218 		SST_MODULE_ID_VOLUME, path_id, instance, task_id,			\
1219 		sst_gain_tlv_common, gain_var)
1220 
1221 static struct sst_gain_value sst_gains[];
1222 
1223 static const struct snd_kcontrol_new sst_gain_controls[] = {
1224 	SST_GAIN("media0_in", SST_PATH_INDEX_MEDIA0_IN, SST_TASK_MMX, 0, &sst_gains[0]),
1225 	SST_GAIN("media1_in", SST_PATH_INDEX_MEDIA1_IN, SST_TASK_MMX, 0, &sst_gains[1]),
1226 	SST_GAIN("media2_in", SST_PATH_INDEX_MEDIA2_IN, SST_TASK_MMX, 0, &sst_gains[2]),
1227 	SST_GAIN("media3_in", SST_PATH_INDEX_MEDIA3_IN, SST_TASK_MMX, 0, &sst_gains[3]),
1228 
1229 	SST_GAIN("pcm0_in", SST_PATH_INDEX_PCM0_IN, SST_TASK_SBA, 0, &sst_gains[4]),
1230 	SST_GAIN("pcm1_in", SST_PATH_INDEX_PCM1_IN, SST_TASK_SBA, 0, &sst_gains[5]),
1231 	SST_GAIN("pcm1_out", SST_PATH_INDEX_PCM1_OUT, SST_TASK_SBA, 0, &sst_gains[6]),
1232 	SST_GAIN("pcm2_out", SST_PATH_INDEX_PCM2_OUT, SST_TASK_SBA, 0, &sst_gains[7]),
1233 
1234 	SST_GAIN("codec_in0", SST_PATH_INDEX_CODEC_IN0, SST_TASK_SBA, 0, &sst_gains[8]),
1235 	SST_GAIN("codec_in1", SST_PATH_INDEX_CODEC_IN1, SST_TASK_SBA, 0, &sst_gains[9]),
1236 	SST_GAIN("codec_out0", SST_PATH_INDEX_CODEC_OUT0, SST_TASK_SBA, 0, &sst_gains[10]),
1237 	SST_GAIN("codec_out1", SST_PATH_INDEX_CODEC_OUT1, SST_TASK_SBA, 0, &sst_gains[11]),
1238 	SST_GAIN("media_loop1_out", SST_PATH_INDEX_MEDIA_LOOP1_OUT, SST_TASK_SBA, 0, &sst_gains[12]),
1239 	SST_GAIN("media_loop2_out", SST_PATH_INDEX_MEDIA_LOOP2_OUT, SST_TASK_SBA, 0, &sst_gains[13]),
1240 	SST_GAIN("sprot_loop_out", SST_PATH_INDEX_SPROT_LOOP_OUT, SST_TASK_SBA, 0, &sst_gains[14]),
1241 	SST_VOLUME("media0_in", SST_PATH_INDEX_MEDIA0_IN, SST_TASK_MMX, 0, &sst_gains[15]),
1242 	SST_GAIN("modem_in", SST_PATH_INDEX_MODEM_IN, SST_TASK_SBA, 0, &sst_gains[16]),
1243 	SST_GAIN("modem_out", SST_PATH_INDEX_MODEM_OUT, SST_TASK_SBA, 0, &sst_gains[17]),
1244 
1245 };
1246 
1247 #define SST_GAIN_NUM_CONTROLS 3
1248 /* the SST_GAIN macro above will create three alsa controls for each
1249  * instance invoked, gain, mute and ramp duration, which use the same gain
1250  * cell sst_gain to keep track of data
1251  * To calculate number of gain cell instances we need to device by 3 in
1252  * below caulcation for gain cell memory.
1253  * This gets rid of static number and issues while adding new controls
1254  */
1255 static struct sst_gain_value sst_gains[ARRAY_SIZE(sst_gain_controls)/SST_GAIN_NUM_CONTROLS];
1256 
1257 static const struct snd_kcontrol_new sst_algo_controls[] = {
1258 	SST_ALGO_KCONTROL_BYTES("media_loop1_out", "fir", 272, SST_MODULE_ID_FIR_24,
1259 		 SST_PATH_INDEX_MEDIA_LOOP1_OUT, 0, SST_TASK_SBA, SBA_VB_SET_FIR),
1260 	SST_ALGO_KCONTROL_BYTES("media_loop1_out", "iir", 300, SST_MODULE_ID_IIR_24,
1261 		SST_PATH_INDEX_MEDIA_LOOP1_OUT, 0, SST_TASK_SBA, SBA_VB_SET_IIR),
1262 	SST_ALGO_KCONTROL_BYTES("media_loop1_out", "mdrp", 286, SST_MODULE_ID_MDRP,
1263 		SST_PATH_INDEX_MEDIA_LOOP1_OUT, 0, SST_TASK_SBA, SBA_SET_MDRP),
1264 	SST_ALGO_KCONTROL_BYTES("media_loop2_out", "fir", 272, SST_MODULE_ID_FIR_24,
1265 		SST_PATH_INDEX_MEDIA_LOOP2_OUT, 0, SST_TASK_SBA, SBA_VB_SET_FIR),
1266 	SST_ALGO_KCONTROL_BYTES("media_loop2_out", "iir", 300, SST_MODULE_ID_IIR_24,
1267 		SST_PATH_INDEX_MEDIA_LOOP2_OUT, 0, SST_TASK_SBA, SBA_VB_SET_IIR),
1268 	SST_ALGO_KCONTROL_BYTES("media_loop2_out", "mdrp", 286, SST_MODULE_ID_MDRP,
1269 		SST_PATH_INDEX_MEDIA_LOOP2_OUT, 0, SST_TASK_SBA, SBA_SET_MDRP),
1270 	SST_ALGO_KCONTROL_BYTES("sprot_loop_out", "lpro", 192, SST_MODULE_ID_SPROT,
1271 		SST_PATH_INDEX_SPROT_LOOP_OUT, 0, SST_TASK_SBA, SBA_VB_LPRO),
1272 	SST_ALGO_KCONTROL_BYTES("codec_in0", "dcr", 52, SST_MODULE_ID_FILT_DCR,
1273 		SST_PATH_INDEX_CODEC_IN0, 0, SST_TASK_SBA, SBA_VB_SET_IIR),
1274 	SST_ALGO_KCONTROL_BYTES("codec_in1", "dcr", 52, SST_MODULE_ID_FILT_DCR,
1275 		SST_PATH_INDEX_CODEC_IN1, 0, SST_TASK_SBA, SBA_VB_SET_IIR),
1276 
1277 };
1278 
1279 static int sst_algo_control_init(struct device *dev)
1280 {
1281 	int i = 0;
1282 	struct sst_algo_control *bc;
1283 	/*allocate space to cache the algo parameters in the driver*/
1284 	for (i = 0; i < ARRAY_SIZE(sst_algo_controls); i++) {
1285 		bc = (struct sst_algo_control *)sst_algo_controls[i].private_value;
1286 		bc->params = devm_kzalloc(dev, bc->max, GFP_KERNEL);
1287 		if (bc->params == NULL)
1288 			return -ENOMEM;
1289 	}
1290 	return 0;
1291 }
1292 
1293 static bool is_sst_dapm_widget(struct snd_soc_dapm_widget *w)
1294 {
1295 	switch (w->id) {
1296 	case snd_soc_dapm_pga:
1297 	case snd_soc_dapm_aif_in:
1298 	case snd_soc_dapm_aif_out:
1299 	case snd_soc_dapm_input:
1300 	case snd_soc_dapm_output:
1301 	case snd_soc_dapm_mixer:
1302 		return true;
1303 	default:
1304 		return false;
1305 	}
1306 }
1307 
1308 /**
1309  * sst_send_pipe_gains - send gains for the front-end DAIs
1310  * @dai: front-end dai
1311  * @stream: direction
1312  * @mute: boolean indicating mute status
1313  *
1314  * The gains in the pipes connected to the front-ends are muted/unmuted
1315  * automatically via the digital_mute() DAPM callback. This function sends the
1316  * gains for the front-end pipes.
1317  */
1318 int sst_send_pipe_gains(struct snd_soc_dai *dai, int stream, int mute)
1319 {
1320 	struct sst_data *drv = snd_soc_dai_get_drvdata(dai);
1321 	struct snd_soc_dapm_widget *w = snd_soc_dai_get_widget(dai, stream);
1322 	struct snd_soc_dapm_path *p;
1323 
1324 	dev_dbg(dai->dev, "enter, dai-name=%s dir=%d\n", dai->name, stream);
1325 	dev_dbg(dai->dev, "Stream name=%s\n", w->name);
1326 
1327 	if (stream == SNDRV_PCM_STREAM_PLAYBACK) {
1328 		snd_soc_dapm_widget_for_each_sink_path(w, p) {
1329 			if (p->connected && !p->connected(w, p->sink))
1330 				continue;
1331 
1332 			if (p->connect && p->sink->power &&
1333 					is_sst_dapm_widget(p->sink)) {
1334 				struct sst_ids *ids = p->sink->priv;
1335 
1336 				dev_dbg(dai->dev, "send gains for widget=%s\n",
1337 						p->sink->name);
1338 				mutex_lock(&drv->lock);
1339 				sst_set_pipe_gain(ids, drv, mute);
1340 				mutex_unlock(&drv->lock);
1341 			}
1342 		}
1343 	} else {
1344 		snd_soc_dapm_widget_for_each_source_path(w, p) {
1345 			if (p->connected && !p->connected(w, p->source))
1346 				continue;
1347 
1348 			if (p->connect &&  p->source->power &&
1349 					is_sst_dapm_widget(p->source)) {
1350 				struct sst_ids *ids = p->source->priv;
1351 
1352 				dev_dbg(dai->dev, "send gain for widget=%s\n",
1353 						p->source->name);
1354 				mutex_lock(&drv->lock);
1355 				sst_set_pipe_gain(ids, drv, mute);
1356 				mutex_unlock(&drv->lock);
1357 			}
1358 		}
1359 	}
1360 	return 0;
1361 }
1362 
1363 /**
1364  * sst_fill_module_list - populate the list of modules/gains for a pipe
1365  * @kctl: kcontrol pointer
1366  * @w: dapm widget
1367  * @type: widget type
1368  *
1369  * Fills the widget pointer in the kcontrol private data, and also fills the
1370  * kcontrol pointer in the widget private data.
1371  *
1372  * Widget pointer is used to send the algo/gain in the .put() handler if the
1373  * widget is powerd on.
1374  *
1375  * Kcontrol pointer is used to send the algo/gain in the widget power ON/OFF
1376  * event handler. Each widget (pipe) has multiple algos stored in the algo_list.
1377  */
1378 static int sst_fill_module_list(struct snd_kcontrol *kctl,
1379 	 struct snd_soc_dapm_widget *w, int type)
1380 {
1381 	struct sst_module *module;
1382 	struct snd_soc_component *c = snd_soc_dapm_to_component(w->dapm);
1383 	struct sst_ids *ids = w->priv;
1384 	int ret = 0;
1385 
1386 	module = devm_kzalloc(c->dev, sizeof(*module), GFP_KERNEL);
1387 	if (!module)
1388 		return -ENOMEM;
1389 
1390 	if (type == SST_MODULE_GAIN) {
1391 		struct sst_gain_mixer_control *mc = (void *)kctl->private_value;
1392 
1393 		mc->w = w;
1394 		module->kctl = kctl;
1395 		list_add_tail(&module->node, &ids->gain_list);
1396 	} else if (type == SST_MODULE_ALGO) {
1397 		struct sst_algo_control *bc = (void *)kctl->private_value;
1398 
1399 		bc->w = w;
1400 		module->kctl = kctl;
1401 		list_add_tail(&module->node, &ids->algo_list);
1402 	} else {
1403 		dev_err(c->dev, "invoked for unknown type %d module %s",
1404 				type, kctl->id.name);
1405 		ret = -EINVAL;
1406 	}
1407 
1408 	return ret;
1409 }
1410 
1411 /**
1412  * sst_fill_widget_module_info - fill list of gains/algos for the pipe
1413  * @w: pipe modeled as a DAPM widget
1414  * @component: ASoC component
1415  *
1416  * Fill the list of gains/algos for the widget by looking at all the card
1417  * controls and comparing the name of the widget with the first part of control
1418  * name. First part of control name contains the pipe name (widget name).
1419  */
1420 static int sst_fill_widget_module_info(struct snd_soc_dapm_widget *w,
1421 	struct snd_soc_component *component)
1422 {
1423 	struct snd_kcontrol *kctl;
1424 	int index, ret = 0;
1425 	struct snd_card *card = component->card->snd_card;
1426 	char *idx;
1427 
1428 	down_read(&card->controls_rwsem);
1429 
1430 	list_for_each_entry(kctl, &card->controls, list) {
1431 		idx = strchr(kctl->id.name, ' ');
1432 		if (idx == NULL)
1433 			continue;
1434 		index = idx - (char*)kctl->id.name;
1435 		if (strncmp(kctl->id.name, w->name, index))
1436 			continue;
1437 
1438 		if (strstr(kctl->id.name, "Volume"))
1439 			ret = sst_fill_module_list(kctl, w, SST_MODULE_GAIN);
1440 
1441 		else if (strstr(kctl->id.name, "params"))
1442 			ret = sst_fill_module_list(kctl, w, SST_MODULE_ALGO);
1443 
1444 		else if (strstr(kctl->id.name, "Switch") &&
1445 			 strstr(kctl->id.name, "Gain")) {
1446 			struct sst_gain_mixer_control *mc =
1447 						(void *)kctl->private_value;
1448 
1449 			mc->w = w;
1450 
1451 		} else if (strstr(kctl->id.name, "interleaver")) {
1452 			struct sst_enum *e = (void *)kctl->private_value;
1453 
1454 			e->w = w;
1455 
1456 		} else if (strstr(kctl->id.name, "deinterleaver")) {
1457 			struct sst_enum *e = (void *)kctl->private_value;
1458 
1459 			e->w = w;
1460 		}
1461 
1462 		if (ret < 0) {
1463 			up_read(&card->controls_rwsem);
1464 			return ret;
1465 		}
1466 	}
1467 
1468 	up_read(&card->controls_rwsem);
1469 	return 0;
1470 }
1471 
1472 /**
1473  * sst_fill_linked_widgets - fill the parent pointer for the linked widget
1474  * @component: ASoC component
1475  * @ids: sst_ids array
1476  */
1477 static void sst_fill_linked_widgets(struct snd_soc_component *component,
1478 						struct sst_ids *ids)
1479 {
1480 	struct snd_soc_dapm_widget *w;
1481 	unsigned int len = strlen(ids->parent_wname);
1482 
1483 	list_for_each_entry(w, &component->card->widgets, list) {
1484 		if (!strncmp(ids->parent_wname, w->name, len)) {
1485 			ids->parent_w = w;
1486 			break;
1487 		}
1488 	}
1489 }
1490 
1491 /**
1492  * sst_map_modules_to_pipe - fill algo/gains list for all pipes
1493  * @component: ASoC component
1494  */
1495 static int sst_map_modules_to_pipe(struct snd_soc_component *component)
1496 {
1497 	struct snd_soc_dapm_widget *w;
1498 	int ret = 0;
1499 
1500 	list_for_each_entry(w, &component->card->widgets, list) {
1501 		if (is_sst_dapm_widget(w) && (w->priv)) {
1502 			struct sst_ids *ids = w->priv;
1503 
1504 			dev_dbg(component->dev, "widget type=%d name=%s\n",
1505 					w->id, w->name);
1506 			INIT_LIST_HEAD(&ids->algo_list);
1507 			INIT_LIST_HEAD(&ids->gain_list);
1508 			ret = sst_fill_widget_module_info(w, component);
1509 
1510 			if (ret < 0)
1511 				return ret;
1512 
1513 			/* fill linked widgets */
1514 			if (ids->parent_wname !=  NULL)
1515 				sst_fill_linked_widgets(component, ids);
1516 		}
1517 	}
1518 	return 0;
1519 }
1520 
1521 int sst_dsp_init_v2_dpcm(struct snd_soc_component *component)
1522 {
1523 	int i, ret = 0;
1524 	struct snd_soc_dapm_context *dapm = snd_soc_component_to_dapm(component);
1525 	struct sst_data *drv = snd_soc_component_get_drvdata(component);
1526 	unsigned int gains = ARRAY_SIZE(sst_gain_controls)/3;
1527 
1528 	drv->byte_stream = devm_kzalloc(component->dev,
1529 					SST_MAX_BIN_BYTES, GFP_KERNEL);
1530 	if (!drv->byte_stream)
1531 		return -ENOMEM;
1532 
1533 	snd_soc_dapm_new_controls(dapm, sst_dapm_widgets,
1534 			ARRAY_SIZE(sst_dapm_widgets));
1535 	snd_soc_dapm_add_routes(dapm, intercon,
1536 			ARRAY_SIZE(intercon));
1537 	snd_soc_dapm_new_widgets(component->card);
1538 
1539 	for (i = 0; i < gains; i++) {
1540 		sst_gains[i].mute = SST_GAIN_MUTE_DEFAULT;
1541 		sst_gains[i].l_gain = SST_GAIN_VOLUME_DEFAULT;
1542 		sst_gains[i].r_gain = SST_GAIN_VOLUME_DEFAULT;
1543 		sst_gains[i].ramp_duration = SST_GAIN_RAMP_DURATION_DEFAULT;
1544 	}
1545 
1546 	ret = snd_soc_add_component_controls(component, sst_gain_controls,
1547 			ARRAY_SIZE(sst_gain_controls));
1548 	if (ret)
1549 		return ret;
1550 
1551 	/* Initialize algo control params */
1552 	ret = sst_algo_control_init(component->dev);
1553 	if (ret)
1554 		return ret;
1555 	ret = snd_soc_add_component_controls(component, sst_algo_controls,
1556 			ARRAY_SIZE(sst_algo_controls));
1557 	if (ret)
1558 		return ret;
1559 
1560 	ret = snd_soc_add_component_controls(component, sst_slot_controls,
1561 			ARRAY_SIZE(sst_slot_controls));
1562 	if (ret)
1563 		return ret;
1564 
1565 	ret = sst_map_modules_to_pipe(component);
1566 
1567 	return ret;
1568 }
1569