1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * Jack abstraction layer
4 *
5 * Copyright 2008 Wolfson Microelectronics
6 */
7
8 #include <linux/input.h>
9 #include <linux/slab.h>
10 #include <linux/module.h>
11 #include <sound/jack.h>
12 #include <sound/core.h>
13 #include <sound/control.h>
14
15 struct snd_jack_kctl {
16 struct snd_kcontrol *kctl;
17 struct list_head list; /* list of controls belong to the same jack */
18 unsigned int mask_bits; /* only masked status bits are reported via kctl */
19 };
20
21 #ifdef CONFIG_SND_JACK_INPUT_DEV
22 static const int jack_switch_types[SND_JACK_SWITCH_TYPES] = {
23 SW_HEADPHONE_INSERT,
24 SW_MICROPHONE_INSERT,
25 SW_LINEOUT_INSERT,
26 SW_JACK_PHYSICAL_INSERT,
27 SW_VIDEOOUT_INSERT,
28 SW_LINEIN_INSERT,
29 };
30 #endif /* CONFIG_SND_JACK_INPUT_DEV */
31
snd_jack_dev_disconnect(struct snd_device * device)32 static int snd_jack_dev_disconnect(struct snd_device *device)
33 {
34 #ifdef CONFIG_SND_JACK_INPUT_DEV
35 struct snd_jack *jack = device->device_data;
36
37 mutex_lock(&jack->input_dev_lock);
38 if (!jack->input_dev) {
39 mutex_unlock(&jack->input_dev_lock);
40 return 0;
41 }
42
43 /* If the input device is registered with the input subsystem
44 * then we need to use a different deallocator. */
45 if (jack->registered)
46 input_unregister_device(jack->input_dev);
47 else
48 input_free_device(jack->input_dev);
49 jack->input_dev = NULL;
50 mutex_unlock(&jack->input_dev_lock);
51 #endif /* CONFIG_SND_JACK_INPUT_DEV */
52 return 0;
53 }
54
snd_jack_dev_free(struct snd_device * device)55 static int snd_jack_dev_free(struct snd_device *device)
56 {
57 struct snd_jack *jack = device->device_data;
58 struct snd_card *card = device->card;
59 struct snd_jack_kctl *jack_kctl, *tmp_jack_kctl;
60
61 down_write(&card->controls_rwsem);
62 list_for_each_entry_safe(jack_kctl, tmp_jack_kctl, &jack->kctl_list, list) {
63 list_del_init(&jack_kctl->list);
64 snd_ctl_remove(card, jack_kctl->kctl);
65 }
66 up_write(&card->controls_rwsem);
67
68 if (jack->private_free)
69 jack->private_free(jack);
70
71 snd_jack_dev_disconnect(device);
72
73 kfree(jack->id);
74 kfree(jack);
75
76 return 0;
77 }
78
79 #ifdef CONFIG_SND_JACK_INPUT_DEV
snd_jack_dev_register(struct snd_device * device)80 static int snd_jack_dev_register(struct snd_device *device)
81 {
82 struct snd_jack *jack = device->device_data;
83 struct snd_card *card = device->card;
84 int err, i;
85
86 snprintf(jack->name, sizeof(jack->name), "%s %s",
87 card->shortname, jack->id);
88
89 mutex_lock(&jack->input_dev_lock);
90 if (!jack->input_dev) {
91 mutex_unlock(&jack->input_dev_lock);
92 return 0;
93 }
94
95 jack->input_dev->name = jack->name;
96
97 /* Default to the sound card device. */
98 if (!jack->input_dev->dev.parent)
99 jack->input_dev->dev.parent = snd_card_get_device_link(card);
100
101 /* Add capabilities for any keys that are enabled */
102 for (i = 0; i < ARRAY_SIZE(jack->key); i++) {
103 int testbit = SND_JACK_BTN_0 >> i;
104
105 if (!(jack->type & testbit))
106 continue;
107
108 if (!jack->key[i])
109 jack->key[i] = BTN_0 + i;
110
111 input_set_capability(jack->input_dev, EV_KEY, jack->key[i]);
112 }
113
114 err = input_register_device(jack->input_dev);
115 if (err == 0)
116 jack->registered = 1;
117
118 mutex_unlock(&jack->input_dev_lock);
119 return err;
120 }
121 #endif /* CONFIG_SND_JACK_INPUT_DEV */
122
snd_jack_kctl_private_free(struct snd_kcontrol * kctl)123 static void snd_jack_kctl_private_free(struct snd_kcontrol *kctl)
124 {
125 struct snd_jack_kctl *jack_kctl;
126
127 jack_kctl = kctl->private_data;
128 if (jack_kctl) {
129 list_del(&jack_kctl->list);
130 kfree(jack_kctl);
131 }
132 }
133
snd_jack_kctl_add(struct snd_jack * jack,struct snd_jack_kctl * jack_kctl)134 static void snd_jack_kctl_add(struct snd_jack *jack, struct snd_jack_kctl *jack_kctl)
135 {
136 list_add_tail(&jack_kctl->list, &jack->kctl_list);
137 }
138
snd_jack_kctl_new(struct snd_card * card,const char * name,unsigned int mask)139 static struct snd_jack_kctl * snd_jack_kctl_new(struct snd_card *card, const char *name, unsigned int mask)
140 {
141 struct snd_kcontrol *kctl;
142 struct snd_jack_kctl *jack_kctl;
143 int err;
144
145 kctl = snd_kctl_jack_new(name, card);
146 if (!kctl)
147 return NULL;
148
149 err = snd_ctl_add(card, kctl);
150 if (err < 0)
151 return NULL;
152
153 jack_kctl = kzalloc(sizeof(*jack_kctl), GFP_KERNEL);
154
155 if (!jack_kctl)
156 goto error;
157
158 jack_kctl->kctl = kctl;
159 jack_kctl->mask_bits = mask;
160
161 kctl->private_data = jack_kctl;
162 kctl->private_free = snd_jack_kctl_private_free;
163
164 return jack_kctl;
165 error:
166 snd_ctl_free_one(kctl);
167 return NULL;
168 }
169
170 /**
171 * snd_jack_add_new_kctl - Create a new snd_jack_kctl and add it to jack
172 * @jack: the jack instance which the kctl will attaching to
173 * @name: the name for the snd_kcontrol object
174 * @mask: a bitmask of enum snd_jack_type values that can be detected
175 * by this snd_jack_kctl object.
176 *
177 * Creates a new snd_kcontrol object and adds it to the jack kctl_list.
178 *
179 * Return: Zero if successful, or a negative error code on failure.
180 */
snd_jack_add_new_kctl(struct snd_jack * jack,const char * name,int mask)181 int snd_jack_add_new_kctl(struct snd_jack *jack, const char * name, int mask)
182 {
183 struct snd_jack_kctl *jack_kctl;
184
185 jack_kctl = snd_jack_kctl_new(jack->card, name, mask);
186 if (!jack_kctl)
187 return -ENOMEM;
188
189 snd_jack_kctl_add(jack, jack_kctl);
190 return 0;
191 }
192 EXPORT_SYMBOL(snd_jack_add_new_kctl);
193
194 /**
195 * snd_jack_new - Create a new jack
196 * @card: the card instance
197 * @id: an identifying string for this jack
198 * @type: a bitmask of enum snd_jack_type values that can be detected by
199 * this jack
200 * @jjack: Used to provide the allocated jack object to the caller.
201 * @initial_kctl: if true, create a kcontrol and add it to the jack list.
202 * @phantom_jack: Don't create a input device for phantom jacks.
203 *
204 * Creates a new jack object.
205 *
206 * Return: Zero if successful, or a negative error code on failure.
207 * On success @jjack will be initialised.
208 */
snd_jack_new(struct snd_card * card,const char * id,int type,struct snd_jack ** jjack,bool initial_kctl,bool phantom_jack)209 int snd_jack_new(struct snd_card *card, const char *id, int type,
210 struct snd_jack **jjack, bool initial_kctl, bool phantom_jack)
211 {
212 struct snd_jack *jack;
213 struct snd_jack_kctl *jack_kctl = NULL;
214 int err;
215 static const struct snd_device_ops ops = {
216 .dev_free = snd_jack_dev_free,
217 #ifdef CONFIG_SND_JACK_INPUT_DEV
218 .dev_register = snd_jack_dev_register,
219 .dev_disconnect = snd_jack_dev_disconnect,
220 #endif /* CONFIG_SND_JACK_INPUT_DEV */
221 };
222
223 if (initial_kctl) {
224 jack_kctl = snd_jack_kctl_new(card, id, type);
225 if (!jack_kctl)
226 return -ENOMEM;
227 }
228
229 jack = kzalloc(sizeof(struct snd_jack), GFP_KERNEL);
230 if (jack == NULL)
231 return -ENOMEM;
232
233 jack->id = kstrdup(id, GFP_KERNEL);
234 if (jack->id == NULL) {
235 kfree(jack);
236 return -ENOMEM;
237 }
238
239 #ifdef CONFIG_SND_JACK_INPUT_DEV
240 mutex_init(&jack->input_dev_lock);
241
242 /* don't create input device for phantom jack */
243 if (!phantom_jack) {
244 int i;
245
246 jack->input_dev = input_allocate_device();
247 if (jack->input_dev == NULL) {
248 err = -ENOMEM;
249 goto fail_input;
250 }
251
252 jack->input_dev->phys = "ALSA";
253
254 jack->type = type;
255
256 for (i = 0; i < SND_JACK_SWITCH_TYPES; i++)
257 if (type & (1 << i))
258 input_set_capability(jack->input_dev, EV_SW,
259 jack_switch_types[i]);
260
261 }
262 #endif /* CONFIG_SND_JACK_INPUT_DEV */
263
264 err = snd_device_new(card, SNDRV_DEV_JACK, jack, &ops);
265 if (err < 0)
266 goto fail_input;
267
268 jack->card = card;
269 INIT_LIST_HEAD(&jack->kctl_list);
270
271 if (initial_kctl)
272 snd_jack_kctl_add(jack, jack_kctl);
273
274 *jjack = jack;
275
276 return 0;
277
278 fail_input:
279 #ifdef CONFIG_SND_JACK_INPUT_DEV
280 input_free_device(jack->input_dev);
281 #endif
282 kfree(jack->id);
283 kfree(jack);
284 return err;
285 }
286 EXPORT_SYMBOL(snd_jack_new);
287
288 #ifdef CONFIG_SND_JACK_INPUT_DEV
289 /**
290 * snd_jack_set_parent - Set the parent device for a jack
291 *
292 * @jack: The jack to configure
293 * @parent: The device to set as parent for the jack.
294 *
295 * Set the parent for the jack devices in the device tree. This
296 * function is only valid prior to registration of the jack. If no
297 * parent is configured then the parent device will be the sound card.
298 */
snd_jack_set_parent(struct snd_jack * jack,struct device * parent)299 void snd_jack_set_parent(struct snd_jack *jack, struct device *parent)
300 {
301 WARN_ON(jack->registered);
302 mutex_lock(&jack->input_dev_lock);
303 if (!jack->input_dev) {
304 mutex_unlock(&jack->input_dev_lock);
305 return;
306 }
307
308 jack->input_dev->dev.parent = parent;
309 mutex_unlock(&jack->input_dev_lock);
310 }
311 EXPORT_SYMBOL(snd_jack_set_parent);
312
313 /**
314 * snd_jack_set_key - Set a key mapping on a jack
315 *
316 * @jack: The jack to configure
317 * @type: Jack report type for this key
318 * @keytype: Input layer key type to be reported
319 *
320 * Map a SND_JACK_BTN_* button type to an input layer key, allowing
321 * reporting of keys on accessories via the jack abstraction. If no
322 * mapping is provided but keys are enabled in the jack type then
323 * BTN_n numeric buttons will be reported.
324 *
325 * If jacks are not reporting via the input API this call will have no
326 * effect.
327 *
328 * Note that this is intended to be use by simple devices with small
329 * numbers of keys that can be reported. It is also possible to
330 * access the input device directly - devices with complex input
331 * capabilities on accessories should consider doing this rather than
332 * using this abstraction.
333 *
334 * This function may only be called prior to registration of the jack.
335 *
336 * Return: Zero if successful, or a negative error code on failure.
337 */
snd_jack_set_key(struct snd_jack * jack,enum snd_jack_types type,int keytype)338 int snd_jack_set_key(struct snd_jack *jack, enum snd_jack_types type,
339 int keytype)
340 {
341 int key = fls(SND_JACK_BTN_0) - fls(type);
342
343 WARN_ON(jack->registered);
344
345 if (!keytype || key >= ARRAY_SIZE(jack->key))
346 return -EINVAL;
347
348 jack->type |= type;
349 jack->key[key] = keytype;
350 return 0;
351 }
352 EXPORT_SYMBOL(snd_jack_set_key);
353 #endif /* CONFIG_SND_JACK_INPUT_DEV */
354
355 /**
356 * snd_jack_report - Report the current status of a jack
357 * Note: This function uses mutexes and should be called from a
358 * context which can sleep (such as a workqueue).
359 *
360 * @jack: The jack to report status for
361 * @status: The current status of the jack
362 */
snd_jack_report(struct snd_jack * jack,int status)363 void snd_jack_report(struct snd_jack *jack, int status)
364 {
365 struct snd_jack_kctl *jack_kctl;
366 #ifdef CONFIG_SND_JACK_INPUT_DEV
367 int i;
368 #endif
369
370 if (!jack)
371 return;
372
373 list_for_each_entry(jack_kctl, &jack->kctl_list, list)
374 snd_kctl_jack_report(jack->card, jack_kctl->kctl,
375 status & jack_kctl->mask_bits);
376
377 #ifdef CONFIG_SND_JACK_INPUT_DEV
378 mutex_lock(&jack->input_dev_lock);
379 if (!jack->input_dev) {
380 mutex_unlock(&jack->input_dev_lock);
381 return;
382 }
383
384 for (i = 0; i < ARRAY_SIZE(jack->key); i++) {
385 int testbit = SND_JACK_BTN_0 >> i;
386
387 if (jack->type & testbit)
388 input_report_key(jack->input_dev, jack->key[i],
389 status & testbit);
390 }
391
392 for (i = 0; i < ARRAY_SIZE(jack_switch_types); i++) {
393 int testbit = 1 << i;
394 if (jack->type & testbit)
395 input_report_switch(jack->input_dev,
396 jack_switch_types[i],
397 status & testbit);
398 }
399
400 input_sync(jack->input_dev);
401 mutex_unlock(&jack->input_dev_lock);
402 #endif /* CONFIG_SND_JACK_INPUT_DEV */
403 }
404 EXPORT_SYMBOL(snd_jack_report);
405