1 // SPDX-License-Identifier: (GPL-2.0 OR BSD-3-Clause)
2 // Copyright(c) 2015-17 Intel Corporation.
3
4 /*
5 * SDW Intel Init Routines
6 *
7 * Initializes and creates SDW devices based on ACPI and Hardware values
8 */
9
10 #include <linux/acpi.h>
11 #include <linux/export.h>
12 #include <linux/interrupt.h>
13 #include <linux/io.h>
14 #include <linux/module.h>
15 #include <linux/auxiliary_bus.h>
16 #include <linux/pm_runtime.h>
17 #include <linux/soundwire/sdw_intel.h>
18 #include "cadence_master.h"
19 #include "bus.h"
20 #include "intel.h"
21 #include "intel_auxdevice.h"
22
intel_link_dev_release(struct device * dev)23 static void intel_link_dev_release(struct device *dev)
24 {
25 struct auxiliary_device *auxdev = to_auxiliary_dev(dev);
26 struct sdw_intel_link_dev *ldev = auxiliary_dev_to_sdw_intel_link_dev(auxdev);
27
28 kfree(ldev);
29 }
30
31 /* alloc, init and add link devices */
intel_link_dev_register(struct sdw_intel_res * res,struct sdw_intel_ctx * ctx,struct fwnode_handle * fwnode,const char * name,int link_id)32 static struct sdw_intel_link_dev *intel_link_dev_register(struct sdw_intel_res *res,
33 struct sdw_intel_ctx *ctx,
34 struct fwnode_handle *fwnode,
35 const char *name,
36 int link_id)
37 {
38 struct sdw_intel_link_dev *ldev;
39 struct sdw_intel_link_res *link;
40 struct auxiliary_device *auxdev;
41 int ret;
42
43 ldev = kzalloc(sizeof(*ldev), GFP_KERNEL);
44 if (!ldev)
45 return ERR_PTR(-ENOMEM);
46
47 auxdev = &ldev->auxdev;
48 auxdev->name = name;
49 auxdev->dev.parent = res->parent;
50 auxdev->dev.fwnode = fwnode;
51 auxdev->dev.release = intel_link_dev_release;
52
53 /* we don't use an IDA since we already have a link ID */
54 auxdev->id = link_id;
55
56 /*
57 * keep a handle on the allocated memory, to be used in all other functions.
58 * Since the same pattern is used to skip links that are not enabled, there is
59 * no need to check if ctx->ldev[i] is NULL later on.
60 */
61 ctx->ldev[link_id] = ldev;
62
63 /* Add link information used in the driver probe */
64 link = &ldev->link_res;
65 link->hw_ops = res->hw_ops;
66 link->mmio_base = res->mmio_base;
67 if (!res->ext) {
68 link->registers = res->mmio_base + SDW_LINK_BASE
69 + (SDW_LINK_SIZE * link_id);
70 link->ip_offset = 0;
71 link->shim = res->mmio_base + res->shim_base;
72 link->alh = res->mmio_base + res->alh_base;
73 link->shim_lock = &ctx->shim_lock;
74 } else {
75 link->registers = res->mmio_base + SDW_IP_BASE(link_id);
76 link->ip_offset = SDW_CADENCE_MCP_IP_OFFSET;
77 link->shim = res->mmio_base + SDW_SHIM2_GENERIC_BASE(link_id);
78 link->shim_vs = res->mmio_base + SDW_SHIM2_VS_BASE(link_id);
79 link->shim_lock = res->eml_lock;
80 link->mic_privacy = res->mic_privacy;
81 }
82
83 link->ops = res->ops;
84 link->dev = res->dev;
85
86 link->clock_stop_quirks = res->clock_stop_quirks;
87 link->shim_mask = &ctx->shim_mask;
88 link->link_mask = ctx->link_mask;
89
90 link->hbus = res->hbus;
91
92 /* now follow the two-step init/add sequence */
93 ret = auxiliary_device_init(auxdev);
94 if (ret < 0) {
95 dev_err(res->parent, "failed to initialize link dev %s link_id %d\n",
96 name, link_id);
97 kfree(ldev);
98 return ERR_PTR(ret);
99 }
100
101 ret = auxiliary_device_add(&ldev->auxdev);
102 if (ret < 0) {
103 dev_err(res->parent, "failed to add link dev %s link_id %d\n",
104 ldev->auxdev.name, link_id);
105 /* ldev will be freed with the put_device() and .release sequence */
106 auxiliary_device_uninit(&ldev->auxdev);
107 return ERR_PTR(ret);
108 }
109
110 return ldev;
111 }
112
intel_link_dev_unregister(struct sdw_intel_link_dev * ldev)113 static void intel_link_dev_unregister(struct sdw_intel_link_dev *ldev)
114 {
115 auxiliary_device_delete(&ldev->auxdev);
116 auxiliary_device_uninit(&ldev->auxdev);
117 }
118
sdw_intel_cleanup(struct sdw_intel_ctx * ctx)119 static int sdw_intel_cleanup(struct sdw_intel_ctx *ctx)
120 {
121 struct sdw_intel_link_dev *ldev;
122 u32 link_mask;
123 int i;
124
125 link_mask = ctx->link_mask;
126
127 for (i = 0; i < ctx->count; i++) {
128 if (!(link_mask & BIT(i)))
129 continue;
130
131 ldev = ctx->ldev[i];
132
133 pm_runtime_disable(&ldev->auxdev.dev);
134 if (!ldev->link_res.clock_stop_quirks)
135 pm_runtime_put_noidle(ldev->link_res.dev);
136
137 intel_link_dev_unregister(ldev);
138 }
139
140 return 0;
141 }
142
sdw_intel_thread(int irq,void * dev_id)143 irqreturn_t sdw_intel_thread(int irq, void *dev_id)
144 {
145 struct sdw_intel_ctx *ctx = dev_id;
146 struct sdw_intel_link_res *link;
147
148 list_for_each_entry(link, &ctx->link_list, list)
149 sdw_cdns_irq(irq, link->cdns);
150
151 return IRQ_HANDLED;
152 }
153 EXPORT_SYMBOL_NS(sdw_intel_thread, "SOUNDWIRE_INTEL_INIT");
154
155 static struct sdw_intel_ctx
sdw_intel_probe_controller(struct sdw_intel_res * res)156 *sdw_intel_probe_controller(struct sdw_intel_res *res)
157 {
158 struct sdw_intel_link_res *link;
159 struct sdw_intel_link_dev *ldev;
160 struct sdw_intel_ctx *ctx;
161 struct acpi_device *adev;
162 struct sdw_slave *slave;
163 struct list_head *node;
164 struct sdw_bus *bus;
165 u32 link_mask;
166 int num_slaves = 0;
167 int count;
168 int i;
169
170 if (!res)
171 return NULL;
172
173 adev = acpi_fetch_acpi_dev(res->handle);
174 if (!adev)
175 return NULL;
176
177 if (!res->count)
178 return NULL;
179
180 count = res->count;
181 dev_dbg(&adev->dev, "Creating %d SDW Link devices\n", count);
182
183 /*
184 * we need to alloc/free memory manually and can't use devm:
185 * this routine may be called from a workqueue, and not from
186 * the parent .probe.
187 * If devm_ was used, the memory might never be freed on errors.
188 */
189 ctx = kzalloc(sizeof(*ctx), GFP_KERNEL);
190 if (!ctx)
191 return NULL;
192
193 ctx->count = count;
194
195 /*
196 * allocate the array of pointers. The link-specific data is allocated
197 * as part of the first loop below and released with the auxiliary_device_uninit().
198 * If some links are disabled, the link pointer will remain NULL. Given that the
199 * number of links is small, this is simpler than using a list to keep track of links.
200 */
201 ctx->ldev = kcalloc(ctx->count, sizeof(*ctx->ldev), GFP_KERNEL);
202 if (!ctx->ldev) {
203 kfree(ctx);
204 return NULL;
205 }
206
207 ctx->mmio_base = res->mmio_base;
208 ctx->shim_base = res->shim_base;
209 ctx->alh_base = res->alh_base;
210 ctx->link_mask = res->link_mask;
211 ctx->handle = res->handle;
212 mutex_init(&ctx->shim_lock);
213
214 link_mask = ctx->link_mask;
215
216 INIT_LIST_HEAD(&ctx->link_list);
217
218 for (i = 0; i < count; i++) {
219 if (!(link_mask & BIT(i)))
220 continue;
221
222 /*
223 * init and add a device for each link
224 *
225 * The name of the device will be soundwire_intel.link.[i],
226 * with the "soundwire_intel" module prefix automatically added
227 * by the auxiliary bus core.
228 */
229 ldev = intel_link_dev_register(res,
230 ctx,
231 acpi_fwnode_handle(adev),
232 "link",
233 i);
234 if (IS_ERR(ldev))
235 goto err;
236
237 link = &ldev->link_res;
238 link->cdns = auxiliary_get_drvdata(&ldev->auxdev);
239
240 if (!link->cdns) {
241 dev_err(&adev->dev, "failed to get link->cdns\n");
242 /*
243 * 1 will be subtracted from i in the err label, but we need to call
244 * intel_link_dev_unregister for this ldev, so plus 1 now
245 */
246 i++;
247 goto err;
248 }
249 list_add_tail(&link->list, &ctx->link_list);
250 bus = &link->cdns->bus;
251 /* Calculate number of slaves */
252 list_for_each(node, &bus->slaves)
253 num_slaves++;
254 }
255
256 ctx->peripherals = kmalloc(struct_size(ctx->peripherals, array, num_slaves),
257 GFP_KERNEL);
258 if (!ctx->peripherals)
259 goto err;
260 ctx->peripherals->num_peripherals = num_slaves;
261 i = 0;
262 list_for_each_entry(link, &ctx->link_list, list) {
263 bus = &link->cdns->bus;
264 list_for_each_entry(slave, &bus->slaves, node) {
265 ctx->peripherals->array[i] = slave;
266 i++;
267 }
268 }
269
270 return ctx;
271
272 err:
273 while (i--) {
274 if (!(link_mask & BIT(i)))
275 continue;
276 ldev = ctx->ldev[i];
277 intel_link_dev_unregister(ldev);
278 }
279 kfree(ctx->ldev);
280 kfree(ctx);
281 return NULL;
282 }
283
284 static int
sdw_intel_startup_controller(struct sdw_intel_ctx * ctx)285 sdw_intel_startup_controller(struct sdw_intel_ctx *ctx)
286 {
287 struct acpi_device *adev = acpi_fetch_acpi_dev(ctx->handle);
288 struct sdw_intel_link_dev *ldev;
289 u32 link_mask;
290 int i;
291
292 if (!adev)
293 return -EINVAL;
294
295 if (!ctx->ldev)
296 return -EINVAL;
297
298 link_mask = ctx->link_mask;
299
300 /* Startup SDW Master devices */
301 for (i = 0; i < ctx->count; i++) {
302 if (!(link_mask & BIT(i)))
303 continue;
304
305 ldev = ctx->ldev[i];
306
307 intel_link_startup(&ldev->auxdev);
308
309 if (!ldev->link_res.clock_stop_quirks) {
310 /*
311 * we need to prevent the parent PCI device
312 * from entering pm_runtime suspend, so that
313 * power rails to the SoundWire IP are not
314 * turned off.
315 */
316 pm_runtime_get_noresume(ldev->link_res.dev);
317 }
318 }
319
320 return 0;
321 }
322
323 /**
324 * sdw_intel_probe() - SoundWire Intel probe routine
325 * @res: resource data
326 *
327 * This registers an auxiliary device for each Master handled by the controller,
328 * and SoundWire Master and Slave devices will be created by the auxiliary
329 * device probe. All the information necessary is stored in the context, and
330 * the res argument pointer can be freed after this step.
331 * This function will be called after sdw_intel_acpi_scan() by SOF probe.
332 */
333 struct sdw_intel_ctx
sdw_intel_probe(struct sdw_intel_res * res)334 *sdw_intel_probe(struct sdw_intel_res *res)
335 {
336 return sdw_intel_probe_controller(res);
337 }
338 EXPORT_SYMBOL_NS(sdw_intel_probe, "SOUNDWIRE_INTEL_INIT");
339
340 /**
341 * sdw_intel_startup() - SoundWire Intel startup
342 * @ctx: SoundWire context allocated in the probe
343 *
344 * Startup Intel SoundWire controller. This function will be called after
345 * Intel Audio DSP is powered up.
346 */
sdw_intel_startup(struct sdw_intel_ctx * ctx)347 int sdw_intel_startup(struct sdw_intel_ctx *ctx)
348 {
349 return sdw_intel_startup_controller(ctx);
350 }
351 EXPORT_SYMBOL_NS(sdw_intel_startup, "SOUNDWIRE_INTEL_INIT");
352 /**
353 * sdw_intel_exit() - SoundWire Intel exit
354 * @ctx: SoundWire context allocated in the probe
355 *
356 * Delete the controller instances created and cleanup
357 */
sdw_intel_exit(struct sdw_intel_ctx * ctx)358 void sdw_intel_exit(struct sdw_intel_ctx *ctx)
359 {
360 struct sdw_intel_link_res *link;
361
362 /* we first resume links and devices and wait synchronously before the cleanup */
363 list_for_each_entry(link, &ctx->link_list, list) {
364 struct sdw_bus *bus = &link->cdns->bus;
365 int ret;
366
367 ret = device_for_each_child(bus->dev, NULL, intel_resume_child_device);
368 if (ret < 0)
369 dev_err(bus->dev, "%s: intel_resume_child_device failed: %d\n",
370 __func__, ret);
371 }
372
373 sdw_intel_cleanup(ctx);
374 kfree(ctx->peripherals);
375 kfree(ctx->ldev);
376 kfree(ctx);
377 }
378 EXPORT_SYMBOL_NS(sdw_intel_exit, "SOUNDWIRE_INTEL_INIT");
379
sdw_intel_process_wakeen_event(struct sdw_intel_ctx * ctx)380 void sdw_intel_process_wakeen_event(struct sdw_intel_ctx *ctx)
381 {
382 struct sdw_intel_link_dev *ldev;
383 u32 link_mask;
384 int i;
385
386 if (!ctx->ldev)
387 return;
388
389 link_mask = ctx->link_mask;
390
391 /* Startup SDW Master devices */
392 for (i = 0; i < ctx->count; i++) {
393 if (!(link_mask & BIT(i)))
394 continue;
395
396 ldev = ctx->ldev[i];
397
398 intel_link_process_wakeen_event(&ldev->auxdev);
399 }
400 }
401 EXPORT_SYMBOL_NS(sdw_intel_process_wakeen_event, "SOUNDWIRE_INTEL_INIT");
402
403 MODULE_LICENSE("Dual BSD/GPL");
404 MODULE_DESCRIPTION("Intel Soundwire Init Library");
405