1 /*
2  * Copyright (c) 2014 Samsung Electronics Co., Ltd
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sub license,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice (including the
12  * next paragraph) shall be included in all copies or substantial portions
13  * of the Software.
14  *
15  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17  * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
18  * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19  * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20  * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
21  * DEALINGS IN THE SOFTWARE.
22  */
23 
24 #include <linux/err.h>
25 #include <linux/media-bus-format.h>
26 #include <linux/module.h>
27 #include <linux/mutex.h>
28 
29 #include <drm/drm_atomic_state_helper.h>
30 #include <drm/drm_bridge.h>
31 #include <drm/drm_debugfs.h>
32 #include <drm/drm_edid.h>
33 #include <drm/drm_encoder.h>
34 #include <drm/drm_file.h>
35 #include <drm/drm_of.h>
36 #include <drm/drm_print.h>
37 
38 #include "drm_crtc_internal.h"
39 
40 /**
41  * DOC: overview
42  *
43  * &struct drm_bridge represents a device that hangs on to an encoder. These are
44  * handy when a regular &drm_encoder entity isn't enough to represent the entire
45  * encoder chain.
46  *
47  * A bridge is always attached to a single &drm_encoder at a time, but can be
48  * either connected to it directly, or through a chain of bridges::
49  *
50  *     [ CRTC ---> ] Encoder ---> Bridge A ---> Bridge B
51  *
52  * Here, the output of the encoder feeds to bridge A, and that furthers feeds to
53  * bridge B. Bridge chains can be arbitrarily long, and shall be fully linear:
54  * Chaining multiple bridges to the output of a bridge, or the same bridge to
55  * the output of different bridges, is not supported.
56  *
57  * &drm_bridge, like &drm_panel, aren't &drm_mode_object entities like planes,
58  * CRTCs, encoders or connectors and hence are not visible to userspace. They
59  * just provide additional hooks to get the desired output at the end of the
60  * encoder chain.
61  */
62 
63 /**
64  * DOC:	display driver integration
65  *
66  * Display drivers are responsible for linking encoders with the first bridge
67  * in the chains. This is done by acquiring the appropriate bridge with
68  * devm_drm_of_get_bridge(). Once acquired, the bridge shall be attached to the
69  * encoder with a call to drm_bridge_attach().
70  *
71  * Bridges are responsible for linking themselves with the next bridge in the
72  * chain, if any. This is done the same way as for encoders, with the call to
73  * drm_bridge_attach() occurring in the &drm_bridge_funcs.attach operation.
74  *
75  * Once these links are created, the bridges can participate along with encoder
76  * functions to perform mode validation and fixup (through
77  * drm_bridge_chain_mode_valid() and drm_atomic_bridge_chain_check()), mode
78  * setting (through drm_bridge_chain_mode_set()), enable (through
79  * drm_atomic_bridge_chain_pre_enable() and drm_atomic_bridge_chain_enable())
80  * and disable (through drm_atomic_bridge_chain_disable() and
81  * drm_atomic_bridge_chain_post_disable()). Those functions call the
82  * corresponding operations provided in &drm_bridge_funcs in sequence for all
83  * bridges in the chain.
84  *
85  * For display drivers that use the atomic helpers
86  * drm_atomic_helper_check_modeset(),
87  * drm_atomic_helper_commit_modeset_enables() and
88  * drm_atomic_helper_commit_modeset_disables() (either directly in hand-rolled
89  * commit check and commit tail handlers, or through the higher-level
90  * drm_atomic_helper_check() and drm_atomic_helper_commit_tail() or
91  * drm_atomic_helper_commit_tail_rpm() helpers), this is done transparently and
92  * requires no intervention from the driver. For other drivers, the relevant
93  * DRM bridge chain functions shall be called manually.
94  *
95  * Bridges also participate in implementing the &drm_connector at the end of
96  * the bridge chain. Display drivers may use the drm_bridge_connector_init()
97  * helper to create the &drm_connector, or implement it manually on top of the
98  * connector-related operations exposed by the bridge (see the overview
99  * documentation of bridge operations for more details).
100  */
101 
102 /**
103  * DOC: special care dsi
104  *
105  * The interaction between the bridges and other frameworks involved in
106  * the probing of the upstream driver and the bridge driver can be
107  * challenging. Indeed, there's multiple cases that needs to be
108  * considered:
109  *
110  * - The upstream driver doesn't use the component framework and isn't a
111  *   MIPI-DSI host. In this case, the bridge driver will probe at some
112  *   point and the upstream driver should try to probe again by returning
113  *   EPROBE_DEFER as long as the bridge driver hasn't probed.
114  *
115  * - The upstream driver doesn't use the component framework, but is a
116  *   MIPI-DSI host. The bridge device uses the MIPI-DCS commands to be
117  *   controlled. In this case, the bridge device is a child of the
118  *   display device and when it will probe it's assured that the display
119  *   device (and MIPI-DSI host) is present. The upstream driver will be
120  *   assured that the bridge driver is connected between the
121  *   &mipi_dsi_host_ops.attach and &mipi_dsi_host_ops.detach operations.
122  *   Therefore, it must run mipi_dsi_host_register() in its probe
123  *   function, and then run drm_bridge_attach() in its
124  *   &mipi_dsi_host_ops.attach hook.
125  *
126  * - The upstream driver uses the component framework and is a MIPI-DSI
127  *   host. The bridge device uses the MIPI-DCS commands to be
128  *   controlled. This is the same situation than above, and can run
129  *   mipi_dsi_host_register() in either its probe or bind hooks.
130  *
131  * - The upstream driver uses the component framework and is a MIPI-DSI
132  *   host. The bridge device uses a separate bus (such as I2C) to be
133  *   controlled. In this case, there's no correlation between the probe
134  *   of the bridge and upstream drivers, so care must be taken to avoid
135  *   an endless EPROBE_DEFER loop, with each driver waiting for the
136  *   other to probe.
137  *
138  * The ideal pattern to cover the last item (and all the others in the
139  * MIPI-DSI host driver case) is to split the operations like this:
140  *
141  * - The MIPI-DSI host driver must run mipi_dsi_host_register() in its
142  *   probe hook. It will make sure that the MIPI-DSI host sticks around,
143  *   and that the driver's bind can be called.
144  *
145  * - In its probe hook, the bridge driver must try to find its MIPI-DSI
146  *   host, register as a MIPI-DSI device and attach the MIPI-DSI device
147  *   to its host. The bridge driver is now functional.
148  *
149  * - In its &struct mipi_dsi_host_ops.attach hook, the MIPI-DSI host can
150  *   now add its component. Its bind hook will now be called and since
151  *   the bridge driver is attached and registered, we can now look for
152  *   and attach it.
153  *
154  * At this point, we're now certain that both the upstream driver and
155  * the bridge driver are functional and we can't have a deadlock-like
156  * situation when probing.
157  */
158 
159 /**
160  * DOC: dsi bridge operations
161  *
162  * DSI host interfaces are expected to be implemented as bridges rather than
163  * encoders, however there are a few aspects of their operation that need to
164  * be defined in order to provide a consistent interface.
165  *
166  * A DSI host should keep the PHY powered down until the pre_enable operation is
167  * called. All lanes are in an undefined idle state up to this point, and it
168  * must not be assumed that it is LP-11.
169  * pre_enable should initialise the PHY, set the data lanes to LP-11, and the
170  * clock lane to either LP-11 or HS depending on the mode_flag
171  * %MIPI_DSI_CLOCK_NON_CONTINUOUS.
172  *
173  * Ordinarily the downstream bridge DSI peripheral pre_enable will have been
174  * called before the DSI host. If the DSI peripheral requires LP-11 and/or
175  * the clock lane to be in HS mode prior to pre_enable, then it can set the
176  * &pre_enable_prev_first flag to request the pre_enable (and
177  * post_disable) order to be altered to enable the DSI host first.
178  *
179  * Either the CRTC being enabled, or the DSI host enable operation should switch
180  * the host to actively transmitting video on the data lanes.
181  *
182  * The reverse also applies. The DSI host disable operation or stopping the CRTC
183  * should stop transmitting video, and the data lanes should return to the LP-11
184  * state. The DSI host &post_disable operation should disable the PHY.
185  * If the &pre_enable_prev_first flag is set, then the DSI peripheral's
186  * bridge &post_disable will be called before the DSI host's post_disable.
187  *
188  * Whilst it is valid to call &host_transfer prior to pre_enable or after
189  * post_disable, the exact state of the lanes is undefined at this point. The
190  * DSI host should initialise the interface, transmit the data, and then disable
191  * the interface again.
192  *
193  * Ultra Low Power State (ULPS) is not explicitly supported by DRM. If
194  * implemented, it therefore needs to be handled entirely within the DSI Host
195  * driver.
196  */
197 
198 static DEFINE_MUTEX(bridge_lock);
199 static DRM_LIST_HEAD(bridge_list);
200 
201 /**
202  * drm_bridge_add - add the given bridge to the global bridge list
203  *
204  * @bridge: bridge control structure
205  */
drm_bridge_add(struct drm_bridge * bridge)206 void drm_bridge_add(struct drm_bridge *bridge)
207 {
208 	rw_init(&bridge->hpd_mutex, "brhpd");
209 
210 	mutex_lock(&bridge_lock);
211 	list_add_tail(&bridge->list, &bridge_list);
212 	mutex_unlock(&bridge_lock);
213 }
214 EXPORT_SYMBOL(drm_bridge_add);
215 
216 #ifdef notyet
drm_bridge_remove_void(void * bridge)217 static void drm_bridge_remove_void(void *bridge)
218 {
219 	drm_bridge_remove(bridge);
220 }
221 #endif
222 
223 /**
224  * devm_drm_bridge_add - devm managed version of drm_bridge_add()
225  *
226  * @dev: device to tie the bridge lifetime to
227  * @bridge: bridge control structure
228  *
229  * This is the managed version of drm_bridge_add() which automatically
230  * calls drm_bridge_remove() when @dev is unbound.
231  *
232  * Return: 0 if no error or negative error code.
233  */
devm_drm_bridge_add(struct device * dev,struct drm_bridge * bridge)234 int devm_drm_bridge_add(struct device *dev, struct drm_bridge *bridge)
235 {
236 	drm_bridge_add(bridge);
237 #ifdef notyet
238 	return devm_add_action_or_reset(dev, drm_bridge_remove_void, bridge);
239 #else
240 	STUB();
241 	return -ENOSYS;
242 #endif
243 }
244 EXPORT_SYMBOL(devm_drm_bridge_add);
245 
246 /**
247  * drm_bridge_remove - remove the given bridge from the global bridge list
248  *
249  * @bridge: bridge control structure
250  */
drm_bridge_remove(struct drm_bridge * bridge)251 void drm_bridge_remove(struct drm_bridge *bridge)
252 {
253 	mutex_lock(&bridge_lock);
254 	list_del_init(&bridge->list);
255 	mutex_unlock(&bridge_lock);
256 
257 	mutex_destroy(&bridge->hpd_mutex);
258 }
259 EXPORT_SYMBOL(drm_bridge_remove);
260 
261 static struct drm_private_state *
drm_bridge_atomic_duplicate_priv_state(struct drm_private_obj * obj)262 drm_bridge_atomic_duplicate_priv_state(struct drm_private_obj *obj)
263 {
264 	struct drm_bridge *bridge = drm_priv_to_bridge(obj);
265 	struct drm_bridge_state *state;
266 
267 	state = bridge->funcs->atomic_duplicate_state(bridge);
268 	return state ? &state->base : NULL;
269 }
270 
271 static void
drm_bridge_atomic_destroy_priv_state(struct drm_private_obj * obj,struct drm_private_state * s)272 drm_bridge_atomic_destroy_priv_state(struct drm_private_obj *obj,
273 				     struct drm_private_state *s)
274 {
275 	struct drm_bridge_state *state = drm_priv_to_bridge_state(s);
276 	struct drm_bridge *bridge = drm_priv_to_bridge(obj);
277 
278 	bridge->funcs->atomic_destroy_state(bridge, state);
279 }
280 
281 static const struct drm_private_state_funcs drm_bridge_priv_state_funcs = {
282 	.atomic_duplicate_state = drm_bridge_atomic_duplicate_priv_state,
283 	.atomic_destroy_state = drm_bridge_atomic_destroy_priv_state,
284 };
285 
286 /**
287  * drm_bridge_attach - attach the bridge to an encoder's chain
288  *
289  * @encoder: DRM encoder
290  * @bridge: bridge to attach
291  * @previous: previous bridge in the chain (optional)
292  * @flags: DRM_BRIDGE_ATTACH_* flags
293  *
294  * Called by a kms driver to link the bridge to an encoder's chain. The previous
295  * argument specifies the previous bridge in the chain. If NULL, the bridge is
296  * linked directly at the encoder's output. Otherwise it is linked at the
297  * previous bridge's output.
298  *
299  * If non-NULL the previous bridge must be already attached by a call to this
300  * function.
301  *
302  * Note that bridges attached to encoders are auto-detached during encoder
303  * cleanup in drm_encoder_cleanup(), so drm_bridge_attach() should generally
304  * *not* be balanced with a drm_bridge_detach() in driver code.
305  *
306  * RETURNS:
307  * Zero on success, error code on failure
308  */
drm_bridge_attach(struct drm_encoder * encoder,struct drm_bridge * bridge,struct drm_bridge * previous,enum drm_bridge_attach_flags flags)309 int drm_bridge_attach(struct drm_encoder *encoder, struct drm_bridge *bridge,
310 		      struct drm_bridge *previous,
311 		      enum drm_bridge_attach_flags flags)
312 {
313 	int ret;
314 
315 	if (!encoder || !bridge)
316 		return -EINVAL;
317 
318 	if (previous && (!previous->dev || previous->encoder != encoder))
319 		return -EINVAL;
320 
321 	if (bridge->dev)
322 		return -EBUSY;
323 
324 	bridge->dev = encoder->dev;
325 	bridge->encoder = encoder;
326 
327 	if (previous)
328 		list_add(&bridge->chain_node, &previous->chain_node);
329 	else
330 		list_add(&bridge->chain_node, &encoder->bridge_chain);
331 
332 	if (bridge->funcs->attach) {
333 		ret = bridge->funcs->attach(bridge, flags);
334 		if (ret < 0)
335 			goto err_reset_bridge;
336 	}
337 
338 	if (bridge->funcs->atomic_reset) {
339 		struct drm_bridge_state *state;
340 
341 		state = bridge->funcs->atomic_reset(bridge);
342 		if (IS_ERR(state)) {
343 			ret = PTR_ERR(state);
344 			goto err_detach_bridge;
345 		}
346 
347 		drm_atomic_private_obj_init(bridge->dev, &bridge->base,
348 					    &state->base,
349 					    &drm_bridge_priv_state_funcs);
350 	}
351 
352 	return 0;
353 
354 err_detach_bridge:
355 	if (bridge->funcs->detach)
356 		bridge->funcs->detach(bridge);
357 
358 err_reset_bridge:
359 	bridge->dev = NULL;
360 	bridge->encoder = NULL;
361 	list_del(&bridge->chain_node);
362 
363 	if (ret != -EPROBE_DEFER)
364 		DRM_ERROR("failed to attach bridge %pOF to encoder %s: %d\n",
365 			  bridge->of_node, encoder->name, ret);
366 	else
367 		dev_err_probe(encoder->dev->dev, -EPROBE_DEFER,
368 			      "failed to attach bridge %pOF to encoder %s\n",
369 			      bridge->of_node, encoder->name);
370 
371 	return ret;
372 }
373 EXPORT_SYMBOL(drm_bridge_attach);
374 
drm_bridge_detach(struct drm_bridge * bridge)375 void drm_bridge_detach(struct drm_bridge *bridge)
376 {
377 	if (WARN_ON(!bridge))
378 		return;
379 
380 	if (WARN_ON(!bridge->dev))
381 		return;
382 
383 	if (bridge->funcs->atomic_reset)
384 		drm_atomic_private_obj_fini(&bridge->base);
385 
386 	if (bridge->funcs->detach)
387 		bridge->funcs->detach(bridge);
388 
389 	list_del(&bridge->chain_node);
390 	bridge->dev = NULL;
391 }
392 
393 /**
394  * DOC: bridge operations
395  *
396  * Bridge drivers expose operations through the &drm_bridge_funcs structure.
397  * The DRM internals (atomic and CRTC helpers) use the helpers defined in
398  * drm_bridge.c to call bridge operations. Those operations are divided in
399  * three big categories to support different parts of the bridge usage.
400  *
401  * - The encoder-related operations support control of the bridges in the
402  *   chain, and are roughly counterparts to the &drm_encoder_helper_funcs
403  *   operations. They are used by the legacy CRTC and the atomic modeset
404  *   helpers to perform mode validation, fixup and setting, and enable and
405  *   disable the bridge automatically.
406  *
407  *   The enable and disable operations are split in
408  *   &drm_bridge_funcs.pre_enable, &drm_bridge_funcs.enable,
409  *   &drm_bridge_funcs.disable and &drm_bridge_funcs.post_disable to provide
410  *   finer-grained control.
411  *
412  *   Bridge drivers may implement the legacy version of those operations, or
413  *   the atomic version (prefixed with atomic\_), in which case they shall also
414  *   implement the atomic state bookkeeping operations
415  *   (&drm_bridge_funcs.atomic_duplicate_state,
416  *   &drm_bridge_funcs.atomic_destroy_state and &drm_bridge_funcs.reset).
417  *   Mixing atomic and non-atomic versions of the operations is not supported.
418  *
419  * - The bus format negotiation operations
420  *   &drm_bridge_funcs.atomic_get_output_bus_fmts and
421  *   &drm_bridge_funcs.atomic_get_input_bus_fmts allow bridge drivers to
422  *   negotiate the formats transmitted between bridges in the chain when
423  *   multiple formats are supported. Negotiation for formats is performed
424  *   transparently for display drivers by the atomic modeset helpers. Only
425  *   atomic versions of those operations exist, bridge drivers that need to
426  *   implement them shall thus also implement the atomic version of the
427  *   encoder-related operations. This feature is not supported by the legacy
428  *   CRTC helpers.
429  *
430  * - The connector-related operations support implementing a &drm_connector
431  *   based on a chain of bridges. DRM bridges traditionally create a
432  *   &drm_connector for bridges meant to be used at the end of the chain. This
433  *   puts additional burden on bridge drivers, especially for bridges that may
434  *   be used in the middle of a chain or at the end of it. Furthermore, it
435  *   requires all operations of the &drm_connector to be handled by a single
436  *   bridge, which doesn't always match the hardware architecture.
437  *
438  *   To simplify bridge drivers and make the connector implementation more
439  *   flexible, a new model allows bridges to unconditionally skip creation of
440  *   &drm_connector and instead expose &drm_bridge_funcs operations to support
441  *   an externally-implemented &drm_connector. Those operations are
442  *   &drm_bridge_funcs.detect, &drm_bridge_funcs.get_modes,
443  *   &drm_bridge_funcs.get_edid, &drm_bridge_funcs.hpd_notify,
444  *   &drm_bridge_funcs.hpd_enable and &drm_bridge_funcs.hpd_disable. When
445  *   implemented, display drivers shall create a &drm_connector instance for
446  *   each chain of bridges, and implement those connector instances based on
447  *   the bridge connector operations.
448  *
449  *   Bridge drivers shall implement the connector-related operations for all
450  *   the features that the bridge hardware support. For instance, if a bridge
451  *   supports reading EDID, the &drm_bridge_funcs.get_edid shall be
452  *   implemented. This however doesn't mean that the DDC lines are wired to the
453  *   bridge on a particular platform, as they could also be connected to an I2C
454  *   controller of the SoC. Support for the connector-related operations on the
455  *   running platform is reported through the &drm_bridge.ops flags. Bridge
456  *   drivers shall detect which operations they can support on the platform
457  *   (usually this information is provided by ACPI or DT), and set the
458  *   &drm_bridge.ops flags for all supported operations. A flag shall only be
459  *   set if the corresponding &drm_bridge_funcs operation is implemented, but
460  *   an implemented operation doesn't necessarily imply that the corresponding
461  *   flag will be set. Display drivers shall use the &drm_bridge.ops flags to
462  *   decide which bridge to delegate a connector operation to. This mechanism
463  *   allows providing a single static const &drm_bridge_funcs instance in
464  *   bridge drivers, improving security by storing function pointers in
465  *   read-only memory.
466  *
467  *   In order to ease transition, bridge drivers may support both the old and
468  *   new models by making connector creation optional and implementing the
469  *   connected-related bridge operations. Connector creation is then controlled
470  *   by the flags argument to the drm_bridge_attach() function. Display drivers
471  *   that support the new model and create connectors themselves shall set the
472  *   %DRM_BRIDGE_ATTACH_NO_CONNECTOR flag, and bridge drivers shall then skip
473  *   connector creation. For intermediate bridges in the chain, the flag shall
474  *   be passed to the drm_bridge_attach() call for the downstream bridge.
475  *   Bridge drivers that implement the new model only shall return an error
476  *   from their &drm_bridge_funcs.attach handler when the
477  *   %DRM_BRIDGE_ATTACH_NO_CONNECTOR flag is not set. New display drivers
478  *   should use the new model, and convert the bridge drivers they use if
479  *   needed, in order to gradually transition to the new model.
480  */
481 
482 /**
483  * drm_bridge_chain_mode_valid - validate the mode against all bridges in the
484  *				 encoder chain.
485  * @bridge: bridge control structure
486  * @info: display info against which the mode shall be validated
487  * @mode: desired mode to be validated
488  *
489  * Calls &drm_bridge_funcs.mode_valid for all the bridges in the encoder
490  * chain, starting from the first bridge to the last. If at least one bridge
491  * does not accept the mode the function returns the error code.
492  *
493  * Note: the bridge passed should be the one closest to the encoder.
494  *
495  * RETURNS:
496  * MODE_OK on success, drm_mode_status Enum error code on failure
497  */
498 enum drm_mode_status
drm_bridge_chain_mode_valid(struct drm_bridge * bridge,const struct drm_display_info * info,const struct drm_display_mode * mode)499 drm_bridge_chain_mode_valid(struct drm_bridge *bridge,
500 			    const struct drm_display_info *info,
501 			    const struct drm_display_mode *mode)
502 {
503 	struct drm_encoder *encoder;
504 
505 	if (!bridge)
506 		return MODE_OK;
507 
508 	encoder = bridge->encoder;
509 	list_for_each_entry_from(bridge, &encoder->bridge_chain, chain_node) {
510 		enum drm_mode_status ret;
511 
512 		if (!bridge->funcs->mode_valid)
513 			continue;
514 
515 		ret = bridge->funcs->mode_valid(bridge, info, mode);
516 		if (ret != MODE_OK)
517 			return ret;
518 	}
519 
520 	return MODE_OK;
521 }
522 EXPORT_SYMBOL(drm_bridge_chain_mode_valid);
523 
524 /**
525  * drm_bridge_chain_mode_set - set proposed mode for all bridges in the
526  *			       encoder chain
527  * @bridge: bridge control structure
528  * @mode: desired mode to be set for the encoder chain
529  * @adjusted_mode: updated mode that works for this encoder chain
530  *
531  * Calls &drm_bridge_funcs.mode_set op for all the bridges in the
532  * encoder chain, starting from the first bridge to the last.
533  *
534  * Note: the bridge passed should be the one closest to the encoder
535  */
drm_bridge_chain_mode_set(struct drm_bridge * bridge,const struct drm_display_mode * mode,const struct drm_display_mode * adjusted_mode)536 void drm_bridge_chain_mode_set(struct drm_bridge *bridge,
537 			       const struct drm_display_mode *mode,
538 			       const struct drm_display_mode *adjusted_mode)
539 {
540 	struct drm_encoder *encoder;
541 
542 	if (!bridge)
543 		return;
544 
545 	encoder = bridge->encoder;
546 	list_for_each_entry_from(bridge, &encoder->bridge_chain, chain_node) {
547 		if (bridge->funcs->mode_set)
548 			bridge->funcs->mode_set(bridge, mode, adjusted_mode);
549 	}
550 }
551 EXPORT_SYMBOL(drm_bridge_chain_mode_set);
552 
553 /**
554  * drm_atomic_bridge_chain_disable - disables all bridges in the encoder chain
555  * @bridge: bridge control structure
556  * @old_state: old atomic state
557  *
558  * Calls &drm_bridge_funcs.atomic_disable (falls back on
559  * &drm_bridge_funcs.disable) op for all the bridges in the encoder chain,
560  * starting from the last bridge to the first. These are called before calling
561  * &drm_encoder_helper_funcs.atomic_disable
562  *
563  * Note: the bridge passed should be the one closest to the encoder
564  */
drm_atomic_bridge_chain_disable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)565 void drm_atomic_bridge_chain_disable(struct drm_bridge *bridge,
566 				     struct drm_atomic_state *old_state)
567 {
568 	struct drm_encoder *encoder;
569 	struct drm_bridge *iter;
570 
571 	if (!bridge)
572 		return;
573 
574 	encoder = bridge->encoder;
575 	list_for_each_entry_reverse(iter, &encoder->bridge_chain, chain_node) {
576 		if (iter->funcs->atomic_disable) {
577 			struct drm_bridge_state *old_bridge_state;
578 
579 			old_bridge_state =
580 				drm_atomic_get_old_bridge_state(old_state,
581 								iter);
582 			if (WARN_ON(!old_bridge_state))
583 				return;
584 
585 			iter->funcs->atomic_disable(iter, old_bridge_state);
586 		} else if (iter->funcs->disable) {
587 			iter->funcs->disable(iter);
588 		}
589 
590 		if (iter == bridge)
591 			break;
592 	}
593 }
594 EXPORT_SYMBOL(drm_atomic_bridge_chain_disable);
595 
drm_atomic_bridge_call_post_disable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)596 static void drm_atomic_bridge_call_post_disable(struct drm_bridge *bridge,
597 						struct drm_atomic_state *old_state)
598 {
599 	if (old_state && bridge->funcs->atomic_post_disable) {
600 		struct drm_bridge_state *old_bridge_state;
601 
602 		old_bridge_state =
603 			drm_atomic_get_old_bridge_state(old_state,
604 							bridge);
605 		if (WARN_ON(!old_bridge_state))
606 			return;
607 
608 		bridge->funcs->atomic_post_disable(bridge,
609 						   old_bridge_state);
610 	} else if (bridge->funcs->post_disable) {
611 		bridge->funcs->post_disable(bridge);
612 	}
613 }
614 
615 /**
616  * drm_atomic_bridge_chain_post_disable - cleans up after disabling all bridges
617  *					  in the encoder chain
618  * @bridge: bridge control structure
619  * @old_state: old atomic state
620  *
621  * Calls &drm_bridge_funcs.atomic_post_disable (falls back on
622  * &drm_bridge_funcs.post_disable) op for all the bridges in the encoder chain,
623  * starting from the first bridge to the last. These are called after completing
624  * &drm_encoder_helper_funcs.atomic_disable
625  *
626  * If a bridge sets @pre_enable_prev_first, then the @post_disable for that
627  * bridge will be called before the previous one to reverse the @pre_enable
628  * calling direction.
629  *
630  * Example:
631  * Bridge A ---> Bridge B ---> Bridge C ---> Bridge D ---> Bridge E
632  *
633  * With pre_enable_prev_first flag enable in Bridge B, D, E then the resulting
634  * @post_disable order would be,
635  * Bridge B, Bridge A, Bridge E, Bridge D, Bridge C.
636  *
637  * Note: the bridge passed should be the one closest to the encoder
638  */
drm_atomic_bridge_chain_post_disable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)639 void drm_atomic_bridge_chain_post_disable(struct drm_bridge *bridge,
640 					  struct drm_atomic_state *old_state)
641 {
642 	struct drm_encoder *encoder;
643 	struct drm_bridge *next, *limit;
644 
645 	if (!bridge)
646 		return;
647 
648 	encoder = bridge->encoder;
649 
650 	list_for_each_entry_from(bridge, &encoder->bridge_chain, chain_node) {
651 		limit = NULL;
652 
653 		if (!list_is_last(&bridge->chain_node, &encoder->bridge_chain)) {
654 			next = list_next_entry(bridge, chain_node);
655 
656 			if (next->pre_enable_prev_first) {
657 				/* next bridge had requested that prev
658 				 * was enabled first, so disabled last
659 				 */
660 				limit = next;
661 
662 				/* Find the next bridge that has NOT requested
663 				 * prev to be enabled first / disabled last
664 				 */
665 				list_for_each_entry_from(next, &encoder->bridge_chain,
666 							 chain_node) {
667 					if (!next->pre_enable_prev_first) {
668 						next = list_prev_entry(next, chain_node);
669 						limit = next;
670 						break;
671 					}
672 
673 					if (list_is_last(&next->chain_node,
674 							 &encoder->bridge_chain)) {
675 						limit = next;
676 						break;
677 					}
678 				}
679 
680 				/* Call these bridges in reverse order */
681 				list_for_each_entry_from_reverse(next, &encoder->bridge_chain,
682 								 chain_node) {
683 					if (next == bridge)
684 						break;
685 
686 					drm_atomic_bridge_call_post_disable(next,
687 									    old_state);
688 				}
689 			}
690 		}
691 
692 		drm_atomic_bridge_call_post_disable(bridge, old_state);
693 
694 		if (limit)
695 			/* Jump all bridges that we have already post_disabled */
696 			bridge = limit;
697 	}
698 }
699 EXPORT_SYMBOL(drm_atomic_bridge_chain_post_disable);
700 
drm_atomic_bridge_call_pre_enable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)701 static void drm_atomic_bridge_call_pre_enable(struct drm_bridge *bridge,
702 					      struct drm_atomic_state *old_state)
703 {
704 	if (old_state && bridge->funcs->atomic_pre_enable) {
705 		struct drm_bridge_state *old_bridge_state;
706 
707 		old_bridge_state =
708 			drm_atomic_get_old_bridge_state(old_state,
709 							bridge);
710 		if (WARN_ON(!old_bridge_state))
711 			return;
712 
713 		bridge->funcs->atomic_pre_enable(bridge, old_bridge_state);
714 	} else if (bridge->funcs->pre_enable) {
715 		bridge->funcs->pre_enable(bridge);
716 	}
717 }
718 
719 /**
720  * drm_atomic_bridge_chain_pre_enable - prepares for enabling all bridges in
721  *					the encoder chain
722  * @bridge: bridge control structure
723  * @old_state: old atomic state
724  *
725  * Calls &drm_bridge_funcs.atomic_pre_enable (falls back on
726  * &drm_bridge_funcs.pre_enable) op for all the bridges in the encoder chain,
727  * starting from the last bridge to the first. These are called before calling
728  * &drm_encoder_helper_funcs.atomic_enable
729  *
730  * If a bridge sets @pre_enable_prev_first, then the pre_enable for the
731  * prev bridge will be called before pre_enable of this bridge.
732  *
733  * Example:
734  * Bridge A ---> Bridge B ---> Bridge C ---> Bridge D ---> Bridge E
735  *
736  * With pre_enable_prev_first flag enable in Bridge B, D, E then the resulting
737  * @pre_enable order would be,
738  * Bridge C, Bridge D, Bridge E, Bridge A, Bridge B.
739  *
740  * Note: the bridge passed should be the one closest to the encoder
741  */
drm_atomic_bridge_chain_pre_enable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)742 void drm_atomic_bridge_chain_pre_enable(struct drm_bridge *bridge,
743 					struct drm_atomic_state *old_state)
744 {
745 	struct drm_encoder *encoder;
746 	struct drm_bridge *iter, *next, *limit;
747 
748 	if (!bridge)
749 		return;
750 
751 	encoder = bridge->encoder;
752 
753 	list_for_each_entry_reverse(iter, &encoder->bridge_chain, chain_node) {
754 		if (iter->pre_enable_prev_first) {
755 			next = iter;
756 			limit = bridge;
757 			list_for_each_entry_from_reverse(next,
758 							 &encoder->bridge_chain,
759 							 chain_node) {
760 				if (next == bridge)
761 					break;
762 
763 				if (!next->pre_enable_prev_first) {
764 					/* Found first bridge that does NOT
765 					 * request prev to be enabled first
766 					 */
767 					limit = next;
768 					break;
769 				}
770 			}
771 
772 			list_for_each_entry_from(next, &encoder->bridge_chain, chain_node) {
773 				/* Call requested prev bridge pre_enable
774 				 * in order.
775 				 */
776 				if (next == iter)
777 					/* At the first bridge to request prev
778 					 * bridges called first.
779 					 */
780 					break;
781 
782 				drm_atomic_bridge_call_pre_enable(next, old_state);
783 			}
784 		}
785 
786 		drm_atomic_bridge_call_pre_enable(iter, old_state);
787 
788 		if (iter->pre_enable_prev_first)
789 			/* Jump all bridges that we have already pre_enabled */
790 			iter = limit;
791 
792 		if (iter == bridge)
793 			break;
794 	}
795 }
796 EXPORT_SYMBOL(drm_atomic_bridge_chain_pre_enable);
797 
798 /**
799  * drm_atomic_bridge_chain_enable - enables all bridges in the encoder chain
800  * @bridge: bridge control structure
801  * @old_state: old atomic state
802  *
803  * Calls &drm_bridge_funcs.atomic_enable (falls back on
804  * &drm_bridge_funcs.enable) op for all the bridges in the encoder chain,
805  * starting from the first bridge to the last. These are called after completing
806  * &drm_encoder_helper_funcs.atomic_enable
807  *
808  * Note: the bridge passed should be the one closest to the encoder
809  */
drm_atomic_bridge_chain_enable(struct drm_bridge * bridge,struct drm_atomic_state * old_state)810 void drm_atomic_bridge_chain_enable(struct drm_bridge *bridge,
811 				    struct drm_atomic_state *old_state)
812 {
813 	struct drm_encoder *encoder;
814 
815 	if (!bridge)
816 		return;
817 
818 	encoder = bridge->encoder;
819 	list_for_each_entry_from(bridge, &encoder->bridge_chain, chain_node) {
820 		if (bridge->funcs->atomic_enable) {
821 			struct drm_bridge_state *old_bridge_state;
822 
823 			old_bridge_state =
824 				drm_atomic_get_old_bridge_state(old_state,
825 								bridge);
826 			if (WARN_ON(!old_bridge_state))
827 				return;
828 
829 			bridge->funcs->atomic_enable(bridge, old_bridge_state);
830 		} else if (bridge->funcs->enable) {
831 			bridge->funcs->enable(bridge);
832 		}
833 	}
834 }
835 EXPORT_SYMBOL(drm_atomic_bridge_chain_enable);
836 
drm_atomic_bridge_check(struct drm_bridge * bridge,struct drm_crtc_state * crtc_state,struct drm_connector_state * conn_state)837 static int drm_atomic_bridge_check(struct drm_bridge *bridge,
838 				   struct drm_crtc_state *crtc_state,
839 				   struct drm_connector_state *conn_state)
840 {
841 	if (bridge->funcs->atomic_check) {
842 		struct drm_bridge_state *bridge_state;
843 		int ret;
844 
845 		bridge_state = drm_atomic_get_new_bridge_state(crtc_state->state,
846 							       bridge);
847 		if (WARN_ON(!bridge_state))
848 			return -EINVAL;
849 
850 		ret = bridge->funcs->atomic_check(bridge, bridge_state,
851 						  crtc_state, conn_state);
852 		if (ret)
853 			return ret;
854 	} else if (bridge->funcs->mode_fixup) {
855 		if (!bridge->funcs->mode_fixup(bridge, &crtc_state->mode,
856 					       &crtc_state->adjusted_mode))
857 			return -EINVAL;
858 	}
859 
860 	return 0;
861 }
862 
select_bus_fmt_recursive(struct drm_bridge * first_bridge,struct drm_bridge * cur_bridge,struct drm_crtc_state * crtc_state,struct drm_connector_state * conn_state,u32 out_bus_fmt)863 static int select_bus_fmt_recursive(struct drm_bridge *first_bridge,
864 				    struct drm_bridge *cur_bridge,
865 				    struct drm_crtc_state *crtc_state,
866 				    struct drm_connector_state *conn_state,
867 				    u32 out_bus_fmt)
868 {
869 	unsigned int i, num_in_bus_fmts = 0;
870 	struct drm_bridge_state *cur_state;
871 	struct drm_bridge *prev_bridge;
872 	u32 *in_bus_fmts;
873 	int ret;
874 
875 	prev_bridge = drm_bridge_get_prev_bridge(cur_bridge);
876 	cur_state = drm_atomic_get_new_bridge_state(crtc_state->state,
877 						    cur_bridge);
878 
879 	/*
880 	 * If bus format negotiation is not supported by this bridge, let's
881 	 * pass MEDIA_BUS_FMT_FIXED to the previous bridge in the chain and
882 	 * hope that it can handle this situation gracefully (by providing
883 	 * appropriate default values).
884 	 */
885 	if (!cur_bridge->funcs->atomic_get_input_bus_fmts) {
886 		if (cur_bridge != first_bridge) {
887 			ret = select_bus_fmt_recursive(first_bridge,
888 						       prev_bridge, crtc_state,
889 						       conn_state,
890 						       MEDIA_BUS_FMT_FIXED);
891 			if (ret)
892 				return ret;
893 		}
894 
895 		/*
896 		 * Driver does not implement the atomic state hooks, but that's
897 		 * fine, as long as it does not access the bridge state.
898 		 */
899 		if (cur_state) {
900 			cur_state->input_bus_cfg.format = MEDIA_BUS_FMT_FIXED;
901 			cur_state->output_bus_cfg.format = out_bus_fmt;
902 		}
903 
904 		return 0;
905 	}
906 
907 	/*
908 	 * If the driver implements ->atomic_get_input_bus_fmts() it
909 	 * should also implement the atomic state hooks.
910 	 */
911 	if (WARN_ON(!cur_state))
912 		return -EINVAL;
913 
914 	in_bus_fmts = cur_bridge->funcs->atomic_get_input_bus_fmts(cur_bridge,
915 							cur_state,
916 							crtc_state,
917 							conn_state,
918 							out_bus_fmt,
919 							&num_in_bus_fmts);
920 	if (!num_in_bus_fmts)
921 		return -ENOTSUPP;
922 	else if (!in_bus_fmts)
923 		return -ENOMEM;
924 
925 	if (first_bridge == cur_bridge) {
926 		cur_state->input_bus_cfg.format = in_bus_fmts[0];
927 		cur_state->output_bus_cfg.format = out_bus_fmt;
928 		kfree(in_bus_fmts);
929 		return 0;
930 	}
931 
932 	for (i = 0; i < num_in_bus_fmts; i++) {
933 		ret = select_bus_fmt_recursive(first_bridge, prev_bridge,
934 					       crtc_state, conn_state,
935 					       in_bus_fmts[i]);
936 		if (ret != -ENOTSUPP)
937 			break;
938 	}
939 
940 	if (!ret) {
941 		cur_state->input_bus_cfg.format = in_bus_fmts[i];
942 		cur_state->output_bus_cfg.format = out_bus_fmt;
943 	}
944 
945 	kfree(in_bus_fmts);
946 	return ret;
947 }
948 
949 /*
950  * This function is called by &drm_atomic_bridge_chain_check() just before
951  * calling &drm_bridge_funcs.atomic_check() on all elements of the chain.
952  * It performs bus format negotiation between bridge elements. The negotiation
953  * happens in reverse order, starting from the last element in the chain up to
954  * @bridge.
955  *
956  * Negotiation starts by retrieving supported output bus formats on the last
957  * bridge element and testing them one by one. The test is recursive, meaning
958  * that for each tested output format, the whole chain will be walked backward,
959  * and each element will have to choose an input bus format that can be
960  * transcoded to the requested output format. When a bridge element does not
961  * support transcoding into a specific output format -ENOTSUPP is returned and
962  * the next bridge element will have to try a different format. If none of the
963  * combinations worked, -ENOTSUPP is returned and the atomic modeset will fail.
964  *
965  * This implementation is relying on
966  * &drm_bridge_funcs.atomic_get_output_bus_fmts() and
967  * &drm_bridge_funcs.atomic_get_input_bus_fmts() to gather supported
968  * input/output formats.
969  *
970  * When &drm_bridge_funcs.atomic_get_output_bus_fmts() is not implemented by
971  * the last element of the chain, &drm_atomic_bridge_chain_select_bus_fmts()
972  * tries a single format: &drm_connector.display_info.bus_formats[0] if
973  * available, MEDIA_BUS_FMT_FIXED otherwise.
974  *
975  * When &drm_bridge_funcs.atomic_get_input_bus_fmts() is not implemented,
976  * &drm_atomic_bridge_chain_select_bus_fmts() skips the negotiation on the
977  * bridge element that lacks this hook and asks the previous element in the
978  * chain to try MEDIA_BUS_FMT_FIXED. It's up to bridge drivers to decide what
979  * to do in that case (fail if they want to enforce bus format negotiation, or
980  * provide a reasonable default if they need to support pipelines where not
981  * all elements support bus format negotiation).
982  */
983 static int
drm_atomic_bridge_chain_select_bus_fmts(struct drm_bridge * bridge,struct drm_crtc_state * crtc_state,struct drm_connector_state * conn_state)984 drm_atomic_bridge_chain_select_bus_fmts(struct drm_bridge *bridge,
985 					struct drm_crtc_state *crtc_state,
986 					struct drm_connector_state *conn_state)
987 {
988 	struct drm_connector *conn = conn_state->connector;
989 	struct drm_encoder *encoder = bridge->encoder;
990 	struct drm_bridge_state *last_bridge_state;
991 	unsigned int i, num_out_bus_fmts = 0;
992 	struct drm_bridge *last_bridge;
993 	u32 *out_bus_fmts;
994 	int ret = 0;
995 
996 	last_bridge = list_last_entry(&encoder->bridge_chain,
997 				      struct drm_bridge, chain_node);
998 	last_bridge_state = drm_atomic_get_new_bridge_state(crtc_state->state,
999 							    last_bridge);
1000 
1001 	if (last_bridge->funcs->atomic_get_output_bus_fmts) {
1002 		const struct drm_bridge_funcs *funcs = last_bridge->funcs;
1003 
1004 		/*
1005 		 * If the driver implements ->atomic_get_output_bus_fmts() it
1006 		 * should also implement the atomic state hooks.
1007 		 */
1008 		if (WARN_ON(!last_bridge_state))
1009 			return -EINVAL;
1010 
1011 		out_bus_fmts = funcs->atomic_get_output_bus_fmts(last_bridge,
1012 							last_bridge_state,
1013 							crtc_state,
1014 							conn_state,
1015 							&num_out_bus_fmts);
1016 		if (!num_out_bus_fmts)
1017 			return -ENOTSUPP;
1018 		else if (!out_bus_fmts)
1019 			return -ENOMEM;
1020 	} else {
1021 		num_out_bus_fmts = 1;
1022 		out_bus_fmts = kmalloc(sizeof(*out_bus_fmts), GFP_KERNEL);
1023 		if (!out_bus_fmts)
1024 			return -ENOMEM;
1025 
1026 		if (conn->display_info.num_bus_formats &&
1027 		    conn->display_info.bus_formats)
1028 			out_bus_fmts[0] = conn->display_info.bus_formats[0];
1029 		else
1030 			out_bus_fmts[0] = MEDIA_BUS_FMT_FIXED;
1031 	}
1032 
1033 	for (i = 0; i < num_out_bus_fmts; i++) {
1034 		ret = select_bus_fmt_recursive(bridge, last_bridge, crtc_state,
1035 					       conn_state, out_bus_fmts[i]);
1036 		if (ret != -ENOTSUPP)
1037 			break;
1038 	}
1039 
1040 	kfree(out_bus_fmts);
1041 
1042 	return ret;
1043 }
1044 
1045 static void
drm_atomic_bridge_propagate_bus_flags(struct drm_bridge * bridge,struct drm_connector * conn,struct drm_atomic_state * state)1046 drm_atomic_bridge_propagate_bus_flags(struct drm_bridge *bridge,
1047 				      struct drm_connector *conn,
1048 				      struct drm_atomic_state *state)
1049 {
1050 	struct drm_bridge_state *bridge_state, *next_bridge_state;
1051 	struct drm_bridge *next_bridge;
1052 	u32 output_flags = 0;
1053 
1054 	bridge_state = drm_atomic_get_new_bridge_state(state, bridge);
1055 
1056 	/* No bridge state attached to this bridge => nothing to propagate. */
1057 	if (!bridge_state)
1058 		return;
1059 
1060 	next_bridge = drm_bridge_get_next_bridge(bridge);
1061 
1062 	/*
1063 	 * Let's try to apply the most common case here, that is, propagate
1064 	 * display_info flags for the last bridge, and propagate the input
1065 	 * flags of the next bridge element to the output end of the current
1066 	 * bridge when the bridge is not the last one.
1067 	 * There are exceptions to this rule, like when signal inversion is
1068 	 * happening at the board level, but that's something drivers can deal
1069 	 * with from their &drm_bridge_funcs.atomic_check() implementation by
1070 	 * simply overriding the flags value we've set here.
1071 	 */
1072 	if (!next_bridge) {
1073 		output_flags = conn->display_info.bus_flags;
1074 	} else {
1075 		next_bridge_state = drm_atomic_get_new_bridge_state(state,
1076 								next_bridge);
1077 		/*
1078 		 * No bridge state attached to the next bridge, just leave the
1079 		 * flags to 0.
1080 		 */
1081 		if (next_bridge_state)
1082 			output_flags = next_bridge_state->input_bus_cfg.flags;
1083 	}
1084 
1085 	bridge_state->output_bus_cfg.flags = output_flags;
1086 
1087 	/*
1088 	 * Propagate the output flags to the input end of the bridge. Again, it's
1089 	 * not necessarily what all bridges want, but that's what most of them
1090 	 * do, and by doing that by default we avoid forcing drivers to
1091 	 * duplicate the "dummy propagation" logic.
1092 	 */
1093 	bridge_state->input_bus_cfg.flags = output_flags;
1094 }
1095 
1096 /**
1097  * drm_atomic_bridge_chain_check() - Do an atomic check on the bridge chain
1098  * @bridge: bridge control structure
1099  * @crtc_state: new CRTC state
1100  * @conn_state: new connector state
1101  *
1102  * First trigger a bus format negotiation before calling
1103  * &drm_bridge_funcs.atomic_check() (falls back on
1104  * &drm_bridge_funcs.mode_fixup()) op for all the bridges in the encoder chain,
1105  * starting from the last bridge to the first. These are called before calling
1106  * &drm_encoder_helper_funcs.atomic_check()
1107  *
1108  * RETURNS:
1109  * 0 on success, a negative error code on failure
1110  */
drm_atomic_bridge_chain_check(struct drm_bridge * bridge,struct drm_crtc_state * crtc_state,struct drm_connector_state * conn_state)1111 int drm_atomic_bridge_chain_check(struct drm_bridge *bridge,
1112 				  struct drm_crtc_state *crtc_state,
1113 				  struct drm_connector_state *conn_state)
1114 {
1115 	struct drm_connector *conn = conn_state->connector;
1116 	struct drm_encoder *encoder;
1117 	struct drm_bridge *iter;
1118 	int ret;
1119 
1120 	if (!bridge)
1121 		return 0;
1122 
1123 	ret = drm_atomic_bridge_chain_select_bus_fmts(bridge, crtc_state,
1124 						      conn_state);
1125 	if (ret)
1126 		return ret;
1127 
1128 	encoder = bridge->encoder;
1129 	list_for_each_entry_reverse(iter, &encoder->bridge_chain, chain_node) {
1130 		int ret;
1131 
1132 		/*
1133 		 * Bus flags are propagated by default. If a bridge needs to
1134 		 * tweak the input bus flags for any reason, it should happen
1135 		 * in its &drm_bridge_funcs.atomic_check() implementation such
1136 		 * that preceding bridges in the chain can propagate the new
1137 		 * bus flags.
1138 		 */
1139 		drm_atomic_bridge_propagate_bus_flags(iter, conn,
1140 						      crtc_state->state);
1141 
1142 		ret = drm_atomic_bridge_check(iter, crtc_state, conn_state);
1143 		if (ret)
1144 			return ret;
1145 
1146 		if (iter == bridge)
1147 			break;
1148 	}
1149 
1150 	return 0;
1151 }
1152 EXPORT_SYMBOL(drm_atomic_bridge_chain_check);
1153 
1154 /**
1155  * drm_bridge_detect - check if anything is attached to the bridge output
1156  * @bridge: bridge control structure
1157  *
1158  * If the bridge supports output detection, as reported by the
1159  * DRM_BRIDGE_OP_DETECT bridge ops flag, call &drm_bridge_funcs.detect for the
1160  * bridge and return the connection status. Otherwise return
1161  * connector_status_unknown.
1162  *
1163  * RETURNS:
1164  * The detection status on success, or connector_status_unknown if the bridge
1165  * doesn't support output detection.
1166  */
drm_bridge_detect(struct drm_bridge * bridge)1167 enum drm_connector_status drm_bridge_detect(struct drm_bridge *bridge)
1168 {
1169 	if (!(bridge->ops & DRM_BRIDGE_OP_DETECT))
1170 		return connector_status_unknown;
1171 
1172 	return bridge->funcs->detect(bridge);
1173 }
1174 EXPORT_SYMBOL_GPL(drm_bridge_detect);
1175 
1176 /**
1177  * drm_bridge_get_modes - fill all modes currently valid for the sink into the
1178  * @connector
1179  * @bridge: bridge control structure
1180  * @connector: the connector to fill with modes
1181  *
1182  * If the bridge supports output modes retrieval, as reported by the
1183  * DRM_BRIDGE_OP_MODES bridge ops flag, call &drm_bridge_funcs.get_modes to
1184  * fill the connector with all valid modes and return the number of modes
1185  * added. Otherwise return 0.
1186  *
1187  * RETURNS:
1188  * The number of modes added to the connector.
1189  */
drm_bridge_get_modes(struct drm_bridge * bridge,struct drm_connector * connector)1190 int drm_bridge_get_modes(struct drm_bridge *bridge,
1191 			 struct drm_connector *connector)
1192 {
1193 	if (!(bridge->ops & DRM_BRIDGE_OP_MODES))
1194 		return 0;
1195 
1196 	return bridge->funcs->get_modes(bridge, connector);
1197 }
1198 EXPORT_SYMBOL_GPL(drm_bridge_get_modes);
1199 
1200 /**
1201  * drm_bridge_edid_read - read the EDID data of the connected display
1202  * @bridge: bridge control structure
1203  * @connector: the connector to read EDID for
1204  *
1205  * If the bridge supports output EDID retrieval, as reported by the
1206  * DRM_BRIDGE_OP_EDID bridge ops flag, call &drm_bridge_funcs.edid_read to get
1207  * the EDID and return it. Otherwise return NULL.
1208  *
1209  * RETURNS:
1210  * The retrieved EDID on success, or NULL otherwise.
1211  */
drm_bridge_edid_read(struct drm_bridge * bridge,struct drm_connector * connector)1212 const struct drm_edid *drm_bridge_edid_read(struct drm_bridge *bridge,
1213 					    struct drm_connector *connector)
1214 {
1215 	if (!(bridge->ops & DRM_BRIDGE_OP_EDID))
1216 		return NULL;
1217 
1218 	return bridge->funcs->edid_read(bridge, connector);
1219 }
1220 EXPORT_SYMBOL_GPL(drm_bridge_edid_read);
1221 
1222 /**
1223  * drm_bridge_hpd_enable - enable hot plug detection for the bridge
1224  * @bridge: bridge control structure
1225  * @cb: hot-plug detection callback
1226  * @data: data to be passed to the hot-plug detection callback
1227  *
1228  * Call &drm_bridge_funcs.hpd_enable if implemented and register the given @cb
1229  * and @data as hot plug notification callback. From now on the @cb will be
1230  * called with @data when an output status change is detected by the bridge,
1231  * until hot plug notification gets disabled with drm_bridge_hpd_disable().
1232  *
1233  * Hot plug detection is supported only if the DRM_BRIDGE_OP_HPD flag is set in
1234  * bridge->ops. This function shall not be called when the flag is not set.
1235  *
1236  * Only one hot plug detection callback can be registered at a time, it is an
1237  * error to call this function when hot plug detection is already enabled for
1238  * the bridge.
1239  */
drm_bridge_hpd_enable(struct drm_bridge * bridge,void (* cb)(void * data,enum drm_connector_status status),void * data)1240 void drm_bridge_hpd_enable(struct drm_bridge *bridge,
1241 			   void (*cb)(void *data,
1242 				      enum drm_connector_status status),
1243 			   void *data)
1244 {
1245 	if (!(bridge->ops & DRM_BRIDGE_OP_HPD))
1246 		return;
1247 
1248 	mutex_lock(&bridge->hpd_mutex);
1249 
1250 	if (WARN(bridge->hpd_cb, "Hot plug detection already enabled\n"))
1251 		goto unlock;
1252 
1253 	bridge->hpd_cb = cb;
1254 	bridge->hpd_data = data;
1255 
1256 	if (bridge->funcs->hpd_enable)
1257 		bridge->funcs->hpd_enable(bridge);
1258 
1259 unlock:
1260 	mutex_unlock(&bridge->hpd_mutex);
1261 }
1262 EXPORT_SYMBOL_GPL(drm_bridge_hpd_enable);
1263 
1264 /**
1265  * drm_bridge_hpd_disable - disable hot plug detection for the bridge
1266  * @bridge: bridge control structure
1267  *
1268  * Call &drm_bridge_funcs.hpd_disable if implemented and unregister the hot
1269  * plug detection callback previously registered with drm_bridge_hpd_enable().
1270  * Once this function returns the callback will not be called by the bridge
1271  * when an output status change occurs.
1272  *
1273  * Hot plug detection is supported only if the DRM_BRIDGE_OP_HPD flag is set in
1274  * bridge->ops. This function shall not be called when the flag is not set.
1275  */
drm_bridge_hpd_disable(struct drm_bridge * bridge)1276 void drm_bridge_hpd_disable(struct drm_bridge *bridge)
1277 {
1278 	if (!(bridge->ops & DRM_BRIDGE_OP_HPD))
1279 		return;
1280 
1281 	mutex_lock(&bridge->hpd_mutex);
1282 	if (bridge->funcs->hpd_disable)
1283 		bridge->funcs->hpd_disable(bridge);
1284 
1285 	bridge->hpd_cb = NULL;
1286 	bridge->hpd_data = NULL;
1287 	mutex_unlock(&bridge->hpd_mutex);
1288 }
1289 EXPORT_SYMBOL_GPL(drm_bridge_hpd_disable);
1290 
1291 /**
1292  * drm_bridge_hpd_notify - notify hot plug detection events
1293  * @bridge: bridge control structure
1294  * @status: output connection status
1295  *
1296  * Bridge drivers shall call this function to report hot plug events when they
1297  * detect a change in the output status, when hot plug detection has been
1298  * enabled by drm_bridge_hpd_enable().
1299  *
1300  * This function shall be called in a context that can sleep.
1301  */
drm_bridge_hpd_notify(struct drm_bridge * bridge,enum drm_connector_status status)1302 void drm_bridge_hpd_notify(struct drm_bridge *bridge,
1303 			   enum drm_connector_status status)
1304 {
1305 	mutex_lock(&bridge->hpd_mutex);
1306 	if (bridge->hpd_cb)
1307 		bridge->hpd_cb(bridge->hpd_data, status);
1308 	mutex_unlock(&bridge->hpd_mutex);
1309 }
1310 EXPORT_SYMBOL_GPL(drm_bridge_hpd_notify);
1311 
1312 #ifdef CONFIG_OF
1313 /**
1314  * of_drm_find_bridge - find the bridge corresponding to the device node in
1315  *			the global bridge list
1316  *
1317  * @np: device node
1318  *
1319  * RETURNS:
1320  * drm_bridge control struct on success, NULL on failure
1321  */
of_drm_find_bridge(struct device_node * np)1322 struct drm_bridge *of_drm_find_bridge(struct device_node *np)
1323 {
1324 	struct drm_bridge *bridge;
1325 
1326 	mutex_lock(&bridge_lock);
1327 
1328 	list_for_each_entry(bridge, &bridge_list, list) {
1329 		if (bridge->of_node == np) {
1330 			mutex_unlock(&bridge_lock);
1331 			return bridge;
1332 		}
1333 	}
1334 
1335 	mutex_unlock(&bridge_lock);
1336 	return NULL;
1337 }
1338 EXPORT_SYMBOL(of_drm_find_bridge);
1339 #endif
1340 
1341 MODULE_AUTHOR("Ajay Kumar <ajaykumar.rs@samsung.com>");
1342 MODULE_DESCRIPTION("DRM bridge infrastructure");
1343 MODULE_LICENSE("GPL and additional rights");
1344