1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2013 Red Hat
4 * Copyright (c) 2014-2018, 2020-2021 The Linux Foundation. All rights reserved.
5 * Copyright (c) 2022-2024 Qualcomm Innovation Center, Inc. All rights reserved.
6 *
7 * Author: Rob Clark <robdclark@gmail.com>
8 */
9
10 #define pr_fmt(fmt) "[drm:%s:%d] " fmt, __func__, __LINE__
11 #include <linux/debugfs.h>
12 #include <linux/kthread.h>
13 #include <linux/seq_file.h>
14
15 #include <drm/drm_atomic.h>
16 #include <drm/drm_crtc.h>
17 #include <drm/drm_file.h>
18 #include <drm/drm_probe_helper.h>
19 #include <drm/drm_framebuffer.h>
20
21 #include "msm_drv.h"
22 #include "dpu_kms.h"
23 #include "dpu_hwio.h"
24 #include "dpu_hw_catalog.h"
25 #include "dpu_hw_intf.h"
26 #include "dpu_hw_ctl.h"
27 #include "dpu_hw_cwb.h"
28 #include "dpu_hw_dspp.h"
29 #include "dpu_hw_dsc.h"
30 #include "dpu_hw_merge3d.h"
31 #include "dpu_hw_cdm.h"
32 #include "dpu_formats.h"
33 #include "dpu_encoder_phys.h"
34 #include "dpu_crtc.h"
35 #include "dpu_trace.h"
36 #include "dpu_core_irq.h"
37 #include "disp/msm_disp_snapshot.h"
38
39 #define DPU_DEBUG_ENC(e, fmt, ...) DRM_DEBUG_ATOMIC("enc%d " fmt,\
40 (e) ? (e)->base.base.id : -1, ##__VA_ARGS__)
41
42 #define DPU_ERROR_ENC(e, fmt, ...) DPU_ERROR("enc%d " fmt,\
43 (e) ? (e)->base.base.id : -1, ##__VA_ARGS__)
44
45 #define DPU_ERROR_ENC_RATELIMITED(e, fmt, ...) DPU_ERROR_RATELIMITED("enc%d " fmt,\
46 (e) ? (e)->base.base.id : -1, ##__VA_ARGS__)
47
48 /*
49 * Two to anticipate panels that can do cmd/vid dynamic switching
50 * plan is to create all possible physical encoder types, and switch between
51 * them at runtime
52 */
53 #define NUM_PHYS_ENCODER_TYPES 2
54
55 #define MAX_PHYS_ENCODERS_PER_VIRTUAL \
56 (MAX_H_TILES_PER_DISPLAY * NUM_PHYS_ENCODER_TYPES)
57
58 #define MAX_CHANNELS_PER_ENC 2
59 #define MAX_CWB_PER_ENC 2
60
61 #define IDLE_SHORT_TIMEOUT 1
62
63 /* timeout in frames waiting for frame done */
64 #define DPU_ENCODER_FRAME_DONE_TIMEOUT_FRAMES 5
65
66 /**
67 * enum dpu_enc_rc_events - events for resource control state machine
68 * @DPU_ENC_RC_EVENT_KICKOFF:
69 * This event happens at NORMAL priority.
70 * Event that signals the start of the transfer. When this event is
71 * received, enable MDP/DSI core clocks. Regardless of the previous
72 * state, the resource should be in ON state at the end of this event.
73 * @DPU_ENC_RC_EVENT_FRAME_DONE:
74 * This event happens at INTERRUPT level.
75 * Event signals the end of the data transfer after the PP FRAME_DONE
76 * event. At the end of this event, a delayed work is scheduled to go to
77 * IDLE_PC state after IDLE_TIMEOUT time.
78 * @DPU_ENC_RC_EVENT_PRE_STOP:
79 * This event happens at NORMAL priority.
80 * This event, when received during the ON state, leave the RC STATE
81 * in the PRE_OFF state. It should be followed by the STOP event as
82 * part of encoder disable.
83 * If received during IDLE or OFF states, it will do nothing.
84 * @DPU_ENC_RC_EVENT_STOP:
85 * This event happens at NORMAL priority.
86 * When this event is received, disable all the MDP/DSI core clocks, and
87 * disable IRQs. It should be called from the PRE_OFF or IDLE states.
88 * IDLE is expected when IDLE_PC has run, and PRE_OFF did nothing.
89 * PRE_OFF is expected when PRE_STOP was executed during the ON state.
90 * Resource state should be in OFF at the end of the event.
91 * @DPU_ENC_RC_EVENT_ENTER_IDLE:
92 * This event happens at NORMAL priority from a work item.
93 * Event signals that there were no frame updates for IDLE_TIMEOUT time.
94 * This would disable MDP/DSI core clocks and change the resource state
95 * to IDLE.
96 */
97 enum dpu_enc_rc_events {
98 DPU_ENC_RC_EVENT_KICKOFF = 1,
99 DPU_ENC_RC_EVENT_FRAME_DONE,
100 DPU_ENC_RC_EVENT_PRE_STOP,
101 DPU_ENC_RC_EVENT_STOP,
102 DPU_ENC_RC_EVENT_ENTER_IDLE
103 };
104
105 /*
106 * enum dpu_enc_rc_states - states that the resource control maintains
107 * @DPU_ENC_RC_STATE_OFF: Resource is in OFF state
108 * @DPU_ENC_RC_STATE_PRE_OFF: Resource is transitioning to OFF state
109 * @DPU_ENC_RC_STATE_ON: Resource is in ON state
110 * @DPU_ENC_RC_STATE_MODESET: Resource is in modeset state
111 * @DPU_ENC_RC_STATE_IDLE: Resource is in IDLE state
112 */
113 enum dpu_enc_rc_states {
114 DPU_ENC_RC_STATE_OFF,
115 DPU_ENC_RC_STATE_PRE_OFF,
116 DPU_ENC_RC_STATE_ON,
117 DPU_ENC_RC_STATE_IDLE
118 };
119
120 /**
121 * struct dpu_encoder_virt - virtual encoder. Container of one or more physical
122 * encoders. Virtual encoder manages one "logical" display. Physical
123 * encoders manage one intf block, tied to a specific panel/sub-panel.
124 * Virtual encoder defers as much as possible to the physical encoders.
125 * Virtual encoder registers itself with the DRM Framework as the encoder.
126 * @base: drm_encoder base class for registration with DRM
127 * @enc_spinlock: Virtual-Encoder-Wide Spin Lock for IRQ purposes
128 * @enabled: True if the encoder is active, protected by enc_lock
129 * @commit_done_timedout: True if there has been a timeout on commit after
130 * enabling the encoder.
131 * @num_phys_encs: Actual number of physical encoders contained.
132 * @phys_encs: Container of physical encoders managed.
133 * @cur_master: Pointer to the current master in this mode. Optimization
134 * Only valid after enable. Cleared as disable.
135 * @cur_slave: As above but for the slave encoder.
136 * @hw_pp: Handle to the pingpong blocks used for the display. No.
137 * pingpong blocks can be different than num_phys_encs.
138 * @hw_cwb: Handle to the CWB muxes used for concurrent writeback
139 * display. Number of CWB muxes can be different than
140 * num_phys_encs.
141 * @hw_dsc: Handle to the DSC blocks used for the display.
142 * @dsc_mask: Bitmask of used DSC blocks.
143 * @cwb_mask: Bitmask of used CWB muxes
144 * @intfs_swapped: Whether or not the phys_enc interfaces have been swapped
145 * for partial update right-only cases, such as pingpong
146 * split where virtual pingpong does not generate IRQs
147 * @crtc: Pointer to the currently assigned crtc. Normally you
148 * would use crtc->state->encoder_mask to determine the
149 * link between encoder/crtc. However in this case we need
150 * to track crtc in the disable() hook which is called
151 * _after_ encoder_mask is cleared.
152 * @connector: If a mode is set, cached pointer to the active connector
153 * @enc_lock: Lock around physical encoder
154 * create/destroy/enable/disable
155 * @frame_busy_mask: Bitmask tracking which phys_enc we are still
156 * busy processing current command.
157 * Bit0 = phys_encs[0] etc.
158 * @frame_done_timeout_ms: frame done timeout in ms
159 * @frame_done_timeout_cnt: atomic counter tracking the number of frame
160 * done timeouts
161 * @frame_done_timer: watchdog timer for frame done event
162 * @disp_info: local copy of msm_display_info struct
163 * @idle_pc_supported: indicate if idle power collaps is supported
164 * @rc_lock: resource control mutex lock to protect
165 * virt encoder over various state changes
166 * @rc_state: resource controller state
167 * @delayed_off_work: delayed worker to schedule disabling of
168 * clks and resources after IDLE_TIMEOUT time.
169 * @topology: topology of the display
170 * @idle_timeout: idle timeout duration in milliseconds
171 * @wide_bus_en: wide bus is enabled on this interface
172 * @dsc: drm_dsc_config pointer, for DSC-enabled encoders
173 */
174 struct dpu_encoder_virt {
175 struct drm_encoder base;
176 spinlock_t enc_spinlock;
177
178 bool enabled;
179 bool commit_done_timedout;
180
181 unsigned int num_phys_encs;
182 struct dpu_encoder_phys *phys_encs[MAX_PHYS_ENCODERS_PER_VIRTUAL];
183 struct dpu_encoder_phys *cur_master;
184 struct dpu_encoder_phys *cur_slave;
185 struct dpu_hw_pingpong *hw_pp[MAX_CHANNELS_PER_ENC];
186 struct dpu_hw_cwb *hw_cwb[MAX_CWB_PER_ENC];
187 struct dpu_hw_dsc *hw_dsc[MAX_CHANNELS_PER_ENC];
188
189 unsigned int dsc_mask;
190 unsigned int cwb_mask;
191
192 bool intfs_swapped;
193
194 struct drm_crtc *crtc;
195 struct drm_connector *connector;
196
197 struct mutex enc_lock;
198 DECLARE_BITMAP(frame_busy_mask, MAX_PHYS_ENCODERS_PER_VIRTUAL);
199
200 atomic_t frame_done_timeout_ms;
201 atomic_t frame_done_timeout_cnt;
202 struct timer_list frame_done_timer;
203
204 struct msm_display_info disp_info;
205
206 bool idle_pc_supported;
207 struct mutex rc_lock;
208 enum dpu_enc_rc_states rc_state;
209 struct delayed_work delayed_off_work;
210 struct msm_display_topology topology;
211
212 u32 idle_timeout;
213
214 bool wide_bus_en;
215
216 /* DSC configuration */
217 struct drm_dsc_config *dsc;
218 };
219
220 #define to_dpu_encoder_virt(x) container_of(x, struct dpu_encoder_virt, base)
221
222 static u32 dither_matrix[DITHER_MATRIX_SZ] = {
223 15, 7, 13, 5, 3, 11, 1, 9, 12, 4, 14, 6, 0, 8, 2, 10
224 };
225
226 /**
227 * dpu_encoder_get_drm_fmt - return DRM fourcc format
228 * @phys_enc: Pointer to physical encoder structure
229 */
dpu_encoder_get_drm_fmt(struct dpu_encoder_phys * phys_enc)230 u32 dpu_encoder_get_drm_fmt(struct dpu_encoder_phys *phys_enc)
231 {
232 struct drm_encoder *drm_enc;
233 struct dpu_encoder_virt *dpu_enc;
234 struct drm_display_info *info;
235 struct drm_display_mode *mode;
236
237 drm_enc = phys_enc->parent;
238 dpu_enc = to_dpu_encoder_virt(drm_enc);
239 info = &dpu_enc->connector->display_info;
240 mode = &phys_enc->cached_mode;
241
242 if (drm_mode_is_420_only(info, mode))
243 return DRM_FORMAT_YUV420;
244
245 return DRM_FORMAT_RGB888;
246 }
247
248 /**
249 * dpu_encoder_needs_periph_flush - return true if physical encoder requires
250 * peripheral flush
251 * @phys_enc: Pointer to physical encoder structure
252 */
dpu_encoder_needs_periph_flush(struct dpu_encoder_phys * phys_enc)253 bool dpu_encoder_needs_periph_flush(struct dpu_encoder_phys *phys_enc)
254 {
255 struct drm_encoder *drm_enc;
256 struct dpu_encoder_virt *dpu_enc;
257 struct msm_display_info *disp_info;
258 struct msm_drm_private *priv;
259 struct drm_display_mode *mode;
260
261 drm_enc = phys_enc->parent;
262 dpu_enc = to_dpu_encoder_virt(drm_enc);
263 disp_info = &dpu_enc->disp_info;
264 priv = drm_enc->dev->dev_private;
265 mode = &phys_enc->cached_mode;
266
267 return phys_enc->hw_intf->cap->type == INTF_DP &&
268 msm_dp_needs_periph_flush(priv->kms->dp[disp_info->h_tile_instance[0]], mode);
269 }
270
271 /**
272 * dpu_encoder_is_widebus_enabled - return bool value if widebus is enabled
273 * @drm_enc: Pointer to previously created drm encoder structure
274 */
dpu_encoder_is_widebus_enabled(const struct drm_encoder * drm_enc)275 bool dpu_encoder_is_widebus_enabled(const struct drm_encoder *drm_enc)
276 {
277 const struct dpu_encoder_virt *dpu_enc;
278 struct msm_drm_private *priv = drm_enc->dev->dev_private;
279 const struct msm_display_info *disp_info;
280 int index;
281
282 dpu_enc = to_dpu_encoder_virt(drm_enc);
283 disp_info = &dpu_enc->disp_info;
284 index = disp_info->h_tile_instance[0];
285
286 if (disp_info->intf_type == INTF_DP)
287 return msm_dp_wide_bus_available(priv->kms->dp[index]);
288 else if (disp_info->intf_type == INTF_DSI)
289 return msm_dsi_wide_bus_enabled(priv->kms->dsi[index]);
290
291 return false;
292 }
293
294 /**
295 * dpu_encoder_is_dsc_enabled - indicate whether dsc is enabled
296 * for the encoder.
297 * @drm_enc: Pointer to previously created drm encoder structure
298 */
dpu_encoder_is_dsc_enabled(const struct drm_encoder * drm_enc)299 bool dpu_encoder_is_dsc_enabled(const struct drm_encoder *drm_enc)
300 {
301 const struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
302
303 return dpu_enc->dsc ? true : false;
304 }
305
306 /**
307 * dpu_encoder_get_crc_values_cnt - get number of physical encoders contained
308 * in virtual encoder that can collect CRC values
309 * @drm_enc: Pointer to previously created drm encoder structure
310 * Returns: Number of physical encoders for given drm encoder
311 */
dpu_encoder_get_crc_values_cnt(const struct drm_encoder * drm_enc)312 int dpu_encoder_get_crc_values_cnt(const struct drm_encoder *drm_enc)
313 {
314 struct dpu_encoder_virt *dpu_enc;
315 int i, num_intf = 0;
316
317 dpu_enc = to_dpu_encoder_virt(drm_enc);
318
319 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
320 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
321
322 if (phys->hw_intf && phys->hw_intf->ops.setup_misr
323 && phys->hw_intf->ops.collect_misr)
324 num_intf++;
325 }
326
327 return num_intf;
328 }
329
330 /**
331 * dpu_encoder_setup_misr - enable misr calculations
332 * @drm_enc: Pointer to previously created drm encoder structure
333 */
dpu_encoder_setup_misr(const struct drm_encoder * drm_enc)334 void dpu_encoder_setup_misr(const struct drm_encoder *drm_enc)
335 {
336 struct dpu_encoder_virt *dpu_enc;
337
338 int i;
339
340 dpu_enc = to_dpu_encoder_virt(drm_enc);
341
342 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
343 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
344
345 if (!phys->hw_intf || !phys->hw_intf->ops.setup_misr)
346 continue;
347
348 phys->hw_intf->ops.setup_misr(phys->hw_intf);
349 }
350 }
351
352 /**
353 * dpu_encoder_get_crc - get the crc value from interface blocks
354 * @drm_enc: Pointer to previously created drm encoder structure
355 * @crcs: array to fill with CRC data
356 * @pos: offset into the @crcs array
357 * Returns: 0 on success, error otherwise
358 */
dpu_encoder_get_crc(const struct drm_encoder * drm_enc,u32 * crcs,int pos)359 int dpu_encoder_get_crc(const struct drm_encoder *drm_enc, u32 *crcs, int pos)
360 {
361 struct dpu_encoder_virt *dpu_enc;
362
363 int i, rc = 0, entries_added = 0;
364
365 if (!drm_enc->crtc) {
366 DRM_ERROR("no crtc found for encoder %d\n", drm_enc->index);
367 return -EINVAL;
368 }
369
370 dpu_enc = to_dpu_encoder_virt(drm_enc);
371
372 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
373 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
374
375 if (!phys->hw_intf || !phys->hw_intf->ops.collect_misr)
376 continue;
377
378 rc = phys->hw_intf->ops.collect_misr(phys->hw_intf, &crcs[pos + entries_added]);
379 if (rc)
380 return rc;
381 entries_added++;
382 }
383
384 return entries_added;
385 }
386
_dpu_encoder_setup_dither(struct dpu_hw_pingpong * hw_pp,unsigned bpc)387 static void _dpu_encoder_setup_dither(struct dpu_hw_pingpong *hw_pp, unsigned bpc)
388 {
389 struct dpu_hw_dither_cfg dither_cfg = { 0 };
390
391 if (!hw_pp->ops.setup_dither)
392 return;
393
394 switch (bpc) {
395 case 6:
396 dither_cfg.c0_bitdepth = 6;
397 dither_cfg.c1_bitdepth = 6;
398 dither_cfg.c2_bitdepth = 6;
399 dither_cfg.c3_bitdepth = 6;
400 dither_cfg.temporal_en = 0;
401 break;
402 default:
403 hw_pp->ops.setup_dither(hw_pp, NULL);
404 return;
405 }
406
407 memcpy(&dither_cfg.matrix, dither_matrix,
408 sizeof(u32) * DITHER_MATRIX_SZ);
409
410 hw_pp->ops.setup_dither(hw_pp, &dither_cfg);
411 }
412
dpu_encoder_helper_get_intf_type(enum dpu_intf_mode intf_mode)413 static char *dpu_encoder_helper_get_intf_type(enum dpu_intf_mode intf_mode)
414 {
415 switch (intf_mode) {
416 case INTF_MODE_VIDEO:
417 return "INTF_MODE_VIDEO";
418 case INTF_MODE_CMD:
419 return "INTF_MODE_CMD";
420 case INTF_MODE_WB_BLOCK:
421 return "INTF_MODE_WB_BLOCK";
422 case INTF_MODE_WB_LINE:
423 return "INTF_MODE_WB_LINE";
424 default:
425 return "INTF_MODE_UNKNOWN";
426 }
427 }
428
429 /**
430 * dpu_encoder_helper_report_irq_timeout - utility to report error that irq has
431 * timed out, including reporting frame error event to crtc and debug dump
432 * @phys_enc: Pointer to physical encoder structure
433 * @intr_idx: Failing interrupt index
434 */
dpu_encoder_helper_report_irq_timeout(struct dpu_encoder_phys * phys_enc,enum dpu_intr_idx intr_idx)435 void dpu_encoder_helper_report_irq_timeout(struct dpu_encoder_phys *phys_enc,
436 enum dpu_intr_idx intr_idx)
437 {
438 DRM_ERROR("irq timeout id=%u, intf_mode=%s intf=%d wb=%d, pp=%d, intr=%d\n",
439 DRMID(phys_enc->parent),
440 dpu_encoder_helper_get_intf_type(phys_enc->intf_mode),
441 phys_enc->hw_intf ? phys_enc->hw_intf->idx - INTF_0 : -1,
442 phys_enc->hw_wb ? phys_enc->hw_wb->idx - WB_0 : -1,
443 phys_enc->hw_pp->idx - PINGPONG_0, intr_idx);
444
445 dpu_encoder_frame_done_callback(phys_enc->parent, phys_enc,
446 DPU_ENCODER_FRAME_EVENT_ERROR);
447 }
448
449 static int dpu_encoder_helper_wait_event_timeout(int32_t drm_id,
450 u32 irq_idx, struct dpu_encoder_wait_info *info);
451
452 /**
453 * dpu_encoder_helper_wait_for_irq - utility to wait on an irq.
454 * note: will call dpu_encoder_helper_wait_for_irq on timeout
455 * @phys_enc: Pointer to physical encoder structure
456 * @irq_idx: IRQ index
457 * @func: IRQ callback to be called in case of timeout
458 * @wait_info: wait info struct
459 * @return: 0 or -ERROR
460 */
dpu_encoder_helper_wait_for_irq(struct dpu_encoder_phys * phys_enc,unsigned int irq_idx,void (* func)(void * arg),struct dpu_encoder_wait_info * wait_info)461 int dpu_encoder_helper_wait_for_irq(struct dpu_encoder_phys *phys_enc,
462 unsigned int irq_idx,
463 void (*func)(void *arg),
464 struct dpu_encoder_wait_info *wait_info)
465 {
466 u32 irq_status;
467 int ret;
468
469 if (!wait_info) {
470 DPU_ERROR("invalid params\n");
471 return -EINVAL;
472 }
473 /* note: do master / slave checking outside */
474
475 /* return EWOULDBLOCK since we know the wait isn't necessary */
476 if (phys_enc->enable_state == DPU_ENC_DISABLED) {
477 DRM_ERROR("encoder is disabled id=%u, callback=%ps, IRQ=[%d, %d]\n",
478 DRMID(phys_enc->parent), func,
479 DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx));
480 return -EWOULDBLOCK;
481 }
482
483 if (irq_idx == 0) {
484 DRM_DEBUG_KMS("skip irq wait id=%u, callback=%ps\n",
485 DRMID(phys_enc->parent), func);
486 return 0;
487 }
488
489 DRM_DEBUG_KMS("id=%u, callback=%ps, IRQ=[%d, %d], pp=%d, pending_cnt=%d\n",
490 DRMID(phys_enc->parent), func,
491 DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx), phys_enc->hw_pp->idx - PINGPONG_0,
492 atomic_read(wait_info->atomic_cnt));
493
494 ret = dpu_encoder_helper_wait_event_timeout(
495 DRMID(phys_enc->parent),
496 irq_idx,
497 wait_info);
498
499 if (ret <= 0) {
500 irq_status = dpu_core_irq_read(phys_enc->dpu_kms, irq_idx);
501 if (irq_status) {
502 unsigned long flags;
503
504 DRM_DEBUG_KMS("IRQ=[%d, %d] not triggered id=%u, callback=%ps, pp=%d, atomic_cnt=%d\n",
505 DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx),
506 DRMID(phys_enc->parent), func,
507 phys_enc->hw_pp->idx - PINGPONG_0,
508 atomic_read(wait_info->atomic_cnt));
509 local_irq_save(flags);
510 func(phys_enc);
511 local_irq_restore(flags);
512 ret = 0;
513 } else {
514 ret = -ETIMEDOUT;
515 DRM_DEBUG_KMS("IRQ=[%d, %d] timeout id=%u, callback=%ps, pp=%d, atomic_cnt=%d\n",
516 DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx),
517 DRMID(phys_enc->parent), func,
518 phys_enc->hw_pp->idx - PINGPONG_0,
519 atomic_read(wait_info->atomic_cnt));
520 }
521 } else {
522 ret = 0;
523 trace_dpu_enc_irq_wait_success(DRMID(phys_enc->parent),
524 func, DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx),
525 phys_enc->hw_pp->idx - PINGPONG_0,
526 atomic_read(wait_info->atomic_cnt));
527 }
528
529 return ret;
530 }
531
532 /**
533 * dpu_encoder_get_vsync_count - get vsync count for the encoder.
534 * @drm_enc: Pointer to previously created drm encoder structure
535 */
dpu_encoder_get_vsync_count(struct drm_encoder * drm_enc)536 int dpu_encoder_get_vsync_count(struct drm_encoder *drm_enc)
537 {
538 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
539 struct dpu_encoder_phys *phys = dpu_enc ? dpu_enc->cur_master : NULL;
540 return phys ? atomic_read(&phys->vsync_cnt) : 0;
541 }
542
543 /**
544 * dpu_encoder_get_linecount - get interface line count for the encoder.
545 * @drm_enc: Pointer to previously created drm encoder structure
546 */
dpu_encoder_get_linecount(struct drm_encoder * drm_enc)547 int dpu_encoder_get_linecount(struct drm_encoder *drm_enc)
548 {
549 struct dpu_encoder_virt *dpu_enc;
550 struct dpu_encoder_phys *phys;
551 int linecount = 0;
552
553 dpu_enc = to_dpu_encoder_virt(drm_enc);
554 phys = dpu_enc ? dpu_enc->cur_master : NULL;
555
556 if (phys && phys->ops.get_line_count)
557 linecount = phys->ops.get_line_count(phys);
558
559 return linecount;
560 }
561
562 /**
563 * dpu_encoder_helper_split_config - split display configuration helper function
564 * This helper function may be used by physical encoders to configure
565 * the split display related registers.
566 * @phys_enc: Pointer to physical encoder structure
567 * @interface: enum dpu_intf setting
568 */
dpu_encoder_helper_split_config(struct dpu_encoder_phys * phys_enc,enum dpu_intf interface)569 void dpu_encoder_helper_split_config(
570 struct dpu_encoder_phys *phys_enc,
571 enum dpu_intf interface)
572 {
573 struct dpu_encoder_virt *dpu_enc;
574 struct split_pipe_cfg cfg = { 0 };
575 struct dpu_hw_mdp *hw_mdptop;
576 struct msm_display_info *disp_info;
577
578 if (!phys_enc->hw_mdptop || !phys_enc->parent) {
579 DPU_ERROR("invalid arg(s), encoder %d\n", phys_enc != NULL);
580 return;
581 }
582
583 dpu_enc = to_dpu_encoder_virt(phys_enc->parent);
584 hw_mdptop = phys_enc->hw_mdptop;
585 disp_info = &dpu_enc->disp_info;
586
587 if (disp_info->intf_type != INTF_DSI)
588 return;
589
590 /**
591 * disable split modes since encoder will be operating in as the only
592 * encoder, either for the entire use case in the case of, for example,
593 * single DSI, or for this frame in the case of left/right only partial
594 * update.
595 */
596 if (phys_enc->split_role == ENC_ROLE_SOLO) {
597 if (hw_mdptop->ops.setup_split_pipe)
598 hw_mdptop->ops.setup_split_pipe(hw_mdptop, &cfg);
599 return;
600 }
601
602 cfg.en = true;
603 cfg.mode = phys_enc->intf_mode;
604 cfg.intf = interface;
605
606 if (cfg.en && phys_enc->ops.needs_single_flush &&
607 phys_enc->ops.needs_single_flush(phys_enc))
608 cfg.split_flush_en = true;
609
610 if (phys_enc->split_role == ENC_ROLE_MASTER) {
611 DPU_DEBUG_ENC(dpu_enc, "enable %d\n", cfg.en);
612
613 if (hw_mdptop->ops.setup_split_pipe)
614 hw_mdptop->ops.setup_split_pipe(hw_mdptop, &cfg);
615 }
616 }
617
618 /**
619 * dpu_encoder_use_dsc_merge - returns true if the encoder uses DSC merge topology.
620 * @drm_enc: Pointer to previously created drm encoder structure
621 */
dpu_encoder_use_dsc_merge(struct drm_encoder * drm_enc)622 bool dpu_encoder_use_dsc_merge(struct drm_encoder *drm_enc)
623 {
624 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
625 int i, intf_count = 0, num_dsc = 0;
626
627 for (i = 0; i < MAX_PHYS_ENCODERS_PER_VIRTUAL; i++)
628 if (dpu_enc->phys_encs[i])
629 intf_count++;
630
631 for (i = 0; i < MAX_CHANNELS_PER_ENC; i++)
632 if (dpu_enc->hw_dsc[i])
633 num_dsc++;
634
635 return (num_dsc > 0) && (num_dsc > intf_count);
636 }
637
638 /**
639 * dpu_encoder_get_dsc_config - get DSC config for the DPU encoder
640 * This helper function is used by physical encoder to get DSC config
641 * used for this encoder.
642 * @drm_enc: Pointer to encoder structure
643 */
dpu_encoder_get_dsc_config(struct drm_encoder * drm_enc)644 struct drm_dsc_config *dpu_encoder_get_dsc_config(struct drm_encoder *drm_enc)
645 {
646 struct msm_drm_private *priv = drm_enc->dev->dev_private;
647 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
648 int index = dpu_enc->disp_info.h_tile_instance[0];
649
650 if (dpu_enc->disp_info.intf_type == INTF_DSI)
651 return msm_dsi_get_dsc_config(priv->kms->dsi[index]);
652
653 return NULL;
654 }
655
dpu_encoder_update_topology(struct drm_encoder * drm_enc,struct msm_display_topology * topology,struct drm_atomic_commit * state,const struct drm_display_mode * adj_mode)656 void dpu_encoder_update_topology(struct drm_encoder *drm_enc,
657 struct msm_display_topology *topology,
658 struct drm_atomic_commit *state,
659 const struct drm_display_mode *adj_mode)
660 {
661 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
662 struct msm_drm_private *priv = dpu_enc->base.dev->dev_private;
663 struct msm_display_info *disp_info = &dpu_enc->disp_info;
664 struct dpu_kms *dpu_kms = to_dpu_kms(priv->kms);
665 struct drm_connector *connector;
666 struct drm_connector_state *conn_state;
667 struct drm_framebuffer *fb;
668 struct drm_dsc_config *dsc;
669
670 int i;
671
672 for (i = 0; i < MAX_PHYS_ENCODERS_PER_VIRTUAL; i++)
673 if (dpu_enc->phys_encs[i])
674 topology->num_intf++;
675
676 dsc = dpu_encoder_get_dsc_config(drm_enc);
677
678 /* We only support 2 DSC mode (with 2 LM and 1 INTF) */
679 if (dsc) {
680 /*
681 * Use 2 DSC encoders, 2 layer mixers and 1 or 2 interfaces
682 * when Display Stream Compression (DSC) is enabled,
683 * and when enough DSC blocks are available.
684 * This is power-optimal and can drive up to (including) 4k
685 * screens.
686 */
687 WARN(topology->num_intf > 2,
688 "DSC topology cannot support more than 2 interfaces\n");
689 if (topology->num_intf >= 2 || dpu_kms->catalog->dsc_count >= 2)
690 topology->num_dsc = 2;
691 else
692 topology->num_dsc = 1;
693 }
694
695 connector = drm_atomic_get_new_connector_for_encoder(state, drm_enc);
696 if (!connector)
697 return;
698 conn_state = drm_atomic_get_new_connector_state(state, connector);
699 if (!conn_state)
700 return;
701
702 /*
703 * Use CDM only for writeback or DP at the moment as other interfaces cannot handle it.
704 * If writeback itself cannot handle cdm for some reason it will fail in its atomic_check()
705 * earlier.
706 */
707 if (disp_info->intf_type == INTF_WB && conn_state->writeback_job) {
708 fb = conn_state->writeback_job->fb;
709
710 if (fb && MSM_FORMAT_IS_YUV(msm_framebuffer_format(fb)))
711 topology->num_cdm++;
712 } else if (disp_info->intf_type == INTF_DP) {
713 if (drm_mode_is_420_only(&connector->display_info, adj_mode))
714 topology->num_cdm++;
715 }
716 }
717
dpu_encoder_needs_modeset(struct drm_encoder * drm_enc,struct drm_atomic_commit * state)718 bool dpu_encoder_needs_modeset(struct drm_encoder *drm_enc, struct drm_atomic_commit *state)
719 {
720 struct drm_connector *connector;
721 struct drm_connector_state *conn_state;
722 struct drm_framebuffer *fb;
723 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
724
725 if (!drm_enc || !state)
726 return false;
727
728 connector = drm_atomic_get_new_connector_for_encoder(state, drm_enc);
729 if (!connector)
730 return false;
731
732 conn_state = drm_atomic_get_new_connector_state(state, connector);
733 if (!conn_state)
734 return false;
735
736 /**
737 * These checks are duplicated from dpu_encoder_update_topology() since
738 * CRTC and encoder don't hold topology information
739 */
740 if (dpu_enc->disp_info.intf_type == INTF_WB && conn_state->writeback_job) {
741 fb = conn_state->writeback_job->fb;
742 if (fb && MSM_FORMAT_IS_YUV(msm_framebuffer_format(fb))) {
743 if (!dpu_enc->cur_master->hw_cdm)
744 return true;
745 } else {
746 if (dpu_enc->cur_master->hw_cdm)
747 return true;
748 }
749 }
750
751 return false;
752 }
753
_dpu_encoder_update_vsync_source(struct dpu_encoder_virt * dpu_enc,struct msm_display_info * disp_info)754 static void _dpu_encoder_update_vsync_source(struct dpu_encoder_virt *dpu_enc,
755 struct msm_display_info *disp_info)
756 {
757 struct dpu_vsync_source_cfg vsync_cfg = { 0 };
758 struct msm_drm_private *priv;
759 struct dpu_kms *dpu_kms;
760 struct dpu_hw_mdp *hw_mdptop;
761 struct drm_encoder *drm_enc;
762 struct dpu_encoder_phys *phys_enc;
763 int i;
764
765 if (!dpu_enc || !disp_info) {
766 DPU_ERROR("invalid param dpu_enc:%d or disp_info:%d\n",
767 dpu_enc != NULL, disp_info != NULL);
768 return;
769 } else if (dpu_enc->num_phys_encs > ARRAY_SIZE(dpu_enc->hw_pp)) {
770 DPU_ERROR("invalid num phys enc %d/%d\n",
771 dpu_enc->num_phys_encs,
772 (int) ARRAY_SIZE(dpu_enc->hw_pp));
773 return;
774 }
775
776 drm_enc = &dpu_enc->base;
777 /* this pointers are checked in virt_enable_helper */
778 priv = drm_enc->dev->dev_private;
779
780 dpu_kms = to_dpu_kms(priv->kms);
781 hw_mdptop = dpu_kms->hw_mdp;
782 if (!hw_mdptop) {
783 DPU_ERROR("invalid mdptop\n");
784 return;
785 }
786
787 vsync_cfg.vsync_source = disp_info->vsync_source;
788 vsync_cfg.frame_rate = drm_mode_vrefresh(&dpu_enc->base.crtc->state->adjusted_mode);
789
790 if (hw_mdptop->ops.setup_vsync_source) {
791 for (i = 0; i < dpu_enc->num_phys_encs; i++)
792 vsync_cfg.ppnumber[i] = dpu_enc->hw_pp[i]->idx;
793
794 vsync_cfg.pp_count = dpu_enc->num_phys_encs;
795
796 hw_mdptop->ops.setup_vsync_source(hw_mdptop, &vsync_cfg);
797 }
798
799 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
800 phys_enc = dpu_enc->phys_encs[i];
801
802 if (phys_enc->has_intf_te && phys_enc->hw_intf->ops.vsync_sel)
803 phys_enc->hw_intf->ops.vsync_sel(phys_enc->hw_intf,
804 &vsync_cfg);
805 }
806 }
807
_dpu_encoder_irq_enable(struct drm_encoder * drm_enc)808 static void _dpu_encoder_irq_enable(struct drm_encoder *drm_enc)
809 {
810 struct dpu_encoder_virt *dpu_enc;
811 int i;
812
813 if (!drm_enc) {
814 DPU_ERROR("invalid encoder\n");
815 return;
816 }
817
818 dpu_enc = to_dpu_encoder_virt(drm_enc);
819
820 DPU_DEBUG_ENC(dpu_enc, "\n");
821 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
822 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
823
824 phys->ops.irq_enable(phys);
825 }
826 }
827
_dpu_encoder_irq_disable(struct drm_encoder * drm_enc)828 static void _dpu_encoder_irq_disable(struct drm_encoder *drm_enc)
829 {
830 struct dpu_encoder_virt *dpu_enc;
831 int i;
832
833 if (!drm_enc) {
834 DPU_ERROR("invalid encoder\n");
835 return;
836 }
837
838 dpu_enc = to_dpu_encoder_virt(drm_enc);
839
840 DPU_DEBUG_ENC(dpu_enc, "\n");
841 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
842 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
843
844 phys->ops.irq_disable(phys);
845 }
846 }
847
_dpu_encoder_resource_enable(struct drm_encoder * drm_enc)848 static void _dpu_encoder_resource_enable(struct drm_encoder *drm_enc)
849 {
850 struct msm_drm_private *priv;
851 struct dpu_kms *dpu_kms;
852 struct dpu_encoder_virt *dpu_enc;
853
854 dpu_enc = to_dpu_encoder_virt(drm_enc);
855 priv = drm_enc->dev->dev_private;
856 dpu_kms = to_dpu_kms(priv->kms);
857
858 trace_dpu_enc_rc_enable(DRMID(drm_enc));
859
860 if (!dpu_enc->cur_master) {
861 DPU_ERROR("encoder master not set\n");
862 return;
863 }
864
865 /* enable DPU core clks */
866 pm_runtime_get_sync(&dpu_kms->pdev->dev);
867
868 /* enable all the irq */
869 _dpu_encoder_irq_enable(drm_enc);
870 }
871
_dpu_encoder_resource_disable(struct drm_encoder * drm_enc)872 static void _dpu_encoder_resource_disable(struct drm_encoder *drm_enc)
873 {
874 struct msm_drm_private *priv;
875 struct dpu_kms *dpu_kms;
876 struct dpu_encoder_virt *dpu_enc;
877
878 dpu_enc = to_dpu_encoder_virt(drm_enc);
879 priv = drm_enc->dev->dev_private;
880 dpu_kms = to_dpu_kms(priv->kms);
881
882 trace_dpu_enc_rc_disable(DRMID(drm_enc));
883
884 if (!dpu_enc->cur_master) {
885 DPU_ERROR("encoder master not set\n");
886 return;
887 }
888
889 /* disable all the irq */
890 _dpu_encoder_irq_disable(drm_enc);
891
892 /* disable DPU core clks */
893 pm_runtime_put_sync(&dpu_kms->pdev->dev);
894 }
895
dpu_encoder_resource_control(struct drm_encoder * drm_enc,u32 sw_event)896 static int dpu_encoder_resource_control(struct drm_encoder *drm_enc,
897 u32 sw_event)
898 {
899 struct dpu_encoder_virt *dpu_enc;
900 struct msm_drm_private *priv;
901 bool is_vid_mode = false;
902
903 if (!drm_enc || !drm_enc->dev || !drm_enc->crtc) {
904 DPU_ERROR("invalid parameters\n");
905 return -EINVAL;
906 }
907 dpu_enc = to_dpu_encoder_virt(drm_enc);
908 priv = drm_enc->dev->dev_private;
909 is_vid_mode = !dpu_enc->disp_info.is_cmd_mode;
910
911 /*
912 * when idle_pc is not supported, process only KICKOFF, STOP and MODESET
913 * events and return early for other events (ie wb display).
914 */
915 if (!dpu_enc->idle_pc_supported &&
916 (sw_event != DPU_ENC_RC_EVENT_KICKOFF &&
917 sw_event != DPU_ENC_RC_EVENT_STOP &&
918 sw_event != DPU_ENC_RC_EVENT_PRE_STOP))
919 return 0;
920
921 trace_dpu_enc_rc(DRMID(drm_enc), sw_event, dpu_enc->idle_pc_supported,
922 dpu_enc->rc_state, "begin");
923
924 switch (sw_event) {
925 case DPU_ENC_RC_EVENT_KICKOFF:
926 /* cancel delayed off work, if any */
927 if (cancel_delayed_work_sync(&dpu_enc->delayed_off_work))
928 DPU_DEBUG_ENC(dpu_enc, "sw_event:%d, work cancelled\n",
929 sw_event);
930
931 mutex_lock(&dpu_enc->rc_lock);
932
933 /* return if the resource control is already in ON state */
934 if (dpu_enc->rc_state == DPU_ENC_RC_STATE_ON) {
935 DRM_DEBUG_ATOMIC("id;%u, sw_event:%d, rc in ON state\n",
936 DRMID(drm_enc), sw_event);
937 mutex_unlock(&dpu_enc->rc_lock);
938 return 0;
939 } else if (dpu_enc->rc_state != DPU_ENC_RC_STATE_OFF &&
940 dpu_enc->rc_state != DPU_ENC_RC_STATE_IDLE) {
941 DRM_DEBUG_ATOMIC("id;%u, sw_event:%d, rc in state %d\n",
942 DRMID(drm_enc), sw_event,
943 dpu_enc->rc_state);
944 mutex_unlock(&dpu_enc->rc_lock);
945 return -EINVAL;
946 }
947
948 if (is_vid_mode && dpu_enc->rc_state == DPU_ENC_RC_STATE_IDLE)
949 _dpu_encoder_irq_enable(drm_enc);
950 else
951 _dpu_encoder_resource_enable(drm_enc);
952
953 dpu_enc->rc_state = DPU_ENC_RC_STATE_ON;
954
955 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
956 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
957 "kickoff");
958
959 mutex_unlock(&dpu_enc->rc_lock);
960 break;
961
962 case DPU_ENC_RC_EVENT_FRAME_DONE:
963 /*
964 * mutex lock is not used as this event happens at interrupt
965 * context. And locking is not required as, the other events
966 * like KICKOFF and STOP does a wait-for-idle before executing
967 * the resource_control
968 */
969 if (dpu_enc->rc_state != DPU_ENC_RC_STATE_ON) {
970 DRM_DEBUG_KMS("id:%d, sw_event:%d,rc:%d-unexpected\n",
971 DRMID(drm_enc), sw_event,
972 dpu_enc->rc_state);
973 return -EINVAL;
974 }
975
976 /*
977 * schedule off work item only when there are no
978 * frames pending
979 */
980 if (dpu_crtc_frame_pending(drm_enc->crtc) > 1) {
981 DRM_DEBUG_KMS("id:%d skip schedule work\n",
982 DRMID(drm_enc));
983 return 0;
984 }
985
986 queue_delayed_work(priv->kms->wq, &dpu_enc->delayed_off_work,
987 msecs_to_jiffies(dpu_enc->idle_timeout));
988
989 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
990 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
991 "frame done");
992 break;
993
994 case DPU_ENC_RC_EVENT_PRE_STOP:
995 /* cancel delayed off work, if any */
996 if (cancel_delayed_work_sync(&dpu_enc->delayed_off_work))
997 DPU_DEBUG_ENC(dpu_enc, "sw_event:%d, work cancelled\n",
998 sw_event);
999
1000 mutex_lock(&dpu_enc->rc_lock);
1001
1002 if (is_vid_mode &&
1003 dpu_enc->rc_state == DPU_ENC_RC_STATE_IDLE) {
1004 _dpu_encoder_irq_enable(drm_enc);
1005 }
1006 /* skip if is already OFF or IDLE, resources are off already */
1007 else if (dpu_enc->rc_state == DPU_ENC_RC_STATE_OFF ||
1008 dpu_enc->rc_state == DPU_ENC_RC_STATE_IDLE) {
1009 DRM_DEBUG_KMS("id:%u, sw_event:%d, rc in %d state\n",
1010 DRMID(drm_enc), sw_event,
1011 dpu_enc->rc_state);
1012 mutex_unlock(&dpu_enc->rc_lock);
1013 return 0;
1014 }
1015
1016 dpu_enc->rc_state = DPU_ENC_RC_STATE_PRE_OFF;
1017
1018 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
1019 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
1020 "pre stop");
1021
1022 mutex_unlock(&dpu_enc->rc_lock);
1023 break;
1024
1025 case DPU_ENC_RC_EVENT_STOP:
1026 mutex_lock(&dpu_enc->rc_lock);
1027
1028 /* return if the resource control is already in OFF state */
1029 if (dpu_enc->rc_state == DPU_ENC_RC_STATE_OFF) {
1030 DRM_DEBUG_KMS("id: %u, sw_event:%d, rc in OFF state\n",
1031 DRMID(drm_enc), sw_event);
1032 mutex_unlock(&dpu_enc->rc_lock);
1033 return 0;
1034 } else if (dpu_enc->rc_state == DPU_ENC_RC_STATE_ON) {
1035 DRM_ERROR("id: %u, sw_event:%d, rc in state %d\n",
1036 DRMID(drm_enc), sw_event, dpu_enc->rc_state);
1037 mutex_unlock(&dpu_enc->rc_lock);
1038 return -EINVAL;
1039 }
1040
1041 /**
1042 * expect to arrive here only if in either idle state or pre-off
1043 * and in IDLE state the resources are already disabled
1044 */
1045 if (dpu_enc->rc_state == DPU_ENC_RC_STATE_PRE_OFF)
1046 _dpu_encoder_resource_disable(drm_enc);
1047
1048 dpu_enc->rc_state = DPU_ENC_RC_STATE_OFF;
1049
1050 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
1051 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
1052 "stop");
1053
1054 mutex_unlock(&dpu_enc->rc_lock);
1055 break;
1056
1057 case DPU_ENC_RC_EVENT_ENTER_IDLE:
1058 mutex_lock(&dpu_enc->rc_lock);
1059
1060 if (dpu_enc->rc_state != DPU_ENC_RC_STATE_ON) {
1061 DRM_ERROR("id: %u, sw_event:%d, rc:%d !ON state\n",
1062 DRMID(drm_enc), sw_event, dpu_enc->rc_state);
1063 mutex_unlock(&dpu_enc->rc_lock);
1064 return 0;
1065 }
1066
1067 /*
1068 * if we are in ON but a frame was just kicked off,
1069 * ignore the IDLE event, it's probably a stale timer event
1070 */
1071 if (dpu_enc->frame_busy_mask[0]) {
1072 DRM_ERROR("id:%u, sw_event:%d, rc:%d frame pending\n",
1073 DRMID(drm_enc), sw_event, dpu_enc->rc_state);
1074 mutex_unlock(&dpu_enc->rc_lock);
1075 return 0;
1076 }
1077
1078 if (is_vid_mode)
1079 _dpu_encoder_irq_disable(drm_enc);
1080 else
1081 _dpu_encoder_resource_disable(drm_enc);
1082
1083 dpu_enc->rc_state = DPU_ENC_RC_STATE_IDLE;
1084
1085 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
1086 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
1087 "idle");
1088
1089 mutex_unlock(&dpu_enc->rc_lock);
1090 break;
1091
1092 default:
1093 DRM_ERROR("id:%u, unexpected sw_event: %d\n", DRMID(drm_enc),
1094 sw_event);
1095 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
1096 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
1097 "error");
1098 break;
1099 }
1100
1101 trace_dpu_enc_rc(DRMID(drm_enc), sw_event,
1102 dpu_enc->idle_pc_supported, dpu_enc->rc_state,
1103 "end");
1104 return 0;
1105 }
1106
1107 /**
1108 * dpu_encoder_prepare_wb_job - prepare writeback job for the encoder.
1109 * @drm_enc: Pointer to previously created drm encoder structure
1110 * @job: Pointer to the current drm writeback job
1111 */
dpu_encoder_prepare_wb_job(struct drm_encoder * drm_enc,struct drm_writeback_job * job)1112 void dpu_encoder_prepare_wb_job(struct drm_encoder *drm_enc,
1113 struct drm_writeback_job *job)
1114 {
1115 struct dpu_encoder_virt *dpu_enc;
1116 int i;
1117
1118 dpu_enc = to_dpu_encoder_virt(drm_enc);
1119
1120 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1121 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1122
1123 if (phys->ops.prepare_wb_job)
1124 phys->ops.prepare_wb_job(phys, job);
1125
1126 }
1127 }
1128
1129 /**
1130 * dpu_encoder_cleanup_wb_job - cleanup writeback job for the encoder.
1131 * @drm_enc: Pointer to previously created drm encoder structure
1132 * @job: Pointer to the current drm writeback job
1133 */
dpu_encoder_cleanup_wb_job(struct drm_encoder * drm_enc,struct drm_writeback_job * job)1134 void dpu_encoder_cleanup_wb_job(struct drm_encoder *drm_enc,
1135 struct drm_writeback_job *job)
1136 {
1137 struct dpu_encoder_virt *dpu_enc;
1138 int i;
1139
1140 dpu_enc = to_dpu_encoder_virt(drm_enc);
1141
1142 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1143 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1144
1145 if (phys->ops.cleanup_wb_job)
1146 phys->ops.cleanup_wb_job(phys, job);
1147
1148 }
1149 }
1150
dpu_encoder_virt_atomic_mode_set(struct drm_encoder * drm_enc,struct drm_crtc_state * crtc_state,struct drm_connector_state * conn_state)1151 static void dpu_encoder_virt_atomic_mode_set(struct drm_encoder *drm_enc,
1152 struct drm_crtc_state *crtc_state,
1153 struct drm_connector_state *conn_state)
1154 {
1155 struct dpu_encoder_virt *dpu_enc;
1156 struct msm_drm_private *priv;
1157 struct dpu_kms *dpu_kms;
1158 struct dpu_global_state *global_state;
1159 struct dpu_hw_blk *hw_pp[MAX_CHANNELS_PER_ENC];
1160 struct dpu_hw_blk *hw_ctl[MAX_CHANNELS_PER_ENC];
1161 struct dpu_hw_blk *hw_dsc[MAX_CHANNELS_PER_ENC];
1162 struct dpu_hw_blk *hw_cwb[MAX_CHANNELS_PER_ENC];
1163 int num_ctl, num_pp, num_dsc, num_pp_per_intf;
1164 int num_cwb = 0;
1165 bool is_cwb_encoder;
1166 unsigned int dsc_mask = 0;
1167 unsigned int cwb_mask = 0;
1168 int i;
1169
1170 if (!drm_enc) {
1171 DPU_ERROR("invalid encoder\n");
1172 return;
1173 }
1174
1175 dpu_enc = to_dpu_encoder_virt(drm_enc);
1176 DPU_DEBUG_ENC(dpu_enc, "\n");
1177
1178 priv = drm_enc->dev->dev_private;
1179 dpu_kms = to_dpu_kms(priv->kms);
1180 is_cwb_encoder = drm_crtc_in_clone_mode(crtc_state) &&
1181 dpu_enc->disp_info.intf_type == INTF_WB;
1182
1183 global_state = dpu_kms_get_existing_global_state(dpu_kms);
1184 if (IS_ERR_OR_NULL(global_state)) {
1185 DPU_ERROR("Failed to get global state");
1186 return;
1187 }
1188
1189 trace_dpu_enc_mode_set(DRMID(drm_enc));
1190
1191 /* Query resource that have been reserved in atomic check step. */
1192 if (is_cwb_encoder) {
1193 num_pp = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1194 drm_enc->crtc,
1195 DPU_HW_BLK_DCWB_PINGPONG,
1196 hw_pp, ARRAY_SIZE(hw_pp));
1197 num_cwb = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1198 drm_enc->crtc,
1199 DPU_HW_BLK_CWB,
1200 hw_cwb, ARRAY_SIZE(hw_cwb));
1201 } else {
1202 num_pp = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1203 drm_enc->crtc,
1204 DPU_HW_BLK_PINGPONG, hw_pp,
1205 ARRAY_SIZE(hw_pp));
1206 }
1207
1208 for (i = 0; i < num_cwb; i++) {
1209 dpu_enc->hw_cwb[i] = to_dpu_hw_cwb(hw_cwb[i]);
1210 cwb_mask |= BIT(dpu_enc->hw_cwb[i]->idx - CWB_0);
1211 }
1212
1213 dpu_enc->cwb_mask = cwb_mask;
1214
1215 num_ctl = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1216 drm_enc->crtc, DPU_HW_BLK_CTL, hw_ctl, ARRAY_SIZE(hw_ctl));
1217
1218 for (i = 0; i < MAX_CHANNELS_PER_ENC; i++)
1219 dpu_enc->hw_pp[i] = i < num_pp ? to_dpu_hw_pingpong(hw_pp[i])
1220 : NULL;
1221
1222 num_dsc = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1223 drm_enc->crtc, DPU_HW_BLK_DSC,
1224 hw_dsc, ARRAY_SIZE(hw_dsc));
1225 for (i = 0; i < num_dsc; i++) {
1226 dpu_enc->hw_dsc[i] = to_dpu_hw_dsc(hw_dsc[i]);
1227 dsc_mask |= BIT(dpu_enc->hw_dsc[i]->idx - DSC_0);
1228 }
1229
1230 dpu_enc->dsc_mask = dsc_mask;
1231
1232 if ((dpu_enc->disp_info.intf_type == INTF_WB && conn_state->writeback_job) ||
1233 dpu_enc->disp_info.intf_type == INTF_DP) {
1234 struct dpu_hw_blk *hw_cdm = NULL;
1235
1236 dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
1237 drm_enc->crtc, DPU_HW_BLK_CDM,
1238 &hw_cdm, 1);
1239 dpu_enc->cur_master->hw_cdm = hw_cdm ? to_dpu_hw_cdm(hw_cdm) : NULL;
1240 }
1241
1242 /*
1243 * There may be 4 PP and 2 INTF for quad pipe case, so INTF is not
1244 * mapped to PP 1:1. Let's calculate the stride with pipe/INTF
1245 */
1246 num_pp_per_intf = num_pp / dpu_enc->num_phys_encs;
1247
1248 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1249 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1250
1251 phys->hw_pp = dpu_enc->hw_pp[num_pp_per_intf * i];
1252 if (!phys->hw_pp) {
1253 DPU_ERROR_ENC(dpu_enc,
1254 "no pp block assigned at idx: %d\n", i);
1255 return;
1256 }
1257
1258 /* Use first (and only) CTL if active CTLs are supported */
1259 if (num_ctl == 1)
1260 phys->hw_ctl = to_dpu_hw_ctl(hw_ctl[0]);
1261 else
1262 phys->hw_ctl = i < num_ctl ? to_dpu_hw_ctl(hw_ctl[i]) : NULL;
1263 if (!phys->hw_ctl) {
1264 DPU_ERROR_ENC(dpu_enc,
1265 "no ctl block assigned at idx: %d\n", i);
1266 return;
1267 }
1268
1269 phys->cached_mode = crtc_state->adjusted_mode;
1270 if (phys->ops.atomic_mode_set)
1271 phys->ops.atomic_mode_set(phys, crtc_state, conn_state);
1272 }
1273 }
1274
_dpu_encoder_virt_enable_helper(struct drm_encoder * drm_enc)1275 static void _dpu_encoder_virt_enable_helper(struct drm_encoder *drm_enc)
1276 {
1277 struct dpu_encoder_virt *dpu_enc = NULL;
1278 int i;
1279
1280 if (!drm_enc || !drm_enc->dev) {
1281 DPU_ERROR("invalid parameters\n");
1282 return;
1283 }
1284
1285 dpu_enc = to_dpu_encoder_virt(drm_enc);
1286 if (!dpu_enc || !dpu_enc->cur_master) {
1287 DPU_ERROR("invalid dpu encoder/master\n");
1288 return;
1289 }
1290
1291
1292 if (dpu_enc->disp_info.intf_type == INTF_DP &&
1293 dpu_enc->cur_master->hw_mdptop &&
1294 dpu_enc->cur_master->hw_mdptop->ops.intf_audio_select)
1295 dpu_enc->cur_master->hw_mdptop->ops.intf_audio_select(
1296 dpu_enc->cur_master->hw_mdptop);
1297
1298 if (dpu_enc->disp_info.is_cmd_mode)
1299 _dpu_encoder_update_vsync_source(dpu_enc, &dpu_enc->disp_info);
1300
1301 if (dpu_enc->disp_info.intf_type == INTF_DSI &&
1302 !WARN_ON(dpu_enc->num_phys_encs == 0)) {
1303 unsigned bpc = dpu_enc->connector->display_info.bpc;
1304 for (i = 0; i < MAX_CHANNELS_PER_ENC; i++) {
1305 if (!dpu_enc->hw_pp[i])
1306 continue;
1307 _dpu_encoder_setup_dither(dpu_enc->hw_pp[i], bpc);
1308 }
1309 }
1310 }
1311
1312 /**
1313 * dpu_encoder_virt_runtime_resume - pm runtime resume the encoder configs
1314 * @drm_enc: encoder pointer
1315 */
dpu_encoder_virt_runtime_resume(struct drm_encoder * drm_enc)1316 void dpu_encoder_virt_runtime_resume(struct drm_encoder *drm_enc)
1317 {
1318 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
1319
1320 mutex_lock(&dpu_enc->enc_lock);
1321
1322 if (!dpu_enc->enabled)
1323 goto out;
1324
1325 if (dpu_enc->cur_slave && dpu_enc->cur_slave->ops.restore)
1326 dpu_enc->cur_slave->ops.restore(dpu_enc->cur_slave);
1327 if (dpu_enc->cur_master && dpu_enc->cur_master->ops.restore)
1328 dpu_enc->cur_master->ops.restore(dpu_enc->cur_master);
1329
1330 _dpu_encoder_virt_enable_helper(drm_enc);
1331
1332 out:
1333 mutex_unlock(&dpu_enc->enc_lock);
1334 }
1335
dpu_encoder_virt_atomic_enable(struct drm_encoder * drm_enc,struct drm_atomic_commit * state)1336 static void dpu_encoder_virt_atomic_enable(struct drm_encoder *drm_enc,
1337 struct drm_atomic_commit *state)
1338 {
1339 struct dpu_encoder_virt *dpu_enc = NULL;
1340 int ret = 0;
1341 struct drm_display_mode *cur_mode = NULL;
1342
1343 dpu_enc = to_dpu_encoder_virt(drm_enc);
1344 dpu_enc->dsc = dpu_encoder_get_dsc_config(drm_enc);
1345
1346 atomic_set(&dpu_enc->frame_done_timeout_cnt, 0);
1347
1348 mutex_lock(&dpu_enc->enc_lock);
1349
1350 dpu_enc->commit_done_timedout = false;
1351
1352 dpu_enc->connector = drm_atomic_get_new_connector_for_encoder(state, drm_enc);
1353
1354 cur_mode = &dpu_enc->base.crtc->state->adjusted_mode;
1355
1356 dpu_enc->wide_bus_en = dpu_encoder_is_widebus_enabled(drm_enc);
1357
1358 trace_dpu_enc_enable(DRMID(drm_enc), cur_mode->hdisplay,
1359 cur_mode->vdisplay);
1360
1361 /* always enable slave encoder before master */
1362 if (dpu_enc->cur_slave && dpu_enc->cur_slave->ops.enable)
1363 dpu_enc->cur_slave->ops.enable(dpu_enc->cur_slave);
1364
1365 if (dpu_enc->cur_master && dpu_enc->cur_master->ops.enable)
1366 dpu_enc->cur_master->ops.enable(dpu_enc->cur_master);
1367
1368 ret = dpu_encoder_resource_control(drm_enc, DPU_ENC_RC_EVENT_KICKOFF);
1369 if (ret) {
1370 DPU_ERROR_ENC(dpu_enc, "dpu resource control failed: %d\n",
1371 ret);
1372 goto out;
1373 }
1374
1375 _dpu_encoder_virt_enable_helper(drm_enc);
1376
1377 dpu_enc->enabled = true;
1378
1379 out:
1380 mutex_unlock(&dpu_enc->enc_lock);
1381 }
1382
dpu_encoder_virt_atomic_disable(struct drm_encoder * drm_enc,struct drm_atomic_commit * state)1383 static void dpu_encoder_virt_atomic_disable(struct drm_encoder *drm_enc,
1384 struct drm_atomic_commit *state)
1385 {
1386 struct dpu_encoder_virt *dpu_enc = NULL;
1387 struct drm_crtc *crtc;
1388 struct drm_crtc_state *old_state = NULL;
1389 int i = 0;
1390
1391 dpu_enc = to_dpu_encoder_virt(drm_enc);
1392 DPU_DEBUG_ENC(dpu_enc, "\n");
1393
1394 crtc = drm_atomic_get_old_crtc_for_encoder(state, drm_enc);
1395 if (crtc)
1396 old_state = drm_atomic_get_old_crtc_state(state, crtc);
1397
1398 /*
1399 * The encoder is already disabled if self refresh mode was set earlier,
1400 * in the old_state for the corresponding crtc.
1401 */
1402 if (old_state && old_state->self_refresh_active)
1403 return;
1404
1405 mutex_lock(&dpu_enc->enc_lock);
1406 dpu_enc->enabled = false;
1407
1408 trace_dpu_enc_disable(DRMID(drm_enc));
1409
1410 /* wait for idle */
1411 dpu_encoder_wait_for_tx_complete(drm_enc);
1412
1413 dpu_encoder_resource_control(drm_enc, DPU_ENC_RC_EVENT_PRE_STOP);
1414
1415 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1416 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1417
1418 if (phys->ops.disable)
1419 phys->ops.disable(phys);
1420 }
1421
1422
1423 /* after phys waits for frame-done, should be no more frames pending */
1424 if (atomic_xchg(&dpu_enc->frame_done_timeout_ms, 0)) {
1425 DPU_ERROR("enc%d timeout pending\n", drm_enc->base.id);
1426 timer_delete_sync(&dpu_enc->frame_done_timer);
1427 }
1428
1429 dpu_encoder_resource_control(drm_enc, DPU_ENC_RC_EVENT_STOP);
1430
1431 dpu_enc->connector = NULL;
1432
1433 DPU_DEBUG_ENC(dpu_enc, "encoder disabled\n");
1434
1435 mutex_unlock(&dpu_enc->enc_lock);
1436 }
1437
dpu_encoder_get_intf(const struct dpu_mdss_cfg * catalog,struct dpu_rm * dpu_rm,enum dpu_intf_type type,u32 controller_id)1438 static struct dpu_hw_intf *dpu_encoder_get_intf(const struct dpu_mdss_cfg *catalog,
1439 struct dpu_rm *dpu_rm,
1440 enum dpu_intf_type type, u32 controller_id)
1441 {
1442 int i = 0;
1443
1444 if (type == INTF_WB)
1445 return NULL;
1446
1447 for (i = 0; i < catalog->intf_count; i++) {
1448 if (catalog->intf[i].type == type
1449 && catalog->intf[i].controller_id == controller_id) {
1450 return dpu_rm_get_intf(dpu_rm, catalog->intf[i].id);
1451 }
1452 }
1453
1454 return NULL;
1455 }
1456
1457 /**
1458 * dpu_encoder_vblank_callback - Notify virtual encoder of vblank IRQ reception
1459 * @drm_enc: Pointer to drm encoder structure
1460 * @phy_enc: Pointer to physical encoder
1461 * Note: This is called from IRQ handler context.
1462 */
dpu_encoder_vblank_callback(struct drm_encoder * drm_enc,struct dpu_encoder_phys * phy_enc)1463 void dpu_encoder_vblank_callback(struct drm_encoder *drm_enc,
1464 struct dpu_encoder_phys *phy_enc)
1465 {
1466 struct dpu_encoder_virt *dpu_enc = NULL;
1467 unsigned long lock_flags;
1468
1469 if (!drm_enc || !phy_enc)
1470 return;
1471
1472 DPU_ATRACE_BEGIN("encoder_vblank_callback");
1473 dpu_enc = to_dpu_encoder_virt(drm_enc);
1474
1475 atomic_inc(&phy_enc->vsync_cnt);
1476
1477 spin_lock_irqsave(&dpu_enc->enc_spinlock, lock_flags);
1478 if (dpu_enc->crtc)
1479 dpu_crtc_vblank_callback(dpu_enc->crtc);
1480 spin_unlock_irqrestore(&dpu_enc->enc_spinlock, lock_flags);
1481
1482 DPU_ATRACE_END("encoder_vblank_callback");
1483 }
1484
1485 /**
1486 * dpu_encoder_underrun_callback - Notify virtual encoder of underrun IRQ reception
1487 * @drm_enc: Pointer to drm encoder structure
1488 * @phy_enc: Pointer to physical encoder
1489 * Note: This is called from IRQ handler context.
1490 */
dpu_encoder_underrun_callback(struct drm_encoder * drm_enc,struct dpu_encoder_phys * phy_enc)1491 void dpu_encoder_underrun_callback(struct drm_encoder *drm_enc,
1492 struct dpu_encoder_phys *phy_enc)
1493 {
1494 if (!phy_enc)
1495 return;
1496
1497 DPU_ATRACE_BEGIN("encoder_underrun_callback");
1498 atomic_inc(&phy_enc->underrun_cnt);
1499
1500 /* trigger dump only on the first underrun */
1501 if (atomic_read(&phy_enc->underrun_cnt) == 1)
1502 msm_disp_snapshot_state(drm_enc->dev);
1503
1504 trace_dpu_enc_underrun_cb(DRMID(drm_enc),
1505 atomic_read(&phy_enc->underrun_cnt));
1506 DPU_ATRACE_END("encoder_underrun_callback");
1507 }
1508
1509 /**
1510 * dpu_encoder_assign_crtc - Link the encoder to the crtc it's assigned to
1511 * @drm_enc: encoder pointer
1512 * @crtc: crtc pointer
1513 */
dpu_encoder_assign_crtc(struct drm_encoder * drm_enc,struct drm_crtc * crtc)1514 void dpu_encoder_assign_crtc(struct drm_encoder *drm_enc, struct drm_crtc *crtc)
1515 {
1516 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
1517 unsigned long lock_flags;
1518
1519 spin_lock_irqsave(&dpu_enc->enc_spinlock, lock_flags);
1520 /* crtc should always be cleared before re-assigning */
1521 WARN_ON(crtc && dpu_enc->crtc);
1522 dpu_enc->crtc = crtc;
1523 spin_unlock_irqrestore(&dpu_enc->enc_spinlock, lock_flags);
1524 }
1525
1526 /**
1527 * dpu_encoder_toggle_vblank_for_crtc - Toggles vblank interrupts on or off if
1528 * the encoder is assigned to the given crtc
1529 * @drm_enc: encoder pointer
1530 * @crtc: crtc pointer
1531 * @enable: true if vblank should be enabled
1532 */
dpu_encoder_toggle_vblank_for_crtc(struct drm_encoder * drm_enc,struct drm_crtc * crtc,bool enable)1533 void dpu_encoder_toggle_vblank_for_crtc(struct drm_encoder *drm_enc,
1534 struct drm_crtc *crtc, bool enable)
1535 {
1536 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
1537 unsigned long lock_flags;
1538 int i;
1539
1540 trace_dpu_enc_vblank_cb(DRMID(drm_enc), enable);
1541
1542 spin_lock_irqsave(&dpu_enc->enc_spinlock, lock_flags);
1543 if (dpu_enc->crtc != crtc) {
1544 spin_unlock_irqrestore(&dpu_enc->enc_spinlock, lock_flags);
1545 return;
1546 }
1547 spin_unlock_irqrestore(&dpu_enc->enc_spinlock, lock_flags);
1548
1549 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1550 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1551
1552 if (phys->ops.control_vblank_irq)
1553 phys->ops.control_vblank_irq(phys, enable);
1554 }
1555 }
1556
1557 /**
1558 * dpu_encoder_frame_done_callback - Notify virtual encoder that this phys
1559 * encoder completes last request frame
1560 * @drm_enc: Pointer to drm encoder structure
1561 * @ready_phys: Pointer to physical encoder
1562 * @event: Event to process
1563 */
dpu_encoder_frame_done_callback(struct drm_encoder * drm_enc,struct dpu_encoder_phys * ready_phys,u32 event)1564 void dpu_encoder_frame_done_callback(
1565 struct drm_encoder *drm_enc,
1566 struct dpu_encoder_phys *ready_phys, u32 event)
1567 {
1568 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
1569 unsigned int i;
1570
1571 if (event & (DPU_ENCODER_FRAME_EVENT_DONE
1572 | DPU_ENCODER_FRAME_EVENT_ERROR
1573 | DPU_ENCODER_FRAME_EVENT_PANEL_DEAD)) {
1574
1575 if (!dpu_enc->frame_busy_mask[0]) {
1576 /**
1577 * suppress frame_done without waiter,
1578 * likely autorefresh
1579 */
1580 trace_dpu_enc_frame_done_cb_not_busy(DRMID(drm_enc), event,
1581 dpu_encoder_helper_get_intf_type(ready_phys->intf_mode),
1582 ready_phys->hw_intf ? ready_phys->hw_intf->idx : -1,
1583 ready_phys->hw_wb ? ready_phys->hw_wb->idx : -1);
1584 return;
1585 }
1586
1587 /* One of the physical encoders has become idle */
1588 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1589 if (dpu_enc->phys_encs[i] == ready_phys) {
1590 trace_dpu_enc_frame_done_cb(DRMID(drm_enc), i,
1591 dpu_enc->frame_busy_mask[0]);
1592 clear_bit(i, dpu_enc->frame_busy_mask);
1593 }
1594 }
1595
1596 if (!dpu_enc->frame_busy_mask[0]) {
1597 atomic_set(&dpu_enc->frame_done_timeout_ms, 0);
1598 timer_delete(&dpu_enc->frame_done_timer);
1599
1600 dpu_encoder_resource_control(drm_enc,
1601 DPU_ENC_RC_EVENT_FRAME_DONE);
1602
1603 if (dpu_enc->crtc)
1604 dpu_crtc_frame_event_cb(dpu_enc->crtc, event);
1605 }
1606 } else {
1607 if (dpu_enc->crtc)
1608 dpu_crtc_frame_event_cb(dpu_enc->crtc, event);
1609 }
1610 }
1611
dpu_encoder_off_work(struct work_struct * work)1612 static void dpu_encoder_off_work(struct work_struct *work)
1613 {
1614 struct dpu_encoder_virt *dpu_enc = container_of(work,
1615 struct dpu_encoder_virt, delayed_off_work.work);
1616
1617 dpu_encoder_resource_control(&dpu_enc->base,
1618 DPU_ENC_RC_EVENT_ENTER_IDLE);
1619
1620 dpu_encoder_frame_done_callback(&dpu_enc->base, NULL,
1621 DPU_ENCODER_FRAME_EVENT_IDLE);
1622 }
1623
1624 /**
1625 * _dpu_encoder_trigger_flush - trigger flush for a physical encoder
1626 * @drm_enc: Pointer to drm encoder structure
1627 * @phys: Pointer to physical encoder structure
1628 * @extra_flush_bits: Additional bit mask to include in flush trigger
1629 */
_dpu_encoder_trigger_flush(struct drm_encoder * drm_enc,struct dpu_encoder_phys * phys,uint32_t extra_flush_bits)1630 static void _dpu_encoder_trigger_flush(struct drm_encoder *drm_enc,
1631 struct dpu_encoder_phys *phys, uint32_t extra_flush_bits)
1632 {
1633 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
1634 struct dpu_hw_ctl *ctl;
1635 int pending_kickoff_cnt;
1636 u32 ret = UINT_MAX;
1637
1638 if (!phys->hw_pp) {
1639 DPU_ERROR("invalid pingpong hw\n");
1640 return;
1641 }
1642
1643 ctl = phys->hw_ctl;
1644 if (!ctl->ops.trigger_flush) {
1645 DPU_ERROR("missing trigger cb\n");
1646 return;
1647 }
1648
1649 pending_kickoff_cnt = dpu_encoder_phys_inc_pending(phys);
1650
1651 /* Return early if encoder is writeback and in clone mode */
1652 if (drm_enc->encoder_type == DRM_MODE_ENCODER_VIRTUAL &&
1653 dpu_enc->cwb_mask) {
1654 DPU_DEBUG("encoder %d skip flush for concurrent writeback encoder\n",
1655 DRMID(drm_enc));
1656 return;
1657 }
1658
1659
1660 if (extra_flush_bits && ctl->ops.update_pending_flush)
1661 ctl->ops.update_pending_flush(ctl, extra_flush_bits);
1662
1663 ctl->ops.trigger_flush(ctl);
1664
1665 if (ctl->ops.get_pending_flush)
1666 ret = ctl->ops.get_pending_flush(ctl);
1667
1668 trace_dpu_enc_trigger_flush(DRMID(drm_enc),
1669 dpu_encoder_helper_get_intf_type(phys->intf_mode),
1670 phys->hw_intf ? phys->hw_intf->idx : -1,
1671 phys->hw_wb ? phys->hw_wb->idx : -1,
1672 pending_kickoff_cnt, ctl->idx,
1673 extra_flush_bits, ret);
1674 }
1675
1676 /**
1677 * _dpu_encoder_trigger_start - trigger start for a physical encoder
1678 * @phys: Pointer to physical encoder structure
1679 */
_dpu_encoder_trigger_start(struct dpu_encoder_phys * phys)1680 static void _dpu_encoder_trigger_start(struct dpu_encoder_phys *phys)
1681 {
1682 struct dpu_encoder_virt *dpu_enc;
1683
1684 if (!phys) {
1685 DPU_ERROR("invalid argument(s)\n");
1686 return;
1687 }
1688
1689 if (!phys->hw_pp) {
1690 DPU_ERROR("invalid pingpong hw\n");
1691 return;
1692 }
1693
1694 dpu_enc = to_dpu_encoder_virt(phys->parent);
1695
1696 if (phys->parent->encoder_type == DRM_MODE_ENCODER_VIRTUAL &&
1697 dpu_enc->cwb_mask) {
1698 DPU_DEBUG("encoder %d CWB enabled, skipping\n", DRMID(phys->parent));
1699 return;
1700 }
1701
1702 if (phys->ops.trigger_start && phys->enable_state != DPU_ENC_DISABLED)
1703 phys->ops.trigger_start(phys);
1704 }
1705
1706 /**
1707 * dpu_encoder_helper_trigger_start - control start helper function
1708 * This helper function may be optionally specified by physical
1709 * encoders if they require ctl_start triggering.
1710 * @phys_enc: Pointer to physical encoder structure
1711 */
dpu_encoder_helper_trigger_start(struct dpu_encoder_phys * phys_enc)1712 void dpu_encoder_helper_trigger_start(struct dpu_encoder_phys *phys_enc)
1713 {
1714 struct dpu_hw_ctl *ctl;
1715
1716 ctl = phys_enc->hw_ctl;
1717 if (ctl->ops.trigger_start) {
1718 ctl->ops.trigger_start(ctl);
1719 trace_dpu_enc_trigger_start(DRMID(phys_enc->parent), ctl->idx);
1720 }
1721 }
1722
dpu_encoder_helper_wait_event_timeout(int32_t drm_id,unsigned int irq_idx,struct dpu_encoder_wait_info * info)1723 static int dpu_encoder_helper_wait_event_timeout(
1724 int32_t drm_id,
1725 unsigned int irq_idx,
1726 struct dpu_encoder_wait_info *info)
1727 {
1728 int rc = 0;
1729 s64 expected_time = ktime_to_ms(ktime_get()) + info->timeout_ms;
1730 s64 jiffies = msecs_to_jiffies(info->timeout_ms);
1731 s64 time;
1732
1733 do {
1734 rc = wait_event_timeout(*(info->wq),
1735 atomic_read(info->atomic_cnt) == 0, jiffies);
1736 time = ktime_to_ms(ktime_get());
1737
1738 trace_dpu_enc_wait_event_timeout(drm_id,
1739 DPU_IRQ_REG(irq_idx), DPU_IRQ_BIT(irq_idx),
1740 rc, time,
1741 expected_time,
1742 atomic_read(info->atomic_cnt));
1743 /* If we timed out, counter is valid and time is less, wait again */
1744 } while (atomic_read(info->atomic_cnt) && (rc == 0) &&
1745 (time < expected_time));
1746
1747 return rc;
1748 }
1749
dpu_encoder_helper_hw_reset(struct dpu_encoder_phys * phys_enc)1750 static void dpu_encoder_helper_hw_reset(struct dpu_encoder_phys *phys_enc)
1751 {
1752 struct dpu_encoder_virt *dpu_enc;
1753 struct dpu_hw_ctl *ctl;
1754 int rc;
1755 struct drm_encoder *drm_enc;
1756
1757 dpu_enc = to_dpu_encoder_virt(phys_enc->parent);
1758 ctl = phys_enc->hw_ctl;
1759 drm_enc = phys_enc->parent;
1760
1761 if (!ctl->ops.reset)
1762 return;
1763
1764 DRM_DEBUG_KMS("id:%u ctl %d reset\n", DRMID(drm_enc),
1765 ctl->idx);
1766
1767 rc = ctl->ops.reset(ctl);
1768 if (rc) {
1769 DPU_ERROR_ENC(dpu_enc, "ctl %d reset failure\n", ctl->idx);
1770 msm_disp_snapshot_state(drm_enc->dev);
1771 }
1772
1773 phys_enc->enable_state = DPU_ENC_ENABLED;
1774 }
1775
1776 /**
1777 * _dpu_encoder_kickoff_phys - handle physical encoder kickoff
1778 * Iterate through the physical encoders and perform consolidated flush
1779 * and/or control start triggering as needed. This is done in the virtual
1780 * encoder rather than the individual physical ones in order to handle
1781 * use cases that require visibility into multiple physical encoders at
1782 * a time.
1783 * @dpu_enc: Pointer to virtual encoder structure
1784 */
_dpu_encoder_kickoff_phys(struct dpu_encoder_virt * dpu_enc)1785 static void _dpu_encoder_kickoff_phys(struct dpu_encoder_virt *dpu_enc)
1786 {
1787 struct dpu_hw_ctl *ctl;
1788 uint32_t i, pending_flush;
1789 unsigned long lock_flags;
1790
1791 pending_flush = 0x0;
1792
1793 /* update pending counts and trigger kickoff ctl flush atomically */
1794 spin_lock_irqsave(&dpu_enc->enc_spinlock, lock_flags);
1795
1796 /* don't perform flush/start operations for slave encoders */
1797 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1798 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
1799
1800 if (phys->enable_state == DPU_ENC_DISABLED)
1801 continue;
1802
1803 ctl = phys->hw_ctl;
1804
1805 /*
1806 * This is cleared in frame_done worker, which isn't invoked
1807 * for async commits. So don't set this for async, since it'll
1808 * roll over to the next commit.
1809 */
1810 if (phys->split_role != ENC_ROLE_SLAVE)
1811 set_bit(i, dpu_enc->frame_busy_mask);
1812
1813 if (!phys->ops.needs_single_flush ||
1814 !phys->ops.needs_single_flush(phys))
1815 _dpu_encoder_trigger_flush(&dpu_enc->base, phys, 0x0);
1816 else if (ctl->ops.get_pending_flush)
1817 pending_flush |= ctl->ops.get_pending_flush(ctl);
1818 }
1819
1820 /* for split flush, combine pending flush masks and send to master */
1821 if (pending_flush && dpu_enc->cur_master) {
1822 _dpu_encoder_trigger_flush(
1823 &dpu_enc->base,
1824 dpu_enc->cur_master,
1825 pending_flush);
1826 }
1827
1828 _dpu_encoder_trigger_start(dpu_enc->cur_master);
1829
1830 spin_unlock_irqrestore(&dpu_enc->enc_spinlock, lock_flags);
1831 }
1832
1833 /**
1834 * dpu_encoder_trigger_kickoff_pending - Clear the flush bits from previous
1835 * kickoff and trigger the ctl prepare progress for command mode display.
1836 * @drm_enc: encoder pointer
1837 */
dpu_encoder_trigger_kickoff_pending(struct drm_encoder * drm_enc)1838 void dpu_encoder_trigger_kickoff_pending(struct drm_encoder *drm_enc)
1839 {
1840 struct dpu_encoder_virt *dpu_enc;
1841 struct dpu_encoder_phys *phys;
1842 unsigned int i;
1843 struct dpu_hw_ctl *ctl;
1844 struct msm_display_info *disp_info;
1845
1846 if (!drm_enc) {
1847 DPU_ERROR("invalid encoder\n");
1848 return;
1849 }
1850 dpu_enc = to_dpu_encoder_virt(drm_enc);
1851 disp_info = &dpu_enc->disp_info;
1852
1853 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
1854 phys = dpu_enc->phys_encs[i];
1855
1856 ctl = phys->hw_ctl;
1857 ctl->ops.clear_pending_flush(ctl);
1858
1859 /* update only for command mode primary ctl */
1860 if ((phys == dpu_enc->cur_master) &&
1861 disp_info->is_cmd_mode
1862 && ctl->ops.trigger_pending)
1863 ctl->ops.trigger_pending(ctl);
1864 }
1865 }
1866
_dpu_encoder_calculate_linetime(struct dpu_encoder_virt * dpu_enc,struct drm_display_mode * mode)1867 static u32 _dpu_encoder_calculate_linetime(struct dpu_encoder_virt *dpu_enc,
1868 struct drm_display_mode *mode)
1869 {
1870 u64 pclk_rate;
1871 u32 pclk_period;
1872 u32 line_time;
1873
1874 /*
1875 * For linetime calculation, only operate on master encoder.
1876 */
1877 if (!dpu_enc->cur_master)
1878 return 0;
1879
1880 if (!dpu_enc->cur_master->ops.get_line_count) {
1881 DPU_ERROR("get_line_count function not defined\n");
1882 return 0;
1883 }
1884
1885 pclk_rate = mode->clock; /* pixel clock in kHz */
1886 if (pclk_rate == 0) {
1887 DPU_ERROR("pclk is 0, cannot calculate line time\n");
1888 return 0;
1889 }
1890
1891 pclk_period = DIV_ROUND_UP_ULL(1000000000ull, pclk_rate);
1892 if (pclk_period == 0) {
1893 DPU_ERROR("pclk period is 0\n");
1894 return 0;
1895 }
1896
1897 /*
1898 * Line time calculation based on Pixel clock and HTOTAL.
1899 * Final unit is in ns.
1900 */
1901 line_time = (pclk_period * mode->htotal) / 1000;
1902 if (line_time == 0) {
1903 DPU_ERROR("line time calculation is 0\n");
1904 return 0;
1905 }
1906
1907 DPU_DEBUG_ENC(dpu_enc,
1908 "clk_rate=%lldkHz, clk_period=%d, linetime=%dns\n",
1909 pclk_rate, pclk_period, line_time);
1910
1911 return line_time;
1912 }
1913
1914 /**
1915 * dpu_encoder_vsync_time - get the time of the next vsync
1916 * @drm_enc: encoder pointer
1917 * @wakeup_time: pointer to ktime_t to write the vsync time to
1918 */
dpu_encoder_vsync_time(struct drm_encoder * drm_enc,ktime_t * wakeup_time)1919 int dpu_encoder_vsync_time(struct drm_encoder *drm_enc, ktime_t *wakeup_time)
1920 {
1921 struct drm_display_mode *mode;
1922 struct dpu_encoder_virt *dpu_enc;
1923 u32 cur_line;
1924 u32 line_time;
1925 u32 vtotal, time_to_vsync;
1926 ktime_t cur_time;
1927
1928 dpu_enc = to_dpu_encoder_virt(drm_enc);
1929
1930 if (!drm_enc->crtc || !drm_enc->crtc->state) {
1931 DPU_ERROR("crtc/crtc state object is NULL\n");
1932 return -EINVAL;
1933 }
1934 mode = &drm_enc->crtc->state->adjusted_mode;
1935
1936 line_time = _dpu_encoder_calculate_linetime(dpu_enc, mode);
1937 if (!line_time)
1938 return -EINVAL;
1939
1940 cur_line = dpu_enc->cur_master->ops.get_line_count(dpu_enc->cur_master);
1941
1942 vtotal = mode->vtotal;
1943 if (cur_line >= vtotal)
1944 time_to_vsync = line_time * vtotal;
1945 else
1946 time_to_vsync = line_time * (vtotal - cur_line);
1947
1948 if (time_to_vsync == 0) {
1949 DPU_ERROR("time to vsync should not be zero, vtotal=%d\n",
1950 vtotal);
1951 return -EINVAL;
1952 }
1953
1954 cur_time = ktime_get();
1955 *wakeup_time = ktime_add_ns(cur_time, time_to_vsync);
1956
1957 DPU_DEBUG_ENC(dpu_enc,
1958 "cur_line=%u vtotal=%u time_to_vsync=%u, cur_time=%lld, wakeup_time=%lld\n",
1959 cur_line, vtotal, time_to_vsync,
1960 ktime_to_ms(cur_time),
1961 ktime_to_ms(*wakeup_time));
1962 return 0;
1963 }
1964
1965 static u32
dpu_encoder_dsc_initial_line_calc(struct drm_dsc_config * dsc,u32 enc_ip_width)1966 dpu_encoder_dsc_initial_line_calc(struct drm_dsc_config *dsc,
1967 u32 enc_ip_width)
1968 {
1969 int ssm_delay, total_pixels, soft_slice_per_enc;
1970
1971 soft_slice_per_enc = enc_ip_width / dsc->slice_width;
1972
1973 /*
1974 * minimum number of initial line pixels is a sum of:
1975 * 1. sub-stream multiplexer delay (83 groups for 8bpc,
1976 * 91 for 10 bpc) * 3
1977 * 2. for two soft slice cases, add extra sub-stream multiplexer * 3
1978 * 3. the initial xmit delay
1979 * 4. total pipeline delay through the "lock step" of encoder (47)
1980 * 5. 6 additional pixels as the output of the rate buffer is
1981 * 48 bits wide
1982 */
1983 ssm_delay = ((dsc->bits_per_component < 10) ? 84 : 92);
1984 total_pixels = ssm_delay * 3 + dsc->initial_xmit_delay + 47;
1985 if (soft_slice_per_enc > 1)
1986 total_pixels += (ssm_delay * 3);
1987 return DIV_ROUND_UP(total_pixels, dsc->slice_width);
1988 }
1989
dpu_encoder_dsc_pipe_cfg(struct dpu_hw_ctl * ctl,struct dpu_hw_dsc * hw_dsc,struct dpu_hw_pingpong * hw_pp,struct drm_dsc_config * dsc,u32 common_mode,u32 initial_lines)1990 static void dpu_encoder_dsc_pipe_cfg(struct dpu_hw_ctl *ctl,
1991 struct dpu_hw_dsc *hw_dsc,
1992 struct dpu_hw_pingpong *hw_pp,
1993 struct drm_dsc_config *dsc,
1994 u32 common_mode,
1995 u32 initial_lines)
1996 {
1997 if (hw_dsc->ops.dsc_config)
1998 hw_dsc->ops.dsc_config(hw_dsc, dsc, common_mode, initial_lines);
1999
2000 if (hw_dsc->ops.dsc_config_thresh)
2001 hw_dsc->ops.dsc_config_thresh(hw_dsc, dsc);
2002
2003 if (hw_pp->ops.setup_dsc)
2004 hw_pp->ops.setup_dsc(hw_pp);
2005
2006 if (hw_dsc->ops.dsc_bind_pingpong_blk)
2007 hw_dsc->ops.dsc_bind_pingpong_blk(hw_dsc, hw_pp->idx);
2008
2009 if (hw_pp->ops.enable_dsc)
2010 hw_pp->ops.enable_dsc(hw_pp);
2011
2012 if (ctl->ops.update_pending_flush_dsc)
2013 ctl->ops.update_pending_flush_dsc(ctl, hw_dsc->idx);
2014 }
2015
dpu_encoder_prep_dsc(struct dpu_encoder_virt * dpu_enc,struct drm_dsc_config * dsc)2016 static void dpu_encoder_prep_dsc(struct dpu_encoder_virt *dpu_enc,
2017 struct drm_dsc_config *dsc)
2018 {
2019 struct dpu_encoder_phys *enc_master = dpu_enc->cur_master;
2020 struct dpu_hw_ctl *ctl = enc_master->hw_ctl;
2021 struct dpu_hw_dsc *hw_dsc[MAX_CHANNELS_PER_ENC];
2022 struct dpu_hw_pingpong *hw_pp[MAX_CHANNELS_PER_ENC];
2023 int this_frame_slices;
2024 int intf_ip_w, enc_ip_w;
2025 int dsc_common_mode;
2026 int pic_width;
2027 u32 initial_lines;
2028 int num_dsc = 0;
2029 int i;
2030
2031 for (i = 0; i < MAX_CHANNELS_PER_ENC; i++) {
2032 hw_pp[i] = dpu_enc->hw_pp[i];
2033 hw_dsc[i] = dpu_enc->hw_dsc[i];
2034
2035 if (!hw_pp[i] || !hw_dsc[i])
2036 break;
2037
2038 num_dsc++;
2039 }
2040
2041 pic_width = dsc->pic_width;
2042
2043 dsc_common_mode = 0;
2044 if (num_dsc > 1)
2045 dsc_common_mode |= DSC_MODE_SPLIT_PANEL;
2046 if (dpu_encoder_use_dsc_merge(enc_master->parent))
2047 dsc_common_mode |= DSC_MODE_MULTIPLEX;
2048 if (enc_master->intf_mode == INTF_MODE_VIDEO)
2049 dsc_common_mode |= DSC_MODE_VIDEO;
2050
2051 this_frame_slices = pic_width / dsc->slice_width;
2052 intf_ip_w = this_frame_slices * dsc->slice_width;
2053
2054 enc_ip_w = intf_ip_w / num_dsc;
2055 initial_lines = dpu_encoder_dsc_initial_line_calc(dsc, enc_ip_w);
2056
2057 for (i = 0; i < num_dsc; i++)
2058 dpu_encoder_dsc_pipe_cfg(ctl, hw_dsc[i], hw_pp[i],
2059 dsc, dsc_common_mode, initial_lines);
2060 }
2061
2062 /**
2063 * dpu_encoder_prepare_for_kickoff - schedule double buffer flip of the ctl
2064 * path (i.e. ctl flush and start) at next appropriate time.
2065 * Immediately: if no previous commit is outstanding.
2066 * Delayed: Block until next trigger can be issued.
2067 * @drm_enc: encoder pointer
2068 */
dpu_encoder_prepare_for_kickoff(struct drm_encoder * drm_enc)2069 void dpu_encoder_prepare_for_kickoff(struct drm_encoder *drm_enc)
2070 {
2071 struct dpu_encoder_virt *dpu_enc;
2072 struct dpu_encoder_phys *phys;
2073 bool needs_hw_reset = false;
2074 unsigned int i;
2075
2076 dpu_enc = to_dpu_encoder_virt(drm_enc);
2077
2078 trace_dpu_enc_prepare_kickoff(DRMID(drm_enc));
2079
2080 /* prepare for next kickoff, may include waiting on previous kickoff */
2081 DPU_ATRACE_BEGIN("enc_prepare_for_kickoff");
2082 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2083 phys = dpu_enc->phys_encs[i];
2084 if (phys->ops.prepare_for_kickoff)
2085 phys->ops.prepare_for_kickoff(phys);
2086 if (phys->enable_state == DPU_ENC_ERR_NEEDS_HW_RESET)
2087 needs_hw_reset = true;
2088 }
2089 DPU_ATRACE_END("enc_prepare_for_kickoff");
2090
2091 dpu_encoder_resource_control(drm_enc, DPU_ENC_RC_EVENT_KICKOFF);
2092
2093 /* if any phys needs reset, reset all phys, in-order */
2094 if (needs_hw_reset) {
2095 trace_dpu_enc_prepare_kickoff_reset(DRMID(drm_enc));
2096 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2097 dpu_encoder_helper_hw_reset(dpu_enc->phys_encs[i]);
2098 }
2099 }
2100
2101 if (dpu_enc->dsc)
2102 dpu_encoder_prep_dsc(dpu_enc, dpu_enc->dsc);
2103 }
2104
2105 /**
2106 * dpu_encoder_is_valid_for_commit - check if encode has valid parameters for commit.
2107 * @drm_enc: Pointer to drm encoder structure
2108 */
dpu_encoder_is_valid_for_commit(struct drm_encoder * drm_enc)2109 bool dpu_encoder_is_valid_for_commit(struct drm_encoder *drm_enc)
2110 {
2111 struct dpu_encoder_virt *dpu_enc;
2112 unsigned int i;
2113 struct dpu_encoder_phys *phys;
2114
2115 dpu_enc = to_dpu_encoder_virt(drm_enc);
2116
2117 if (drm_enc->encoder_type == DRM_MODE_ENCODER_VIRTUAL) {
2118 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2119 phys = dpu_enc->phys_encs[i];
2120 if (phys->ops.is_valid_for_commit && !phys->ops.is_valid_for_commit(phys)) {
2121 DPU_DEBUG("invalid FB not kicking off\n");
2122 return false;
2123 }
2124 }
2125 }
2126
2127 return true;
2128 }
2129
2130 /**
2131 * dpu_encoder_start_frame_done_timer - Start the encoder frame done timer
2132 * @drm_enc: Pointer to drm encoder structure
2133 */
dpu_encoder_start_frame_done_timer(struct drm_encoder * drm_enc)2134 void dpu_encoder_start_frame_done_timer(struct drm_encoder *drm_enc)
2135 {
2136 struct dpu_encoder_virt *dpu_enc;
2137 unsigned long timeout_ms;
2138
2139 dpu_enc = to_dpu_encoder_virt(drm_enc);
2140 timeout_ms = DPU_ENCODER_FRAME_DONE_TIMEOUT_FRAMES * 1000 /
2141 drm_mode_vrefresh(&drm_enc->crtc->state->adjusted_mode);
2142
2143 atomic_set(&dpu_enc->frame_done_timeout_ms, timeout_ms);
2144 mod_timer(&dpu_enc->frame_done_timer,
2145 jiffies + msecs_to_jiffies(timeout_ms));
2146
2147 }
2148
2149 /**
2150 * dpu_encoder_kickoff - trigger a double buffer flip of the ctl path
2151 * (i.e. ctl flush and start) immediately.
2152 * @drm_enc: encoder pointer
2153 */
dpu_encoder_kickoff(struct drm_encoder * drm_enc)2154 void dpu_encoder_kickoff(struct drm_encoder *drm_enc)
2155 {
2156 struct dpu_encoder_virt *dpu_enc;
2157 struct dpu_encoder_phys *phys;
2158 unsigned int i;
2159
2160 DPU_ATRACE_BEGIN("encoder_kickoff");
2161 dpu_enc = to_dpu_encoder_virt(drm_enc);
2162
2163 trace_dpu_enc_kickoff(DRMID(drm_enc));
2164
2165 /* All phys encs are ready to go, trigger the kickoff */
2166 _dpu_encoder_kickoff_phys(dpu_enc);
2167
2168 /* allow phys encs to handle any post-kickoff business */
2169 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2170 phys = dpu_enc->phys_encs[i];
2171 if (phys->ops.handle_post_kickoff)
2172 phys->ops.handle_post_kickoff(phys);
2173 }
2174
2175 DPU_ATRACE_END("encoder_kickoff");
2176 }
2177
dpu_encoder_helper_reset_mixers(struct dpu_encoder_phys * phys_enc)2178 static void dpu_encoder_helper_reset_mixers(struct dpu_encoder_phys *phys_enc)
2179 {
2180 int i, num_lm;
2181 struct dpu_global_state *global_state;
2182 struct dpu_hw_blk *hw_lm[2];
2183 struct dpu_hw_mixer *hw_mixer[2];
2184 struct dpu_hw_ctl *ctl = phys_enc->hw_ctl;
2185
2186 /* reset all mixers for this encoder */
2187 if (ctl->ops.clear_all_blendstages)
2188 ctl->ops.clear_all_blendstages(ctl);
2189
2190 global_state = dpu_kms_get_existing_global_state(phys_enc->dpu_kms);
2191
2192 num_lm = dpu_rm_get_assigned_resources(&phys_enc->dpu_kms->rm, global_state,
2193 phys_enc->parent->crtc, DPU_HW_BLK_LM, hw_lm, ARRAY_SIZE(hw_lm));
2194
2195 for (i = 0; i < num_lm; i++) {
2196 hw_mixer[i] = to_dpu_hw_mixer(hw_lm[i]);
2197 if (ctl->ops.update_pending_flush_mixer)
2198 ctl->ops.update_pending_flush_mixer(ctl, hw_mixer[i]->idx);
2199
2200 /* clear all blendstages */
2201 if (ctl->ops.setup_blendstage)
2202 ctl->ops.setup_blendstage(ctl, hw_mixer[i]->idx, NULL);
2203
2204 if (hw_mixer[i]->ops.clear_all_blendstages)
2205 hw_mixer[i]->ops.clear_all_blendstages(hw_mixer[i]);
2206
2207 if (ctl->ops.set_active_lms)
2208 ctl->ops.set_active_lms(ctl, NULL);
2209
2210 if (ctl->ops.set_active_fetch_pipes)
2211 ctl->ops.set_active_fetch_pipes(ctl, NULL);
2212
2213 if (ctl->ops.set_active_pipes)
2214 ctl->ops.set_active_pipes(ctl, NULL);
2215 }
2216 }
2217
dpu_encoder_dsc_pipe_clr(struct dpu_hw_ctl * ctl,struct dpu_hw_dsc * hw_dsc,struct dpu_hw_pingpong * hw_pp)2218 static void dpu_encoder_dsc_pipe_clr(struct dpu_hw_ctl *ctl,
2219 struct dpu_hw_dsc *hw_dsc,
2220 struct dpu_hw_pingpong *hw_pp)
2221 {
2222 if (hw_dsc->ops.dsc_disable)
2223 hw_dsc->ops.dsc_disable(hw_dsc);
2224
2225 if (hw_pp->ops.disable_dsc)
2226 hw_pp->ops.disable_dsc(hw_pp);
2227
2228 if (hw_dsc->ops.dsc_bind_pingpong_blk)
2229 hw_dsc->ops.dsc_bind_pingpong_blk(hw_dsc, PINGPONG_NONE);
2230
2231 if (ctl->ops.update_pending_flush_dsc)
2232 ctl->ops.update_pending_flush_dsc(ctl, hw_dsc->idx);
2233 }
2234
dpu_encoder_unprep_dsc(struct dpu_encoder_virt * dpu_enc)2235 static void dpu_encoder_unprep_dsc(struct dpu_encoder_virt *dpu_enc)
2236 {
2237 /* coding only for 2LM, 2enc, 1 dsc config */
2238 struct dpu_encoder_phys *enc_master = dpu_enc->cur_master;
2239 struct dpu_hw_ctl *ctl = enc_master->hw_ctl;
2240 struct dpu_hw_dsc *hw_dsc[MAX_CHANNELS_PER_ENC];
2241 struct dpu_hw_pingpong *hw_pp[MAX_CHANNELS_PER_ENC];
2242 int i;
2243
2244 for (i = 0; i < MAX_CHANNELS_PER_ENC; i++) {
2245 hw_pp[i] = dpu_enc->hw_pp[i];
2246 hw_dsc[i] = dpu_enc->hw_dsc[i];
2247
2248 if (hw_pp[i] && hw_dsc[i])
2249 dpu_encoder_dsc_pipe_clr(ctl, hw_dsc[i], hw_pp[i]);
2250 }
2251 }
2252
2253 /**
2254 * dpu_encoder_helper_phys_cleanup - helper to cleanup dpu pipeline
2255 * @phys_enc: Pointer to physical encoder structure
2256 */
dpu_encoder_helper_phys_cleanup(struct dpu_encoder_phys * phys_enc)2257 void dpu_encoder_helper_phys_cleanup(struct dpu_encoder_phys *phys_enc)
2258 {
2259 struct dpu_hw_ctl *ctl = phys_enc->hw_ctl;
2260 struct dpu_hw_intf_cfg intf_cfg = { 0 };
2261 int i;
2262 struct dpu_encoder_virt *dpu_enc;
2263
2264 dpu_enc = to_dpu_encoder_virt(phys_enc->parent);
2265
2266 ctl->ops.reset(ctl);
2267
2268 dpu_encoder_helper_reset_mixers(phys_enc);
2269
2270 /*
2271 * TODO: move the once-only operation like CTL flush/trigger
2272 * into dpu_encoder_virt_disable() and all operations which need
2273 * to be done per phys encoder into the phys_disable() op.
2274 */
2275 if (phys_enc->hw_wb) {
2276 /* disable the PP block */
2277 if (phys_enc->hw_wb->ops.bind_pingpong_blk)
2278 phys_enc->hw_wb->ops.bind_pingpong_blk(phys_enc->hw_wb, PINGPONG_NONE);
2279
2280 /* mark WB flush as pending */
2281 if (ctl->ops.update_pending_flush_wb)
2282 ctl->ops.update_pending_flush_wb(ctl, phys_enc->hw_wb->idx);
2283 } else {
2284 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2285 if (dpu_enc->phys_encs[i] && phys_enc->hw_intf->ops.bind_pingpong_blk)
2286 phys_enc->hw_intf->ops.bind_pingpong_blk(
2287 dpu_enc->phys_encs[i]->hw_intf,
2288 PINGPONG_NONE);
2289
2290 /* mark INTF flush as pending */
2291 if (ctl->ops.update_pending_flush_intf)
2292 ctl->ops.update_pending_flush_intf(ctl,
2293 dpu_enc->phys_encs[i]->hw_intf->idx);
2294 }
2295 }
2296
2297 if (phys_enc->hw_pp && phys_enc->hw_pp->ops.setup_dither)
2298 phys_enc->hw_pp->ops.setup_dither(phys_enc->hw_pp, NULL);
2299
2300 if (dpu_enc->cwb_mask)
2301 dpu_encoder_helper_phys_setup_cwb(phys_enc, false);
2302
2303 /* reset the merge 3D HW block */
2304 if (phys_enc->hw_pp && phys_enc->hw_pp->merge_3d) {
2305 phys_enc->hw_pp->merge_3d->ops.setup_3d_mode(phys_enc->hw_pp->merge_3d,
2306 BLEND_3D_NONE);
2307 if (ctl->ops.update_pending_flush_merge_3d)
2308 ctl->ops.update_pending_flush_merge_3d(ctl,
2309 phys_enc->hw_pp->merge_3d->idx);
2310 }
2311
2312 if (phys_enc->hw_cdm) {
2313 if (phys_enc->hw_cdm->ops.bind_pingpong_blk && phys_enc->hw_pp)
2314 phys_enc->hw_cdm->ops.bind_pingpong_blk(phys_enc->hw_cdm,
2315 PINGPONG_NONE);
2316 if (ctl->ops.update_pending_flush_cdm)
2317 ctl->ops.update_pending_flush_cdm(ctl,
2318 phys_enc->hw_cdm->idx);
2319 }
2320
2321 if (dpu_enc->dsc) {
2322 dpu_encoder_unprep_dsc(dpu_enc);
2323 dpu_enc->dsc = NULL;
2324 }
2325
2326 intf_cfg.stream_sel = 0; /* Don't care value for video mode */
2327 intf_cfg.mode_3d = dpu_encoder_helper_get_3d_blend_mode(phys_enc);
2328 intf_cfg.dsc = dpu_encoder_helper_get_dsc(phys_enc);
2329 intf_cfg.cwb = dpu_enc->cwb_mask;
2330
2331 if (phys_enc->hw_intf)
2332 intf_cfg.intf = phys_enc->hw_intf->idx;
2333 if (phys_enc->hw_wb)
2334 intf_cfg.wb = phys_enc->hw_wb->idx;
2335
2336 if (phys_enc->hw_pp && phys_enc->hw_pp->merge_3d)
2337 intf_cfg.merge_3d = phys_enc->hw_pp->merge_3d->idx;
2338
2339 if (ctl->ops.reset_intf_cfg)
2340 ctl->ops.reset_intf_cfg(ctl, &intf_cfg);
2341
2342 ctl->ops.trigger_flush(ctl);
2343 ctl->ops.trigger_start(ctl);
2344 ctl->ops.clear_pending_flush(ctl);
2345 }
2346
dpu_encoder_helper_phys_setup_cwb(struct dpu_encoder_phys * phys_enc,bool enable)2347 void dpu_encoder_helper_phys_setup_cwb(struct dpu_encoder_phys *phys_enc,
2348 bool enable)
2349 {
2350 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(phys_enc->parent);
2351 struct dpu_hw_cwb *hw_cwb;
2352 struct dpu_hw_ctl *hw_ctl;
2353 struct dpu_hw_cwb_setup_cfg cwb_cfg;
2354
2355 struct dpu_kms *dpu_kms;
2356 struct dpu_global_state *global_state;
2357 struct dpu_hw_blk *rt_pp_list[MAX_CHANNELS_PER_ENC];
2358 int num_pp;
2359
2360 if (!phys_enc->hw_wb)
2361 return;
2362
2363 hw_ctl = phys_enc->hw_ctl;
2364
2365 if (!phys_enc->hw_ctl) {
2366 DPU_DEBUG("[wb:%d] no ctl assigned\n",
2367 phys_enc->hw_wb->idx - WB_0);
2368 return;
2369 }
2370
2371 dpu_kms = phys_enc->dpu_kms;
2372 global_state = dpu_kms_get_existing_global_state(dpu_kms);
2373 num_pp = dpu_rm_get_assigned_resources(&dpu_kms->rm, global_state,
2374 phys_enc->parent->crtc,
2375 DPU_HW_BLK_PINGPONG, rt_pp_list,
2376 ARRAY_SIZE(rt_pp_list));
2377
2378 if (num_pp == 0 || num_pp > MAX_CHANNELS_PER_ENC) {
2379 DPU_DEBUG_ENC(dpu_enc, "invalid num_pp %d\n", num_pp);
2380 return;
2381 }
2382
2383 /*
2384 * The CWB mux supports using LM or DSPP as tap points. For now,
2385 * always use LM tap point
2386 */
2387 cwb_cfg.input = INPUT_MODE_LM_OUT;
2388
2389 for (int i = 0; i < MAX_CWB_PER_ENC; i++) {
2390 hw_cwb = dpu_enc->hw_cwb[i];
2391 if (!hw_cwb)
2392 continue;
2393
2394 if (enable) {
2395 struct dpu_hw_pingpong *hw_pp =
2396 to_dpu_hw_pingpong(rt_pp_list[i]);
2397 cwb_cfg.pp_idx = hw_pp->idx;
2398 } else {
2399 cwb_cfg.pp_idx = PINGPONG_NONE;
2400 }
2401
2402 hw_cwb->ops.config_cwb(hw_cwb, &cwb_cfg);
2403
2404 if (hw_ctl->ops.update_pending_flush_cwb)
2405 hw_ctl->ops.update_pending_flush_cwb(hw_ctl, hw_cwb->idx);
2406 }
2407 }
2408
2409 /**
2410 * dpu_encoder_helper_phys_setup_cdm - setup chroma down sampling block
2411 * @phys_enc: Pointer to physical encoder
2412 * @dpu_fmt: Pinter to the format description
2413 * @output_type: HDMI/WB
2414 */
dpu_encoder_helper_phys_setup_cdm(struct dpu_encoder_phys * phys_enc,const struct msm_format * dpu_fmt,u32 output_type)2415 void dpu_encoder_helper_phys_setup_cdm(struct dpu_encoder_phys *phys_enc,
2416 const struct msm_format *dpu_fmt,
2417 u32 output_type)
2418 {
2419 struct dpu_hw_cdm *hw_cdm;
2420 struct dpu_hw_cdm_cfg *cdm_cfg;
2421 struct dpu_hw_pingpong *hw_pp;
2422 int ret;
2423
2424 if (!phys_enc)
2425 return;
2426
2427 cdm_cfg = &phys_enc->cdm_cfg;
2428 hw_pp = phys_enc->hw_pp;
2429 hw_cdm = phys_enc->hw_cdm;
2430
2431 if (!hw_cdm)
2432 return;
2433
2434 if (!MSM_FORMAT_IS_YUV(dpu_fmt)) {
2435 DPU_DEBUG("[enc:%d] cdm_disable fmt:%p4cc\n", DRMID(phys_enc->parent),
2436 &dpu_fmt->pixel_format);
2437 if (hw_cdm->ops.bind_pingpong_blk)
2438 hw_cdm->ops.bind_pingpong_blk(hw_cdm, PINGPONG_NONE);
2439
2440 return;
2441 }
2442
2443 memset(cdm_cfg, 0, sizeof(struct dpu_hw_cdm_cfg));
2444
2445 cdm_cfg->output_width = phys_enc->cached_mode.hdisplay;
2446 cdm_cfg->output_height = phys_enc->cached_mode.vdisplay;
2447 cdm_cfg->output_fmt = dpu_fmt;
2448 cdm_cfg->output_type = output_type;
2449 cdm_cfg->output_bit_depth = MSM_FORMAT_IS_DX(dpu_fmt) ?
2450 CDM_CDWN_OUTPUT_10BIT : CDM_CDWN_OUTPUT_8BIT;
2451 cdm_cfg->csc_cfg = &dpu_csc10_rgb2yuv_601l;
2452
2453 /* enable 10 bit logic */
2454 switch (cdm_cfg->output_fmt->chroma_sample) {
2455 case CHROMA_FULL:
2456 cdm_cfg->h_cdwn_type = CDM_CDWN_DISABLE;
2457 cdm_cfg->v_cdwn_type = CDM_CDWN_DISABLE;
2458 break;
2459 case CHROMA_H2V1:
2460 cdm_cfg->h_cdwn_type = CDM_CDWN_COSITE;
2461 cdm_cfg->v_cdwn_type = CDM_CDWN_DISABLE;
2462 break;
2463 case CHROMA_420:
2464 cdm_cfg->h_cdwn_type = CDM_CDWN_COSITE;
2465 cdm_cfg->v_cdwn_type = CDM_CDWN_OFFSITE;
2466 break;
2467 case CHROMA_H1V2:
2468 default:
2469 DPU_ERROR("[enc:%d] unsupported chroma sampling type\n",
2470 DRMID(phys_enc->parent));
2471 cdm_cfg->h_cdwn_type = CDM_CDWN_DISABLE;
2472 cdm_cfg->v_cdwn_type = CDM_CDWN_DISABLE;
2473 break;
2474 }
2475
2476 DPU_DEBUG("[enc:%d] cdm_enable:%d,%d,%p4cc,%d,%d,%d,%d]\n",
2477 DRMID(phys_enc->parent), cdm_cfg->output_width,
2478 cdm_cfg->output_height, &cdm_cfg->output_fmt->pixel_format,
2479 cdm_cfg->output_type, cdm_cfg->output_bit_depth,
2480 cdm_cfg->h_cdwn_type, cdm_cfg->v_cdwn_type);
2481
2482 if (hw_cdm->ops.enable) {
2483 cdm_cfg->pp_id = hw_pp->idx;
2484 ret = hw_cdm->ops.enable(hw_cdm, cdm_cfg);
2485 if (ret < 0) {
2486 DPU_ERROR("[enc:%d] failed to enable CDM; ret:%d\n",
2487 DRMID(phys_enc->parent), ret);
2488 return;
2489 }
2490 }
2491 }
2492
2493 #ifdef CONFIG_DEBUG_FS
_dpu_encoder_status_show(struct seq_file * s,void * data)2494 static int _dpu_encoder_status_show(struct seq_file *s, void *data)
2495 {
2496 struct drm_encoder *drm_enc = s->private;
2497 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(drm_enc);
2498 int i;
2499
2500 mutex_lock(&dpu_enc->enc_lock);
2501 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2502 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
2503
2504 seq_printf(s, "intf:%d wb:%d vsync:%8d underrun:%8d frame_done_cnt:%d",
2505 phys->hw_intf ? phys->hw_intf->idx - INTF_0 : -1,
2506 phys->hw_wb ? phys->hw_wb->idx - WB_0 : -1,
2507 atomic_read(&phys->vsync_cnt),
2508 atomic_read(&phys->underrun_cnt),
2509 atomic_read(&dpu_enc->frame_done_timeout_cnt));
2510
2511 seq_printf(s, "mode: %s\n", dpu_encoder_helper_get_intf_type(phys->intf_mode));
2512 }
2513 mutex_unlock(&dpu_enc->enc_lock);
2514
2515 return 0;
2516 }
2517
2518 DEFINE_SHOW_ATTRIBUTE(_dpu_encoder_status);
2519
dpu_encoder_debugfs_init(struct drm_encoder * drm_enc,struct dentry * root)2520 static void dpu_encoder_debugfs_init(struct drm_encoder *drm_enc, struct dentry *root)
2521 {
2522 /* don't error check these */
2523 debugfs_create_file("status", 0600,
2524 root, drm_enc, &_dpu_encoder_status_fops);
2525 }
2526 #else
2527 #define dpu_encoder_debugfs_init NULL
2528 #endif
2529
dpu_encoder_virt_add_phys_encs(struct drm_device * dev,struct msm_display_info * disp_info,struct dpu_encoder_virt * dpu_enc,struct dpu_enc_phys_init_params * params)2530 static int dpu_encoder_virt_add_phys_encs(
2531 struct drm_device *dev,
2532 struct msm_display_info *disp_info,
2533 struct dpu_encoder_virt *dpu_enc,
2534 struct dpu_enc_phys_init_params *params)
2535 {
2536 struct dpu_encoder_phys *enc = NULL;
2537
2538 DPU_DEBUG_ENC(dpu_enc, "\n");
2539
2540 /*
2541 * We may create up to NUM_PHYS_ENCODER_TYPES physical encoder types
2542 * in this function, check up-front.
2543 */
2544 if (dpu_enc->num_phys_encs + NUM_PHYS_ENCODER_TYPES >=
2545 ARRAY_SIZE(dpu_enc->phys_encs)) {
2546 DPU_ERROR_ENC(dpu_enc, "too many physical encoders %d\n",
2547 dpu_enc->num_phys_encs);
2548 return -EINVAL;
2549 }
2550
2551
2552 if (disp_info->intf_type == INTF_WB) {
2553 enc = dpu_encoder_phys_wb_init(dev, params);
2554
2555 if (IS_ERR(enc)) {
2556 DPU_ERROR_ENC(dpu_enc, "failed to init wb enc: %ld\n",
2557 PTR_ERR(enc));
2558 return PTR_ERR(enc);
2559 }
2560
2561 dpu_enc->phys_encs[dpu_enc->num_phys_encs] = enc;
2562 ++dpu_enc->num_phys_encs;
2563 } else if (disp_info->is_cmd_mode) {
2564 enc = dpu_encoder_phys_cmd_init(dev, params);
2565
2566 if (IS_ERR(enc)) {
2567 DPU_ERROR_ENC(dpu_enc, "failed to init cmd enc: %ld\n",
2568 PTR_ERR(enc));
2569 return PTR_ERR(enc);
2570 }
2571
2572 dpu_enc->phys_encs[dpu_enc->num_phys_encs] = enc;
2573 ++dpu_enc->num_phys_encs;
2574 } else {
2575 enc = dpu_encoder_phys_vid_init(dev, params);
2576
2577 if (IS_ERR(enc)) {
2578 DPU_ERROR_ENC(dpu_enc, "failed to init vid enc: %ld\n",
2579 PTR_ERR(enc));
2580 return PTR_ERR(enc);
2581 }
2582
2583 dpu_enc->phys_encs[dpu_enc->num_phys_encs] = enc;
2584 ++dpu_enc->num_phys_encs;
2585 }
2586
2587 if (params->split_role == ENC_ROLE_SLAVE)
2588 dpu_enc->cur_slave = enc;
2589 else
2590 dpu_enc->cur_master = enc;
2591
2592 return 0;
2593 }
2594
2595 /**
2596 * dpu_encoder_get_clones - Calculate the possible_clones for DPU encoder
2597 * @drm_enc: DRM encoder pointer
2598 * Returns: possible_clones mask
2599 */
dpu_encoder_get_clones(struct drm_encoder * drm_enc)2600 uint32_t dpu_encoder_get_clones(struct drm_encoder *drm_enc)
2601 {
2602 struct drm_encoder *curr;
2603 int type = drm_enc->encoder_type;
2604 uint32_t clone_mask = drm_encoder_mask(drm_enc);
2605
2606 /*
2607 * Set writeback as possible clones of real-time DSI encoders and vice
2608 * versa
2609 *
2610 * Writeback encoders can't be clones of each other and DSI
2611 * encoders can't be clones of each other.
2612 *
2613 * TODO: Add DP encoders as valid possible clones for writeback encoders
2614 * (and vice versa) once concurrent writeback has been validated for DP
2615 */
2616 drm_for_each_encoder(curr, drm_enc->dev) {
2617 if ((type == DRM_MODE_ENCODER_VIRTUAL &&
2618 curr->encoder_type == DRM_MODE_ENCODER_DSI) ||
2619 (type == DRM_MODE_ENCODER_DSI &&
2620 curr->encoder_type == DRM_MODE_ENCODER_VIRTUAL))
2621 clone_mask |= drm_encoder_mask(curr);
2622 }
2623
2624 return clone_mask;
2625 }
2626
dpu_encoder_setup_display(struct dpu_encoder_virt * dpu_enc,struct dpu_kms * dpu_kms,struct msm_display_info * disp_info)2627 static int dpu_encoder_setup_display(struct dpu_encoder_virt *dpu_enc,
2628 struct dpu_kms *dpu_kms,
2629 struct msm_display_info *disp_info)
2630 {
2631 int ret = 0;
2632 int i = 0;
2633 struct dpu_enc_phys_init_params phys_params;
2634
2635 if (!dpu_enc) {
2636 DPU_ERROR("invalid arg(s), enc %d\n", dpu_enc != NULL);
2637 return -EINVAL;
2638 }
2639
2640 dpu_enc->cur_master = NULL;
2641
2642 memset(&phys_params, 0, sizeof(phys_params));
2643 phys_params.dpu_kms = dpu_kms;
2644 phys_params.parent = &dpu_enc->base;
2645 phys_params.enc_spinlock = &dpu_enc->enc_spinlock;
2646
2647 WARN_ON(disp_info->num_of_h_tiles < 1);
2648
2649 DPU_DEBUG("dsi_info->num_of_h_tiles %d\n", disp_info->num_of_h_tiles);
2650
2651 if (disp_info->intf_type != INTF_WB)
2652 dpu_enc->idle_pc_supported =
2653 dpu_kms->catalog->caps->has_idle_pc;
2654
2655 mutex_lock(&dpu_enc->enc_lock);
2656 for (i = 0; i < disp_info->num_of_h_tiles && !ret; i++) {
2657 /*
2658 * Left-most tile is at index 0, content is controller id
2659 * h_tile_instance_ids[2] = {0, 1}; DSI0 = left, DSI1 = right
2660 * h_tile_instance_ids[2] = {1, 0}; DSI1 = left, DSI0 = right
2661 */
2662 u32 controller_id = disp_info->h_tile_instance[i];
2663
2664 if (disp_info->num_of_h_tiles > 1) {
2665 if (i == 0)
2666 phys_params.split_role = ENC_ROLE_MASTER;
2667 else
2668 phys_params.split_role = ENC_ROLE_SLAVE;
2669 } else {
2670 phys_params.split_role = ENC_ROLE_SOLO;
2671 }
2672
2673 DPU_DEBUG("h_tile_instance %d = %d, split_role %d\n",
2674 i, controller_id, phys_params.split_role);
2675
2676 phys_params.hw_intf = dpu_encoder_get_intf(dpu_kms->catalog, &dpu_kms->rm,
2677 disp_info->intf_type,
2678 controller_id);
2679
2680 if (disp_info->intf_type == INTF_WB && controller_id < WB_MAX)
2681 phys_params.hw_wb = dpu_rm_get_wb(&dpu_kms->rm, controller_id);
2682
2683 if (!phys_params.hw_intf && !phys_params.hw_wb) {
2684 DPU_ERROR_ENC(dpu_enc, "no intf or wb block assigned at idx: %d\n", i);
2685 ret = -EINVAL;
2686 break;
2687 }
2688
2689 if (phys_params.hw_intf && phys_params.hw_wb) {
2690 DPU_ERROR_ENC(dpu_enc,
2691 "invalid phys both intf and wb block at idx: %d\n", i);
2692 ret = -EINVAL;
2693 break;
2694 }
2695
2696 ret = dpu_encoder_virt_add_phys_encs(dpu_kms->dev, disp_info,
2697 dpu_enc, &phys_params);
2698 if (ret) {
2699 DPU_ERROR_ENC(dpu_enc, "failed to add phys encs\n");
2700 break;
2701 }
2702 }
2703
2704 mutex_unlock(&dpu_enc->enc_lock);
2705
2706 return ret;
2707 }
2708
dpu_encoder_frame_done_timeout(struct timer_list * t)2709 static void dpu_encoder_frame_done_timeout(struct timer_list *t)
2710 {
2711 struct dpu_encoder_virt *dpu_enc = timer_container_of(dpu_enc, t,
2712 frame_done_timer);
2713 struct drm_encoder *drm_enc = &dpu_enc->base;
2714 u32 event;
2715
2716 if (!drm_enc->dev) {
2717 DPU_ERROR("invalid parameters\n");
2718 return;
2719 }
2720
2721 if (!dpu_enc->frame_busy_mask[0] || !dpu_enc->crtc) {
2722 DRM_DEBUG_KMS("id:%u invalid timeout frame_busy_mask=%lu\n",
2723 DRMID(drm_enc), dpu_enc->frame_busy_mask[0]);
2724 return;
2725 } else if (!atomic_xchg(&dpu_enc->frame_done_timeout_ms, 0)) {
2726 DRM_DEBUG_KMS("id:%u invalid timeout\n", DRMID(drm_enc));
2727 return;
2728 }
2729
2730 DPU_ERROR_ENC_RATELIMITED(dpu_enc, "frame done timeout\n");
2731
2732 if (atomic_inc_return(&dpu_enc->frame_done_timeout_cnt) == 1)
2733 msm_disp_snapshot_state(drm_enc->dev);
2734
2735 event = DPU_ENCODER_FRAME_EVENT_ERROR;
2736 trace_dpu_enc_frame_done_timeout(DRMID(drm_enc), event);
2737 dpu_crtc_frame_event_cb(dpu_enc->crtc, event);
2738 }
2739
2740 static const struct drm_encoder_helper_funcs dpu_encoder_helper_funcs = {
2741 .atomic_mode_set = dpu_encoder_virt_atomic_mode_set,
2742 .atomic_disable = dpu_encoder_virt_atomic_disable,
2743 .atomic_enable = dpu_encoder_virt_atomic_enable,
2744 };
2745
2746 static const struct drm_encoder_funcs dpu_encoder_funcs = {
2747 .debugfs_init = dpu_encoder_debugfs_init,
2748 };
2749
2750 /**
2751 * dpu_encoder_init - initialize virtual encoder object
2752 * @dev: Pointer to drm device structure
2753 * @drm_enc_mode: corresponding DRM_MODE_ENCODER_* constant
2754 * @disp_info: Pointer to display information structure
2755 * Returns: Pointer to newly created drm encoder
2756 */
dpu_encoder_init(struct drm_device * dev,int drm_enc_mode,struct msm_display_info * disp_info)2757 struct drm_encoder *dpu_encoder_init(struct drm_device *dev,
2758 int drm_enc_mode,
2759 struct msm_display_info *disp_info)
2760 {
2761 struct msm_drm_private *priv = dev->dev_private;
2762 struct dpu_kms *dpu_kms = to_dpu_kms(priv->kms);
2763 struct dpu_encoder_virt *dpu_enc;
2764 int ret;
2765
2766 dpu_enc = drmm_encoder_alloc(dev, struct dpu_encoder_virt, base,
2767 &dpu_encoder_funcs, drm_enc_mode, NULL);
2768 if (IS_ERR(dpu_enc))
2769 return ERR_CAST(dpu_enc);
2770
2771 drm_encoder_helper_add(&dpu_enc->base, &dpu_encoder_helper_funcs);
2772
2773 spin_lock_init(&dpu_enc->enc_spinlock);
2774 dpu_enc->enabled = false;
2775 mutex_init(&dpu_enc->enc_lock);
2776 mutex_init(&dpu_enc->rc_lock);
2777
2778 ret = dpu_encoder_setup_display(dpu_enc, dpu_kms, disp_info);
2779 if (ret) {
2780 DPU_ERROR("failed to setup encoder\n");
2781 return ERR_PTR(-ENOMEM);
2782 }
2783
2784 atomic_set(&dpu_enc->frame_done_timeout_ms, 0);
2785 atomic_set(&dpu_enc->frame_done_timeout_cnt, 0);
2786 timer_setup(&dpu_enc->frame_done_timer,
2787 dpu_encoder_frame_done_timeout, 0);
2788
2789 INIT_DELAYED_WORK(&dpu_enc->delayed_off_work,
2790 dpu_encoder_off_work);
2791 dpu_enc->idle_timeout = IDLE_TIMEOUT;
2792
2793 memcpy(&dpu_enc->disp_info, disp_info, sizeof(*disp_info));
2794
2795 DPU_DEBUG_ENC(dpu_enc, "created\n");
2796
2797 return &dpu_enc->base;
2798 }
2799
2800 /**
2801 * dpu_encoder_wait_for_commit_done() - Wait for encoder to flush pending state
2802 * @drm_enc: encoder pointer
2803 *
2804 * Wait for hardware to have flushed the current pending changes to hardware at
2805 * a vblank or CTL_START. Physical encoders will map this differently depending
2806 * on the type: vid mode -> vsync_irq, cmd mode -> CTL_START.
2807 *
2808 * Return: 0 on success, -EWOULDBLOCK if already signaled, error otherwise
2809 */
dpu_encoder_wait_for_commit_done(struct drm_encoder * drm_enc)2810 int dpu_encoder_wait_for_commit_done(struct drm_encoder *drm_enc)
2811 {
2812 struct dpu_encoder_virt *dpu_enc = NULL;
2813 int i, ret = 0;
2814
2815 if (!drm_enc) {
2816 DPU_ERROR("invalid encoder\n");
2817 return -EINVAL;
2818 }
2819 dpu_enc = to_dpu_encoder_virt(drm_enc);
2820 DPU_DEBUG_ENC(dpu_enc, "\n");
2821
2822 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2823 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
2824
2825 if (phys->ops.wait_for_commit_done) {
2826 DPU_ATRACE_BEGIN("wait_for_commit_done");
2827 ret = phys->ops.wait_for_commit_done(phys);
2828 DPU_ATRACE_END("wait_for_commit_done");
2829 if (ret == -ETIMEDOUT && !dpu_enc->commit_done_timedout) {
2830 dpu_enc->commit_done_timedout = true;
2831 msm_disp_snapshot_state(drm_enc->dev);
2832 }
2833 if (ret)
2834 return ret;
2835 }
2836 }
2837
2838 return ret;
2839 }
2840
2841 /**
2842 * dpu_encoder_wait_for_tx_complete() - Wait for encoder to transfer pixels to panel
2843 * @drm_enc: encoder pointer
2844 *
2845 * Wait for the hardware to transfer all the pixels to the panel. Physical
2846 * encoders will map this differently depending on the type: vid mode -> vsync_irq,
2847 * cmd mode -> pp_done.
2848 *
2849 * Return: 0 on success, -EWOULDBLOCK if already signaled, error otherwise
2850 */
dpu_encoder_wait_for_tx_complete(struct drm_encoder * drm_enc)2851 int dpu_encoder_wait_for_tx_complete(struct drm_encoder *drm_enc)
2852 {
2853 struct dpu_encoder_virt *dpu_enc = NULL;
2854 int i, ret = 0;
2855
2856 if (!drm_enc) {
2857 DPU_ERROR("invalid encoder\n");
2858 return -EINVAL;
2859 }
2860 dpu_enc = to_dpu_encoder_virt(drm_enc);
2861 DPU_DEBUG_ENC(dpu_enc, "\n");
2862
2863 for (i = 0; i < dpu_enc->num_phys_encs; i++) {
2864 struct dpu_encoder_phys *phys = dpu_enc->phys_encs[i];
2865
2866 if (phys->ops.wait_for_tx_complete) {
2867 DPU_ATRACE_BEGIN("wait_for_tx_complete");
2868 ret = phys->ops.wait_for_tx_complete(phys);
2869 DPU_ATRACE_END("wait_for_tx_complete");
2870 if (ret)
2871 return ret;
2872 }
2873 }
2874
2875 return ret;
2876 }
2877
2878 /**
2879 * dpu_encoder_get_intf_mode - get interface mode of the given encoder
2880 * @encoder: Pointer to drm encoder object
2881 */
dpu_encoder_get_intf_mode(struct drm_encoder * encoder)2882 enum dpu_intf_mode dpu_encoder_get_intf_mode(struct drm_encoder *encoder)
2883 {
2884 struct dpu_encoder_virt *dpu_enc = NULL;
2885
2886 if (!encoder) {
2887 DPU_ERROR("invalid encoder\n");
2888 return INTF_MODE_NONE;
2889 }
2890 dpu_enc = to_dpu_encoder_virt(encoder);
2891
2892 if (dpu_enc->cur_master)
2893 return dpu_enc->cur_master->intf_mode;
2894
2895 if (dpu_enc->num_phys_encs)
2896 return dpu_enc->phys_encs[0]->intf_mode;
2897
2898 return INTF_MODE_NONE;
2899 }
2900
2901 /**
2902 * dpu_encoder_helper_get_cwb_mask - get CWB blocks mask for the DPU encoder
2903 * @phys_enc: Pointer to physical encoder structure
2904 */
dpu_encoder_helper_get_cwb_mask(struct dpu_encoder_phys * phys_enc)2905 unsigned int dpu_encoder_helper_get_cwb_mask(struct dpu_encoder_phys *phys_enc)
2906 {
2907 struct drm_encoder *encoder = phys_enc->parent;
2908 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(encoder);
2909
2910 return dpu_enc->cwb_mask;
2911 }
2912
2913 /**
2914 * dpu_encoder_helper_get_dsc - get DSC blocks mask for the DPU encoder
2915 * This helper function is used by physical encoder to get DSC blocks mask
2916 * used for this encoder.
2917 * @phys_enc: Pointer to physical encoder structure
2918 */
dpu_encoder_helper_get_dsc(struct dpu_encoder_phys * phys_enc)2919 unsigned int dpu_encoder_helper_get_dsc(struct dpu_encoder_phys *phys_enc)
2920 {
2921 struct drm_encoder *encoder = phys_enc->parent;
2922 struct dpu_encoder_virt *dpu_enc = to_dpu_encoder_virt(encoder);
2923
2924 return dpu_enc->dsc_mask;
2925 }
2926
dpu_encoder_phys_init(struct dpu_encoder_phys * phys_enc,struct dpu_enc_phys_init_params * p)2927 void dpu_encoder_phys_init(struct dpu_encoder_phys *phys_enc,
2928 struct dpu_enc_phys_init_params *p)
2929 {
2930 phys_enc->hw_mdptop = p->dpu_kms->hw_mdp;
2931 phys_enc->hw_intf = p->hw_intf;
2932 phys_enc->hw_wb = p->hw_wb;
2933 phys_enc->parent = p->parent;
2934 phys_enc->dpu_kms = p->dpu_kms;
2935 phys_enc->split_role = p->split_role;
2936 phys_enc->enc_spinlock = p->enc_spinlock;
2937 phys_enc->enable_state = DPU_ENC_DISABLED;
2938
2939 atomic_set(&phys_enc->pending_kickoff_cnt, 0);
2940 atomic_set(&phys_enc->pending_ctlstart_cnt, 0);
2941
2942 atomic_set(&phys_enc->vsync_cnt, 0);
2943 atomic_set(&phys_enc->underrun_cnt, 0);
2944
2945 init_waitqueue_head(&phys_enc->pending_kickoff_wq);
2946 }
2947