1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (c) 2021 MediaTek Inc.
4  * Author: George Sun <george.sun@mediatek.com>
5  */
6 
7 #include <linux/module.h>
8 #include <linux/slab.h>
9 #include <media/videobuf2-dma-contig.h>
10 #include <media/v4l2-vp9.h>
11 
12 #include "../mtk_vcodec_dec.h"
13 #include "../../common/mtk_vcodec_intr.h"
14 #include "../vdec_drv_base.h"
15 #include "../vdec_drv_if.h"
16 #include "../vdec_vpu_if.h"
17 
18 /* reset_frame_context defined in VP9 spec */
19 #define VP9_RESET_FRAME_CONTEXT_NONE0 0
20 #define VP9_RESET_FRAME_CONTEXT_NONE1 1
21 #define VP9_RESET_FRAME_CONTEXT_SPEC 2
22 #define VP9_RESET_FRAME_CONTEXT_ALL 3
23 
24 #define VP9_TILE_BUF_SIZE 4096
25 #define VP9_PROB_BUF_SIZE 2560
26 #define VP9_COUNTS_BUF_SIZE 16384
27 
28 #define HDR_FLAG(x) (!!((hdr)->flags & V4L2_VP9_FRAME_FLAG_##x))
29 #define LF_FLAG(x) (!!((lf)->flags & V4L2_VP9_LOOP_FILTER_FLAG_##x))
30 #define SEG_FLAG(x) (!!((seg)->flags & V4L2_VP9_SEGMENTATION_FLAG_##x))
31 #define VP9_BAND_6(band) ((band) == 0 ? 3 : 6)
32 
33 /*
34  * struct vdec_vp9_slice_frame_ctx - vp9 prob tables footprint
35  */
36 struct vdec_vp9_slice_frame_ctx {
37 	struct {
38 		u8 probs[6][3];
39 		u8 padding[2];
40 	} coef_probs[4][2][2][6];
41 
42 	u8 y_mode_prob[4][16];
43 	u8 switch_interp_prob[4][16];
44 	u8 seg[32];  /* ignore */
45 	u8 comp_inter_prob[16];
46 	u8 comp_ref_prob[16];
47 	u8 single_ref_prob[5][2];
48 	u8 single_ref_prob_padding[6];
49 
50 	u8 joint[3];
51 	u8 joint_padding[13];
52 	struct {
53 		u8 sign;
54 		u8 classes[10];
55 		u8 padding[5];
56 	} sign_classes[2];
57 	struct {
58 		u8 class0[1];
59 		u8 bits[10];
60 		u8 padding[5];
61 	} class0_bits[2];
62 	struct {
63 		u8 class0_fp[2][3];
64 		u8 fp[3];
65 		u8 class0_hp;
66 		u8 hp;
67 		u8 padding[5];
68 	} class0_fp_hp[2];
69 
70 	u8 uv_mode_prob[10][16];
71 	u8 uv_mode_prob_padding[2][16];
72 
73 	u8 partition_prob[16][4];
74 
75 	u8 inter_mode_probs[7][4];
76 	u8 skip_probs[4];
77 
78 	u8 tx_p8x8[2][4];
79 	u8 tx_p16x16[2][4];
80 	u8 tx_p32x32[2][4];
81 	u8 intra_inter_prob[8];
82 };
83 
84 /*
85  * struct vdec_vp9_slice_frame_counts - vp9 counts tables footprint
86  */
87 struct vdec_vp9_slice_frame_counts {
88 	union {
89 		struct {
90 			u32 band_0[3];
91 			u32 padding0[1];
92 			u32 band_1_5[5][6];
93 			u32 padding1[2];
94 		} eob_branch[4][2][2];
95 		u32 eob_branch_space[256 * 4];
96 	};
97 
98 	struct {
99 		u32 band_0[3][4];
100 		u32 band_1_5[5][6][4];
101 	} coef_probs[4][2][2];
102 
103 	u32 intra_inter[4][2];
104 	u32 comp_inter[5][2];
105 	u32 comp_inter_padding[2];
106 	u32 comp_ref[5][2];
107 	u32 comp_ref_padding[2];
108 	u32 single_ref[5][2][2];
109 	u32 inter_mode[7][4];
110 	u32 y_mode[4][12];
111 	u32 uv_mode[10][10];
112 	u32 partition[16][4];
113 	u32 switchable_interp[4][4];
114 
115 	u32 tx_p8x8[2][2];
116 	u32 tx_p16x16[2][4];
117 	u32 tx_p32x32[2][4];
118 
119 	u32 skip[3][4];
120 
121 	u32 joint[4];
122 
123 	struct {
124 		u32 sign[2];
125 		u32 class0[2];
126 		u32 classes[12];
127 		u32 bits[10][2];
128 		u32 padding[4];
129 		u32 class0_fp[2][4];
130 		u32 fp[4];
131 		u32 class0_hp[2];
132 		u32 hp[2];
133 	} mvcomp[2];
134 
135 	u32 reserved[126][4];
136 };
137 
138 /**
139  * struct vdec_vp9_slice_counts_map - vp9 counts tables to map
140  *                                    v4l2_vp9_frame_symbol_counts
141  * @skip:	skip counts.
142  * @y_mode:	Y prediction mode counts.
143  * @filter:	interpolation filter counts.
144  * @mv_joint:	motion vector joint counts.
145  * @sign:	motion vector sign counts.
146  * @classes:	motion vector class counts.
147  * @class0:	motion vector class0 bit counts.
148  * @bits:	motion vector bits counts.
149  * @class0_fp:	motion vector class0 fractional bit counts.
150  * @fp:	motion vector fractional bit counts.
151  * @class0_hp:	motion vector class0 high precision fractional bit counts.
152  * @hp:	motion vector high precision fractional bit counts.
153  */
154 struct vdec_vp9_slice_counts_map {
155 	u32 skip[3][2];
156 	u32 y_mode[4][10];
157 	u32 filter[4][3];
158 	u32 sign[2][2];
159 	u32 classes[2][11];
160 	u32 class0[2][2];
161 	u32 bits[2][10][2];
162 	u32 class0_fp[2][2][4];
163 	u32 fp[2][4];
164 	u32 class0_hp[2][2];
165 	u32 hp[2][2];
166 };
167 
168 /*
169  * struct vdec_vp9_slice_uncompressed_header - vp9 uncompressed header syntax
170  *                                             used for decoding
171  */
172 struct vdec_vp9_slice_uncompressed_header {
173 	u8 profile;
174 	u8 last_frame_type;
175 	u8 frame_type;
176 
177 	u8 last_show_frame;
178 	u8 show_frame;
179 	u8 error_resilient_mode;
180 
181 	u8 bit_depth;
182 	u8 padding0[1];
183 	u16 last_frame_width;
184 	u16 last_frame_height;
185 	u16 frame_width;
186 	u16 frame_height;
187 
188 	u8 intra_only;
189 	u8 reset_frame_context;
190 	u8 ref_frame_sign_bias[4];
191 	u8 allow_high_precision_mv;
192 	u8 interpolation_filter;
193 
194 	u8 refresh_frame_context;
195 	u8 frame_parallel_decoding_mode;
196 	u8 frame_context_idx;
197 
198 	/* loop_filter_params */
199 	u8 loop_filter_level;
200 	u8 loop_filter_sharpness;
201 	u8 loop_filter_delta_enabled;
202 	s8 loop_filter_ref_deltas[4];
203 	s8 loop_filter_mode_deltas[2];
204 
205 	/* quantization_params */
206 	u8 base_q_idx;
207 	s8 delta_q_y_dc;
208 	s8 delta_q_uv_dc;
209 	s8 delta_q_uv_ac;
210 
211 	/* segmentation_params */
212 	u8 segmentation_enabled;
213 	u8 segmentation_update_map;
214 	u8 segmentation_tree_probs[7];
215 	u8 padding1[1];
216 	u8 segmentation_temporal_udpate;
217 	u8 segmentation_pred_prob[3];
218 	u8 segmentation_update_data;
219 	u8 segmentation_abs_or_delta_update;
220 	u8 feature_enabled[8];
221 	s16 feature_value[8][4];
222 
223 	/* tile_info */
224 	u8 tile_cols_log2;
225 	u8 tile_rows_log2;
226 	u8 padding2[2];
227 
228 	u16 uncompressed_header_size;
229 	u16 header_size_in_bytes;
230 
231 	/* LAT OUT, CORE IN */
232 	u32 dequant[8][4];
233 };
234 
235 /*
236  * struct vdec_vp9_slice_compressed_header - vp9 compressed header syntax
237  *                                           used for decoding.
238  */
239 struct vdec_vp9_slice_compressed_header {
240 	u8 tx_mode;
241 	u8 ref_mode;
242 	u8 comp_fixed_ref;
243 	u8 comp_var_ref[2];
244 	u8 padding[3];
245 };
246 
247 /*
248  * struct vdec_vp9_slice_tiles - vp9 tile syntax
249  */
250 struct vdec_vp9_slice_tiles {
251 	u32 size[4][64];
252 	u32 mi_rows[4];
253 	u32 mi_cols[64];
254 	u8 actual_rows;
255 	u8 padding[7];
256 };
257 
258 /*
259  * struct vdec_vp9_slice_reference - vp9 reference frame information
260  */
261 struct vdec_vp9_slice_reference {
262 	u16 frame_width;
263 	u16 frame_height;
264 	u8 bit_depth;
265 	u8 subsampling_x;
266 	u8 subsampling_y;
267 	u8 padding;
268 };
269 
270 /*
271  * struct vdec_vp9_slice_frame - vp9 syntax used for decoding
272  */
273 struct vdec_vp9_slice_frame {
274 	struct vdec_vp9_slice_uncompressed_header uh;
275 	struct vdec_vp9_slice_compressed_header ch;
276 	struct vdec_vp9_slice_tiles tiles;
277 	struct vdec_vp9_slice_reference ref[3];
278 };
279 
280 /*
281  * struct vdec_vp9_slice_init_vsi - VSI used to initialize instance
282  */
283 struct vdec_vp9_slice_init_vsi {
284 	unsigned int architecture;
285 	unsigned int reserved;
286 	u64 core_vsi;
287 	/* default frame context's position in MicroP */
288 	u64 default_frame_ctx;
289 };
290 
291 /*
292  * struct vdec_vp9_slice_mem - memory address and size
293  */
294 struct vdec_vp9_slice_mem {
295 	union {
296 		u64 buf;
297 		dma_addr_t dma_addr;
298 	};
299 	union {
300 		size_t size;
301 		dma_addr_t dma_addr_end;
302 		u64 padding;
303 	};
304 };
305 
306 /*
307  * struct vdec_vp9_slice_bs - input buffer for decoding
308  */
309 struct vdec_vp9_slice_bs {
310 	struct vdec_vp9_slice_mem buf;
311 	struct vdec_vp9_slice_mem frame;
312 };
313 
314 /*
315  * struct vdec_vp9_slice_fb - frame buffer for decoding
316  */
317 struct vdec_vp9_slice_fb {
318 	struct vdec_vp9_slice_mem y;
319 	struct vdec_vp9_slice_mem c;
320 };
321 
322 /*
323  * struct vdec_vp9_slice_state - decoding state
324  */
325 struct vdec_vp9_slice_state {
326 	int err;
327 	unsigned int full;
328 	unsigned int timeout;
329 	unsigned int perf;
330 
331 	unsigned int crc[12];
332 };
333 
334 /**
335  * struct vdec_vp9_slice_vsi - exchange decoding information
336  *                             between Main CPU and MicroP
337  *
338  * @bs:	input buffer
339  * @fb:	output buffer
340  * @ref:	3 reference buffers
341  * @mv:	mv working buffer
342  * @seg:	segmentation working buffer
343  * @tile:	tile buffer
344  * @prob:	prob table buffer, used to set/update prob table
345  * @counts:	counts table buffer, used to update prob table
346  * @ube:	general buffer
347  * @trans:	trans buffer position in general buffer
348  * @err_map:	error buffer
349  * @row_info:	row info buffer
350  * @frame:	decoding syntax
351  * @state:	decoding state
352  */
353 struct vdec_vp9_slice_vsi {
354 	/* used in LAT stage */
355 	struct vdec_vp9_slice_bs bs;
356 	/* used in Core stage */
357 	struct vdec_vp9_slice_fb fb;
358 	struct vdec_vp9_slice_fb ref[3];
359 
360 	struct vdec_vp9_slice_mem mv[2];
361 	struct vdec_vp9_slice_mem seg[2];
362 	struct vdec_vp9_slice_mem tile;
363 	struct vdec_vp9_slice_mem prob;
364 	struct vdec_vp9_slice_mem counts;
365 
366 	/* LAT stage's output, Core stage's input */
367 	struct vdec_vp9_slice_mem ube;
368 	struct vdec_vp9_slice_mem trans;
369 	struct vdec_vp9_slice_mem err_map;
370 	struct vdec_vp9_slice_mem row_info;
371 
372 	/* decoding parameters */
373 	struct vdec_vp9_slice_frame frame;
374 
375 	struct vdec_vp9_slice_state state;
376 };
377 
378 /**
379  * struct vdec_vp9_slice_pfc - per-frame context that contains a local vsi.
380  *                             pass it from lat to core
381  *
382  * @vsi:	local vsi. copy to/from remote vsi before/after decoding
383  * @ref_idx:	reference buffer index
384  * @seq:	picture sequence
385  * @state:	decoding state
386  */
387 struct vdec_vp9_slice_pfc {
388 	struct vdec_vp9_slice_vsi vsi;
389 
390 	u64 ref_idx[3];
391 
392 	int seq;
393 
394 	/* LAT/Core CRC */
395 	struct vdec_vp9_slice_state state[2];
396 };
397 
398 /*
399  * enum vdec_vp9_slice_resolution_level
400  */
401 enum vdec_vp9_slice_resolution_level {
402 	VP9_RES_NONE,
403 	VP9_RES_FHD,
404 	VP9_RES_4K,
405 	VP9_RES_8K,
406 };
407 
408 /*
409  * struct vdec_vp9_slice_ref - picture's width & height should kept
410  *                             for later decoding as reference picture
411  */
412 struct vdec_vp9_slice_ref {
413 	unsigned int width;
414 	unsigned int height;
415 };
416 
417 /**
418  * struct vdec_vp9_slice_instance - represent one vp9 instance
419  *
420  * @ctx:		pointer to codec's context
421  * @vpu:		VPU instance
422  * @seq:		global picture sequence
423  * @level:		level of current resolution
424  * @width:		width of last picture
425  * @height:		height of last picture
426  * @frame_type:	frame_type of last picture
427  * @irq:		irq to Main CPU or MicroP
428  * @show_frame:	show_frame of last picture
429  * @dpb:		picture information (width/height) for reference
430  * @mv:		mv working buffer
431  * @seg:		segmentation working buffer
432  * @tile:		tile buffer
433  * @prob:		prob table buffer, used to set/update prob table
434  * @counts:		counts table buffer, used to update prob table
435  * @frame_ctx:		4 frame context according to VP9 Spec
436  * @frame_ctx_helper:	4 frame context according to newest kernel spec
437  * @dirty:		state of each frame context
438  * @init_vsi:		vsi used for initialized VP9 instance
439  * @vsi:		vsi used for decoding/flush ...
440  * @core_vsi:		vsi used for Core stage
441  *
442  * @sc_pfc:		per frame context single core
443  * @counts_map:	used map to counts_helper
444  * @counts_helper:	counts table according to newest kernel spec
445  */
446 struct vdec_vp9_slice_instance {
447 	struct mtk_vcodec_dec_ctx *ctx;
448 	struct vdec_vpu_inst vpu;
449 
450 	int seq;
451 
452 	enum vdec_vp9_slice_resolution_level level;
453 
454 	/* for resolution change and get_pic_info */
455 	unsigned int width;
456 	unsigned int height;
457 
458 	/* for last_frame_type */
459 	unsigned int frame_type;
460 	unsigned int irq;
461 
462 	unsigned int show_frame;
463 
464 	/* maintain vp9 reference frame state */
465 	struct vdec_vp9_slice_ref dpb[VB2_MAX_FRAME];
466 
467 	/*
468 	 * normal working buffers
469 	 * mv[0]/seg[0]/tile/prob/counts is used for LAT
470 	 * mv[1]/seg[1] is used for CORE
471 	 */
472 	struct mtk_vcodec_mem mv[2];
473 	struct mtk_vcodec_mem seg[2];
474 	struct mtk_vcodec_mem tile;
475 	struct mtk_vcodec_mem prob;
476 	struct mtk_vcodec_mem counts;
477 
478 	/* 4 prob tables */
479 	struct vdec_vp9_slice_frame_ctx frame_ctx[4];
480 	/*4 helper tables */
481 	struct v4l2_vp9_frame_context frame_ctx_helper;
482 	unsigned char dirty[4];
483 
484 	/* MicroP vsi */
485 	union {
486 		struct vdec_vp9_slice_init_vsi *init_vsi;
487 		struct vdec_vp9_slice_vsi *vsi;
488 	};
489 	struct vdec_vp9_slice_vsi *core_vsi;
490 
491 	struct vdec_vp9_slice_pfc sc_pfc;
492 	struct vdec_vp9_slice_counts_map counts_map;
493 	struct v4l2_vp9_frame_symbol_counts counts_helper;
494 };
495 
496 /*
497  * all VP9 instances could share this default frame context.
498  */
499 static struct vdec_vp9_slice_frame_ctx *vdec_vp9_slice_default_frame_ctx;
500 static DEFINE_MUTEX(vdec_vp9_slice_frame_ctx_lock);
501 
502 static int vdec_vp9_slice_core_decode(struct vdec_lat_buf *lat_buf);
503 
vdec_vp9_slice_init_default_frame_ctx(struct vdec_vp9_slice_instance * instance)504 static int vdec_vp9_slice_init_default_frame_ctx(struct vdec_vp9_slice_instance *instance)
505 {
506 	struct vdec_vp9_slice_frame_ctx *remote_frame_ctx;
507 	struct vdec_vp9_slice_frame_ctx *frame_ctx;
508 	struct mtk_vcodec_dec_ctx *ctx;
509 	struct vdec_vp9_slice_init_vsi *vsi;
510 	int ret = 0;
511 
512 	ctx = instance->ctx;
513 	vsi = instance->vpu.vsi;
514 	if (!ctx || !vsi)
515 		return -EINVAL;
516 
517 	remote_frame_ctx = mtk_vcodec_fw_map_dm_addr(ctx->dev->fw_handler,
518 						     (u32)vsi->default_frame_ctx);
519 	if (!remote_frame_ctx) {
520 		mtk_vdec_err(ctx, "failed to map default frame ctx\n");
521 		return -EINVAL;
522 	}
523 
524 	mutex_lock(&vdec_vp9_slice_frame_ctx_lock);
525 	if (vdec_vp9_slice_default_frame_ctx)
526 		goto out;
527 
528 	frame_ctx = kmemdup(remote_frame_ctx, sizeof(*frame_ctx), GFP_KERNEL);
529 	if (!frame_ctx) {
530 		ret = -ENOMEM;
531 		goto out;
532 	}
533 
534 	vdec_vp9_slice_default_frame_ctx = frame_ctx;
535 
536 out:
537 	mutex_unlock(&vdec_vp9_slice_frame_ctx_lock);
538 
539 	return ret;
540 }
541 
vdec_vp9_slice_alloc_working_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi)542 static int vdec_vp9_slice_alloc_working_buffer(struct vdec_vp9_slice_instance *instance,
543 					       struct vdec_vp9_slice_vsi *vsi)
544 {
545 	struct mtk_vcodec_dec_ctx *ctx = instance->ctx;
546 	enum vdec_vp9_slice_resolution_level level;
547 	/* super blocks */
548 	unsigned int max_sb_w;
549 	unsigned int max_sb_h;
550 	unsigned int max_w;
551 	unsigned int max_h;
552 	unsigned int w;
553 	unsigned int h;
554 	size_t size;
555 	int ret;
556 	int i;
557 
558 	w = vsi->frame.uh.frame_width;
559 	h = vsi->frame.uh.frame_height;
560 
561 	if (w > VCODEC_DEC_4K_CODED_WIDTH ||
562 	    h > VCODEC_DEC_4K_CODED_HEIGHT) {
563 		return -EINVAL;
564 	} else if (w > MTK_VDEC_MAX_W || h > MTK_VDEC_MAX_H) {
565 		/* 4K */
566 		level = VP9_RES_4K;
567 		max_w = VCODEC_DEC_4K_CODED_WIDTH;
568 		max_h = VCODEC_DEC_4K_CODED_HEIGHT;
569 	} else {
570 		/* FHD */
571 		level = VP9_RES_FHD;
572 		max_w = MTK_VDEC_MAX_W;
573 		max_h = MTK_VDEC_MAX_H;
574 	}
575 
576 	if (level == instance->level)
577 		return 0;
578 
579 	mtk_vdec_debug(ctx, "resolution level changed, from %u to %u, %ux%u",
580 		       instance->level, level, w, h);
581 
582 	max_sb_w = DIV_ROUND_UP(max_w, 64);
583 	max_sb_h = DIV_ROUND_UP(max_h, 64);
584 	ret = -ENOMEM;
585 
586 	/*
587 	 * Lat-flush must wait core idle, otherwise core will
588 	 * use released buffers
589 	 */
590 
591 	size = (max_sb_w * max_sb_h + 2) * 576;
592 	for (i = 0; i < 2; i++) {
593 		if (instance->mv[i].va)
594 			mtk_vcodec_mem_free(ctx, &instance->mv[i]);
595 		instance->mv[i].size = size;
596 		if (mtk_vcodec_mem_alloc(ctx, &instance->mv[i]))
597 			goto err;
598 	}
599 
600 	size = (max_sb_w * max_sb_h * 32) + 256;
601 	for (i = 0; i < 2; i++) {
602 		if (instance->seg[i].va)
603 			mtk_vcodec_mem_free(ctx, &instance->seg[i]);
604 		instance->seg[i].size = size;
605 		if (mtk_vcodec_mem_alloc(ctx, &instance->seg[i]))
606 			goto err;
607 	}
608 
609 	if (!instance->tile.va) {
610 		instance->tile.size = VP9_TILE_BUF_SIZE;
611 		if (mtk_vcodec_mem_alloc(ctx, &instance->tile))
612 			goto err;
613 	}
614 
615 	if (!instance->prob.va) {
616 		instance->prob.size = VP9_PROB_BUF_SIZE;
617 		if (mtk_vcodec_mem_alloc(ctx, &instance->prob))
618 			goto err;
619 	}
620 
621 	if (!instance->counts.va) {
622 		instance->counts.size = VP9_COUNTS_BUF_SIZE;
623 		if (mtk_vcodec_mem_alloc(ctx, &instance->counts))
624 			goto err;
625 	}
626 
627 	instance->level = level;
628 	return 0;
629 
630 err:
631 	instance->level = VP9_RES_NONE;
632 	return ret;
633 }
634 
vdec_vp9_slice_free_working_buffer(struct vdec_vp9_slice_instance * instance)635 static void vdec_vp9_slice_free_working_buffer(struct vdec_vp9_slice_instance *instance)
636 {
637 	struct mtk_vcodec_dec_ctx *ctx = instance->ctx;
638 	int i;
639 
640 	for (i = 0; i < ARRAY_SIZE(instance->mv); i++) {
641 		if (instance->mv[i].va)
642 			mtk_vcodec_mem_free(ctx, &instance->mv[i]);
643 	}
644 	for (i = 0; i < ARRAY_SIZE(instance->seg); i++) {
645 		if (instance->seg[i].va)
646 			mtk_vcodec_mem_free(ctx, &instance->seg[i]);
647 	}
648 	if (instance->tile.va)
649 		mtk_vcodec_mem_free(ctx, &instance->tile);
650 	if (instance->prob.va)
651 		mtk_vcodec_mem_free(ctx, &instance->prob);
652 	if (instance->counts.va)
653 		mtk_vcodec_mem_free(ctx, &instance->counts);
654 
655 	instance->level = VP9_RES_NONE;
656 }
657 
vdec_vp9_slice_vsi_from_remote(struct vdec_vp9_slice_vsi * vsi,struct vdec_vp9_slice_vsi * remote_vsi,int skip)658 static void vdec_vp9_slice_vsi_from_remote(struct vdec_vp9_slice_vsi *vsi,
659 					   struct vdec_vp9_slice_vsi *remote_vsi,
660 					   int skip)
661 {
662 	struct vdec_vp9_slice_frame *rf;
663 	struct vdec_vp9_slice_frame *f;
664 
665 	/*
666 	 * compressed header
667 	 * dequant
668 	 * buffer position
669 	 * decode state
670 	 */
671 	if (!skip) {
672 		rf = &remote_vsi->frame;
673 		f = &vsi->frame;
674 		memcpy(&f->ch, &rf->ch, sizeof(f->ch));
675 		memcpy(&f->uh.dequant, &rf->uh.dequant, sizeof(f->uh.dequant));
676 		memcpy(&vsi->trans, &remote_vsi->trans, sizeof(vsi->trans));
677 	}
678 
679 	memcpy(&vsi->state, &remote_vsi->state, sizeof(vsi->state));
680 }
681 
vdec_vp9_slice_vsi_to_remote(struct vdec_vp9_slice_vsi * vsi,struct vdec_vp9_slice_vsi * remote_vsi)682 static void vdec_vp9_slice_vsi_to_remote(struct vdec_vp9_slice_vsi *vsi,
683 					 struct vdec_vp9_slice_vsi *remote_vsi)
684 {
685 	memcpy(remote_vsi, vsi, sizeof(*vsi));
686 }
687 
vdec_vp9_slice_tile_offset(int idx,int mi_num,int tile_log2)688 static int vdec_vp9_slice_tile_offset(int idx, int mi_num, int tile_log2)
689 {
690 	int sbs = (mi_num + 7) >> 3;
691 	int offset = ((idx * sbs) >> tile_log2) << 3;
692 
693 	return min(offset, mi_num);
694 }
695 
696 static
vdec_vp9_slice_setup_single_from_src_to_dst(struct vdec_vp9_slice_instance * instance)697 int vdec_vp9_slice_setup_single_from_src_to_dst(struct vdec_vp9_slice_instance *instance)
698 {
699 	struct vb2_v4l2_buffer *src;
700 	struct vb2_v4l2_buffer *dst;
701 
702 	src = v4l2_m2m_next_src_buf(instance->ctx->m2m_ctx);
703 	if (!src)
704 		return -EINVAL;
705 
706 	dst = v4l2_m2m_next_dst_buf(instance->ctx->m2m_ctx);
707 	if (!dst)
708 		return -EINVAL;
709 
710 	v4l2_m2m_buf_copy_metadata(src, dst, true);
711 
712 	return 0;
713 }
714 
vdec_vp9_slice_setup_lat_from_src_buf(struct vdec_vp9_slice_instance * instance,struct vdec_lat_buf * lat_buf)715 static int vdec_vp9_slice_setup_lat_from_src_buf(struct vdec_vp9_slice_instance *instance,
716 						 struct vdec_lat_buf *lat_buf)
717 {
718 	struct vb2_v4l2_buffer *src;
719 	struct vb2_v4l2_buffer *dst;
720 
721 	src = v4l2_m2m_next_src_buf(instance->ctx->m2m_ctx);
722 	if (!src)
723 		return -EINVAL;
724 
725 	lat_buf->src_buf_req = src->vb2_buf.req_obj.req;
726 
727 	dst = &lat_buf->ts_info;
728 	v4l2_m2m_buf_copy_metadata(src, dst, true);
729 	return 0;
730 }
731 
vdec_vp9_slice_setup_hdr(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_uncompressed_header * uh,struct v4l2_ctrl_vp9_frame * hdr)732 static void vdec_vp9_slice_setup_hdr(struct vdec_vp9_slice_instance *instance,
733 				     struct vdec_vp9_slice_uncompressed_header *uh,
734 				     struct v4l2_ctrl_vp9_frame *hdr)
735 {
736 	int i;
737 
738 	uh->profile = hdr->profile;
739 	uh->last_frame_type = instance->frame_type;
740 	uh->frame_type = !HDR_FLAG(KEY_FRAME);
741 	uh->last_show_frame = instance->show_frame;
742 	uh->show_frame = HDR_FLAG(SHOW_FRAME);
743 	uh->error_resilient_mode = HDR_FLAG(ERROR_RESILIENT);
744 	uh->bit_depth = hdr->bit_depth;
745 	uh->last_frame_width = instance->width;
746 	uh->last_frame_height = instance->height;
747 	uh->frame_width = hdr->frame_width_minus_1 + 1;
748 	uh->frame_height = hdr->frame_height_minus_1 + 1;
749 	uh->intra_only = HDR_FLAG(INTRA_ONLY);
750 	/* map v4l2 enum to values defined in VP9 spec for firmware */
751 	switch (hdr->reset_frame_context) {
752 	case V4L2_VP9_RESET_FRAME_CTX_NONE:
753 		uh->reset_frame_context = VP9_RESET_FRAME_CONTEXT_NONE0;
754 		break;
755 	case V4L2_VP9_RESET_FRAME_CTX_SPEC:
756 		uh->reset_frame_context = VP9_RESET_FRAME_CONTEXT_SPEC;
757 		break;
758 	case V4L2_VP9_RESET_FRAME_CTX_ALL:
759 		uh->reset_frame_context = VP9_RESET_FRAME_CONTEXT_ALL;
760 		break;
761 	default:
762 		uh->reset_frame_context = VP9_RESET_FRAME_CONTEXT_NONE0;
763 		break;
764 	}
765 	/*
766 	 * ref_frame_sign_bias specifies the intended direction
767 	 * of the motion vector in time for each reference frame.
768 	 * - INTRA_FRAME = 0,
769 	 * - LAST_FRAME = 1,
770 	 * - GOLDEN_FRAME = 2,
771 	 * - ALTREF_FRAME = 3,
772 	 * ref_frame_sign_bias[INTRA_FRAME] is always 0
773 	 * and VDA only passes another 3 directions
774 	 */
775 	uh->ref_frame_sign_bias[0] = 0;
776 	for (i = 0; i < 3; i++)
777 		uh->ref_frame_sign_bias[i + 1] =
778 			!!(hdr->ref_frame_sign_bias & (1 << i));
779 	uh->allow_high_precision_mv = HDR_FLAG(ALLOW_HIGH_PREC_MV);
780 	uh->interpolation_filter = hdr->interpolation_filter;
781 	uh->refresh_frame_context = HDR_FLAG(REFRESH_FRAME_CTX);
782 	uh->frame_parallel_decoding_mode = HDR_FLAG(PARALLEL_DEC_MODE);
783 	uh->frame_context_idx = hdr->frame_context_idx;
784 
785 	/* tile info */
786 	uh->tile_cols_log2 = hdr->tile_cols_log2;
787 	uh->tile_rows_log2 = hdr->tile_rows_log2;
788 
789 	uh->uncompressed_header_size = hdr->uncompressed_header_size;
790 	uh->header_size_in_bytes = hdr->compressed_header_size;
791 }
792 
vdec_vp9_slice_setup_frame_ctx(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_uncompressed_header * uh,struct v4l2_ctrl_vp9_frame * hdr)793 static void vdec_vp9_slice_setup_frame_ctx(struct vdec_vp9_slice_instance *instance,
794 					   struct vdec_vp9_slice_uncompressed_header *uh,
795 					   struct v4l2_ctrl_vp9_frame *hdr)
796 {
797 	int error_resilient_mode;
798 	int reset_frame_context;
799 	int key_frame;
800 	int intra_only;
801 	int i;
802 
803 	key_frame = HDR_FLAG(KEY_FRAME);
804 	intra_only = HDR_FLAG(INTRA_ONLY);
805 	error_resilient_mode = HDR_FLAG(ERROR_RESILIENT);
806 	reset_frame_context = uh->reset_frame_context;
807 
808 	/*
809 	 * according to "6.2 Uncompressed header syntax" in
810 	 * "VP9 Bitstream & Decoding Process Specification",
811 	 * reset @frame_context_idx when (FrameIsIntra || error_resilient_mode)
812 	 */
813 	if (key_frame || intra_only || error_resilient_mode) {
814 		/*
815 		 * @reset_frame_context specifies
816 		 * whether the frame context should be
817 		 * reset to default values:
818 		 * 0 or 1 means do not reset any frame context
819 		 * 2 resets just the context specified in the frame header
820 		 * 3 resets all contexts
821 		 */
822 		if (key_frame || error_resilient_mode ||
823 		    reset_frame_context == 3) {
824 			/* use default table */
825 			for (i = 0; i < 4; i++)
826 				instance->dirty[i] = 0;
827 		} else if (reset_frame_context == 2) {
828 			instance->dirty[uh->frame_context_idx] = 0;
829 		}
830 		uh->frame_context_idx = 0;
831 	}
832 }
833 
vdec_vp9_slice_setup_loop_filter(struct vdec_vp9_slice_uncompressed_header * uh,struct v4l2_vp9_loop_filter * lf)834 static void vdec_vp9_slice_setup_loop_filter(struct vdec_vp9_slice_uncompressed_header *uh,
835 					     struct v4l2_vp9_loop_filter *lf)
836 {
837 	int i;
838 
839 	uh->loop_filter_level = lf->level;
840 	uh->loop_filter_sharpness = lf->sharpness;
841 	uh->loop_filter_delta_enabled = LF_FLAG(DELTA_ENABLED);
842 	for (i = 0; i < 4; i++)
843 		uh->loop_filter_ref_deltas[i] = lf->ref_deltas[i];
844 	for (i = 0; i < 2; i++)
845 		uh->loop_filter_mode_deltas[i] = lf->mode_deltas[i];
846 }
847 
vdec_vp9_slice_setup_quantization(struct vdec_vp9_slice_uncompressed_header * uh,struct v4l2_vp9_quantization * quant)848 static void vdec_vp9_slice_setup_quantization(struct vdec_vp9_slice_uncompressed_header *uh,
849 					      struct v4l2_vp9_quantization *quant)
850 {
851 	uh->base_q_idx = quant->base_q_idx;
852 	uh->delta_q_y_dc = quant->delta_q_y_dc;
853 	uh->delta_q_uv_dc = quant->delta_q_uv_dc;
854 	uh->delta_q_uv_ac = quant->delta_q_uv_ac;
855 }
856 
vdec_vp9_slice_setup_segmentation(struct vdec_vp9_slice_uncompressed_header * uh,struct v4l2_vp9_segmentation * seg)857 static void vdec_vp9_slice_setup_segmentation(struct vdec_vp9_slice_uncompressed_header *uh,
858 					      struct v4l2_vp9_segmentation *seg)
859 {
860 	int i;
861 	int j;
862 
863 	uh->segmentation_enabled = SEG_FLAG(ENABLED);
864 	uh->segmentation_update_map = SEG_FLAG(UPDATE_MAP);
865 	for (i = 0; i < 7; i++)
866 		uh->segmentation_tree_probs[i] = seg->tree_probs[i];
867 	uh->segmentation_temporal_udpate = SEG_FLAG(TEMPORAL_UPDATE);
868 	for (i = 0; i < 3; i++)
869 		uh->segmentation_pred_prob[i] = seg->pred_probs[i];
870 	uh->segmentation_update_data = SEG_FLAG(UPDATE_DATA);
871 	uh->segmentation_abs_or_delta_update = SEG_FLAG(ABS_OR_DELTA_UPDATE);
872 	for (i = 0; i < 8; i++) {
873 		uh->feature_enabled[i] = seg->feature_enabled[i];
874 		for (j = 0; j < 4; j++)
875 			uh->feature_value[i][j] = seg->feature_data[i][j];
876 	}
877 }
878 
vdec_vp9_slice_setup_tile(struct vdec_vp9_slice_vsi * vsi,struct v4l2_ctrl_vp9_frame * hdr)879 static int vdec_vp9_slice_setup_tile(struct vdec_vp9_slice_vsi *vsi,
880 				     struct v4l2_ctrl_vp9_frame *hdr)
881 {
882 	unsigned int rows_log2;
883 	unsigned int cols_log2;
884 	unsigned int rows;
885 	unsigned int cols;
886 	unsigned int mi_rows;
887 	unsigned int mi_cols;
888 	struct vdec_vp9_slice_tiles *tiles;
889 	int offset;
890 	int start;
891 	int end;
892 	int i;
893 
894 	rows_log2 = hdr->tile_rows_log2;
895 	cols_log2 = hdr->tile_cols_log2;
896 	rows = 1 << rows_log2;
897 	cols = 1 << cols_log2;
898 	tiles = &vsi->frame.tiles;
899 	tiles->actual_rows = 0;
900 
901 	if (rows > 4 || cols > 64)
902 		return -EINVAL;
903 
904 	/* setup mi rows/cols information */
905 	mi_rows = (hdr->frame_height_minus_1 + 1 + 7) >> 3;
906 	mi_cols = (hdr->frame_width_minus_1 + 1 + 7) >> 3;
907 
908 	for (i = 0; i < rows; i++) {
909 		start = vdec_vp9_slice_tile_offset(i, mi_rows, rows_log2);
910 		end = vdec_vp9_slice_tile_offset(i + 1, mi_rows, rows_log2);
911 		offset = end - start;
912 		tiles->mi_rows[i] = (offset + 7) >> 3;
913 		if (tiles->mi_rows[i])
914 			tiles->actual_rows++;
915 	}
916 
917 	for (i = 0; i < cols; i++) {
918 		start = vdec_vp9_slice_tile_offset(i, mi_cols, cols_log2);
919 		end = vdec_vp9_slice_tile_offset(i + 1, mi_cols, cols_log2);
920 		offset = end - start;
921 		tiles->mi_cols[i] = (offset + 7) >> 3;
922 	}
923 
924 	return 0;
925 }
926 
vdec_vp9_slice_setup_state(struct vdec_vp9_slice_vsi * vsi)927 static void vdec_vp9_slice_setup_state(struct vdec_vp9_slice_vsi *vsi)
928 {
929 	memset(&vsi->state, 0, sizeof(vsi->state));
930 }
931 
vdec_vp9_slice_setup_ref_idx(struct vdec_vp9_slice_pfc * pfc,struct v4l2_ctrl_vp9_frame * hdr)932 static void vdec_vp9_slice_setup_ref_idx(struct vdec_vp9_slice_pfc *pfc,
933 					 struct v4l2_ctrl_vp9_frame *hdr)
934 {
935 	pfc->ref_idx[0] = hdr->last_frame_ts;
936 	pfc->ref_idx[1] = hdr->golden_frame_ts;
937 	pfc->ref_idx[2] = hdr->alt_frame_ts;
938 }
939 
vdec_vp9_slice_setup_pfc(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_pfc * pfc)940 static int vdec_vp9_slice_setup_pfc(struct vdec_vp9_slice_instance *instance,
941 				    struct vdec_vp9_slice_pfc *pfc)
942 {
943 	struct v4l2_ctrl_vp9_frame *hdr;
944 	struct vdec_vp9_slice_uncompressed_header *uh;
945 	struct v4l2_ctrl *hdr_ctrl;
946 	struct vdec_vp9_slice_vsi *vsi;
947 	int ret;
948 
949 	/* frame header */
950 	hdr_ctrl = v4l2_ctrl_find(&instance->ctx->ctrl_hdl, V4L2_CID_STATELESS_VP9_FRAME);
951 	if (!hdr_ctrl || !hdr_ctrl->p_cur.p)
952 		return -EINVAL;
953 
954 	hdr = hdr_ctrl->p_cur.p;
955 	vsi = &pfc->vsi;
956 	uh = &vsi->frame.uh;
957 
958 	/* setup vsi information */
959 	vdec_vp9_slice_setup_hdr(instance, uh, hdr);
960 	vdec_vp9_slice_setup_frame_ctx(instance, uh, hdr);
961 	vdec_vp9_slice_setup_loop_filter(uh, &hdr->lf);
962 	vdec_vp9_slice_setup_quantization(uh, &hdr->quant);
963 	vdec_vp9_slice_setup_segmentation(uh, &hdr->seg);
964 	ret = vdec_vp9_slice_setup_tile(vsi, hdr);
965 	if (ret)
966 		return ret;
967 	vdec_vp9_slice_setup_state(vsi);
968 
969 	/* core stage needs buffer index to get ref y/c ... */
970 	vdec_vp9_slice_setup_ref_idx(pfc, hdr);
971 
972 	pfc->seq = instance->seq;
973 	instance->seq++;
974 
975 	return 0;
976 }
977 
vdec_vp9_slice_setup_lat_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi,struct mtk_vcodec_mem * bs,struct vdec_lat_buf * lat_buf)978 static int vdec_vp9_slice_setup_lat_buffer(struct vdec_vp9_slice_instance *instance,
979 					   struct vdec_vp9_slice_vsi *vsi,
980 					   struct mtk_vcodec_mem *bs,
981 					   struct vdec_lat_buf *lat_buf)
982 {
983 	int i;
984 
985 	vsi->bs.buf.dma_addr = bs->dma_addr;
986 	vsi->bs.buf.size = bs->size;
987 	vsi->bs.frame.dma_addr = bs->dma_addr;
988 	vsi->bs.frame.size = bs->size;
989 
990 	for (i = 0; i < 2; i++) {
991 		vsi->mv[i].dma_addr = instance->mv[i].dma_addr;
992 		vsi->mv[i].size = instance->mv[i].size;
993 	}
994 	for (i = 0; i < 2; i++) {
995 		vsi->seg[i].dma_addr = instance->seg[i].dma_addr;
996 		vsi->seg[i].size = instance->seg[i].size;
997 	}
998 	vsi->tile.dma_addr = instance->tile.dma_addr;
999 	vsi->tile.size = instance->tile.size;
1000 	vsi->prob.dma_addr = instance->prob.dma_addr;
1001 	vsi->prob.size = instance->prob.size;
1002 	vsi->counts.dma_addr = instance->counts.dma_addr;
1003 	vsi->counts.size = instance->counts.size;
1004 
1005 	vsi->ube.dma_addr = lat_buf->ctx->msg_queue.wdma_addr.dma_addr;
1006 	vsi->ube.size = lat_buf->ctx->msg_queue.wdma_addr.size;
1007 	vsi->trans.dma_addr = lat_buf->ctx->msg_queue.wdma_wptr_addr;
1008 	/* used to store trans end */
1009 	vsi->trans.dma_addr_end = lat_buf->ctx->msg_queue.wdma_rptr_addr;
1010 	vsi->err_map.dma_addr = lat_buf->wdma_err_addr.dma_addr;
1011 	vsi->err_map.size = lat_buf->wdma_err_addr.size;
1012 
1013 	vsi->row_info.buf = 0;
1014 	vsi->row_info.size = 0;
1015 
1016 	return 0;
1017 }
1018 
vdec_vp9_slice_setup_prob_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi)1019 static int vdec_vp9_slice_setup_prob_buffer(struct vdec_vp9_slice_instance *instance,
1020 					    struct vdec_vp9_slice_vsi *vsi)
1021 {
1022 	struct vdec_vp9_slice_frame_ctx *frame_ctx;
1023 	struct vdec_vp9_slice_uncompressed_header *uh;
1024 
1025 	uh = &vsi->frame.uh;
1026 
1027 	mtk_vdec_debug(instance->ctx, "ctx dirty %u idx %d\n",
1028 		       instance->dirty[uh->frame_context_idx],
1029 		       uh->frame_context_idx);
1030 
1031 	if (instance->dirty[uh->frame_context_idx])
1032 		frame_ctx = &instance->frame_ctx[uh->frame_context_idx];
1033 	else
1034 		frame_ctx = vdec_vp9_slice_default_frame_ctx;
1035 	memcpy(instance->prob.va, frame_ctx, sizeof(*frame_ctx));
1036 
1037 	return 0;
1038 }
1039 
vdec_vp9_slice_setup_seg_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi,struct mtk_vcodec_mem * buf)1040 static void vdec_vp9_slice_setup_seg_buffer(struct vdec_vp9_slice_instance *instance,
1041 					    struct vdec_vp9_slice_vsi *vsi,
1042 					    struct mtk_vcodec_mem *buf)
1043 {
1044 	struct vdec_vp9_slice_uncompressed_header *uh;
1045 
1046 	/* reset segment buffer */
1047 	uh = &vsi->frame.uh;
1048 	if (uh->frame_type == 0 ||
1049 	    uh->intra_only ||
1050 	    uh->error_resilient_mode ||
1051 	    uh->frame_width != instance->width ||
1052 	    uh->frame_height != instance->height) {
1053 		mtk_vdec_debug(instance->ctx, "reset seg\n");
1054 		memset(buf->va, 0, buf->size);
1055 	}
1056 }
1057 
1058 /*
1059  * parse tiles according to `6.4 Decode tiles syntax`
1060  * in "vp9-bitstream-specification"
1061  *
1062  * frame contains uncompress header, compressed header and several tiles.
1063  * this function parses tiles' position and size, stores them to tile buffer
1064  * for decoding.
1065  */
vdec_vp9_slice_setup_tile_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi,struct mtk_vcodec_mem * bs)1066 static int vdec_vp9_slice_setup_tile_buffer(struct vdec_vp9_slice_instance *instance,
1067 					    struct vdec_vp9_slice_vsi *vsi,
1068 					    struct mtk_vcodec_mem *bs)
1069 {
1070 	struct vdec_vp9_slice_uncompressed_header *uh;
1071 	unsigned int rows_log2;
1072 	unsigned int cols_log2;
1073 	unsigned int rows;
1074 	unsigned int cols;
1075 	unsigned int mi_row;
1076 	unsigned int mi_col;
1077 	unsigned int offset;
1078 	unsigned int pa;
1079 	unsigned int size;
1080 	struct vdec_vp9_slice_tiles *tiles;
1081 	unsigned char *pos;
1082 	unsigned char *end;
1083 	unsigned char *va;
1084 	unsigned int *tb;
1085 	int i;
1086 	int j;
1087 
1088 	uh = &vsi->frame.uh;
1089 	rows_log2 = uh->tile_rows_log2;
1090 	cols_log2 = uh->tile_cols_log2;
1091 	rows = 1 << rows_log2;
1092 	cols = 1 << cols_log2;
1093 
1094 	if (rows > 4 || cols > 64) {
1095 		mtk_vdec_err(instance->ctx, "tile_rows %u tile_cols %u\n", rows, cols);
1096 		return -EINVAL;
1097 	}
1098 
1099 	offset = uh->uncompressed_header_size +
1100 		uh->header_size_in_bytes;
1101 	if (bs->size <= offset) {
1102 		mtk_vdec_err(instance->ctx, "bs size %zu tile offset %u\n", bs->size, offset);
1103 		return -EINVAL;
1104 	}
1105 
1106 	tiles = &vsi->frame.tiles;
1107 	/* setup tile buffer */
1108 
1109 	va = (unsigned char *)bs->va;
1110 	pos = va + offset;
1111 	end = va + bs->size;
1112 	/* truncated */
1113 	pa = (unsigned int)bs->dma_addr + offset;
1114 	tb = instance->tile.va;
1115 	for (i = 0; i < rows; i++) {
1116 		for (j = 0; j < cols; j++) {
1117 			if (i == rows - 1 &&
1118 			    j == cols - 1) {
1119 				size = (unsigned int)(end - pos);
1120 			} else {
1121 				if (end - pos < 4)
1122 					return -EINVAL;
1123 
1124 				size = (pos[0] << 24) | (pos[1] << 16) |
1125 					(pos[2] << 8) | pos[3];
1126 				pos += 4;
1127 				pa += 4;
1128 				offset += 4;
1129 				if (end - pos < size)
1130 					return -EINVAL;
1131 			}
1132 			tiles->size[i][j] = size;
1133 			if (tiles->mi_rows[i]) {
1134 				*tb++ = (size << 3) + ((offset << 3) & 0x7f);
1135 				*tb++ = pa & ~0xf;
1136 				*tb++ = (pa << 3) & 0x7f;
1137 				mi_row = (tiles->mi_rows[i] - 1) & 0x1ff;
1138 				mi_col = (tiles->mi_cols[j] - 1) & 0x3f;
1139 				*tb++ = (mi_row << 6) + mi_col;
1140 			}
1141 			pos += size;
1142 			pa += size;
1143 			offset += size;
1144 		}
1145 	}
1146 
1147 	return 0;
1148 }
1149 
vdec_vp9_slice_setup_lat(struct vdec_vp9_slice_instance * instance,struct mtk_vcodec_mem * bs,struct vdec_lat_buf * lat_buf,struct vdec_vp9_slice_pfc * pfc)1150 static int vdec_vp9_slice_setup_lat(struct vdec_vp9_slice_instance *instance,
1151 				    struct mtk_vcodec_mem *bs,
1152 				    struct vdec_lat_buf *lat_buf,
1153 				    struct vdec_vp9_slice_pfc *pfc)
1154 {
1155 	struct vdec_vp9_slice_vsi *vsi = &pfc->vsi;
1156 	int ret;
1157 
1158 	ret = vdec_vp9_slice_setup_lat_from_src_buf(instance, lat_buf);
1159 	if (ret)
1160 		goto err;
1161 
1162 	ret = vdec_vp9_slice_setup_pfc(instance, pfc);
1163 	if (ret)
1164 		goto err;
1165 
1166 	ret = vdec_vp9_slice_alloc_working_buffer(instance, vsi);
1167 	if (ret)
1168 		goto err;
1169 
1170 	ret = vdec_vp9_slice_setup_lat_buffer(instance, vsi, bs, lat_buf);
1171 	if (ret)
1172 		goto err;
1173 
1174 	vdec_vp9_slice_setup_seg_buffer(instance, vsi, &instance->seg[0]);
1175 
1176 	/* setup prob/tile buffers for LAT */
1177 
1178 	ret = vdec_vp9_slice_setup_prob_buffer(instance, vsi);
1179 	if (ret)
1180 		goto err;
1181 
1182 	ret = vdec_vp9_slice_setup_tile_buffer(instance, vsi, bs);
1183 	if (ret)
1184 		goto err;
1185 
1186 	return 0;
1187 
1188 err:
1189 	return ret;
1190 }
1191 
1192 static
vdec_vp9_slice_map_counts_eob_coef(unsigned int i,unsigned int j,unsigned int k,struct vdec_vp9_slice_frame_counts * counts,struct v4l2_vp9_frame_symbol_counts * counts_helper)1193 void vdec_vp9_slice_map_counts_eob_coef(unsigned int i, unsigned int j, unsigned int k,
1194 					struct vdec_vp9_slice_frame_counts *counts,
1195 					struct v4l2_vp9_frame_symbol_counts *counts_helper)
1196 {
1197 	u32 l = 0, m;
1198 
1199 	/*
1200 	 * helper eo -> mtk eo
1201 	 * helpre e1 -> mtk c3
1202 	 * helper c0 -> c0
1203 	 * helper c1 -> c1
1204 	 * helper c2 -> c2
1205 	 */
1206 	for (m = 0; m < 3; m++) {
1207 		counts_helper->coeff[i][j][k][l][m] =
1208 			(u32 (*)[3]) & counts->coef_probs[i][j][k].band_0[m];
1209 		counts_helper->eob[i][j][k][l][m][0] =
1210 			&counts->eob_branch[i][j][k].band_0[m];
1211 		counts_helper->eob[i][j][k][l][m][1] =
1212 			&counts->coef_probs[i][j][k].band_0[m][3];
1213 	}
1214 
1215 	for (l = 1; l < 6; l++) {
1216 		for (m = 0; m < 6; m++) {
1217 			counts_helper->coeff[i][j][k][l][m] =
1218 				(u32 (*)[3]) & counts->coef_probs[i][j][k].band_1_5[l - 1][m];
1219 			counts_helper->eob[i][j][k][l][m][0] =
1220 				&counts->eob_branch[i][j][k].band_1_5[l - 1][m];
1221 			counts_helper->eob[i][j][k][l][m][1] =
1222 				&counts->coef_probs[i][j][k].band_1_5[l - 1][m][3];
1223 		}
1224 	}
1225 }
1226 
vdec_vp9_slice_counts_map_helper(struct vdec_vp9_slice_counts_map * counts_map,struct vdec_vp9_slice_frame_counts * counts,struct v4l2_vp9_frame_symbol_counts * counts_helper)1227 static void vdec_vp9_slice_counts_map_helper(struct vdec_vp9_slice_counts_map *counts_map,
1228 					     struct vdec_vp9_slice_frame_counts *counts,
1229 					     struct v4l2_vp9_frame_symbol_counts *counts_helper)
1230 {
1231 	int i, j, k;
1232 
1233 	counts_helper->partition = &counts->partition;
1234 	counts_helper->intra_inter = &counts->intra_inter;
1235 	counts_helper->tx32p = &counts->tx_p32x32;
1236 	counts_helper->tx16p = &counts->tx_p16x16;
1237 	counts_helper->tx8p = &counts->tx_p8x8;
1238 	counts_helper->uv_mode = &counts->uv_mode;
1239 
1240 	counts_helper->comp = &counts->comp_inter;
1241 	counts_helper->comp_ref = &counts->comp_ref;
1242 	counts_helper->single_ref = &counts->single_ref;
1243 	counts_helper->mv_mode = &counts->inter_mode;
1244 	counts_helper->mv_joint = &counts->joint;
1245 
1246 	for (i = 0; i < ARRAY_SIZE(counts_map->skip); i++)
1247 		memcpy(counts_map->skip[i], counts->skip[i],
1248 		       sizeof(counts_map->skip[0]));
1249 	counts_helper->skip = &counts_map->skip;
1250 
1251 	for (i = 0; i < ARRAY_SIZE(counts_map->y_mode); i++)
1252 		memcpy(counts_map->y_mode[i], counts->y_mode[i],
1253 		       sizeof(counts_map->y_mode[0]));
1254 	counts_helper->y_mode = &counts_map->y_mode;
1255 
1256 	for (i = 0; i < ARRAY_SIZE(counts_map->filter); i++)
1257 		memcpy(counts_map->filter[i], counts->switchable_interp[i],
1258 		       sizeof(counts_map->filter[0]));
1259 	counts_helper->filter = &counts_map->filter;
1260 
1261 	for (i = 0; i < ARRAY_SIZE(counts_map->sign); i++)
1262 		memcpy(counts_map->sign[i], counts->mvcomp[i].sign,
1263 		       sizeof(counts_map->sign[0]));
1264 	counts_helper->sign = &counts_map->sign;
1265 
1266 	for (i = 0; i < ARRAY_SIZE(counts_map->classes); i++)
1267 		memcpy(counts_map->classes[i], counts->mvcomp[i].classes,
1268 		       sizeof(counts_map->classes[0]));
1269 	counts_helper->classes = &counts_map->classes;
1270 
1271 	for (i = 0; i < ARRAY_SIZE(counts_map->class0); i++)
1272 		memcpy(counts_map->class0[i], counts->mvcomp[i].class0,
1273 		       sizeof(counts_map->class0[0]));
1274 	counts_helper->class0 = &counts_map->class0;
1275 
1276 	for (i = 0; i < ARRAY_SIZE(counts_map->bits); i++)
1277 		for (j = 0; j < ARRAY_SIZE(counts_map->bits[0]); j++)
1278 			memcpy(counts_map->bits[i][j], counts->mvcomp[i].bits[j],
1279 			       sizeof(counts_map->bits[0][0]));
1280 	counts_helper->bits = &counts_map->bits;
1281 
1282 	for (i = 0; i < ARRAY_SIZE(counts_map->class0_fp); i++)
1283 		for (j = 0; j < ARRAY_SIZE(counts_map->class0_fp[0]); j++)
1284 			memcpy(counts_map->class0_fp[i][j], counts->mvcomp[i].class0_fp[j],
1285 			       sizeof(counts_map->class0_fp[0][0]));
1286 	counts_helper->class0_fp = &counts_map->class0_fp;
1287 
1288 	for (i = 0; i < ARRAY_SIZE(counts_map->fp); i++)
1289 		memcpy(counts_map->fp[i], counts->mvcomp[i].fp,
1290 		       sizeof(counts_map->fp[0]));
1291 	counts_helper->fp = &counts_map->fp;
1292 
1293 	for (i = 0; i < ARRAY_SIZE(counts_map->class0_hp); i++)
1294 		memcpy(counts_map->class0_hp[i], counts->mvcomp[i].class0_hp,
1295 		       sizeof(counts_map->class0_hp[0]));
1296 	counts_helper->class0_hp = &counts_map->class0_hp;
1297 
1298 	for (i = 0; i < ARRAY_SIZE(counts_map->hp); i++)
1299 		memcpy(counts_map->hp[i], counts->mvcomp[i].hp, sizeof(counts_map->hp[0]));
1300 
1301 	counts_helper->hp = &counts_map->hp;
1302 
1303 	for (i = 0; i < 4; i++)
1304 		for (j = 0; j < 2; j++)
1305 			for (k = 0; k < 2; k++)
1306 				vdec_vp9_slice_map_counts_eob_coef(i, j, k, counts, counts_helper);
1307 }
1308 
vdec_vp9_slice_map_to_coef(unsigned int i,unsigned int j,unsigned int k,struct vdec_vp9_slice_frame_ctx * frame_ctx,struct v4l2_vp9_frame_context * frame_ctx_helper)1309 static void vdec_vp9_slice_map_to_coef(unsigned int i, unsigned int j, unsigned int k,
1310 				       struct vdec_vp9_slice_frame_ctx *frame_ctx,
1311 				       struct v4l2_vp9_frame_context *frame_ctx_helper)
1312 {
1313 	u32 l, m;
1314 
1315 	for (l = 0; l < ARRAY_SIZE(frame_ctx_helper->coef[0][0][0]); l++) {
1316 		for (m = 0; m < VP9_BAND_6(l); m++) {
1317 			memcpy(frame_ctx_helper->coef[i][j][k][l][m],
1318 			       frame_ctx->coef_probs[i][j][k][l].probs[m],
1319 			       sizeof(frame_ctx_helper->coef[i][j][k][l][0]));
1320 		}
1321 	}
1322 }
1323 
vdec_vp9_slice_map_from_coef(unsigned int i,unsigned int j,unsigned int k,struct vdec_vp9_slice_frame_ctx * frame_ctx,struct v4l2_vp9_frame_context * frame_ctx_helper)1324 static void vdec_vp9_slice_map_from_coef(unsigned int i, unsigned int j, unsigned int k,
1325 					 struct vdec_vp9_slice_frame_ctx *frame_ctx,
1326 					 struct v4l2_vp9_frame_context *frame_ctx_helper)
1327 {
1328 	u32 l, m;
1329 
1330 	for (l = 0; l < ARRAY_SIZE(frame_ctx_helper->coef[0][0][0]); l++) {
1331 		for (m = 0; m < VP9_BAND_6(l); m++) {
1332 			memcpy(frame_ctx->coef_probs[i][j][k][l].probs[m],
1333 			       frame_ctx_helper->coef[i][j][k][l][m],
1334 			       sizeof(frame_ctx_helper->coef[i][j][k][l][0]));
1335 		}
1336 	}
1337 }
1338 
1339 static
vdec_vp9_slice_framectx_map_helper(bool frame_is_intra,struct vdec_vp9_slice_frame_ctx * pre_frame_ctx,struct vdec_vp9_slice_frame_ctx * frame_ctx,struct v4l2_vp9_frame_context * frame_ctx_helper)1340 void vdec_vp9_slice_framectx_map_helper(bool frame_is_intra,
1341 					struct vdec_vp9_slice_frame_ctx *pre_frame_ctx,
1342 					struct vdec_vp9_slice_frame_ctx *frame_ctx,
1343 					struct v4l2_vp9_frame_context *frame_ctx_helper)
1344 {
1345 	struct v4l2_vp9_frame_mv_context *mv = &frame_ctx_helper->mv;
1346 	u32 i, j, k;
1347 
1348 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->coef); i++)
1349 		for (j = 0; j < ARRAY_SIZE(frame_ctx_helper->coef[0]); j++)
1350 			for (k = 0; k < ARRAY_SIZE(frame_ctx_helper->coef[0][0]); k++)
1351 				vdec_vp9_slice_map_to_coef(i, j, k, pre_frame_ctx,
1352 							   frame_ctx_helper);
1353 
1354 	/*
1355 	 * use previous prob when frame is not intra or
1356 	 * we should use the prob updated by the compressed header parse
1357 	 */
1358 	if (!frame_is_intra)
1359 		frame_ctx = pre_frame_ctx;
1360 
1361 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx8); i++)
1362 		memcpy(frame_ctx_helper->tx8[i], frame_ctx->tx_p8x8[i],
1363 		       sizeof(frame_ctx_helper->tx8[0]));
1364 
1365 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx16); i++)
1366 		memcpy(frame_ctx_helper->tx16[i], frame_ctx->tx_p16x16[i],
1367 		       sizeof(frame_ctx_helper->tx16[0]));
1368 
1369 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx32); i++)
1370 		memcpy(frame_ctx_helper->tx32[i], frame_ctx->tx_p32x32[i],
1371 		       sizeof(frame_ctx_helper->tx32[0]));
1372 
1373 	memcpy(frame_ctx_helper->skip, frame_ctx->skip_probs, sizeof(frame_ctx_helper->skip));
1374 
1375 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->inter_mode); i++)
1376 		memcpy(frame_ctx_helper->inter_mode[i], frame_ctx->inter_mode_probs[i],
1377 		       sizeof(frame_ctx_helper->inter_mode[0]));
1378 
1379 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->interp_filter); i++)
1380 		memcpy(frame_ctx_helper->interp_filter[i], frame_ctx->switch_interp_prob[i],
1381 		       sizeof(frame_ctx_helper->interp_filter[0]));
1382 
1383 	memcpy(frame_ctx_helper->is_inter, frame_ctx->intra_inter_prob,
1384 	       sizeof(frame_ctx_helper->is_inter));
1385 
1386 	memcpy(frame_ctx_helper->comp_mode, frame_ctx->comp_inter_prob,
1387 	       sizeof(frame_ctx_helper->comp_mode));
1388 
1389 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->single_ref); i++)
1390 		memcpy(frame_ctx_helper->single_ref[i], frame_ctx->single_ref_prob[i],
1391 		       sizeof(frame_ctx_helper->single_ref[0]));
1392 
1393 	memcpy(frame_ctx_helper->comp_ref, frame_ctx->comp_ref_prob,
1394 	       sizeof(frame_ctx_helper->comp_ref));
1395 
1396 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->y_mode); i++)
1397 		memcpy(frame_ctx_helper->y_mode[i], frame_ctx->y_mode_prob[i],
1398 		       sizeof(frame_ctx_helper->y_mode[0]));
1399 
1400 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->uv_mode); i++)
1401 		memcpy(frame_ctx_helper->uv_mode[i], frame_ctx->uv_mode_prob[i],
1402 		       sizeof(frame_ctx_helper->uv_mode[0]));
1403 
1404 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->partition); i++)
1405 		memcpy(frame_ctx_helper->partition[i], frame_ctx->partition_prob[i],
1406 		       sizeof(frame_ctx_helper->partition[0]));
1407 
1408 	memcpy(mv->joint, frame_ctx->joint, sizeof(mv->joint));
1409 
1410 	for (i = 0; i < ARRAY_SIZE(mv->sign); i++)
1411 		mv->sign[i] = frame_ctx->sign_classes[i].sign;
1412 
1413 	for (i = 0; i < ARRAY_SIZE(mv->classes); i++)
1414 		memcpy(mv->classes[i], frame_ctx->sign_classes[i].classes,
1415 		       sizeof(mv->classes[i]));
1416 
1417 	for (i = 0; i < ARRAY_SIZE(mv->class0_bit); i++)
1418 		mv->class0_bit[i] = frame_ctx->class0_bits[i].class0[0];
1419 
1420 	for (i = 0; i < ARRAY_SIZE(mv->bits); i++)
1421 		memcpy(mv->bits[i], frame_ctx->class0_bits[i].bits, sizeof(mv->bits[0]));
1422 
1423 	for (i = 0; i < ARRAY_SIZE(mv->class0_fr); i++)
1424 		for (j = 0; j < ARRAY_SIZE(mv->class0_fr[0]); j++)
1425 			memcpy(mv->class0_fr[i][j], frame_ctx->class0_fp_hp[i].class0_fp[j],
1426 			       sizeof(mv->class0_fr[0][0]));
1427 
1428 	for (i = 0; i < ARRAY_SIZE(mv->fr); i++)
1429 		memcpy(mv->fr[i], frame_ctx->class0_fp_hp[i].fp, sizeof(mv->fr[0]));
1430 
1431 	for (i = 0; i < ARRAY_SIZE(mv->class0_hp); i++)
1432 		mv->class0_hp[i] = frame_ctx->class0_fp_hp[i].class0_hp;
1433 
1434 	for (i = 0; i < ARRAY_SIZE(mv->hp); i++)
1435 		mv->hp[i] = frame_ctx->class0_fp_hp[i].hp;
1436 }
1437 
vdec_vp9_slice_helper_map_framectx(struct v4l2_vp9_frame_context * frame_ctx_helper,struct vdec_vp9_slice_frame_ctx * frame_ctx)1438 static void vdec_vp9_slice_helper_map_framectx(struct v4l2_vp9_frame_context *frame_ctx_helper,
1439 					       struct vdec_vp9_slice_frame_ctx *frame_ctx)
1440 {
1441 	struct v4l2_vp9_frame_mv_context *mv = &frame_ctx_helper->mv;
1442 	u32 i, j, k;
1443 
1444 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx8); i++)
1445 		memcpy(frame_ctx->tx_p8x8[i], frame_ctx_helper->tx8[i],
1446 		       sizeof(frame_ctx_helper->tx8[0]));
1447 
1448 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx16); i++)
1449 		memcpy(frame_ctx->tx_p16x16[i], frame_ctx_helper->tx16[i],
1450 		       sizeof(frame_ctx_helper->tx16[0]));
1451 
1452 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->tx32); i++)
1453 		memcpy(frame_ctx->tx_p32x32[i], frame_ctx_helper->tx32[i],
1454 		       sizeof(frame_ctx_helper->tx32[0]));
1455 
1456 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->coef); i++)
1457 		for (j = 0; j < ARRAY_SIZE(frame_ctx_helper->coef[0]); j++)
1458 			for (k = 0; k < ARRAY_SIZE(frame_ctx_helper->coef[0][0]); k++)
1459 				vdec_vp9_slice_map_from_coef(i, j, k, frame_ctx,
1460 							     frame_ctx_helper);
1461 
1462 	memcpy(frame_ctx->skip_probs, frame_ctx_helper->skip, sizeof(frame_ctx_helper->skip));
1463 
1464 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->inter_mode); i++)
1465 		memcpy(frame_ctx->inter_mode_probs[i], frame_ctx_helper->inter_mode[i],
1466 		       sizeof(frame_ctx_helper->inter_mode[0]));
1467 
1468 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->interp_filter); i++)
1469 		memcpy(frame_ctx->switch_interp_prob[i], frame_ctx_helper->interp_filter[i],
1470 		       sizeof(frame_ctx_helper->interp_filter[0]));
1471 
1472 	memcpy(frame_ctx->intra_inter_prob, frame_ctx_helper->is_inter,
1473 	       sizeof(frame_ctx_helper->is_inter));
1474 
1475 	memcpy(frame_ctx->comp_inter_prob, frame_ctx_helper->comp_mode,
1476 	       sizeof(frame_ctx_helper->comp_mode));
1477 
1478 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->single_ref); i++)
1479 		memcpy(frame_ctx->single_ref_prob[i], frame_ctx_helper->single_ref[i],
1480 		       sizeof(frame_ctx_helper->single_ref[0]));
1481 
1482 	memcpy(frame_ctx->comp_ref_prob, frame_ctx_helper->comp_ref,
1483 	       sizeof(frame_ctx_helper->comp_ref));
1484 
1485 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->y_mode); i++)
1486 		memcpy(frame_ctx->y_mode_prob[i], frame_ctx_helper->y_mode[i],
1487 		       sizeof(frame_ctx_helper->y_mode[0]));
1488 
1489 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->uv_mode); i++)
1490 		memcpy(frame_ctx->uv_mode_prob[i], frame_ctx_helper->uv_mode[i],
1491 		       sizeof(frame_ctx_helper->uv_mode[0]));
1492 
1493 	for (i = 0; i < ARRAY_SIZE(frame_ctx_helper->partition); i++)
1494 		memcpy(frame_ctx->partition_prob[i], frame_ctx_helper->partition[i],
1495 		       sizeof(frame_ctx_helper->partition[0]));
1496 
1497 	memcpy(frame_ctx->joint, mv->joint, sizeof(mv->joint));
1498 
1499 	for (i = 0; i < ARRAY_SIZE(mv->sign); i++)
1500 		frame_ctx->sign_classes[i].sign = mv->sign[i];
1501 
1502 	for (i = 0; i < ARRAY_SIZE(mv->classes); i++)
1503 		memcpy(frame_ctx->sign_classes[i].classes, mv->classes[i],
1504 		       sizeof(mv->classes[i]));
1505 
1506 	for (i = 0; i < ARRAY_SIZE(mv->class0_bit); i++)
1507 		frame_ctx->class0_bits[i].class0[0] = mv->class0_bit[i];
1508 
1509 	for (i = 0; i < ARRAY_SIZE(mv->bits); i++)
1510 		memcpy(frame_ctx->class0_bits[i].bits, mv->bits[i], sizeof(mv->bits[0]));
1511 
1512 	for (i = 0; i < ARRAY_SIZE(mv->class0_fr); i++)
1513 		for (j = 0; j < ARRAY_SIZE(mv->class0_fr[0]); j++)
1514 			memcpy(frame_ctx->class0_fp_hp[i].class0_fp[j], mv->class0_fr[i][j],
1515 			       sizeof(mv->class0_fr[0][0]));
1516 
1517 	for (i = 0; i < ARRAY_SIZE(mv->fr); i++)
1518 		memcpy(frame_ctx->class0_fp_hp[i].fp, mv->fr[i], sizeof(mv->fr[0]));
1519 
1520 	for (i = 0; i < ARRAY_SIZE(mv->class0_hp); i++)
1521 		frame_ctx->class0_fp_hp[i].class0_hp = mv->class0_hp[i];
1522 
1523 	for (i = 0; i < ARRAY_SIZE(mv->hp); i++)
1524 		frame_ctx->class0_fp_hp[i].hp = mv->hp[i];
1525 }
1526 
vdec_vp9_slice_update_prob(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_vsi * vsi)1527 static int vdec_vp9_slice_update_prob(struct vdec_vp9_slice_instance *instance,
1528 				      struct vdec_vp9_slice_vsi *vsi)
1529 {
1530 	struct vdec_vp9_slice_frame_ctx *pre_frame_ctx;
1531 	struct v4l2_vp9_frame_context *pre_frame_ctx_helper;
1532 	struct vdec_vp9_slice_frame_ctx *frame_ctx;
1533 	struct vdec_vp9_slice_frame_counts *counts;
1534 	struct v4l2_vp9_frame_symbol_counts *counts_helper;
1535 	struct vdec_vp9_slice_uncompressed_header *uh;
1536 	bool frame_is_intra;
1537 	bool use_128;
1538 
1539 	uh = &vsi->frame.uh;
1540 	pre_frame_ctx = &instance->frame_ctx[uh->frame_context_idx];
1541 	pre_frame_ctx_helper = &instance->frame_ctx_helper;
1542 	frame_ctx = (struct vdec_vp9_slice_frame_ctx *)instance->prob.va;
1543 	counts = (struct vdec_vp9_slice_frame_counts *)instance->counts.va;
1544 	counts_helper = &instance->counts_helper;
1545 
1546 	if (!uh->refresh_frame_context)
1547 		return 0;
1548 
1549 	if (!uh->frame_parallel_decoding_mode) {
1550 		vdec_vp9_slice_counts_map_helper(&instance->counts_map, counts, counts_helper);
1551 
1552 		frame_is_intra = !vsi->frame.uh.frame_type || vsi->frame.uh.intra_only;
1553 		/* check default prob */
1554 		if (!instance->dirty[uh->frame_context_idx])
1555 			vdec_vp9_slice_framectx_map_helper(frame_is_intra,
1556 							   vdec_vp9_slice_default_frame_ctx,
1557 							   frame_ctx,
1558 							   pre_frame_ctx_helper);
1559 		else
1560 			vdec_vp9_slice_framectx_map_helper(frame_is_intra,
1561 							   pre_frame_ctx,
1562 							   frame_ctx,
1563 							   pre_frame_ctx_helper);
1564 
1565 		use_128 = !frame_is_intra && !vsi->frame.uh.last_frame_type;
1566 		v4l2_vp9_adapt_coef_probs(pre_frame_ctx_helper,
1567 					  counts_helper,
1568 					  use_128,
1569 					  frame_is_intra);
1570 		if (!frame_is_intra)
1571 			v4l2_vp9_adapt_noncoef_probs(pre_frame_ctx_helper,
1572 						     counts_helper,
1573 						     V4L2_VP9_REFERENCE_MODE_SINGLE_REFERENCE,
1574 						     vsi->frame.uh.interpolation_filter,
1575 						     vsi->frame.ch.tx_mode,
1576 						     vsi->frame.uh.allow_high_precision_mv ?
1577 						     V4L2_VP9_FRAME_FLAG_ALLOW_HIGH_PREC_MV : 0);
1578 		vdec_vp9_slice_helper_map_framectx(pre_frame_ctx_helper, pre_frame_ctx);
1579 	} else {
1580 		memcpy(pre_frame_ctx, frame_ctx, sizeof(*frame_ctx));
1581 	}
1582 
1583 	instance->dirty[uh->frame_context_idx] = 1;
1584 
1585 	return 0;
1586 }
1587 
vdec_vp9_slice_update_single(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_pfc * pfc)1588 static int vdec_vp9_slice_update_single(struct vdec_vp9_slice_instance *instance,
1589 					struct vdec_vp9_slice_pfc *pfc)
1590 {
1591 	struct vdec_vp9_slice_vsi *vsi;
1592 
1593 	vsi = &pfc->vsi;
1594 	memcpy(&pfc->state[0], &vsi->state, sizeof(vsi->state));
1595 
1596 	mtk_vdec_debug(instance->ctx, "Frame %u Y_CRC %08x %08x %08x %08x\n",
1597 		       pfc->seq, vsi->state.crc[0], vsi->state.crc[1],
1598 		       vsi->state.crc[2], vsi->state.crc[3]);
1599 	mtk_vdec_debug(instance->ctx, "Frame %u C_CRC %08x %08x %08x %08x\n",
1600 		       pfc->seq, vsi->state.crc[4], vsi->state.crc[5],
1601 		       vsi->state.crc[6], vsi->state.crc[7]);
1602 
1603 	vdec_vp9_slice_update_prob(instance, vsi);
1604 
1605 	instance->width = vsi->frame.uh.frame_width;
1606 	instance->height = vsi->frame.uh.frame_height;
1607 	instance->frame_type = vsi->frame.uh.frame_type;
1608 	instance->show_frame = vsi->frame.uh.show_frame;
1609 
1610 	return 0;
1611 }
1612 
vdec_vp9_slice_update_lat(struct vdec_vp9_slice_instance * instance,struct vdec_lat_buf * lat_buf,struct vdec_vp9_slice_pfc * pfc)1613 static int vdec_vp9_slice_update_lat(struct vdec_vp9_slice_instance *instance,
1614 				     struct vdec_lat_buf *lat_buf,
1615 				     struct vdec_vp9_slice_pfc *pfc)
1616 {
1617 	struct vdec_vp9_slice_vsi *vsi;
1618 
1619 	vsi = &pfc->vsi;
1620 	memcpy(&pfc->state[0], &vsi->state, sizeof(vsi->state));
1621 
1622 	mtk_vdec_debug(instance->ctx, "Frame %u LAT CRC 0x%08x %lx %lx\n",
1623 		       pfc->seq, vsi->state.crc[0],
1624 		       (unsigned long)vsi->trans.dma_addr,
1625 		       (unsigned long)vsi->trans.dma_addr_end);
1626 
1627 	/* buffer full, need to re-decode */
1628 	if (vsi->state.full) {
1629 		/* buffer not enough */
1630 		if (vsi->trans.dma_addr_end - vsi->trans.dma_addr ==
1631 			vsi->ube.size)
1632 			return -ENOMEM;
1633 		return -EAGAIN;
1634 	}
1635 
1636 	vdec_vp9_slice_update_prob(instance, vsi);
1637 
1638 	instance->width = vsi->frame.uh.frame_width;
1639 	instance->height = vsi->frame.uh.frame_height;
1640 	instance->frame_type = vsi->frame.uh.frame_type;
1641 	instance->show_frame = vsi->frame.uh.show_frame;
1642 
1643 	return 0;
1644 }
1645 
vdec_vp9_slice_setup_core_to_dst_buf(struct vdec_vp9_slice_instance * instance,struct vdec_lat_buf * lat_buf)1646 static int vdec_vp9_slice_setup_core_to_dst_buf(struct vdec_vp9_slice_instance *instance,
1647 						struct vdec_lat_buf *lat_buf)
1648 {
1649 	struct vb2_v4l2_buffer *dst;
1650 
1651 	dst = v4l2_m2m_next_dst_buf(instance->ctx->m2m_ctx);
1652 	if (!dst)
1653 		return -EINVAL;
1654 
1655 	v4l2_m2m_buf_copy_metadata(&lat_buf->ts_info, dst, true);
1656 	return 0;
1657 }
1658 
vdec_vp9_slice_setup_core_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_pfc * pfc,struct vdec_vp9_slice_vsi * vsi,struct vdec_fb * fb,struct vdec_lat_buf * lat_buf)1659 static int vdec_vp9_slice_setup_core_buffer(struct vdec_vp9_slice_instance *instance,
1660 					    struct vdec_vp9_slice_pfc *pfc,
1661 					    struct vdec_vp9_slice_vsi *vsi,
1662 					    struct vdec_fb *fb,
1663 					    struct vdec_lat_buf *lat_buf)
1664 {
1665 	struct vb2_buffer *vb;
1666 	struct vb2_queue *vq;
1667 	struct vdec_vp9_slice_reference *ref;
1668 	int plane;
1669 	int size;
1670 	int w;
1671 	int h;
1672 	int i;
1673 
1674 	plane = instance->ctx->q_data[MTK_Q_DATA_DST].fmt->num_planes;
1675 	w = vsi->frame.uh.frame_width;
1676 	h = vsi->frame.uh.frame_height;
1677 	size = ALIGN(w, 64) * ALIGN(h, 64);
1678 
1679 	/* frame buffer */
1680 	vsi->fb.y.dma_addr = fb->base_y.dma_addr;
1681 	if (plane == 1)
1682 		vsi->fb.c.dma_addr = fb->base_y.dma_addr + size;
1683 	else
1684 		vsi->fb.c.dma_addr = fb->base_c.dma_addr;
1685 
1686 	/* reference buffers */
1687 	vq = v4l2_m2m_get_vq(instance->ctx->m2m_ctx,
1688 			     V4L2_BUF_TYPE_VIDEO_CAPTURE_MPLANE);
1689 	if (!vq)
1690 		return -EINVAL;
1691 
1692 	/* get current output buffer */
1693 	vb = &v4l2_m2m_next_dst_buf(instance->ctx->m2m_ctx)->vb2_buf;
1694 	if (!vb)
1695 		return -EINVAL;
1696 
1697 	/* update internal buffer's width/height */
1698 	for (i = 0; i < vq->num_buffers; i++) {
1699 		if (vb == vq->bufs[i]) {
1700 			instance->dpb[i].width = w;
1701 			instance->dpb[i].height = h;
1702 			break;
1703 		}
1704 	}
1705 
1706 	/*
1707 	 * get buffer's width/height from instance
1708 	 * get buffer address from vb2buf
1709 	 */
1710 	for (i = 0; i < 3; i++) {
1711 		ref = &vsi->frame.ref[i];
1712 		vb = vb2_find_buffer(vq, pfc->ref_idx[i]);
1713 		if (!vb) {
1714 			ref->frame_width = w;
1715 			ref->frame_height = h;
1716 			memset(&vsi->ref[i], 0, sizeof(vsi->ref[i]));
1717 		} else {
1718 			int idx = vb->index;
1719 
1720 			ref->frame_width = instance->dpb[idx].width;
1721 			ref->frame_height = instance->dpb[idx].height;
1722 			vsi->ref[i].y.dma_addr =
1723 				vb2_dma_contig_plane_dma_addr(vb, 0);
1724 			if (plane == 1)
1725 				vsi->ref[i].c.dma_addr =
1726 					vsi->ref[i].y.dma_addr + size;
1727 			else
1728 				vsi->ref[i].c.dma_addr =
1729 					vb2_dma_contig_plane_dma_addr(vb, 1);
1730 		}
1731 	}
1732 
1733 	return 0;
1734 }
1735 
vdec_vp9_slice_setup_single_buffer(struct vdec_vp9_slice_instance * instance,struct vdec_vp9_slice_pfc * pfc,struct vdec_vp9_slice_vsi * vsi,struct mtk_vcodec_mem * bs,struct vdec_fb * fb)1736 static void vdec_vp9_slice_setup_single_buffer(struct vdec_vp9_slice_instance *instance,
1737 					       struct vdec_vp9_slice_pfc *pfc,
1738 					       struct vdec_vp9_slice_vsi *vsi,
1739 					       struct mtk_vcodec_mem *bs,
1740 					       struct vdec_fb *fb)
1741 {
1742 	int i;
1743 
1744 	vsi->bs.buf.dma_addr = bs->dma_addr;
1745 	vsi->bs.buf.size = bs->size;
1746 	vsi->bs.frame.dma_addr = bs->dma_addr;
1747 	vsi->bs.frame.size = bs->size;
1748 
1749 	for (i = 0; i < 2; i++) {
1750 		vsi->mv[i].dma_addr = instance->mv[i].dma_addr;
1751 		vsi->mv[i].size = instance->mv[i].size;
1752 	}
1753 	for (i = 0; i < 2; i++) {
1754 		vsi->seg[i].dma_addr = instance->seg[i].dma_addr;
1755 		vsi->seg[i].size = instance->seg[i].size;
1756 	}
1757 	vsi->tile.dma_addr = instance->tile.dma_addr;
1758 	vsi->tile.size = instance->tile.size;
1759 	vsi->prob.dma_addr = instance->prob.dma_addr;
1760 	vsi->prob.size = instance->prob.size;
1761 	vsi->counts.dma_addr = instance->counts.dma_addr;
1762 	vsi->counts.size = instance->counts.size;
1763 
1764 	vsi->row_info.buf = 0;
1765 	vsi->row_info.size = 0;
1766 
1767 	vdec_vp9_slice_setup_core_buffer(instance, pfc, vsi, fb, NULL);
1768 }
1769 
vdec_vp9_slice_setup_core(struct vdec_vp9_slice_instance * instance,struct vdec_fb * fb,struct vdec_lat_buf * lat_buf,struct vdec_vp9_slice_pfc * pfc)1770 static int vdec_vp9_slice_setup_core(struct vdec_vp9_slice_instance *instance,
1771 				     struct vdec_fb *fb,
1772 				     struct vdec_lat_buf *lat_buf,
1773 				     struct vdec_vp9_slice_pfc *pfc)
1774 {
1775 	struct vdec_vp9_slice_vsi *vsi = &pfc->vsi;
1776 	int ret;
1777 
1778 	vdec_vp9_slice_setup_state(vsi);
1779 
1780 	ret = vdec_vp9_slice_setup_core_to_dst_buf(instance, lat_buf);
1781 	if (ret)
1782 		goto err;
1783 
1784 	ret = vdec_vp9_slice_setup_core_buffer(instance, pfc, vsi, fb, lat_buf);
1785 	if (ret)
1786 		goto err;
1787 
1788 	vdec_vp9_slice_setup_seg_buffer(instance, vsi, &instance->seg[1]);
1789 
1790 	return 0;
1791 
1792 err:
1793 	return ret;
1794 }
1795 
vdec_vp9_slice_setup_single(struct vdec_vp9_slice_instance * instance,struct mtk_vcodec_mem * bs,struct vdec_fb * fb,struct vdec_vp9_slice_pfc * pfc)1796 static int vdec_vp9_slice_setup_single(struct vdec_vp9_slice_instance *instance,
1797 				       struct mtk_vcodec_mem *bs,
1798 				       struct vdec_fb *fb,
1799 				       struct vdec_vp9_slice_pfc *pfc)
1800 {
1801 	struct vdec_vp9_slice_vsi *vsi = &pfc->vsi;
1802 	int ret;
1803 
1804 	ret = vdec_vp9_slice_setup_single_from_src_to_dst(instance);
1805 	if (ret)
1806 		goto err;
1807 
1808 	ret = vdec_vp9_slice_setup_pfc(instance, pfc);
1809 	if (ret)
1810 		goto err;
1811 
1812 	ret = vdec_vp9_slice_alloc_working_buffer(instance, vsi);
1813 	if (ret)
1814 		goto err;
1815 
1816 	vdec_vp9_slice_setup_single_buffer(instance, pfc, vsi, bs, fb);
1817 	vdec_vp9_slice_setup_seg_buffer(instance, vsi, &instance->seg[0]);
1818 
1819 	ret = vdec_vp9_slice_setup_prob_buffer(instance, vsi);
1820 	if (ret)
1821 		goto err;
1822 
1823 	ret = vdec_vp9_slice_setup_tile_buffer(instance, vsi, bs);
1824 	if (ret)
1825 		goto err;
1826 
1827 	return 0;
1828 
1829 err:
1830 	return ret;
1831 }
1832 
vdec_vp9_slice_update_core(struct vdec_vp9_slice_instance * instance,struct vdec_lat_buf * lat_buf,struct vdec_vp9_slice_pfc * pfc)1833 static int vdec_vp9_slice_update_core(struct vdec_vp9_slice_instance *instance,
1834 				      struct vdec_lat_buf *lat_buf,
1835 				      struct vdec_vp9_slice_pfc *pfc)
1836 {
1837 	struct vdec_vp9_slice_vsi *vsi;
1838 
1839 	vsi = &pfc->vsi;
1840 	memcpy(&pfc->state[1], &vsi->state, sizeof(vsi->state));
1841 
1842 	mtk_vdec_debug(instance->ctx, "Frame %u Y_CRC %08x %08x %08x %08x\n",
1843 		       pfc->seq, vsi->state.crc[0], vsi->state.crc[1],
1844 		       vsi->state.crc[2], vsi->state.crc[3]);
1845 	mtk_vdec_debug(instance->ctx, "Frame %u C_CRC %08x %08x %08x %08x\n",
1846 		       pfc->seq, vsi->state.crc[4], vsi->state.crc[5],
1847 		       vsi->state.crc[6], vsi->state.crc[7]);
1848 
1849 	return 0;
1850 }
1851 
vdec_vp9_slice_init(struct mtk_vcodec_dec_ctx * ctx)1852 static int vdec_vp9_slice_init(struct mtk_vcodec_dec_ctx *ctx)
1853 {
1854 	struct vdec_vp9_slice_instance *instance;
1855 	struct vdec_vp9_slice_init_vsi *vsi;
1856 	int ret;
1857 
1858 	instance = kzalloc(sizeof(*instance), GFP_KERNEL);
1859 	if (!instance)
1860 		return -ENOMEM;
1861 
1862 	instance->ctx = ctx;
1863 	instance->vpu.id = SCP_IPI_VDEC_LAT;
1864 	instance->vpu.core_id = SCP_IPI_VDEC_CORE;
1865 	instance->vpu.ctx = ctx;
1866 	instance->vpu.codec_type = ctx->current_codec;
1867 
1868 	ret = vpu_dec_init(&instance->vpu);
1869 	if (ret) {
1870 		mtk_vdec_err(ctx, "failed to init vpu dec, ret %d\n", ret);
1871 		goto error_vpu_init;
1872 	}
1873 
1874 	/* init vsi and global flags */
1875 
1876 	vsi = instance->vpu.vsi;
1877 	if (!vsi) {
1878 		mtk_vdec_err(ctx, "failed to get VP9 vsi\n");
1879 		ret = -EINVAL;
1880 		goto error_vsi;
1881 	}
1882 	instance->init_vsi = vsi;
1883 	instance->core_vsi = mtk_vcodec_fw_map_dm_addr(ctx->dev->fw_handler,
1884 						       (u32)vsi->core_vsi);
1885 	if (!instance->core_vsi) {
1886 		mtk_vdec_err(ctx, "failed to get VP9 core vsi\n");
1887 		ret = -EINVAL;
1888 		goto error_vsi;
1889 	}
1890 
1891 	instance->irq = 1;
1892 
1893 	ret = vdec_vp9_slice_init_default_frame_ctx(instance);
1894 	if (ret)
1895 		goto error_default_frame_ctx;
1896 
1897 	ctx->drv_handle = instance;
1898 
1899 	return 0;
1900 
1901 error_default_frame_ctx:
1902 error_vsi:
1903 	vpu_dec_deinit(&instance->vpu);
1904 error_vpu_init:
1905 	kfree(instance);
1906 	return ret;
1907 }
1908 
vdec_vp9_slice_deinit(void * h_vdec)1909 static void vdec_vp9_slice_deinit(void *h_vdec)
1910 {
1911 	struct vdec_vp9_slice_instance *instance = h_vdec;
1912 
1913 	if (!instance)
1914 		return;
1915 
1916 	vpu_dec_deinit(&instance->vpu);
1917 	vdec_vp9_slice_free_working_buffer(instance);
1918 	vdec_msg_queue_deinit(&instance->ctx->msg_queue, instance->ctx);
1919 	kfree(instance);
1920 }
1921 
vdec_vp9_slice_flush(void * h_vdec,struct mtk_vcodec_mem * bs,struct vdec_fb * fb,bool * res_chg)1922 static int vdec_vp9_slice_flush(void *h_vdec, struct mtk_vcodec_mem *bs,
1923 				struct vdec_fb *fb, bool *res_chg)
1924 {
1925 	struct vdec_vp9_slice_instance *instance = h_vdec;
1926 
1927 	mtk_vdec_debug(instance->ctx, "flush ...\n");
1928 	if (instance->ctx->dev->vdec_pdata->hw_arch != MTK_VDEC_PURE_SINGLE_CORE)
1929 		vdec_msg_queue_wait_lat_buf_full(&instance->ctx->msg_queue);
1930 	return vpu_dec_reset(&instance->vpu);
1931 }
1932 
vdec_vp9_slice_get_pic_info(struct vdec_vp9_slice_instance * instance)1933 static void vdec_vp9_slice_get_pic_info(struct vdec_vp9_slice_instance *instance)
1934 {
1935 	struct mtk_vcodec_dec_ctx *ctx = instance->ctx;
1936 	unsigned int data[3];
1937 
1938 	mtk_vdec_debug(instance->ctx, "w %u h %u\n", ctx->picinfo.pic_w, ctx->picinfo.pic_h);
1939 
1940 	data[0] = ctx->picinfo.pic_w;
1941 	data[1] = ctx->picinfo.pic_h;
1942 	data[2] = ctx->capture_fourcc;
1943 	vpu_dec_get_param(&instance->vpu, data, 3, GET_PARAM_PIC_INFO);
1944 
1945 	ctx->picinfo.buf_w = ALIGN(ctx->picinfo.pic_w, 64);
1946 	ctx->picinfo.buf_h = ALIGN(ctx->picinfo.pic_h, 64);
1947 	ctx->picinfo.fb_sz[0] = instance->vpu.fb_sz[0];
1948 	ctx->picinfo.fb_sz[1] = instance->vpu.fb_sz[1];
1949 }
1950 
vdec_vp9_slice_get_dpb_size(struct vdec_vp9_slice_instance * instance,unsigned int * dpb_sz)1951 static void vdec_vp9_slice_get_dpb_size(struct vdec_vp9_slice_instance *instance,
1952 					unsigned int *dpb_sz)
1953 {
1954 	/* refer VP9 specification */
1955 	*dpb_sz = 9;
1956 }
1957 
vdec_vp9_slice_get_param(void * h_vdec,enum vdec_get_param_type type,void * out)1958 static int vdec_vp9_slice_get_param(void *h_vdec, enum vdec_get_param_type type, void *out)
1959 {
1960 	struct vdec_vp9_slice_instance *instance = h_vdec;
1961 
1962 	switch (type) {
1963 	case GET_PARAM_PIC_INFO:
1964 		vdec_vp9_slice_get_pic_info(instance);
1965 		break;
1966 	case GET_PARAM_DPB_SIZE:
1967 		vdec_vp9_slice_get_dpb_size(instance, out);
1968 		break;
1969 	case GET_PARAM_CROP_INFO:
1970 		mtk_vdec_debug(instance->ctx, "No need to get vp9 crop information.");
1971 		break;
1972 	default:
1973 		mtk_vdec_err(instance->ctx, "invalid get parameter type=%d\n", type);
1974 		return -EINVAL;
1975 	}
1976 
1977 	return 0;
1978 }
1979 
vdec_vp9_slice_single_decode(void * h_vdec,struct mtk_vcodec_mem * bs,struct vdec_fb * fb,bool * res_chg)1980 static int vdec_vp9_slice_single_decode(void *h_vdec, struct mtk_vcodec_mem *bs,
1981 					struct vdec_fb *fb, bool *res_chg)
1982 {
1983 	struct vdec_vp9_slice_instance *instance = h_vdec;
1984 	struct vdec_vp9_slice_pfc *pfc = &instance->sc_pfc;
1985 	struct vdec_vp9_slice_vsi *vsi;
1986 	struct mtk_vcodec_dec_ctx *ctx;
1987 	int ret;
1988 
1989 	if (!instance || !instance->ctx)
1990 		return -EINVAL;
1991 	ctx = instance->ctx;
1992 
1993 	/* bs NULL means flush decoder */
1994 	if (!bs)
1995 		return vdec_vp9_slice_flush(h_vdec, bs, fb, res_chg);
1996 
1997 	fb = ctx->dev->vdec_pdata->get_cap_buffer(ctx);
1998 	if (!fb)
1999 		return -EBUSY;
2000 
2001 	vsi = &pfc->vsi;
2002 
2003 	ret = vdec_vp9_slice_setup_single(instance, bs, fb, pfc);
2004 	if (ret) {
2005 		mtk_vdec_err(ctx, "Failed to setup VP9 single ret %d\n", ret);
2006 		return ret;
2007 	}
2008 	vdec_vp9_slice_vsi_to_remote(vsi, instance->vsi);
2009 
2010 	ret = vpu_dec_start(&instance->vpu, NULL, 0);
2011 	if (ret) {
2012 		mtk_vdec_err(ctx, "Failed to dec VP9 ret %d\n", ret);
2013 		return ret;
2014 	}
2015 
2016 	ret = mtk_vcodec_wait_for_done_ctx(ctx,	MTK_INST_IRQ_RECEIVED,
2017 					   WAIT_INTR_TIMEOUT_MS, MTK_VDEC_CORE);
2018 	/* update remote vsi if decode timeout */
2019 	if (ret) {
2020 		mtk_vdec_err(ctx, "VP9 decode timeout %d\n", ret);
2021 		WRITE_ONCE(instance->vsi->state.timeout, 1);
2022 	}
2023 
2024 	vpu_dec_end(&instance->vpu);
2025 
2026 	vdec_vp9_slice_vsi_from_remote(vsi, instance->vsi, 0);
2027 	ret = vdec_vp9_slice_update_single(instance, pfc);
2028 	if (ret) {
2029 		mtk_vdec_err(ctx, "VP9 decode error: %d\n", ret);
2030 		return ret;
2031 	}
2032 
2033 	instance->ctx->decoded_frame_cnt++;
2034 	return 0;
2035 }
2036 
vdec_vp9_slice_lat_decode(void * h_vdec,struct mtk_vcodec_mem * bs,struct vdec_fb * fb,bool * res_chg)2037 static int vdec_vp9_slice_lat_decode(void *h_vdec, struct mtk_vcodec_mem *bs,
2038 				     struct vdec_fb *fb, bool *res_chg)
2039 {
2040 	struct vdec_vp9_slice_instance *instance = h_vdec;
2041 	struct vdec_lat_buf *lat_buf;
2042 	struct vdec_vp9_slice_pfc *pfc;
2043 	struct vdec_vp9_slice_vsi *vsi;
2044 	struct mtk_vcodec_dec_ctx *ctx;
2045 	int ret;
2046 
2047 	if (!instance || !instance->ctx)
2048 		return -EINVAL;
2049 	ctx = instance->ctx;
2050 
2051 	/* init msgQ for the first time */
2052 	if (vdec_msg_queue_init(&ctx->msg_queue, ctx,
2053 				vdec_vp9_slice_core_decode,
2054 				sizeof(*pfc)))
2055 		return -ENOMEM;
2056 
2057 	/* bs NULL means flush decoder */
2058 	if (!bs)
2059 		return vdec_vp9_slice_flush(h_vdec, bs, fb, res_chg);
2060 
2061 	lat_buf = vdec_msg_queue_dqbuf(&instance->ctx->msg_queue.lat_ctx);
2062 	if (!lat_buf) {
2063 		mtk_vdec_debug(ctx, "Failed to get VP9 lat buf\n");
2064 		return -EAGAIN;
2065 	}
2066 	pfc = (struct vdec_vp9_slice_pfc *)lat_buf->private_data;
2067 	if (!pfc) {
2068 		ret = -EINVAL;
2069 		goto err_free_fb_out;
2070 	}
2071 	vsi = &pfc->vsi;
2072 
2073 	ret = vdec_vp9_slice_setup_lat(instance, bs, lat_buf, pfc);
2074 	if (ret) {
2075 		mtk_vdec_err(ctx, "Failed to setup VP9 lat ret %d\n", ret);
2076 		goto err_free_fb_out;
2077 	}
2078 	vdec_vp9_slice_vsi_to_remote(vsi, instance->vsi);
2079 
2080 	ret = vpu_dec_start(&instance->vpu, NULL, 0);
2081 	if (ret) {
2082 		mtk_vdec_err(ctx, "Failed to dec VP9 ret %d\n", ret);
2083 		goto err_free_fb_out;
2084 	}
2085 
2086 	if (instance->irq) {
2087 		ret = mtk_vcodec_wait_for_done_ctx(ctx,	MTK_INST_IRQ_RECEIVED,
2088 						   WAIT_INTR_TIMEOUT_MS, MTK_VDEC_LAT0);
2089 		/* update remote vsi if decode timeout */
2090 		if (ret) {
2091 			mtk_vdec_err(ctx, "VP9 decode timeout %d pic %d\n", ret, pfc->seq);
2092 			WRITE_ONCE(instance->vsi->state.timeout, 1);
2093 		}
2094 		vpu_dec_end(&instance->vpu);
2095 	}
2096 
2097 	vdec_vp9_slice_vsi_from_remote(vsi, instance->vsi, 0);
2098 	ret = vdec_vp9_slice_update_lat(instance, lat_buf, pfc);
2099 
2100 	/* LAT trans full, no more UBE or decode timeout */
2101 	if (ret) {
2102 		mtk_vdec_err(ctx, "VP9 decode error: %d\n", ret);
2103 		goto err_free_fb_out;
2104 	}
2105 
2106 	mtk_vdec_debug(ctx, "lat dma addr: 0x%lx 0x%lx\n",
2107 		       (unsigned long)pfc->vsi.trans.dma_addr,
2108 		       (unsigned long)pfc->vsi.trans.dma_addr_end);
2109 
2110 	vdec_msg_queue_update_ube_wptr(&ctx->msg_queue,
2111 				       vsi->trans.dma_addr_end +
2112 				       ctx->msg_queue.wdma_addr.dma_addr);
2113 	vdec_msg_queue_qbuf(&ctx->msg_queue.core_ctx, lat_buf);
2114 
2115 	return 0;
2116 err_free_fb_out:
2117 	vdec_msg_queue_qbuf(&ctx->msg_queue.lat_ctx, lat_buf);
2118 	return ret;
2119 }
2120 
vdec_vp9_slice_decode(void * h_vdec,struct mtk_vcodec_mem * bs,struct vdec_fb * fb,bool * res_chg)2121 static int vdec_vp9_slice_decode(void *h_vdec, struct mtk_vcodec_mem *bs,
2122 				 struct vdec_fb *fb, bool *res_chg)
2123 {
2124 	struct vdec_vp9_slice_instance *instance = h_vdec;
2125 	int ret;
2126 
2127 	if (instance->ctx->dev->vdec_pdata->hw_arch == MTK_VDEC_PURE_SINGLE_CORE)
2128 		ret = vdec_vp9_slice_single_decode(h_vdec, bs, fb, res_chg);
2129 	else
2130 		ret = vdec_vp9_slice_lat_decode(h_vdec, bs, fb, res_chg);
2131 
2132 	return ret;
2133 }
2134 
vdec_vp9_slice_core_decode(struct vdec_lat_buf * lat_buf)2135 static int vdec_vp9_slice_core_decode(struct vdec_lat_buf *lat_buf)
2136 {
2137 	struct vdec_vp9_slice_instance *instance;
2138 	struct vdec_vp9_slice_pfc *pfc;
2139 	struct mtk_vcodec_dec_ctx *ctx = NULL;
2140 	struct vdec_fb *fb = NULL;
2141 	int ret = -EINVAL;
2142 
2143 	if (!lat_buf)
2144 		goto err;
2145 
2146 	pfc = lat_buf->private_data;
2147 	ctx = lat_buf->ctx;
2148 	if (!pfc || !ctx)
2149 		goto err;
2150 
2151 	instance = ctx->drv_handle;
2152 	if (!instance)
2153 		goto err;
2154 
2155 	fb = ctx->dev->vdec_pdata->get_cap_buffer(ctx);
2156 	if (!fb) {
2157 		ret = -EBUSY;
2158 		goto err;
2159 	}
2160 
2161 	ret = vdec_vp9_slice_setup_core(instance, fb, lat_buf, pfc);
2162 	if (ret) {
2163 		mtk_vdec_err(ctx, "vdec_vp9_slice_setup_core\n");
2164 		goto err;
2165 	}
2166 	vdec_vp9_slice_vsi_to_remote(&pfc->vsi, instance->core_vsi);
2167 
2168 	ret = vpu_dec_core(&instance->vpu);
2169 	if (ret) {
2170 		mtk_vdec_err(ctx, "vpu_dec_core\n");
2171 		goto err;
2172 	}
2173 
2174 	if (instance->irq) {
2175 		ret = mtk_vcodec_wait_for_done_ctx(ctx, MTK_INST_IRQ_RECEIVED,
2176 						   WAIT_INTR_TIMEOUT_MS, MTK_VDEC_CORE);
2177 		/* update remote vsi if decode timeout */
2178 		if (ret) {
2179 			mtk_vdec_err(ctx, "VP9 core timeout pic %d\n", pfc->seq);
2180 			WRITE_ONCE(instance->core_vsi->state.timeout, 1);
2181 		}
2182 		vpu_dec_core_end(&instance->vpu);
2183 	}
2184 
2185 	vdec_vp9_slice_vsi_from_remote(&pfc->vsi, instance->core_vsi, 1);
2186 	ret = vdec_vp9_slice_update_core(instance, lat_buf, pfc);
2187 	if (ret) {
2188 		mtk_vdec_err(ctx, "vdec_vp9_slice_update_core\n");
2189 		goto err;
2190 	}
2191 
2192 	pfc->vsi.trans.dma_addr_end += ctx->msg_queue.wdma_addr.dma_addr;
2193 	mtk_vdec_debug(ctx, "core dma_addr_end 0x%lx\n",
2194 		       (unsigned long)pfc->vsi.trans.dma_addr_end);
2195 	vdec_msg_queue_update_ube_rptr(&ctx->msg_queue, pfc->vsi.trans.dma_addr_end);
2196 	ctx->dev->vdec_pdata->cap_to_disp(ctx, 0, lat_buf->src_buf_req);
2197 
2198 	return 0;
2199 
2200 err:
2201 	if (ctx && pfc) {
2202 		/* always update read pointer */
2203 		vdec_msg_queue_update_ube_rptr(&ctx->msg_queue, pfc->vsi.trans.dma_addr_end);
2204 
2205 		if (fb)
2206 			ctx->dev->vdec_pdata->cap_to_disp(ctx, 1, lat_buf->src_buf_req);
2207 	}
2208 	return ret;
2209 }
2210 
2211 const struct vdec_common_if vdec_vp9_slice_lat_if = {
2212 	.init		= vdec_vp9_slice_init,
2213 	.decode		= vdec_vp9_slice_decode,
2214 	.get_param	= vdec_vp9_slice_get_param,
2215 	.deinit		= vdec_vp9_slice_deinit,
2216 };
2217