ca7d9a084f51511c2dc644bc71f831059d581ed0
[mesa.git] / src / amd / vulkan / radv_private.h
1 /*
2 * Copyright © 2016 Red Hat.
3 * Copyright © 2016 Bas Nieuwenhuizen
4 *
5 * based in part on anv driver which is:
6 * Copyright © 2015 Intel Corporation
7 *
8 * Permission is hereby granted, free of charge, to any person obtaining a
9 * copy of this software and associated documentation files (the "Software"),
10 * to deal in the Software without restriction, including without limitation
11 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
12 * and/or sell copies of the Software, and to permit persons to whom the
13 * Software is furnished to do so, subject to the following conditions:
14 *
15 * The above copyright notice and this permission notice (including the next
16 * paragraph) shall be included in all copies or substantial portions of the
17 * Software.
18 *
19 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
20 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
21 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
22 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
23 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
24 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
25 * IN THE SOFTWARE.
26 */
27
28 #ifndef RADV_PRIVATE_H
29 #define RADV_PRIVATE_H
30
31 #include <stdlib.h>
32 #include <stdio.h>
33 #include <stdbool.h>
34 #include <pthread.h>
35 #include <assert.h>
36 #include <stdint.h>
37 #include <string.h>
38 #ifdef HAVE_VALGRIND
39 #include <valgrind.h>
40 #include <memcheck.h>
41 #define VG(x) x
42 #else
43 #define VG(x) ((void)0)
44 #endif
45
46 #include "c11/threads.h"
47 #include <amdgpu.h>
48 #include "compiler/shader_enums.h"
49 #include "util/macros.h"
50 #include "util/list.h"
51 #include "util/xmlconfig.h"
52 #include "main/macros.h"
53 #include "vk_alloc.h"
54 #include "vk_debug_report.h"
55
56 #include "radv_radeon_winsys.h"
57 #include "ac_binary.h"
58 #include "ac_nir_to_llvm.h"
59 #include "ac_gpu_info.h"
60 #include "ac_surface.h"
61 #include "ac_llvm_build.h"
62 #include "ac_llvm_util.h"
63 #include "radv_constants.h"
64 #include "radv_descriptor_set.h"
65 #include "radv_extensions.h"
66 #include "sid.h"
67
68 #include <llvm-c/TargetMachine.h>
69
70 /* Pre-declarations needed for WSI entrypoints */
71 struct wl_surface;
72 struct wl_display;
73 typedef struct xcb_connection_t xcb_connection_t;
74 typedef uint32_t xcb_visualid_t;
75 typedef uint32_t xcb_window_t;
76
77 #include <vulkan/vulkan.h>
78 #include <vulkan/vulkan_intel.h>
79 #include <vulkan/vulkan_android.h>
80 #include <vulkan/vk_icd.h>
81 #include <vulkan/vk_android_native_buffer.h>
82
83 #include "radv_entrypoints.h"
84
85 #include "wsi_common.h"
86 #include "wsi_common_display.h"
87
88 /* Helper to determine if we should compile
89 * any of the Android AHB support.
90 *
91 * To actually enable the ext we also need
92 * the necessary kernel support.
93 */
94 #if defined(ANDROID) && ANDROID_API_LEVEL >= 26
95 #define RADV_SUPPORT_ANDROID_HARDWARE_BUFFER 1
96 #else
97 #define RADV_SUPPORT_ANDROID_HARDWARE_BUFFER 0
98 #endif
99
100
101 struct gfx10_format {
102 unsigned img_format:9;
103
104 /* Various formats are only supported with workarounds for vertex fetch,
105 * and some 32_32_32 formats are supported natively, but only for buffers
106 * (possibly with some image support, actually, but no filtering). */
107 bool buffers_only:1;
108 };
109
110 #include "gfx10_format_table.h"
111
112 enum radv_mem_heap {
113 RADV_MEM_HEAP_VRAM,
114 RADV_MEM_HEAP_VRAM_CPU_ACCESS,
115 RADV_MEM_HEAP_GTT,
116 RADV_MEM_HEAP_COUNT
117 };
118
119 enum radv_mem_type {
120 RADV_MEM_TYPE_VRAM,
121 RADV_MEM_TYPE_GTT_WRITE_COMBINE,
122 RADV_MEM_TYPE_VRAM_CPU_ACCESS,
123 RADV_MEM_TYPE_GTT_CACHED,
124 RADV_MEM_TYPE_VRAM_UNCACHED,
125 RADV_MEM_TYPE_GTT_WRITE_COMBINE_VRAM_UNCACHED,
126 RADV_MEM_TYPE_VRAM_CPU_ACCESS_UNCACHED,
127 RADV_MEM_TYPE_GTT_CACHED_VRAM_UNCACHED,
128 RADV_MEM_TYPE_COUNT
129 };
130
131 enum radv_secure_compile_type {
132 RADV_SC_TYPE_INIT_SUCCESS,
133 RADV_SC_TYPE_INIT_FAILURE,
134 RADV_SC_TYPE_COMPILE_PIPELINE,
135 RADV_SC_TYPE_COMPILE_PIPELINE_FINISHED,
136 RADV_SC_TYPE_READ_DISK_CACHE,
137 RADV_SC_TYPE_WRITE_DISK_CACHE,
138 RADV_SC_TYPE_FORK_DEVICE,
139 RADV_SC_TYPE_DESTROY_DEVICE,
140 RADV_SC_TYPE_COUNT
141 };
142
143 #define radv_printflike(a, b) __attribute__((__format__(__printf__, a, b)))
144
145 static inline uint32_t
146 align_u32(uint32_t v, uint32_t a)
147 {
148 assert(a != 0 && a == (a & -a));
149 return (v + a - 1) & ~(a - 1);
150 }
151
152 static inline uint32_t
153 align_u32_npot(uint32_t v, uint32_t a)
154 {
155 return (v + a - 1) / a * a;
156 }
157
158 static inline uint64_t
159 align_u64(uint64_t v, uint64_t a)
160 {
161 assert(a != 0 && a == (a & -a));
162 return (v + a - 1) & ~(a - 1);
163 }
164
165 static inline int32_t
166 align_i32(int32_t v, int32_t a)
167 {
168 assert(a != 0 && a == (a & -a));
169 return (v + a - 1) & ~(a - 1);
170 }
171
172 /** Alignment must be a power of 2. */
173 static inline bool
174 radv_is_aligned(uintmax_t n, uintmax_t a)
175 {
176 assert(a == (a & -a));
177 return (n & (a - 1)) == 0;
178 }
179
180 static inline uint32_t
181 round_up_u32(uint32_t v, uint32_t a)
182 {
183 return (v + a - 1) / a;
184 }
185
186 static inline uint64_t
187 round_up_u64(uint64_t v, uint64_t a)
188 {
189 return (v + a - 1) / a;
190 }
191
192 static inline uint32_t
193 radv_minify(uint32_t n, uint32_t levels)
194 {
195 if (unlikely(n == 0))
196 return 0;
197 else
198 return MAX2(n >> levels, 1);
199 }
200 static inline float
201 radv_clamp_f(float f, float min, float max)
202 {
203 assert(min < max);
204
205 if (f > max)
206 return max;
207 else if (f < min)
208 return min;
209 else
210 return f;
211 }
212
213 static inline bool
214 radv_clear_mask(uint32_t *inout_mask, uint32_t clear_mask)
215 {
216 if (*inout_mask & clear_mask) {
217 *inout_mask &= ~clear_mask;
218 return true;
219 } else {
220 return false;
221 }
222 }
223
224 #define for_each_bit(b, dword) \
225 for (uint32_t __dword = (dword); \
226 (b) = __builtin_ffs(__dword) - 1, __dword; \
227 __dword &= ~(1 << (b)))
228
229 #define typed_memcpy(dest, src, count) ({ \
230 STATIC_ASSERT(sizeof(*src) == sizeof(*dest)); \
231 memcpy((dest), (src), (count) * sizeof(*(src))); \
232 })
233
234 /* Whenever we generate an error, pass it through this function. Useful for
235 * debugging, where we can break on it. Only call at error site, not when
236 * propagating errors. Might be useful to plug in a stack trace here.
237 */
238
239 struct radv_image_view;
240 struct radv_instance;
241
242 VkResult __vk_errorf(struct radv_instance *instance, VkResult error, const char *file, int line, const char *format, ...);
243
244 #define vk_error(instance, error) __vk_errorf(instance, error, __FILE__, __LINE__, NULL);
245 #define vk_errorf(instance, error, format, ...) __vk_errorf(instance, error, __FILE__, __LINE__, format, ## __VA_ARGS__);
246
247 void __radv_finishme(const char *file, int line, const char *format, ...)
248 radv_printflike(3, 4);
249 void radv_loge(const char *format, ...) radv_printflike(1, 2);
250 void radv_loge_v(const char *format, va_list va);
251 void radv_logi(const char *format, ...) radv_printflike(1, 2);
252 void radv_logi_v(const char *format, va_list va);
253
254 /**
255 * Print a FINISHME message, including its source location.
256 */
257 #define radv_finishme(format, ...) \
258 do { \
259 static bool reported = false; \
260 if (!reported) { \
261 __radv_finishme(__FILE__, __LINE__, format, ##__VA_ARGS__); \
262 reported = true; \
263 } \
264 } while (0)
265
266 /* A non-fatal assert. Useful for debugging. */
267 #ifdef DEBUG
268 #define radv_assert(x) ({ \
269 if (unlikely(!(x))) \
270 fprintf(stderr, "%s:%d ASSERT: %s\n", __FILE__, __LINE__, #x); \
271 })
272 #else
273 #define radv_assert(x) do {} while(0)
274 #endif
275
276 #define stub_return(v) \
277 do { \
278 radv_finishme("stub %s", __func__); \
279 return (v); \
280 } while (0)
281
282 #define stub() \
283 do { \
284 radv_finishme("stub %s", __func__); \
285 return; \
286 } while (0)
287
288 void *radv_lookup_entrypoint_unchecked(const char *name);
289 void *radv_lookup_entrypoint_checked(const char *name,
290 uint32_t core_version,
291 const struct radv_instance_extension_table *instance,
292 const struct radv_device_extension_table *device);
293 void *radv_lookup_physical_device_entrypoint_checked(const char *name,
294 uint32_t core_version,
295 const struct radv_instance_extension_table *instance);
296
297 struct radv_physical_device {
298 VK_LOADER_DATA _loader_data;
299
300 struct radv_instance * instance;
301
302 struct radeon_winsys *ws;
303 struct radeon_info rad_info;
304 char name[VK_MAX_PHYSICAL_DEVICE_NAME_SIZE];
305 uint8_t driver_uuid[VK_UUID_SIZE];
306 uint8_t device_uuid[VK_UUID_SIZE];
307 uint8_t cache_uuid[VK_UUID_SIZE];
308
309 int local_fd;
310 int master_fd;
311 struct wsi_device wsi_device;
312
313 bool out_of_order_rast_allowed;
314
315 /* Whether DCC should be enabled for MSAA textures. */
316 bool dcc_msaa_allowed;
317
318 /* Whether to enable the AMD_shader_ballot extension */
319 bool use_shader_ballot;
320
321 /* Whether to enable NGG. */
322 bool use_ngg;
323
324 /* Whether to enable NGG streamout. */
325 bool use_ngg_streamout;
326
327 /* Number of threads per wave. */
328 uint8_t ps_wave_size;
329 uint8_t cs_wave_size;
330 uint8_t ge_wave_size;
331
332 /* Whether to use the experimental compiler backend */
333 bool use_aco;
334
335 /* This is the drivers on-disk cache used as a fallback as opposed to
336 * the pipeline cache defined by apps.
337 */
338 struct disk_cache * disk_cache;
339
340 VkPhysicalDeviceMemoryProperties memory_properties;
341 enum radv_mem_type mem_type_indices[RADV_MEM_TYPE_COUNT];
342
343 drmPciBusInfo bus_info;
344
345 struct radv_device_extension_table supported_extensions;
346 };
347
348 struct radv_instance {
349 VK_LOADER_DATA _loader_data;
350
351 VkAllocationCallbacks alloc;
352
353 uint32_t apiVersion;
354 int physicalDeviceCount;
355 struct radv_physical_device physicalDevices[RADV_MAX_DRM_DEVICES];
356
357 char * engineName;
358 uint32_t engineVersion;
359
360 uint64_t debug_flags;
361 uint64_t perftest_flags;
362 uint8_t num_sc_threads;
363
364 struct vk_debug_report_instance debug_report_callbacks;
365
366 struct radv_instance_extension_table enabled_extensions;
367
368 struct driOptionCache dri_options;
369 struct driOptionCache available_dri_options;
370 };
371
372 static inline
373 bool radv_device_use_secure_compile(struct radv_instance *instance)
374 {
375 return instance->num_sc_threads;
376 }
377
378 VkResult radv_init_wsi(struct radv_physical_device *physical_device);
379 void radv_finish_wsi(struct radv_physical_device *physical_device);
380
381 bool radv_instance_extension_supported(const char *name);
382 uint32_t radv_physical_device_api_version(struct radv_physical_device *dev);
383 bool radv_physical_device_extension_supported(struct radv_physical_device *dev,
384 const char *name);
385
386 struct cache_entry;
387
388 struct radv_pipeline_cache {
389 struct radv_device * device;
390 pthread_mutex_t mutex;
391
392 uint32_t total_size;
393 uint32_t table_size;
394 uint32_t kernel_count;
395 struct cache_entry ** hash_table;
396 bool modified;
397
398 VkAllocationCallbacks alloc;
399 };
400
401 struct radv_pipeline_key {
402 uint32_t instance_rate_inputs;
403 uint32_t instance_rate_divisors[MAX_VERTEX_ATTRIBS];
404 uint8_t vertex_attribute_formats[MAX_VERTEX_ATTRIBS];
405 uint32_t vertex_attribute_bindings[MAX_VERTEX_ATTRIBS];
406 uint32_t vertex_attribute_offsets[MAX_VERTEX_ATTRIBS];
407 uint32_t vertex_attribute_strides[MAX_VERTEX_ATTRIBS];
408 uint64_t vertex_alpha_adjust;
409 uint32_t vertex_post_shuffle;
410 unsigned tess_input_vertices;
411 uint32_t col_format;
412 uint32_t is_int8;
413 uint32_t is_int10;
414 uint8_t log2_ps_iter_samples;
415 uint8_t num_samples;
416 uint32_t has_multiview_view_index : 1;
417 uint32_t optimisations_disabled : 1;
418 uint8_t topology;
419
420 /* Non-zero if a required subgroup size is specified via
421 * VK_EXT_subgroup_size_control.
422 */
423 uint8_t compute_subgroup_size;
424 };
425
426 struct radv_shader_binary;
427 struct radv_shader_variant;
428
429 void
430 radv_pipeline_cache_init(struct radv_pipeline_cache *cache,
431 struct radv_device *device);
432 void
433 radv_pipeline_cache_finish(struct radv_pipeline_cache *cache);
434 bool
435 radv_pipeline_cache_load(struct radv_pipeline_cache *cache,
436 const void *data, size_t size);
437
438 bool
439 radv_create_shader_variants_from_pipeline_cache(struct radv_device *device,
440 struct radv_pipeline_cache *cache,
441 const unsigned char *sha1,
442 struct radv_shader_variant **variants,
443 bool *found_in_application_cache);
444
445 void
446 radv_pipeline_cache_insert_shaders(struct radv_device *device,
447 struct radv_pipeline_cache *cache,
448 const unsigned char *sha1,
449 struct radv_shader_variant **variants,
450 struct radv_shader_binary *const *binaries);
451
452 enum radv_blit_ds_layout {
453 RADV_BLIT_DS_LAYOUT_TILE_ENABLE,
454 RADV_BLIT_DS_LAYOUT_TILE_DISABLE,
455 RADV_BLIT_DS_LAYOUT_COUNT,
456 };
457
458 static inline enum radv_blit_ds_layout radv_meta_blit_ds_to_type(VkImageLayout layout)
459 {
460 return (layout == VK_IMAGE_LAYOUT_GENERAL) ? RADV_BLIT_DS_LAYOUT_TILE_DISABLE : RADV_BLIT_DS_LAYOUT_TILE_ENABLE;
461 }
462
463 static inline VkImageLayout radv_meta_blit_ds_to_layout(enum radv_blit_ds_layout ds_layout)
464 {
465 return ds_layout == RADV_BLIT_DS_LAYOUT_TILE_ENABLE ? VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL : VK_IMAGE_LAYOUT_GENERAL;
466 }
467
468 enum radv_meta_dst_layout {
469 RADV_META_DST_LAYOUT_GENERAL,
470 RADV_META_DST_LAYOUT_OPTIMAL,
471 RADV_META_DST_LAYOUT_COUNT,
472 };
473
474 static inline enum radv_meta_dst_layout radv_meta_dst_layout_from_layout(VkImageLayout layout)
475 {
476 return (layout == VK_IMAGE_LAYOUT_GENERAL) ? RADV_META_DST_LAYOUT_GENERAL : RADV_META_DST_LAYOUT_OPTIMAL;
477 }
478
479 static inline VkImageLayout radv_meta_dst_layout_to_layout(enum radv_meta_dst_layout layout)
480 {
481 return layout == RADV_META_DST_LAYOUT_OPTIMAL ? VK_IMAGE_LAYOUT_TRANSFER_DST_OPTIMAL : VK_IMAGE_LAYOUT_GENERAL;
482 }
483
484 struct radv_meta_state {
485 VkAllocationCallbacks alloc;
486
487 struct radv_pipeline_cache cache;
488
489 /*
490 * For on-demand pipeline creation, makes sure that
491 * only one thread tries to build a pipeline at the same time.
492 */
493 mtx_t mtx;
494
495 /**
496 * Use array element `i` for images with `2^i` samples.
497 */
498 struct {
499 VkRenderPass render_pass[NUM_META_FS_KEYS];
500 VkPipeline color_pipelines[NUM_META_FS_KEYS];
501
502 VkRenderPass depthstencil_rp;
503 VkPipeline depth_only_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
504 VkPipeline stencil_only_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
505 VkPipeline depthstencil_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
506
507 VkPipeline depth_only_unrestricted_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
508 VkPipeline stencil_only_unrestricted_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
509 VkPipeline depthstencil_unrestricted_pipeline[NUM_DEPTH_CLEAR_PIPELINES];
510 } clear[MAX_SAMPLES_LOG2];
511
512 VkPipelineLayout clear_color_p_layout;
513 VkPipelineLayout clear_depth_p_layout;
514 VkPipelineLayout clear_depth_unrestricted_p_layout;
515
516 /* Optimized compute fast HTILE clear for stencil or depth only. */
517 VkPipeline clear_htile_mask_pipeline;
518 VkPipelineLayout clear_htile_mask_p_layout;
519 VkDescriptorSetLayout clear_htile_mask_ds_layout;
520
521 struct {
522 VkRenderPass render_pass[NUM_META_FS_KEYS][RADV_META_DST_LAYOUT_COUNT];
523
524 /** Pipeline that blits from a 1D image. */
525 VkPipeline pipeline_1d_src[NUM_META_FS_KEYS];
526
527 /** Pipeline that blits from a 2D image. */
528 VkPipeline pipeline_2d_src[NUM_META_FS_KEYS];
529
530 /** Pipeline that blits from a 3D image. */
531 VkPipeline pipeline_3d_src[NUM_META_FS_KEYS];
532
533 VkRenderPass depth_only_rp[RADV_BLIT_DS_LAYOUT_COUNT];
534 VkPipeline depth_only_1d_pipeline;
535 VkPipeline depth_only_2d_pipeline;
536 VkPipeline depth_only_3d_pipeline;
537
538 VkRenderPass stencil_only_rp[RADV_BLIT_DS_LAYOUT_COUNT];
539 VkPipeline stencil_only_1d_pipeline;
540 VkPipeline stencil_only_2d_pipeline;
541 VkPipeline stencil_only_3d_pipeline;
542 VkPipelineLayout pipeline_layout;
543 VkDescriptorSetLayout ds_layout;
544 } blit;
545
546 struct {
547 VkPipelineLayout p_layouts[5];
548 VkDescriptorSetLayout ds_layouts[5];
549 VkPipeline pipelines[5][NUM_META_FS_KEYS];
550
551 VkPipeline depth_only_pipeline[5];
552
553 VkPipeline stencil_only_pipeline[5];
554 } blit2d[MAX_SAMPLES_LOG2];
555
556 VkRenderPass blit2d_render_passes[NUM_META_FS_KEYS][RADV_META_DST_LAYOUT_COUNT];
557 VkRenderPass blit2d_depth_only_rp[RADV_BLIT_DS_LAYOUT_COUNT];
558 VkRenderPass blit2d_stencil_only_rp[RADV_BLIT_DS_LAYOUT_COUNT];
559
560 struct {
561 VkPipelineLayout img_p_layout;
562 VkDescriptorSetLayout img_ds_layout;
563 VkPipeline pipeline;
564 VkPipeline pipeline_3d;
565 } itob;
566 struct {
567 VkPipelineLayout img_p_layout;
568 VkDescriptorSetLayout img_ds_layout;
569 VkPipeline pipeline;
570 VkPipeline pipeline_3d;
571 } btoi;
572 struct {
573 VkPipelineLayout img_p_layout;
574 VkDescriptorSetLayout img_ds_layout;
575 VkPipeline pipeline;
576 } btoi_r32g32b32;
577 struct {
578 VkPipelineLayout img_p_layout;
579 VkDescriptorSetLayout img_ds_layout;
580 VkPipeline pipeline;
581 VkPipeline pipeline_3d;
582 } itoi;
583 struct {
584 VkPipelineLayout img_p_layout;
585 VkDescriptorSetLayout img_ds_layout;
586 VkPipeline pipeline;
587 } itoi_r32g32b32;
588 struct {
589 VkPipelineLayout img_p_layout;
590 VkDescriptorSetLayout img_ds_layout;
591 VkPipeline pipeline;
592 VkPipeline pipeline_3d;
593 } cleari;
594 struct {
595 VkPipelineLayout img_p_layout;
596 VkDescriptorSetLayout img_ds_layout;
597 VkPipeline pipeline;
598 } cleari_r32g32b32;
599
600 struct {
601 VkPipelineLayout p_layout;
602 VkPipeline pipeline[NUM_META_FS_KEYS];
603 VkRenderPass pass[NUM_META_FS_KEYS];
604 } resolve;
605
606 struct {
607 VkDescriptorSetLayout ds_layout;
608 VkPipelineLayout p_layout;
609 struct {
610 VkPipeline pipeline;
611 VkPipeline i_pipeline;
612 VkPipeline srgb_pipeline;
613 } rc[MAX_SAMPLES_LOG2];
614
615 VkPipeline depth_zero_pipeline;
616 struct {
617 VkPipeline average_pipeline;
618 VkPipeline max_pipeline;
619 VkPipeline min_pipeline;
620 } depth[MAX_SAMPLES_LOG2];
621
622 VkPipeline stencil_zero_pipeline;
623 struct {
624 VkPipeline max_pipeline;
625 VkPipeline min_pipeline;
626 } stencil[MAX_SAMPLES_LOG2];
627 } resolve_compute;
628
629 struct {
630 VkDescriptorSetLayout ds_layout;
631 VkPipelineLayout p_layout;
632
633 struct {
634 VkRenderPass render_pass[NUM_META_FS_KEYS][RADV_META_DST_LAYOUT_COUNT];
635 VkPipeline pipeline[NUM_META_FS_KEYS];
636 } rc[MAX_SAMPLES_LOG2];
637
638 VkRenderPass depth_render_pass;
639 VkPipeline depth_zero_pipeline;
640 struct {
641 VkPipeline average_pipeline;
642 VkPipeline max_pipeline;
643 VkPipeline min_pipeline;
644 } depth[MAX_SAMPLES_LOG2];
645
646 VkRenderPass stencil_render_pass;
647 VkPipeline stencil_zero_pipeline;
648 struct {
649 VkPipeline max_pipeline;
650 VkPipeline min_pipeline;
651 } stencil[MAX_SAMPLES_LOG2];
652 } resolve_fragment;
653
654 struct {
655 VkPipelineLayout p_layout;
656 VkPipeline decompress_pipeline[NUM_DEPTH_DECOMPRESS_PIPELINES];
657 VkPipeline resummarize_pipeline;
658 VkRenderPass pass;
659 } depth_decomp[MAX_SAMPLES_LOG2];
660
661 struct {
662 VkPipelineLayout p_layout;
663 VkPipeline cmask_eliminate_pipeline;
664 VkPipeline fmask_decompress_pipeline;
665 VkPipeline dcc_decompress_pipeline;
666 VkRenderPass pass;
667
668 VkDescriptorSetLayout dcc_decompress_compute_ds_layout;
669 VkPipelineLayout dcc_decompress_compute_p_layout;
670 VkPipeline dcc_decompress_compute_pipeline;
671 } fast_clear_flush;
672
673 struct {
674 VkPipelineLayout fill_p_layout;
675 VkPipelineLayout copy_p_layout;
676 VkDescriptorSetLayout fill_ds_layout;
677 VkDescriptorSetLayout copy_ds_layout;
678 VkPipeline fill_pipeline;
679 VkPipeline copy_pipeline;
680 } buffer;
681
682 struct {
683 VkDescriptorSetLayout ds_layout;
684 VkPipelineLayout p_layout;
685 VkPipeline occlusion_query_pipeline;
686 VkPipeline pipeline_statistics_query_pipeline;
687 VkPipeline tfb_query_pipeline;
688 VkPipeline timestamp_query_pipeline;
689 } query;
690
691 struct {
692 VkDescriptorSetLayout ds_layout;
693 VkPipelineLayout p_layout;
694 VkPipeline pipeline[MAX_SAMPLES_LOG2];
695 } fmask_expand;
696 };
697
698 /* queue types */
699 #define RADV_QUEUE_GENERAL 0
700 #define RADV_QUEUE_COMPUTE 1
701 #define RADV_QUEUE_TRANSFER 2
702
703 #define RADV_MAX_QUEUE_FAMILIES 3
704
705 enum ring_type radv_queue_family_to_ring(int f);
706
707 struct radv_queue {
708 VK_LOADER_DATA _loader_data;
709 struct radv_device * device;
710 struct radeon_winsys_ctx *hw_ctx;
711 enum radeon_ctx_priority priority;
712 uint32_t queue_family_index;
713 int queue_idx;
714 VkDeviceQueueCreateFlags flags;
715
716 uint32_t scratch_size_per_wave;
717 uint32_t scratch_waves;
718 uint32_t compute_scratch_size_per_wave;
719 uint32_t compute_scratch_waves;
720 uint32_t esgs_ring_size;
721 uint32_t gsvs_ring_size;
722 bool has_tess_rings;
723 bool has_gds;
724 bool has_gds_oa;
725 bool has_sample_positions;
726
727 struct radeon_winsys_bo *scratch_bo;
728 struct radeon_winsys_bo *descriptor_bo;
729 struct radeon_winsys_bo *compute_scratch_bo;
730 struct radeon_winsys_bo *esgs_ring_bo;
731 struct radeon_winsys_bo *gsvs_ring_bo;
732 struct radeon_winsys_bo *tess_rings_bo;
733 struct radeon_winsys_bo *gds_bo;
734 struct radeon_winsys_bo *gds_oa_bo;
735 struct radeon_cmdbuf *initial_preamble_cs;
736 struct radeon_cmdbuf *initial_full_flush_preamble_cs;
737 struct radeon_cmdbuf *continue_preamble_cs;
738
739 struct list_head pending_submissions;
740 pthread_mutex_t pending_mutex;
741 };
742
743 struct radv_bo_list {
744 struct radv_winsys_bo_list list;
745 unsigned capacity;
746 pthread_mutex_t mutex;
747 };
748
749 struct radv_secure_compile_process {
750 /* Secure process file descriptors. Used to communicate between the
751 * user facing device and the idle forked device used to fork a clean
752 * process for each new pipeline compile.
753 */
754 int fd_secure_input;
755 int fd_secure_output;
756
757 /* FIFO file descriptors used to communicate between the user facing
758 * device and the secure process that does the actual secure compile.
759 */
760 int fd_server;
761 int fd_client;
762
763 /* Secure compile process id */
764 pid_t sc_pid;
765
766 /* Is the secure compile process currently in use by a thread */
767 bool in_use;
768 };
769
770 struct radv_secure_compile_state {
771 struct radv_secure_compile_process *secure_compile_processes;
772 uint32_t secure_compile_thread_counter;
773 mtx_t secure_compile_mutex;
774
775 /* Unique process ID used to build name for FIFO file descriptor */
776 char *uid;
777 };
778
779 struct radv_device {
780 VK_LOADER_DATA _loader_data;
781
782 VkAllocationCallbacks alloc;
783
784 struct radv_instance * instance;
785 struct radeon_winsys *ws;
786
787 struct radv_meta_state meta_state;
788
789 struct radv_queue *queues[RADV_MAX_QUEUE_FAMILIES];
790 int queue_count[RADV_MAX_QUEUE_FAMILIES];
791 struct radeon_cmdbuf *empty_cs[RADV_MAX_QUEUE_FAMILIES];
792
793 bool always_use_syncobj;
794 bool pbb_allowed;
795 bool dfsm_allowed;
796 uint32_t tess_offchip_block_dw_size;
797 uint32_t scratch_waves;
798 uint32_t dispatch_initiator;
799
800 uint32_t gs_table_depth;
801
802 /* MSAA sample locations.
803 * The first index is the sample index.
804 * The second index is the coordinate: X, Y. */
805 float sample_locations_1x[1][2];
806 float sample_locations_2x[2][2];
807 float sample_locations_4x[4][2];
808 float sample_locations_8x[8][2];
809
810 /* GFX7 and later */
811 uint32_t gfx_init_size_dw;
812 struct radeon_winsys_bo *gfx_init;
813
814 struct radeon_winsys_bo *trace_bo;
815 uint32_t *trace_id_ptr;
816
817 /* Whether to keep shader debug info, for tracing or VK_AMD_shader_info */
818 bool keep_shader_info;
819
820 struct radv_physical_device *physical_device;
821
822 /* Backup in-memory cache to be used if the app doesn't provide one */
823 struct radv_pipeline_cache * mem_cache;
824
825 /*
826 * use different counters so MSAA MRTs get consecutive surface indices,
827 * even if MASK is allocated in between.
828 */
829 uint32_t image_mrt_offset_counter;
830 uint32_t fmask_mrt_offset_counter;
831 struct list_head shader_slabs;
832 mtx_t shader_slab_mutex;
833
834 /* For detecting VM faults reported by dmesg. */
835 uint64_t dmesg_timestamp;
836
837 struct radv_device_extension_table enabled_extensions;
838
839 /* Whether the app has enabled the robustBufferAccess feature. */
840 bool robust_buffer_access;
841
842 /* Whether the driver uses a global BO list. */
843 bool use_global_bo_list;
844
845 struct radv_bo_list bo_list;
846
847 /* Whether anisotropy is forced with RADV_TEX_ANISO (-1 is disabled). */
848 int force_aniso;
849
850 struct radv_secure_compile_state *sc_state;
851
852 /* Condition variable for legacy timelines, to notify waiters when a
853 * new point gets submitted. */
854 pthread_cond_t timeline_cond;
855 };
856
857 struct radv_device_memory {
858 struct radeon_winsys_bo *bo;
859 /* for dedicated allocations */
860 struct radv_image *image;
861 struct radv_buffer *buffer;
862 uint32_t type_index;
863 VkDeviceSize map_size;
864 void * map;
865 void * user_ptr;
866
867 #if RADV_SUPPORT_ANDROID_HARDWARE_BUFFER
868 struct AHardwareBuffer * android_hardware_buffer;
869 #endif
870 };
871
872
873 struct radv_descriptor_range {
874 uint64_t va;
875 uint32_t size;
876 };
877
878 struct radv_descriptor_set {
879 const struct radv_descriptor_set_layout *layout;
880 uint32_t size;
881
882 struct radeon_winsys_bo *bo;
883 uint64_t va;
884 uint32_t *mapped_ptr;
885 struct radv_descriptor_range *dynamic_descriptors;
886
887 struct radeon_winsys_bo *descriptors[0];
888 };
889
890 struct radv_push_descriptor_set
891 {
892 struct radv_descriptor_set set;
893 uint32_t capacity;
894 };
895
896 struct radv_descriptor_pool_entry {
897 uint32_t offset;
898 uint32_t size;
899 struct radv_descriptor_set *set;
900 };
901
902 struct radv_descriptor_pool {
903 struct radeon_winsys_bo *bo;
904 uint8_t *mapped_ptr;
905 uint64_t current_offset;
906 uint64_t size;
907
908 uint8_t *host_memory_base;
909 uint8_t *host_memory_ptr;
910 uint8_t *host_memory_end;
911
912 uint32_t entry_count;
913 uint32_t max_entry_count;
914 struct radv_descriptor_pool_entry entries[0];
915 };
916
917 struct radv_descriptor_update_template_entry {
918 VkDescriptorType descriptor_type;
919
920 /* The number of descriptors to update */
921 uint32_t descriptor_count;
922
923 /* Into mapped_ptr or dynamic_descriptors, in units of the respective array */
924 uint32_t dst_offset;
925
926 /* In dwords. Not valid/used for dynamic descriptors */
927 uint32_t dst_stride;
928
929 uint32_t buffer_offset;
930
931 /* Only valid for combined image samplers and samplers */
932 uint8_t has_sampler;
933 uint8_t sampler_offset;
934
935 /* In bytes */
936 size_t src_offset;
937 size_t src_stride;
938
939 /* For push descriptors */
940 const uint32_t *immutable_samplers;
941 };
942
943 struct radv_descriptor_update_template {
944 uint32_t entry_count;
945 VkPipelineBindPoint bind_point;
946 struct radv_descriptor_update_template_entry entry[0];
947 };
948
949 struct radv_buffer {
950 VkDeviceSize size;
951
952 VkBufferUsageFlags usage;
953 VkBufferCreateFlags flags;
954
955 /* Set when bound */
956 struct radeon_winsys_bo * bo;
957 VkDeviceSize offset;
958
959 bool shareable;
960 };
961
962 enum radv_dynamic_state_bits {
963 RADV_DYNAMIC_VIEWPORT = 1 << 0,
964 RADV_DYNAMIC_SCISSOR = 1 << 1,
965 RADV_DYNAMIC_LINE_WIDTH = 1 << 2,
966 RADV_DYNAMIC_DEPTH_BIAS = 1 << 3,
967 RADV_DYNAMIC_BLEND_CONSTANTS = 1 << 4,
968 RADV_DYNAMIC_DEPTH_BOUNDS = 1 << 5,
969 RADV_DYNAMIC_STENCIL_COMPARE_MASK = 1 << 6,
970 RADV_DYNAMIC_STENCIL_WRITE_MASK = 1 << 7,
971 RADV_DYNAMIC_STENCIL_REFERENCE = 1 << 8,
972 RADV_DYNAMIC_DISCARD_RECTANGLE = 1 << 9,
973 RADV_DYNAMIC_SAMPLE_LOCATIONS = 1 << 10,
974 RADV_DYNAMIC_ALL = (1 << 11) - 1,
975 };
976
977 enum radv_cmd_dirty_bits {
978 /* Keep the dynamic state dirty bits in sync with
979 * enum radv_dynamic_state_bits */
980 RADV_CMD_DIRTY_DYNAMIC_VIEWPORT = 1 << 0,
981 RADV_CMD_DIRTY_DYNAMIC_SCISSOR = 1 << 1,
982 RADV_CMD_DIRTY_DYNAMIC_LINE_WIDTH = 1 << 2,
983 RADV_CMD_DIRTY_DYNAMIC_DEPTH_BIAS = 1 << 3,
984 RADV_CMD_DIRTY_DYNAMIC_BLEND_CONSTANTS = 1 << 4,
985 RADV_CMD_DIRTY_DYNAMIC_DEPTH_BOUNDS = 1 << 5,
986 RADV_CMD_DIRTY_DYNAMIC_STENCIL_COMPARE_MASK = 1 << 6,
987 RADV_CMD_DIRTY_DYNAMIC_STENCIL_WRITE_MASK = 1 << 7,
988 RADV_CMD_DIRTY_DYNAMIC_STENCIL_REFERENCE = 1 << 8,
989 RADV_CMD_DIRTY_DYNAMIC_DISCARD_RECTANGLE = 1 << 9,
990 RADV_CMD_DIRTY_DYNAMIC_SAMPLE_LOCATIONS = 1 << 10,
991 RADV_CMD_DIRTY_DYNAMIC_ALL = (1 << 11) - 1,
992 RADV_CMD_DIRTY_PIPELINE = 1 << 11,
993 RADV_CMD_DIRTY_INDEX_BUFFER = 1 << 12,
994 RADV_CMD_DIRTY_FRAMEBUFFER = 1 << 13,
995 RADV_CMD_DIRTY_VERTEX_BUFFER = 1 << 14,
996 RADV_CMD_DIRTY_STREAMOUT_BUFFER = 1 << 15,
997 };
998
999 enum radv_cmd_flush_bits {
1000 /* Instruction cache. */
1001 RADV_CMD_FLAG_INV_ICACHE = 1 << 0,
1002 /* Scalar L1 cache. */
1003 RADV_CMD_FLAG_INV_SCACHE = 1 << 1,
1004 /* Vector L1 cache. */
1005 RADV_CMD_FLAG_INV_VCACHE = 1 << 2,
1006 /* L2 cache + L2 metadata cache writeback & invalidate.
1007 * GFX6-8: Used by shaders only. GFX9-10: Used by everything. */
1008 RADV_CMD_FLAG_INV_L2 = 1 << 3,
1009 /* L2 writeback (write dirty L2 lines to memory for non-L2 clients).
1010 * Only used for coherency with non-L2 clients like CB, DB, CP on GFX6-8.
1011 * GFX6-7 will do complete invalidation, because the writeback is unsupported. */
1012 RADV_CMD_FLAG_WB_L2 = 1 << 4,
1013 /* Framebuffer caches */
1014 RADV_CMD_FLAG_FLUSH_AND_INV_CB_META = 1 << 5,
1015 RADV_CMD_FLAG_FLUSH_AND_INV_DB_META = 1 << 6,
1016 RADV_CMD_FLAG_FLUSH_AND_INV_DB = 1 << 7,
1017 RADV_CMD_FLAG_FLUSH_AND_INV_CB = 1 << 8,
1018 /* Engine synchronization. */
1019 RADV_CMD_FLAG_VS_PARTIAL_FLUSH = 1 << 9,
1020 RADV_CMD_FLAG_PS_PARTIAL_FLUSH = 1 << 10,
1021 RADV_CMD_FLAG_CS_PARTIAL_FLUSH = 1 << 11,
1022 RADV_CMD_FLAG_VGT_FLUSH = 1 << 12,
1023 /* Pipeline query controls. */
1024 RADV_CMD_FLAG_START_PIPELINE_STATS = 1 << 13,
1025 RADV_CMD_FLAG_STOP_PIPELINE_STATS = 1 << 14,
1026 RADV_CMD_FLAG_VGT_STREAMOUT_SYNC = 1 << 15,
1027
1028 RADV_CMD_FLUSH_AND_INV_FRAMEBUFFER = (RADV_CMD_FLAG_FLUSH_AND_INV_CB |
1029 RADV_CMD_FLAG_FLUSH_AND_INV_CB_META |
1030 RADV_CMD_FLAG_FLUSH_AND_INV_DB |
1031 RADV_CMD_FLAG_FLUSH_AND_INV_DB_META)
1032 };
1033
1034 struct radv_vertex_binding {
1035 struct radv_buffer * buffer;
1036 VkDeviceSize offset;
1037 };
1038
1039 struct radv_streamout_binding {
1040 struct radv_buffer *buffer;
1041 VkDeviceSize offset;
1042 VkDeviceSize size;
1043 };
1044
1045 struct radv_streamout_state {
1046 /* Mask of bound streamout buffers. */
1047 uint8_t enabled_mask;
1048
1049 /* External state that comes from the last vertex stage, it must be
1050 * set explicitely when binding a new graphics pipeline.
1051 */
1052 uint16_t stride_in_dw[MAX_SO_BUFFERS];
1053 uint32_t enabled_stream_buffers_mask; /* stream0 buffers0-3 in 4 LSB */
1054
1055 /* State of VGT_STRMOUT_BUFFER_(CONFIG|END) */
1056 uint32_t hw_enabled_mask;
1057
1058 /* State of VGT_STRMOUT_(CONFIG|EN) */
1059 bool streamout_enabled;
1060 };
1061
1062 struct radv_viewport_state {
1063 uint32_t count;
1064 VkViewport viewports[MAX_VIEWPORTS];
1065 };
1066
1067 struct radv_scissor_state {
1068 uint32_t count;
1069 VkRect2D scissors[MAX_SCISSORS];
1070 };
1071
1072 struct radv_discard_rectangle_state {
1073 uint32_t count;
1074 VkRect2D rectangles[MAX_DISCARD_RECTANGLES];
1075 };
1076
1077 struct radv_sample_locations_state {
1078 VkSampleCountFlagBits per_pixel;
1079 VkExtent2D grid_size;
1080 uint32_t count;
1081 VkSampleLocationEXT locations[MAX_SAMPLE_LOCATIONS];
1082 };
1083
1084 struct radv_dynamic_state {
1085 /**
1086 * Bitmask of (1 << VK_DYNAMIC_STATE_*).
1087 * Defines the set of saved dynamic state.
1088 */
1089 uint32_t mask;
1090
1091 struct radv_viewport_state viewport;
1092
1093 struct radv_scissor_state scissor;
1094
1095 float line_width;
1096
1097 struct {
1098 float bias;
1099 float clamp;
1100 float slope;
1101 } depth_bias;
1102
1103 float blend_constants[4];
1104
1105 struct {
1106 float min;
1107 float max;
1108 } depth_bounds;
1109
1110 struct {
1111 uint32_t front;
1112 uint32_t back;
1113 } stencil_compare_mask;
1114
1115 struct {
1116 uint32_t front;
1117 uint32_t back;
1118 } stencil_write_mask;
1119
1120 struct {
1121 uint32_t front;
1122 uint32_t back;
1123 } stencil_reference;
1124
1125 struct radv_discard_rectangle_state discard_rectangle;
1126
1127 struct radv_sample_locations_state sample_location;
1128 };
1129
1130 extern const struct radv_dynamic_state default_dynamic_state;
1131
1132 const char *
1133 radv_get_debug_option_name(int id);
1134
1135 const char *
1136 radv_get_perftest_option_name(int id);
1137
1138 struct radv_color_buffer_info {
1139 uint64_t cb_color_base;
1140 uint64_t cb_color_cmask;
1141 uint64_t cb_color_fmask;
1142 uint64_t cb_dcc_base;
1143 uint32_t cb_color_slice;
1144 uint32_t cb_color_view;
1145 uint32_t cb_color_info;
1146 uint32_t cb_color_attrib;
1147 uint32_t cb_color_attrib2; /* GFX9 and later */
1148 uint32_t cb_color_attrib3; /* GFX10 and later */
1149 uint32_t cb_dcc_control;
1150 uint32_t cb_color_cmask_slice;
1151 uint32_t cb_color_fmask_slice;
1152 union {
1153 uint32_t cb_color_pitch; // GFX6-GFX8
1154 uint32_t cb_mrt_epitch; // GFX9+
1155 };
1156 };
1157
1158 struct radv_ds_buffer_info {
1159 uint64_t db_z_read_base;
1160 uint64_t db_stencil_read_base;
1161 uint64_t db_z_write_base;
1162 uint64_t db_stencil_write_base;
1163 uint64_t db_htile_data_base;
1164 uint32_t db_depth_info;
1165 uint32_t db_z_info;
1166 uint32_t db_stencil_info;
1167 uint32_t db_depth_view;
1168 uint32_t db_depth_size;
1169 uint32_t db_depth_slice;
1170 uint32_t db_htile_surface;
1171 uint32_t pa_su_poly_offset_db_fmt_cntl;
1172 uint32_t db_z_info2; /* GFX9 only */
1173 uint32_t db_stencil_info2; /* GFX9 only */
1174 float offset_scale;
1175 };
1176
1177 void
1178 radv_initialise_color_surface(struct radv_device *device,
1179 struct radv_color_buffer_info *cb,
1180 struct radv_image_view *iview);
1181 void
1182 radv_initialise_ds_surface(struct radv_device *device,
1183 struct radv_ds_buffer_info *ds,
1184 struct radv_image_view *iview);
1185
1186 bool
1187 radv_sc_read(int fd, void *buf, size_t size, bool timeout);
1188
1189 /**
1190 * Attachment state when recording a renderpass instance.
1191 *
1192 * The clear value is valid only if there exists a pending clear.
1193 */
1194 struct radv_attachment_state {
1195 VkImageAspectFlags pending_clear_aspects;
1196 uint32_t cleared_views;
1197 VkClearValue clear_value;
1198 VkImageLayout current_layout;
1199 VkImageLayout current_stencil_layout;
1200 bool current_in_render_loop;
1201 struct radv_sample_locations_state sample_location;
1202
1203 union {
1204 struct radv_color_buffer_info cb;
1205 struct radv_ds_buffer_info ds;
1206 };
1207 struct radv_image_view *iview;
1208 };
1209
1210 struct radv_descriptor_state {
1211 struct radv_descriptor_set *sets[MAX_SETS];
1212 uint32_t dirty;
1213 uint32_t valid;
1214 struct radv_push_descriptor_set push_set;
1215 bool push_dirty;
1216 uint32_t dynamic_buffers[4 * MAX_DYNAMIC_BUFFERS];
1217 };
1218
1219 struct radv_subpass_sample_locs_state {
1220 uint32_t subpass_idx;
1221 struct radv_sample_locations_state sample_location;
1222 };
1223
1224 struct radv_cmd_state {
1225 /* Vertex descriptors */
1226 uint64_t vb_va;
1227 unsigned vb_size;
1228
1229 bool predicating;
1230 uint32_t dirty;
1231
1232 uint32_t prefetch_L2_mask;
1233
1234 struct radv_pipeline * pipeline;
1235 struct radv_pipeline * emitted_pipeline;
1236 struct radv_pipeline * compute_pipeline;
1237 struct radv_pipeline * emitted_compute_pipeline;
1238 struct radv_framebuffer * framebuffer;
1239 struct radv_render_pass * pass;
1240 const struct radv_subpass * subpass;
1241 struct radv_dynamic_state dynamic;
1242 struct radv_attachment_state * attachments;
1243 struct radv_streamout_state streamout;
1244 VkRect2D render_area;
1245
1246 uint32_t num_subpass_sample_locs;
1247 struct radv_subpass_sample_locs_state * subpass_sample_locs;
1248
1249 /* Index buffer */
1250 struct radv_buffer *index_buffer;
1251 uint64_t index_offset;
1252 uint32_t index_type;
1253 uint32_t max_index_count;
1254 uint64_t index_va;
1255 int32_t last_index_type;
1256
1257 int32_t last_primitive_reset_en;
1258 uint32_t last_primitive_reset_index;
1259 enum radv_cmd_flush_bits flush_bits;
1260 unsigned active_occlusion_queries;
1261 bool perfect_occlusion_queries_enabled;
1262 unsigned active_pipeline_queries;
1263 unsigned active_pipeline_gds_queries;
1264 float offset_scale;
1265 uint32_t trace_id;
1266 uint32_t last_ia_multi_vgt_param;
1267
1268 uint32_t last_num_instances;
1269 uint32_t last_first_instance;
1270 uint32_t last_vertex_offset;
1271
1272 /* Whether CP DMA is busy/idle. */
1273 bool dma_is_busy;
1274
1275 /* Conditional rendering info. */
1276 int predication_type; /* -1: disabled, 0: normal, 1: inverted */
1277 uint64_t predication_va;
1278
1279 /* Inheritance info. */
1280 VkQueryPipelineStatisticFlags inherited_pipeline_statistics;
1281
1282 bool context_roll_without_scissor_emitted;
1283 };
1284
1285 struct radv_cmd_pool {
1286 VkAllocationCallbacks alloc;
1287 struct list_head cmd_buffers;
1288 struct list_head free_cmd_buffers;
1289 uint32_t queue_family_index;
1290 };
1291
1292 struct radv_cmd_buffer_upload {
1293 uint8_t *map;
1294 unsigned offset;
1295 uint64_t size;
1296 struct radeon_winsys_bo *upload_bo;
1297 struct list_head list;
1298 };
1299
1300 enum radv_cmd_buffer_status {
1301 RADV_CMD_BUFFER_STATUS_INVALID,
1302 RADV_CMD_BUFFER_STATUS_INITIAL,
1303 RADV_CMD_BUFFER_STATUS_RECORDING,
1304 RADV_CMD_BUFFER_STATUS_EXECUTABLE,
1305 RADV_CMD_BUFFER_STATUS_PENDING,
1306 };
1307
1308 struct radv_cmd_buffer {
1309 VK_LOADER_DATA _loader_data;
1310
1311 struct radv_device * device;
1312
1313 struct radv_cmd_pool * pool;
1314 struct list_head pool_link;
1315
1316 VkCommandBufferUsageFlags usage_flags;
1317 VkCommandBufferLevel level;
1318 enum radv_cmd_buffer_status status;
1319 struct radeon_cmdbuf *cs;
1320 struct radv_cmd_state state;
1321 struct radv_vertex_binding vertex_bindings[MAX_VBS];
1322 struct radv_streamout_binding streamout_bindings[MAX_SO_BUFFERS];
1323 uint32_t queue_family_index;
1324
1325 uint8_t push_constants[MAX_PUSH_CONSTANTS_SIZE];
1326 VkShaderStageFlags push_constant_stages;
1327 struct radv_descriptor_set meta_push_descriptors;
1328
1329 struct radv_descriptor_state descriptors[VK_PIPELINE_BIND_POINT_RANGE_SIZE];
1330
1331 struct radv_cmd_buffer_upload upload;
1332
1333 uint32_t scratch_size_per_wave_needed;
1334 uint32_t scratch_waves_wanted;
1335 uint32_t compute_scratch_size_per_wave_needed;
1336 uint32_t compute_scratch_waves_wanted;
1337 uint32_t esgs_ring_size_needed;
1338 uint32_t gsvs_ring_size_needed;
1339 bool tess_rings_needed;
1340 bool gds_needed; /* for GFX10 streamout and NGG GS queries */
1341 bool gds_oa_needed; /* for GFX10 streamout */
1342 bool sample_positions_needed;
1343
1344 VkResult record_result;
1345
1346 uint64_t gfx9_fence_va;
1347 uint32_t gfx9_fence_idx;
1348 uint64_t gfx9_eop_bug_va;
1349
1350 /**
1351 * Whether a query pool has been resetted and we have to flush caches.
1352 */
1353 bool pending_reset_query;
1354
1355 /**
1356 * Bitmask of pending active query flushes.
1357 */
1358 enum radv_cmd_flush_bits active_query_flush_bits;
1359 };
1360
1361 struct radv_image;
1362 struct radv_image_view;
1363
1364 bool radv_cmd_buffer_uses_mec(struct radv_cmd_buffer *cmd_buffer);
1365
1366 void si_emit_graphics(struct radv_physical_device *physical_device,
1367 struct radeon_cmdbuf *cs);
1368 void si_emit_compute(struct radv_physical_device *physical_device,
1369 struct radeon_cmdbuf *cs);
1370
1371 void cik_create_gfx_config(struct radv_device *device);
1372
1373 void si_write_viewport(struct radeon_cmdbuf *cs, int first_vp,
1374 int count, const VkViewport *viewports);
1375 void si_write_scissors(struct radeon_cmdbuf *cs, int first,
1376 int count, const VkRect2D *scissors,
1377 const VkViewport *viewports, bool can_use_guardband);
1378 uint32_t si_get_ia_multi_vgt_param(struct radv_cmd_buffer *cmd_buffer,
1379 bool instanced_draw, bool indirect_draw,
1380 bool count_from_stream_output,
1381 uint32_t draw_vertex_count);
1382 void si_cs_emit_write_event_eop(struct radeon_cmdbuf *cs,
1383 enum chip_class chip_class,
1384 bool is_mec,
1385 unsigned event, unsigned event_flags,
1386 unsigned dst_sel, unsigned data_sel,
1387 uint64_t va,
1388 uint32_t new_fence,
1389 uint64_t gfx9_eop_bug_va);
1390
1391 void radv_cp_wait_mem(struct radeon_cmdbuf *cs, uint32_t op, uint64_t va,
1392 uint32_t ref, uint32_t mask);
1393 void si_cs_emit_cache_flush(struct radeon_cmdbuf *cs,
1394 enum chip_class chip_class,
1395 uint32_t *fence_ptr, uint64_t va,
1396 bool is_mec,
1397 enum radv_cmd_flush_bits flush_bits,
1398 uint64_t gfx9_eop_bug_va);
1399 void si_emit_cache_flush(struct radv_cmd_buffer *cmd_buffer);
1400 void si_emit_set_predication_state(struct radv_cmd_buffer *cmd_buffer,
1401 bool inverted, uint64_t va);
1402 void si_cp_dma_buffer_copy(struct radv_cmd_buffer *cmd_buffer,
1403 uint64_t src_va, uint64_t dest_va,
1404 uint64_t size);
1405 void si_cp_dma_prefetch(struct radv_cmd_buffer *cmd_buffer, uint64_t va,
1406 unsigned size);
1407 void si_cp_dma_clear_buffer(struct radv_cmd_buffer *cmd_buffer, uint64_t va,
1408 uint64_t size, unsigned value);
1409 void si_cp_dma_wait_for_idle(struct radv_cmd_buffer *cmd_buffer);
1410
1411 void radv_set_db_count_control(struct radv_cmd_buffer *cmd_buffer);
1412 bool
1413 radv_cmd_buffer_upload_alloc(struct radv_cmd_buffer *cmd_buffer,
1414 unsigned size,
1415 unsigned alignment,
1416 unsigned *out_offset,
1417 void **ptr);
1418 void
1419 radv_cmd_buffer_set_subpass(struct radv_cmd_buffer *cmd_buffer,
1420 const struct radv_subpass *subpass);
1421 bool
1422 radv_cmd_buffer_upload_data(struct radv_cmd_buffer *cmd_buffer,
1423 unsigned size, unsigned alignmnet,
1424 const void *data, unsigned *out_offset);
1425
1426 void radv_cmd_buffer_clear_subpass(struct radv_cmd_buffer *cmd_buffer);
1427 void radv_cmd_buffer_resolve_subpass(struct radv_cmd_buffer *cmd_buffer);
1428 void radv_cmd_buffer_resolve_subpass_cs(struct radv_cmd_buffer *cmd_buffer);
1429 void radv_depth_stencil_resolve_subpass_cs(struct radv_cmd_buffer *cmd_buffer,
1430 VkImageAspectFlags aspects,
1431 VkResolveModeFlagBits resolve_mode);
1432 void radv_cmd_buffer_resolve_subpass_fs(struct radv_cmd_buffer *cmd_buffer);
1433 void radv_depth_stencil_resolve_subpass_fs(struct radv_cmd_buffer *cmd_buffer,
1434 VkImageAspectFlags aspects,
1435 VkResolveModeFlagBits resolve_mode);
1436 void radv_emit_default_sample_locations(struct radeon_cmdbuf *cs, int nr_samples);
1437 unsigned radv_get_default_max_sample_dist(int log_samples);
1438 void radv_device_init_msaa(struct radv_device *device);
1439
1440 void radv_update_ds_clear_metadata(struct radv_cmd_buffer *cmd_buffer,
1441 const struct radv_image_view *iview,
1442 VkClearDepthStencilValue ds_clear_value,
1443 VkImageAspectFlags aspects);
1444
1445 void radv_update_color_clear_metadata(struct radv_cmd_buffer *cmd_buffer,
1446 const struct radv_image_view *iview,
1447 int cb_idx,
1448 uint32_t color_values[2]);
1449
1450 void radv_update_fce_metadata(struct radv_cmd_buffer *cmd_buffer,
1451 struct radv_image *image,
1452 const VkImageSubresourceRange *range, bool value);
1453
1454 void radv_update_dcc_metadata(struct radv_cmd_buffer *cmd_buffer,
1455 struct radv_image *image,
1456 const VkImageSubresourceRange *range, bool value);
1457
1458 uint32_t radv_fill_buffer(struct radv_cmd_buffer *cmd_buffer,
1459 struct radeon_winsys_bo *bo,
1460 uint64_t offset, uint64_t size, uint32_t value);
1461 void radv_cmd_buffer_trace_emit(struct radv_cmd_buffer *cmd_buffer);
1462 bool radv_get_memory_fd(struct radv_device *device,
1463 struct radv_device_memory *memory,
1464 int *pFD);
1465
1466 static inline void
1467 radv_emit_shader_pointer_head(struct radeon_cmdbuf *cs,
1468 unsigned sh_offset, unsigned pointer_count,
1469 bool use_32bit_pointers)
1470 {
1471 radeon_emit(cs, PKT3(PKT3_SET_SH_REG, pointer_count * (use_32bit_pointers ? 1 : 2), 0));
1472 radeon_emit(cs, (sh_offset - SI_SH_REG_OFFSET) >> 2);
1473 }
1474
1475 static inline void
1476 radv_emit_shader_pointer_body(struct radv_device *device,
1477 struct radeon_cmdbuf *cs,
1478 uint64_t va, bool use_32bit_pointers)
1479 {
1480 radeon_emit(cs, va);
1481
1482 if (use_32bit_pointers) {
1483 assert(va == 0 ||
1484 (va >> 32) == device->physical_device->rad_info.address32_hi);
1485 } else {
1486 radeon_emit(cs, va >> 32);
1487 }
1488 }
1489
1490 static inline void
1491 radv_emit_shader_pointer(struct radv_device *device,
1492 struct radeon_cmdbuf *cs,
1493 uint32_t sh_offset, uint64_t va, bool global)
1494 {
1495 bool use_32bit_pointers = !global;
1496
1497 radv_emit_shader_pointer_head(cs, sh_offset, 1, use_32bit_pointers);
1498 radv_emit_shader_pointer_body(device, cs, va, use_32bit_pointers);
1499 }
1500
1501 static inline struct radv_descriptor_state *
1502 radv_get_descriptors_state(struct radv_cmd_buffer *cmd_buffer,
1503 VkPipelineBindPoint bind_point)
1504 {
1505 assert(bind_point == VK_PIPELINE_BIND_POINT_GRAPHICS ||
1506 bind_point == VK_PIPELINE_BIND_POINT_COMPUTE);
1507 return &cmd_buffer->descriptors[bind_point];
1508 }
1509
1510 /*
1511 * Takes x,y,z as exact numbers of invocations, instead of blocks.
1512 *
1513 * Limitations: Can't call normal dispatch functions without binding or rebinding
1514 * the compute pipeline.
1515 */
1516 void radv_unaligned_dispatch(
1517 struct radv_cmd_buffer *cmd_buffer,
1518 uint32_t x,
1519 uint32_t y,
1520 uint32_t z);
1521
1522 struct radv_event {
1523 struct radeon_winsys_bo *bo;
1524 uint64_t *map;
1525 };
1526
1527 struct radv_shader_module;
1528
1529 #define RADV_HASH_SHADER_IS_GEOM_COPY_SHADER (1 << 0)
1530 #define RADV_HASH_SHADER_SISCHED (1 << 1)
1531 #define RADV_HASH_SHADER_NO_NGG (1 << 2)
1532 #define RADV_HASH_SHADER_CS_WAVE32 (1 << 3)
1533 #define RADV_HASH_SHADER_PS_WAVE32 (1 << 4)
1534 #define RADV_HASH_SHADER_GE_WAVE32 (1 << 5)
1535 #define RADV_HASH_SHADER_ACO (1 << 6)
1536
1537 void
1538 radv_hash_shaders(unsigned char *hash,
1539 const VkPipelineShaderStageCreateInfo **stages,
1540 const struct radv_pipeline_layout *layout,
1541 const struct radv_pipeline_key *key,
1542 uint32_t flags);
1543
1544 static inline gl_shader_stage
1545 vk_to_mesa_shader_stage(VkShaderStageFlagBits vk_stage)
1546 {
1547 assert(__builtin_popcount(vk_stage) == 1);
1548 return ffs(vk_stage) - 1;
1549 }
1550
1551 static inline VkShaderStageFlagBits
1552 mesa_to_vk_shader_stage(gl_shader_stage mesa_stage)
1553 {
1554 return (1 << mesa_stage);
1555 }
1556
1557 #define RADV_STAGE_MASK ((1 << MESA_SHADER_STAGES) - 1)
1558
1559 #define radv_foreach_stage(stage, stage_bits) \
1560 for (gl_shader_stage stage, \
1561 __tmp = (gl_shader_stage)((stage_bits) & RADV_STAGE_MASK); \
1562 stage = __builtin_ffs(__tmp) - 1, __tmp; \
1563 __tmp &= ~(1 << (stage)))
1564
1565 extern const VkFormat radv_fs_key_format_exemplars[NUM_META_FS_KEYS];
1566 unsigned radv_format_meta_fs_key(VkFormat format);
1567
1568 struct radv_multisample_state {
1569 uint32_t db_eqaa;
1570 uint32_t pa_sc_line_cntl;
1571 uint32_t pa_sc_mode_cntl_0;
1572 uint32_t pa_sc_mode_cntl_1;
1573 uint32_t pa_sc_aa_config;
1574 uint32_t pa_sc_aa_mask[2];
1575 unsigned num_samples;
1576 };
1577
1578 struct radv_prim_vertex_count {
1579 uint8_t min;
1580 uint8_t incr;
1581 };
1582
1583 struct radv_vertex_elements_info {
1584 uint32_t format_size[MAX_VERTEX_ATTRIBS];
1585 };
1586
1587 struct radv_ia_multi_vgt_param_helpers {
1588 uint32_t base;
1589 bool partial_es_wave;
1590 uint8_t primgroup_size;
1591 bool wd_switch_on_eop;
1592 bool ia_switch_on_eoi;
1593 bool partial_vs_wave;
1594 };
1595
1596 struct radv_binning_state {
1597 uint32_t pa_sc_binner_cntl_0;
1598 uint32_t db_dfsm_control;
1599 };
1600
1601 #define SI_GS_PER_ES 128
1602
1603 struct radv_pipeline {
1604 struct radv_device * device;
1605 struct radv_dynamic_state dynamic_state;
1606
1607 struct radv_pipeline_layout * layout;
1608
1609 bool need_indirect_descriptor_sets;
1610 struct radv_shader_variant * shaders[MESA_SHADER_STAGES];
1611 struct radv_shader_variant *gs_copy_shader;
1612 VkShaderStageFlags active_stages;
1613
1614 struct radeon_cmdbuf cs;
1615 uint32_t ctx_cs_hash;
1616 struct radeon_cmdbuf ctx_cs;
1617
1618 struct radv_vertex_elements_info vertex_elements;
1619
1620 uint32_t binding_stride[MAX_VBS];
1621 uint8_t num_vertex_bindings;
1622
1623 uint32_t user_data_0[MESA_SHADER_STAGES];
1624 union {
1625 struct {
1626 struct radv_multisample_state ms;
1627 struct radv_binning_state binning;
1628 uint32_t spi_baryc_cntl;
1629 bool prim_restart_enable;
1630 unsigned esgs_ring_size;
1631 unsigned gsvs_ring_size;
1632 uint32_t vtx_base_sgpr;
1633 struct radv_ia_multi_vgt_param_helpers ia_multi_vgt_param;
1634 uint8_t vtx_emit_num;
1635 struct radv_prim_vertex_count prim_vertex_count;
1636 bool can_use_guardband;
1637 uint32_t needed_dynamic_state;
1638 bool disable_out_of_order_rast_for_occlusion;
1639
1640 /* Used for rbplus */
1641 uint32_t col_format;
1642 uint32_t cb_target_mask;
1643 } graphics;
1644 };
1645
1646 unsigned max_waves;
1647 unsigned scratch_bytes_per_wave;
1648
1649 /* Not NULL if graphics pipeline uses streamout. */
1650 struct radv_shader_variant *streamout_shader;
1651 };
1652
1653 static inline bool radv_pipeline_has_gs(const struct radv_pipeline *pipeline)
1654 {
1655 return pipeline->shaders[MESA_SHADER_GEOMETRY] ? true : false;
1656 }
1657
1658 static inline bool radv_pipeline_has_tess(const struct radv_pipeline *pipeline)
1659 {
1660 return pipeline->shaders[MESA_SHADER_TESS_CTRL] ? true : false;
1661 }
1662
1663 bool radv_pipeline_has_ngg(const struct radv_pipeline *pipeline);
1664
1665 bool radv_pipeline_has_ngg_passthrough(const struct radv_pipeline *pipeline);
1666
1667 bool radv_pipeline_has_gs_copy_shader(const struct radv_pipeline *pipeline);
1668
1669 struct radv_userdata_info *radv_lookup_user_sgpr(struct radv_pipeline *pipeline,
1670 gl_shader_stage stage,
1671 int idx);
1672
1673 struct radv_shader_variant *radv_get_shader(struct radv_pipeline *pipeline,
1674 gl_shader_stage stage);
1675
1676 struct radv_graphics_pipeline_create_info {
1677 bool use_rectlist;
1678 bool db_depth_clear;
1679 bool db_stencil_clear;
1680 bool db_depth_disable_expclear;
1681 bool db_stencil_disable_expclear;
1682 bool db_flush_depth_inplace;
1683 bool db_flush_stencil_inplace;
1684 bool db_resummarize;
1685 uint32_t custom_blend_mode;
1686 };
1687
1688 VkResult
1689 radv_graphics_pipeline_create(VkDevice device,
1690 VkPipelineCache cache,
1691 const VkGraphicsPipelineCreateInfo *pCreateInfo,
1692 const struct radv_graphics_pipeline_create_info *extra,
1693 const VkAllocationCallbacks *alloc,
1694 VkPipeline *pPipeline);
1695
1696 struct radv_binning_settings {
1697 unsigned context_states_per_bin; /* allowed range: [1, 6] */
1698 unsigned persistent_states_per_bin; /* allowed range: [1, 32] */
1699 unsigned fpovs_per_batch; /* allowed range: [0, 255], 0 = unlimited */
1700 };
1701
1702 struct radv_binning_settings
1703 radv_get_binning_settings(const struct radv_physical_device *pdev);
1704
1705 struct vk_format_description;
1706 uint32_t radv_translate_buffer_dataformat(const struct vk_format_description *desc,
1707 int first_non_void);
1708 uint32_t radv_translate_buffer_numformat(const struct vk_format_description *desc,
1709 int first_non_void);
1710 bool radv_is_buffer_format_supported(VkFormat format, bool *scaled);
1711 uint32_t radv_translate_colorformat(VkFormat format);
1712 uint32_t radv_translate_color_numformat(VkFormat format,
1713 const struct vk_format_description *desc,
1714 int first_non_void);
1715 uint32_t radv_colorformat_endian_swap(uint32_t colorformat);
1716 unsigned radv_translate_colorswap(VkFormat format, bool do_endian_swap);
1717 uint32_t radv_translate_dbformat(VkFormat format);
1718 uint32_t radv_translate_tex_dataformat(VkFormat format,
1719 const struct vk_format_description *desc,
1720 int first_non_void);
1721 uint32_t radv_translate_tex_numformat(VkFormat format,
1722 const struct vk_format_description *desc,
1723 int first_non_void);
1724 bool radv_format_pack_clear_color(VkFormat format,
1725 uint32_t clear_vals[2],
1726 VkClearColorValue *value);
1727 bool radv_is_colorbuffer_format_supported(VkFormat format, bool *blendable);
1728 bool radv_dcc_formats_compatible(VkFormat format1,
1729 VkFormat format2);
1730 bool radv_device_supports_etc(struct radv_physical_device *physical_device);
1731
1732 struct radv_image_plane {
1733 VkFormat format;
1734 struct radeon_surf surface;
1735 uint64_t offset;
1736 };
1737
1738 struct radv_image {
1739 VkImageType type;
1740 /* The original VkFormat provided by the client. This may not match any
1741 * of the actual surface formats.
1742 */
1743 VkFormat vk_format;
1744 VkImageAspectFlags aspects;
1745 VkImageUsageFlags usage; /**< Superset of VkImageCreateInfo::usage. */
1746 struct ac_surf_info info;
1747 VkImageTiling tiling; /** VkImageCreateInfo::tiling */
1748 VkImageCreateFlags flags; /** VkImageCreateInfo::flags */
1749
1750 VkDeviceSize size;
1751 uint32_t alignment;
1752
1753 unsigned queue_family_mask;
1754 bool exclusive;
1755 bool shareable;
1756
1757 /* Set when bound */
1758 struct radeon_winsys_bo *bo;
1759 VkDeviceSize offset;
1760 uint64_t dcc_offset;
1761 uint64_t htile_offset;
1762 bool tc_compatible_htile;
1763 bool tc_compatible_cmask;
1764
1765 uint64_t cmask_offset;
1766 uint64_t fmask_offset;
1767 uint64_t clear_value_offset;
1768 uint64_t fce_pred_offset;
1769 uint64_t dcc_pred_offset;
1770
1771 /*
1772 * Metadata for the TC-compat zrange workaround. If the 32-bit value
1773 * stored at this offset is UINT_MAX, the driver will emit
1774 * DB_Z_INFO.ZRANGE_PRECISION=0, otherwise it will skip the
1775 * SET_CONTEXT_REG packet.
1776 */
1777 uint64_t tc_compat_zrange_offset;
1778
1779 /* For VK_ANDROID_native_buffer, the WSI image owns the memory, */
1780 VkDeviceMemory owned_memory;
1781
1782 unsigned plane_count;
1783 struct radv_image_plane planes[0];
1784 };
1785
1786 /* Whether the image has a htile that is known consistent with the contents of
1787 * the image. */
1788 bool radv_layout_has_htile(const struct radv_image *image,
1789 VkImageLayout layout,
1790 bool in_render_loop,
1791 unsigned queue_mask);
1792
1793 /* Whether the image has a htile that is known consistent with the contents of
1794 * the image and is allowed to be in compressed form.
1795 *
1796 * If this is false reads that don't use the htile should be able to return
1797 * correct results.
1798 */
1799 bool radv_layout_is_htile_compressed(const struct radv_image *image,
1800 VkImageLayout layout,
1801 bool in_render_loop,
1802 unsigned queue_mask);
1803
1804 bool radv_layout_can_fast_clear(const struct radv_image *image,
1805 VkImageLayout layout,
1806 bool in_render_loop,
1807 unsigned queue_mask);
1808
1809 bool radv_layout_dcc_compressed(const struct radv_device *device,
1810 const struct radv_image *image,
1811 VkImageLayout layout,
1812 bool in_render_loop,
1813 unsigned queue_mask);
1814
1815 /**
1816 * Return whether the image has CMASK metadata for color surfaces.
1817 */
1818 static inline bool
1819 radv_image_has_cmask(const struct radv_image *image)
1820 {
1821 return image->cmask_offset;
1822 }
1823
1824 /**
1825 * Return whether the image has FMASK metadata for color surfaces.
1826 */
1827 static inline bool
1828 radv_image_has_fmask(const struct radv_image *image)
1829 {
1830 return image->fmask_offset;
1831 }
1832
1833 /**
1834 * Return whether the image has DCC metadata for color surfaces.
1835 */
1836 static inline bool
1837 radv_image_has_dcc(const struct radv_image *image)
1838 {
1839 return image->planes[0].surface.dcc_size;
1840 }
1841
1842 /**
1843 * Return whether the image is TC-compatible CMASK.
1844 */
1845 static inline bool
1846 radv_image_is_tc_compat_cmask(const struct radv_image *image)
1847 {
1848 return radv_image_has_fmask(image) && image->tc_compatible_cmask;
1849 }
1850
1851 /**
1852 * Return whether DCC metadata is enabled for a level.
1853 */
1854 static inline bool
1855 radv_dcc_enabled(const struct radv_image *image, unsigned level)
1856 {
1857 return radv_image_has_dcc(image) &&
1858 level < image->planes[0].surface.num_dcc_levels;
1859 }
1860
1861 /**
1862 * Return whether the image has CB metadata.
1863 */
1864 static inline bool
1865 radv_image_has_CB_metadata(const struct radv_image *image)
1866 {
1867 return radv_image_has_cmask(image) ||
1868 radv_image_has_fmask(image) ||
1869 radv_image_has_dcc(image);
1870 }
1871
1872 /**
1873 * Return whether the image has HTILE metadata for depth surfaces.
1874 */
1875 static inline bool
1876 radv_image_has_htile(const struct radv_image *image)
1877 {
1878 return image->planes[0].surface.htile_size;
1879 }
1880
1881 /**
1882 * Return whether HTILE metadata is enabled for a level.
1883 */
1884 static inline bool
1885 radv_htile_enabled(const struct radv_image *image, unsigned level)
1886 {
1887 return radv_image_has_htile(image) && level == 0;
1888 }
1889
1890 /**
1891 * Return whether the image is TC-compatible HTILE.
1892 */
1893 static inline bool
1894 radv_image_is_tc_compat_htile(const struct radv_image *image)
1895 {
1896 return radv_image_has_htile(image) && image->tc_compatible_htile;
1897 }
1898
1899 static inline uint64_t
1900 radv_image_get_fast_clear_va(const struct radv_image *image,
1901 uint32_t base_level)
1902 {
1903 uint64_t va = radv_buffer_get_va(image->bo);
1904 va += image->offset + image->clear_value_offset + base_level * 8;
1905 return va;
1906 }
1907
1908 static inline uint64_t
1909 radv_image_get_fce_pred_va(const struct radv_image *image,
1910 uint32_t base_level)
1911 {
1912 uint64_t va = radv_buffer_get_va(image->bo);
1913 va += image->offset + image->fce_pred_offset + base_level * 8;
1914 return va;
1915 }
1916
1917 static inline uint64_t
1918 radv_image_get_dcc_pred_va(const struct radv_image *image,
1919 uint32_t base_level)
1920 {
1921 uint64_t va = radv_buffer_get_va(image->bo);
1922 va += image->offset + image->dcc_pred_offset + base_level * 8;
1923 return va;
1924 }
1925
1926 static inline uint64_t
1927 radv_get_tc_compat_zrange_va(const struct radv_image *image,
1928 uint32_t base_level)
1929 {
1930 uint64_t va = radv_buffer_get_va(image->bo);
1931 va += image->offset + image->tc_compat_zrange_offset + base_level * 4;
1932 return va;
1933 }
1934
1935 static inline uint64_t
1936 radv_get_ds_clear_value_va(const struct radv_image *image,
1937 uint32_t base_level)
1938 {
1939 uint64_t va = radv_buffer_get_va(image->bo);
1940 va += image->offset + image->clear_value_offset + base_level * 8;
1941 return va;
1942 }
1943
1944 unsigned radv_image_queue_family_mask(const struct radv_image *image, uint32_t family, uint32_t queue_family);
1945
1946 static inline uint32_t
1947 radv_get_layerCount(const struct radv_image *image,
1948 const VkImageSubresourceRange *range)
1949 {
1950 return range->layerCount == VK_REMAINING_ARRAY_LAYERS ?
1951 image->info.array_size - range->baseArrayLayer : range->layerCount;
1952 }
1953
1954 static inline uint32_t
1955 radv_get_levelCount(const struct radv_image *image,
1956 const VkImageSubresourceRange *range)
1957 {
1958 return range->levelCount == VK_REMAINING_MIP_LEVELS ?
1959 image->info.levels - range->baseMipLevel : range->levelCount;
1960 }
1961
1962 struct radeon_bo_metadata;
1963 void
1964 radv_init_metadata(struct radv_device *device,
1965 struct radv_image *image,
1966 struct radeon_bo_metadata *metadata);
1967
1968 void
1969 radv_image_override_offset_stride(struct radv_device *device,
1970 struct radv_image *image,
1971 uint64_t offset, uint32_t stride);
1972
1973 union radv_descriptor {
1974 struct {
1975 uint32_t plane0_descriptor[8];
1976 uint32_t fmask_descriptor[8];
1977 };
1978 struct {
1979 uint32_t plane_descriptors[3][8];
1980 };
1981 };
1982
1983 struct radv_image_view {
1984 struct radv_image *image; /**< VkImageViewCreateInfo::image */
1985 struct radeon_winsys_bo *bo;
1986
1987 VkImageViewType type;
1988 VkImageAspectFlags aspect_mask;
1989 VkFormat vk_format;
1990 unsigned plane_id;
1991 bool multiple_planes;
1992 uint32_t base_layer;
1993 uint32_t layer_count;
1994 uint32_t base_mip;
1995 uint32_t level_count;
1996 VkExtent3D extent; /**< Extent of VkImageViewCreateInfo::baseMipLevel. */
1997
1998 union radv_descriptor descriptor;
1999
2000 /* Descriptor for use as a storage image as opposed to a sampled image.
2001 * This has a few differences for cube maps (e.g. type).
2002 */
2003 union radv_descriptor storage_descriptor;
2004 };
2005
2006 struct radv_image_create_info {
2007 const VkImageCreateInfo *vk_info;
2008 bool scanout;
2009 bool no_metadata_planes;
2010 const struct radeon_bo_metadata *bo_metadata;
2011 };
2012
2013 VkResult
2014 radv_image_create_layout(struct radv_device *device,
2015 struct radv_image_create_info create_info,
2016 struct radv_image *image);
2017
2018 VkResult radv_image_create(VkDevice _device,
2019 const struct radv_image_create_info *info,
2020 const VkAllocationCallbacks* alloc,
2021 VkImage *pImage);
2022
2023 bool vi_alpha_is_on_msb(struct radv_device *device, VkFormat format);
2024
2025 VkResult
2026 radv_image_from_gralloc(VkDevice device_h,
2027 const VkImageCreateInfo *base_info,
2028 const VkNativeBufferANDROID *gralloc_info,
2029 const VkAllocationCallbacks *alloc,
2030 VkImage *out_image_h);
2031 uint64_t
2032 radv_ahb_usage_from_vk_usage(const VkImageCreateFlags vk_create,
2033 const VkImageUsageFlags vk_usage);
2034 VkResult
2035 radv_import_ahb_memory(struct radv_device *device,
2036 struct radv_device_memory *mem,
2037 unsigned priority,
2038 const VkImportAndroidHardwareBufferInfoANDROID *info);
2039 VkResult
2040 radv_create_ahb_memory(struct radv_device *device,
2041 struct radv_device_memory *mem,
2042 unsigned priority,
2043 const VkMemoryAllocateInfo *pAllocateInfo);
2044
2045 VkFormat
2046 radv_select_android_external_format(const void *next, VkFormat default_format);
2047
2048 bool radv_android_gralloc_supports_format(VkFormat format, VkImageUsageFlagBits usage);
2049
2050 struct radv_image_view_extra_create_info {
2051 bool disable_compression;
2052 };
2053
2054 void radv_image_view_init(struct radv_image_view *view,
2055 struct radv_device *device,
2056 const VkImageViewCreateInfo *pCreateInfo,
2057 const struct radv_image_view_extra_create_info* extra_create_info);
2058
2059 VkFormat radv_get_aspect_format(struct radv_image *image, VkImageAspectFlags mask);
2060
2061 struct radv_sampler_ycbcr_conversion {
2062 VkFormat format;
2063 VkSamplerYcbcrModelConversion ycbcr_model;
2064 VkSamplerYcbcrRange ycbcr_range;
2065 VkComponentMapping components;
2066 VkChromaLocation chroma_offsets[2];
2067 VkFilter chroma_filter;
2068 };
2069
2070 struct radv_buffer_view {
2071 struct radeon_winsys_bo *bo;
2072 VkFormat vk_format;
2073 uint64_t range; /**< VkBufferViewCreateInfo::range */
2074 uint32_t state[4];
2075 };
2076 void radv_buffer_view_init(struct radv_buffer_view *view,
2077 struct radv_device *device,
2078 const VkBufferViewCreateInfo* pCreateInfo);
2079
2080 static inline struct VkExtent3D
2081 radv_sanitize_image_extent(const VkImageType imageType,
2082 const struct VkExtent3D imageExtent)
2083 {
2084 switch (imageType) {
2085 case VK_IMAGE_TYPE_1D:
2086 return (VkExtent3D) { imageExtent.width, 1, 1 };
2087 case VK_IMAGE_TYPE_2D:
2088 return (VkExtent3D) { imageExtent.width, imageExtent.height, 1 };
2089 case VK_IMAGE_TYPE_3D:
2090 return imageExtent;
2091 default:
2092 unreachable("invalid image type");
2093 }
2094 }
2095
2096 static inline struct VkOffset3D
2097 radv_sanitize_image_offset(const VkImageType imageType,
2098 const struct VkOffset3D imageOffset)
2099 {
2100 switch (imageType) {
2101 case VK_IMAGE_TYPE_1D:
2102 return (VkOffset3D) { imageOffset.x, 0, 0 };
2103 case VK_IMAGE_TYPE_2D:
2104 return (VkOffset3D) { imageOffset.x, imageOffset.y, 0 };
2105 case VK_IMAGE_TYPE_3D:
2106 return imageOffset;
2107 default:
2108 unreachable("invalid image type");
2109 }
2110 }
2111
2112 static inline bool
2113 radv_image_extent_compare(const struct radv_image *image,
2114 const VkExtent3D *extent)
2115 {
2116 if (extent->width != image->info.width ||
2117 extent->height != image->info.height ||
2118 extent->depth != image->info.depth)
2119 return false;
2120 return true;
2121 }
2122
2123 struct radv_sampler {
2124 uint32_t state[4];
2125 struct radv_sampler_ycbcr_conversion *ycbcr_sampler;
2126 };
2127
2128 struct radv_framebuffer {
2129 uint32_t width;
2130 uint32_t height;
2131 uint32_t layers;
2132
2133 uint32_t attachment_count;
2134 struct radv_image_view *attachments[0];
2135 };
2136
2137 struct radv_subpass_barrier {
2138 VkPipelineStageFlags src_stage_mask;
2139 VkAccessFlags src_access_mask;
2140 VkAccessFlags dst_access_mask;
2141 };
2142
2143 void radv_subpass_barrier(struct radv_cmd_buffer *cmd_buffer,
2144 const struct radv_subpass_barrier *barrier);
2145
2146 struct radv_subpass_attachment {
2147 uint32_t attachment;
2148 VkImageLayout layout;
2149 VkImageLayout stencil_layout;
2150 bool in_render_loop;
2151 };
2152
2153 struct radv_subpass {
2154 uint32_t attachment_count;
2155 struct radv_subpass_attachment * attachments;
2156
2157 uint32_t input_count;
2158 uint32_t color_count;
2159 struct radv_subpass_attachment * input_attachments;
2160 struct radv_subpass_attachment * color_attachments;
2161 struct radv_subpass_attachment * resolve_attachments;
2162 struct radv_subpass_attachment * depth_stencil_attachment;
2163 struct radv_subpass_attachment * ds_resolve_attachment;
2164 VkResolveModeFlagBits depth_resolve_mode;
2165 VkResolveModeFlagBits stencil_resolve_mode;
2166
2167 /** Subpass has at least one color resolve attachment */
2168 bool has_color_resolve;
2169
2170 /** Subpass has at least one color attachment */
2171 bool has_color_att;
2172
2173 struct radv_subpass_barrier start_barrier;
2174
2175 uint32_t view_mask;
2176
2177 VkSampleCountFlagBits color_sample_count;
2178 VkSampleCountFlagBits depth_sample_count;
2179 VkSampleCountFlagBits max_sample_count;
2180 };
2181
2182 uint32_t
2183 radv_get_subpass_id(struct radv_cmd_buffer *cmd_buffer);
2184
2185 struct radv_render_pass_attachment {
2186 VkFormat format;
2187 uint32_t samples;
2188 VkAttachmentLoadOp load_op;
2189 VkAttachmentLoadOp stencil_load_op;
2190 VkImageLayout initial_layout;
2191 VkImageLayout final_layout;
2192 VkImageLayout stencil_initial_layout;
2193 VkImageLayout stencil_final_layout;
2194
2195 /* The subpass id in which the attachment will be used first/last. */
2196 uint32_t first_subpass_idx;
2197 uint32_t last_subpass_idx;
2198 };
2199
2200 struct radv_render_pass {
2201 uint32_t attachment_count;
2202 uint32_t subpass_count;
2203 struct radv_subpass_attachment * subpass_attachments;
2204 struct radv_render_pass_attachment * attachments;
2205 struct radv_subpass_barrier end_barrier;
2206 struct radv_subpass subpasses[0];
2207 };
2208
2209 VkResult radv_device_init_meta(struct radv_device *device);
2210 void radv_device_finish_meta(struct radv_device *device);
2211
2212 struct radv_query_pool {
2213 struct radeon_winsys_bo *bo;
2214 uint32_t stride;
2215 uint32_t availability_offset;
2216 uint64_t size;
2217 char *ptr;
2218 VkQueryType type;
2219 uint32_t pipeline_stats_mask;
2220 };
2221
2222 typedef enum {
2223 RADV_SEMAPHORE_NONE,
2224 RADV_SEMAPHORE_WINSYS,
2225 RADV_SEMAPHORE_SYNCOBJ,
2226 RADV_SEMAPHORE_TIMELINE,
2227 } radv_semaphore_kind;
2228
2229 struct radv_deferred_queue_submission;
2230
2231 struct radv_timeline_waiter {
2232 struct list_head list;
2233 struct radv_deferred_queue_submission *submission;
2234 uint64_t value;
2235 };
2236
2237 struct radv_timeline_point {
2238 struct list_head list;
2239
2240 uint64_t value;
2241 uint32_t syncobj;
2242
2243 /* Separate from the list to accomodate CPU wait being async, as well
2244 * as prevent point deletion during submission. */
2245 unsigned wait_count;
2246 };
2247
2248 struct radv_timeline {
2249 /* Using a pthread mutex to be compatible with condition variables. */
2250 pthread_mutex_t mutex;
2251
2252 uint64_t highest_signaled;
2253 uint64_t highest_submitted;
2254
2255 struct list_head points;
2256
2257 /* Keep free points on hand so we do not have to recreate syncobjs all
2258 * the time. */
2259 struct list_head free_points;
2260
2261 /* Submissions that are deferred waiting for a specific value to be
2262 * submitted. */
2263 struct list_head waiters;
2264 };
2265
2266 struct radv_semaphore_part {
2267 radv_semaphore_kind kind;
2268 union {
2269 uint32_t syncobj;
2270 struct radeon_winsys_sem *ws_sem;
2271 struct radv_timeline timeline;
2272 };
2273 };
2274
2275 struct radv_semaphore {
2276 struct radv_semaphore_part permanent;
2277 struct radv_semaphore_part temporary;
2278 };
2279
2280 void radv_set_descriptor_set(struct radv_cmd_buffer *cmd_buffer,
2281 VkPipelineBindPoint bind_point,
2282 struct radv_descriptor_set *set,
2283 unsigned idx);
2284
2285 void
2286 radv_update_descriptor_sets(struct radv_device *device,
2287 struct radv_cmd_buffer *cmd_buffer,
2288 VkDescriptorSet overrideSet,
2289 uint32_t descriptorWriteCount,
2290 const VkWriteDescriptorSet *pDescriptorWrites,
2291 uint32_t descriptorCopyCount,
2292 const VkCopyDescriptorSet *pDescriptorCopies);
2293
2294 void
2295 radv_update_descriptor_set_with_template(struct radv_device *device,
2296 struct radv_cmd_buffer *cmd_buffer,
2297 struct radv_descriptor_set *set,
2298 VkDescriptorUpdateTemplate descriptorUpdateTemplate,
2299 const void *pData);
2300
2301 void radv_meta_push_descriptor_set(struct radv_cmd_buffer *cmd_buffer,
2302 VkPipelineBindPoint pipelineBindPoint,
2303 VkPipelineLayout _layout,
2304 uint32_t set,
2305 uint32_t descriptorWriteCount,
2306 const VkWriteDescriptorSet *pDescriptorWrites);
2307
2308 void radv_initialize_dcc(struct radv_cmd_buffer *cmd_buffer,
2309 struct radv_image *image,
2310 const VkImageSubresourceRange *range, uint32_t value);
2311
2312 void radv_initialize_fmask(struct radv_cmd_buffer *cmd_buffer,
2313 struct radv_image *image,
2314 const VkImageSubresourceRange *range);
2315
2316 struct radv_fence {
2317 struct radeon_winsys_fence *fence;
2318 struct wsi_fence *fence_wsi;
2319
2320 uint32_t syncobj;
2321 uint32_t temp_syncobj;
2322 };
2323
2324 /* radv_nir_to_llvm.c */
2325 struct radv_shader_args;
2326
2327 void radv_compile_gs_copy_shader(struct ac_llvm_compiler *ac_llvm,
2328 struct nir_shader *geom_shader,
2329 struct radv_shader_binary **rbinary,
2330 const struct radv_shader_args *args);
2331
2332 void radv_compile_nir_shader(struct ac_llvm_compiler *ac_llvm,
2333 struct radv_shader_binary **rbinary,
2334 const struct radv_shader_args *args,
2335 struct nir_shader *const *nir,
2336 int nir_count);
2337
2338 unsigned radv_nir_get_max_workgroup_size(enum chip_class chip_class,
2339 gl_shader_stage stage,
2340 const struct nir_shader *nir);
2341
2342 /* radv_shader_info.h */
2343 struct radv_shader_info;
2344 struct radv_shader_variant_key;
2345
2346 void radv_nir_shader_info_pass(const struct nir_shader *nir,
2347 const struct radv_pipeline_layout *layout,
2348 const struct radv_shader_variant_key *key,
2349 struct radv_shader_info *info);
2350
2351 void radv_nir_shader_info_init(struct radv_shader_info *info);
2352
2353 struct radeon_winsys_sem;
2354
2355 uint64_t radv_get_current_time(void);
2356
2357 static inline uint32_t
2358 si_conv_gl_prim_to_vertices(unsigned gl_prim)
2359 {
2360 switch (gl_prim) {
2361 case 0: /* GL_POINTS */
2362 return 1;
2363 case 1: /* GL_LINES */
2364 case 3: /* GL_LINE_STRIP */
2365 return 2;
2366 case 4: /* GL_TRIANGLES */
2367 case 5: /* GL_TRIANGLE_STRIP */
2368 return 3;
2369 case 0xA: /* GL_LINE_STRIP_ADJACENCY_ARB */
2370 return 4;
2371 case 0xc: /* GL_TRIANGLES_ADJACENCY_ARB */
2372 return 6;
2373 case 7: /* GL_QUADS */
2374 return V_028A6C_OUTPRIM_TYPE_TRISTRIP;
2375 default:
2376 assert(0);
2377 return 0;
2378 }
2379 }
2380
2381 #define RADV_DEFINE_HANDLE_CASTS(__radv_type, __VkType) \
2382 \
2383 static inline struct __radv_type * \
2384 __radv_type ## _from_handle(__VkType _handle) \
2385 { \
2386 return (struct __radv_type *) _handle; \
2387 } \
2388 \
2389 static inline __VkType \
2390 __radv_type ## _to_handle(struct __radv_type *_obj) \
2391 { \
2392 return (__VkType) _obj; \
2393 }
2394
2395 #define RADV_DEFINE_NONDISP_HANDLE_CASTS(__radv_type, __VkType) \
2396 \
2397 static inline struct __radv_type * \
2398 __radv_type ## _from_handle(__VkType _handle) \
2399 { \
2400 return (struct __radv_type *)(uintptr_t) _handle; \
2401 } \
2402 \
2403 static inline __VkType \
2404 __radv_type ## _to_handle(struct __radv_type *_obj) \
2405 { \
2406 return (__VkType)(uintptr_t) _obj; \
2407 }
2408
2409 #define RADV_FROM_HANDLE(__radv_type, __name, __handle) \
2410 struct __radv_type *__name = __radv_type ## _from_handle(__handle)
2411
2412 RADV_DEFINE_HANDLE_CASTS(radv_cmd_buffer, VkCommandBuffer)
2413 RADV_DEFINE_HANDLE_CASTS(radv_device, VkDevice)
2414 RADV_DEFINE_HANDLE_CASTS(radv_instance, VkInstance)
2415 RADV_DEFINE_HANDLE_CASTS(radv_physical_device, VkPhysicalDevice)
2416 RADV_DEFINE_HANDLE_CASTS(radv_queue, VkQueue)
2417
2418 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_cmd_pool, VkCommandPool)
2419 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_buffer, VkBuffer)
2420 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_buffer_view, VkBufferView)
2421 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_descriptor_pool, VkDescriptorPool)
2422 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_descriptor_set, VkDescriptorSet)
2423 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_descriptor_set_layout, VkDescriptorSetLayout)
2424 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_descriptor_update_template, VkDescriptorUpdateTemplate)
2425 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_device_memory, VkDeviceMemory)
2426 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_fence, VkFence)
2427 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_event, VkEvent)
2428 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_framebuffer, VkFramebuffer)
2429 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_image, VkImage)
2430 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_image_view, VkImageView);
2431 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_pipeline_cache, VkPipelineCache)
2432 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_pipeline, VkPipeline)
2433 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_pipeline_layout, VkPipelineLayout)
2434 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_query_pool, VkQueryPool)
2435 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_render_pass, VkRenderPass)
2436 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_sampler, VkSampler)
2437 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_sampler_ycbcr_conversion, VkSamplerYcbcrConversion)
2438 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_shader_module, VkShaderModule)
2439 RADV_DEFINE_NONDISP_HANDLE_CASTS(radv_semaphore, VkSemaphore)
2440
2441 #endif /* RADV_PRIVATE_H */