radeonsi: add chip class to compiler_ctx_state
[mesa.git] / src / gallium / drivers / radeonsi / si_shader.h
1 /*
2 * Copyright 2012 Advanced Micro Devices, Inc.
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * on the rights to use, copy, modify, merge, publish, distribute, sub
8 * license, and/or sell copies of the Software, and to permit persons to whom
9 * the Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice (including the next
12 * paragraph) shall be included in all copies or substantial portions of the
13 * Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
18 * THE AUTHOR(S) AND/OR THEIR SUPPLIERS BE LIABLE FOR ANY CLAIM,
19 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
20 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
21 * USE OR OTHER DEALINGS IN THE SOFTWARE.
22 */
23
24 /* The compiler middle-end architecture: Explaining (non-)monolithic shaders
25 * -------------------------------------------------------------------------
26 *
27 * Typically, there is one-to-one correspondence between API and HW shaders,
28 * that is, for every API shader, there is exactly one shader binary in
29 * the driver.
30 *
31 * The problem with that is that we also have to emulate some API states
32 * (e.g. alpha-test, and many others) in shaders too. The two obvious ways
33 * to deal with it are:
34 * - each shader has multiple variants for each combination of emulated states,
35 * and the variants are compiled on demand, possibly relying on a shader
36 * cache for good performance
37 * - patch shaders at the binary level
38 *
39 * This driver uses something completely different. The emulated states are
40 * usually implemented at the beginning or end of shaders. Therefore, we can
41 * split the shader into 3 parts:
42 * - prolog part (shader code dependent on states)
43 * - main part (the API shader)
44 * - epilog part (shader code dependent on states)
45 *
46 * Each part is compiled as a separate shader and the final binaries are
47 * concatenated. This type of shader is called non-monolithic, because it
48 * consists of multiple independent binaries. Creating a new shader variant
49 * is therefore only a concatenation of shader parts (binaries) and doesn't
50 * involve any compilation. The main shader parts are the only parts that are
51 * compiled when applications create shader objects. The prolog and epilog
52 * parts are compiled on the first use and saved, so that their binaries can
53 * be reused by many other shaders.
54 *
55 * One of the roles of the prolog part is to compute vertex buffer addresses
56 * for vertex shaders. A few of the roles of the epilog part are color buffer
57 * format conversions in pixel shaders that we have to do manually, and write
58 * tessellation factors in tessellation control shaders. The prolog and epilog
59 * have many other important responsibilities in various shader stages.
60 * They don't just "emulate legacy stuff".
61 *
62 * Monolithic shaders are shaders where the parts are combined before LLVM
63 * compilation, and the whole thing is compiled and optimized as one unit with
64 * one binary on the output. The result is the same as the non-monolithic
65 * shader, but the final code can be better, because LLVM can optimize across
66 * all shader parts. Monolithic shaders aren't usually used except for these
67 * special cases:
68 *
69 * 1) Some rarely-used states require modification of the main shader part
70 * itself, and in such cases, only the monolithic shader variant is
71 * compiled, and that's always done on the first use.
72 *
73 * 2) When we do cross-stage optimizations for separate shader objects and
74 * e.g. eliminate unused shader varyings, the resulting optimized shader
75 * variants are always compiled as monolithic shaders, and always
76 * asynchronously (i.e. not stalling ongoing rendering). We call them
77 * "optimized monolithic" shaders. The important property here is that
78 * the non-monolithic unoptimized shader variant is always available for use
79 * when the asynchronous compilation of the optimized shader is not done
80 * yet.
81 *
82 * Starting with GFX9 chips, some shader stages are merged, and the number of
83 * shader parts per shader increased. The complete new list of shader parts is:
84 * - 1st shader: prolog part
85 * - 1st shader: main part
86 * - 2nd shader: prolog part
87 * - 2nd shader: main part
88 * - 2nd shader: epilog part
89 */
90
91 /* How linking shader inputs and outputs between vertex, tessellation, and
92 * geometry shaders works.
93 *
94 * Inputs and outputs between shaders are stored in a buffer. This buffer
95 * lives in LDS (typical case for tessellation), but it can also live
96 * in memory (ESGS). Each input or output has a fixed location within a vertex.
97 * The highest used input or output determines the stride between vertices.
98 *
99 * Since GS and tessellation are only possible in the OpenGL core profile,
100 * only these semantics are valid for per-vertex data:
101 *
102 * Name Location
103 *
104 * POSITION 0
105 * PSIZE 1
106 * CLIPDIST0..1 2..3
107 * CULLDIST0..1 (not implemented)
108 * GENERIC0..31 4..35
109 *
110 * For example, a shader only writing GENERIC0 has the output stride of 5.
111 *
112 * Only these semantics are valid for per-patch data:
113 *
114 * Name Location
115 *
116 * TESSOUTER 0
117 * TESSINNER 1
118 * PATCH0..29 2..31
119 *
120 * That's how independent shaders agree on input and output locations.
121 * The si_shader_io_get_unique_index function assigns the locations.
122 *
123 * For tessellation, other required information for calculating the input and
124 * output addresses like the vertex stride, the patch stride, and the offsets
125 * where per-vertex and per-patch data start, is passed to the shader via
126 * user data SGPRs. The offsets and strides are calculated at draw time and
127 * aren't available at compile time.
128 */
129
130 #ifndef SI_SHADER_H
131 #define SI_SHADER_H
132
133 #include <llvm-c/Core.h> /* LLVMModuleRef */
134 #include <llvm-c/TargetMachine.h>
135 #include "tgsi/tgsi_scan.h"
136 #include "util/u_queue.h"
137
138 #include "ac_binary.h"
139 #include "ac_llvm_build.h"
140 #include "si_state.h"
141
142 struct nir_shader;
143
144 #define SI_MAX_VS_OUTPUTS 40
145
146 /* Shader IO unique indices are supported for TGSI_SEMANTIC_GENERIC with an
147 * index smaller than this.
148 */
149 #define SI_MAX_IO_GENERIC 46
150
151 /* SGPR user data indices */
152 enum {
153 SI_SGPR_RW_BUFFERS, /* rings (& stream-out, VS only) */
154 #if !HAVE_32BIT_POINTERS
155 SI_SGPR_RW_BUFFERS_HI,
156 #endif
157 SI_SGPR_BINDLESS_SAMPLERS_AND_IMAGES,
158 #if !HAVE_32BIT_POINTERS
159 SI_SGPR_BINDLESS_SAMPLERS_AND_IMAGES_HI,
160 #endif
161 SI_SGPR_CONST_AND_SHADER_BUFFERS, /* or just a constant buffer 0 pointer */
162 #if !HAVE_32BIT_POINTERS
163 SI_SGPR_CONST_AND_SHADER_BUFFERS_HI,
164 #endif
165 SI_SGPR_SAMPLERS_AND_IMAGES,
166 #if !HAVE_32BIT_POINTERS
167 SI_SGPR_SAMPLERS_AND_IMAGES_HI,
168 #endif
169 SI_NUM_RESOURCE_SGPRS,
170
171 /* all VS variants */
172 SI_SGPR_BASE_VERTEX = SI_NUM_RESOURCE_SGPRS,
173 SI_SGPR_START_INSTANCE,
174 SI_SGPR_DRAWID,
175 SI_SGPR_VS_STATE_BITS,
176 SI_VS_NUM_USER_SGPR,
177
178 SI_SGPR_VS_BLIT_DATA = SI_SGPR_CONST_AND_SHADER_BUFFERS,
179
180 /* TES */
181 SI_SGPR_TES_OFFCHIP_LAYOUT = SI_NUM_RESOURCE_SGPRS,
182 SI_SGPR_TES_OFFCHIP_ADDR,
183 SI_TES_NUM_USER_SGPR,
184
185 /* GFX6-8: TCS only */
186 GFX6_SGPR_TCS_OFFCHIP_LAYOUT = SI_NUM_RESOURCE_SGPRS,
187 GFX6_SGPR_TCS_OUT_OFFSETS,
188 GFX6_SGPR_TCS_OUT_LAYOUT,
189 GFX6_SGPR_TCS_IN_LAYOUT,
190 GFX6_TCS_NUM_USER_SGPR,
191
192 /* GFX9: Merged shaders. */
193 #if HAVE_32BIT_POINTERS
194 /* 2ND_CONST_AND_SHADER_BUFFERS is set in USER_DATA_ADDR_LO (SGPR0). */
195 /* 2ND_SAMPLERS_AND_IMAGES is set in USER_DATA_ADDR_HI (SGPR1). */
196 GFX9_MERGED_NUM_USER_SGPR = SI_VS_NUM_USER_SGPR,
197 #else
198 /* 2ND_CONST_AND_SHADER_BUFFERS is set in USER_DATA_ADDR_LO/HI (SGPR[0:1]). */
199 GFX9_SGPR_2ND_SAMPLERS_AND_IMAGES = SI_VS_NUM_USER_SGPR,
200 GFX9_SGPR_2ND_SAMPLERS_AND_IMAGES_HI,
201 GFX9_MERGED_NUM_USER_SGPR,
202 #endif
203
204 /* GFX9: Merged LS-HS (VS-TCS) only. */
205 GFX9_SGPR_TCS_OFFCHIP_LAYOUT = GFX9_MERGED_NUM_USER_SGPR,
206 GFX9_SGPR_TCS_OUT_OFFSETS,
207 GFX9_SGPR_TCS_OUT_LAYOUT,
208 #if !HAVE_32BIT_POINTERS
209 GFX9_SGPR_align_for_vb_pointer,
210 #endif
211 GFX9_TCS_NUM_USER_SGPR,
212
213 /* GS limits */
214 GFX6_GS_NUM_USER_SGPR = SI_NUM_RESOURCE_SGPRS,
215 #if HAVE_32BIT_POINTERS
216 GFX9_VSGS_NUM_USER_SGPR = SI_VS_NUM_USER_SGPR,
217 GFX9_TESGS_NUM_USER_SGPR = SI_TES_NUM_USER_SGPR,
218 #else
219 GFX9_VSGS_NUM_USER_SGPR = GFX9_MERGED_NUM_USER_SGPR,
220 GFX9_TESGS_NUM_USER_SGPR = GFX9_MERGED_NUM_USER_SGPR,
221 #endif
222 SI_GSCOPY_NUM_USER_SGPR = SI_SGPR_RW_BUFFERS + (HAVE_32BIT_POINTERS ? 1 : 2),
223
224 /* PS only */
225 SI_SGPR_ALPHA_REF = SI_NUM_RESOURCE_SGPRS,
226 SI_PS_NUM_USER_SGPR,
227 };
228
229 /* LLVM function parameter indices */
230 enum {
231 SI_NUM_RESOURCE_PARAMS = 4,
232
233 /* PS only parameters */
234 SI_PARAM_ALPHA_REF = SI_NUM_RESOURCE_PARAMS,
235 SI_PARAM_PRIM_MASK,
236 SI_PARAM_PERSP_SAMPLE,
237 SI_PARAM_PERSP_CENTER,
238 SI_PARAM_PERSP_CENTROID,
239 SI_PARAM_PERSP_PULL_MODEL,
240 SI_PARAM_LINEAR_SAMPLE,
241 SI_PARAM_LINEAR_CENTER,
242 SI_PARAM_LINEAR_CENTROID,
243 SI_PARAM_LINE_STIPPLE_TEX,
244 SI_PARAM_POS_X_FLOAT,
245 SI_PARAM_POS_Y_FLOAT,
246 SI_PARAM_POS_Z_FLOAT,
247 SI_PARAM_POS_W_FLOAT,
248 SI_PARAM_FRONT_FACE,
249 SI_PARAM_ANCILLARY,
250 SI_PARAM_SAMPLE_COVERAGE,
251 SI_PARAM_POS_FIXED_PT,
252
253 SI_NUM_PARAMS = SI_PARAM_POS_FIXED_PT + 9, /* +8 for COLOR[0..1] */
254 };
255
256 /* Fields of driver-defined VS state SGPR. */
257 /* Clamp vertex color output (only used in VS as VS). */
258 #define S_VS_STATE_CLAMP_VERTEX_COLOR(x) (((unsigned)(x) & 0x1) << 0)
259 #define C_VS_STATE_CLAMP_VERTEX_COLOR 0xFFFFFFFE
260 #define S_VS_STATE_INDEXED(x) (((unsigned)(x) & 0x1) << 1)
261 #define C_VS_STATE_INDEXED 0xFFFFFFFD
262 #define S_VS_STATE_LS_OUT_PATCH_SIZE(x) (((unsigned)(x) & 0x1FFF) << 8)
263 #define C_VS_STATE_LS_OUT_PATCH_SIZE 0xFFE000FF
264 #define S_VS_STATE_LS_OUT_VERTEX_SIZE(x) (((unsigned)(x) & 0xFF) << 24)
265 #define C_VS_STATE_LS_OUT_VERTEX_SIZE 0x00FFFFFF
266
267 /* SI-specific system values. */
268 enum {
269 TGSI_SEMANTIC_DEFAULT_TESSOUTER_SI = TGSI_SEMANTIC_COUNT,
270 TGSI_SEMANTIC_DEFAULT_TESSINNER_SI,
271 };
272
273 enum {
274 /* Use a property enum that VS wouldn't use. */
275 TGSI_PROPERTY_VS_BLIT_SGPRS = TGSI_PROPERTY_FS_COORD_ORIGIN,
276
277 /* These represent the number of SGPRs the shader uses. */
278 SI_VS_BLIT_SGPRS_POS = 3,
279 SI_VS_BLIT_SGPRS_POS_COLOR = 7,
280 SI_VS_BLIT_SGPRS_POS_TEXCOORD = 9,
281 };
282
283 /* For VS shader key fix_fetch. */
284 enum {
285 SI_FIX_FETCH_NONE = 0,
286 SI_FIX_FETCH_A2_SNORM,
287 SI_FIX_FETCH_A2_SSCALED,
288 SI_FIX_FETCH_A2_SINT,
289 SI_FIX_FETCH_RGBA_32_UNORM,
290 SI_FIX_FETCH_RGBX_32_UNORM,
291 SI_FIX_FETCH_RGBA_32_SNORM,
292 SI_FIX_FETCH_RGBX_32_SNORM,
293 SI_FIX_FETCH_RGBA_32_USCALED,
294 SI_FIX_FETCH_RGBA_32_SSCALED,
295 SI_FIX_FETCH_RGBA_32_FIXED,
296 SI_FIX_FETCH_RGBX_32_FIXED,
297 SI_FIX_FETCH_RG_64_FLOAT,
298 SI_FIX_FETCH_RGB_64_FLOAT,
299 SI_FIX_FETCH_RGBA_64_FLOAT,
300 SI_FIX_FETCH_RGB_8, /* A = 1.0 */
301 SI_FIX_FETCH_RGB_8_INT, /* A = 1 */
302 SI_FIX_FETCH_RGB_16,
303 SI_FIX_FETCH_RGB_16_INT,
304 };
305
306 struct si_shader;
307
308 /* State of the context creating the shader object. */
309 struct si_compiler_ctx_state {
310 enum chip_class chip_class;
311
312 /* Should only be used by si_init_shader_selector_async and
313 * si_build_shader_variant if thread_index == -1 (non-threaded). */
314 LLVMTargetMachineRef tm;
315
316 /* Used if thread_index == -1 or if debug.async is true. */
317 struct pipe_debug_callback debug;
318
319 /* Used for creating the log string for gallium/ddebug. */
320 bool is_debug_context;
321 };
322
323 /* A shader selector is a gallium CSO and contains shader variants and
324 * binaries for one TGSI program. This can be shared by multiple contexts.
325 */
326 struct si_shader_selector {
327 struct pipe_reference reference;
328 struct si_screen *screen;
329 struct util_queue_fence ready;
330 struct si_compiler_ctx_state compiler_ctx_state;
331
332 mtx_t mutex;
333 struct si_shader *first_variant; /* immutable after the first variant */
334 struct si_shader *last_variant; /* mutable */
335
336 /* The compiled TGSI shader expecting a prolog and/or epilog (not
337 * uploaded to a buffer).
338 */
339 struct si_shader *main_shader_part;
340 struct si_shader *main_shader_part_ls; /* as_ls is set in the key */
341 struct si_shader *main_shader_part_es; /* as_es is set in the key */
342
343 struct si_shader *gs_copy_shader;
344
345 struct tgsi_token *tokens;
346 struct nir_shader *nir;
347 struct pipe_stream_output_info so;
348 struct tgsi_shader_info info;
349 struct tgsi_tessctrl_info tcs_info;
350
351 /* PIPE_SHADER_[VERTEX|FRAGMENT|...] */
352 unsigned type;
353 bool vs_needs_prolog;
354 bool force_correct_derivs_after_kill;
355 unsigned pa_cl_vs_out_cntl;
356 ubyte clipdist_mask;
357 ubyte culldist_mask;
358
359 /* ES parameters. */
360 unsigned esgs_itemsize;
361
362 /* GS parameters. */
363 unsigned gs_input_verts_per_prim;
364 unsigned gs_output_prim;
365 unsigned gs_max_out_vertices;
366 unsigned gs_num_invocations;
367 unsigned max_gs_stream; /* count - 1 */
368 unsigned gsvs_vertex_size;
369 unsigned max_gsvs_emit_size;
370 unsigned enabled_streamout_buffer_mask;
371
372 /* PS parameters. */
373 unsigned color_attr_index[2];
374 unsigned db_shader_control;
375 /* Set 0xf or 0x0 (4 bits) per each written output.
376 * ANDed with spi_shader_col_format.
377 */
378 unsigned colors_written_4bit;
379
380 /* CS parameters */
381 unsigned local_size;
382
383 uint64_t outputs_written; /* "get_unique_index" bits */
384 uint32_t patch_outputs_written; /* "get_unique_index_patch" bits */
385
386 uint64_t inputs_read; /* "get_unique_index" bits */
387
388 /* bitmasks of used descriptor slots */
389 uint32_t active_const_and_shader_buffers;
390 uint64_t active_samplers_and_images;
391 };
392
393 /* Valid shader configurations:
394 *
395 * API shaders VS | TCS | TES | GS |pass| PS
396 * are compiled as: | | | |thru|
397 * | | | | |
398 * Only VS & PS: VS | | | | | PS
399 * GFX6 - with GS: ES | | | GS | VS | PS
400 * - with tess: LS | HS | VS | | | PS
401 * - with both: LS | HS | ES | GS | VS | PS
402 * GFX9 - with GS: -> | | | GS | VS | PS
403 * - with tess: -> | HS | VS | | | PS
404 * - with both: -> | HS | -> | GS | VS | PS
405 *
406 * -> = merged with the next stage
407 */
408
409 /* Use the byte alignment for all following structure members for optimal
410 * shader key memory footprint.
411 */
412 #pragma pack(push, 1)
413
414 /* Common VS bits between the shader key and the prolog key. */
415 struct si_vs_prolog_bits {
416 /* - If neither "is_one" nor "is_fetched" has a bit set, the instance
417 * divisor is 0.
418 * - If "is_one" has a bit set, the instance divisor is 1.
419 * - If "is_fetched" has a bit set, the instance divisor will be loaded
420 * from the constant buffer.
421 */
422 uint16_t instance_divisor_is_one; /* bitmask of inputs */
423 uint16_t instance_divisor_is_fetched; /* bitmask of inputs */
424 unsigned ls_vgpr_fix:1;
425 };
426
427 /* Common TCS bits between the shader key and the epilog key. */
428 struct si_tcs_epilog_bits {
429 unsigned prim_mode:3;
430 unsigned invoc0_tess_factors_are_def:1;
431 unsigned tes_reads_tess_factors:1;
432 };
433
434 struct si_gs_prolog_bits {
435 unsigned tri_strip_adj_fix:1;
436 unsigned gfx9_prev_is_vs:1;
437 };
438
439 /* Common PS bits between the shader key and the prolog key. */
440 struct si_ps_prolog_bits {
441 unsigned color_two_side:1;
442 unsigned flatshade_colors:1;
443 unsigned poly_stipple:1;
444 unsigned force_persp_sample_interp:1;
445 unsigned force_linear_sample_interp:1;
446 unsigned force_persp_center_interp:1;
447 unsigned force_linear_center_interp:1;
448 unsigned bc_optimize_for_persp:1;
449 unsigned bc_optimize_for_linear:1;
450 unsigned samplemask_log_ps_iter:3;
451 };
452
453 /* Common PS bits between the shader key and the epilog key. */
454 struct si_ps_epilog_bits {
455 unsigned spi_shader_col_format;
456 unsigned color_is_int8:8;
457 unsigned color_is_int10:8;
458 unsigned last_cbuf:3;
459 unsigned alpha_func:3;
460 unsigned alpha_to_one:1;
461 unsigned poly_line_smoothing:1;
462 unsigned clamp_color:1;
463 };
464
465 union si_shader_part_key {
466 struct {
467 struct si_vs_prolog_bits states;
468 unsigned num_input_sgprs:6;
469 /* For merged stages such as LS-HS, HS input VGPRs are first. */
470 unsigned num_merged_next_stage_vgprs:3;
471 unsigned last_input:4;
472 unsigned as_ls:1;
473 unsigned as_es:1;
474 /* Prologs for monolithic shaders shouldn't set EXEC. */
475 unsigned is_monolithic:1;
476 } vs_prolog;
477 struct {
478 struct si_tcs_epilog_bits states;
479 } tcs_epilog;
480 struct {
481 struct si_gs_prolog_bits states;
482 /* Prologs of monolithic shaders shouldn't set EXEC. */
483 unsigned is_monolithic:1;
484 } gs_prolog;
485 struct {
486 struct si_ps_prolog_bits states;
487 unsigned num_input_sgprs:6;
488 unsigned num_input_vgprs:5;
489 /* Color interpolation and two-side color selection. */
490 unsigned colors_read:8; /* color input components read */
491 unsigned num_interp_inputs:5; /* BCOLOR is at this location */
492 unsigned face_vgpr_index:5;
493 unsigned ancillary_vgpr_index:5;
494 unsigned wqm:1;
495 char color_attr_index[2];
496 char color_interp_vgpr_index[2]; /* -1 == constant */
497 } ps_prolog;
498 struct {
499 struct si_ps_epilog_bits states;
500 unsigned colors_written:8;
501 unsigned writes_z:1;
502 unsigned writes_stencil:1;
503 unsigned writes_samplemask:1;
504 } ps_epilog;
505 };
506
507 struct si_shader_key {
508 /* Prolog and epilog flags. */
509 union {
510 struct {
511 struct si_vs_prolog_bits prolog;
512 } vs;
513 struct {
514 struct si_vs_prolog_bits ls_prolog; /* for merged LS-HS */
515 struct si_shader_selector *ls; /* for merged LS-HS */
516 struct si_tcs_epilog_bits epilog;
517 } tcs; /* tessellation control shader */
518 struct {
519 struct si_vs_prolog_bits vs_prolog; /* for merged ES-GS */
520 struct si_shader_selector *es; /* for merged ES-GS */
521 struct si_gs_prolog_bits prolog;
522 } gs;
523 struct {
524 struct si_ps_prolog_bits prolog;
525 struct si_ps_epilog_bits epilog;
526 } ps;
527 } part;
528
529 /* These two are initially set according to the NEXT_SHADER property,
530 * or guessed if the property doesn't seem correct.
531 */
532 unsigned as_es:1; /* export shader, which precedes GS */
533 unsigned as_ls:1; /* local shader, which precedes TCS */
534
535 /* Flags for monolithic compilation only. */
536 struct {
537 /* One byte for every input: SI_FIX_FETCH_* enums. */
538 uint8_t vs_fix_fetch[SI_MAX_ATTRIBS];
539
540 union {
541 uint64_t ff_tcs_inputs_to_copy; /* for fixed-func TCS */
542 /* When PS needs PrimID and GS is disabled. */
543 unsigned vs_export_prim_id:1;
544 struct {
545 unsigned interpolate_at_sample_force_center:1;
546 } ps;
547 } u;
548 } mono;
549
550 /* Optimization flags for asynchronous compilation only. */
551 struct {
552 /* For HW VS (it can be VS, TES, GS) */
553 uint64_t kill_outputs; /* "get_unique_index" bits */
554 unsigned clip_disable:1;
555
556 /* For shaders where monolithic variants have better code.
557 *
558 * This is a flag that has no effect on code generation,
559 * but forces monolithic shaders to be used as soon as
560 * possible, because it's in the "opt" group.
561 */
562 unsigned prefer_mono:1;
563 } opt;
564 };
565
566 /* Restore the pack alignment to default. */
567 #pragma pack(pop)
568
569 struct si_shader_config {
570 unsigned num_sgprs;
571 unsigned num_vgprs;
572 unsigned spilled_sgprs;
573 unsigned spilled_vgprs;
574 unsigned private_mem_vgprs;
575 unsigned lds_size;
576 unsigned max_simd_waves;
577 unsigned spi_ps_input_ena;
578 unsigned spi_ps_input_addr;
579 unsigned float_mode;
580 unsigned scratch_bytes_per_wave;
581 unsigned rsrc1;
582 unsigned rsrc2;
583 };
584
585 /* GCN-specific shader info. */
586 struct si_shader_info {
587 ubyte vs_output_param_offset[SI_MAX_VS_OUTPUTS];
588 ubyte num_input_sgprs;
589 ubyte num_input_vgprs;
590 signed char face_vgpr_index;
591 signed char ancillary_vgpr_index;
592 bool uses_instanceid;
593 ubyte nr_pos_exports;
594 ubyte nr_param_exports;
595 };
596
597 struct si_shader {
598 struct si_compiler_ctx_state compiler_ctx_state;
599
600 struct si_shader_selector *selector;
601 struct si_shader_selector *previous_stage_sel; /* for refcounting */
602 struct si_shader *next_variant;
603
604 struct si_shader_part *prolog;
605 struct si_shader *previous_stage; /* for GFX9 */
606 struct si_shader_part *prolog2;
607 struct si_shader_part *epilog;
608
609 struct si_pm4_state *pm4;
610 struct r600_resource *bo;
611 struct r600_resource *scratch_bo;
612 struct si_shader_key key;
613 struct util_queue_fence ready;
614 bool compilation_failed;
615 bool is_monolithic;
616 bool is_optimized;
617 bool is_binary_shared;
618 bool is_gs_copy_shader;
619
620 /* The following data is all that's needed for binary shaders. */
621 struct ac_shader_binary binary;
622 struct si_shader_config config;
623 struct si_shader_info info;
624
625 /* Shader key + LLVM IR + disassembly + statistics.
626 * Generated for debug contexts only.
627 */
628 char *shader_log;
629 size_t shader_log_size;
630 };
631
632 struct si_shader_part {
633 struct si_shader_part *next;
634 union si_shader_part_key key;
635 struct ac_shader_binary binary;
636 struct si_shader_config config;
637 };
638
639 /* si_shader.c */
640 struct si_shader *
641 si_generate_gs_copy_shader(struct si_screen *sscreen,
642 LLVMTargetMachineRef tm,
643 struct si_shader_selector *gs_selector,
644 struct pipe_debug_callback *debug);
645 int si_compile_tgsi_shader(struct si_screen *sscreen,
646 LLVMTargetMachineRef tm,
647 struct si_shader *shader,
648 bool is_monolithic,
649 struct pipe_debug_callback *debug);
650 int si_shader_create(struct si_screen *sscreen, LLVMTargetMachineRef tm,
651 struct si_shader *shader,
652 struct pipe_debug_callback *debug);
653 void si_shader_destroy(struct si_shader *shader);
654 unsigned si_shader_io_get_unique_index_patch(unsigned semantic_name, unsigned index);
655 unsigned si_shader_io_get_unique_index(unsigned semantic_name, unsigned index);
656 int si_shader_binary_upload(struct si_screen *sscreen, struct si_shader *shader);
657 void si_shader_dump(struct si_screen *sscreen, const struct si_shader *shader,
658 struct pipe_debug_callback *debug, unsigned processor,
659 FILE *f, bool check_debug_option);
660 void si_shader_dump_stats_for_shader_db(const struct si_shader *shader,
661 struct pipe_debug_callback *debug);
662 void si_multiwave_lds_size_workaround(struct si_screen *sscreen,
663 unsigned *lds_size);
664 void si_shader_apply_scratch_relocs(struct si_shader *shader,
665 uint64_t scratch_va);
666 void si_shader_binary_read_config(struct ac_shader_binary *binary,
667 struct si_shader_config *conf,
668 unsigned symbol_offset);
669 const char *si_get_shader_name(const struct si_shader *shader, unsigned processor);
670
671 /* si_shader_nir.c */
672 void si_nir_scan_shader(const struct nir_shader *nir,
673 struct tgsi_shader_info *info);
674 void si_nir_scan_tess_ctrl(const struct nir_shader *nir,
675 const struct tgsi_shader_info *info,
676 struct tgsi_tessctrl_info *out);
677 void si_lower_nir(struct si_shader_selector *sel);
678
679 /* Inline helpers. */
680
681 /* Return the pointer to the main shader part's pointer. */
682 static inline struct si_shader **
683 si_get_main_shader_part(struct si_shader_selector *sel,
684 struct si_shader_key *key)
685 {
686 if (key->as_ls)
687 return &sel->main_shader_part_ls;
688 if (key->as_es)
689 return &sel->main_shader_part_es;
690 return &sel->main_shader_part;
691 }
692
693 static inline bool
694 si_shader_uses_bindless_samplers(struct si_shader_selector *selector)
695 {
696 return selector ? selector->info.uses_bindless_samplers : false;
697 }
698
699 static inline bool
700 si_shader_uses_bindless_images(struct si_shader_selector *selector)
701 {
702 return selector ? selector->info.uses_bindless_images : false;
703 }
704
705 void si_destroy_shader_selector(struct si_context *sctx,
706 struct si_shader_selector *sel);
707
708 static inline void
709 si_shader_selector_reference(struct si_context *sctx,
710 struct si_shader_selector **dst,
711 struct si_shader_selector *src)
712 {
713 if (pipe_reference(&(*dst)->reference, &src->reference))
714 si_destroy_shader_selector(sctx, *dst);
715
716 *dst = src;
717 }
718
719 #endif