Merge commit 'origin/tgsi-simplify-ext'
[mesa.git] / src / gallium / drivers / r300 / r300_state.c
1 /*
2 * Copyright 2008 Corbin Simpson <MostAwesomeDude@gmail.com>
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 #include "draw/draw_context.h"
24
25 #include "util/u_math.h"
26 #include "util/u_memory.h"
27 #include "util/u_pack_color.h"
28
29 #include "tgsi/tgsi_parse.h"
30
31 #include "pipe/p_config.h"
32 #include "pipe/internal/p_winsys_screen.h"
33
34 #include "r300_context.h"
35 #include "r300_reg.h"
36 #include "r300_screen.h"
37 #include "r300_state_inlines.h"
38 #include "r300_fs.h"
39 #include "r300_vs.h"
40
41 /* r300_state: Functions used to intialize state context by translating
42 * Gallium state objects into semi-native r300 state objects. */
43
44 /* Create a new blend state based on the CSO blend state.
45 *
46 * This encompasses alpha blending, logic/raster ops, and blend dithering. */
47 static void* r300_create_blend_state(struct pipe_context* pipe,
48 const struct pipe_blend_state* state)
49 {
50 struct r300_blend_state* blend = CALLOC_STRUCT(r300_blend_state);
51
52 if (state->blend_enable)
53 {
54 unsigned eqRGB = state->rgb_func;
55 unsigned srcRGB = state->rgb_src_factor;
56 unsigned dstRGB = state->rgb_dst_factor;
57
58 unsigned eqA = state->alpha_func;
59 unsigned srcA = state->alpha_src_factor;
60 unsigned dstA = state->alpha_dst_factor;
61
62 /* despite the name, ALPHA_BLEND_ENABLE has nothing to do with alpha,
63 * this is just the crappy D3D naming */
64 blend->blend_control = R300_ALPHA_BLEND_ENABLE |
65 r300_translate_blend_function(eqRGB) |
66 ( r300_translate_blend_factor(srcRGB) << R300_SRC_BLEND_SHIFT) |
67 ( r300_translate_blend_factor(dstRGB) << R300_DST_BLEND_SHIFT);
68
69 /* optimization: some operations do not require the destination color */
70 if (eqRGB == PIPE_BLEND_MIN || eqA == PIPE_BLEND_MIN ||
71 eqRGB == PIPE_BLEND_MAX || eqA == PIPE_BLEND_MAX ||
72 dstRGB != PIPE_BLENDFACTOR_ZERO ||
73 dstA != PIPE_BLENDFACTOR_ZERO ||
74 srcRGB == PIPE_BLENDFACTOR_DST_COLOR ||
75 srcRGB == PIPE_BLENDFACTOR_DST_ALPHA ||
76 srcRGB == PIPE_BLENDFACTOR_INV_DST_COLOR ||
77 srcRGB == PIPE_BLENDFACTOR_INV_DST_ALPHA ||
78 srcA == PIPE_BLENDFACTOR_DST_COLOR ||
79 srcA == PIPE_BLENDFACTOR_DST_ALPHA ||
80 srcA == PIPE_BLENDFACTOR_INV_DST_COLOR ||
81 srcA == PIPE_BLENDFACTOR_INV_DST_ALPHA)
82 blend->blend_control |= R300_READ_ENABLE;
83
84 /* XXX implement the optimization with DISCARD_SRC_PIXELS*/
85 /* XXX implement the optimization with SRC_ALPHA_?_NO_READ */
86
87 /* separate alpha */
88 if (srcA != srcRGB || dstA != dstRGB || eqA != eqRGB) {
89 blend->blend_control |= R300_SEPARATE_ALPHA_ENABLE;
90 blend->alpha_blend_control =
91 r300_translate_blend_function(eqA) |
92 (r300_translate_blend_factor(srcA) << R300_SRC_BLEND_SHIFT) |
93 (r300_translate_blend_factor(dstA) << R300_DST_BLEND_SHIFT);
94 }
95 }
96
97 /* PIPE_LOGICOP_* don't need to be translated, fortunately. */
98 if (state->logicop_enable) {
99 blend->rop = R300_RB3D_ROPCNTL_ROP_ENABLE |
100 (state->logicop_func) << R300_RB3D_ROPCNTL_ROP_SHIFT;
101 }
102
103 /* Color Channel Mask */
104 if (state->colormask & PIPE_MASK_R) {
105 blend->color_channel_mask |= RB3D_COLOR_CHANNEL_MASK_RED_MASK0;
106 }
107 if (state->colormask & PIPE_MASK_G) {
108 blend->color_channel_mask |= RB3D_COLOR_CHANNEL_MASK_GREEN_MASK0;
109 }
110 if (state->colormask & PIPE_MASK_B) {
111 blend->color_channel_mask |= RB3D_COLOR_CHANNEL_MASK_BLUE_MASK0;
112 }
113 if (state->colormask & PIPE_MASK_A) {
114 blend->color_channel_mask |= RB3D_COLOR_CHANNEL_MASK_ALPHA_MASK0;
115 }
116
117 if (state->dither) {
118 blend->dither = R300_RB3D_DITHER_CTL_DITHER_MODE_LUT |
119 R300_RB3D_DITHER_CTL_ALPHA_DITHER_MODE_LUT;
120 }
121
122 return (void*)blend;
123 }
124
125 /* Bind blend state. */
126 static void r300_bind_blend_state(struct pipe_context* pipe,
127 void* state)
128 {
129 struct r300_context* r300 = r300_context(pipe);
130
131 r300->blend_state = (struct r300_blend_state*)state;
132 r300->dirty_state |= R300_NEW_BLEND;
133 }
134
135 /* Free blend state. */
136 static void r300_delete_blend_state(struct pipe_context* pipe,
137 void* state)
138 {
139 FREE(state);
140 }
141
142 /* Convert float to 10bit integer */
143 static unsigned float_to_fixed10(float f)
144 {
145 return CLAMP((unsigned)(f * 1023.9f), 0, 1023);
146 }
147
148 /* Set blend color.
149 * Setup both R300 and R500 registers, figure out later which one to write. */
150 static void r300_set_blend_color(struct pipe_context* pipe,
151 const struct pipe_blend_color* color)
152 {
153 struct r300_context* r300 = r300_context(pipe);
154
155 util_pack_color(color->color, PIPE_FORMAT_A8R8G8B8_UNORM,
156 &r300->blend_color_state->blend_color);
157
158 /* XXX if FP16 blending is enabled, we should use the FP16 format */
159 r300->blend_color_state->blend_color_red_alpha =
160 float_to_fixed10(color->color[0]) |
161 (float_to_fixed10(color->color[3]) << 16);
162 r300->blend_color_state->blend_color_green_blue =
163 float_to_fixed10(color->color[2]) |
164 (float_to_fixed10(color->color[1]) << 16);
165
166 r300->dirty_state |= R300_NEW_BLEND_COLOR;
167 }
168
169 static void r300_set_clip_state(struct pipe_context* pipe,
170 const struct pipe_clip_state* state)
171 {
172 struct r300_context* r300 = r300_context(pipe);
173
174 if (r300_screen(pipe->screen)->caps->has_tcl) {
175 r300->clip_state = *state;
176 r300->dirty_state |= R300_NEW_CLIP;
177 } else {
178 draw_flush(r300->draw);
179 draw_set_clip_state(r300->draw, state);
180 }
181 }
182
183 /* Create a new depth, stencil, and alpha state based on the CSO dsa state.
184 *
185 * This contains the depth buffer, stencil buffer, alpha test, and such.
186 * On the Radeon, depth and stencil buffer setup are intertwined, which is
187 * the reason for some of the strange-looking assignments across registers. */
188 static void*
189 r300_create_dsa_state(struct pipe_context* pipe,
190 const struct pipe_depth_stencil_alpha_state* state)
191 {
192 struct r300_capabilities *caps =
193 r300_screen(r300_context(pipe)->context.screen)->caps;
194 struct r300_dsa_state* dsa = CALLOC_STRUCT(r300_dsa_state);
195
196 /* Depth test setup. */
197 if (state->depth.enabled) {
198 dsa->z_buffer_control |= R300_Z_ENABLE;
199
200 if (state->depth.writemask) {
201 dsa->z_buffer_control |= R300_Z_WRITE_ENABLE;
202 }
203
204 dsa->z_stencil_control |=
205 (r300_translate_depth_stencil_function(state->depth.func) <<
206 R300_Z_FUNC_SHIFT);
207 }
208
209 /* Stencil buffer setup. */
210 if (state->stencil[0].enabled) {
211 dsa->z_buffer_control |= R300_STENCIL_ENABLE;
212 dsa->z_stencil_control |=
213 (r300_translate_depth_stencil_function(state->stencil[0].func) <<
214 R300_S_FRONT_FUNC_SHIFT) |
215 (r300_translate_stencil_op(state->stencil[0].fail_op) <<
216 R300_S_FRONT_SFAIL_OP_SHIFT) |
217 (r300_translate_stencil_op(state->stencil[0].zpass_op) <<
218 R300_S_FRONT_ZPASS_OP_SHIFT) |
219 (r300_translate_stencil_op(state->stencil[0].zfail_op) <<
220 R300_S_FRONT_ZFAIL_OP_SHIFT);
221
222 dsa->stencil_ref_mask = (state->stencil[0].ref_value) |
223 (state->stencil[0].valuemask << R300_STENCILMASK_SHIFT) |
224 (state->stencil[0].writemask << R300_STENCILWRITEMASK_SHIFT);
225
226 if (state->stencil[1].enabled) {
227 dsa->z_buffer_control |= R300_STENCIL_FRONT_BACK;
228 dsa->z_stencil_control |=
229 (r300_translate_depth_stencil_function(state->stencil[1].func) <<
230 R300_S_BACK_FUNC_SHIFT) |
231 (r300_translate_stencil_op(state->stencil[1].fail_op) <<
232 R300_S_BACK_SFAIL_OP_SHIFT) |
233 (r300_translate_stencil_op(state->stencil[1].zpass_op) <<
234 R300_S_BACK_ZPASS_OP_SHIFT) |
235 (r300_translate_stencil_op(state->stencil[1].zfail_op) <<
236 R300_S_BACK_ZFAIL_OP_SHIFT);
237
238 /* XXX it seems r3xx doesn't support STENCILREFMASK_BF */
239 if (caps->is_r500)
240 {
241 dsa->z_buffer_control |= R500_STENCIL_REFMASK_FRONT_BACK;
242 dsa->stencil_ref_bf = (state->stencil[1].ref_value) |
243 (state->stencil[1].valuemask <<
244 R300_STENCILMASK_SHIFT) |
245 (state->stencil[1].writemask <<
246 R300_STENCILWRITEMASK_SHIFT);
247 }
248 }
249 }
250
251 /* Alpha test setup. */
252 if (state->alpha.enabled) {
253 dsa->alpha_function =
254 r300_translate_alpha_function(state->alpha.func) |
255 R300_FG_ALPHA_FUNC_ENABLE;
256
257 /* XXX figure out why emitting 10bit alpha ref causes CS to dump */
258 /* always use 8bit alpha ref */
259 dsa->alpha_function |= float_to_ubyte(state->alpha.ref_value);
260
261 if (caps->is_r500)
262 dsa->alpha_function |= R500_FG_ALPHA_FUNC_8BIT;
263 }
264
265 return (void*)dsa;
266 }
267
268 /* Bind DSA state. */
269 static void r300_bind_dsa_state(struct pipe_context* pipe,
270 void* state)
271 {
272 struct r300_context* r300 = r300_context(pipe);
273
274 r300->dsa_state = (struct r300_dsa_state*)state;
275 r300->dirty_state |= R300_NEW_DSA;
276 }
277
278 /* Free DSA state. */
279 static void r300_delete_dsa_state(struct pipe_context* pipe,
280 void* state)
281 {
282 FREE(state);
283 }
284
285 static void r300_set_edgeflags(struct pipe_context* pipe,
286 const unsigned* bitfield)
287 {
288 /* XXX you know it's bad when i915 has this blank too */
289 /* XXX and even worse, I have no idea WTF the bitfield is */
290 }
291
292 static void
293 r300_set_framebuffer_state(struct pipe_context* pipe,
294 const struct pipe_framebuffer_state* state)
295 {
296 struct r300_context* r300 = r300_context(pipe);
297
298 if (r300->draw) {
299 draw_flush(r300->draw);
300 }
301
302 r300->framebuffer_state = *state;
303
304 r300->dirty_state |= R300_NEW_FRAMEBUFFERS;
305 }
306
307 /* Create fragment shader state. */
308 static void* r300_create_fs_state(struct pipe_context* pipe,
309 const struct pipe_shader_state* shader)
310 {
311 struct r300_fragment_shader* fs = NULL;
312
313 fs = (struct r300_fragment_shader*)CALLOC_STRUCT(r300_fragment_shader);
314
315 /* Copy state directly into shader. */
316 fs->state = *shader;
317 fs->state.tokens = tgsi_dup_tokens(shader->tokens);
318
319 tgsi_scan_shader(shader->tokens, &fs->info);
320
321 return (void*)fs;
322 }
323
324 /* Bind fragment shader state. */
325 static void r300_bind_fs_state(struct pipe_context* pipe, void* shader)
326 {
327 struct r300_context* r300 = r300_context(pipe);
328 struct r300_fragment_shader* fs = (struct r300_fragment_shader*)shader;
329
330 if (fs == NULL) {
331 r300->fs = NULL;
332 return;
333 } else if (!fs->translated) {
334 r300_translate_fragment_shader(r300, fs);
335 }
336
337 r300->fs = fs;
338
339 r300->dirty_state |= R300_NEW_FRAGMENT_SHADER | R300_NEW_FRAGMENT_SHADER_CONSTANTS;
340 }
341
342 /* Delete fragment shader state. */
343 static void r300_delete_fs_state(struct pipe_context* pipe, void* shader)
344 {
345 struct r300_fragment_shader* fs = (struct r300_fragment_shader*)shader;
346 rc_constants_destroy(&fs->code.constants);
347 FREE((void*)fs->state.tokens);
348 FREE(shader);
349 }
350
351 static void r300_set_polygon_stipple(struct pipe_context* pipe,
352 const struct pipe_poly_stipple* state)
353 {
354 /* XXX no idea how to set this up, but not terribly important */
355 }
356
357 /* Create a new rasterizer state based on the CSO rasterizer state.
358 *
359 * This is a very large chunk of state, and covers most of the graphics
360 * backend (GB), geometry assembly (GA), and setup unit (SU) blocks.
361 *
362 * In a not entirely unironic sidenote, this state has nearly nothing to do
363 * with the actual block on the Radeon called the rasterizer (RS). */
364 static void* r300_create_rs_state(struct pipe_context* pipe,
365 const struct pipe_rasterizer_state* state)
366 {
367 struct r300_rs_state* rs = CALLOC_STRUCT(r300_rs_state);
368
369 /* Copy rasterizer state for Draw. */
370 rs->rs = *state;
371
372 rs->enable_vte = !state->bypass_vs_clip_and_viewport;
373
374 #ifdef PIPE_ARCH_LITTLE_ENDIAN
375 rs->vap_control_status = R300_VC_NO_SWAP;
376 #else
377 rs->vap_control_status = R300_VC_32BIT_SWAP;
378 #endif
379
380 /* If bypassing TCL, or if no TCL engine is present, turn off the HW TCL.
381 * Else, enable HW TCL and force Draw's TCL off. */
382 if (state->bypass_vs_clip_and_viewport ||
383 !r300_screen(pipe->screen)->caps->has_tcl) {
384 rs->vap_control_status |= R300_VAP_TCL_BYPASS;
385 } else {
386 rs->rs.bypass_vs_clip_and_viewport = TRUE;
387 }
388
389 rs->point_size = pack_float_16_6x(state->point_size) |
390 (pack_float_16_6x(state->point_size) << R300_POINTSIZE_X_SHIFT);
391
392 rs->point_minmax =
393 ((int)(state->point_size_min * 6.0) <<
394 R300_GA_POINT_MINMAX_MIN_SHIFT) |
395 ((int)(state->point_size_max * 6.0) <<
396 R300_GA_POINT_MINMAX_MAX_SHIFT);
397
398 rs->line_control = pack_float_16_6x(state->line_width) |
399 R300_GA_LINE_CNTL_END_TYPE_COMP;
400
401 /* XXX I think there is something wrong with the polygon mode,
402 * XXX re-test when r300g is in a better shape */
403
404 /* Enable polygon mode */
405 if (state->fill_cw != PIPE_POLYGON_MODE_FILL ||
406 state->fill_ccw != PIPE_POLYGON_MODE_FILL) {
407 rs->polygon_mode = R300_GA_POLY_MODE_DUAL;
408 }
409
410 /* Radeons don't think in "CW/CCW", they think in "front/back". */
411 if (state->front_winding == PIPE_WINDING_CW) {
412 rs->cull_mode = R300_FRONT_FACE_CW;
413
414 /* Polygon offset */
415 if (state->offset_cw) {
416 rs->polygon_offset_enable |= R300_FRONT_ENABLE;
417 }
418 if (state->offset_ccw) {
419 rs->polygon_offset_enable |= R300_BACK_ENABLE;
420 }
421
422 /* Polygon mode */
423 if (rs->polygon_mode) {
424 rs->polygon_mode |=
425 r300_translate_polygon_mode_front(state->fill_cw);
426 rs->polygon_mode |=
427 r300_translate_polygon_mode_back(state->fill_ccw);
428 }
429 } else {
430 rs->cull_mode = R300_FRONT_FACE_CCW;
431
432 /* Polygon offset */
433 if (state->offset_ccw) {
434 rs->polygon_offset_enable |= R300_FRONT_ENABLE;
435 }
436 if (state->offset_cw) {
437 rs->polygon_offset_enable |= R300_BACK_ENABLE;
438 }
439
440 /* Polygon mode */
441 if (rs->polygon_mode) {
442 rs->polygon_mode |=
443 r300_translate_polygon_mode_front(state->fill_ccw);
444 rs->polygon_mode |=
445 r300_translate_polygon_mode_back(state->fill_cw);
446 }
447 }
448 if (state->front_winding & state->cull_mode) {
449 rs->cull_mode |= R300_CULL_FRONT;
450 }
451 if (~(state->front_winding) & state->cull_mode) {
452 rs->cull_mode |= R300_CULL_BACK;
453 }
454
455 if (rs->polygon_offset_enable) {
456 rs->depth_offset_front = rs->depth_offset_back =
457 fui(state->offset_units);
458 rs->depth_scale_front = rs->depth_scale_back =
459 fui(state->offset_scale);
460 }
461
462 if (state->line_stipple_enable) {
463 rs->line_stipple_config =
464 R300_GA_LINE_STIPPLE_CONFIG_LINE_RESET_LINE |
465 (fui((float)state->line_stipple_factor) &
466 R300_GA_LINE_STIPPLE_CONFIG_STIPPLE_SCALE_MASK);
467 /* XXX this might need to be scaled up */
468 rs->line_stipple_value = state->line_stipple_pattern;
469 }
470
471 if (state->flatshade) {
472 rs->color_control = R300_SHADE_MODEL_FLAT;
473 } else {
474 rs->color_control = R300_SHADE_MODEL_SMOOTH;
475 }
476
477 if (!state->flatshade_first) {
478 rs->color_control |= R300_GA_COLOR_CONTROL_PROVOKING_VERTEX_LAST;
479 }
480
481 return (void*)rs;
482 }
483
484 /* Bind rasterizer state. */
485 static void r300_bind_rs_state(struct pipe_context* pipe, void* state)
486 {
487 struct r300_context* r300 = r300_context(pipe);
488 struct r300_rs_state* rs = (struct r300_rs_state*)state;
489
490 if (r300->draw) {
491 draw_flush(r300->draw);
492 draw_set_rasterizer_state(r300->draw, &rs->rs);
493 }
494
495 r300->rs_state = rs;
496 /* XXX Clean these up when we move to atom emits */
497 r300->dirty_state |= R300_NEW_RASTERIZER;
498 r300->dirty_state |= R300_NEW_RS_BLOCK;
499 r300->dirty_state |= R300_NEW_SCISSOR;
500 r300->dirty_state |= R300_NEW_VIEWPORT;
501 }
502
503 /* Free rasterizer state. */
504 static void r300_delete_rs_state(struct pipe_context* pipe, void* state)
505 {
506 FREE(state);
507 }
508
509 static void*
510 r300_create_sampler_state(struct pipe_context* pipe,
511 const struct pipe_sampler_state* state)
512 {
513 struct r300_context* r300 = r300_context(pipe);
514 struct r300_sampler_state* sampler = CALLOC_STRUCT(r300_sampler_state);
515 int lod_bias;
516
517 sampler->filter0 |=
518 (r300_translate_wrap(state->wrap_s) << R300_TX_WRAP_S_SHIFT) |
519 (r300_translate_wrap(state->wrap_t) << R300_TX_WRAP_T_SHIFT) |
520 (r300_translate_wrap(state->wrap_r) << R300_TX_WRAP_R_SHIFT);
521
522 sampler->filter0 |= r300_translate_tex_filters(state->min_img_filter,
523 state->mag_img_filter,
524 state->min_mip_filter);
525
526 /* Unfortunately, r300-r500 don't support floating-point mipmap lods. */
527 /* We must pass these to the emit function to clamp them properly. */
528 sampler->min_lod = MAX2((unsigned)state->min_lod, 0);
529 sampler->max_lod = MAX2((unsigned)ceilf(state->max_lod), 0);
530
531 lod_bias = CLAMP((int)(state->lod_bias * 32), -(1 << 9), (1 << 9) - 1);
532
533 sampler->filter1 |= lod_bias << R300_LOD_BIAS_SHIFT;
534
535 sampler->filter1 |= r300_anisotropy(state->max_anisotropy);
536
537 util_pack_color(state->border_color, PIPE_FORMAT_A8R8G8B8_UNORM,
538 &sampler->border_color);
539
540 /* R500-specific fixups and optimizations */
541 if (r300_screen(r300->context.screen)->caps->is_r500) {
542 sampler->filter1 |= R500_BORDER_FIX;
543 }
544
545 return (void*)sampler;
546 }
547
548 static void r300_bind_sampler_states(struct pipe_context* pipe,
549 unsigned count,
550 void** states)
551 {
552 struct r300_context* r300 = r300_context(pipe);
553 int i;
554
555 if (count > 8) {
556 return;
557 }
558
559 for (i = 0; i < count; i++) {
560 if (r300->sampler_states[i] != states[i]) {
561 r300->sampler_states[i] = (struct r300_sampler_state*)states[i];
562 r300->dirty_state |= (R300_NEW_SAMPLER << i);
563 }
564 }
565
566 r300->sampler_count = count;
567 }
568
569 static void r300_delete_sampler_state(struct pipe_context* pipe, void* state)
570 {
571 FREE(state);
572 }
573
574 static void r300_set_sampler_textures(struct pipe_context* pipe,
575 unsigned count,
576 struct pipe_texture** texture)
577 {
578 struct r300_context* r300 = r300_context(pipe);
579 boolean is_r500 = r300_screen(r300->context.screen)->caps->is_r500;
580 int i;
581
582 /* XXX magic num */
583 if (count > 8) {
584 return;
585 }
586
587 r300->context.flush(&r300->context, 0, NULL);
588
589 for (i = 0; i < count; i++) {
590 if (r300->textures[i] != (struct r300_texture*)texture[i]) {
591 pipe_texture_reference((struct pipe_texture**)&r300->textures[i],
592 texture[i]);
593 r300->dirty_state |= (R300_NEW_TEXTURE << i);
594
595 /* R300-specific - set the texrect factor in a fragment shader */
596 if (!is_r500 && r300->textures[i]->is_npot) {
597 /* XXX It would be nice to re-emit just 1 constant,
598 * XXX not all of them */
599 r300->dirty_state |= R300_NEW_FRAGMENT_SHADER_CONSTANTS;
600 }
601 }
602 }
603
604 for (i = count; i < 8; i++) {
605 if (r300->textures[i]) {
606 pipe_texture_reference((struct pipe_texture**)&r300->textures[i],
607 NULL);
608 r300->dirty_state |= (R300_NEW_TEXTURE << i);
609 }
610 }
611
612 r300->texture_count = count;
613 }
614
615 static void r300_set_scissor_state(struct pipe_context* pipe,
616 const struct pipe_scissor_state* state)
617 {
618 struct r300_context* r300 = r300_context(pipe);
619
620 if (r300_screen(r300->context.screen)->caps->is_r500) {
621 r300->scissor_state->scissor_top_left =
622 (state->minx << R300_SCISSORS_X_SHIFT) |
623 (state->miny << R300_SCISSORS_Y_SHIFT);
624 r300->scissor_state->scissor_bottom_right =
625 ((state->maxx - 1) << R300_SCISSORS_X_SHIFT) |
626 ((state->maxy - 1) << R300_SCISSORS_Y_SHIFT);
627 } else {
628 /* Offset of 1440 in non-R500 chipsets. */
629 r300->scissor_state->scissor_top_left =
630 ((state->minx + 1440) << R300_SCISSORS_X_SHIFT) |
631 ((state->miny + 1440) << R300_SCISSORS_Y_SHIFT);
632 r300->scissor_state->scissor_bottom_right =
633 (((state->maxx - 1) + 1440) << R300_SCISSORS_X_SHIFT) |
634 (((state->maxy - 1) + 1440) << R300_SCISSORS_Y_SHIFT);
635 }
636
637 r300->dirty_state |= R300_NEW_SCISSOR;
638 }
639
640 static void r300_set_viewport_state(struct pipe_context* pipe,
641 const struct pipe_viewport_state* state)
642 {
643 struct r300_context* r300 = r300_context(pipe);
644
645 /* Do the transform in HW. */
646 r300->viewport_state->vte_control = R300_VTX_W0_FMT;
647
648 if (state->scale[0] != 1.0f) {
649 r300->viewport_state->xscale = state->scale[0];
650 r300->viewport_state->vte_control |= R300_VPORT_X_SCALE_ENA;
651 }
652 if (state->scale[1] != 1.0f) {
653 r300->viewport_state->yscale = state->scale[1];
654 r300->viewport_state->vte_control |= R300_VPORT_Y_SCALE_ENA;
655 }
656 if (state->scale[2] != 1.0f) {
657 r300->viewport_state->zscale = state->scale[2];
658 r300->viewport_state->vte_control |= R300_VPORT_Z_SCALE_ENA;
659 }
660 if (state->translate[0] != 0.0f) {
661 r300->viewport_state->xoffset = state->translate[0];
662 r300->viewport_state->vte_control |= R300_VPORT_X_OFFSET_ENA;
663 }
664 if (state->translate[1] != 0.0f) {
665 r300->viewport_state->yoffset = state->translate[1];
666 r300->viewport_state->vte_control |= R300_VPORT_Y_OFFSET_ENA;
667 }
668 if (state->translate[2] != 0.0f) {
669 r300->viewport_state->zoffset = state->translate[2];
670 r300->viewport_state->vte_control |= R300_VPORT_Z_OFFSET_ENA;
671 }
672
673 r300->dirty_state |= R300_NEW_VIEWPORT;
674 }
675
676 static void r300_set_vertex_buffers(struct pipe_context* pipe,
677 unsigned count,
678 const struct pipe_vertex_buffer* buffers)
679 {
680 struct r300_context* r300 = r300_context(pipe);
681
682 memcpy(r300->vertex_buffer, buffers,
683 sizeof(struct pipe_vertex_buffer) * count);
684 r300->vertex_buffer_count = count;
685
686 if (r300->draw) {
687 draw_flush(r300->draw);
688 draw_set_vertex_buffers(r300->draw, count, buffers);
689 }
690
691 r300->dirty_state |= R300_NEW_VERTEX_FORMAT;
692 }
693
694 static void r300_set_vertex_elements(struct pipe_context* pipe,
695 unsigned count,
696 const struct pipe_vertex_element* elements)
697 {
698 struct r300_context* r300 = r300_context(pipe);
699
700 memcpy(r300->vertex_element,
701 elements,
702 sizeof(struct pipe_vertex_element) * count);
703 r300->vertex_element_count = count;
704
705 if (r300->draw) {
706 draw_flush(r300->draw);
707 draw_set_vertex_elements(r300->draw, count, elements);
708 }
709 }
710
711 static void* r300_create_vs_state(struct pipe_context* pipe,
712 const struct pipe_shader_state* shader)
713 {
714 struct r300_context* r300 = r300_context(pipe);
715
716 if (r300_screen(pipe->screen)->caps->has_tcl) {
717 struct r300_vertex_shader* vs = CALLOC_STRUCT(r300_vertex_shader);
718 /* Copy state directly into shader. */
719 vs->state = *shader;
720 vs->state.tokens = tgsi_dup_tokens(shader->tokens);
721
722 tgsi_scan_shader(shader->tokens, &vs->info);
723
724 return (void*)vs;
725 } else {
726 return draw_create_vertex_shader(r300->draw, shader);
727 }
728 }
729
730 static void r300_bind_vs_state(struct pipe_context* pipe, void* shader)
731 {
732 struct r300_context* r300 = r300_context(pipe);
733
734 if (r300_screen(pipe->screen)->caps->has_tcl) {
735 struct r300_vertex_shader* vs = (struct r300_vertex_shader*)shader;
736
737 if (vs == NULL) {
738 r300->vs = NULL;
739 return;
740 } else if (!vs->translated) {
741 r300_translate_vertex_shader(r300, vs);
742 }
743
744 r300->vs = vs;
745 r300->dirty_state |= R300_NEW_VERTEX_SHADER | R300_NEW_VERTEX_SHADER_CONSTANTS;
746 } else {
747 draw_flush(r300->draw);
748 draw_bind_vertex_shader(r300->draw,
749 (struct draw_vertex_shader*)shader);
750 }
751 }
752
753 static void r300_delete_vs_state(struct pipe_context* pipe, void* shader)
754 {
755 struct r300_context* r300 = r300_context(pipe);
756
757 if (r300_screen(pipe->screen)->caps->has_tcl) {
758 struct r300_vertex_shader* vs = (struct r300_vertex_shader*)shader;
759
760 rc_constants_destroy(&vs->code.constants);
761 FREE((void*)vs->state.tokens);
762 FREE(shader);
763 } else {
764 draw_delete_vertex_shader(r300->draw,
765 (struct draw_vertex_shader*)shader);
766 }
767 }
768
769 static void r300_set_constant_buffer(struct pipe_context *pipe,
770 uint shader, uint index,
771 const struct pipe_constant_buffer *buf)
772 {
773 struct r300_context* r300 = r300_context(pipe);
774 void *mapped;
775
776 if (buf == NULL || buf->buffer->size == 0 ||
777 (mapped = pipe_buffer_map(pipe->screen, buf->buffer, PIPE_BUFFER_USAGE_CPU_READ)) == NULL)
778 {
779 r300->shader_constants[shader].count = 0;
780 return;
781 }
782
783 assert((buf->buffer->size % 4 * sizeof(float)) == 0);
784 memcpy(r300->shader_constants[shader].constants, mapped, buf->buffer->size);
785 r300->shader_constants[shader].count = buf->buffer->size / (4 * sizeof(float));
786 pipe_buffer_unmap(pipe->screen, buf->buffer);
787
788 if (shader == PIPE_SHADER_VERTEX)
789 r300->dirty_state |= R300_NEW_VERTEX_SHADER_CONSTANTS;
790 else if (shader == PIPE_SHADER_FRAGMENT)
791 r300->dirty_state |= R300_NEW_FRAGMENT_SHADER_CONSTANTS;
792 }
793
794 void r300_init_state_functions(struct r300_context* r300)
795 {
796 r300->context.create_blend_state = r300_create_blend_state;
797 r300->context.bind_blend_state = r300_bind_blend_state;
798 r300->context.delete_blend_state = r300_delete_blend_state;
799
800 r300->context.set_blend_color = r300_set_blend_color;
801
802 r300->context.set_clip_state = r300_set_clip_state;
803
804 r300->context.set_constant_buffer = r300_set_constant_buffer;
805
806 r300->context.create_depth_stencil_alpha_state = r300_create_dsa_state;
807 r300->context.bind_depth_stencil_alpha_state = r300_bind_dsa_state;
808 r300->context.delete_depth_stencil_alpha_state = r300_delete_dsa_state;
809
810 r300->context.set_edgeflags = r300_set_edgeflags;
811
812 r300->context.set_framebuffer_state = r300_set_framebuffer_state;
813
814 r300->context.create_fs_state = r300_create_fs_state;
815 r300->context.bind_fs_state = r300_bind_fs_state;
816 r300->context.delete_fs_state = r300_delete_fs_state;
817
818 r300->context.set_polygon_stipple = r300_set_polygon_stipple;
819
820 r300->context.create_rasterizer_state = r300_create_rs_state;
821 r300->context.bind_rasterizer_state = r300_bind_rs_state;
822 r300->context.delete_rasterizer_state = r300_delete_rs_state;
823
824 r300->context.create_sampler_state = r300_create_sampler_state;
825 r300->context.bind_fragment_sampler_states = r300_bind_sampler_states;
826 r300->context.delete_sampler_state = r300_delete_sampler_state;
827
828 r300->context.set_fragment_sampler_textures = r300_set_sampler_textures;
829
830 r300->context.set_scissor_state = r300_set_scissor_state;
831
832 r300->context.set_viewport_state = r300_set_viewport_state;
833
834 r300->context.set_vertex_buffers = r300_set_vertex_buffers;
835 r300->context.set_vertex_elements = r300_set_vertex_elements;
836
837 r300->context.create_vs_state = r300_create_vs_state;
838 r300->context.bind_vs_state = r300_bind_vs_state;
839 r300->context.delete_vs_state = r300_delete_vs_state;
840 }