r300g: follow pipe_rasterizer_state::light_twoside
[mesa.git] / src / gallium / drivers / r300 / r300_state.c
1 /*
2 * Copyright 2008 Corbin Simpson <MostAwesomeDude@gmail.com>
3 * Copyright 2009 Marek Olšák <maraeo@gmail.com>
4 *
5 * Permission is hereby granted, free of charge, to any person obtaining a
6 * copy of this software and associated documentation files (the "Software"),
7 * to deal in the Software without restriction, including without limitation
8 * on the rights to use, copy, modify, merge, publish, distribute, sub
9 * license, and/or sell copies of the Software, and to permit persons to whom
10 * the Software is furnished to do so, subject to the following conditions:
11 *
12 * The above copyright notice and this permission notice (including the next
13 * paragraph) shall be included in all copies or substantial portions of the
14 * Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHOR(S) AND/OR THEIR SUPPLIERS BE LIABLE FOR ANY CLAIM,
20 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
21 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
22 * USE OR OTHER DEALINGS IN THE SOFTWARE. */
23
24 #include "draw/draw_context.h"
25
26 #include "util/u_math.h"
27 #include "util/u_memory.h"
28 #include "util/u_pack_color.h"
29
30 #include "tgsi/tgsi_parse.h"
31
32 #include "pipe/p_config.h"
33
34 #include "r300_context.h"
35 #include "r300_emit.h"
36 #include "r300_reg.h"
37 #include "r300_screen.h"
38 #include "r300_screen_buffer.h"
39 #include "r300_state.h"
40 #include "r300_state_inlines.h"
41 #include "r300_fs.h"
42 #include "r300_texture.h"
43 #include "r300_vs.h"
44 #include "r300_winsys.h"
45
46 /* r300_state: Functions used to intialize state context by translating
47 * Gallium state objects into semi-native r300 state objects. */
48
49 #define UPDATE_STATE(cso, atom) \
50 if (cso != atom.state) { \
51 atom.state = cso; \
52 atom.dirty = TRUE; \
53 }
54
55 static boolean blend_discard_if_src_alpha_0(unsigned srcRGB, unsigned srcA,
56 unsigned dstRGB, unsigned dstA)
57 {
58 /* If the blend equation is ADD or REVERSE_SUBTRACT,
59 * SRC_ALPHA == 0, and the following state is set, the colorbuffer
60 * will not be changed.
61 * Notice that the dst factors are the src factors inverted. */
62 return (srcRGB == PIPE_BLENDFACTOR_SRC_ALPHA ||
63 srcRGB == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE ||
64 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
65 (srcA == PIPE_BLENDFACTOR_SRC_COLOR ||
66 srcA == PIPE_BLENDFACTOR_SRC_ALPHA ||
67 srcA == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE ||
68 srcA == PIPE_BLENDFACTOR_ZERO) &&
69 (dstRGB == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
70 dstRGB == PIPE_BLENDFACTOR_ONE) &&
71 (dstA == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
72 dstA == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
73 dstA == PIPE_BLENDFACTOR_ONE);
74 }
75
76 static boolean blend_discard_if_src_alpha_1(unsigned srcRGB, unsigned srcA,
77 unsigned dstRGB, unsigned dstA)
78 {
79 /* If the blend equation is ADD or REVERSE_SUBTRACT,
80 * SRC_ALPHA == 1, and the following state is set, the colorbuffer
81 * will not be changed.
82 * Notice that the dst factors are the src factors inverted. */
83 return (srcRGB == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
84 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
85 (srcA == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
86 srcA == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
87 srcA == PIPE_BLENDFACTOR_ZERO) &&
88 (dstRGB == PIPE_BLENDFACTOR_SRC_ALPHA ||
89 dstRGB == PIPE_BLENDFACTOR_ONE) &&
90 (dstA == PIPE_BLENDFACTOR_SRC_COLOR ||
91 dstA == PIPE_BLENDFACTOR_SRC_ALPHA ||
92 dstA == PIPE_BLENDFACTOR_ONE);
93 }
94
95 static boolean blend_discard_if_src_color_0(unsigned srcRGB, unsigned srcA,
96 unsigned dstRGB, unsigned dstA)
97 {
98 /* If the blend equation is ADD or REVERSE_SUBTRACT,
99 * SRC_COLOR == (0,0,0), and the following state is set, the colorbuffer
100 * will not be changed.
101 * Notice that the dst factors are the src factors inverted. */
102 return (srcRGB == PIPE_BLENDFACTOR_SRC_COLOR ||
103 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
104 (srcA == PIPE_BLENDFACTOR_ZERO) &&
105 (dstRGB == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
106 dstRGB == PIPE_BLENDFACTOR_ONE) &&
107 (dstA == PIPE_BLENDFACTOR_ONE);
108 }
109
110 static boolean blend_discard_if_src_color_1(unsigned srcRGB, unsigned srcA,
111 unsigned dstRGB, unsigned dstA)
112 {
113 /* If the blend equation is ADD or REVERSE_SUBTRACT,
114 * SRC_COLOR == (1,1,1), and the following state is set, the colorbuffer
115 * will not be changed.
116 * Notice that the dst factors are the src factors inverted. */
117 return (srcRGB == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
118 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
119 (srcA == PIPE_BLENDFACTOR_ZERO) &&
120 (dstRGB == PIPE_BLENDFACTOR_SRC_COLOR ||
121 dstRGB == PIPE_BLENDFACTOR_ONE) &&
122 (dstA == PIPE_BLENDFACTOR_ONE);
123 }
124
125 static boolean blend_discard_if_src_alpha_color_0(unsigned srcRGB, unsigned srcA,
126 unsigned dstRGB, unsigned dstA)
127 {
128 /* If the blend equation is ADD or REVERSE_SUBTRACT,
129 * SRC_ALPHA_COLOR == (0,0,0,0), and the following state is set,
130 * the colorbuffer will not be changed.
131 * Notice that the dst factors are the src factors inverted. */
132 return (srcRGB == PIPE_BLENDFACTOR_SRC_COLOR ||
133 srcRGB == PIPE_BLENDFACTOR_SRC_ALPHA ||
134 srcRGB == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE ||
135 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
136 (srcA == PIPE_BLENDFACTOR_SRC_COLOR ||
137 srcA == PIPE_BLENDFACTOR_SRC_ALPHA ||
138 srcA == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE ||
139 srcA == PIPE_BLENDFACTOR_ZERO) &&
140 (dstRGB == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
141 dstRGB == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
142 dstRGB == PIPE_BLENDFACTOR_ONE) &&
143 (dstA == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
144 dstA == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
145 dstA == PIPE_BLENDFACTOR_ONE);
146 }
147
148 static boolean blend_discard_if_src_alpha_color_1(unsigned srcRGB, unsigned srcA,
149 unsigned dstRGB, unsigned dstA)
150 {
151 /* If the blend equation is ADD or REVERSE_SUBTRACT,
152 * SRC_ALPHA_COLOR == (1,1,1,1), and the following state is set,
153 * the colorbuffer will not be changed.
154 * Notice that the dst factors are the src factors inverted. */
155 return (srcRGB == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
156 srcRGB == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
157 srcRGB == PIPE_BLENDFACTOR_ZERO) &&
158 (srcA == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
159 srcA == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
160 srcA == PIPE_BLENDFACTOR_ZERO) &&
161 (dstRGB == PIPE_BLENDFACTOR_SRC_COLOR ||
162 dstRGB == PIPE_BLENDFACTOR_SRC_ALPHA ||
163 dstRGB == PIPE_BLENDFACTOR_ONE) &&
164 (dstA == PIPE_BLENDFACTOR_SRC_COLOR ||
165 dstA == PIPE_BLENDFACTOR_SRC_ALPHA ||
166 dstA == PIPE_BLENDFACTOR_ONE);
167 }
168
169 static unsigned bgra_cmask(unsigned mask)
170 {
171 /* Gallium uses RGBA color ordering while R300 expects BGRA. */
172
173 return ((mask & PIPE_MASK_R) << 2) |
174 ((mask & PIPE_MASK_B) >> 2) |
175 (mask & (PIPE_MASK_G | PIPE_MASK_A));
176 }
177
178 /* Create a new blend state based on the CSO blend state.
179 *
180 * This encompasses alpha blending, logic/raster ops, and blend dithering. */
181 static void* r300_create_blend_state(struct pipe_context* pipe,
182 const struct pipe_blend_state* state)
183 {
184 struct r300_screen* r300screen = r300_screen(pipe->screen);
185 struct r300_blend_state* blend = CALLOC_STRUCT(r300_blend_state);
186
187 if (state->rt[0].blend_enable)
188 {
189 unsigned eqRGB = state->rt[0].rgb_func;
190 unsigned srcRGB = state->rt[0].rgb_src_factor;
191 unsigned dstRGB = state->rt[0].rgb_dst_factor;
192
193 unsigned eqA = state->rt[0].alpha_func;
194 unsigned srcA = state->rt[0].alpha_src_factor;
195 unsigned dstA = state->rt[0].alpha_dst_factor;
196
197 /* despite the name, ALPHA_BLEND_ENABLE has nothing to do with alpha,
198 * this is just the crappy D3D naming */
199 blend->blend_control = R300_ALPHA_BLEND_ENABLE |
200 r300_translate_blend_function(eqRGB) |
201 ( r300_translate_blend_factor(srcRGB) << R300_SRC_BLEND_SHIFT) |
202 ( r300_translate_blend_factor(dstRGB) << R300_DST_BLEND_SHIFT);
203
204 /* Optimization: some operations do not require the destination color.
205 *
206 * When SRC_ALPHA_SATURATE is used, colorbuffer reads must be enabled,
207 * otherwise blending gives incorrect results. It seems to be
208 * a hardware bug. */
209 if (eqRGB == PIPE_BLEND_MIN || eqA == PIPE_BLEND_MIN ||
210 eqRGB == PIPE_BLEND_MAX || eqA == PIPE_BLEND_MAX ||
211 dstRGB != PIPE_BLENDFACTOR_ZERO ||
212 dstA != PIPE_BLENDFACTOR_ZERO ||
213 srcRGB == PIPE_BLENDFACTOR_DST_COLOR ||
214 srcRGB == PIPE_BLENDFACTOR_DST_ALPHA ||
215 srcRGB == PIPE_BLENDFACTOR_INV_DST_COLOR ||
216 srcRGB == PIPE_BLENDFACTOR_INV_DST_ALPHA ||
217 srcA == PIPE_BLENDFACTOR_DST_COLOR ||
218 srcA == PIPE_BLENDFACTOR_DST_ALPHA ||
219 srcA == PIPE_BLENDFACTOR_INV_DST_COLOR ||
220 srcA == PIPE_BLENDFACTOR_INV_DST_ALPHA ||
221 srcRGB == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE) {
222 /* Enable reading from the colorbuffer. */
223 blend->blend_control |= R300_READ_ENABLE;
224
225 if (r300screen->caps.is_r500) {
226 /* Optimization: Depending on incoming pixels, we can
227 * conditionally disable the reading in hardware... */
228 if (eqRGB != PIPE_BLEND_MIN && eqA != PIPE_BLEND_MIN &&
229 eqRGB != PIPE_BLEND_MAX && eqA != PIPE_BLEND_MAX) {
230 /* Disable reading if SRC_ALPHA == 0. */
231 if ((dstRGB == PIPE_BLENDFACTOR_SRC_ALPHA ||
232 dstRGB == PIPE_BLENDFACTOR_ZERO) &&
233 (dstA == PIPE_BLENDFACTOR_SRC_COLOR ||
234 dstA == PIPE_BLENDFACTOR_SRC_ALPHA ||
235 dstA == PIPE_BLENDFACTOR_ZERO)) {
236 blend->blend_control |= R500_SRC_ALPHA_0_NO_READ;
237 }
238
239 /* Disable reading if SRC_ALPHA == 1. */
240 if ((dstRGB == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
241 dstRGB == PIPE_BLENDFACTOR_ZERO) &&
242 (dstA == PIPE_BLENDFACTOR_INV_SRC_COLOR ||
243 dstA == PIPE_BLENDFACTOR_INV_SRC_ALPHA ||
244 dstA == PIPE_BLENDFACTOR_ZERO)) {
245 blend->blend_control |= R500_SRC_ALPHA_1_NO_READ;
246 }
247 }
248 }
249 }
250
251 /* Optimization: discard pixels which don't change the colorbuffer.
252 *
253 * The code below is non-trivial and some math is involved.
254 *
255 * Discarding pixels must be disabled when FP16 AA is enabled.
256 * This is a hardware bug. Also, this implementation wouldn't work
257 * with FP blending enabled and equation clamping disabled.
258 *
259 * Equations other than ADD are rarely used and therefore won't be
260 * optimized. */
261 if ((eqRGB == PIPE_BLEND_ADD || eqRGB == PIPE_BLEND_REVERSE_SUBTRACT) &&
262 (eqA == PIPE_BLEND_ADD || eqA == PIPE_BLEND_REVERSE_SUBTRACT)) {
263 /* ADD: X+Y
264 * REVERSE_SUBTRACT: Y-X
265 *
266 * The idea is:
267 * If X = src*srcFactor = 0 and Y = dst*dstFactor = 1,
268 * then CB will not be changed.
269 *
270 * Given the srcFactor and dstFactor variables, we can derive
271 * what src and dst should be equal to and discard appropriate
272 * pixels.
273 */
274 if (blend_discard_if_src_alpha_0(srcRGB, srcA, dstRGB, dstA)) {
275 blend->blend_control |= R300_DISCARD_SRC_PIXELS_SRC_ALPHA_0;
276 } else if (blend_discard_if_src_alpha_1(srcRGB, srcA,
277 dstRGB, dstA)) {
278 blend->blend_control |= R300_DISCARD_SRC_PIXELS_SRC_ALPHA_1;
279 } else if (blend_discard_if_src_color_0(srcRGB, srcA,
280 dstRGB, dstA)) {
281 blend->blend_control |= R300_DISCARD_SRC_PIXELS_SRC_COLOR_0;
282 } else if (blend_discard_if_src_color_1(srcRGB, srcA,
283 dstRGB, dstA)) {
284 blend->blend_control |= R300_DISCARD_SRC_PIXELS_SRC_COLOR_1;
285 } else if (blend_discard_if_src_alpha_color_0(srcRGB, srcA,
286 dstRGB, dstA)) {
287 blend->blend_control |=
288 R300_DISCARD_SRC_PIXELS_SRC_ALPHA_COLOR_0;
289 } else if (blend_discard_if_src_alpha_color_1(srcRGB, srcA,
290 dstRGB, dstA)) {
291 blend->blend_control |=
292 R300_DISCARD_SRC_PIXELS_SRC_ALPHA_COLOR_1;
293 }
294 }
295
296 /* separate alpha */
297 if (srcA != srcRGB || dstA != dstRGB || eqA != eqRGB) {
298 blend->blend_control |= R300_SEPARATE_ALPHA_ENABLE;
299 blend->alpha_blend_control =
300 r300_translate_blend_function(eqA) |
301 (r300_translate_blend_factor(srcA) << R300_SRC_BLEND_SHIFT) |
302 (r300_translate_blend_factor(dstA) << R300_DST_BLEND_SHIFT);
303 }
304 }
305
306 /* PIPE_LOGICOP_* don't need to be translated, fortunately. */
307 if (state->logicop_enable) {
308 blend->rop = R300_RB3D_ROPCNTL_ROP_ENABLE |
309 (state->logicop_func) << R300_RB3D_ROPCNTL_ROP_SHIFT;
310 }
311
312 /* Color channel masks for all MRTs. */
313 blend->color_channel_mask = bgra_cmask(state->rt[0].colormask);
314 if (r300screen->caps.is_r500 && state->independent_blend_enable) {
315 if (state->rt[1].blend_enable) {
316 blend->color_channel_mask |= bgra_cmask(state->rt[1].colormask) << 4;
317 }
318 if (state->rt[2].blend_enable) {
319 blend->color_channel_mask |= bgra_cmask(state->rt[2].colormask) << 8;
320 }
321 if (state->rt[3].blend_enable) {
322 blend->color_channel_mask |= bgra_cmask(state->rt[3].colormask) << 12;
323 }
324 }
325
326 /* Neither fglrx nor classic r300 ever set this, regardless of dithering
327 * state. Since it's an optional implementation detail, we can leave it
328 * out and never dither.
329 *
330 * This could be revisited if we ever get quality or conformance hints.
331 *
332 if (state->dither) {
333 blend->dither = R300_RB3D_DITHER_CTL_DITHER_MODE_LUT |
334 R300_RB3D_DITHER_CTL_ALPHA_DITHER_MODE_LUT;
335 }
336 */
337
338 return (void*)blend;
339 }
340
341 /* Bind blend state. */
342 static void r300_bind_blend_state(struct pipe_context* pipe,
343 void* state)
344 {
345 struct r300_context* r300 = r300_context(pipe);
346
347 UPDATE_STATE(state, r300->blend_state);
348 }
349
350 /* Free blend state. */
351 static void r300_delete_blend_state(struct pipe_context* pipe,
352 void* state)
353 {
354 FREE(state);
355 }
356
357 /* Convert float to 10bit integer */
358 static unsigned float_to_fixed10(float f)
359 {
360 return CLAMP((unsigned)(f * 1023.9f), 0, 1023);
361 }
362
363 /* Set blend color.
364 * Setup both R300 and R500 registers, figure out later which one to write. */
365 static void r300_set_blend_color(struct pipe_context* pipe,
366 const struct pipe_blend_color* color)
367 {
368 struct r300_context* r300 = r300_context(pipe);
369 struct r300_blend_color_state* state =
370 (struct r300_blend_color_state*)r300->blend_color_state.state;
371 union util_color uc;
372
373 util_pack_color(color->color, PIPE_FORMAT_B8G8R8A8_UNORM, &uc);
374 state->blend_color = uc.ui;
375
376 /* XXX if FP16 blending is enabled, we should use the FP16 format */
377 state->blend_color_red_alpha =
378 float_to_fixed10(color->color[0]) |
379 (float_to_fixed10(color->color[3]) << 16);
380 state->blend_color_green_blue =
381 float_to_fixed10(color->color[2]) |
382 (float_to_fixed10(color->color[1]) << 16);
383
384 r300->blend_color_state.size = r300->screen->caps.is_r500 ? 3 : 2;
385 r300->blend_color_state.dirty = TRUE;
386 }
387
388 static void r300_set_clip_state(struct pipe_context* pipe,
389 const struct pipe_clip_state* state)
390 {
391 struct r300_context* r300 = r300_context(pipe);
392
393 r300->clip = *state;
394
395 if (r300->screen->caps.has_tcl) {
396 memcpy(r300->clip_state.state, state, sizeof(struct pipe_clip_state));
397 r300->clip_state.size = 29;
398 } else {
399 draw_flush(r300->draw);
400 draw_set_clip_state(r300->draw, state);
401 r300->clip_state.size = 2;
402 }
403
404 r300->clip_state.dirty = TRUE;
405 }
406
407 /* Create a new depth, stencil, and alpha state based on the CSO dsa state.
408 *
409 * This contains the depth buffer, stencil buffer, alpha test, and such.
410 * On the Radeon, depth and stencil buffer setup are intertwined, which is
411 * the reason for some of the strange-looking assignments across registers. */
412 static void*
413 r300_create_dsa_state(struct pipe_context* pipe,
414 const struct pipe_depth_stencil_alpha_state* state)
415 {
416 struct r300_capabilities *caps = &r300_screen(pipe->screen)->caps;
417 struct r300_dsa_state* dsa = CALLOC_STRUCT(r300_dsa_state);
418
419 /* Depth test setup. */
420 if (state->depth.enabled) {
421 dsa->z_buffer_control |= R300_Z_ENABLE;
422
423 if (state->depth.writemask) {
424 dsa->z_buffer_control |= R300_Z_WRITE_ENABLE;
425 }
426
427 dsa->z_stencil_control |=
428 (r300_translate_depth_stencil_function(state->depth.func) <<
429 R300_Z_FUNC_SHIFT);
430 }
431
432 /* Stencil buffer setup. */
433 if (state->stencil[0].enabled) {
434 dsa->z_buffer_control |= R300_STENCIL_ENABLE;
435 dsa->z_stencil_control |=
436 (r300_translate_depth_stencil_function(state->stencil[0].func) <<
437 R300_S_FRONT_FUNC_SHIFT) |
438 (r300_translate_stencil_op(state->stencil[0].fail_op) <<
439 R300_S_FRONT_SFAIL_OP_SHIFT) |
440 (r300_translate_stencil_op(state->stencil[0].zpass_op) <<
441 R300_S_FRONT_ZPASS_OP_SHIFT) |
442 (r300_translate_stencil_op(state->stencil[0].zfail_op) <<
443 R300_S_FRONT_ZFAIL_OP_SHIFT);
444
445 dsa->stencil_ref_mask =
446 (state->stencil[0].valuemask << R300_STENCILMASK_SHIFT) |
447 (state->stencil[0].writemask << R300_STENCILWRITEMASK_SHIFT);
448
449 if (state->stencil[1].enabled) {
450 dsa->two_sided = TRUE;
451
452 dsa->z_buffer_control |= R300_STENCIL_FRONT_BACK;
453 dsa->z_stencil_control |=
454 (r300_translate_depth_stencil_function(state->stencil[1].func) <<
455 R300_S_BACK_FUNC_SHIFT) |
456 (r300_translate_stencil_op(state->stencil[1].fail_op) <<
457 R300_S_BACK_SFAIL_OP_SHIFT) |
458 (r300_translate_stencil_op(state->stencil[1].zpass_op) <<
459 R300_S_BACK_ZPASS_OP_SHIFT) |
460 (r300_translate_stencil_op(state->stencil[1].zfail_op) <<
461 R300_S_BACK_ZFAIL_OP_SHIFT);
462
463 dsa->stencil_ref_bf =
464 (state->stencil[1].valuemask << R300_STENCILMASK_SHIFT) |
465 (state->stencil[1].writemask << R300_STENCILWRITEMASK_SHIFT);
466
467 if (caps->is_r500) {
468 dsa->z_buffer_control |= R500_STENCIL_REFMASK_FRONT_BACK;
469 } else {
470 dsa->stencil_ref_bf_fallback =
471 (state->stencil[0].valuemask != state->stencil[1].valuemask ||
472 state->stencil[0].writemask != state->stencil[1].writemask);
473 }
474 }
475 }
476
477 /* Alpha test setup. */
478 if (state->alpha.enabled) {
479 dsa->alpha_function =
480 r300_translate_alpha_function(state->alpha.func) |
481 R300_FG_ALPHA_FUNC_ENABLE;
482
483 /* We could use 10bit alpha ref but who needs that? */
484 dsa->alpha_function |= float_to_ubyte(state->alpha.ref_value);
485
486 if (caps->is_r500)
487 dsa->alpha_function |= R500_FG_ALPHA_FUNC_8BIT;
488 }
489
490 return (void*)dsa;
491 }
492
493 static void r300_update_stencil_ref_fallback_status(struct r300_context *r300)
494 {
495 struct r300_dsa_state *dsa = (struct r300_dsa_state*)r300->dsa_state.state;
496
497 if (r300->screen->caps.is_r500) {
498 return;
499 }
500
501 r300->stencil_ref_bf_fallback =
502 dsa->stencil_ref_bf_fallback ||
503 (dsa->two_sided &&
504 r300->stencil_ref.ref_value[0] != r300->stencil_ref.ref_value[1]);
505 }
506
507 /* Bind DSA state. */
508 static void r300_bind_dsa_state(struct pipe_context* pipe,
509 void* state)
510 {
511 struct r300_context* r300 = r300_context(pipe);
512
513 if (!state) {
514 return;
515 }
516
517 UPDATE_STATE(state, r300->dsa_state);
518
519 r300_update_stencil_ref_fallback_status(r300);
520 }
521
522 /* Free DSA state. */
523 static void r300_delete_dsa_state(struct pipe_context* pipe,
524 void* state)
525 {
526 FREE(state);
527 }
528
529 static void r300_set_stencil_ref(struct pipe_context* pipe,
530 const struct pipe_stencil_ref* sr)
531 {
532 struct r300_context* r300 = r300_context(pipe);
533
534 r300->stencil_ref = *sr;
535 r300->dsa_state.dirty = TRUE;
536
537 r300_update_stencil_ref_fallback_status(r300);
538 }
539
540 /* This switcheroo is needed just because of goddamned MACRO_SWITCH. */
541 static void r300_fb_set_tiling_flags(struct r300_context *r300,
542 const struct pipe_framebuffer_state *old_state,
543 const struct pipe_framebuffer_state *new_state)
544 {
545 struct r300_texture *tex;
546 unsigned i, level;
547
548 /* Set tiling flags for new surfaces. */
549 for (i = 0; i < new_state->nr_cbufs; i++) {
550 tex = r300_texture(new_state->cbufs[i]->texture);
551 level = new_state->cbufs[i]->level;
552
553 r300->rws->buffer_set_tiling(r300->rws, tex->buffer,
554 tex->pitch[0],
555 tex->microtile,
556 tex->mip_macrotile[level]);
557 }
558 if (new_state->zsbuf) {
559 tex = r300_texture(new_state->zsbuf->texture);
560 level = new_state->zsbuf->level;
561
562 r300->rws->buffer_set_tiling(r300->rws, tex->buffer,
563 tex->pitch[0],
564 tex->microtile,
565 tex->mip_macrotile[level]);
566 }
567 }
568
569 static void
570 r300_set_framebuffer_state(struct pipe_context* pipe,
571 const struct pipe_framebuffer_state* state)
572 {
573 struct r300_context* r300 = r300_context(pipe);
574 struct pipe_framebuffer_state *old_state = r300->fb_state.state;
575 unsigned max_width, max_height;
576 uint32_t zbuffer_bpp = 0;
577
578 if (state->nr_cbufs > 4) {
579 fprintf(stderr, "r300: Implementation error: Too many MRTs in %s, "
580 "refusing to bind framebuffer state!\n", __FUNCTION__);
581 return;
582 }
583
584 if (r300->screen->caps.is_r500) {
585 max_width = max_height = 4096;
586 } else if (r300->screen->caps.is_r400) {
587 max_width = max_height = 4021;
588 } else {
589 max_width = max_height = 2560;
590 }
591
592 if (state->width > max_width || state->height > max_height) {
593 fprintf(stderr, "r300: Implementation error: Render targets are too "
594 "big in %s, refusing to bind framebuffer state!\n", __FUNCTION__);
595 return;
596 }
597
598 if (r300->draw) {
599 draw_flush(r300->draw);
600 }
601
602 r300->fb_state.dirty = TRUE;
603
604 /* If nr_cbufs is changed from zero to non-zero or vice versa... */
605 if (!!old_state->nr_cbufs != !!state->nr_cbufs) {
606 r300->blend_state.dirty = TRUE;
607 }
608 /* If zsbuf is set from NULL to non-NULL or vice versa.. */
609 if (!!old_state->zsbuf != !!state->zsbuf) {
610 r300->dsa_state.dirty = TRUE;
611 }
612
613 /* The tiling flags are dependent on the surface miplevel, unfortunately. */
614 r300_fb_set_tiling_flags(r300, r300->fb_state.state, state);
615
616 memcpy(r300->fb_state.state, state, sizeof(struct pipe_framebuffer_state));
617
618 r300->fb_state.size = (10 * state->nr_cbufs) + (2 * (4 - state->nr_cbufs)) +
619 (state->zsbuf ? 10 : 0) + 9;
620
621 /* Polygon offset depends on the zbuffer bit depth. */
622 if (state->zsbuf && r300->polygon_offset_enabled) {
623 switch (util_format_get_blocksize(state->zsbuf->texture->format)) {
624 case 2:
625 zbuffer_bpp = 16;
626 break;
627 case 4:
628 zbuffer_bpp = 24;
629 break;
630 }
631
632 if (r300->zbuffer_bpp != zbuffer_bpp) {
633 r300->zbuffer_bpp = zbuffer_bpp;
634 r300->rs_state.dirty = TRUE;
635 }
636 }
637 }
638
639 /* Create fragment shader state. */
640 static void* r300_create_fs_state(struct pipe_context* pipe,
641 const struct pipe_shader_state* shader)
642 {
643 struct r300_fragment_shader* fs = NULL;
644
645 fs = (struct r300_fragment_shader*)CALLOC_STRUCT(r300_fragment_shader);
646
647 /* Copy state directly into shader. */
648 fs->state = *shader;
649 fs->state.tokens = tgsi_dup_tokens(shader->tokens);
650
651 return (void*)fs;
652 }
653
654 void r300_mark_fs_code_dirty(struct r300_context *r300)
655 {
656 struct r300_fragment_shader* fs = r300_fs(r300);
657
658 r300->fs.dirty = TRUE;
659 r300->fs_rc_constant_state.dirty = TRUE;
660 r300->fs_constants.dirty = TRUE;
661
662 if (r300->screen->caps.is_r500) {
663 r300->fs.size = r500_get_fs_atom_size(r300);
664 r300->fs_rc_constant_state.size = fs->shader->rc_state_count * 7;
665 r300->fs_constants.size = fs->shader->externals_count * 4 + 3;
666 } else {
667 r300->fs.size = r300_get_fs_atom_size(r300);
668 r300->fs_rc_constant_state.size = fs->shader->rc_state_count * 5;
669 r300->fs_constants.size = fs->shader->externals_count * 4 + 1;
670 }
671 }
672
673 /* Bind fragment shader state. */
674 static void r300_bind_fs_state(struct pipe_context* pipe, void* shader)
675 {
676 struct r300_context* r300 = r300_context(pipe);
677 struct r300_fragment_shader* fs = (struct r300_fragment_shader*)shader;
678
679 if (fs == NULL) {
680 r300->fs.state = NULL;
681 return;
682 }
683
684 r300->fs.state = fs;
685 r300_pick_fragment_shader(r300);
686 r300_mark_fs_code_dirty(r300);
687
688 r300->rs_block_state.dirty = TRUE; /* Will be updated before the emission. */
689 }
690
691 /* Delete fragment shader state. */
692 static void r300_delete_fs_state(struct pipe_context* pipe, void* shader)
693 {
694 struct r300_fragment_shader* fs = (struct r300_fragment_shader*)shader;
695 struct r300_fragment_shader_code *tmp, *ptr = fs->first;
696
697 while (ptr) {
698 tmp = ptr;
699 ptr = ptr->next;
700 rc_constants_destroy(&tmp->code.constants);
701 FREE(tmp);
702 }
703 FREE((void*)fs->state.tokens);
704 FREE(shader);
705 }
706
707 static void r300_set_polygon_stipple(struct pipe_context* pipe,
708 const struct pipe_poly_stipple* state)
709 {
710 /* XXX no idea how to set this up, but not terribly important */
711 }
712
713 /* Create a new rasterizer state based on the CSO rasterizer state.
714 *
715 * This is a very large chunk of state, and covers most of the graphics
716 * backend (GB), geometry assembly (GA), and setup unit (SU) blocks.
717 *
718 * In a not entirely unironic sidenote, this state has nearly nothing to do
719 * with the actual block on the Radeon called the rasterizer (RS). */
720 static void* r300_create_rs_state(struct pipe_context* pipe,
721 const struct pipe_rasterizer_state* state)
722 {
723 struct r300_rs_state* rs = CALLOC_STRUCT(r300_rs_state);
724 int i;
725 float psiz;
726
727 /* Copy rasterizer state for Draw. */
728 rs->rs = *state;
729
730 #ifdef PIPE_ARCH_LITTLE_ENDIAN
731 rs->vap_control_status = R300_VC_NO_SWAP;
732 #else
733 rs->vap_control_status = R300_VC_32BIT_SWAP;
734 #endif
735
736 /* If no TCL engine is present, turn off the HW TCL. */
737 if (!r300_screen(pipe->screen)->caps.has_tcl) {
738 rs->vap_control_status |= R300_VAP_TCL_BYPASS;
739 }
740
741 /* Point size width and height. */
742 rs->point_size =
743 pack_float_16_6x(state->point_size) |
744 (pack_float_16_6x(state->point_size) << R300_POINTSIZE_X_SHIFT);
745
746 /* Point size clamping. */
747 if (state->point_size_per_vertex) {
748 /* Per-vertex point size.
749 * Clamp to [0, max FB size] */
750 psiz = pipe->screen->get_paramf(pipe->screen,
751 PIPE_CAP_MAX_POINT_WIDTH);
752 rs->point_minmax =
753 pack_float_16_6x(psiz) << R300_GA_POINT_MINMAX_MAX_SHIFT;
754 } else {
755 /* We cannot disable the point-size vertex output,
756 * so clamp it. */
757 psiz = state->point_size;
758 rs->point_minmax =
759 (pack_float_16_6x(psiz) << R300_GA_POINT_MINMAX_MIN_SHIFT) |
760 (pack_float_16_6x(psiz) << R300_GA_POINT_MINMAX_MAX_SHIFT);
761 }
762
763 /* Line control. */
764 rs->line_control = pack_float_16_6x(state->line_width) |
765 R300_GA_LINE_CNTL_END_TYPE_COMP;
766
767 /* Enable polygon mode */
768 if (state->fill_cw != PIPE_POLYGON_MODE_FILL ||
769 state->fill_ccw != PIPE_POLYGON_MODE_FILL) {
770 rs->polygon_mode = R300_GA_POLY_MODE_DUAL;
771 }
772
773 /* Radeons don't think in "CW/CCW", they think in "front/back". */
774 if (state->front_winding == PIPE_WINDING_CW) {
775 rs->cull_mode = R300_FRONT_FACE_CW;
776
777 /* Polygon offset */
778 if (state->offset_cw) {
779 rs->polygon_offset_enable |= R300_FRONT_ENABLE;
780 }
781 if (state->offset_ccw) {
782 rs->polygon_offset_enable |= R300_BACK_ENABLE;
783 }
784
785 /* Polygon mode */
786 if (rs->polygon_mode) {
787 rs->polygon_mode |=
788 r300_translate_polygon_mode_front(state->fill_cw);
789 rs->polygon_mode |=
790 r300_translate_polygon_mode_back(state->fill_ccw);
791 }
792 } else {
793 rs->cull_mode = R300_FRONT_FACE_CCW;
794
795 /* Polygon offset */
796 if (state->offset_ccw) {
797 rs->polygon_offset_enable |= R300_FRONT_ENABLE;
798 }
799 if (state->offset_cw) {
800 rs->polygon_offset_enable |= R300_BACK_ENABLE;
801 }
802
803 /* Polygon mode */
804 if (rs->polygon_mode) {
805 rs->polygon_mode |=
806 r300_translate_polygon_mode_front(state->fill_ccw);
807 rs->polygon_mode |=
808 r300_translate_polygon_mode_back(state->fill_cw);
809 }
810 }
811 if (state->front_winding & state->cull_mode) {
812 rs->cull_mode |= R300_CULL_FRONT;
813 }
814 if (~(state->front_winding) & state->cull_mode) {
815 rs->cull_mode |= R300_CULL_BACK;
816 }
817
818 if (rs->polygon_offset_enable) {
819 rs->depth_offset = state->offset_units;
820 rs->depth_scale = state->offset_scale;
821 }
822
823 if (state->line_stipple_enable) {
824 rs->line_stipple_config =
825 R300_GA_LINE_STIPPLE_CONFIG_LINE_RESET_LINE |
826 (fui((float)state->line_stipple_factor) &
827 R300_GA_LINE_STIPPLE_CONFIG_STIPPLE_SCALE_MASK);
828 /* XXX this might need to be scaled up */
829 rs->line_stipple_value = state->line_stipple_pattern;
830 }
831
832 if (state->flatshade) {
833 rs->color_control = R300_SHADE_MODEL_FLAT;
834 } else {
835 rs->color_control = R300_SHADE_MODEL_SMOOTH;
836 }
837
838 rs->clip_rule = state->scissor ? 0xAAAA : 0xFFFF;
839
840 /* Point sprites */
841 if (state->sprite_coord_enable) {
842 rs->stuffing_enable = R300_GB_POINT_STUFF_ENABLE;
843 for (i = 0; i < 8; i++) {
844 if (state->sprite_coord_enable & (1 << i))
845 rs->stuffing_enable |=
846 R300_GB_TEX_STR << (R300_GB_TEX0_SOURCE_SHIFT + (i*2));
847 }
848
849 rs->point_texcoord_left = 0.0f;
850 rs->point_texcoord_right = 1.0f;
851
852 switch (state->sprite_coord_mode) {
853 case PIPE_SPRITE_COORD_UPPER_LEFT:
854 rs->point_texcoord_top = 0.0f;
855 rs->point_texcoord_bottom = 1.0f;
856 break;
857 case PIPE_SPRITE_COORD_LOWER_LEFT:
858 rs->point_texcoord_top = 1.0f;
859 rs->point_texcoord_bottom = 0.0f;
860 break;
861 }
862 }
863
864 return (void*)rs;
865 }
866
867 /* Bind rasterizer state. */
868 static void r300_bind_rs_state(struct pipe_context* pipe, void* state)
869 {
870 struct r300_context* r300 = r300_context(pipe);
871 struct r300_rs_state* rs = (struct r300_rs_state*)state;
872 int last_sprite_coord_enable = r300->sprite_coord_enable;
873 boolean last_two_sided_color = r300->two_sided_color;
874
875 if (r300->draw) {
876 draw_flush(r300->draw);
877 draw_set_rasterizer_state(r300->draw, &rs->rs, state);
878 }
879
880 if (rs) {
881 r300->polygon_offset_enabled = rs->rs.offset_cw || rs->rs.offset_ccw;
882 r300->sprite_coord_enable = rs->rs.sprite_coord_enable;
883 r300->two_sided_color = rs->rs.light_twoside;
884 } else {
885 r300->polygon_offset_enabled = FALSE;
886 r300->sprite_coord_enable = 0;
887 r300->two_sided_color = FALSE;
888 }
889
890 UPDATE_STATE(state, r300->rs_state);
891 r300->rs_state.size = 27 + (r300->polygon_offset_enabled ? 5 : 0);
892
893 if (last_sprite_coord_enable != r300->sprite_coord_enable ||
894 last_two_sided_color != r300->two_sided_color) {
895 r300->rs_block_state.dirty = TRUE;
896 }
897 }
898
899 /* Free rasterizer state. */
900 static void r300_delete_rs_state(struct pipe_context* pipe, void* state)
901 {
902 FREE(state);
903 }
904
905 static void*
906 r300_create_sampler_state(struct pipe_context* pipe,
907 const struct pipe_sampler_state* state)
908 {
909 struct r300_context* r300 = r300_context(pipe);
910 struct r300_sampler_state* sampler = CALLOC_STRUCT(r300_sampler_state);
911 boolean is_r500 = r300->screen->caps.is_r500;
912 int lod_bias;
913 union util_color uc;
914
915 sampler->state = *state;
916
917 sampler->filter0 |=
918 (r300_translate_wrap(state->wrap_s) << R300_TX_WRAP_S_SHIFT) |
919 (r300_translate_wrap(state->wrap_t) << R300_TX_WRAP_T_SHIFT) |
920 (r300_translate_wrap(state->wrap_r) << R300_TX_WRAP_R_SHIFT);
921
922 sampler->filter0 |= r300_translate_tex_filters(state->min_img_filter,
923 state->mag_img_filter,
924 state->min_mip_filter,
925 state->max_anisotropy > 0);
926
927 sampler->filter0 |= r300_anisotropy(state->max_anisotropy);
928
929 /* Unfortunately, r300-r500 don't support floating-point mipmap lods. */
930 /* We must pass these to the merge function to clamp them properly. */
931 sampler->min_lod = MAX2((unsigned)state->min_lod, 0);
932 sampler->max_lod = MAX2((unsigned)ceilf(state->max_lod), 0);
933
934 lod_bias = CLAMP((int)(state->lod_bias * 32 + 1), -(1 << 9), (1 << 9) - 1);
935
936 sampler->filter1 |= lod_bias << R300_LOD_BIAS_SHIFT;
937
938 /* This is very high quality anisotropic filtering for R5xx.
939 * It's good for benchmarking the performance of texturing but
940 * in practice we don't want to slow down the driver because it's
941 * a pretty good performance killer. Feel free to play with it. */
942 if (DBG_ON(r300, DBG_ANISOHQ) && is_r500) {
943 sampler->filter1 |= r500_anisotropy(state->max_anisotropy);
944 }
945
946 util_pack_color(state->border_color, PIPE_FORMAT_B8G8R8A8_UNORM, &uc);
947 sampler->border_color = uc.ui;
948
949 /* R500-specific fixups and optimizations */
950 if (r300->screen->caps.is_r500) {
951 sampler->filter1 |= R500_BORDER_FIX;
952 }
953
954 return (void*)sampler;
955 }
956
957 static void r300_bind_sampler_states(struct pipe_context* pipe,
958 unsigned count,
959 void** states)
960 {
961 struct r300_context* r300 = r300_context(pipe);
962 struct r300_textures_state* state =
963 (struct r300_textures_state*)r300->textures_state.state;
964 unsigned tex_units = r300->screen->caps.num_tex_units;
965
966 if (count > tex_units) {
967 return;
968 }
969
970 memcpy(state->sampler_states, states, sizeof(void*) * count);
971 state->sampler_state_count = count;
972
973 r300->textures_state.dirty = TRUE;
974 }
975
976 static void r300_lacks_vertex_textures(struct pipe_context* pipe,
977 unsigned count,
978 void** states)
979 {
980 }
981
982 static void r300_delete_sampler_state(struct pipe_context* pipe, void* state)
983 {
984 FREE(state);
985 }
986
987 static void r300_set_fragment_sampler_views(struct pipe_context* pipe,
988 unsigned count,
989 struct pipe_sampler_view** views)
990 {
991 struct r300_context* r300 = r300_context(pipe);
992 struct r300_textures_state* state =
993 (struct r300_textures_state*)r300->textures_state.state;
994 struct r300_texture *texture;
995 unsigned i;
996 unsigned tex_units = r300->screen->caps.num_tex_units;
997 boolean dirty_tex = FALSE;
998
999 if (count > tex_units) {
1000 return;
1001 }
1002
1003 for (i = 0; i < count; i++) {
1004 if (&state->sampler_views[i]->base != views[i]) {
1005 pipe_sampler_view_reference(
1006 (struct pipe_sampler_view**)&state->sampler_views[i],
1007 views[i]);
1008
1009 if (!views[i]) {
1010 continue;
1011 }
1012
1013 /* A new sampler view (= texture)... */
1014 dirty_tex = TRUE;
1015
1016 /* Set the texrect factor in the fragment shader.
1017 * Needed for RECT and NPOT fallback. */
1018 texture = r300_texture(views[i]->texture);
1019 if (texture->uses_pitch) {
1020 r300->fs_rc_constant_state.dirty = TRUE;
1021 }
1022 }
1023 }
1024
1025 for (i = count; i < tex_units; i++) {
1026 if (state->sampler_views[i]) {
1027 pipe_sampler_view_reference(
1028 (struct pipe_sampler_view**)&state->sampler_views[i],
1029 NULL);
1030 }
1031 }
1032
1033 state->sampler_view_count = count;
1034
1035 r300->textures_state.dirty = TRUE;
1036
1037 if (dirty_tex) {
1038 r300->texture_cache_inval.dirty = TRUE;
1039 }
1040 }
1041
1042 static struct pipe_sampler_view *
1043 r300_create_sampler_view(struct pipe_context *pipe,
1044 struct pipe_resource *texture,
1045 const struct pipe_sampler_view *templ)
1046 {
1047 struct r300_sampler_view *view = CALLOC_STRUCT(r300_sampler_view);
1048 struct r300_texture *tex = r300_texture(texture);
1049
1050 if (view) {
1051 view->base = *templ;
1052 view->base.reference.count = 1;
1053 view->base.context = pipe;
1054 view->base.texture = NULL;
1055 pipe_resource_reference(&view->base.texture, texture);
1056
1057 view->swizzle[0] = templ->swizzle_r;
1058 view->swizzle[1] = templ->swizzle_g;
1059 view->swizzle[2] = templ->swizzle_b;
1060 view->swizzle[3] = templ->swizzle_a;
1061
1062 view->format = tex->tx_format;
1063 view->format.format1 |= r300_translate_texformat(templ->format,
1064 view->swizzle);
1065 if (r300_screen(pipe->screen)->caps.is_r500) {
1066 view->format.format2 |= r500_tx_format_msb_bit(templ->format);
1067 }
1068 }
1069
1070 return (struct pipe_sampler_view*)view;
1071 }
1072
1073 static void
1074 r300_sampler_view_destroy(struct pipe_context *pipe,
1075 struct pipe_sampler_view *view)
1076 {
1077 pipe_resource_reference(&view->texture, NULL);
1078 FREE(view);
1079 }
1080
1081 static void r300_set_scissor_state(struct pipe_context* pipe,
1082 const struct pipe_scissor_state* state)
1083 {
1084 struct r300_context* r300 = r300_context(pipe);
1085
1086 memcpy(r300->scissor_state.state, state,
1087 sizeof(struct pipe_scissor_state));
1088
1089 r300->scissor_state.dirty = TRUE;
1090 }
1091
1092 static void r300_set_viewport_state(struct pipe_context* pipe,
1093 const struct pipe_viewport_state* state)
1094 {
1095 struct r300_context* r300 = r300_context(pipe);
1096 struct r300_viewport_state* viewport =
1097 (struct r300_viewport_state*)r300->viewport_state.state;
1098
1099 r300->viewport = *state;
1100
1101 /* Do the transform in HW. */
1102 viewport->vte_control = R300_VTX_W0_FMT;
1103
1104 if (state->scale[0] != 1.0f) {
1105 viewport->xscale = state->scale[0];
1106 viewport->vte_control |= R300_VPORT_X_SCALE_ENA;
1107 }
1108 if (state->scale[1] != 1.0f) {
1109 viewport->yscale = state->scale[1];
1110 viewport->vte_control |= R300_VPORT_Y_SCALE_ENA;
1111 }
1112 if (state->scale[2] != 1.0f) {
1113 viewport->zscale = state->scale[2];
1114 viewport->vte_control |= R300_VPORT_Z_SCALE_ENA;
1115 }
1116 if (state->translate[0] != 0.0f) {
1117 viewport->xoffset = state->translate[0];
1118 viewport->vte_control |= R300_VPORT_X_OFFSET_ENA;
1119 }
1120 if (state->translate[1] != 0.0f) {
1121 viewport->yoffset = state->translate[1];
1122 viewport->vte_control |= R300_VPORT_Y_OFFSET_ENA;
1123 }
1124 if (state->translate[2] != 0.0f) {
1125 viewport->zoffset = state->translate[2];
1126 viewport->vte_control |= R300_VPORT_Z_OFFSET_ENA;
1127 }
1128
1129 r300->viewport_state.dirty = TRUE;
1130 if (r300->fs.state && r300_fs(r300)->shader->inputs.wpos != ATTR_UNUSED) {
1131 r300->fs_rc_constant_state.dirty = TRUE;
1132 }
1133 }
1134
1135 static void r300_set_vertex_buffers(struct pipe_context* pipe,
1136 unsigned count,
1137 const struct pipe_vertex_buffer* buffers)
1138 {
1139 struct r300_context* r300 = r300_context(pipe);
1140 struct pipe_vertex_buffer *vbo;
1141 unsigned i, max_index = (1 << 24) - 1;
1142 boolean any_user_buffer = FALSE;
1143
1144 if (count == r300->vertex_buffer_count &&
1145 memcmp(r300->vertex_buffer, buffers,
1146 sizeof(struct pipe_vertex_buffer) * count) == 0) {
1147 return;
1148 }
1149
1150 /* Check if the stride is aligned to the size of DWORD. */
1151 for (i = 0; i < count; i++) {
1152 if (buffers[i].buffer) {
1153 if (buffers[i].stride % 4 != 0) {
1154 // XXX Shouldn't we align the buffer?
1155 fprintf(stderr, "r300: set_vertex_buffers: "
1156 "Unaligned buffer stride %i isn't supported.\n",
1157 buffers[i].stride);
1158 abort();
1159 }
1160 }
1161 }
1162
1163 for (i = 0; i < count; i++) {
1164 /* Why, yes, I AM casting away constness. How did you know? */
1165 vbo = (struct pipe_vertex_buffer*)&buffers[i];
1166
1167 /* Reference our buffer. */
1168 pipe_resource_reference(&r300->vertex_buffer[i].buffer, vbo->buffer);
1169
1170 /* Skip NULL buffers */
1171 if (!buffers[i].buffer) {
1172 continue;
1173 }
1174
1175 if (r300_buffer_is_user_buffer(vbo->buffer)) {
1176 any_user_buffer = TRUE;
1177 }
1178
1179 if (vbo->max_index == ~0) {
1180 /* if no VBO stride then only one vertex value so max index is 1 */
1181 /* should think about converting to VS constants like svga does */
1182 if (!vbo->stride)
1183 vbo->max_index = 1;
1184 else
1185 vbo->max_index =
1186 (vbo->buffer->width0 - vbo->buffer_offset) / vbo->stride;
1187 }
1188
1189 max_index = MIN2(vbo->max_index, max_index);
1190 }
1191
1192 for (; i < r300->vertex_buffer_count; i++) {
1193 /* Dereference any old buffers. */
1194 pipe_resource_reference(&r300->vertex_buffer[i].buffer, NULL);
1195 }
1196
1197 memcpy(r300->vertex_buffer, buffers,
1198 sizeof(struct pipe_vertex_buffer) * count);
1199
1200 r300->vertex_buffer_count = count;
1201 r300->vertex_buffer_max_index = max_index;
1202 r300->any_user_vbs = any_user_buffer;
1203
1204 if (r300->draw) {
1205 draw_flush(r300->draw);
1206 draw_set_vertex_buffers(r300->draw, count, buffers);
1207 }
1208 }
1209
1210 /* Update the PSC tables. */
1211 static void r300_vertex_psc(struct r300_vertex_element_state *velems)
1212 {
1213 struct r300_vertex_stream_state *vstream = &velems->vertex_stream;
1214 uint16_t type, swizzle;
1215 enum pipe_format format;
1216 unsigned i;
1217
1218 if (velems->count > 16) {
1219 fprintf(stderr, "r300: More than 16 vertex elements are not supported,"
1220 " requested %i, using 16.\n", velems->count);
1221 velems->count = 16;
1222 }
1223
1224 /* Vertex shaders have no semantics on their inputs,
1225 * so PSC should just route stuff based on the vertex elements,
1226 * and not on attrib information. */
1227 for (i = 0; i < velems->count; i++) {
1228 format = velems->velem[i].src_format;
1229
1230 type = r300_translate_vertex_data_type(format) |
1231 (i << R300_DST_VEC_LOC_SHIFT);
1232 swizzle = r300_translate_vertex_data_swizzle(format);
1233
1234 if (i & 1) {
1235 vstream->vap_prog_stream_cntl[i >> 1] |= type << 16;
1236 vstream->vap_prog_stream_cntl_ext[i >> 1] |= swizzle << 16;
1237 } else {
1238 vstream->vap_prog_stream_cntl[i >> 1] |= type;
1239 vstream->vap_prog_stream_cntl_ext[i >> 1] |= swizzle;
1240 }
1241 }
1242
1243 /* Set the last vector in the PSC. */
1244 if (i) {
1245 i -= 1;
1246 }
1247 vstream->vap_prog_stream_cntl[i >> 1] |=
1248 (R300_LAST_VEC << (i & 1 ? 16 : 0));
1249
1250 vstream->count = (i >> 1) + 1;
1251 }
1252
1253 static void* r300_create_vertex_elements_state(struct pipe_context* pipe,
1254 unsigned count,
1255 const struct pipe_vertex_element* attribs)
1256 {
1257 struct r300_vertex_element_state *velems;
1258 unsigned i, size;
1259 enum pipe_format *format;
1260
1261 assert(count <= PIPE_MAX_ATTRIBS);
1262 velems = CALLOC_STRUCT(r300_vertex_element_state);
1263 if (velems != NULL) {
1264 velems->count = count;
1265 memcpy(velems->velem, attribs, sizeof(struct pipe_vertex_element) * count);
1266
1267 if (r300_screen(pipe->screen)->caps.has_tcl) {
1268 r300_vertex_psc(velems);
1269
1270 /* Check if the format is aligned to the size of DWORD.
1271 * We only care about the blocksizes of the formats since
1272 * swizzles are already set up. */
1273 for (i = 0; i < count; i++) {
1274 format = &velems->velem[i].src_format;
1275
1276 /* Replace some formats with their aligned counterparts,
1277 * this is OK because we check for aligned strides too. */
1278 switch (*format) {
1279 /* Align to RGBA8. */
1280 case PIPE_FORMAT_R8_UNORM:
1281 case PIPE_FORMAT_R8G8_UNORM:
1282 case PIPE_FORMAT_R8G8B8_UNORM:
1283 *format = PIPE_FORMAT_R8G8B8A8_UNORM;
1284 continue;
1285 case PIPE_FORMAT_R8_SNORM:
1286 case PIPE_FORMAT_R8G8_SNORM:
1287 case PIPE_FORMAT_R8G8B8_SNORM:
1288 *format = PIPE_FORMAT_R8G8B8A8_SNORM;
1289 continue;
1290 case PIPE_FORMAT_R8_USCALED:
1291 case PIPE_FORMAT_R8G8_USCALED:
1292 case PIPE_FORMAT_R8G8B8_USCALED:
1293 *format = PIPE_FORMAT_R8G8B8A8_USCALED;
1294 continue;
1295 case PIPE_FORMAT_R8_SSCALED:
1296 case PIPE_FORMAT_R8G8_SSCALED:
1297 case PIPE_FORMAT_R8G8B8_SSCALED:
1298 *format = PIPE_FORMAT_R8G8B8A8_SSCALED;
1299 continue;
1300
1301 /* Align to RG16. */
1302 case PIPE_FORMAT_R16_UNORM:
1303 *format = PIPE_FORMAT_R16G16_UNORM;
1304 continue;
1305 case PIPE_FORMAT_R16_SNORM:
1306 *format = PIPE_FORMAT_R16G16_SNORM;
1307 continue;
1308 case PIPE_FORMAT_R16_USCALED:
1309 *format = PIPE_FORMAT_R16G16_USCALED;
1310 continue;
1311 case PIPE_FORMAT_R16_SSCALED:
1312 *format = PIPE_FORMAT_R16G16_SSCALED;
1313 continue;
1314 case PIPE_FORMAT_R16_FLOAT:
1315 *format = PIPE_FORMAT_R16G16_FLOAT;
1316 continue;
1317
1318 /* Align to RGBA16. */
1319 case PIPE_FORMAT_R16G16B16_UNORM:
1320 *format = PIPE_FORMAT_R16G16B16A16_UNORM;
1321 continue;
1322 case PIPE_FORMAT_R16G16B16_SNORM:
1323 *format = PIPE_FORMAT_R16G16B16A16_SNORM;
1324 continue;
1325 case PIPE_FORMAT_R16G16B16_USCALED:
1326 *format = PIPE_FORMAT_R16G16B16A16_USCALED;
1327 continue;
1328 case PIPE_FORMAT_R16G16B16_SSCALED:
1329 *format = PIPE_FORMAT_R16G16B16A16_SSCALED;
1330 continue;
1331 case PIPE_FORMAT_R16G16B16_FLOAT:
1332 *format = PIPE_FORMAT_R16G16B16A16_FLOAT;
1333 continue;
1334
1335 default:;
1336 }
1337
1338 size = util_format_get_blocksize(*format);
1339
1340 if (size % 4 != 0) {
1341 /* XXX Shouldn't we align the format? */
1342 fprintf(stderr, "r300_create_vertex_elements_state: "
1343 "Unaligned format %s:%i isn't supported\n",
1344 util_format_short_name(*format), size);
1345 assert(0);
1346 abort();
1347 }
1348 }
1349
1350 }
1351 }
1352 return velems;
1353 }
1354
1355 static void r300_bind_vertex_elements_state(struct pipe_context *pipe,
1356 void *state)
1357 {
1358 struct r300_context *r300 = r300_context(pipe);
1359 struct r300_vertex_element_state *velems = state;
1360
1361 if (velems == NULL) {
1362 return;
1363 }
1364
1365 r300->velems = velems;
1366
1367 if (r300->draw) {
1368 draw_flush(r300->draw);
1369 draw_set_vertex_elements(r300->draw, velems->count, velems->velem);
1370 }
1371
1372 UPDATE_STATE(&velems->vertex_stream, r300->vertex_stream_state);
1373 r300->vertex_stream_state.size = (1 + velems->vertex_stream.count) * 2;
1374 }
1375
1376 static void r300_delete_vertex_elements_state(struct pipe_context *pipe, void *state)
1377 {
1378 FREE(state);
1379 }
1380
1381 static void* r300_create_vs_state(struct pipe_context* pipe,
1382 const struct pipe_shader_state* shader)
1383 {
1384 struct r300_context* r300 = r300_context(pipe);
1385
1386 struct r300_vertex_shader* vs = CALLOC_STRUCT(r300_vertex_shader);
1387
1388 /* Copy state directly into shader. */
1389 vs->state = *shader;
1390 vs->state.tokens = tgsi_dup_tokens(shader->tokens);
1391
1392 if (r300->screen->caps.has_tcl) {
1393 r300_translate_vertex_shader(r300, vs, vs->state.tokens);
1394 } else {
1395 vs->draw_vs = draw_create_vertex_shader(r300->draw, shader);
1396 }
1397
1398 return vs;
1399 }
1400
1401 static void r300_bind_vs_state(struct pipe_context* pipe, void* shader)
1402 {
1403 struct r300_context* r300 = r300_context(pipe);
1404 struct r300_vertex_shader* vs = (struct r300_vertex_shader*)shader;
1405
1406 if (vs == NULL) {
1407 r300->vs_state.state = NULL;
1408 return;
1409 }
1410 if (vs == r300->vs_state.state) {
1411 return;
1412 }
1413 r300->vs_state.state = vs;
1414
1415 /* The majority of the RS block bits is dependent on the vertex shader. */
1416 r300->rs_block_state.dirty = TRUE; /* Will be updated before the emission. */
1417
1418 if (r300->screen->caps.has_tcl) {
1419 r300->vs_state.dirty = TRUE;
1420 r300->vs_state.size =
1421 vs->code.length + 9 +
1422 (vs->immediates_count ? vs->immediates_count * 4 + 3 : 0);
1423
1424 if (vs->externals_count) {
1425 r300->vs_constants.dirty = TRUE;
1426 r300->vs_constants.size = vs->externals_count * 4 + 3;
1427 } else {
1428 r300->vs_constants.size = 0;
1429 }
1430
1431 r300->pvs_flush.dirty = TRUE;
1432 } else {
1433 draw_flush(r300->draw);
1434 draw_bind_vertex_shader(r300->draw,
1435 (struct draw_vertex_shader*)vs->draw_vs);
1436 }
1437 }
1438
1439 static void r300_delete_vs_state(struct pipe_context* pipe, void* shader)
1440 {
1441 struct r300_context* r300 = r300_context(pipe);
1442 struct r300_vertex_shader* vs = (struct r300_vertex_shader*)shader;
1443
1444 if (r300->screen->caps.has_tcl) {
1445 rc_constants_destroy(&vs->code.constants);
1446 } else {
1447 draw_delete_vertex_shader(r300->draw,
1448 (struct draw_vertex_shader*)vs->draw_vs);
1449 }
1450
1451 FREE((void*)vs->state.tokens);
1452 FREE(shader);
1453 }
1454
1455 static void r300_set_constant_buffer(struct pipe_context *pipe,
1456 uint shader, uint index,
1457 struct pipe_resource *buf)
1458 {
1459 struct r300_context* r300 = r300_context(pipe);
1460 struct r300_constant_buffer *cbuf;
1461 struct pipe_transfer *tr;
1462 void *mapped;
1463 int max_size = 0;
1464
1465 switch (shader) {
1466 case PIPE_SHADER_VERTEX:
1467 cbuf = (struct r300_constant_buffer*)r300->vs_constants.state;
1468 max_size = 256;
1469 break;
1470 case PIPE_SHADER_FRAGMENT:
1471 cbuf = (struct r300_constant_buffer*)r300->fs_constants.state;
1472 if (r300->screen->caps.is_r500) {
1473 max_size = 256;
1474 } else {
1475 max_size = 32;
1476 }
1477 break;
1478 default:
1479 assert(0);
1480 return;
1481 }
1482
1483 if (buf == NULL || buf->width0 == 0 ||
1484 (mapped = pipe_buffer_map(pipe, buf, PIPE_TRANSFER_READ, &tr)) == NULL)
1485 {
1486 cbuf->count = 0;
1487 return;
1488 }
1489
1490 assert((buf->width0 % 4 * sizeof(float)) == 0);
1491
1492 /* Check the size of the constant buffer. */
1493 /* XXX Subtract immediates and RC_STATE_* variables. */
1494 if (buf->width0 > (sizeof(float) * 4 * max_size)) {
1495 fprintf(stderr, "r300: Max size of the constant buffer is "
1496 "%i*4 floats.\n", max_size);
1497 abort();
1498 }
1499
1500 memcpy(cbuf->constants, mapped, buf->width0);
1501 cbuf->count = buf->width0 / (4 * sizeof(float));
1502 pipe_buffer_unmap(pipe, buf, tr);
1503
1504 if (shader == PIPE_SHADER_VERTEX) {
1505 if (r300->screen->caps.has_tcl) {
1506 if (r300->vs_constants.size) {
1507 r300->vs_constants.dirty = TRUE;
1508 }
1509 r300->pvs_flush.dirty = TRUE;
1510 } else if (r300->draw) {
1511 draw_set_mapped_constant_buffer(r300->draw, PIPE_SHADER_VERTEX,
1512 0, cbuf->constants,
1513 buf->width0);
1514 }
1515 } else if (shader == PIPE_SHADER_FRAGMENT) {
1516 r300->fs_constants.dirty = TRUE;
1517 }
1518 }
1519
1520 void r300_init_state_functions(struct r300_context* r300)
1521 {
1522 r300->context.create_blend_state = r300_create_blend_state;
1523 r300->context.bind_blend_state = r300_bind_blend_state;
1524 r300->context.delete_blend_state = r300_delete_blend_state;
1525
1526 r300->context.set_blend_color = r300_set_blend_color;
1527
1528 r300->context.set_clip_state = r300_set_clip_state;
1529
1530 r300->context.set_constant_buffer = r300_set_constant_buffer;
1531
1532 r300->context.create_depth_stencil_alpha_state = r300_create_dsa_state;
1533 r300->context.bind_depth_stencil_alpha_state = r300_bind_dsa_state;
1534 r300->context.delete_depth_stencil_alpha_state = r300_delete_dsa_state;
1535
1536 r300->context.set_stencil_ref = r300_set_stencil_ref;
1537
1538 r300->context.set_framebuffer_state = r300_set_framebuffer_state;
1539
1540 r300->context.create_fs_state = r300_create_fs_state;
1541 r300->context.bind_fs_state = r300_bind_fs_state;
1542 r300->context.delete_fs_state = r300_delete_fs_state;
1543
1544 r300->context.set_polygon_stipple = r300_set_polygon_stipple;
1545
1546 r300->context.create_rasterizer_state = r300_create_rs_state;
1547 r300->context.bind_rasterizer_state = r300_bind_rs_state;
1548 r300->context.delete_rasterizer_state = r300_delete_rs_state;
1549
1550 r300->context.create_sampler_state = r300_create_sampler_state;
1551 r300->context.bind_fragment_sampler_states = r300_bind_sampler_states;
1552 r300->context.bind_vertex_sampler_states = r300_lacks_vertex_textures;
1553 r300->context.delete_sampler_state = r300_delete_sampler_state;
1554
1555 r300->context.set_fragment_sampler_views = r300_set_fragment_sampler_views;
1556 r300->context.create_sampler_view = r300_create_sampler_view;
1557 r300->context.sampler_view_destroy = r300_sampler_view_destroy;
1558
1559 r300->context.set_scissor_state = r300_set_scissor_state;
1560
1561 r300->context.set_viewport_state = r300_set_viewport_state;
1562
1563 r300->context.set_vertex_buffers = r300_set_vertex_buffers;
1564
1565 r300->context.create_vertex_elements_state = r300_create_vertex_elements_state;
1566 r300->context.bind_vertex_elements_state = r300_bind_vertex_elements_state;
1567 r300->context.delete_vertex_elements_state = r300_delete_vertex_elements_state;
1568
1569 r300->context.create_vs_state = r300_create_vs_state;
1570 r300->context.bind_vs_state = r300_bind_vs_state;
1571 r300->context.delete_vs_state = r300_delete_vs_state;
1572 }