Small optimization for big-endian (e.g., PowerPC) systems.
[mesa.git] / src / mesa / drivers / dri / common / spantmp2.h
1 /*
2 * Copyright 2000-2001 VA Linux Systems, Inc.
3 * (C) Copyright IBM Corporation 2004
4 * All Rights Reserved.
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a
7 * copy of this software and associated documentation files (the "Software"),
8 * to deal in the Software without restriction, including without limitation
9 * on the rights to use, copy, modify, merge, publish, distribute, sub
10 * license, and/or sell copies of the Software, and to permit persons to whom
11 * the Software is furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice (including the next
14 * paragraph) shall be included in all copies or substantial portions of the
15 * Software.
16 *
17 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
18 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
19 * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
20 * VA LINUX SYSTEM, IBM AND/OR THEIR SUPPLIERS BE LIABLE FOR ANY CLAIM,
21 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
22 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
23 * USE OR OTHER DEALINGS IN THE SOFTWARE.
24 */
25
26 /**
27 * \file spantmp2.h
28 *
29 * Template file of span read / write functions.
30 *
31 * \author Keith Whitwell <keithw@tungstengraphics.com>
32 * \author Gareth Hughes <gareth@nvidia.com>
33 * \author Ian Romanick <idr@us.ibm.com>
34 */
35
36 #include "colormac.h"
37
38 #ifndef DBG
39 #define DBG 0
40 #endif
41
42 #ifndef HW_WRITE_LOCK
43 #define HW_WRITE_LOCK() HW_LOCK()
44 #endif
45
46 #ifndef HW_WRITE_UNLOCK
47 #define HW_WRITE_UNLOCK() HW_UNLOCK()
48 #endif
49
50 #ifndef HW_READ_LOCK
51 #define HW_READ_LOCK() HW_LOCK()
52 #endif
53
54 #ifndef HW_READ_UNLOCK
55 #define HW_READ_UNLOCK() HW_UNLOCK()
56 #endif
57
58 #ifndef HW_READ_CLIPLOOP
59 #define HW_READ_CLIPLOOP() HW_CLIPLOOP()
60 #endif
61
62 #ifndef HW_WRITE_CLIPLOOP
63 #define HW_WRITE_CLIPLOOP() HW_CLIPLOOP()
64 #endif
65
66 #if (SPANTMP_PIXEL_FMT == GL_RGB) && (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_SHORT_5_6_5)
67
68 #define INIT_MONO_PIXEL(p, color) \
69 p = PACK_COLOR_565( color[0], color[1], color[2] )
70
71 #define WRITE_RGBA( _x, _y, r, g, b, a ) \
72 do { \
73 GLshort * _p = (GLshort *) GET_DST_PTR(_x, _y); \
74 _p[0] = ((((int)r & 0xf8) << 8) | (((int)g & 0xfc) << 3) | \
75 (((int)b & 0xf8) >> 3)); \
76 } while(0)
77
78 #define WRITE_PIXEL( _x, _y, p ) \
79 do { \
80 GLushort * _p = (GLushort *) GET_DST_PTR(_x, _y); \
81 _p[0] = p; \
82 } while(0)
83
84 #define READ_RGBA( rgba, _x, _y ) \
85 do { \
86 GLushort p = *(volatile GLshort *) GET_SRC_PTR(_x, _y); \
87 rgba[0] = ((p >> 8) & 0xf8) * 255 / 0xf8; \
88 rgba[1] = ((p >> 3) & 0xfc) * 255 / 0xfc; \
89 rgba[2] = ((p << 3) & 0xf8) * 255 / 0xf8; \
90 rgba[3] = 0xff; \
91 } while (0)
92
93 #elif (SPANTMP_PIXEL_FMT == GL_BGRA) && (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_INT_8_8_8_8_REV)
94
95 # define INIT_MONO_PIXEL(p, color) \
96 p = PACK_COLOR_8888(color[3], color[0], color[1], color[2])
97
98 # define WRITE_RGBA(_x, _y, r, g, b, a) \
99 do { \
100 GLuint * _p = (GLuint *) GET_DST_PTR(_x, _y); \
101 _p[0] = ((r << 16) | (g << 8) | (b << 0) | (a << 24)); \
102 } while(0)
103
104 #define WRITE_PIXEL(_x, _y, p) \
105 do { \
106 GLuint * _p = (GLuint *) GET_DST_PTR(_x, _y); \
107 _p[0] = p; \
108 } while(0)
109
110 # if defined( USE_X86_ASM )
111 # define READ_RGBA(rgba, _x, _y) \
112 do { \
113 GLuint p = *(volatile GLuint *) GET_SRC_PTR(_x, _y); \
114 __asm__ __volatile__( "bswap %0; rorl $8, %0" \
115 : "=r" (p) : "r" (p) ); \
116 ((GLuint *)rgba)[0] = p; \
117 } while (0)
118 # elif defined( MESA_BIG_ENDIAN )
119 /* On PowerPC with GCC 3.4.2 the shift madness below becomes a single
120 * rotlwi instruction. It also produces good code on SPARC.
121 */
122 # define READ_RGBA( rgba, _x, _y ) \
123 do { \
124 GLuint p = *(volatile GLuint *) GET_SRC_PTR(_x, _y); \
125 GLuint t = p; \
126 *((uint32_t *) rgba) = (t >> 24) | (p << 8); \
127 } while (0)
128 # else
129 # define READ_RGBA( rgba, _x, _y ) \
130 do { \
131 GLuint p = *(volatile GLuint *) GET_SRC_PTR(_x, _y); \
132 rgba[0] = (p >> 16) & 0xff; \
133 rgba[1] = (p >> 8) & 0xff; \
134 rgba[2] = (p >> 0) & 0xff; \
135 rgba[3] = (p >> 24) & 0xff; \
136 } while (0)
137 # endif
138
139 #else
140 #error SPANTMP_PIXEL_FMT must be set to a valid value!
141 #endif
142
143 #if defined( USE_MMX_ASM ) || defined( USE_SSE_ASM )
144 #include "x86/read_rgba_span_x86.h"
145 #include "x86/common_x86_asm.h"
146 #endif
147
148 static void TAG(WriteRGBASpan)( const GLcontext *ctx,
149 GLuint n, GLint x, GLint y,
150 const GLubyte rgba[][4],
151 const GLubyte mask[] )
152 {
153 HW_WRITE_LOCK()
154 {
155 GLint x1;
156 GLint n1;
157 LOCAL_VARS;
158
159 y = Y_FLIP(y);
160
161 HW_WRITE_CLIPLOOP()
162 {
163 GLint i = 0;
164 CLIPSPAN(x,y,n,x1,n1,i);
165
166 if (DBG) fprintf(stderr, "WriteRGBASpan %d..%d (x1 %d)\n",
167 (int)i, (int)n1, (int)x1);
168
169 if (mask)
170 {
171 for (;n1>0;i++,x1++,n1--)
172 if (mask[i])
173 WRITE_RGBA( x1, y,
174 rgba[i][0], rgba[i][1],
175 rgba[i][2], rgba[i][3] );
176 }
177 else
178 {
179 for (;n1>0;i++,x1++,n1--)
180 WRITE_RGBA( x1, y,
181 rgba[i][0], rgba[i][1],
182 rgba[i][2], rgba[i][3] );
183 }
184 }
185 HW_ENDCLIPLOOP();
186 }
187 HW_WRITE_UNLOCK();
188 }
189
190 static void TAG(WriteRGBSpan)( const GLcontext *ctx,
191 GLuint n, GLint x, GLint y,
192 const GLubyte rgb[][3],
193 const GLubyte mask[] )
194 {
195 HW_WRITE_LOCK()
196 {
197 GLint x1;
198 GLint n1;
199 LOCAL_VARS;
200
201 y = Y_FLIP(y);
202
203 HW_WRITE_CLIPLOOP()
204 {
205 GLint i = 0;
206 CLIPSPAN(x,y,n,x1,n1,i);
207
208 if (DBG) fprintf(stderr, "WriteRGBSpan %d..%d (x1 %d)\n",
209 (int)i, (int)n1, (int)x1);
210
211 if (mask)
212 {
213 for (;n1>0;i++,x1++,n1--)
214 if (mask[i])
215 WRITE_RGBA( x1, y, rgb[i][0], rgb[i][1], rgb[i][2], 255 );
216 }
217 else
218 {
219 for (;n1>0;i++,x1++,n1--)
220 WRITE_RGBA( x1, y, rgb[i][0], rgb[i][1], rgb[i][2], 255 );
221 }
222 }
223 HW_ENDCLIPLOOP();
224 }
225 HW_WRITE_UNLOCK();
226 }
227
228 static void TAG(WriteRGBAPixels)( const GLcontext *ctx,
229 GLuint n,
230 const GLint x[],
231 const GLint y[],
232 const GLubyte rgba[][4],
233 const GLubyte mask[] )
234 {
235 HW_WRITE_LOCK()
236 {
237 GLint i;
238 LOCAL_VARS;
239
240 if (DBG) fprintf(stderr, "WriteRGBAPixels\n");
241
242 HW_WRITE_CLIPLOOP()
243 {
244 if (mask)
245 {
246 for (i=0;i<n;i++)
247 {
248 if (mask[i]) {
249 const int fy = Y_FLIP(y[i]);
250 if (CLIPPIXEL(x[i],fy))
251 WRITE_RGBA( x[i], fy,
252 rgba[i][0], rgba[i][1],
253 rgba[i][2], rgba[i][3] );
254 }
255 }
256 }
257 else
258 {
259 for (i=0;i<n;i++)
260 {
261 const int fy = Y_FLIP(y[i]);
262 if (CLIPPIXEL(x[i],fy))
263 WRITE_RGBA( x[i], fy,
264 rgba[i][0], rgba[i][1],
265 rgba[i][2], rgba[i][3] );
266 }
267 }
268 }
269 HW_ENDCLIPLOOP();
270 }
271 HW_WRITE_UNLOCK();
272 }
273
274
275 static void TAG(WriteMonoRGBASpan)( const GLcontext *ctx,
276 GLuint n, GLint x, GLint y,
277 const GLchan color[4],
278 const GLubyte mask[] )
279 {
280 HW_WRITE_LOCK()
281 {
282 GLint x1;
283 GLint n1;
284 LOCAL_VARS;
285 INIT_MONO_PIXEL(p, color);
286
287 y = Y_FLIP( y );
288
289 if (DBG) fprintf(stderr, "WriteMonoRGBASpan\n");
290
291 HW_WRITE_CLIPLOOP()
292 {
293 GLint i = 0;
294 CLIPSPAN(x,y,n,x1,n1,i);
295 if (mask)
296 {
297 for (;n1>0;i++,x1++,n1--)
298 if (mask[i])
299 WRITE_PIXEL( x1, y, p );
300 }
301 else
302 {
303 for (;n1>0;i++,x1++,n1--)
304 WRITE_PIXEL( x1, y, p );
305 }
306 }
307 HW_ENDCLIPLOOP();
308 }
309 HW_WRITE_UNLOCK();
310 }
311
312
313 static void TAG(WriteMonoRGBAPixels)( const GLcontext *ctx,
314 GLuint n,
315 const GLint x[], const GLint y[],
316 const GLchan color[],
317 const GLubyte mask[] )
318 {
319 HW_WRITE_LOCK()
320 {
321 GLint i;
322 LOCAL_VARS;
323 INIT_MONO_PIXEL(p, color);
324
325 if (DBG) fprintf(stderr, "WriteMonoRGBAPixels\n");
326
327 HW_WRITE_CLIPLOOP()
328 {
329 if (mask)
330 {
331 for (i=0;i<n;i++)
332 if (mask[i]) {
333 int fy = Y_FLIP(y[i]);
334 if (CLIPPIXEL( x[i], fy ))
335 WRITE_PIXEL( x[i], fy, p );
336 }
337 }
338 else
339 {
340 for (i=0;i<n;i++) {
341 int fy = Y_FLIP(y[i]);
342 if (CLIPPIXEL( x[i], fy ))
343 WRITE_PIXEL( x[i], fy, p );
344 }
345 }
346 }
347 HW_ENDCLIPLOOP();
348 }
349 HW_WRITE_UNLOCK();
350 }
351
352
353 static void TAG(ReadRGBASpan)( const GLcontext *ctx,
354 GLuint n, GLint x, GLint y,
355 GLubyte rgba[][4])
356 {
357 HW_READ_LOCK()
358 {
359 GLint x1,n1;
360 LOCAL_VARS;
361
362 y = Y_FLIP(y);
363
364 if (DBG) fprintf(stderr, "ReadRGBASpan\n");
365
366 HW_READ_CLIPLOOP()
367 {
368 GLint i = 0;
369 CLIPSPAN(x,y,n,x1,n1,i);
370 for (;n1>0;i++,x1++,n1--)
371 READ_RGBA( rgba[i], x1, y );
372 }
373 HW_ENDCLIPLOOP();
374 }
375 HW_READ_UNLOCK();
376 }
377
378
379 #if defined(USE_MMX_ASM) && \
380 (SPANTMP_PIXEL_FMT == GL_BGRA) && \
381 (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_INT_8_8_8_8_REV)
382 static void TAG2(ReadRGBASpan,_MMX)( const GLcontext *ctx,
383 GLuint n, GLint x, GLint y,
384 GLubyte rgba[][4])
385 {
386 #ifndef USE_INNER_EMMS
387 /* The EMMS instruction is directly in-lined here because using GCC's
388 * built-in _mm_empty function was found to utterly destroy performance.
389 */
390 __asm__ __volatile__( "emms" );
391 #endif
392
393 HW_LOCK()
394 {
395 GLint x1,n1;
396 LOCAL_VARS;
397
398 y = Y_FLIP(y);
399
400 if (DBG) fprintf(stderr, "ReadRGBASpan\n");
401
402 HW_READ_CLIPLOOP()
403 {
404 GLint i = 0;
405 CLIPSPAN(x,y,n,x1,n1,i);
406
407 {
408 const char * src = GET_SRC_PTR( x1, y );
409 _generic_read_RGBA_span_BGRA8888_REV_MMX( src, rgba[i], n1 );
410 }
411 }
412 HW_ENDCLIPLOOP();
413 }
414 HW_UNLOCK();
415 #ifndef USE_INNER_EMMS
416 __asm__ __volatile__( "emms" );
417 #endif
418 }
419 #endif
420
421
422 #if defined(USE_SSE_ASM) && \
423 (SPANTMP_PIXEL_FMT == GL_BGRA) && \
424 (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_INT_8_8_8_8_REV)
425 static void TAG2(ReadRGBASpan,_SSE2)( const GLcontext *ctx,
426 GLuint n, GLint x, GLint y,
427 GLubyte rgba[][4])
428 {
429 HW_LOCK()
430 {
431 GLint x1,n1;
432 LOCAL_VARS;
433
434 y = Y_FLIP(y);
435
436 if (DBG) fprintf(stderr, "ReadRGBASpan\n");
437
438 HW_READ_CLIPLOOP()
439 {
440 GLint i = 0;
441 CLIPSPAN(x,y,n,x1,n1,i);
442
443 {
444 const char * src = GET_SRC_PTR( x1, y );
445 _generic_read_RGBA_span_BGRA8888_REV_SSE2( src, rgba[i], n1 );
446 }
447 }
448 HW_ENDCLIPLOOP();
449 }
450 HW_UNLOCK();
451 }
452 #endif
453
454 #if defined(USE_SSE_ASM) && \
455 (SPANTMP_PIXEL_FMT == GL_BGRA) && \
456 (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_INT_8_8_8_8_REV)
457 static void TAG2(ReadRGBASpan,_SSE)( const GLcontext *ctx,
458 GLuint n, GLint x, GLint y,
459 GLubyte rgba[][4])
460 {
461 #ifndef USE_INNER_EMMS
462 /* The EMMS instruction is directly in-lined here because using GCC's
463 * built-in _mm_empty function was found to utterly destroy performance.
464 */
465 __asm__ __volatile__( "emms" );
466 #endif
467
468 HW_LOCK()
469 {
470 GLint x1,n1;
471 LOCAL_VARS;
472
473 y = Y_FLIP(y);
474
475 if (DBG) fprintf(stderr, "ReadRGBASpan\n");
476
477 HW_READ_CLIPLOOP()
478 {
479 GLint i = 0;
480 CLIPSPAN(x,y,n,x1,n1,i);
481
482 {
483 const char * src = GET_SRC_PTR( x1, y );
484 _generic_read_RGBA_span_BGRA8888_REV_SSE( src, rgba[i], n1 );
485 }
486 }
487 HW_ENDCLIPLOOP();
488 }
489 HW_UNLOCK();
490 #ifndef USE_INNER_EMMS
491 __asm__ __volatile__( "emms" );
492 #endif
493 }
494 #endif
495
496
497 static void TAG(ReadRGBAPixels)( const GLcontext *ctx,
498 GLuint n, const GLint x[], const GLint y[],
499 GLubyte rgba[][4], const GLubyte mask[] )
500 {
501 HW_READ_LOCK()
502 {
503 GLint i;
504 LOCAL_VARS;
505
506 if (DBG) fprintf(stderr, "ReadRGBAPixels\n");
507
508 HW_READ_CLIPLOOP()
509 {
510 if (mask)
511 {
512 for (i=0;i<n;i++)
513 if (mask[i]) {
514 int fy = Y_FLIP( y[i] );
515 if (CLIPPIXEL( x[i], fy ))
516 READ_RGBA( rgba[i], x[i], fy );
517 }
518 }
519 else
520 {
521 for (i=0;i<n;i++) {
522 int fy = Y_FLIP( y[i] );
523 if (CLIPPIXEL( x[i], fy ))
524 READ_RGBA( rgba[i], x[i], fy );
525 }
526 }
527 }
528 HW_ENDCLIPLOOP();
529 }
530 HW_READ_UNLOCK();
531 }
532
533 static void TAG(InitPointers)(struct swrast_device_driver *swdd)
534 {
535 swdd->WriteRGBASpan = TAG(WriteRGBASpan);
536 swdd->WriteRGBSpan = TAG(WriteRGBSpan);
537 swdd->WriteMonoRGBASpan = TAG(WriteMonoRGBASpan);
538 swdd->WriteRGBAPixels = TAG(WriteRGBAPixels);
539 swdd->WriteMonoRGBAPixels = TAG(WriteMonoRGBAPixels);
540 swdd->ReadRGBAPixels = TAG(ReadRGBAPixels);
541
542 #if (SPANTMP_PIXEL_FMT == GL_BGRA) && \
543 (SPANTMP_PIXEL_TYPE == GL_UNSIGNED_INT_8_8_8_8_REV)
544 #if defined(USE_SSE_ASM)
545 if ( cpu_has_xmm2 ) {
546 if (DBG) fprintf( stderr, "Using %s version of ReadRGBASpan\n", "SSE2" );
547 swdd->ReadRGBASpan = TAG2(ReadRGBASpan, _SSE2);
548 }
549 else
550 #endif
551 #if defined(USE_SSE_ASM)
552 if ( cpu_has_xmm ) {
553 if (DBG) fprintf( stderr, "Using %s version of ReadRGBASpan\n", "SSE" );
554 swdd->ReadRGBASpan = TAG2(ReadRGBASpan, _SSE);
555 }
556 else
557 #endif
558 #if defined(USE_MMX_ASM)
559 if ( cpu_has_mmx ) {
560 if (DBG) fprintf( stderr, "Using %s version of ReadRGBASpan\n", "MMX" );
561 swdd->ReadRGBASpan = TAG2(ReadRGBASpan, _MMX);
562 }
563 else
564 #endif
565 #endif
566 {
567 if (DBG) fprintf( stderr, "Using %s version of ReadRGBASpan\n", "C" );
568 swdd->ReadRGBASpan = TAG(ReadRGBASpan);
569 }
570
571 }
572
573
574 #undef INIT_MONO_PIXEL
575 #undef WRITE_PIXEL
576 #undef WRITE_RGBA
577 #undef READ_RGBA
578 #undef TAG
579 #undef TAG2
580 #undef GET_SRC_PTR
581 #undef GET_DST_PTR
582 #undef SPANTMP_PIXEL_FMT
583 #undef SPANTMP_PIXEL_TYPE