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Side by Side Diff: src/codec/SkSwizzler.cpp

Issue 1055743003: Swizzler changes Index8 and 565 (Closed) Base URL: https://skia.googlesource.com/skia.git@master
Patch Set: Fix windows errors Created 5 years, 8 months ago
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1 /* 1 /*
2 * Copyright 2015 Google Inc. 2 * Copyright 2015 Google Inc.
3 * 3 *
4 * Use of this source code is governed by a BSD-style license that can be 4 * Use of this source code is governed by a BSD-style license that can be
5 * found in the LICENSE file. 5 * found in the LICENSE file.
6 */ 6 */
7 7
8 #include "SkCodecPriv.h" 8 #include "SkCodecPriv.h"
9 #include "SkColorPriv.h" 9 #include "SkColorPriv.h"
10 #include "SkSwizzler.h" 10 #include "SkSwizzler.h"
11 #include "SkTemplates.h" 11 #include "SkTemplates.h"
12 #include "SkUtils.h"
12 13
13 SkSwizzler::ResultAlpha SkSwizzler::GetResult(uint8_t zeroAlpha, 14 SkSwizzler::ResultAlpha SkSwizzler::GetResult(uint8_t zeroAlpha,
14 uint8_t maxAlpha) { 15 uint8_t maxAlpha) {
15 // In the transparent case, this returns 0x0000 16 // In the transparent case, this returns 0x0000
16 // In the opaque case, this returns 0xFFFF 17 // In the opaque case, this returns 0xFFFF
17 // If the row is neither transparent nor opaque, returns something else 18 // If the row is neither transparent nor opaque, returns something else
18 return (((uint16_t) maxAlpha) << 8) | zeroAlpha; 19 return (((uint16_t) maxAlpha) << 8) | zeroAlpha;
19 } 20 }
20 21
21 // kIndex1, kIndex2, kIndex4 22 // kIndex1, kIndex2, kIndex4
22 23
23 static SkSwizzler::ResultAlpha swizzle_small_index_to_n32( 24 static SkSwizzler::ResultAlpha swizzle_small_index_to_index(
24 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 25 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
25 int bitsPerPixel, int y, const SkPMColor ctable[]) { 26 int bitsPerPixel, int y, const SkPMColor ctable[]) {
26 27
27 SkPMColor* SK_RESTRICT dst = (SkPMColor*) dstRow; 28 uint8_t* SK_RESTRICT dst = (uint8_t*) dstRow;
28 INIT_RESULT_ALPHA; 29 INIT_RESULT_ALPHA;
29 const uint32_t pixelsPerByte = 8 / bitsPerPixel; 30 const uint32_t pixelsPerByte = 8 / bitsPerPixel;
30 const size_t rowBytes = compute_row_bytes_ppb(width, pixelsPerByte); 31 const size_t rowBytes = compute_row_bytes_ppb(width, pixelsPerByte);
31 const uint8_t mask = (1 << bitsPerPixel) - 1; 32 const uint8_t mask = (1 << bitsPerPixel) - 1;
32 int x = 0; 33 int x = 0;
33 for (uint32_t byte = 0; byte < rowBytes; byte++) { 34 for (uint32_t byte = 0; byte < rowBytes; byte++) {
34 uint8_t pixelData = src[byte]; 35 uint8_t pixelData = src[byte];
35 for (uint32_t p = 0; p < pixelsPerByte && x < width; p++) { 36 for (uint32_t p = 0; p < pixelsPerByte && x < width; p++) {
36 uint8_t index = (pixelData >> (8 - bitsPerPixel)) & mask; 37 uint8_t index = (pixelData >> (8 - bitsPerPixel)) & mask;
37 SkPMColor c = ctable[index]; 38 UPDATE_RESULT_ALPHA(ctable[index] >> SK_A32_SHIFT);
38 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT); 39 dst[x] = index;
39 dst[x] = c;
40 pixelData <<= bitsPerPixel; 40 pixelData <<= bitsPerPixel;
41 x++; 41 x++;
42 } 42 }
43 } 43 }
44 return COMPUTE_RESULT_ALPHA; 44 return COMPUTE_RESULT_ALPHA;
45 } 45 }
46 46
47 static SkSwizzler::ResultAlpha swizzle_small_index_to_565( 47 static SkSwizzler::ResultAlpha swizzle_small_index_to_n32(
48 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 48 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
49 int bitsPerPixel, int y, const SkPMColor ctable[]) { 49 int bitsPerPixel, int y, const SkPMColor ctable[]) {
50 50
51 uint16_t* SK_RESTRICT dst = (uint16_t*) dstRow; 51 SkPMColor* SK_RESTRICT dst = (SkPMColor*) dstRow;
52 INIT_RESULT_ALPHA;
52 const uint32_t pixelsPerByte = 8 / bitsPerPixel; 53 const uint32_t pixelsPerByte = 8 / bitsPerPixel;
53 const size_t rowBytes = compute_row_bytes_ppb(width, pixelsPerByte); 54 const size_t rowBytes = compute_row_bytes_ppb(width, pixelsPerByte);
54 const uint8_t mask = (1 << bitsPerPixel) - 1; 55 const uint8_t mask = (1 << bitsPerPixel) - 1;
55 int x = 0; 56 int x = 0;
56 for (uint32_t byte = 0; byte < rowBytes; byte++) { 57 for (uint32_t byte = 0; byte < rowBytes; byte++) {
57 uint8_t pixelData = src[byte]; 58 uint8_t pixelData = src[byte];
58 for (uint32_t p = 0; p < pixelsPerByte && x < width; p++) { 59 for (uint32_t p = 0; p < pixelsPerByte && x < width; p++) {
59 uint8_t index = (pixelData >> (8 - bitsPerPixel)) & mask; 60 uint8_t index = (pixelData >> (8 - bitsPerPixel)) & mask;
60 uint16_t c = SkPixel32ToPixel16(ctable[index]); 61 SkPMColor c = ctable[index];
62 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT);
61 dst[x] = c; 63 dst[x] = c;
62 pixelData <<= bitsPerPixel; 64 pixelData <<= bitsPerPixel;
63 x++; 65 x++;
64 } 66 }
65 } 67 }
66 return SkSwizzler::kOpaque_ResultAlpha; 68 return COMPUTE_RESULT_ALPHA;
69 }
70
71 static SkSwizzler::ResultAlpha swizzle_index_to_index(
72 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
73 int bytesPerPixel, int y, const SkPMColor ctable[]) {
74
75 uint8_t* SK_RESTRICT dst = (uint8_t*) dstRow;
76 memcpy(dst, src, width);
77 // TODO (msarett): Should we skip the loop here and guess that the row is op aque/not opaque?
78 // SkScaledBitmap sampler just guesses that it is opaque. T his is dangerous
79 // and probably wrong since gif and bmp (rarely) may have al pha.
80 INIT_RESULT_ALPHA;
81 for (int x = 0; x < width; x++) {
82 UPDATE_RESULT_ALPHA(ctable[src[x]] >> SK_A32_SHIFT);
83 }
84 return COMPUTE_RESULT_ALPHA;
67 } 85 }
68 86
69 // kIndex 87 // kIndex
70 88
71 static SkSwizzler::ResultAlpha swizzle_index_to_n32( 89 static SkSwizzler::ResultAlpha swizzle_index_to_n32(
72 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 90 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
73 int bytesPerPixel, int y, const SkPMColor ctable[]) { 91 int bytesPerPixel, int y, const SkPMColor ctable[]) {
74 92
75 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow; 93 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow;
76 INIT_RESULT_ALPHA; 94 INIT_RESULT_ALPHA;
77 for (int x = 0; x < width; x++) { 95 for (int x = 0; x < width; x++) {
78 SkPMColor c = ctable[*src]; 96 SkPMColor c = ctable[src[x]];
79 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT); 97 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT);
80 dst[x] = c; 98 dst[x] = c;
81 src++;
82 } 99 }
83 return COMPUTE_RESULT_ALPHA; 100 return COMPUTE_RESULT_ALPHA;
84 } 101 }
85 102
86 static SkSwizzler::ResultAlpha swizzle_index_to_n32_skipZ( 103 static SkSwizzler::ResultAlpha swizzle_index_to_n32_skipZ(
87 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 104 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
88 int bytesPerPixel, int y, const SkPMColor ctable[]) { 105 int bytesPerPixel, int y, const SkPMColor ctable[]) {
89 106
90 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow; 107 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow;
91 INIT_RESULT_ALPHA; 108 INIT_RESULT_ALPHA;
92 for (int x = 0; x < width; x++) { 109 for (int x = 0; x < width; x++) {
93 SkPMColor c = ctable[*src]; 110 SkPMColor c = ctable[src[x]];
94 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT); 111 UPDATE_RESULT_ALPHA(c >> SK_A32_SHIFT);
95 if (c != 0) { 112 if (c != 0) {
96 dst[x] = c; 113 dst[x] = c;
97 } 114 }
98 src++;
99 } 115 }
100 return COMPUTE_RESULT_ALPHA; 116 return COMPUTE_RESULT_ALPHA;
101 } 117 }
102 118
103 static SkSwizzler::ResultAlpha swizzle_index_to_565(
104 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
105 int bytesPerPixel, int y, const SkPMColor ctable[]) {
106
107 uint16_t* SK_RESTRICT dst = (uint16_t*)dstRow;
108 for (int x = 0; x < width; x++) {
109 uint16_t c = SkPixel32ToPixel16(ctable[*src]);
110 dst[x] = c;
111 src++;
112 }
113 return SkSwizzler::kOpaque_ResultAlpha;
114 }
115
116 #undef A32_MASK_IN_PLACE 119 #undef A32_MASK_IN_PLACE
117 120
118 static SkSwizzler::ResultAlpha swizzle_bgrx_to_n32( 121 static SkSwizzler::ResultAlpha swizzle_bgrx_to_n32(
119 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 122 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
120 int bytesPerPixel, int y, const SkPMColor ctable[]) { 123 int bytesPerPixel, int y, const SkPMColor ctable[]) {
121 124
122 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow; 125 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow;
123 for (int x = 0; x < width; x++) { 126 for (int x = 0; x < width; x++) {
124 dst[x] = SkPackARGB32NoCheck(0xFF, src[2], src[1], src[0]); 127 dst[x] = SkPackARGB32NoCheck(0xFF, src[2], src[1], src[0]);
125 src += bytesPerPixel; 128 src += bytesPerPixel;
126 } 129 }
127 return SkSwizzler::kOpaque_ResultAlpha; 130 return SkSwizzler::kOpaque_ResultAlpha;
128 } 131 }
129 132
130 static SkSwizzler::ResultAlpha swizzle_bgrx_to_565(
131 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
132 int bytesPerPixel, int y, const SkPMColor ctable[]) {
133
134 uint16_t* SK_RESTRICT dst = (uint16_t*)dstRow;
135 for (int x = 0; x < width; x++) {
136 dst[x] = SkPack888ToRGB16(src[2], src[1], src[0]);
137 src += bytesPerPixel;
138 }
139 return SkSwizzler::kOpaque_ResultAlpha;
140 }
141
142 // kBGRA 133 // kBGRA
143 134
144 static SkSwizzler::ResultAlpha swizzle_bgra_to_n32_unpremul( 135 static SkSwizzler::ResultAlpha swizzle_bgra_to_n32_unpremul(
145 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width, 136 void* SK_RESTRICT dstRow, const uint8_t* SK_RESTRICT src, int width,
146 int bytesPerPixel, int y, const SkPMColor ctable[]) { 137 int bytesPerPixel, int y, const SkPMColor ctable[]) {
147 138
148 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow; 139 SkPMColor* SK_RESTRICT dst = (SkPMColor*)dstRow;
149 INIT_RESULT_ALPHA; 140 INIT_RESULT_ALPHA;
150 for (int x = 0; x < width; x++) { 141 for (int x = 0; x < width; x++) {
151 uint8_t alpha = src[3]; 142 uint8_t alpha = src[3];
(...skipping 123 matching lines...) Expand 10 before | Expand all | Expand 10 after
275 } 266 }
276 RowProc proc = NULL; 267 RowProc proc = NULL;
277 switch (sc) { 268 switch (sc) {
278 case kIndex1: 269 case kIndex1:
279 case kIndex2: 270 case kIndex2:
280 case kIndex4: 271 case kIndex4:
281 switch (info.colorType()) { 272 switch (info.colorType()) {
282 case kN32_SkColorType: 273 case kN32_SkColorType:
283 proc = &swizzle_small_index_to_n32; 274 proc = &swizzle_small_index_to_n32;
284 break; 275 break;
285 case kRGB_565_SkColorType: 276 case kIndex_8_SkColorType:
286 proc = &swizzle_small_index_to_565; 277 proc = &swizzle_small_index_to_index;
287 break; 278 break;
288 default: 279 default:
289 break; 280 break;
290 } 281 }
291 break; 282 break;
292 case kIndex: 283 case kIndex:
293 switch (info.colorType()) { 284 switch (info.colorType()) {
294 case kN32_SkColorType: 285 case kN32_SkColorType:
295 // We assume the color premultiplied ctable (or not) as desi red. 286 // We assume the color premultiplied ctable (or not) as desi red.
296 if (SkImageGenerator::kYes_ZeroInitialized == zeroInit) { 287 if (SkImageGenerator::kYes_ZeroInitialized == zeroInit) {
297 proc = &swizzle_index_to_n32_skipZ; 288 proc = &swizzle_index_to_n32_skipZ;
298 break; 289 break;
299 } else { 290 } else {
300 proc = &swizzle_index_to_n32; 291 proc = &swizzle_index_to_n32;
301 break; 292 break;
302 } 293 }
303 break; 294 break;
304 case kRGB_565_SkColorType: 295 case kIndex_8_SkColorType:
305 proc = &swizzle_index_to_565; 296 proc = &swizzle_index_to_index;
306 break; 297 break;
307 default: 298 default:
308 break; 299 break;
309 } 300 }
310 break; 301 break;
311 case kBGR: 302 case kBGR:
312 case kBGRX: 303 case kBGRX:
313 switch (info.colorType()) { 304 switch (info.colorType()) {
314 case kN32_SkColorType: 305 case kN32_SkColorType:
315 proc = &swizzle_bgrx_to_n32; 306 proc = &swizzle_bgrx_to_n32;
316 break; 307 break;
317 case kRGB_565_SkColorType:
318 proc = &swizzle_bgrx_to_565;
319 break;
320 default: 308 default:
321 break; 309 break;
322 } 310 }
323 break; 311 break;
324 case kBGRA: 312 case kBGRA:
325 switch (info.colorType()) { 313 switch (info.colorType()) {
326 case kN32_SkColorType: 314 case kN32_SkColorType:
327 switch (info.alphaType()) { 315 switch (info.alphaType()) {
328 case kUnpremul_SkAlphaType: 316 case kUnpremul_SkAlphaType:
329 proc = &swizzle_bgra_to_n32_unpremul; 317 proc = &swizzle_bgra_to_n32_unpremul;
(...skipping 96 matching lines...) Expand 10 before | Expand all | Expand 10 after
426 SkASSERT(kConsecutive_NextMode != fNextMode); 414 SkASSERT(kConsecutive_NextMode != fNextMode);
427 SkDEBUGCODE(fNextMode = kDesignateRow_NextMode); 415 SkDEBUGCODE(fNextMode = kDesignateRow_NextMode);
428 416
429 // Choose the row 417 // Choose the row
430 void* row = SkTAddOffset<void>(fDstRow, y*fDstRowBytes); 418 void* row = SkTAddOffset<void>(fDstRow, y*fDstRowBytes);
431 419
432 // Decode the row 420 // Decode the row
433 return fRowProc(row, src, fDstInfo.width(), fDeltaSrc, fCurrY, 421 return fRowProc(row, src, fDstInfo.width(), fDeltaSrc, fCurrY,
434 fColorTable); 422 fColorTable);
435 } 423 }
424
425 void SkSwizzler::Fill(void* dst, const SkImageInfo& dstInfo, size_t dstRowBytes, uint32_t y,
426 uint32_t colorOrIndex, SkPMColor* colorTable) {
427 SkASSERT(dst != NULL);
428 SkASSERT(y < (uint32_t) dstInfo.height());
429
430 // Get dst start row
431 void* dstRow = SkTAddOffset<void*>(dst, y * dstRowBytes);
432
433 // Calculate remaining bytes. This is tricky since the final row may not be padded.
434 const size_t totalBytes = dstInfo.getSafeSize(dstRowBytes);
435 const size_t remainingBytes = totalBytes - y * dstRowBytes;
436
437 // Use the proper memset routine to fill the remaining bytes
438 switch(dstInfo.colorType()) {
439 case kN32_SkColorType:
440 // Assume input is an index if we have a color table
441 uint32_t color;
442 if (NULL != colorTable) {
443 SkASSERT(colorOrIndex == (uint8_t) colorOrIndex);
444 color = colorTable[colorOrIndex];
445 // Otherwise, assume the input is a color
446 } else {
447 color = colorOrIndex;
448 }
449
450 // We must fill row by row in the case of unaligned row bytes
451 if (SkIsAlign4((size_t) dstRow) && SkIsAlign4(dstRowBytes)) {
452 sk_memset32((uint32_t*) dstRow, color,
453 (uint32_t) remainingBytes / sizeof(SkPMColor));
454 } else {
455 // This is an unlikely, slow case
456 SkCodecPrintf("Warning: Strange number of row bytes, fill will b e slow.\n");
457 for (int32_t row = y; row < dstInfo.height(); row++) {
458 uint32_t* dstPtr = (uint32_t*) dstRow;
459 for (int32_t col = 0; col < dstInfo.width(); col++) {
460 dstPtr[col] = color;
461 }
462 dstRow = SkTAddOffset<void*>(dstRow, dstRowBytes);
463 }
464 }
465 break;
466 // On an index destination color type, always assume the input is an ind ex
467 case kIndex_8_SkColorType:
468 SkASSERT(colorOrIndex == (uint8_t) colorOrIndex);
469 memset(dstRow, colorOrIndex, remainingBytes);
470 break;
471 default:
472 SkCodecPrintf("Error: Unsupported dst color type for fill(). Doing nothing.\n");
473 SkASSERT(false);
474 break;
475 }
476 }
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