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| 1 /* |
| 2 * Copyright 2015 Google Inc. |
| 3 * |
| 4 * Use of this source code is governed by a BSD-style license that can be |
| 5 * found in the LICENSE file. |
| 6 */ |
| 7 |
| 8 #include "SkBmpStandardCodec.h" |
| 9 #include "SkCodecPriv.h" |
| 10 #include "SkColorPriv.h" |
| 11 #include "SkScanlineDecoder.h" |
| 12 #include "SkStream.h" |
| 13 |
| 14 /* |
| 15 * Checks if the conversion between the input image and the requested output |
| 16 * image has been implemented |
| 17 */ |
| 18 static bool conversion_possible(const SkImageInfo& dst, |
| 19 const SkImageInfo& src) { |
| 20 // Ensure that the profile type is unchanged |
| 21 if (dst.profileType() != src.profileType()) { |
| 22 return false; |
| 23 } |
| 24 |
| 25 // Ensure the alpha type is valid |
| 26 if (!valid_alpha(dst.alphaType(), src.alphaType())) { |
| 27 return false; |
| 28 } |
| 29 |
| 30 // Check for supported color types |
| 31 switch (dst.colorType()) { |
| 32 // Allow output to kN32 from any type of input |
| 33 case kN32_SkColorType: |
| 34 return true; |
| 35 // Allow output to kIndex_8 from compatible inputs |
| 36 case kIndex_8_SkColorType: |
| 37 return kIndex_8_SkColorType == src.colorType(); |
| 38 default: |
| 39 return false; |
| 40 } |
| 41 } |
| 42 |
| 43 /* |
| 44 * Creates an instance of the decoder |
| 45 * Called only by NewFromStream |
| 46 */ |
| 47 SkBmpStandardCodec::SkBmpStandardCodec(const SkImageInfo& info, SkStream* stream
, |
| 48 uint16_t bitsPerPixel, uint32_t numColors
, |
| 49 uint32_t bytesPerColor, uint32_t offset, |
| 50 SkBmpCodec::RowOrder rowOrder, bool inIco
) |
| 51 : INHERITED(info, stream, bitsPerPixel, rowOrder) |
| 52 , fColorTable(NULL) |
| 53 , fNumColors(numColors) |
| 54 , fBytesPerColor(bytesPerColor) |
| 55 , fOffset(offset) |
| 56 , fSwizzler(NULL) |
| 57 , fSrcBuffer(NULL) |
| 58 , fInIco(inIco) |
| 59 {} |
| 60 |
| 61 /* |
| 62 * Initiates the bitmap decode |
| 63 */ |
| 64 SkCodec::Result SkBmpStandardCodec::onGetPixels(const SkImageInfo& dstInfo, |
| 65 void* dst, size_t dstRowBytes, |
| 66 const Options& opts, |
| 67 SkPMColor* inputColorPtr, |
| 68 int* inputColorCount) { |
| 69 if (!this->handleRewind(fInIco)) { |
| 70 return kCouldNotRewind; |
| 71 } |
| 72 if (opts.fSubset) { |
| 73 // Subsets are not supported. |
| 74 return kUnimplemented; |
| 75 } |
| 76 if (dstInfo.dimensions() != this->getInfo().dimensions()) { |
| 77 SkCodecPrintf("Error: scaling not supported.\n"); |
| 78 return kInvalidScale; |
| 79 } |
| 80 if (!conversion_possible(dstInfo, this->getInfo())) { |
| 81 SkCodecPrintf("Error: cannot convert input type to output type.\n"); |
| 82 return kInvalidConversion; |
| 83 } |
| 84 |
| 85 // Create the color table if necessary and prepare the stream for decode |
| 86 // Note that if it is non-NULL, inputColorCount will be modified |
| 87 if (!this->createColorTable(dstInfo.alphaType(), inputColorCount)) { |
| 88 SkCodecPrintf("Error: could not create color table.\n"); |
| 89 return kInvalidInput; |
| 90 } |
| 91 |
| 92 // Copy the color table to the client if necessary |
| 93 copy_color_table(dstInfo, fColorTable, inputColorPtr, inputColorCount); |
| 94 |
| 95 // Initialize a swizzler if necessary |
| 96 if (!this->initializeSwizzler(dstInfo, opts)) { |
| 97 SkCodecPrintf("Error: cannot initialize swizzler.\n"); |
| 98 return kInvalidConversion; |
| 99 } |
| 100 |
| 101 // Perform the decode |
| 102 SkCodec::Result result = decode(dstInfo, dst, dstRowBytes, opts); |
| 103 |
| 104 return result; |
| 105 } |
| 106 |
| 107 /* |
| 108 * Process the color table for the bmp input |
| 109 */ |
| 110 bool SkBmpStandardCodec::createColorTable(SkAlphaType alphaType, int* numColors
) { |
| 111 // Allocate memory for color table |
| 112 uint32_t colorBytes = 0; |
| 113 uint32_t maxColors = 0; |
| 114 SkPMColor colorTable[256]; |
| 115 if (this->bitsPerPixel() <= 8) { |
| 116 // Zero is a default for maxColors |
| 117 // Also set fNumColors to maxColors when it is too large |
| 118 maxColors = 1 << this->bitsPerPixel(); |
| 119 if (fNumColors == 0 || fNumColors >= maxColors) { |
| 120 fNumColors = maxColors; |
| 121 } |
| 122 |
| 123 // Inform the caller of the number of colors |
| 124 if (NULL != numColors) { |
| 125 // We set the number of colors to maxColors in order to ensure |
| 126 // safe memory accesses. Otherwise, an invalid pixel could |
| 127 // access memory outside of our color table array. |
| 128 *numColors = maxColors; |
| 129 } |
| 130 |
| 131 // Read the color table from the stream |
| 132 colorBytes = fNumColors * fBytesPerColor; |
| 133 SkAutoTDeleteArray<uint8_t> cBuffer(SkNEW_ARRAY(uint8_t, colorBytes)); |
| 134 if (stream()->read(cBuffer.get(), colorBytes) != colorBytes) { |
| 135 SkCodecPrintf("Error: unable to read color table.\n"); |
| 136 return false; |
| 137 } |
| 138 |
| 139 // Choose the proper packing function |
| 140 SkPMColor (*packARGB) (uint32_t, uint32_t, uint32_t, uint32_t); |
| 141 switch (alphaType) { |
| 142 case kOpaque_SkAlphaType: |
| 143 case kUnpremul_SkAlphaType: |
| 144 packARGB = &SkPackARGB32NoCheck; |
| 145 break; |
| 146 case kPremul_SkAlphaType: |
| 147 packARGB = &SkPreMultiplyARGB; |
| 148 break; |
| 149 default: |
| 150 // This should not be reached because conversion possible |
| 151 // should fail if the alpha type is not one of the above |
| 152 // values. |
| 153 SkASSERT(false); |
| 154 packARGB = NULL; |
| 155 break; |
| 156 } |
| 157 |
| 158 // Fill in the color table |
| 159 uint32_t i = 0; |
| 160 for (; i < fNumColors; i++) { |
| 161 uint8_t blue = get_byte(cBuffer.get(), i*fBytesPerColor); |
| 162 uint8_t green = get_byte(cBuffer.get(), i*fBytesPerColor + 1); |
| 163 uint8_t red = get_byte(cBuffer.get(), i*fBytesPerColor + 2); |
| 164 uint8_t alpha; |
| 165 if (kOpaque_SkAlphaType == alphaType) { |
| 166 alpha = 0xFF; |
| 167 } else { |
| 168 alpha = get_byte(cBuffer.get(), i*fBytesPerColor + 3); |
| 169 } |
| 170 colorTable[i] = packARGB(alpha, red, green, blue); |
| 171 } |
| 172 |
| 173 // To avoid segmentation faults on bad pixel data, fill the end of the |
| 174 // color table with black. This is the same the behavior as the |
| 175 // chromium decoder. |
| 176 for (; i < maxColors; i++) { |
| 177 colorTable[i] = SkPackARGB32NoCheck(0xFF, 0, 0, 0); |
| 178 } |
| 179 |
| 180 // Set the color table |
| 181 fColorTable.reset(SkNEW_ARGS(SkColorTable, (colorTable, maxColors))); |
| 182 } |
| 183 |
| 184 // Bmp-in-Ico files do not use an offset to indicate where the pixel data |
| 185 // begins. Pixel data always begins immediately after the color table. |
| 186 if (!fInIco) { |
| 187 // Check that we have not read past the pixel array offset |
| 188 if(fOffset < colorBytes) { |
| 189 // This may occur on OS 2.1 and other old versions where the color |
| 190 // table defaults to max size, and the bmp tries to use a smaller |
| 191 // color table. This is invalid, and our decision is to indicate |
| 192 // an error, rather than try to guess the intended size of the |
| 193 // color table. |
| 194 SkCodecPrintf("Error: pixel data offset less than color table size.\
n"); |
| 195 return false; |
| 196 } |
| 197 |
| 198 // After reading the color table, skip to the start of the pixel array |
| 199 if (stream()->skip(fOffset - colorBytes) != fOffset - colorBytes) { |
| 200 SkCodecPrintf("Error: unable to skip to image data.\n"); |
| 201 return false; |
| 202 } |
| 203 } |
| 204 |
| 205 // Return true on success |
| 206 return true; |
| 207 } |
| 208 |
| 209 static const SkPMColor* get_color_ptr(SkColorTable* colorTable) { |
| 210 return NULL != colorTable ? colorTable->readColors() : NULL; |
| 211 } |
| 212 |
| 213 bool SkBmpStandardCodec::initializeSwizzler(const SkImageInfo& dstInfo, |
| 214 const Options& opts) { |
| 215 // Allocate space for a row buffer |
| 216 const size_t rowBytes = SkAlign4(compute_row_bytes(dstInfo.width(), this->bi
tsPerPixel())); |
| 217 fSrcBuffer.reset(SkNEW_ARRAY(uint8_t, rowBytes)); |
| 218 |
| 219 // Get swizzler configuration |
| 220 SkSwizzler::SrcConfig config; |
| 221 switch (this->bitsPerPixel()) { |
| 222 case 1: |
| 223 config = SkSwizzler::kIndex1; |
| 224 break; |
| 225 case 2: |
| 226 config = SkSwizzler::kIndex2; |
| 227 break; |
| 228 case 4: |
| 229 config = SkSwizzler::kIndex4; |
| 230 break; |
| 231 case 8: |
| 232 config = SkSwizzler::kIndex; |
| 233 break; |
| 234 case 24: |
| 235 config = SkSwizzler::kBGR; |
| 236 break; |
| 237 case 32: |
| 238 if (kOpaque_SkAlphaType == dstInfo.alphaType()) { |
| 239 config = SkSwizzler::kBGRX; |
| 240 } else { |
| 241 config = SkSwizzler::kBGRA; |
| 242 } |
| 243 break; |
| 244 default: |
| 245 SkASSERT(false); |
| 246 return kInvalidInput; |
| 247 } |
| 248 |
| 249 // Get a pointer to the color table if it exists |
| 250 const SkPMColor* colorPtr = get_color_ptr(fColorTable.get()); |
| 251 |
| 252 // Create swizzler |
| 253 fSwizzler.reset(SkSwizzler::CreateSwizzler(config, |
| 254 colorPtr, dstInfo, opts.fZeroInitialized)); |
| 255 |
| 256 if (NULL == fSwizzler.get()) { |
| 257 return false; |
| 258 } |
| 259 return true; |
| 260 } |
| 261 |
| 262 /* |
| 263 * Choose a fill for failures due to an incomplete image. We will use zero as |
| 264 * the default palette index, black for opaque images, and transparent for |
| 265 * non-opaque images. |
| 266 */ |
| 267 static uint32_t get_fill_color_or_index(uint16_t bitsPerPixels, SkAlphaType alph
aType) { |
| 268 uint32_t fillColorOrIndex; |
| 269 switch (bitsPerPixels) { |
| 270 case 1: |
| 271 case 2: |
| 272 case 4: |
| 273 case 8: |
| 274 fillColorOrIndex = 0; |
| 275 break; |
| 276 case 24: |
| 277 fillColorOrIndex = SK_ColorBLACK; |
| 278 break; |
| 279 case 32: |
| 280 if (kOpaque_SkAlphaType == alphaType) { |
| 281 fillColorOrIndex = SK_ColorBLACK; |
| 282 } else { |
| 283 fillColorOrIndex = SK_ColorTRANSPARENT; |
| 284 } |
| 285 break; |
| 286 default: |
| 287 SkASSERT(false); |
| 288 return 0; |
| 289 } |
| 290 return fillColorOrIndex; |
| 291 } |
| 292 |
| 293 /* |
| 294 * Performs the bitmap decoding for standard input format |
| 295 */ |
| 296 SkCodec::Result SkBmpStandardCodec::decode(const SkImageInfo& dstInfo, |
| 297 void* dst, size_t dstRowBytes, |
| 298 const Options& opts) { |
| 299 // Set constant values |
| 300 const int width = dstInfo.width(); |
| 301 const int height = dstInfo.height(); |
| 302 const size_t rowBytes = SkAlign4(compute_row_bytes(width, this->bitsPerPixel
())); |
| 303 |
| 304 // Iterate over rows of the image |
| 305 for (int y = 0; y < height; y++) { |
| 306 // Read a row of the input |
| 307 if (this->stream()->read(fSrcBuffer.get(), rowBytes) != rowBytes) { |
| 308 SkCodecPrintf("Warning: incomplete input stream.\n"); |
| 309 // Fill the destination image on failure |
| 310 // Get the fill color/index and check if it is 0 |
| 311 uint32_t fillColorOrIndex = get_fill_color_or_index(this->bitsPerPix
el(), |
| 312 dstInfo.alphaType()); |
| 313 bool zeroFill = (0 == fillColorOrIndex); |
| 314 |
| 315 if (kNo_ZeroInitialized == opts.fZeroInitialized || !zeroFill) { |
| 316 // Get a pointer to the color table if it exists |
| 317 const SkPMColor* colorPtr = get_color_ptr(fColorTable.get()); |
| 318 |
| 319 void* dstStart = this->getDstStartRow(dst, dstRowBytes, y); |
| 320 SkSwizzler::Fill(dstStart, dstInfo, dstRowBytes, dstInfo.height(
) - y, |
| 321 fillColorOrIndex, colorPtr); |
| 322 } |
| 323 return kIncompleteInput; |
| 324 } |
| 325 |
| 326 // Decode the row in destination format |
| 327 uint32_t row; |
| 328 if (SkBmpCodec::kTopDown_RowOrder == this->rowOrder()) { |
| 329 row = y; |
| 330 } else { |
| 331 row = height - 1 - y; |
| 332 } |
| 333 |
| 334 void* dstRow = SkTAddOffset<void>(dst, row * dstRowBytes); |
| 335 fSwizzler->swizzle(dstRow, fSrcBuffer.get()); |
| 336 } |
| 337 |
| 338 // Finally, apply the AND mask for bmp-in-ico images |
| 339 if (fInIco) { |
| 340 // The AND mask is always 1 bit per pixel |
| 341 const size_t rowBytes = SkAlign4(compute_row_bytes(width, 1)); |
| 342 |
| 343 SkPMColor* dstPtr = (SkPMColor*) dst; |
| 344 for (int y = 0; y < height; y++) { |
| 345 // The srcBuffer will at least be large enough |
| 346 if (stream()->read(fSrcBuffer.get(), rowBytes) != rowBytes) { |
| 347 SkCodecPrintf("Warning: incomplete AND mask for bmp-in-ico.\n"); |
| 348 return kIncompleteInput; |
| 349 } |
| 350 |
| 351 int row; |
| 352 if (SkBmpCodec::kBottomUp_RowOrder == this->rowOrder()) { |
| 353 row = height - y - 1; |
| 354 } else { |
| 355 row = y; |
| 356 } |
| 357 |
| 358 SkPMColor* dstRow = |
| 359 SkTAddOffset<SkPMColor>(dstPtr, row * dstRowBytes); |
| 360 |
| 361 for (int x = 0; x < width; x++) { |
| 362 int quotient; |
| 363 int modulus; |
| 364 SkTDivMod(x, 8, "ient, &modulus); |
| 365 uint32_t shift = 7 - modulus; |
| 366 uint32_t alphaBit = |
| 367 (fSrcBuffer.get()[quotient] >> shift) & 0x1; |
| 368 dstRow[x] &= alphaBit - 1; |
| 369 } |
| 370 } |
| 371 } |
| 372 |
| 373 // Finished decoding the entire image |
| 374 return kSuccess; |
| 375 } |
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