OLD | NEW |
1 /* | 1 /* |
2 * Copyright 2011 The Android Open Source Project | 2 * Copyright 2011 The Android Open Source Project |
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 "SkBitmap.h" | |
9 #include "SkBlurImageFilter.h" | 8 #include "SkBlurImageFilter.h" |
| 9 |
| 10 #include "SkAutoPixmapStorage.h" |
10 #include "SkColorPriv.h" | 11 #include "SkColorPriv.h" |
11 #include "SkDevice.h" | |
12 #include "SkGpuBlurUtils.h" | 12 #include "SkGpuBlurUtils.h" |
13 #include "SkOpts.h" | 13 #include "SkOpts.h" |
14 #include "SkReadBuffer.h" | 14 #include "SkReadBuffer.h" |
| 15 #include "SkSpecialImage.h" |
15 #include "SkWriteBuffer.h" | 16 #include "SkWriteBuffer.h" |
| 17 |
16 #if SK_SUPPORT_GPU | 18 #if SK_SUPPORT_GPU |
17 #include "GrContext.h" | 19 #include "GrContext.h" |
18 #include "SkGr.h" | 20 #include "SkGr.h" |
19 #endif | 21 #endif |
20 | 22 |
21 // This rather arbitrary-looking value results in a maximum box blur kernel size | 23 // This rather arbitrary-looking value results in a maximum box blur kernel size |
22 // of 1000 pixels on the raster path, which matches the WebKit and Firefox | 24 // of 1000 pixels on the raster path, which matches the WebKit and Firefox |
23 // implementations. Since the GPU path does not compute a box blur, putting | 25 // implementations. Since the GPU path does not compute a box blur, putting |
24 // the limit on sigma ensures consistent behaviour between the GPU and | 26 // the limit on sigma ensures consistent behaviour between the GPU and |
25 // raster paths. | 27 // raster paths. |
(...skipping 20 matching lines...) Expand all Loading... |
46 SkScalar sigmaY = buffer.readScalar(); | 48 SkScalar sigmaY = buffer.readScalar(); |
47 return Create(sigmaX, sigmaY, common.getInput(0), &common.cropRect()); | 49 return Create(sigmaX, sigmaY, common.getInput(0), &common.cropRect()); |
48 } | 50 } |
49 | 51 |
50 void SkBlurImageFilter::flatten(SkWriteBuffer& buffer) const { | 52 void SkBlurImageFilter::flatten(SkWriteBuffer& buffer) const { |
51 this->INHERITED::flatten(buffer); | 53 this->INHERITED::flatten(buffer); |
52 buffer.writeScalar(fSigma.fWidth); | 54 buffer.writeScalar(fSigma.fWidth); |
53 buffer.writeScalar(fSigma.fHeight); | 55 buffer.writeScalar(fSigma.fHeight); |
54 } | 56 } |
55 | 57 |
56 static void getBox3Params(SkScalar s, int *kernelSize, int* kernelSize3, int *lo
wOffset, | 58 static void get_box3_params(SkScalar s, int *kernelSize, int* kernelSize3, int *
lowOffset, |
57 int *highOffset) | 59 int *highOffset) { |
58 { | |
59 float pi = SkScalarToFloat(SK_ScalarPI); | 60 float pi = SkScalarToFloat(SK_ScalarPI); |
60 int d = static_cast<int>(floorf(SkScalarToFloat(s) * 3.0f * sqrtf(2.0f * pi)
/ 4.0f + 0.5f)); | 61 int d = static_cast<int>(floorf(SkScalarToFloat(s) * 3.0f * sqrtf(2.0f * pi)
/ 4.0f + 0.5f)); |
61 *kernelSize = d; | 62 *kernelSize = d; |
62 if (d % 2 == 1) { | 63 if (d % 2 == 1) { |
63 *lowOffset = *highOffset = (d - 1) / 2; | 64 *lowOffset = *highOffset = (d - 1) / 2; |
64 *kernelSize3 = d; | 65 *kernelSize3 = d; |
65 } else { | 66 } else { |
66 *highOffset = d / 2; | 67 *highOffset = d / 2; |
67 *lowOffset = *highOffset - 1; | 68 *lowOffset = *highOffset - 1; |
68 *kernelSize3 = d + 1; | 69 *kernelSize3 = d + 1; |
69 } | 70 } |
70 } | 71 } |
71 | 72 |
72 bool SkBlurImageFilter::onFilterImageDeprecated(Proxy* proxy, | 73 SkSpecialImage* SkBlurImageFilter::onFilterImage(SkSpecialImage* source, const C
ontext& ctx, |
73 const SkBitmap& source, const Co
ntext& ctx, | 74 SkIPoint* offset) const { |
74 SkBitmap* dst, SkIPoint* offset)
const { | 75 SkIPoint inputOffset = SkIPoint::Make(0, 0); |
75 SkBitmap src = source; | 76 |
76 SkIPoint srcOffset = SkIPoint::Make(0, 0); | 77 SkAutoTUnref<SkSpecialImage> input(this->filterInput(0, source, ctx, &inputO
ffset)); |
77 if (!this->filterInputDeprecated(0, proxy, source, ctx, &src, &srcOffset)) { | 78 if (!input) { |
78 return false; | 79 return nullptr; |
79 } | 80 } |
80 | 81 |
81 if (src.colorType() != kN32_SkColorType) { | 82 SkIRect inputBounds = SkIRect::MakeXYWH(inputOffset.fX, inputOffset.fY, |
82 return false; | 83 input->width(), input->height()); |
| 84 |
| 85 SkIRect dstBounds; |
| 86 if (!this->applyCropRect(this->mapContext(ctx), inputBounds, &dstBounds)) { |
| 87 return nullptr; |
| 88 } |
| 89 if (!inputBounds.intersect(dstBounds)) { |
| 90 return nullptr; |
83 } | 91 } |
84 | 92 |
85 SkIRect srcBounds = src.bounds(); | 93 const SkVector sigma = map_sigma(fSigma, ctx.ctm()); |
86 srcBounds.offset(srcOffset); | 94 |
87 SkIRect dstBounds; | 95 #if SK_SUPPORT_GPU |
88 if (!this->applyCropRect(this->mapContext(ctx), srcBounds, &dstBounds)) { | 96 if (input->peekTexture()) { |
89 return false; | 97 if (0 == sigma.x() && 0 == sigma.y()) { |
| 98 offset->fX = inputBounds.x(); |
| 99 offset->fY = inputBounds.y(); |
| 100 return input->makeSubset(inputBounds.makeOffset(-inputOffset.x(), |
| 101 -inputOffset.y())).r
elease(); |
| 102 } |
| 103 |
| 104 GrTexture* inputTexture = input->peekTexture(); |
| 105 |
| 106 offset->fX = dstBounds.fLeft; |
| 107 offset->fY = dstBounds.fTop; |
| 108 inputBounds.offset(-inputOffset); |
| 109 dstBounds.offset(-inputOffset); |
| 110 SkRect inputBoundsF(SkRect::Make(inputBounds)); |
| 111 SkAutoTUnref<GrTexture> tex(SkGpuBlurUtils::GaussianBlur(inputTexture->g
etContext(), |
| 112 inputTexture, |
| 113 false, |
| 114 SkRect::Make(ds
tBounds), |
| 115 &inputBoundsF, |
| 116 sigma.x(), |
| 117 sigma.y())); |
| 118 if (!tex) { |
| 119 return nullptr; |
| 120 } |
| 121 |
| 122 return SkSpecialImage::MakeFromGpu(source->internal_getProxy(), |
| 123 SkIRect::MakeWH(dstBounds.width(), ds
tBounds.height()), |
| 124 kNeedNewImageUniqueID_SpecialImage, |
| 125 tex).release(); |
90 } | 126 } |
91 if (!srcBounds.intersect(dstBounds)) { | 127 #endif |
92 return false; | |
93 } | |
94 | |
95 SkVector sigma = map_sigma(fSigma, ctx.ctm()); | |
96 | 128 |
97 int kernelSizeX, kernelSizeX3, lowOffsetX, highOffsetX; | 129 int kernelSizeX, kernelSizeX3, lowOffsetX, highOffsetX; |
98 int kernelSizeY, kernelSizeY3, lowOffsetY, highOffsetY; | 130 int kernelSizeY, kernelSizeY3, lowOffsetY, highOffsetY; |
99 getBox3Params(sigma.x(), &kernelSizeX, &kernelSizeX3, &lowOffsetX, &highOffs
etX); | 131 get_box3_params(sigma.x(), &kernelSizeX, &kernelSizeX3, &lowOffsetX, &highOf
fsetX); |
100 getBox3Params(sigma.y(), &kernelSizeY, &kernelSizeY3, &lowOffsetY, &highOffs
etY); | 132 get_box3_params(sigma.y(), &kernelSizeY, &kernelSizeY3, &lowOffsetY, &highOf
fsetY); |
101 | 133 |
102 if (kernelSizeX < 0 || kernelSizeY < 0) { | 134 if (kernelSizeX < 0 || kernelSizeY < 0) { |
103 return false; | 135 return nullptr; |
104 } | 136 } |
105 | 137 |
106 if (kernelSizeX == 0 && kernelSizeY == 0) { | 138 if (kernelSizeX == 0 && kernelSizeY == 0) { |
107 src.extractSubset(dst, srcBounds.makeOffset(-srcOffset.x(), -srcOffset.y
())); | 139 offset->fX = inputBounds.x(); |
108 offset->fX = srcBounds.x(); | 140 offset->fY = inputBounds.y(); |
109 offset->fY = srcBounds.y(); | 141 return input->makeSubset(inputBounds.makeOffset(-inputOffset.x(), |
110 return true; | 142 -inputOffset.y())).relea
se(); |
111 } | 143 } |
112 | 144 |
113 SkAutoLockPixels alp(src); | 145 SkPixmap inputPixmap; |
114 if (!src.getPixels()) { | 146 |
115 return false; | 147 if (!input->peekPixels(&inputPixmap)) { |
| 148 return nullptr; |
116 } | 149 } |
117 | 150 |
118 SkAutoTUnref<SkBaseDevice> device(proxy->createDevice(dstBounds.width(), dst
Bounds.height())); | 151 if (inputPixmap.colorType() != kN32_SkColorType) { |
119 if (!device) { | 152 return nullptr; |
120 return false; | |
121 } | 153 } |
122 *dst = device->accessBitmap(false); | |
123 SkAutoLockPixels alp_dst(*dst); | |
124 | 154 |
125 SkAutoTUnref<SkBaseDevice> tempDevice(proxy->createDevice(dst->width(), dst-
>height())); | 155 SkImageInfo info = SkImageInfo::Make(dstBounds.width(), dstBounds.height(), |
126 if (!tempDevice) { | 156 inputPixmap.colorType(), inputPixmap.al
phaType()); |
127 return false; | 157 |
| 158 SkBitmap tmp, dst; |
| 159 if (!tmp.tryAllocPixels(info) || !dst.tryAllocPixels(info)) { |
| 160 return nullptr; |
128 } | 161 } |
129 SkBitmap temp = tempDevice->accessBitmap(false); | 162 |
130 SkAutoLockPixels alpTemp(temp); | 163 SkAutoLockPixels tmpLock(tmp), dstLock(dst); |
131 | 164 |
132 offset->fX = dstBounds.fLeft; | 165 offset->fX = dstBounds.fLeft; |
133 offset->fY = dstBounds.fTop; | 166 offset->fY = dstBounds.fTop; |
134 SkPMColor* t = temp.getAddr32(0, 0); | 167 SkPMColor* t = tmp.getAddr32(0, 0); |
135 SkPMColor* d = dst->getAddr32(0, 0); | 168 SkPMColor* d = dst.getAddr32(0, 0); |
136 int w = dstBounds.width(), h = dstBounds.height(); | 169 int w = dstBounds.width(), h = dstBounds.height(); |
137 const SkPMColor* s = src.getAddr32(srcBounds.x() - srcOffset.x(), srcBounds.
y() - srcOffset.y()); | 170 const SkPMColor* s = inputPixmap.addr32(inputBounds.x() - inputOffset.x(), |
138 srcBounds.offset(-dstBounds.x(), -dstBounds.y()); | 171 inputBounds.y() - inputOffset.y()); |
| 172 inputBounds.offset(-dstBounds.x(), -dstBounds.y()); |
139 dstBounds.offset(-dstBounds.x(), -dstBounds.y()); | 173 dstBounds.offset(-dstBounds.x(), -dstBounds.y()); |
140 SkIRect srcBoundsT = SkIRect::MakeLTRB(srcBounds.top(), srcBounds.left(), sr
cBounds.bottom(), srcBounds.right()); | 174 SkIRect inputBoundsT = SkIRect::MakeLTRB(inputBounds.top(), inputBounds.left
(), |
| 175 inputBounds.bottom(), inputBounds.r
ight()); |
141 SkIRect dstBoundsT = SkIRect::MakeWH(dstBounds.height(), dstBounds.width()); | 176 SkIRect dstBoundsT = SkIRect::MakeWH(dstBounds.height(), dstBounds.width()); |
142 int sw = src.rowBytesAsPixels(); | 177 int sw = int(inputPixmap.rowBytes() >> 2); |
143 | 178 |
144 /** | 179 /** |
145 * | 180 * |
146 * In order to make memory accesses cache-friendly, we reorder the passes to | 181 * In order to make memory accesses cache-friendly, we reorder the passes to |
147 * use contiguous memory reads wherever possible. | 182 * use contiguous memory reads wherever possible. |
148 * | 183 * |
149 * For example, the 6 passes of the X-and-Y blur case are rewritten as | 184 * For example, the 6 passes of the X-and-Y blur case are rewritten as |
150 * follows. Instead of 3 passes in X and 3 passes in Y, we perform | 185 * follows. Instead of 3 passes in X and 3 passes in Y, we perform |
151 * 2 passes in X, 1 pass in X transposed to Y on write, 2 passes in X, | 186 * 2 passes in X, 1 pass in X transposed to Y on write, 2 passes in X, |
152 * then 1 pass in X transposed to Y on write. | 187 * then 1 pass in X transposed to Y on write. |
153 * | 188 * |
154 * +----+ +----+ +----+ +---+ +---+ +---+
+----+ | 189 * +----+ +----+ +----+ +---+ +---+ +---+
+----+ |
155 * + AB + ----> | AB | ----> | AB | -----> | A | ----> | A | ----> | A | ---
--> | AB | | 190 * + AB + ----> | AB | ----> | AB | -----> | A | ----> | A | ----> | A | ---
--> | AB | |
156 * +----+ blurX +----+ blurX +----+ blurXY | B | blurX | B | blurX | B | blu
rXY +----+ | 191 * +----+ blurX +----+ blurX +----+ blurXY | B | blurX | B | blurX | B | blu
rXY +----+ |
157 * +---+ +---+ +---+ | 192 * +---+ +---+ +---+ |
158 * | 193 * |
159 * In this way, two of the y-blurs become x-blurs applied to transposed | 194 * In this way, two of the y-blurs become x-blurs applied to transposed |
160 * images, and all memory reads are contiguous. | 195 * images, and all memory reads are contiguous. |
161 */ | 196 */ |
162 if (kernelSizeX > 0 && kernelSizeY > 0) { | 197 if (kernelSizeX > 0 && kernelSizeY > 0) { |
163 SkOpts::box_blur_xx(s, sw, srcBounds, t, kernelSizeX, lowOffsetX, hi
ghOffsetX, w, h); | 198 SkOpts::box_blur_xx(s, sw, inputBounds, t, kernelSizeX, lowOffsetX,
highOffsetX, w, h); |
164 SkOpts::box_blur_xx(t, w, dstBounds, d, kernelSizeX, highOffsetX, lo
wOffsetX, w, h); | 199 SkOpts::box_blur_xx(t, w, dstBounds, d, kernelSizeX, highOffsetX,
lowOffsetX, w, h); |
165 SkOpts::box_blur_xy(d, w, dstBounds, t, kernelSizeX3, highOffsetX, hi
ghOffsetX, w, h); | 200 SkOpts::box_blur_xy(d, w, dstBounds, t, kernelSizeX3, highOffsetX,
highOffsetX, w, h); |
166 SkOpts::box_blur_xx(t, h, dstBoundsT, d, kernelSizeY, lowOffsetY, hi
ghOffsetY, h, w); | 201 SkOpts::box_blur_xx(t, h, dstBoundsT, d, kernelSizeY, lowOffsetY,
highOffsetY, h, w); |
167 SkOpts::box_blur_xx(d, h, dstBoundsT, t, kernelSizeY, highOffsetY, lo
wOffsetY, h, w); | 202 SkOpts::box_blur_xx(d, h, dstBoundsT, t, kernelSizeY, highOffsetY,
lowOffsetY, h, w); |
168 SkOpts::box_blur_xy(t, h, dstBoundsT, d, kernelSizeY3, highOffsetY, hi
ghOffsetY, h, w); | 203 SkOpts::box_blur_xy(t, h, dstBoundsT, d, kernelSizeY3, highOffsetY,
highOffsetY, h, w); |
169 } else if (kernelSizeX > 0) { | 204 } else if (kernelSizeX > 0) { |
170 SkOpts::box_blur_xx(s, sw, srcBounds, d, kernelSizeX, lowOffsetX, hi
ghOffsetX, w, h); | 205 SkOpts::box_blur_xx(s, sw, inputBounds, d, kernelSizeX, lowOffsetX,
highOffsetX, w, h); |
171 SkOpts::box_blur_xx(d, w, dstBounds, t, kernelSizeX, highOffsetX, lo
wOffsetX, w, h); | 206 SkOpts::box_blur_xx(d, w, dstBounds, t, kernelSizeX, highOffsetX,
lowOffsetX, w, h); |
172 SkOpts::box_blur_xx(t, w, dstBounds, d, kernelSizeX3, highOffsetX, hi
ghOffsetX, w, h); | 207 SkOpts::box_blur_xx(t, w, dstBounds, d, kernelSizeX3, highOffsetX,
highOffsetX, w, h); |
173 } else if (kernelSizeY > 0) { | 208 } else if (kernelSizeY > 0) { |
174 SkOpts::box_blur_yx(s, sw, srcBoundsT, d, kernelSizeY, lowOffsetY, hi
ghOffsetY, h, w); | 209 SkOpts::box_blur_yx(s, sw, inputBoundsT, d, kernelSizeY, lowOffsetY,
highOffsetY, h, w); |
175 SkOpts::box_blur_xx(d, h, dstBoundsT, t, kernelSizeY, highOffsetY, lo
wOffsetY, h, w); | 210 SkOpts::box_blur_xx(d, h, dstBoundsT, t, kernelSizeY, highOffsetY,
lowOffsetY, h, w); |
176 SkOpts::box_blur_xy(t, h, dstBoundsT, d, kernelSizeY3, highOffsetY, hi
ghOffsetY, h, w); | 211 SkOpts::box_blur_xy(t, h, dstBoundsT, d, kernelSizeY3, highOffsetY,
highOffsetY, h, w); |
177 } | 212 } |
178 return true; | 213 |
| 214 return SkSpecialImage::MakeFromRaster(source->internal_getProxy(), |
| 215 SkIRect::MakeWH(dstBounds.width(), |
| 216 dstBounds.height()), |
| 217 dst).release(); |
179 } | 218 } |
180 | 219 |
181 | 220 |
182 SkRect SkBlurImageFilter::computeFastBounds(const SkRect& src) const { | 221 SkRect SkBlurImageFilter::computeFastBounds(const SkRect& src) const { |
183 SkRect bounds = this->getInput(0) ? this->getInput(0)->computeFastBounds(src
) : src; | 222 SkRect bounds = this->getInput(0) ? this->getInput(0)->computeFastBounds(src
) : src; |
184 bounds.outset(SkScalarMul(fSigma.width(), SkIntToScalar(3)), | 223 bounds.outset(SkScalarMul(fSigma.width(), SkIntToScalar(3)), |
185 SkScalarMul(fSigma.height(), SkIntToScalar(3))); | 224 SkScalarMul(fSigma.height(), SkIntToScalar(3))); |
186 return bounds; | 225 return bounds; |
187 } | 226 } |
188 | 227 |
189 SkIRect SkBlurImageFilter::onFilterNodeBounds(const SkIRect& src, const SkMatrix
& ctm, | 228 SkIRect SkBlurImageFilter::onFilterNodeBounds(const SkIRect& src, const SkMatrix
& ctm, |
190 MapDirection) const { | 229 MapDirection) const { |
191 SkVector sigma = map_sigma(fSigma, ctm); | 230 SkVector sigma = map_sigma(fSigma, ctm); |
192 return src.makeOutset(SkScalarCeilToInt(SkScalarMul(sigma.x(), SkIntToScalar
(3))), | 231 return src.makeOutset(SkScalarCeilToInt(SkScalarMul(sigma.x(), SkIntToScalar
(3))), |
193 SkScalarCeilToInt(SkScalarMul(sigma.y(), SkIntToScalar
(3)))); | 232 SkScalarCeilToInt(SkScalarMul(sigma.y(), SkIntToScalar
(3)))); |
194 } | 233 } |
195 | 234 |
196 bool SkBlurImageFilter::filterImageGPUDeprecated(Proxy* proxy, const SkBitmap& s
rc, | |
197 const Context& ctx, | |
198 SkBitmap* result, SkIPoint* off
set) const { | |
199 #if SK_SUPPORT_GPU | |
200 SkBitmap input = src; | |
201 SkIPoint srcOffset = SkIPoint::Make(0, 0); | |
202 if (!this->filterInputGPUDeprecated(0, proxy, src, ctx, &input, &srcOffset))
{ | |
203 return false; | |
204 } | |
205 SkIRect srcBounds = input.bounds(); | |
206 srcBounds.offset(srcOffset); | |
207 SkIRect dstBounds; | |
208 if (!this->applyCropRect(this->mapContext(ctx), srcBounds, &dstBounds)) { | |
209 return false; | |
210 } | |
211 if (!srcBounds.intersect(dstBounds)) { | |
212 return false; | |
213 } | |
214 SkVector sigma = map_sigma(fSigma, ctx.ctm()); | |
215 if (sigma.x() == 0 && sigma.y() == 0) { | |
216 input.extractSubset(result, srcBounds.makeOffset(-srcOffset.x(), -srcOff
set.y())); | |
217 offset->fX = srcBounds.x(); | |
218 offset->fY = srcBounds.y(); | |
219 return true; | |
220 } | |
221 offset->fX = dstBounds.fLeft; | |
222 offset->fY = dstBounds.fTop; | |
223 srcBounds.offset(-srcOffset); | |
224 dstBounds.offset(-srcOffset); | |
225 SkRect srcBoundsF(SkRect::Make(srcBounds)); | |
226 GrTexture* inputTexture = input.getTexture(); | |
227 SkAutoTUnref<GrTexture> tex(SkGpuBlurUtils::GaussianBlur(inputTexture->getCo
ntext(), | |
228 inputTexture, | |
229 false, | |
230 SkRect::Make(dstBou
nds), | |
231 &srcBoundsF, | |
232 sigma.x(), | |
233 sigma.y())); | |
234 if (!tex) { | |
235 return false; | |
236 } | |
237 GrWrapTextureInBitmap(tex, dstBounds.width(), dstBounds.height(), false, res
ult); | |
238 return true; | |
239 #else | |
240 SkDEBUGFAIL("Should not call in GPU-less build"); | |
241 return false; | |
242 #endif | |
243 } | |
244 | |
245 #ifndef SK_IGNORE_TO_STRING | 235 #ifndef SK_IGNORE_TO_STRING |
246 void SkBlurImageFilter::toString(SkString* str) const { | 236 void SkBlurImageFilter::toString(SkString* str) const { |
247 str->appendf("SkBlurImageFilter: ("); | 237 str->appendf("SkBlurImageFilter: ("); |
248 str->appendf("sigma: (%f, %f) input (", fSigma.fWidth, fSigma.fHeight); | 238 str->appendf("sigma: (%f, %f) input (", fSigma.fWidth, fSigma.fHeight); |
249 | 239 |
250 if (this->getInput(0)) { | 240 if (this->getInput(0)) { |
251 this->getInput(0)->toString(str); | 241 this->getInput(0)->toString(str); |
252 } | 242 } |
253 | 243 |
254 str->append("))"); | 244 str->append("))"); |
255 } | 245 } |
256 #endif | 246 #endif |
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