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493 lines
16 KiB
493 lines
16 KiB
/* |
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* Copyright (C) 2012 The Android Open Source Project |
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* |
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* Licensed under the Apache License, Version 2.0 (the "License"); |
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* you may not use this file except in compliance with the License. |
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* You may obtain a copy of the License at |
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* |
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* http://www.apache.org/licenses/LICENSE-2.0 |
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* |
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* Unless required by applicable law or agreed to in writing, software |
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* distributed under the License is distributed on an "AS IS" BASIS, |
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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* See the License for the specific language governing permissions and |
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* limitations under the License. |
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*/ |
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#include "rsCpuIntrinsic.h" |
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#include "rsCpuIntrinsicInlines.h" |
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namespace android { |
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namespace renderscript { |
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class RsdCpuScriptIntrinsicBlur : public RsdCpuScriptIntrinsic { |
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public: |
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void populateScript(Script *) override; |
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void invokeFreeChildren() override; |
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void setGlobalVar(uint32_t slot, const void *data, size_t dataLength) override; |
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void setGlobalObj(uint32_t slot, ObjectBase *data) override; |
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~RsdCpuScriptIntrinsicBlur() override; |
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RsdCpuScriptIntrinsicBlur(RsdCpuReferenceImpl *ctx, const Script *s, const Element *e); |
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protected: |
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// The size of the kernel radius is limited to 25 in ScriptIntrinsicBlur.java. |
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// So, the max kernel size is 51 (= 2 * 25 + 1). |
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// Considering SSSE3 case, which requires the size is multiple of 4, |
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// at least 52 words are necessary. Values outside of the kernel should be 0. |
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float mFp[104]; |
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uint16_t mIp[104]; |
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void **mScratch; |
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size_t *mScratchSize; |
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float mRadius; |
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int mIradius; |
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ObjectBaseRef<Allocation> mAlloc; |
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static void kernelU4(const RsExpandKernelDriverInfo *info, |
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uint32_t xstart, uint32_t xend, |
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uint32_t outstep); |
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static void kernelU1(const RsExpandKernelDriverInfo *info, |
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uint32_t xstart, uint32_t xend, |
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uint32_t outstep); |
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void ComputeGaussianWeights(); |
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}; |
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void RsdCpuScriptIntrinsicBlur::ComputeGaussianWeights() { |
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memset(mFp, 0, sizeof(mFp)); |
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memset(mIp, 0, sizeof(mIp)); |
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// Compute gaussian weights for the blur |
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// e is the euler's number |
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// TODO Define these constants only once |
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float e = 2.718281828459045f; |
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float pi = 3.1415926535897932f; |
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// g(x) = (1 / (sqrt(2 * pi) * sigma)) * e ^ (-x^2 / (2 * sigma^2)) |
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// x is of the form [-radius .. 0 .. radius] |
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// and sigma varies with the radius. |
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// Based on some experimental radius values and sigmas, |
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// we approximately fit sigma = f(radius) as |
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// sigma = radius * 0.4 + 0.6 |
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// The larger the radius gets, the more our gaussian blur |
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// will resemble a box blur since with large sigma |
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// the gaussian curve begins to lose its shape |
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float sigma = 0.4f * mRadius + 0.6f; |
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// Now compute the coefficients. We will store some redundant values to save |
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// some math during the blur calculations precompute some values |
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float coeff1 = 1.0f / (sqrtf(2.0f * pi) * sigma); |
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float coeff2 = - 1.0f / (2.0f * sigma * sigma); |
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float normalizeFactor = 0.0f; |
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float floatR = 0.0f; |
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int r; |
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mIradius = (float)ceil(mRadius) + 0.5f; |
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for (r = -mIradius; r <= mIradius; r ++) { |
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floatR = (float)r; |
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mFp[r + mIradius] = coeff1 * powf(e, floatR * floatR * coeff2); |
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normalizeFactor += mFp[r + mIradius]; |
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} |
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// Now we need to normalize the weights because all our coefficients need to add up to one |
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normalizeFactor = 1.0f / normalizeFactor; |
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for (r = -mIradius; r <= mIradius; r ++) { |
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mFp[r + mIradius] *= normalizeFactor; |
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mIp[r + mIradius] = (uint16_t)(mFp[r + mIradius] * 65536.0f + 0.5f); |
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} |
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} |
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void RsdCpuScriptIntrinsicBlur::setGlobalObj(uint32_t slot, ObjectBase *data) { |
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rsAssert(slot == 1); |
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mAlloc.set(static_cast<Allocation *>(data)); |
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} |
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void RsdCpuScriptIntrinsicBlur::setGlobalVar(uint32_t slot, const void *data, size_t dataLength) { |
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rsAssert(slot == 0); |
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mRadius = ((const float *)data)[0]; |
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ComputeGaussianWeights(); |
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} |
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static void OneVU4(const RsExpandKernelDriverInfo *info, float4 *out, int32_t x, int32_t y, |
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const uchar *ptrIn, int iStride, const float* gPtr, int iradius) { |
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const uchar *pi = ptrIn + x*4; |
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float4 blurredPixel = 0; |
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for (int r = -iradius; r <= iradius; r ++) { |
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int validY = rsMax((y + r), 0); |
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validY = rsMin(validY, (int)(info->dim.y- 1)); |
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const uchar4 *pvy = (const uchar4 *)&pi[validY * iStride]; |
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float4 pf = convert_float4(pvy[0]); |
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blurredPixel += pf * gPtr[0]; |
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gPtr++; |
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} |
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out[0] = blurredPixel; |
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} |
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static void OneVU1(const RsExpandKernelDriverInfo *info, float *out, int32_t x, int32_t y, |
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const uchar *ptrIn, int iStride, const float* gPtr, int iradius) { |
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const uchar *pi = ptrIn + x; |
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float blurredPixel = 0; |
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for (int r = -iradius; r <= iradius; r ++) { |
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int validY = rsMax((y + r), 0); |
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validY = rsMin(validY, (int)(info->dim.y - 1)); |
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float pf = (float)pi[validY * iStride]; |
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blurredPixel += pf * gPtr[0]; |
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gPtr++; |
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} |
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out[0] = blurredPixel; |
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} |
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} // namespace renderscript |
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} // namespace android |
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extern "C" void rsdIntrinsicBlurU1_K(uchar *out, uchar const *in, size_t w, size_t h, |
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size_t p, size_t x, size_t y, size_t count, size_t r, uint16_t const *tab); |
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extern "C" void rsdIntrinsicBlurU4_K(uchar4 *out, uchar4 const *in, size_t w, size_t h, |
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size_t p, size_t x, size_t y, size_t count, size_t r, uint16_t const *tab); |
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#if defined(ARCH_X86_HAVE_SSSE3) |
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extern void rsdIntrinsicBlurVFU4_K(void *dst, const void *pin, int stride, const void *gptr, int rct, int x1, int ct); |
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extern void rsdIntrinsicBlurHFU4_K(void *dst, const void *pin, const void *gptr, int rct, int x1, int ct); |
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extern void rsdIntrinsicBlurHFU1_K(void *dst, const void *pin, const void *gptr, int rct, int x1, int ct); |
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#endif |
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using android::renderscript::gArchUseSIMD; |
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static void OneVFU4(float4 *out, |
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const uchar *ptrIn, int iStride, const float* gPtr, int ct, |
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int x1, int x2) { |
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out += x1; |
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#if defined(ARCH_X86_HAVE_SSSE3) |
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if (gArchUseSIMD) { |
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int t = (x2 - x1); |
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t &= ~1; |
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if (t) { |
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rsdIntrinsicBlurVFU4_K(out, ptrIn, iStride, gPtr, ct, x1, x1 + t); |
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} |
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x1 += t; |
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out += t; |
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ptrIn += t << 2; |
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} |
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#endif |
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while(x2 > x1) { |
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const uchar *pi = ptrIn; |
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float4 blurredPixel = 0; |
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const float* gp = gPtr; |
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for (int r = 0; r < ct; r++) { |
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float4 pf = convert_float4(((const uchar4 *)pi)[0]); |
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blurredPixel += pf * gp[0]; |
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pi += iStride; |
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gp++; |
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} |
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out->xyzw = blurredPixel; |
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x1++; |
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out++; |
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ptrIn+=4; |
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} |
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} |
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static void OneVFU1(float *out, |
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const uchar *ptrIn, int iStride, const float* gPtr, int ct, int x1, int x2) { |
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int len = x2 - x1; |
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out += x1; |
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while((x2 > x1) && (((uintptr_t)ptrIn) & 0x3)) { |
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const uchar *pi = ptrIn; |
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float blurredPixel = 0; |
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const float* gp = gPtr; |
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for (int r = 0; r < ct; r++) { |
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float pf = (float)pi[0]; |
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blurredPixel += pf * gp[0]; |
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pi += iStride; |
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gp++; |
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} |
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out[0] = blurredPixel; |
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x1++; |
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out++; |
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ptrIn++; |
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len--; |
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} |
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#if defined(ARCH_X86_HAVE_SSSE3) |
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if (gArchUseSIMD && (x2 > x1)) { |
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int t = (x2 - x1) >> 2; |
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t &= ~1; |
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if (t) { |
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rsdIntrinsicBlurVFU4_K(out, ptrIn, iStride, gPtr, ct, 0, t ); |
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len -= t << 2; |
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ptrIn += t << 2; |
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out += t << 2; |
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} |
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} |
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#endif |
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while(len > 0) { |
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const uchar *pi = ptrIn; |
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float blurredPixel = 0; |
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const float* gp = gPtr; |
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for (int r = 0; r < ct; r++) { |
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float pf = (float)pi[0]; |
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blurredPixel += pf * gp[0]; |
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pi += iStride; |
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gp++; |
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} |
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out[0] = blurredPixel; |
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len--; |
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out++; |
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ptrIn++; |
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} |
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} |
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using android::renderscript::rsMin; |
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using android::renderscript::rsMax; |
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static void OneHU4(const RsExpandKernelDriverInfo *info, uchar4 *out, int32_t x, |
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const float4 *ptrIn, const float* gPtr, int iradius) { |
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float4 blurredPixel = 0; |
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for (int r = -iradius; r <= iradius; r ++) { |
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int validX = rsMax((x + r), 0); |
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validX = rsMin(validX, (int)(info->dim.x - 1)); |
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float4 pf = ptrIn[validX]; |
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blurredPixel += pf * gPtr[0]; |
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gPtr++; |
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} |
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out->xyzw = convert_uchar4(blurredPixel); |
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} |
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static void OneHU1(const RsExpandKernelDriverInfo *info, uchar *out, int32_t x, |
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const float *ptrIn, const float* gPtr, int iradius) { |
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float blurredPixel = 0; |
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for (int r = -iradius; r <= iradius; r ++) { |
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int validX = rsMax((x + r), 0); |
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validX = rsMin(validX, (int)(info->dim.x - 1)); |
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float pf = ptrIn[validX]; |
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blurredPixel += pf * gPtr[0]; |
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gPtr++; |
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} |
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out[0] = (uchar)blurredPixel; |
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} |
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namespace android { |
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namespace renderscript { |
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void RsdCpuScriptIntrinsicBlur::kernelU4(const RsExpandKernelDriverInfo *info, |
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uint32_t xstart, uint32_t xend, |
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uint32_t outstep) { |
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float4 stackbuf[2048]; |
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float4 *buf = &stackbuf[0]; |
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RsdCpuScriptIntrinsicBlur *cp = (RsdCpuScriptIntrinsicBlur *)info->usr; |
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if (!cp->mAlloc.get()) { |
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ALOGE("Blur executed without input, skipping"); |
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return; |
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} |
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const uchar *pin = (const uchar *)cp->mAlloc->mHal.drvState.lod[0].mallocPtr; |
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const size_t stride = cp->mAlloc->mHal.drvState.lod[0].stride; |
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uchar4 *out = (uchar4 *)info->outPtr[0]; |
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uint32_t x1 = xstart; |
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uint32_t x2 = xend; |
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#if defined(ARCH_ARM_USE_INTRINSICS) |
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if (gArchUseSIMD && info->dim.x >= 4) { |
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rsdIntrinsicBlurU4_K(out, (uchar4 const *)(pin + stride * info->current.y), |
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info->dim.x, info->dim.y, |
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stride, x1, info->current.y, x2 - x1, cp->mIradius, cp->mIp + cp->mIradius); |
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return; |
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} |
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#endif |
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if (info->dim.x > 2048) { |
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if ((info->dim.x > cp->mScratchSize[info->lid]) || !cp->mScratch[info->lid]) { |
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// Pad the side of the allocation by one unit to allow alignment later |
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cp->mScratch[info->lid] = realloc(cp->mScratch[info->lid], (info->dim.x + 1) * 16); |
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cp->mScratchSize[info->lid] = info->dim.x; |
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} |
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// realloc only aligns to 8 bytes so we manually align to 16. |
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buf = (float4 *) ((((intptr_t)cp->mScratch[info->lid]) + 15) & ~0xf); |
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} |
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float4 *fout = (float4 *)buf; |
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int y = info->current.y; |
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if ((y > cp->mIradius) && (y < ((int)info->dim.y - cp->mIradius))) { |
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const uchar *pi = pin + (y - cp->mIradius) * stride; |
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OneVFU4(fout, pi, stride, cp->mFp, cp->mIradius * 2 + 1, 0, info->dim.x); |
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} else { |
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x1 = 0; |
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while(info->dim.x > x1) { |
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OneVU4(info, fout, x1, y, pin, stride, cp->mFp, cp->mIradius); |
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fout++; |
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x1++; |
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} |
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} |
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x1 = xstart; |
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while ((x1 < (uint32_t)cp->mIradius) && (x1 < x2)) { |
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OneHU4(info, out, x1, buf, cp->mFp, cp->mIradius); |
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out++; |
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x1++; |
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} |
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#if defined(ARCH_X86_HAVE_SSSE3) |
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if (gArchUseSIMD) { |
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if ((x1 + cp->mIradius) < x2) { |
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rsdIntrinsicBlurHFU4_K(out, buf - cp->mIradius, cp->mFp, |
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cp->mIradius * 2 + 1, x1, x2 - cp->mIradius); |
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out += (x2 - cp->mIradius) - x1; |
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x1 = x2 - cp->mIradius; |
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} |
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} |
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#endif |
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while(x2 > x1) { |
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OneHU4(info, out, x1, buf, cp->mFp, cp->mIradius); |
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out++; |
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x1++; |
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} |
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} |
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void RsdCpuScriptIntrinsicBlur::kernelU1(const RsExpandKernelDriverInfo *info, |
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uint32_t xstart, uint32_t xend, |
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uint32_t outstep) { |
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float buf[4 * 2048]; |
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RsdCpuScriptIntrinsicBlur *cp = (RsdCpuScriptIntrinsicBlur *)info->usr; |
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if (!cp->mAlloc.get()) { |
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ALOGE("Blur executed without input, skipping"); |
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return; |
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} |
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const uchar *pin = (const uchar *)cp->mAlloc->mHal.drvState.lod[0].mallocPtr; |
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const size_t stride = cp->mAlloc->mHal.drvState.lod[0].stride; |
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uchar *out = (uchar *)info->outPtr[0]; |
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uint32_t x1 = xstart; |
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uint32_t x2 = xend; |
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#if defined(ARCH_ARM_USE_INTRINSICS) |
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if (gArchUseSIMD && info->dim.x >= 16) { |
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// The specialisation for r<=8 has an awkward prefill case, which is |
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// fiddly to resolve, where starting close to the right edge can cause |
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// a read beyond the end of input. So avoid that case here. |
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if (cp->mIradius > 8 || (info->dim.x - rsMax(0, (int32_t)x1 - 8)) >= 16) { |
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rsdIntrinsicBlurU1_K(out, pin + stride * info->current.y, info->dim.x, info->dim.y, |
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stride, x1, info->current.y, x2 - x1, cp->mIradius, cp->mIp + cp->mIradius); |
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return; |
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} |
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} |
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#endif |
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float *fout = (float *)buf; |
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int y = info->current.y; |
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if ((y > cp->mIradius) && (y < ((int)info->dim.y - cp->mIradius -1))) { |
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const uchar *pi = pin + (y - cp->mIradius) * stride; |
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OneVFU1(fout, pi, stride, cp->mFp, cp->mIradius * 2 + 1, 0, info->dim.x); |
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} else { |
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x1 = 0; |
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while(info->dim.x > x1) { |
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OneVU1(info, fout, x1, y, pin, stride, cp->mFp, cp->mIradius); |
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fout++; |
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x1++; |
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} |
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} |
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x1 = xstart; |
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while ((x1 < x2) && |
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((x1 < (uint32_t)cp->mIradius) || (((uintptr_t)out) & 0x3))) { |
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OneHU1(info, out, x1, buf, cp->mFp, cp->mIradius); |
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out++; |
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x1++; |
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} |
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#if defined(ARCH_X86_HAVE_SSSE3) |
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if (gArchUseSIMD) { |
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if ((x1 + cp->mIradius) < x2) { |
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uint32_t len = x2 - (x1 + cp->mIradius); |
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len &= ~3; |
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// rsdIntrinsicBlurHFU1_K() processes each four float values in |buf| at once, so it |
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// nees to ensure four more values can be accessed in order to avoid accessing |
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// uninitialized buffer. |
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if (len > 4) { |
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len -= 4; |
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rsdIntrinsicBlurHFU1_K(out, ((float *)buf) - cp->mIradius, cp->mFp, |
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cp->mIradius * 2 + 1, x1, x1 + len); |
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out += len; |
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x1 += len; |
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} |
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} |
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} |
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#endif |
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while(x2 > x1) { |
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OneHU1(info, out, x1, buf, cp->mFp, cp->mIradius); |
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out++; |
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x1++; |
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} |
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} |
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RsdCpuScriptIntrinsicBlur::RsdCpuScriptIntrinsicBlur(RsdCpuReferenceImpl *ctx, |
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const Script *s, const Element *e) |
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: RsdCpuScriptIntrinsic(ctx, s, e, RS_SCRIPT_INTRINSIC_ID_BLUR) { |
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mRootPtr = nullptr; |
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if (e->getType() == RS_TYPE_UNSIGNED_8) { |
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switch (e->getVectorSize()) { |
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case 1: |
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mRootPtr = &kernelU1; |
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break; |
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case 4: |
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mRootPtr = &kernelU4; |
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break; |
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} |
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} |
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rsAssert(mRootPtr); |
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mRadius = 5; |
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mScratch = new void *[mCtx->getThreadCount()]; |
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mScratchSize = new size_t[mCtx->getThreadCount()]; |
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memset(mScratch, 0, sizeof(void *) * mCtx->getThreadCount()); |
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memset(mScratchSize, 0, sizeof(size_t) * mCtx->getThreadCount()); |
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ComputeGaussianWeights(); |
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} |
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RsdCpuScriptIntrinsicBlur::~RsdCpuScriptIntrinsicBlur() { |
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uint32_t threads = mCtx->getThreadCount(); |
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if (mScratch) { |
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for (size_t i = 0; i < threads; i++) { |
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if (mScratch[i]) { |
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free(mScratch[i]); |
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} |
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} |
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delete []mScratch; |
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} |
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if (mScratchSize) { |
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delete []mScratchSize; |
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} |
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} |
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void RsdCpuScriptIntrinsicBlur::populateScript(Script *s) { |
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s->mHal.info.exportedVariableCount = 2; |
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} |
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void RsdCpuScriptIntrinsicBlur::invokeFreeChildren() { |
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mAlloc.clear(); |
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} |
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RsdCpuScriptImpl * rsdIntrinsic_Blur(RsdCpuReferenceImpl *ctx, const Script *s, const Element *e) { |
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return new RsdCpuScriptIntrinsicBlur(ctx, s, e); |
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} |
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} // namespace renderscript |
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} // namespace android
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