1133 lines
33 KiB
C++
1133 lines
33 KiB
C++
/*M///////////////////////////////////////////////////////////////////////////////////////
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//
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// IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
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//
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// By downloading, copying, installing or using the software you agree to this license.
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// If you do not agree to this license, do not download, install,
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// copy or use the software.
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//
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//
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// License Agreement
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// For Open Source Computer Vision Library
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//
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// Copyright (C) 2010-2013, Advanced Micro Devices, Inc., all rights reserved.
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// Third party copyrights are property of their respective owners.
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//
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// Redistribution and use in source and binary forms, with or without modification,
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// are permitted provided that the following conditions are met:
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//
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// * Redistribution's of source code must retain the above copyright notice,
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// this list of conditions and the following disclaimer.
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//
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// * Redistribution's in binary form must reproduce the above copyright notice,
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// this list of conditions and the following disclaimer in the documentation
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// and/or other materials provided with the distribution.
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//
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// * The name of the copyright holders may not be used to endorse or promote products
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// derived from this software without specific prior written permission.
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//
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// This software is provided by the copyright holders and contributors "as is" and
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// any express or implied warranties, including, but not limited to, the implied
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// warranties of merchantability and fitness for a particular purpose are disclaimed.
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// In no event shall the OpenCV Foundation or contributors be liable for any direct,
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// indirect, incidental, special, exemplary, or consequential damages
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// (including, but not limited to, procurement of substitute goods or services;
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// loss of use, data, or profits; or business interruption) however caused
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// and on any theory of liability, whether in contract, strict liability,
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// or tort (including negligence or otherwise) arising in any way out of
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// the use of this software, even if advised of the possibility of such damage.
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//
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//M*/
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#include "../perf_precomp.hpp"
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#include "opencv2/ts/ocl_perf.hpp"
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#ifdef HAVE_OPENCL
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namespace cvtest {
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namespace ocl {
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///////////// Lut ////////////////////////
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typedef Size_MatType LUTFixture;
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OCL_PERF_TEST_P(LUTFixture, LUT,
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::testing::Combine(OCL_TEST_SIZES,
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OCL_TEST_TYPES))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params), cn = CV_MAT_CN(type);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, CV_8UC(cn)), lut(1, 256, type);
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int dstType = CV_MAKETYPE(lut.depth(), src.channels());
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UMat dst(srcSize, dstType);
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declare.in(src, lut, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::LUT(src, lut, dst);
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SANITY_CHECK(dst);
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}
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///////////// Exp ////////////////////////
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typedef Size_MatType ExpFixture;
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OCL_PERF_TEST_P(ExpFixture, Exp, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type), dst(srcSize, type);
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declare.in(src).out(dst);
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randu(src, 5, 16);
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OCL_TEST_CYCLE() cv::exp(src, dst);
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SANITY_CHECK(dst, 1e-6, ERROR_RELATIVE);
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}
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///////////// Log ////////////////////////
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typedef Size_MatType LogFixture;
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OCL_PERF_TEST_P(LogFixture, Log, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type), dst(srcSize, type);
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randu(src, 1, 10000);
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declare.in(src).out(dst);
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OCL_TEST_CYCLE() cv::log(src, dst);
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SANITY_CHECK(dst, 1e-6, ERROR_RELATIVE);
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}
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///////////// Add ////////////////////////
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typedef Size_MatType AddFixture;
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OCL_PERF_TEST_P(AddFixture, Add,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size srcSize = GET_PARAM(0);
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const int type = GET_PARAM(1);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::add(src1, src2, dst);
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SANITY_CHECK(dst);
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}
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///////////// Subtract ////////////////////////
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typedef Size_MatType SubtractFixture;
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OCL_PERF_TEST_P(SubtractFixture, Subtract,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::subtract(src1, src2, dst);
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SANITY_CHECK(dst);
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}
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///////////// Mul ////////////////////////
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typedef Size_MatType MulFixture;
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OCL_PERF_TEST_P(MulFixture, Multiply, ::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::multiply(src1, src2, dst);
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SANITY_CHECK(dst);
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}
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///////////// Div ////////////////////////
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typedef Size_MatType DivFixture;
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OCL_PERF_TEST_P(DivFixture, Divide,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::divide(src1, src2, dst);
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SANITY_CHECK(dst, 1e-6, ERROR_RELATIVE);
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}
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///////////// Absdiff ////////////////////////
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typedef Size_MatType AbsDiffFixture;
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OCL_PERF_TEST_P(AbsDiffFixture, Absdiff,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).in(dst);
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OCL_TEST_CYCLE() cv::absdiff(src1, src2, dst);
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SANITY_CHECK(dst);
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}
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///////////// CartToPolar ////////////////////////
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typedef Size_MatType CartToPolarFixture;
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OCL_PERF_TEST_P(CartToPolarFixture, CartToPolar, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type),
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dst1(srcSize, type), dst2(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst1, dst2);
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OCL_TEST_CYCLE() cv::cartToPolar(src1, src2, dst1, dst2);
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SANITY_CHECK(dst1, 8e-3);
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SANITY_CHECK(dst2, 8e-3);
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}
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///////////// PolarToCart ////////////////////////
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typedef Size_MatType PolarToCartFixture;
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OCL_PERF_TEST_P(PolarToCartFixture, PolarToCart, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type),
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dst1(srcSize, type), dst2(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst1, dst2);
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OCL_TEST_CYCLE() cv::polarToCart(src1, src2, dst1, dst2);
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SANITY_CHECK(dst1, 5e-5);
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SANITY_CHECK(dst2, 5e-5);
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}
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///////////// Magnitude ////////////////////////
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typedef Size_MatType MagnitudeFixture;
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OCL_PERF_TEST_P(MagnitudeFixture, Magnitude, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type),
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dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::magnitude(src1, src2, dst);
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SANITY_CHECK(dst, 1e-6);
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}
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///////////// Transpose ////////////////////////
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typedef Size_MatType TransposeFixture;
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OCL_PERF_TEST_P(TransposeFixture, Transpose, ::testing::Combine(
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OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type), dst(srcSize, type);
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declare.in(src, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::transpose(src, dst);
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SANITY_CHECK(dst);
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}
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OCL_PERF_TEST_P(TransposeFixture, TransposeInplace, ::testing::Combine(
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OCL_PERF_ENUM(Size(640, 640), Size(1280, 1280), Size(2160, 2160)), OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type);
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declare.in(src, WARMUP_RNG).out(src, WARMUP_NONE);
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OCL_TEST_CYCLE() cv::transpose(src, src);
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SANITY_CHECK_NOTHING();
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}
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///////////// Flip ////////////////////////
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enum
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{
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FLIP_BOTH = 0, FLIP_ROWS, FLIP_COLS
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};
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CV_ENUM(FlipType, FLIP_BOTH, FLIP_ROWS, FLIP_COLS)
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typedef std::tr1::tuple<Size, MatType, FlipType> FlipParams;
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typedef TestBaseWithParam<FlipParams> FlipFixture;
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OCL_PERF_TEST_P(FlipFixture, Flip,
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::testing::Combine(OCL_TEST_SIZES,
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OCL_TEST_TYPES, FlipType::all()))
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{
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const FlipParams params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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const int flipType = get<2>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type), dst(srcSize, type);
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declare.in(src, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::flip(src, dst, flipType - 1);
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SANITY_CHECK(dst);
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}
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///////////// minMaxLoc ////////////////////////
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typedef Size_MatType MinMaxLocFixture;
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OCL_PERF_TEST_P(MinMaxLocFixture, MinMaxLoc,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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bool onecn = CV_MAT_CN(type) == 1;
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type);;
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declare.in(src, WARMUP_RNG);
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double min_val = 0.0, max_val = 0.0;
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Point min_loc, max_loc;
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OCL_TEST_CYCLE() cv::minMaxLoc(src, &min_val, &max_val, onecn ? &min_loc : NULL,
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onecn ? &max_loc : NULL);
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ASSERT_GE(max_val, min_val);
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SANITY_CHECK(min_val);
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SANITY_CHECK(max_val);
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int min_loc_x = min_loc.x, min_loc_y = min_loc.y, max_loc_x = max_loc.x,
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max_loc_y = max_loc.y;
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SANITY_CHECK(min_loc_x);
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SANITY_CHECK(min_loc_y);
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SANITY_CHECK(max_loc_x);
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SANITY_CHECK(max_loc_y);
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}
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///////////// Sum ////////////////////////
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typedef Size_MatType SumFixture;
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OCL_PERF_TEST_P(SumFixture, Sum,
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::testing::Combine(OCL_TEST_SIZES,
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OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params), depth = CV_MAT_DEPTH(type);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type);
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Scalar result;
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randu(src, 0, 60);
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declare.in(src);
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OCL_TEST_CYCLE() result = cv::sum(src);
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if (depth >= CV_32F)
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SANITY_CHECK(result, 1e-6, ERROR_RELATIVE);
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else
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SANITY_CHECK(result);
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}
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///////////// countNonZero ////////////////////////
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typedef Size_MatType CountNonZeroFixture;
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OCL_PERF_TEST_P(CountNonZeroFixture, CountNonZero,
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::testing::Combine(OCL_TEST_SIZES,
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OCL_PERF_ENUM(CV_8UC1, CV_32FC1)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src(srcSize, type);
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int result = 0;
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randu(src, 0, 10);
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declare.in(src);
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OCL_TEST_CYCLE() result = cv::countNonZero(src);
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SANITY_CHECK(result);
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}
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///////////// Phase ////////////////////////
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typedef Size_MatType PhaseFixture;
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OCL_PERF_TEST_P(PhaseFixture, Phase, ::testing::Combine(
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OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type),
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dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::phase(src1, src2, dst, 1);
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SANITY_CHECK(dst, 1e-2);
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}
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///////////// bitwise_and ////////////////////////
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typedef Size_MatType BitwiseAndFixture;
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OCL_PERF_TEST_P(BitwiseAndFixture, Bitwise_and,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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checkDeviceMaxMemoryAllocSize(srcSize, type);
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UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
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declare.in(src1, src2, WARMUP_RNG).out(dst);
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OCL_TEST_CYCLE() cv::bitwise_and(src1, src2, dst);
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SANITY_CHECK(dst);
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}
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///////////// bitwise_xor ////////////////////////
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typedef Size_MatType BitwiseXorFixture;
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OCL_PERF_TEST_P(BitwiseXorFixture, Bitwise_xor,
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::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
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{
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const Size_MatType_t params = GetParam();
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const Size srcSize = get<0>(params);
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const int type = get<1>(params);
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|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::bitwise_xor(src1, src2, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// bitwise_or ////////////////////////
|
|
|
|
typedef Size_MatType BitwiseOrFixture;
|
|
|
|
OCL_PERF_TEST_P(BitwiseOrFixture, Bitwise_or,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::bitwise_or(src1, src2, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// bitwise_not ////////////////////////
|
|
|
|
typedef Size_MatType BitwiseNotFixture;
|
|
|
|
OCL_PERF_TEST_P(BitwiseNotFixture, Bitwise_not,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(srcSize, type);
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::bitwise_not(src, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// compare ////////////////////////
|
|
|
|
CV_ENUM(CmpCode, CMP_LT, CMP_LE, CMP_EQ, CMP_NE, CMP_GE, CMP_GT)
|
|
|
|
typedef std::tr1::tuple<Size, MatType, CmpCode> CompareParams;
|
|
typedef TestBaseWithParam<CompareParams> CompareFixture;
|
|
|
|
OCL_PERF_TEST_P(CompareFixture, Compare,
|
|
::testing::Combine(OCL_TEST_SIZES,
|
|
OCL_TEST_TYPES_134, CmpCode::all()))
|
|
{
|
|
const CompareParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const int cmpCode = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, CV_8UC(CV_MAT_CN(type)));
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::compare(src1, src2, dst, cmpCode);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
OCL_PERF_TEST_P(CompareFixture, CompareScalar,
|
|
::testing::Combine(OCL_TEST_SIZES,
|
|
OCL_PERF_ENUM((MatType)CV_32FC1), // TODO: OCL_TEST_TYPES_134
|
|
CmpCode::all()))
|
|
{
|
|
const CompareParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const int cmpCode = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), dst(srcSize, CV_8UC(CV_MAT_CN(type)));
|
|
declare.in(src1, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::compare(src1, 32, dst, cmpCode);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// pow ////////////////////////
|
|
|
|
typedef Size_MatType PowFixture;
|
|
|
|
OCL_PERF_TEST_P(PowFixture, Pow, ::testing::Combine(
|
|
OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(srcSize, type);
|
|
randu(src, 0, 100);
|
|
declare.in(src).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::pow(src, 2.17, dst);
|
|
|
|
SANITY_CHECK(dst, 1.5e-6, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// AddWeighted////////////////////////
|
|
|
|
typedef Size_MatType AddWeightedFixture;
|
|
|
|
OCL_PERF_TEST_P(AddWeightedFixture, AddWeighted,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), depth = CV_MAT_DEPTH(type);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
double alpha = 2.0, beta = 1.0, gama = 3.0;
|
|
|
|
OCL_TEST_CYCLE() cv::addWeighted(src1, alpha, src2, beta, gama, dst);
|
|
|
|
if (depth >= CV_32F)
|
|
SANITY_CHECK(dst, 1e-6, ERROR_RELATIVE);
|
|
else
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// Sqrt ///////////////////////
|
|
|
|
typedef Size_MatType SqrtFixture;
|
|
|
|
OCL_PERF_TEST_P(SqrtFixture, Sqrt, ::testing::Combine(
|
|
OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(srcSize, type);
|
|
randu(src, 0, 1000);
|
|
declare.in(src).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::sqrt(src, dst);
|
|
|
|
SANITY_CHECK(dst, 1e-6, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// SetIdentity ////////////////////////
|
|
|
|
typedef Size_MatType SetIdentityFixture;
|
|
|
|
OCL_PERF_TEST_P(SetIdentityFixture, SetIdentity,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat dst(srcSize, type);
|
|
declare.out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::setIdentity(dst, cv::Scalar::all(181));
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// MeanStdDev ////////////////////////
|
|
|
|
typedef Size_MatType MeanStdDevFixture;
|
|
|
|
OCL_PERF_TEST_P(MeanStdDevFixture, MeanStdDev,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const double eps = 2e-5;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type);
|
|
Scalar mean, stddev;
|
|
declare.in(src, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() cv::meanStdDev(src, mean, stddev);
|
|
|
|
double mean0 = mean[0], mean1 = mean[1], mean2 = mean[2], mean3 = mean[3];
|
|
double stddev0 = stddev[0], stddev1 = stddev[1], stddev2 = stddev[2], stddev3 = stddev[3];
|
|
|
|
SANITY_CHECK(mean0, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean1, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean2, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean3, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev0, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev1, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev2, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev3, eps, ERROR_RELATIVE);
|
|
}
|
|
|
|
OCL_PERF_TEST_P(MeanStdDevFixture, MeanStdDevWithMask,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const double eps = 2e-5;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), mask(srcSize, CV_8UC1);
|
|
Scalar mean, stddev;
|
|
declare.in(src, mask, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() cv::meanStdDev(src, mean, stddev, mask);
|
|
|
|
double mean0 = mean[0], mean1 = mean[1], mean2 = mean[2], mean3 = mean[3];
|
|
double stddev0 = stddev[0], stddev1 = stddev[1], stddev2 = stddev[2], stddev3 = stddev[3];
|
|
|
|
SANITY_CHECK(mean0, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean1, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean2, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(mean3, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev0, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev1, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev2, eps, ERROR_RELATIVE);
|
|
SANITY_CHECK(stddev3, eps, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// Norm ////////////////////////
|
|
|
|
CV_ENUM(NormType, NORM_INF, NORM_L1, NORM_L2)
|
|
|
|
typedef std::tr1::tuple<Size, MatType, NormType> NormParams;
|
|
typedef TestBaseWithParam<NormParams> NormFixture;
|
|
|
|
OCL_PERF_TEST_P(NormFixture, Norm1Arg,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134, NormType::all()))
|
|
{
|
|
const NormParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const int normType = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type);
|
|
double res;
|
|
declare.in(src1, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() res = cv::norm(src1, normType);
|
|
|
|
SANITY_CHECK(res, 1e-5, ERROR_RELATIVE);
|
|
}
|
|
|
|
OCL_PERF_TEST_P(NormFixture, Norm,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134, NormType::all()))
|
|
{
|
|
const NormParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const int normType = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type);
|
|
double res;
|
|
declare.in(src1, src2, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() res = cv::norm(src1, src2, normType);
|
|
|
|
SANITY_CHECK(res, 1e-5, ERROR_RELATIVE);
|
|
}
|
|
|
|
OCL_PERF_TEST_P(NormFixture, NormRel,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134, NormType::all()))
|
|
{
|
|
const NormParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
const int normType = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type);
|
|
double res;
|
|
declare.in(src1, src2, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() res = cv::norm(src1, src2, normType | cv::NORM_RELATIVE);
|
|
|
|
SANITY_CHECK(res, 1e-5, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// UMat::dot ////////////////////////
|
|
|
|
typedef Size_MatType UMatDotFixture;
|
|
|
|
OCL_PERF_TEST_P(UMatDotFixture, UMatDot,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3),
|
|
OCL_TEST_TYPES_134))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
double r = 0.0;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() r = src1.dot(src2);
|
|
|
|
SANITY_CHECK(r, 1e-5, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// Repeat ////////////////////////
|
|
|
|
typedef Size_MatType RepeatFixture;
|
|
|
|
OCL_PERF_TEST_P(RepeatFixture, Repeat,
|
|
::testing::Combine(OCL_PERF_ENUM(OCL_SIZE_1, OCL_SIZE_2, OCL_SIZE_3), OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), nx = 2, ny = 2;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(Size(srcSize.width * nx, srcSize.height * ny), type);
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::repeat(src, nx, ny, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// Min ////////////////////////
|
|
|
|
typedef Size_MatType MinFixture;
|
|
|
|
OCL_PERF_TEST_P(MinFixture, Min,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::min(src1, src2, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// Max ////////////////////////
|
|
|
|
typedef Size_MatType MaxFixture;
|
|
|
|
OCL_PERF_TEST_P(MaxFixture, Max,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::max(src1, src2, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// InRange ////////////////////////
|
|
|
|
typedef Size_MatType InRangeFixture;
|
|
|
|
OCL_PERF_TEST_P(InRangeFixture, InRange,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), lb(srcSize, type), ub(srcSize, type), dst(srcSize, CV_8UC1);
|
|
declare.in(src, lb, ub, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::inRange(src, lb, ub, dst);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// Normalize ////////////////////////
|
|
|
|
CV_ENUM(NormalizeModes, CV_MINMAX, CV_L2, CV_L1, CV_C)
|
|
|
|
typedef tuple<Size, MatType, NormalizeModes> NormalizeParams;
|
|
typedef TestBaseWithParam<NormalizeParams> NormalizeFixture;
|
|
|
|
OCL_PERF_TEST_P(NormalizeFixture, Normalize,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES_134,
|
|
NormalizeModes::all()))
|
|
{
|
|
const NormalizeParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), mode = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(srcSize, type);
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::normalize(src, dst, 10, 110, mode);
|
|
|
|
SANITY_CHECK(dst, 5e-2);
|
|
}
|
|
|
|
OCL_PERF_TEST_P(NormalizeFixture, NormalizeWithMask,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_PERF_ENUM(CV_8UC1, CV_32FC1),
|
|
NormalizeModes::all()))
|
|
{
|
|
const NormalizeParams params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), mode = get<2>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), mask(srcSize, CV_8UC1), dst(srcSize, type);
|
|
declare.in(src, mask, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::normalize(src, dst, 10, 110, mode, -1, mask);
|
|
|
|
SANITY_CHECK(dst, 5e-2);
|
|
}
|
|
|
|
///////////// ConvertScaleAbs ////////////////////////
|
|
|
|
typedef Size_MatType ConvertScaleAbsFixture;
|
|
|
|
OCL_PERF_TEST_P(ConvertScaleAbsFixture, ConvertScaleAbs,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), cn = CV_MAT_CN(type);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type), dst(srcSize, CV_8UC(cn));
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::convertScaleAbs(src, dst, 0.5, 2);
|
|
|
|
SANITY_CHECK(dst);
|
|
}
|
|
|
|
///////////// PatchNaNs ////////////////////////
|
|
|
|
typedef Size_MatType PatchNaNsFixture;
|
|
|
|
OCL_PERF_TEST_P(PatchNaNsFixture, PatchNaNs,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_PERF_ENUM(CV_32FC1, CV_32FC4)))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
Size srcSize = get<0>(params);
|
|
const int type = get<1>(params), cn = CV_MAT_CN(type);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src(srcSize, type);
|
|
declare.in(src, WARMUP_RNG).out(src);
|
|
|
|
// generating NaNs
|
|
{
|
|
Mat src_ = src.getMat(ACCESS_RW);
|
|
srcSize.width *= cn;
|
|
for (int y = 0; y < srcSize.height; ++y)
|
|
{
|
|
float * const ptr = src_.ptr<float>(y);
|
|
for (int x = 0; x < srcSize.width; ++x)
|
|
ptr[x] = (x + y) % 2 == 0 ? std::numeric_limits<float>::quiet_NaN() : ptr[x];
|
|
}
|
|
}
|
|
|
|
OCL_TEST_CYCLE() cv::patchNaNs(src, 17.7);
|
|
|
|
SANITY_CHECK(src);
|
|
}
|
|
|
|
|
|
///////////// ScaleAdd ////////////////////////
|
|
|
|
typedef Size_MatType ScaleAddFixture;
|
|
|
|
OCL_PERF_TEST_P(ScaleAddFixture, ScaleAdd,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_TEST_TYPES))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
UMat src1(srcSize, type), src2(srcSize, type), dst(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::scaleAdd(src1, 0.6, src2, dst);
|
|
|
|
SANITY_CHECK(dst, 1e-6);
|
|
}
|
|
|
|
///////////// PSNR ////////////////////////
|
|
|
|
typedef Size_MatType PSNRFixture;
|
|
|
|
OCL_PERF_TEST_P(PSNRFixture, PSNR,
|
|
::testing::Combine(OCL_TEST_SIZES, OCL_PERF_ENUM(CV_8UC1, CV_8UC4)))
|
|
{
|
|
const Size_MatType_t params = GetParam();
|
|
const Size srcSize = get<0>(params);
|
|
const int type = get<1>(params);
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, type);
|
|
|
|
double psnr = 0;
|
|
UMat src1(srcSize, type), src2(srcSize, type);
|
|
declare.in(src1, src2, WARMUP_RNG);
|
|
|
|
OCL_TEST_CYCLE() psnr = cv::PSNR(src1, src2);
|
|
|
|
SANITY_CHECK(psnr, 1e-4, ERROR_RELATIVE);
|
|
}
|
|
|
|
///////////// Reduce ////////////////////////
|
|
|
|
CV_ENUM(ReduceMinMaxOp, CV_REDUCE_MIN, CV_REDUCE_MAX)
|
|
|
|
typedef tuple<Size, std::pair<MatType, MatType>, int, ReduceMinMaxOp> ReduceMinMaxParams;
|
|
typedef TestBaseWithParam<ReduceMinMaxParams> ReduceMinMaxFixture;
|
|
|
|
OCL_PERF_TEST_P(ReduceMinMaxFixture, Reduce,
|
|
::testing::Combine(OCL_TEST_SIZES,
|
|
OCL_PERF_ENUM(std::make_pair<MatType, MatType>(CV_8UC1, CV_8UC1),
|
|
std::make_pair<MatType, MatType>(CV_32FC4, CV_32FC4)),
|
|
OCL_PERF_ENUM(0, 1),
|
|
ReduceMinMaxOp::all()))
|
|
{
|
|
const ReduceMinMaxParams params = GetParam();
|
|
const std::pair<MatType, MatType> types = get<1>(params);
|
|
const int stype = types.first, dtype = types.second,
|
|
dim = get<2>(params), op = get<3>(params);
|
|
const Size srcSize = get<0>(params),
|
|
dstSize(dim == 0 ? srcSize.width : 1, dim == 0 ? 1 : srcSize.height);
|
|
const double eps = CV_MAT_DEPTH(dtype) <= CV_32S ? 1 : 1e-5;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, stype);
|
|
checkDeviceMaxMemoryAllocSize(srcSize, dtype);
|
|
|
|
UMat src(srcSize, stype), dst(dstSize, dtype);
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::reduce(src, dst, dim, op, dtype);
|
|
|
|
SANITY_CHECK(dst, eps);
|
|
}
|
|
|
|
CV_ENUM(ReduceAccOp, CV_REDUCE_SUM, CV_REDUCE_AVG)
|
|
|
|
typedef tuple<Size, std::pair<MatType, MatType>, int, ReduceAccOp> ReduceAccParams;
|
|
typedef TestBaseWithParam<ReduceAccParams> ReduceAccFixture;
|
|
|
|
OCL_PERF_TEST_P(ReduceAccFixture, Reduce,
|
|
::testing::Combine(OCL_TEST_SIZES,
|
|
OCL_PERF_ENUM(std::make_pair<MatType, MatType>(CV_8UC4, CV_32SC4),
|
|
std::make_pair<MatType, MatType>(CV_32FC1, CV_32FC1)),
|
|
OCL_PERF_ENUM(0, 1),
|
|
ReduceAccOp::all()))
|
|
{
|
|
const ReduceAccParams params = GetParam();
|
|
const std::pair<MatType, MatType> types = get<1>(params);
|
|
const int stype = types.first, dtype = types.second,
|
|
dim = get<2>(params), op = get<3>(params);
|
|
const Size srcSize = get<0>(params),
|
|
dstSize(dim == 0 ? srcSize.width : 1, dim == 0 ? 1 : srcSize.height);
|
|
const double eps = CV_MAT_DEPTH(dtype) <= CV_32S ? 1 : 3e-4;
|
|
|
|
checkDeviceMaxMemoryAllocSize(srcSize, stype);
|
|
checkDeviceMaxMemoryAllocSize(srcSize, dtype);
|
|
|
|
UMat src(srcSize, stype), dst(dstSize, dtype);
|
|
declare.in(src, WARMUP_RNG).out(dst);
|
|
|
|
OCL_TEST_CYCLE() cv::reduce(src, dst, dim, op, dtype);
|
|
|
|
SANITY_CHECK(dst, eps);
|
|
}
|
|
|
|
} } // namespace cvtest::ocl
|
|
|
|
#endif // HAVE_OPENCL
|