91 lines
3.5 KiB
C++
91 lines
3.5 KiB
C++
//*****************************************************************************
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// Copyright 2017-2020 Intel Corporation
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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 <iostream>
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#include <mkldnn.hpp>
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#include <vector>
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#include "gtest/gtest.h"
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static int tensor_volume(const mkldnn::memory::dims& t)
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{
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int x = 1;
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for (const auto i : t)
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x *= i;
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return x;
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}
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void test()
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{
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using namespace mkldnn;
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auto cpu_engine = engine(engine::cpu, 0);
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const int mb = 2;
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const int groups = 2;
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memory::dims input_tz = {mb, 256, 13, 13};
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memory::dims weights_tz = {groups, 384 / groups, 256 / groups, 3, 3};
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memory::dims bias_tz = {384};
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memory::dims strides = {1, 1};
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memory::dims padding = {0, 0};
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memory::dims output_tz = {
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mb,
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384,
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(input_tz[2] + 2 * padding[0] - weights_tz[3]) / strides[0] + 1,
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(input_tz[3] + 2 * padding[1] - weights_tz[4]) / strides[1] + 1,
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};
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std::vector<float> input(tensor_volume(input_tz), .0f);
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std::vector<float> weights(tensor_volume(weights_tz), .0f);
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std::vector<float> bias(tensor_volume(bias_tz), .0f);
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std::vector<float> output(tensor_volume(output_tz), .0f);
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auto c3_src_desc = memory::desc({input_tz}, memory::data_type::f32, memory::format::nchw);
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auto c3_weights_desc =
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memory::desc({weights_tz}, memory::data_type::f32, memory::format::goihw);
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auto c3_bias_desc = memory::desc({bias_tz}, memory::data_type::f32, memory::format::x);
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auto c3_dst_desc = memory::desc({output_tz}, memory::data_type::f32, memory::format::nchw);
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auto c3_src = memory({c3_src_desc, cpu_engine}, input.data());
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auto c3_weights = memory({c3_weights_desc, cpu_engine}, weights.data());
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auto c3_bias = memory({c3_bias_desc, cpu_engine}, bias.data());
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auto c3_dst = memory({c3_dst_desc, cpu_engine}, output.data());
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auto c3 = convolution_forward(
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convolution_forward::primitive_desc(convolution_forward::desc(prop_kind::forward,
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algorithm::convolution_direct,
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c3_src_desc,
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c3_weights_desc,
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c3_bias_desc,
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c3_dst_desc,
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strides,
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padding,
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padding,
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padding_kind::zero),
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cpu_engine),
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c3_src,
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c3_weights,
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c3_bias,
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c3_dst);
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stream(stream::kind::eager).submit({c3}).wait();
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}
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TEST(mkldnn, engine)
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{
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EXPECT_NO_THROW(test());
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}
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