/* Copyright (c) 2021 PaddlePaddle Authors. All Rights Reserved. Licensed under the Apache License, Version 2.0 (the "License"); you may not use this file except in compliance with the License. You may obtain a copy of the License at http://www.apache.org/licenses/LICENSE-2.0 Unless required by applicable law or agreed to in writing, software distributed under the License is distributed on an "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the License for the specific language governing permissions and limitations under the License. */ #include #include #include "paddle/pten/include/math.h" #include "paddle/pten/api/lib/utils/allocator.h" #include "paddle/pten/core/dense_tensor.h" #include "paddle/pten/core/kernel_registry.h" PT_DECLARE_MODULE(MathCPU); #if defined(PADDLE_WITH_CUDA) || defined(PADDLE_WITH_HIP) PT_DECLARE_MODULE(MathCUDA); #endif namespace framework = paddle::framework; using DDim = paddle::framework::DDim; TEST(DEV_API, scale) { // 1. create tensor const auto alloc = std::make_shared( paddle::platform::CPUPlace()); pten::DenseTensor dense_x(alloc, pten::DenseTensorMeta(pten::DataType::FLOAT32, framework::make_ddim({3, 4}), pten::DataLayout::NCHW)); auto* dense_x_data = dense_x.mutable_data(); for (size_t i = 0; i < 12; ++i) { dense_x_data[i] = i * 1.0; } float scale = 2; float bias = 1; bool bias_after_scale = true; paddle::platform::DeviceContextPool& pool = paddle::platform::DeviceContextPool::Instance(); auto* dev_ctx = pool.Get(paddle::platform::CPUPlace()); // 2. test API auto out = pten::Scale( *(static_cast(dev_ctx)), dense_x, scale, bias, bias_after_scale); // 3. check result ASSERT_EQ(out.dims().size(), 2); ASSERT_EQ(out.numel(), 12); ASSERT_EQ(out.meta().type, pten::DataType::FLOAT32); ASSERT_EQ(out.meta().layout, pten::DataLayout::NCHW); auto expect_result = 23; auto actual_result = out.data()[11]; ASSERT_NEAR(expect_result, actual_result, 1e-6f); } TEST(DEV_API, scale_host) { // 1. create tensor const auto alloc = std::make_shared( paddle::platform::CPUPlace()); pten::DenseTensor dense_x(alloc, pten::DenseTensorMeta(pten::DataType::FLOAT32, framework::make_ddim({3, 4}), pten::DataLayout::NCHW)); auto* dense_x_data = dense_x.mutable_data(); for (size_t i = 0; i < 12; ++i) { dense_x_data[i] = i * 1.0; } const auto alloc2 = std::make_shared( paddle::platform::CPUPlace()); pten::DenseTensor scale(alloc2, pten::DenseTensorMeta(pten::DataType::FLOAT32, framework::make_ddim({1}), pten::DataLayout::NCHW)); scale.mutable_data()[0] = 2; float bias = 1; bool bias_after_scale = true; paddle::platform::DeviceContextPool& pool = paddle::platform::DeviceContextPool::Instance(); auto* dev_ctx = pool.Get(paddle::platform::CPUPlace()); // 2. test API auto out = pten::Scale( *(static_cast(dev_ctx)), dense_x, scale, bias, bias_after_scale); // 3. check result ASSERT_EQ(out.dims().size(), 2); ASSERT_EQ(out.numel(), 12); ASSERT_EQ(out.meta().type, pten::DataType::FLOAT32); ASSERT_EQ(out.meta().layout, pten::DataLayout::NCHW); auto expect_result = 23; auto actual_result = out.data()[11]; ASSERT_NEAR(expect_result, actual_result, 1e-6f); }