166 lines
5.5 KiB
C++
166 lines
5.5 KiB
C++
// Copyright (c) 2022 PaddlePaddle Authors. All Rights Reserved.
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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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#pragma once
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#include "paddle/phi/core/dense_tensor.h"
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#include "paddle/phi/infermeta/binary.h"
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namespace phi {
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template <typename T, typename Context>
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void FMaxKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void FMinKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void MaximumKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void MinimumKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void RemainderKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void FloorDivideKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void TruncDivideKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void ElementwisePowKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void HeavisideKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void CopySignKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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void NextafterKernel(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y,
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DenseTensor* out);
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template <typename T, typename Context>
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DenseTensor Maximum(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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MaximumKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor Minimum(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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MinimumKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor Remainder(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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RemainderKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor FloorDivide(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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FloorDivideKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor TruncDivide(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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TruncDivideKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor Heaviside(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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HeavisideKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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template <typename T, typename Context>
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DenseTensor ElementwisePow(const Context& dev_ctx,
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const DenseTensor& x,
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const DenseTensor& y) {
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DenseTensor dense_out;
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MetaTensor meta_out(&dense_out);
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ElementwiseInferMeta(x, y, &meta_out);
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ElementwisePowKernel<T, Context>(dev_ctx, x, y, &dense_out);
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return dense_out;
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}
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} // namespace phi
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