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156 lines
4.8 KiB
156 lines
4.8 KiB
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserve.
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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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http://www.apache.org/licenses/LICENSE-2.0
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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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#include "paddle/operators/sequence_expand_op.h"
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namespace paddle {
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namespace operators {
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using framework::Tensor;
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class SequenceExpandOp : public framework::OperatorWithKernel {
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public:
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using framework::OperatorWithKernel::OperatorWithKernel;
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protected:
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void InferShape(framework::InferShapeContext* ctx) const override {
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PADDLE_ENFORCE(ctx->HasInput("X"));
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PADDLE_ENFORCE(ctx->HasOutput("Out"));
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PADDLE_ENFORCE(ctx->HasInput("Y"));
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framework::DDim out_dim;
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out_dim = ctx->GetInputDim("Y");
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ctx->ShareLoD("Y", "Out");
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ctx->SetOutputDim("Out", out_dim);
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}
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};
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class SequenceExpandOpMaker : public framework::OpProtoAndCheckerMaker {
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public:
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SequenceExpandOpMaker(OpProto* proto, OpAttrChecker* op_checker)
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: OpProtoAndCheckerMaker(proto, op_checker) {
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AddInput("X",
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"(Tensor or LoDTensor) The input(X) of this operator can be a "
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"LoDTensor or a base Tensor.");
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AddInput("Y",
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"(LoDTensor)The reference input(Y) of sequence_expand op."
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"It must be a LoDTensor with k-level(k>0)."
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"The input(X) will be expanded according to LOD of input(Y)."
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"The element numbers of last level in input(Y) "
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"must be equal to dims[0] of input(X).");
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AddOutput("Out",
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"(LodTensor)The output of sequence_expand op."
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"The lod of output will be as same as input(Y)'s lod.");
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AddComment(R"DOC(
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Sequence Expand Operator.
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This operator expands input(X) according to LOD of input(Y).
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Following are cases to better explain how this works:
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Case 1:
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Given 2-level a LoDTensor input(X)
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X.lod = [[0, 2, 3],
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[0, 1, 3, 4]]
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X.data = [a, b, c, d]
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X.dims = [4, 1]
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and input(Y)
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Y.lod = [[0, 2, 4],
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[0, 3, 6, 7, 8]]
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with condition len(Y.lod[-1]) -1 == X.dims[0]
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then we get 2-level LoDTensor
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Out.lod = [[0, 2, 4],
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[0, 3, 6, 7, 8]]
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Out.data = [a, a, a, b, b, b, c, d]
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Out.dims = [8, 1]
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Case 2:
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Given a 0-level LoDTensor input(X)
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X.data = [a, b, c]
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X.lod = NULL
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X.dims = [3, 1]
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and input(Y)
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Y.lod = [[0, 2, 3, 6]]
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with condition len(Y.lod[-1]) -1 == X.dims[0]
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then we get 1-level LoDTensor
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Out.lod = [[0, 2, 3, 6]]
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Out.data = [a, a, b, c, c, c]
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Out.dims = [6, 1]
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Case 3:
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Given a 0-level LoDTensor input(X)
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X.data = [[a, b], [c, d], [e, f]]
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X.lod = NULL
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X.dims = [3, 2]
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and input(Y)
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Y.lod = [[0, 2, 3, 6]]
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with condition len(Y.lod[-1]) -1 == X.dims[0]
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then we get 1-level LoDTensor
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Out.lod = [[0, 2, 3, 6]]
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Out.data = [[a,b], [a,b] [c,d], [e, f], [e, f], [e, f]]
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Out.dims = [6, 2]
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Case 4:
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Given 2-level a LoDTensor input(X)
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X.lod = [[0, 2, 3],
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[0, 1, 3, 4]]
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X.data = [a, b, c, d]
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X.dims = [4, 1]
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and input(Y)
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Y.lod = [[0, 2, 4],
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[0, 3, 6, 6, 8]]
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with condition len(Y.lod[-1]) -1 == X.dims[0]
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then we get 2-level LoDTensor
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Out.lod = [[0, 2, 4],
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[0, 3, 6, 6, 8]]
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Out.data = [a, a, a, b, b, b, d, d]
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Out.dims = [8, 1]
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)DOC");
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}
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};
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class SequenceExpandOpGrad : public framework::OperatorWithKernel {
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public:
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using framework::OperatorWithKernel::OperatorWithKernel;
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protected:
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void InferShape(framework::InferShapeContext* ctx) const override {
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PADDLE_ENFORCE(ctx->HasInput("X"));
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PADDLE_ENFORCE(ctx->HasInput("Out"));
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PADDLE_ENFORCE(ctx->HasInput(framework::GradVarName("Out")),
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"The input(Out@GRAD) should not be null");
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auto x_dims = ctx->GetInputDim("X");
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auto x_grad_name = framework::GradVarName("X");
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if (ctx->HasOutput(x_grad_name)) {
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ctx->SetOutputDim(x_grad_name, x_dims);
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}
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}
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};
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} // namespace operators
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} // namespace paddle
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namespace ops = paddle::operators;
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REGISTER_OP(sequence_expand, ops::SequenceExpandOp, ops::SequenceExpandOpMaker,
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sequence_expand_grad, ops::SequenceExpandOpGrad);
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REGISTER_OP_CPU_KERNEL(
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sequence_expand,
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ops::SequenceExpandKernel<paddle::platform::CPUDeviceContext, float>);
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REGISTER_OP_CPU_KERNEL(
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sequence_expand_grad,
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ops::SequenceExpandGradKernel<paddle::platform::CPUDeviceContext, float>);
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