data_transform.cc 5.9 KB
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/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserved.
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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. */

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#include "paddle/fluid/framework/data_transform.h"
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#include "paddle/fluid/framework/data_device_transform.h"
#include "paddle/fluid/framework/data_layout_transform.h"
#include "paddle/fluid/framework/data_type_transform.h"
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namespace paddle {
namespace framework {
class Variable;
}  // namespace framework
}  // namespace paddle

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#ifdef PADDLE_WITH_MKLDNN
#include "paddle/fluid/platform/mkldnn_helper.h"
#endif

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namespace paddle {
namespace framework {

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static void PassTensorData(phi::DenseTensor *from, phi::DenseTensor *to) {
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  to->ShareDataWith(*from);
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  *from = phi::DenseTensor();
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}

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void TransformData(const OpKernelType &expected_kernel_type,
                   const OpKernelType &kernel_type_for_var,
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                   const phi::DenseTensor &input_tensor,
                   phi::DenseTensor *output_tensor) {
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  bool transformed = false;
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  phi::DenseTensor in;
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  in.ShareDataWith(input_tensor);
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  phi::DenseTensor out;
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  const DataLayout lin = kernel_type_for_var.data_layout_;
  const DataLayout lout = expected_kernel_type.data_layout_;
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  // do layout transform
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  if (NeedTransformLayout(lout, lin)) {
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#ifdef PADDLE_WITH_MKLDNN
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    if (lin == DataLayout::ONEDNN || lout == DataLayout::ONEDNN) {
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      PADDLE_ENFORCE_EQ(
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          !(lin == DataLayout::ONEDNN && lout == DataLayout::ONEDNN),
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          true,
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          platform::errors::PreconditionNotMet(
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              "No layout transform needed between two oneDNN OPKernels."));
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      if (lin != DataLayout::ONEDNN && lout == DataLayout::ONEDNN) {
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        // Case1 - transform from Non-ONEDNN OPKernel to ONEDNN OPKernel
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        // Just set layout/format. No real transform occur
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        auto out_format = phi::funcs::OneDNNFormatForSize(
            in.dims().size(), phi::funcs::ToOneDNNFormat(lin));
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        out.ShareDataWith(input_tensor);
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        // For NHWC data we need reshape of tensors as MKL-DNN
        // is expecting NHWC dims description order
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        if (lin == DataLayout::kNHWC || lin == DataLayout::kNDHWC) {
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          phi::funcs::MatchShapeToLayout(&out, lin, lout);
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          // We register only NHWC assuming that model is consistent e.g. either
          // NHWC or NCHW
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          phi::OneDNNContext::tls().set_cur_paddle_data_layout(lin);
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        }
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        dnnl::memory::desc out_mem_desc(
            vectorize(out.dims()),
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            phi::funcs::ToOneDNNDataType(in.dtype()),
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            out_format);
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        out.set_mem_desc(out_mem_desc);
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      } else {
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        // Case2 - transfrom from ONEDNN OPKernel to Non-ONEDNN OPKernel
        // Do transform via ONEDNN lib
        PADDLE_ENFORCE(
            kernel_type_for_var.data_layout_ == DataLayout::ONEDNN &&
                expected_kernel_type.data_layout_ != DataLayout::ONEDNN,
            platform::errors::InvalidArgument(
                "TransDataLayoutFromOneDNN only supports "
                "transform from ONEDNN to non-ONEDNN"));

        phi::funcs::TransDataLayoutFromOneDNN(
            kernel_type_for_var.data_layout_,
            phi::OneDNNContext::tls().get_cur_paddle_data_layout(),
            in,
            &out,
            expected_kernel_type.place_);
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      }
    } else {
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      // Case3 - transfrom between Non-ONEDNN OPKernels
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      TransDataLayout(kernel_type_for_var, expected_kernel_type, in, &out);
    }
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#else
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    // Case3 - transfrom between Non-ONEDNN OPKernels
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    TransDataLayout(kernel_type_for_var, expected_kernel_type, in, &out);
#endif
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    transformed = true;
    PassTensorData(&out, &in);
  }

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  // do data type transform
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  if (expected_kernel_type.data_type_ != kernel_type_for_var.data_type_) {
    TransDataType(kernel_type_for_var, expected_kernel_type, in, &out);
    transformed = true;
    PassTensorData(&out, &in);
  }

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  // do device transform
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  if (!platform::is_same_place(kernel_type_for_var.place_,
                               expected_kernel_type.place_)) {
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    TransDataDevice(in, expected_kernel_type.place_, &out);
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    transformed = true;
    PassTensorData(&out, &in);
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  }
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  PADDLE_ENFORCE_EQ(
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      transformed,
      true,
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      platform::errors::PreconditionNotMet(
          "No transform is applied for the data needs to be transformed."));
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  // get output data
  output_tensor->ShareDataWith(in);
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}

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void SetTensorToVariable(const Variable &in_var,
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                         const phi::DenseTensor &tensor,
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                         Variable *out_var) {
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  if (in_var.IsType<phi::DenseTensor>()) {
    auto &in_lod_tensor = in_var.Get<phi::DenseTensor>();
    auto *tran_lod_tensor = out_var->GetMutable<phi::DenseTensor>();
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    tran_lod_tensor->set_lod(in_lod_tensor.lod());
    tran_lod_tensor->set_layout(in_lod_tensor.layout());
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#ifdef PADDLE_WITH_MKLDNN
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    tran_lod_tensor->set_mem_desc(in_lod_tensor.mem_desc());
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#endif
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    tran_lod_tensor->ShareDataWith(tensor);
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  } else if (in_var.IsType<phi::SelectedRows>()) {
    auto &in_selected_rows = in_var.Get<phi::SelectedRows>();
    auto *trans_selected_rows = out_var->GetMutable<phi::SelectedRows>();
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    trans_selected_rows->set_height(in_selected_rows.height());
    trans_selected_rows->set_rows(in_selected_rows.rows());
    trans_selected_rows->mutable_value()->ShareDataWith(tensor);
  } else {
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    PADDLE_THROW(platform::errors::Unavailable(
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        "Unsupported variable type, only supports phi::DenseTensor or "
        "SelectedRows, "
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        "but the input variable type is %s.",
        ToTypeName(in_var.Type())));
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  }
}

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}  // namespace framework
}  // namespace paddle