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96500af6
编写于
9月 14, 2017
作者:
Y
Yibing Liu
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
add rank_loss operator
上级
8778957c
变更
4
隐藏空白更改
内联
并排
Showing
4 changed file
with
216 addition
and
0 deletion
+216
-0
paddle/operators/rank_loss_op.cc
paddle/operators/rank_loss_op.cc
+103
-0
paddle/operators/rank_loss_op.cu
paddle/operators/rank_loss_op.cu
+22
-0
paddle/operators/rank_loss_op.h
paddle/operators/rank_loss_op.h
+90
-0
paddle/pybind/pybind.cc
paddle/pybind/pybind.cc
+1
-0
未找到文件。
paddle/operators/rank_loss_op.cc
0 → 100644
浏览文件 @
96500af6
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserve.
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 "paddle/operators/rank_loss_op.h"
namespace
paddle
{
namespace
operators
{
class
RankLossOp
:
public
framework
::
OperatorWithKernel
{
public:
RankLossOp
(
const
std
::
string
&
type
,
const
framework
::
VariableNameMap
&
inputs
,
const
framework
::
VariableNameMap
&
outputs
,
const
framework
::
AttributeMap
&
attrs
)
:
OperatorWithKernel
(
type
,
inputs
,
outputs
,
attrs
)
{}
protected:
void
InferShape
(
const
framework
::
InferShapeContext
&
ctx
)
const
override
{
// input check
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"P"
),
"Input(P) shouldn't be null"
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Oi"
),
"Input(Oi) shouldn't be null"
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Oj"
),
"Input(Oj) shouldn't be null"
);
auto
p_dims
=
ctx
.
Input
<
framework
::
Tensor
>
(
"P"
)
->
dims
();
auto
oi_dims
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oi"
)
->
dims
();
auto
oj_dims
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oj"
)
->
dims
();
PADDLE_ENFORCE_EQ
(
oi_dims
,
oj_dims
,
"Input(Oi) and Input(Oj) must have the same size"
);
PADDLE_ENFORCE_EQ
(
p_dims
,
oi_dims
,
"Input(P) must have the same size with Input(Oi) & Input(Oj)"
);
ctx
.
Output
<
framework
::
Tensor
>
(
"Out"
)
->
Resize
(
p_dims
);
}
};
class
RankLossOpMaker
:
public
framework
::
OpProtoAndCheckerMaker
{
public:
RankLossOpMaker
(
framework
::
OpProto
*
proto
,
framework
::
OpAttrChecker
*
op_checker
)
:
OpProtoAndCheckerMaker
(
proto
,
op_checker
)
{
AddInput
(
"P"
,
"The first input of RankLoss operator."
);
AddInput
(
"Oi"
,
"The second input of RankLoss operator."
);
AddInput
(
"Oj"
,
"The third input of RankLoss operator."
);
AddOutput
(
"Out"
,
"The output tensor of RankLoss operator."
);
AddComment
(
R"DOC(RankLoss operator
A rank loss operator for learning to rank (LTR) task. This operator contains
three inputs: P, Oi, and Oj, and the rank cost can be expressed as
\f[
C_{i,j} = -\tilde{P_{ij}} * o_{i,j} + log(1 + e^{o_{i,j}}) \\
o_{i,j} = o_i - o_j \\
\tilde{P_{i,j}} = \left \{0, 0.5, 1 \right \} \ or \ \left \{0, 1 \right \}
\f]
[1]. Chris Burges, Tal Shaked, Erin Renshaw, et al. Learning to
Rank useing Gradient Descent.
)DOC"
);
}
};
class
RankLossGradOp
:
public
framework
::
OperatorWithKernel
{
public:
RankLossGradOp
(
const
std
::
string
&
type
,
const
framework
::
VariableNameMap
&
inputs
,
const
framework
::
VariableNameMap
&
outputs
,
const
framework
::
AttributeMap
&
attrs
)
:
OperatorWithKernel
(
type
,
inputs
,
outputs
,
attrs
)
{}
protected:
void
InferShape
(
const
framework
::
InferShapeContext
&
ctx
)
const
override
{
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"P"
),
"Input(P) shouldn't be null."
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Oi"
),
"Input(Oi) shouldn't be null."
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
"Oj"
),
"Input(Oj) shouldn't be null."
);
PADDLE_ENFORCE_NOT_NULL
(
ctx
.
InputVar
(
framework
::
GradVarName
(
"Out"
)),
"Input(Out@GRAD) shouldn't be null."
);
auto
dims
=
ctx
.
Input
<
framework
::
Tensor
>
(
"P"
)
->
dims
();
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"P"
))
->
Resize
(
dims
);
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"Oi"
))
->
Resize
(
dims
);
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"Oj"
))
->
Resize
(
dims
);
}
};
}
// namespace operators
}
// namespace paddle
namespace
ops
=
paddle
::
operators
;
REGISTER_OP
(
rank_loss
,
ops
::
RankLossOp
,
ops
::
RankLossOpMaker
,
rank_loss_grad
,
ops
::
RankLossGradOp
);
REGISTER_OP_CPU_KERNEL
(
rank_loss
,
ops
::
RankLossKernel
<
paddle
::
platform
::
CPUPlace
,
float
>
);
REGISTER_OP_CPU_KERNEL
(
rank_loss_grad
,
ops
::
RankLossGradKernel
<
paddle
::
platform
::
CPUPlace
,
float
>
);
paddle/operators/rank_loss_op.cu
0 → 100644
浏览文件 @
96500af6
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserve.
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 "paddle/operators/rank_loss_op.h"
REGISTER_OP_GPU_KERNEL
(
rank_loss
,
paddle
::
operators
::
RankLossKernel
<
paddle
::
platform
::
GPUPlace
,
float
>
);
REGISTER_OP_GPU_KERNEL
(
rank_loss_grad
,
paddle
::
operators
::
RankLossGradKernel
<
paddle
::
platform
::
GPUPlace
,
float
>
);
paddle/operators/rank_loss_op.h
0 → 100644
浏览文件 @
96500af6
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserve.
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. */
#pragma once
#include "paddle/framework/eigen.h"
#include "paddle/framework/op_registry.h"
namespace
paddle
{
namespace
operators
{
template
<
typename
Place
,
typename
T
>
class
RankLossKernel
:
public
framework
::
OpKernel
{
public:
void
Compute
(
const
framework
::
ExecutionContext
&
ctx
)
const
{
auto
*
out
=
ctx
.
Output
<
framework
::
Tensor
>
(
"Out"
);
auto
*
p_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"P"
);
auto
*
oi_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oi"
);
auto
*
oj_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oj"
);
out
->
mutable_data
<
T
>
(
ctx
.
GetPlace
());
auto
&
dev
=
ctx
.
GetEigenDevice
<
Place
>
();
auto
out_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
out
);
auto
p_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
p_t
);
auto
oi_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
oi_t
);
auto
oj_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
oj_t
);
framework
::
Tensor
o_t
;
o_t
.
Resize
(
oi_t
->
dims
());
o_t
.
mutable_data
<
T
>
(
ctx
.
GetPlace
());
auto
o_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
o_t
);
o_eig
.
device
(
dev
)
=
oi_eig
-
oj_eig
;
out_eig
.
device
(
dev
)
=
(
1.
+
(
o_eig
).
exp
()).
log
()
-
p_eig
*
o_eig
;
}
};
template
<
typename
Place
,
typename
T
>
class
RankLossGradKernel
:
public
framework
::
OpKernel
{
public:
void
Compute
(
const
framework
::
ExecutionContext
&
ctx
)
const
{
auto
*
d_oi
=
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"Oi"
));
auto
*
d_oj
=
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"Oj"
));
auto
*
d_p
=
ctx
.
Output
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"P"
));
auto
*
d_out
=
ctx
.
Input
<
framework
::
Tensor
>
(
framework
::
GradVarName
(
"Out"
));
auto
*
p_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"P"
);
auto
*
oi_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oi"
);
auto
*
oj_t
=
ctx
.
Input
<
framework
::
Tensor
>
(
"Oj"
);
d_oi
->
mutable_data
<
T
>
(
ctx
.
GetPlace
());
d_oj
->
mutable_data
<
T
>
(
ctx
.
GetPlace
());
d_p
->
mutable_data
<
T
>
(
ctx
.
GetPlace
());
auto
&
dev
=
ctx
.
GetEigenDevice
<
Place
>
();
auto
d_out_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
d_out
);
auto
p_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
p_t
);
auto
oi_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
oi_t
);
auto
oj_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
oj_t
);
auto
d_oi_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
d_oi
);
auto
d_oj_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
*
d_oj
);
framework
::
Tensor
o_t
;
o_t
.
Resize
(
oi_t
->
dims
());
o_t
.
mutable_data
<
T
>
(
ctx
.
GetPlace
());
auto
o_eig
=
framework
::
EigenVector
<
T
>::
Flatten
(
o_t
);
o_eig
.
device
(
dev
)
=
oi_eig
-
oj_eig
;
// dOi & dOj
d_oi_eig
.
device
(
dev
)
=
d_out_eig
*
(
o_eig
.
exp
()
/
(
1.
+
o_eig
.
exp
())
-
p_eig
);
d_oj_eig
.
device
(
dev
)
=
-
d_oi_eig
;
// dP
framework
::
EigenVector
<
T
>::
Flatten
(
*
d_p
).
device
(
dev
)
=
-
o_eig
;
}
};
}
// namespace operators
}
// namespace paddle
paddle/pybind/pybind.cc
浏览文件 @
96500af6
...
...
@@ -56,6 +56,7 @@ USE_OP(top_k);
USE_OP
(
squared_l2_distance
);
USE_OP
(
sum
);
USE_OP
(
reshape
);
USE_OP
(
rank_loss
);
namespace
paddle
{
namespace
framework
{
...
...
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