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8a645685
编写于
3月 15, 2018
作者:
W
wanghaoshuang
浏览文件
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电子邮件补丁
差异文件
Add sum accumulator with window for model average
上级
a4b0e4a1
变更
3
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3 changed file
with
329 addition
and
0 deletion
+329
-0
paddle/fluid/operators/average_accumulates_op.cc
paddle/fluid/operators/average_accumulates_op.cc
+152
-0
paddle/fluid/operators/average_accumulates_op.cu
paddle/fluid/operators/average_accumulates_op.cu
+59
-0
paddle/fluid/operators/average_accumulates_op.h
paddle/fluid/operators/average_accumulates_op.h
+118
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未找到文件。
paddle/fluid/operators/average_accumulates_op.cc
0 → 100644
浏览文件 @
8a645685
/* Copyright (c) 2016 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 "paddle/fluid/operators/average_accumulates_op.h"
namespace
paddle
{
namespace
operators
{
template
<
>
void
getAccumulators
<
paddle
::
platform
::
CPUDeviceContext
>
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
&
num_updates_
,
int64_t
&
num_accumulates_
,
int64_t
&
old_num_accumulates_
)
{
auto
*
in_old_num_accumulates
=
ctx
.
Input
<
Tensor
>
(
"old_num_accumulates"
);
auto
*
in_num_accumulates
=
ctx
.
Input
<
Tensor
>
(
"num_accumulates"
);
auto
*
in_num_updates
=
ctx
.
Input
<
Tensor
>
(
"num_updates"
);
old_num_accumulates_
=
in_old_num_accumulates
->
data
<
int64_t
>
()[
0
];
num_accumulates_
=
in_num_accumulates
->
data
<
int64_t
>
()[
0
];
num_updates_
=
in_num_updates
->
data
<
int64_t
>
()[
0
];
}
template
<
>
void
setAccumulators
<
paddle
::
platform
::
CPUDeviceContext
>
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
num_updates_
,
int64_t
num_accumulates_
,
int64_t
old_num_accumulates_
)
{
auto
*
out_old_num_accumulates
=
ctx
.
Output
<
Tensor
>
(
"old_num_accumulates"
);
auto
*
out_num_accumulates
=
ctx
.
Output
<
Tensor
>
(
"num_accumulates"
);
auto
*
out_num_updates
=
ctx
.
Output
<
Tensor
>
(
"num_updates"
);
out_old_num_accumulates
->
data
<
int64_t
>
()[
0
]
=
old_num_accumulates_
;
out_num_accumulates
->
data
<
int64_t
>
()[
0
]
=
num_accumulates_
;
out_num_updates
->
data
<
int64_t
>
()[
0
]
=
num_updates_
;
}
class
AverageAccumulatesOp
:
public
framework
::
OperatorWithKernel
{
public:
using
framework
::
OperatorWithKernel
::
OperatorWithKernel
;
void
InferShape
(
framework
::
InferShapeContext
*
ctx
)
const
override
{
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"Param"
),
"Input (Param) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"Grad"
),
"Input (Grad) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"sum_1"
),
"Input (sum_1) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"sum_2"
),
"Input (sum_2) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"sum_3"
),
"Input (sum_3) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"num_accumulates"
),
"Input (num_accumulates) of average_accumulates op should "
"not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"old_num_accumulates"
),
"Input (old_num_accumulates) of average_accumulates op "
"should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasInput
(
"num_updates"
),
"Input (num_updates) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"sum_1"
),
"Output (sum_1) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"sum_2"
),
"Output (sum_2) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"sum_3"
),
"Output (sum_3) of average_accumulates op should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"num_accumulates"
),
"Output (num_accumulates) of average_accumulates op should "
"not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"old_num_accumulates"
),
"Output (old_num_accumulates) of average_accumulates op "
"should not be null."
);
PADDLE_ENFORCE
(
ctx
->
HasOutput
(
"num_updates"
),
"Output (num_updates) of average_accumulates op should not be null."
);
auto
in_dim
=
ctx
->
GetInputDim
(
"Param"
);
ctx
->
SetOutputDim
(
"sum_1"
,
in_dim
);
ctx
->
SetOutputDim
(
"sum_2"
,
in_dim
);
ctx
->
SetOutputDim
(
"sum_3"
,
in_dim
);
ctx
->
SetOutputDim
(
"num_accumulates"
,
{
1
});
ctx
->
SetOutputDim
(
"old_num_accumulates"
,
{
1
});
ctx
->
SetOutputDim
(
"num_updates"
,
{
1
});
}
protected:
framework
::
OpKernelType
GetExpectedKernelType
(
const
framework
::
ExecutionContext
&
ctx
)
const
override
{
return
framework
::
OpKernelType
(
framework
::
ToDataType
(
ctx
.
Input
<
Tensor
>
(
"Param"
)
->
type
()),
ctx
.
GetPlace
());
}
};
class
AverageAccumulatesOpMaker
:
public
framework
::
OpProtoAndCheckerMaker
{
public:
AverageAccumulatesOpMaker
(
OpProto
*
proto
,
OpAttrChecker
*
op_checker
)
:
OpProtoAndCheckerMaker
(
proto
,
op_checker
)
{
AddInput
(
"sum_1"
,
""
);
AddInput
(
"sum_2"
,
""
);
AddInput
(
"sum_3"
,
""
);
AddInput
(
"num_accumulates"
,
""
);
AddInput
(
"old_num_accumulates"
,
""
);
AddInput
(
"num_updates"
,
""
);
AddOutput
(
"sum_1"
,
""
);
AddOutput
(
"sum_2"
,
""
);
AddOutput
(
"sum_3"
,
""
);
AddOutput
(
"num_accumulates"
,
""
);
AddOutput
(
"old_num_accumulates"
,
""
);
AddOutput
(
"num_updates"
,
""
);
AddAttr
<
float
>
(
""
,
"average_window"
);
AddAttr
<
float
>
(
""
,
"max_average_window"
);
AddAttr
<
float
>
(
""
,
"min_average_window"
);
AddComment
(
R"DOC(
AverageAccumulates Operator.
)DOC"
);
}
};
}
// namespace operators
}
// namespace paddle
namespace
ops
=
paddle
::
operators
;
REGISTER_OPERATOR
(
average_accumulate
,
ops
::
AverageAccumulatesOp
,
ops
::
AverageAccumulatesOpMaker
,
paddle
::
framework
::
EmptyGradOpMaker
);
REGISTER_OP_CPU_KERNEL
(
average_accumulate
,
ops
::
AverageAccumulatesKernel
<
paddle
::
platform
::
CPUDeviceContext
,
float
>
,
ops
::
AverageAccumulatesKernel
<
paddle
::
platform
::
CPUDeviceContext
,
double
>
);
paddle/fluid/operators/average_accumulates_op.cu
0 → 100644
浏览文件 @
8a645685
/* Copyright (c) 2016 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 "paddle/fluid/operators/average_accumulates_op.h"
#include "paddle/fluid/platform/gpu_info.h"
namespace
paddle
{
namespace
operators
{
template
<
>
void
getAccumulators
<
paddle
::
platform
::
CUDADeviceContext
>
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
&
num_updates_
,
int64_t
&
num_accumulates_
,
int64_t
&
old_num_accumulates_
)
{
auto
*
in_old_num_accumulates
=
ctx
.
Input
<
Tensor
>
(
"old_num_accumulates"
);
auto
*
in_num_accumulates
=
ctx
.
Input
<
Tensor
>
(
"num_accumulates"
);
auto
*
in_num_updates
=
ctx
.
Input
<
Tensor
>
(
"num_updates"
);
memory
::
Copy
(
platform
::
CPUPlace
(),
&
old_num_accumulates_
,
platform
::
CUDAPlace
(),
in_old_num_accumulates
->
data
<
int64_t
>
(),
sizeof
(
int64_t
));
memory
::
Copy
(
platform
::
CPUPlace
(),
&
num_accumulates_
,
platform
::
CUDAPlace
(),
in_old_num_accumulates
->
data
<
int64_t
>
(),
sizeof
(
int64_t
));
memory
::
Copy
(
platform
::
CPUPlace
(),
&
num_updates_
,
platform
::
CUDAPlace
(),
in_num_updates
->
data
<
int64_t
>
(),
sizeof
(
int64_t
));
}
template
<
>
void
setAccumulators
<
paddle
::
platform
::
CUDADeviceContext
>
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
num_updates_
,
int64_t
num_accumulates_
,
int64_t
old_num_accumulates_
)
{
auto
*
out_old_num_accumulates
=
ctx
.
Output
<
Tensor
>
(
"old_num_accumulates"
);
auto
*
out_num_accumulates
=
ctx
.
Output
<
Tensor
>
(
"num_accumulates"
);
auto
*
out_num_updates
=
ctx
.
Output
<
Tensor
>
(
"num_updates"
);
memory
::
Copy
(
platform
::
CUDAPlace
(),
out_old_num_accumulates
->
data
<
int64_t
>
(),
platform
::
CPUPlace
(),
&
old_num_accumulates_
,
sizeof
(
int64_t
));
memory
::
Copy
(
platform
::
CUDAPlace
(),
out_num_accumulates
->
data
<
int64_t
>
(),
platform
::
CPUPlace
(),
&
num_accumulates_
,
sizeof
(
int64_t
));
memory
::
Copy
(
platform
::
CUDAPlace
(),
out_num_updates
->
data
<
int64_t
>
(),
platform
::
CPUPlace
(),
&
num_updates_
,
sizeof
(
int64_t
));
}
}
}
namespace
ops
=
paddle
::
operators
;
REGISTER_OP_CUDA_KERNEL
(
average_accumulate
,
ops
::
AverageAccumulatesKernel
<
paddle
::
platform
::
CUDADeviceContext
,
float
>
,
ops
::
AverageAccumulatesKernel
<
paddle
::
platform
::
CUDADeviceContext
,
double
>
);
paddle/fluid/operators/average_accumulates_op.h
0 → 100644
浏览文件 @
8a645685
/* Copyright (c) 2018 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. */
#pragma once
#include <algorithm>
#include "paddle/fluid/framework/eigen.h"
#include "paddle/fluid/framework/op_registry.h"
#include "paddle/fluid/operators/math/math_function.h"
namespace
paddle
{
namespace
operators
{
using
Tensor
=
framework
::
Tensor
;
template
<
typename
T
,
int
MajorType
=
Eigen
::
RowMajor
,
typename
IndexType
=
Eigen
::
DenseIndex
>
using
EigenVector
=
framework
::
EigenVector
<
T
,
MajorType
,
IndexType
>
;
template
<
typename
DeviceContext
>
void
getAccumulators
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
&
num_updates_
,
int64_t
&
num_accumulates_
,
int64_t
&
old_num_accumulates_
);
template
<
typename
DeviceContext
>
void
setAccumulators
(
const
framework
::
ExecutionContext
&
ctx
,
int64_t
num_updates_
,
int64_t
num_accumulates_
,
int64_t
old_num_accumulates_
);
template
<
typename
DeviceContext
,
typename
T
>
class
AverageAccumulatesKernel
:
public
framework
::
OpKernel
<
T
>
{
public:
void
Compute
(
const
framework
::
ExecutionContext
&
ctx
)
const
override
{
static
const
int64_t
kMaxNumAccumulates
=
16384
;
// accumulators
int64_t
num_updates_
=
0
;
int64_t
num_accumulates_
=
0
;
int64_t
old_num_accumulates_
=
0
;
// attrs
int64_t
min_average_window_
;
int64_t
max_average_window_
;
float
average_window_
;
auto
*
param
=
ctx
.
Input
<
Tensor
>
(
"Param"
);
auto
*
in_sum_1
=
ctx
.
Input
<
Tensor
>
(
"sum_1"
);
auto
*
in_sum_2
=
ctx
.
Input
<
Tensor
>
(
"sum_2"
);
auto
*
in_sum_3
=
ctx
.
Input
<
Tensor
>
(
"sum_3"
);
auto
*
out_sum_1
=
ctx
.
Output
<
Tensor
>
(
"sum_1"
);
auto
*
out_sum_2
=
ctx
.
Output
<
Tensor
>
(
"sum_2"
);
auto
*
out_sum_3
=
ctx
.
Output
<
Tensor
>
(
"sum_3"
);
getAccumulators
<
DeviceContext
>
(
ctx
,
num_updates_
,
num_accumulates_
,
old_num_accumulates_
);
average_window_
=
ctx
.
Attr
<
float
>
(
"average_window"
);
max_average_window_
=
ctx
.
Attr
<
int64_t
>
(
"max_average_window"
);
// default bach number
min_average_window_
=
ctx
.
Attr
<
int64_t
>
(
"min_average_window"
);
// default 10000L
min_average_window_
=
std
::
min
<
int64_t
>
(
min_average_window_
,
max_average_window_
);
auto
param_tensor
=
EigenVector
<
T
>::
Flatten
(
*
param
);
auto
in_sum_1_tensor
=
EigenVector
<
T
>::
Flatten
(
*
in_sum_1
);
auto
in_sum_2_tensor
=
EigenVector
<
T
>::
Flatten
(
*
in_sum_2
);
auto
in_sum_3_tensor
=
EigenVector
<
T
>::
Flatten
(
*
in_sum_3
);
auto
out_sum_1_tensor
=
EigenVector
<
T
>::
Flatten
(
*
out_sum_1
);
auto
out_sum_2_tensor
=
EigenVector
<
T
>::
Flatten
(
*
out_sum_2
);
auto
out_sum_3_tensor
=
EigenVector
<
T
>::
Flatten
(
*
out_sum_3
);
auto
&
place
=
*
ctx
.
template
device_context
<
DeviceContext
>().
eigen_device
();
math
::
SetConstant
<
DeviceContext
,
T
>
constant_functor
;
// start batch
++
num_updates_
;
++
num_accumulates_
;
// update
out_sum_1_tensor
.
device
(
place
)
=
in_sum_1_tensor
+
param_tensor
;
out_sum_2_tensor
.
device
(
place
)
=
in_sum_2_tensor
;
out_sum_3_tensor
.
device
(
place
)
=
in_sum_3_tensor
;
// needSpecialTraversal
if
(
num_updates_
%
kMaxNumAccumulates
==
0
)
{
out_sum_2_tensor
.
device
(
place
)
=
in_sum_2_tensor
+
in_sum_1_tensor
;
constant_functor
(
ctx
.
template
device_context
<
DeviceContext
>(),
out_sum_1
,
0.0
);
}
if
(
num_accumulates_
>=
min_average_window_
&&
num_accumulates_
>=
std
::
min
<
int64_t
>
(
max_average_window_
,
num_updates_
*
average_window_
))
{
out_sum_3_tensor
.
device
(
place
)
=
in_sum_1_tensor
+
in_sum_2_tensor
;
constant_functor
(
ctx
.
template
device_context
<
DeviceContext
>(),
out_sum_1
,
0.0
);
constant_functor
(
ctx
.
template
device_context
<
DeviceContext
>(),
out_sum_2
,
0.0
);
// finishBatch
old_num_accumulates_
=
num_accumulates_
;
num_accumulates_
=
0
;
}
setAccumulators
<
DeviceContext
>
(
ctx
,
num_updates_
,
num_accumulates_
,
old_num_accumulates_
);
}
};
}
// namespace operators
}
// namespace paddle
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