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e1954857
编写于
10月 13, 2017
作者:
T
tensor-tang
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
fix bug: merge grad must before backward act.
and add branch net comparing with cpu result
上级
698071cc
变更
3
显示空白变更内容
内联
并排
Showing
3 changed file
with
147 addition
and
4 deletion
+147
-4
paddle/gserver/layers/MKLDNNLayer.h
paddle/gserver/layers/MKLDNNLayer.h
+37
-4
paddle/trainer/tests/CMakeLists.txt
paddle/trainer/tests/CMakeLists.txt
+7
-0
paddle/trainer/tests/sample_trainer_config_branch_net.conf
paddle/trainer/tests/sample_trainer_config_branch_net.conf
+103
-0
未找到文件。
paddle/gserver/layers/MKLDNNLayer.h
浏览文件 @
e1954857
...
...
@@ -67,8 +67,14 @@ protected:
// merge grad primitive
std
::
shared_ptr
<
mkldnn
::
primitive
>
mergeGrad_
;
std
::
vector
<
mkldnn
::
primitive
>
pipelineMergeGrad_
;
// tmp input argument to save input grad, only used to merge grad
Argument
tmpInArg_
;
// since mkldnn sum do not support different formats:
// can refer to https://github.com/01org/mkl-dnn/issues/134
// so need create reorder manually and save tmp MKLDNNMatrix
MKLDNNMatrixPtr
tmpOutGrad_
;
std
::
shared_ptr
<
mkldnn
::
primitive
>
tmpCvt_
;
public:
explicit
MKLDNNLayer
(
const
LayerConfig
&
config
)
...
...
@@ -148,9 +154,17 @@ public:
if
(
needResetBwd_
)
{
VLOG
(
MKLDNN_BASE
)
<<
getName
()
<<
" reset mkldnn backward"
;
pipelineBwd_
.
clear
();
pipelineMergeGrad_
.
clear
();
mergeGrad_
=
nullptr
;
resetBwd
(
pipelineBwd_
,
inGrad_
,
wgtGrad_
,
biasGrad_
,
outGrad_
);
needResetBwd_
=
false
;
}
// merge grad must before backward activation
if
(
mergeGrad_
)
{
REGISTER_TIMER_INFO
(
"MergeBpGrad"
,
getName
().
c_str
());
stream_
->
submit
(
pipelineMergeGrad_
);
}
{
REGISTER_TIMER_INFO
(
"BpActTimer"
,
getName
().
c_str
());
backwardActivation
();
...
...
@@ -262,6 +276,7 @@ protected:
mkldnn
::
memory
::
primitive_desc
pd
)
{
CHECK
(
outputIsOnlyMKLDNN
())
<<
"do not support mixed with other device yet"
;
mergeGrad_
=
nullptr
;
pipelineMergeGrad_
.
clear
();
out
=
MKLDNNMatrix
::
create
(
output_
.
grad
,
pd
);
if
(
outputMap_
.
size
()
<=
1
)
{
return
;
...
...
@@ -272,6 +287,7 @@ protected:
for
(
auto
it
=
outputMap_
.
begin
();
it
!=
outputMap_
.
end
();
++
it
)
{
MKLDNNMatrixPtr
src
=
std
::
dynamic_pointer_cast
<
MKLDNNMatrix
>
(
it
->
second
->
grad
);
VLOG
(
MKLDNN_BASE
)
<<
getName
()
<<
" has output grad "
<<
it
->
first
;
CHECK
(
src
)
<<
"should be MKLDNNMatrix"
;
auto
srcDims
=
src
->
getDims
();
auto
dstDims
=
out
->
getDims
();
...
...
@@ -283,9 +299,26 @@ protected:
srcs
.
push_back
(
*
src
);
scales
.
push_back
(
1.0
);
}
auto
sumPD
=
mkldnn
::
sum
::
primitive_desc
(
pd
.
desc
(),
scales
,
srcPDs
);
mergeGrad_
.
reset
(
new
mkldnn
::
sum
(
sumPD
,
srcs
,
*
out
));
pipelineBwd_
.
insert
(
pipelineBwd_
.
begin
(),
*
mergeGrad_
);
// TODO(TJ): remove me when mkldnn sum support different formats
for
(
size_t
i
=
1
;
i
<
srcPDs
.
size
();
++
i
)
{
CHECK
(
srcPDs
[
0
]
==
srcPDs
[
i
]);
}
tmpOutGrad_
=
nullptr
;
tmpCvt_
=
nullptr
;
if
(
out
->
getPrimitiveDesc
()
!=
srcPDs
[
0
])
{
tmpOutGrad_
=
MKLDNNMatrix
::
create
(
nullptr
,
srcPDs
[
0
]);
tmpCvt_
=
MKLDNNMatrix
::
createReorder
(
tmpOutGrad_
,
out
);
CHECK
(
tmpCvt_
);
pipelineMergeGrad_
.
push_back
(
*
tmpCvt_
);
}
else
{
tmpOutGrad_
=
out
;
}
auto
sumPD
=
mkldnn
::
sum
::
primitive_desc
(
tmpOutGrad_
->
getMemoryDesc
(),
scales
,
srcPDs
);
mergeGrad_
.
reset
(
new
mkldnn
::
sum
(
sumPD
,
srcs
,
*
tmpOutGrad_
));
pipelineMergeGrad_
.
insert
(
pipelineMergeGrad_
.
begin
(),
*
mergeGrad_
);
}
/**
...
...
@@ -299,7 +332,7 @@ protected:
const
MatrixPtr
&
grad
=
input
->
getOutputMapSize
()
>
1
?
nullptr
:
input
->
getOutput
().
grad
;
in
=
MKLDNNMatrix
::
create
(
grad
,
pd
);
auto
arg
=
input
->
getOutput
(
this
->
getName
());
Argument
&
arg
=
input
->
getOutput
(
this
->
getName
());
arg
.
grad
=
std
::
dynamic_pointer_cast
<
Matrix
>
(
in
);
}
...
...
paddle/trainer/tests/CMakeLists.txt
浏览文件 @
e1954857
...
...
@@ -48,6 +48,13 @@ if(WITH_MKLDNN)
--config_file_b=trainer/tests/sample_trainer_config_simple_net.conf --use_mkldnn_b=False
--use_gpu=False
WORKING_DIRECTORY
${
PADDLE_SOURCE_DIR
}
/paddle/
)
add_test
(
NAME test_CompareMKLDNNandCPU_Banches
COMMAND
${
PADDLE_SOURCE_DIR
}
/paddle/.set_python_path.sh -d
${
PADDLE_SOURCE_DIR
}
/python/
${
CMAKE_CURRENT_BINARY_DIR
}
/test_CompareMKLDNNandCPU
--config_file_a=trainer/tests/sample_trainer_config_branch_net.conf --use_mkldnn_a=True
--config_file_b=trainer/tests/sample_trainer_config_branch_net.conf --use_mkldnn_b=False
--use_gpu=False
WORKING_DIRECTORY
${
PADDLE_SOURCE_DIR
}
/paddle/
)
endif
()
############### test_CompareTwoOpts ###################
...
...
paddle/trainer/tests/sample_trainer_config_branch_net.conf
0 → 100644
浏览文件 @
e1954857
# Copyright (c) 2017 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.
from
paddle
.
trainer_config_helpers
import
*
################################### Data Configuration ###################################
TrainData
(
ProtoData
(
files
=
"trainer/tests/mnist.list"
))
################################### Algorithm Configuration ###################################
settings
(
batch_size
=
256
,
learning_method
=
MomentumOptimizer
(
momentum
=
0
.
5
,
sparse
=
False
))
################################### Network Configuration ###################################
data
=
data_layer
(
name
=
"input"
,
size
=
784
)
tmp
=
img_conv_layer
(
input
=
data
,
num_channels
=
1
,
filter_size
=
3
,
num_filters
=
32
,
padding
=
1
,
shared_biases
=
True
,
act
=
ReluActivation
())
a1
=
img_conv_layer
(
input
=
tmp
,
filter_size
=
1
,
num_filters
=
32
,
padding
=
0
,
shared_biases
=
True
,
act
=
ReluActivation
())
a2
=
img_conv_layer
(
input
=
tmp
,
filter_size
=
3
,
num_filters
=
32
,
padding
=
1
,
shared_biases
=
True
,
act
=
ReluActivation
())
tmp
=
concat_layer
(
input
=[
a1
,
a2
])
tmp
=
img_pool_layer
(
input
=
tmp
,
num_channels
=
64
,
pool_size
=
3
,
stride
=
2
,
padding
=
1
,
pool_type
=
AvgPooling
())
b1
=
img_conv_layer
(
input
=
tmp
,
filter_size
=
3
,
num_filters
=
64
,
padding
=
1
,
shared_biases
=
True
,
act
=
ReluActivation
())
b1
=
img_pool_layer
(
input
=
b1
,
pool_size
=
3
,
stride
=
1
,
padding
=
1
,
pool_type
=
MaxPooling
())
b2
=
img_conv_layer
(
input
=
tmp
,
filter_size
=
5
,
num_filters
=
64
,
padding
=
2
,
shared_biases
=
True
,
act
=
ReluActivation
())
b2
=
img_pool_layer
(
input
=
b2
,
pool_size
=
5
,
stride
=
1
,
padding
=
2
,
pool_type
=
MaxPooling
())
tmp
=
addto_layer
(
input
=[
b1
,
b2
],
act
=
ReluActivation
(),
bias_attr
=
False
)
tmp
=
img_pool_layer
(
input
=
tmp
,
pool_size
=
3
,
stride
=
2
,
padding
=
1
,
pool_type
=
MaxPooling
())
tmp
=
fc_layer
(
input
=
tmp
,
size
=
64
,
bias_attr
=
False
,
act
=
TanhActivation
())
output
=
fc_layer
(
input
=
tmp
,
size
=
10
,
bias_attr
=
True
,
act
=
SoftmaxActivation
())
lbl
=
data_layer
(
name
=
"label"
,
size
=
10
)
cost
=
classification_cost
(
input
=
output
,
label
=
lbl
)
outputs
(
cost
)
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