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4eecd0c2
编写于
8月 22, 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
use MKLDNNMatrix in fc backward
上级
4bffbd30
变更
3
隐藏空白更改
内联
并排
Showing
3 changed file
with
110 addition
and
59 deletion
+110
-59
paddle/gserver/layers/MKLDNNFcLayer.cpp
paddle/gserver/layers/MKLDNNFcLayer.cpp
+38
-39
paddle/gserver/layers/MKLDNNLayer.h
paddle/gserver/layers/MKLDNNLayer.h
+44
-15
paddle/math/MKLDNNMatrix.h
paddle/math/MKLDNNMatrix.h
+28
-5
未找到文件。
paddle/gserver/layers/MKLDNNFcLayer.cpp
浏览文件 @
4eecd0c2
...
@@ -158,10 +158,8 @@ void MKLDNNFcLayer::resetFwd() {
...
@@ -158,10 +158,8 @@ void MKLDNNFcLayer::resetFwd() {
hasSpatial_
?
memory
::
dims
{
oc_
,
ic_
,
ih_
,
iw_
}
:
memory
::
dims
{
oc_
,
ic_
},
hasSpatial_
?
memory
::
dims
{
oc_
,
ic_
,
ih_
,
iw_
}
:
memory
::
dims
{
oc_
,
ic_
},
hasSpatial_
?
format
::
oihw
:
format
::
oi
,
hasSpatial_
?
format
::
oihw
:
format
::
oi
,
engine_
);
engine_
);
biasVal_
=
biasVal_
=
hasBias
?
MKLDNNMatrix
::
create
(
bias
,
{
oc_
},
format
::
x
,
engine_
)
:
nullptr
;
hasBias
?
MKLDNNMatrix
::
create
(
bias
,
{
oc_
},
format
::
x
,
engine_
)
:
nullptr
;
outVal_
=
MKLDNNMatrix
::
create
(
out
,
{
bs_
,
oc_
},
format
::
nc
,
engine_
);
outVal_
=
MKLDNNMatrix
::
create
(
out
,
{
bs_
,
oc_
},
format
::
nc
,
engine_
);
// change original output to mkldnn output
// change original output to mkldnn output
...
@@ -193,46 +191,41 @@ void MKLDNNFcLayer::resetBwd() {
...
@@ -193,46 +191,41 @@ void MKLDNNFcLayer::resetBwd() {
return
;
return
;
}
}
needResetBwd_
=
false
;
needResetBwd_
=
false
;
bool
hasBias
=
biases_
&&
biases_
->
getWGrad
();
bool
hasBias
=
biases_
&&
biases_
->
getWGrad
();
real
*
iData
=
getInputValue
(
0
)
->
getData
();
real
*
iDiff
=
getInputGrad
(
0
)
!=
nullptr
?
getInputGrad
(
0
)
->
getData
()
:
NULL
;
real
*
oDiff
=
getOutputGrad
()
->
getData
();
real
*
wDiff
=
weight_
->
getWGrad
()
->
getData
();
real
*
bDiff
=
hasBias
?
biases_
->
getWGrad
()
->
getData
()
:
NULL
;
/// backward weight
/// backward weight
// create memory desc for backward memory
CHECK
(
inVal_
)
<<
"Should have input value"
;
memory
::
desc
iMD
=
hasSpatial_
?
createMD
({
bs_
,
ic_
,
ih_
,
iw_
},
format
::
nchw
)
const
MatrixPtr
&
wgt
=
weight_
->
getWGrad
();
:
createMD
({
bs_
,
ic_
},
format
::
nc
);
const
MatrixPtr
&
bias
=
hasBias
?
biases_
->
getWGrad
()
:
nullptr
;
memory
::
desc
wMD
=
hasSpatial_
?
createMD
({
oc_
,
ic_
,
ih_
,
iw_
},
format
::
oihw
)
const
MatrixPtr
&
out
=
output_
.
grad
;
:
createMD
({
oc_
,
ic_
},
format
::
oi
);
memory
::
desc
oMD
=
createMD
({
bs_
,
oc_
},
format
::
nc
);
wgtGrad_
=
MKLDNNMatrix
::
create
(
memory
::
desc
bMD
=
bDiff
!=
NULL
?
createMD
({
oc_
},
format
::
x
)
wgt
,
wgtVal_
->
getDims
(),
wgtVal_
->
getFormat
(),
engine_
);
:
createMD
({},
format
::
format_undef
);
biasGrad_
=
hasBias
?
MKLDNNMatrix
::
create
(
bias
,
{
oc_
},
format
::
x
,
engine_
)
:
nullptr
;
if
(
inVal_
)
{
// update data
inVal_
->
set_data_handle
(
iData
);
}
else
{
LOG
(
FATAL
)
<<
"Should not be empty"
;
// inVal_.reset(new memory(memory::primitive_desc(iMD, engine_), iData));
}
// create memory primitive desc and memory self
wgtGrad_
.
reset
(
new
memory
(
memory
::
primitive_desc
(
wMD
,
engine_
),
wDiff
));
outGrad_
.
reset
(
new
memory
(
memory
::
primitive_desc
(
oMD
,
engine_
),
oDiff
));
fc_fwd
::
desc
fwdDesc
=
fc_fwd
::
desc
(
prop_kind
::
forward
,
iMD
,
wMD
,
oMD
);
outGrad_
=
MKLDNNMatrix
::
create
(
out
,
{
bs_
,
oc_
},
format
::
nc
,
engine_
);
// change original output to mkldnn output
// TODO: right?
output_
.
grad
=
std
::
dynamic_pointer_cast
<
Matrix
>
(
outGrad_
);
// create memory primitive desc
fc_fwd
::
desc
fwdDesc
=
fc_fwd
::
desc
(
prop_kind
::
forward
,
inVal_
->
getMD
(),
wgtGrad_
->
getMD
(),
outGrad_
->
getMD
());
fc_fwd
::
primitive_desc
fwdPD
=
fc_fwd
::
primitive_desc
(
fwdDesc
,
engine_
);
fc_fwd
::
primitive_desc
fwdPD
=
fc_fwd
::
primitive_desc
(
fwdDesc
,
engine_
);
fc_bwdWgt
::
desc
bwdWgtDesc
=
bDiff
!=
NULL
fc_bwdWgt
::
desc
bwdWgtDesc
=
?
fc_bwdWgt
::
desc
(
iMD
,
wMD
,
bMD
,
oMD
)
hasBias
?
fc_bwdWgt
::
desc
(
inVal_
->
getMD
(),
:
fc_bwdWgt
::
desc
(
iMD
,
wMD
,
oMD
);
wgtGrad_
->
getMD
(),
biasGrad_
->
getMD
(),
outGrad_
->
getMD
())
:
fc_bwdWgt
::
desc
(
inVal_
->
getMD
(),
wgtGrad_
->
getMD
(),
outGrad_
->
getMD
());
fc_bwdWgt
::
primitive_desc
bwdWgtPD
=
fc_bwdWgt
::
primitive_desc
bwdWgtPD
=
fc_bwdWgt
::
primitive_desc
(
bwdWgtDesc
,
engine_
,
fwdPD
);
fc_bwdWgt
::
primitive_desc
(
bwdWgtDesc
,
engine_
,
fwdPD
);
if
(
bDiff
!=
NULL
)
{
if
(
hasBias
)
{
biasGrad_
.
reset
(
new
memory
(
memory
::
primitive_desc
(
bMD
,
engine_
),
bDiff
));
bwdWgt_
.
reset
(
bwdWgt_
.
reset
(
new
fc_bwdWgt
(
bwdWgtPD
,
*
inVal_
,
*
outGrad_
,
*
wgtGrad_
,
*
biasGrad_
));
new
fc_bwdWgt
(
bwdWgtPD
,
*
inVal_
,
*
outGrad_
,
*
wgtGrad_
,
*
biasGrad_
));
}
else
{
}
else
{
...
@@ -242,13 +235,19 @@ void MKLDNNFcLayer::resetBwd() {
...
@@ -242,13 +235,19 @@ void MKLDNNFcLayer::resetBwd() {
pipelineBwd_
.
push_back
(
*
bwdWgt_
);
pipelineBwd_
.
push_back
(
*
bwdWgt_
);
/// backward data
/// backward data
if
(
iDiff
==
NULL
)
{
const
MatrixPtr
&
in
=
getInputGrad
(
0
);
if
(
in
==
nullptr
)
{
return
;
return
;
}
}
fc_bwdData
::
desc
bwdDataDesc
=
fc_bwdData
::
desc
(
iMD
,
wMD
,
oMD
);
fc_bwdData
::
desc
bwdDataDesc
=
fc_bwdData
::
desc
(
inVal_
->
getMD
(),
wgtGrad_
->
getMD
(),
outGrad_
->
getMD
());
fc_bwdData
::
primitive_desc
bwdDataPD
=
fc_bwdData
::
primitive_desc
bwdDataPD
=
fc_bwdData
::
primitive_desc
(
bwdDataDesc
,
engine_
,
fwdPD
);
fc_bwdData
::
primitive_desc
(
bwdDataDesc
,
engine_
,
fwdPD
);
inGrad_
.
reset
(
new
memory
(
memory
::
primitive_desc
(
iMD
,
engine_
),
iDiff
));
// TODO: check right, just from ingrad?
inGrad_
=
MKLDNNMatrix
::
create
(
in
,
inVal_
->
getDims
(),
inVal_
->
getFormat
(),
engine_
);
CHECK
(
wgtVal_
)
<<
"Should have weight memory"
;
CHECK
(
wgtVal_
)
<<
"Should have weight memory"
;
bwdData_
.
reset
(
new
fc_bwdData
(
bwdDataPD
,
*
outGrad_
,
*
wgtVal_
,
*
inGrad_
));
bwdData_
.
reset
(
new
fc_bwdData
(
bwdDataPD
,
*
outGrad_
,
*
wgtVal_
,
*
inGrad_
));
pipelineBwd_
.
push_back
(
*
bwdData_
);
pipelineBwd_
.
push_back
(
*
bwdData_
);
...
@@ -264,7 +263,7 @@ void MKLDNNFcLayer::forward(PassType passType) {
...
@@ -264,7 +263,7 @@ void MKLDNNFcLayer::forward(PassType passType) {
// update input data
// update input data
// since it might be changed if this is after data layer
// since it might be changed if this is after data layer
real
*
iData
=
getInputValue
(
0
)
->
getData
();
real
*
iData
=
getInputValue
(
0
)
->
getData
();
inVal_
->
set_data_handle
(
iData
);
inVal_
->
updateData
(
iData
);
// just submit forward pipeline
// just submit forward pipeline
stream_
->
submit
(
pipelineFwd_
);
stream_
->
submit
(
pipelineFwd_
);
...
@@ -288,7 +287,7 @@ void MKLDNNFcLayer::backward(const UpdateCallback& callback) {
...
@@ -288,7 +287,7 @@ void MKLDNNFcLayer::backward(const UpdateCallback& callback) {
// update diff
// update diff
real
*
oDiff
=
getOutputGrad
()
->
getData
();
real
*
oDiff
=
getOutputGrad
()
->
getData
();
outGrad_
->
set_data_handle
(
oDiff
);
outGrad_
->
updateData
(
oDiff
);
// just sumbmit backward pipeline
// just sumbmit backward pipeline
stream_
->
submit
(
pipelineBwd_
);
stream_
->
submit
(
pipelineBwd_
);
...
...
paddle/gserver/layers/MKLDNNLayer.h
浏览文件 @
4eecd0c2
...
@@ -52,16 +52,15 @@ protected:
...
@@ -52,16 +52,15 @@ protected:
std
::
vector
<
mkldnn
::
primitive
>
pipelineFwd_
;
std
::
vector
<
mkldnn
::
primitive
>
pipelineFwd_
;
std
::
vector
<
mkldnn
::
primitive
>
pipelineBwd_
;
std
::
vector
<
mkldnn
::
primitive
>
pipelineBwd_
;
// TODO(TJ): change below memory as MKLDNNMatrixPtr type
// MKLDNNMatrixPtr
// MKLDNNMatrixPtr ;
MKLDNNMatrixPtr
inVal_
;
MKLDNNMatrixPtr
inVal_
;
std
::
shared_ptr
<
mkldnn
::
memory
>
inGrad_
;
MKLDNNMatrixPtr
inGrad_
;
MKLDNNMatrixPtr
outVal_
;
MKLDNNMatrixPtr
outVal_
;
std
::
shared_ptr
<
mkldnn
::
memory
>
outGrad_
;
MKLDNNMatrixPtr
outGrad_
;
MKLDNNMatrixPtr
wgtVal_
;
MKLDNNMatrixPtr
wgtVal_
;
std
::
shared_ptr
<
mkldnn
::
memory
>
wgtGrad_
;
MKLDNNMatrixPtr
wgtGrad_
;
MKLDNNMatrixPtr
biasVal_
;
MKLDNNMatrixPtr
biasVal_
;
std
::
shared_ptr
<
mkldnn
::
memory
>
biasGrad_
;
MKLDNNMatrixPtr
biasGrad_
;
public:
public:
explicit
MKLDNNLayer
(
const
LayerConfig
&
config
)
explicit
MKLDNNLayer
(
const
LayerConfig
&
config
)
...
@@ -84,17 +83,24 @@ public:
...
@@ -84,17 +83,24 @@ public:
virtual
bool
init
(
const
LayerMap
&
layerMap
,
virtual
bool
init
(
const
LayerMap
&
layerMap
,
const
ParameterMap
&
parameterMap
)
{
const
ParameterMap
&
parameterMap
)
{
CHECK
(
FLAGS_use_mkldnn
)
<<
"MkldnnLayers only support use_mkldnn."
<<
"Please set WITH_MKLDNN=ON "
<<
"and set use_mkldnn=True"
;
if
(
useGpu_
==
true
)
{
LOG
(
WARNING
)
<<
"Do not support GPU yet, will change to useGpu = false"
;
useGpu_
=
false
;
}
// set device id before Layer::init
setDevice
(
MKLDNN_DEVICE
);
// change param device to MKLDNN device
setParamsDevice
(
MKLDNN_DEVICE
,
parameterMap
);
if
(
!
Layer
::
init
(
layerMap
,
parameterMap
))
{
if
(
!
Layer
::
init
(
layerMap
,
parameterMap
))
{
return
false
;
return
false
;
}
}
CHECK
(
FLAGS_use_mkldnn
)
<<
"MkldnnLayers only support use_mkldnn."
<<
"Please set WITH_MKLDNN=ON "
<<
"and set use_mkldnn=True"
;
stream_
.
reset
(
new
MKLDNNStream
());
stream_
.
reset
(
new
MKLDNNStream
());
engine_
=
CPUEngine
::
Instance
().
getEngine
();
engine_
=
CPUEngine
::
Instance
().
getEngine
();
setDeviceID
(
MKLDNN_DEVICE
);
return
true
;
return
true
;
}
}
...
@@ -136,10 +142,33 @@ public:
...
@@ -136,10 +142,33 @@ public:
}
}
protected:
protected:
void
setDeviceID
(
int
id
)
{
/**
deviceId_
=
id
;
* Set deviceId of this layer.
output_
.
deviceId
=
id
;
*/
// TODO: handle mkldnn device or add mkldnn device to other
void
setDevice
(
int
id
)
{
deviceId_
=
id
;
}
/**
* Set deviceId of the params used in this layer.
*/
void
setParamsDevice
(
int
id
,
const
ParameterMap
&
parameterMap
)
{
for
(
auto
&
inputConfig
:
config_
.
inputs
())
{
if
(
inputConfig
.
has_input_parameter_name
())
{
ParameterPtr
parameter
;
std
::
string
name
=
inputConfig
.
input_parameter_name
();
CHECK
(
mapGet
(
name
,
parameterMap
,
&
parameter
))
<<
"Cannot find input parameter "
<<
name
<<
" for layer "
<<
getName
();
parameter
->
setDevice
(
id
);
}
}
if
(
config_
.
has_bias_parameter_name
())
{
ParameterPtr
parameter
;
std
::
string
name
=
config_
.
bias_parameter_name
();
CHECK
(
mapGet
(
name
,
parameterMap
,
&
parameter
))
<<
"Cannot find bias parameter "
<<
name
<<
" for layer "
<<
getName
();
parameter
->
setDevice
(
id
);
}
}
}
};
};
...
...
paddle/math/MKLDNNMatrix.h
浏览文件 @
4eecd0c2
...
@@ -44,6 +44,8 @@ public:
...
@@ -44,6 +44,8 @@ public:
set_data_handle
(
CpuMatrix
::
getData
());
set_data_handle
(
CpuMatrix
::
getData
());
}
}
~
MKLDNNMatrix
()
{}
static
MKLDNNMatrixPtr
create
(
static
MKLDNNMatrixPtr
create
(
const
MatrixPtr
&
m
,
const
MatrixPtr
&
m
,
mkldnn
::
memory
::
dims
dims
,
mkldnn
::
memory
::
dims
dims
,
...
@@ -52,21 +54,42 @@ public:
...
@@ -52,21 +54,42 @@ public:
mkldnn
::
memory
::
data_type
dtype
=
mkldnn
::
memory
::
data_type
::
f32
);
mkldnn
::
memory
::
data_type
dtype
=
mkldnn
::
memory
::
data_type
::
f32
);
/**
/**
* Get primitive descriptor
* Get primitive descriptor
.
*/
*/
mkldnn
::
memory
::
primitive_desc
getPD
()
{
return
this
->
get_primitive_desc
();
}
mkldnn
::
memory
::
primitive_desc
getPD
()
{
return
this
->
get_primitive_desc
();
}
/**
/**
* Get memory descriptor
* Get memory descriptor
.
*/
*/
mkldnn
::
memory
::
desc
getMD
()
{
return
getPD
().
desc
();
}
mkldnn
::
memory
::
desc
getMD
()
{
return
getPD
().
desc
();
}
/**
/**
* Get
format
* Get
dims.
*/
*/
int
getFormat
()
{
return
getMD
().
data
.
format
;
}
mkldnn
::
memory
::
dims
getDims
()
{
mkldnn
::
memory
::
dims
dst
;
int
*
src
=
getMD
().
data
.
dims
;
int
ndims
=
getMD
().
data
.
ndims
;
dst
.
resize
(
ndims
);
for
(
int
i
=
0
;
i
<
ndims
;
++
i
)
{
dst
[
i
]
=
src
[
i
];
}
return
dst
;
}
~
MKLDNNMatrix
()
{}
/**
* Get format.
*/
mkldnn
::
memory
::
format
getFormat
()
{
return
(
mkldnn
::
memory
::
format
)(
getMD
().
data
.
format
);
}
/**
* Update the memory data handle.
* Caution: This will not check the buffer size of the data,
* it should be coverd by user.
*/
void
updateData
(
void
*
data
)
{
set_data_handle
(
data
);
}
};
};
}
// namespace paddle
}
// namespace paddle
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