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f21e3f73
编写于
7月 05, 2017
作者:
Y
Yang yaming
提交者:
GitHub
7月 05, 2017
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差异文件
Merge pull request #2247 from pkuyym/fix-2240
fix bugs for CrossChannelNormLayer
上级
1cc8fe72
c37da0bd
变更
5
隐藏空白更改
内联
并排
Showing
5 changed file
with
36 addition
and
23 deletion
+36
-23
paddle/gserver/layers/CrossChannelNormLayer.cpp
paddle/gserver/layers/CrossChannelNormLayer.cpp
+26
-11
paddle/gserver/layers/NormLayer.cpp
paddle/gserver/layers/NormLayer.cpp
+0
-10
paddle/gserver/tests/LayerGradUtil.cpp
paddle/gserver/tests/LayerGradUtil.cpp
+3
-1
paddle/gserver/tests/LayerGradUtil.h
paddle/gserver/tests/LayerGradUtil.h
+4
-0
paddle/gserver/tests/test_LayerGrad.cpp
paddle/gserver/tests/test_LayerGrad.cpp
+3
-1
未找到文件。
paddle/gserver/layers/CrossChannelNormLayer.cpp
浏览文件 @
f21e3f73
...
...
@@ -36,6 +36,16 @@ MatrixPtr CrossChannelNormLayer::createSpatialMatrix(MatrixPtr data,
data
->
getData
()
+
iter
*
spatialDim
,
1
,
spatialDim
,
false
,
useGpu_
);
}
bool
CrossChannelNormLayer
::
init
(
const
LayerMap
&
layerMap
,
const
ParameterMap
&
parameterMap
)
{
Layer
::
init
(
layerMap
,
parameterMap
);
CHECK
(
parameters_
[
0
]);
const
NormConfig
&
conf
=
config_
.
inputs
(
0
).
norm_conf
();
channels_
=
conf
.
channels
();
scale_
.
reset
(
new
Weight
(
channels_
,
1
,
parameters_
[
0
]));
return
true
;
}
void
CrossChannelNormLayer
::
forward
(
PassType
passType
)
{
Layer
::
forward
(
passType
);
MatrixPtr
inV
=
getInputValue
(
0
);
...
...
@@ -51,9 +61,7 @@ void CrossChannelNormLayer::forward(PassType passType) {
Matrix
::
resizeOrCreate
(
dataBuffer_
,
batchSize
,
dataDim
,
false
,
useGpu_
);
Matrix
::
resizeOrCreate
(
spatialBuffer_
,
1
,
spatialDim
,
false
,
useGpu_
);
Matrix
::
resizeOrCreate
(
normBuffer_
,
batchSize
,
spatialDim
,
false
,
useGpu_
);
normBuffer_
->
zeroMem
();
// add eps to avoid overflow
normBuffer_
->
addScalar
(
*
normBuffer_
,
1e-6
);
inV
->
square2
(
*
dataBuffer_
);
for
(
size_t
i
=
0
;
i
<
batchSize
;
i
++
)
{
const
MatrixPtr
inVTmp
=
createSampleMatrix
(
inV
,
i
,
spatialDim
);
...
...
@@ -63,6 +71,8 @@ void CrossChannelNormLayer::forward(PassType passType) {
// compute norm.
spatialBuffer_
->
sumCols
(
*
dataTmp
,
1
,
0
);
// add eps to avoid overflow
spatialBuffer_
->
add
(
1e-6
);
spatialBuffer_
->
sqrt2
(
*
spatialBuffer_
);
normTmp
->
copyFrom
(
*
spatialBuffer_
);
outVTmp
->
copyFrom
(
*
inVTmp
);
...
...
@@ -82,6 +92,9 @@ void CrossChannelNormLayer::backward(const UpdateCallback& callback) {
size_t
dataDim
=
inG
->
getWidth
();
size_t
spatialDim
=
dataDim
/
channels_
;
MatrixPtr
inGBuffer
;
Matrix
::
resizeOrCreate
(
inGBuffer
,
channels_
,
spatialDim
,
false
,
useGpu_
);
dataBuffer_
->
dotMul
(
*
outG
,
*
outV
);
Matrix
::
resizeOrCreate
(
scaleDiff_
,
channels_
,
1
,
false
,
useGpu_
);
Matrix
::
resizeOrCreate
(
channelBuffer_
,
channels_
,
1
,
false
,
useGpu_
);
...
...
@@ -100,22 +113,24 @@ void CrossChannelNormLayer::backward(const UpdateCallback& callback) {
scaleDiff_
->
add
(
*
channelBuffer_
,
1.
);
sampleBuffer_
->
dotMul
(
*
inVTmp
,
*
outGTmp
);
spatialBuffer_
->
sumCols
(
*
sampleBuffer_
,
1.
,
1
.
);
spatialBuffer_
->
sumCols
(
*
sampleBuffer_
,
1.
,
0
.
);
// scale the grad
inG
Tmp
->
copyFrom
(
*
inVTmp
);
inG
Tmp
->
mulRowVector
(
*
spatialBuffer_
);
inG
Buffer
->
copyFrom
(
*
inVTmp
);
inG
Buffer
->
mulRowVector
(
*
spatialBuffer_
);
// divide by square of norm
spatialBuffer_
->
dotMul
(
*
normTmp
,
*
normTmp
);
inG
Tmp
->
divRowVector
(
*
spatialBuffer_
);
inG
Buffer
->
divRowVector
(
*
spatialBuffer_
);
// subtract
inG
Tmp
->
add
(
*
outGTmp
,
-
1
,
1
);
inG
Buffer
->
add
(
*
outGTmp
,
-
1
,
1
);
// divide by norm
inG
Tmp
->
divRowVector
(
*
normTmp
);
inG
Buffer
->
divRowVector
(
*
normTmp
);
// scale the diff
inGTmp
->
mulColVector
(
*
scale_
->
getW
());
inGBuffer
->
mulColVector
(
*
scale_
->
getW
());
inGTmp
->
add
(
*
inGBuffer
);
}
// updata scale
if
(
scale_
->
getWGrad
())
scale_
->
getWGrad
()
->
copyFrom
(
*
scaleDiff_
);
if
(
scale_
->
getWGrad
())
scale_
->
getWGrad
()
->
add
(
*
scaleDiff_
);
scale_
->
getParameterPtr
()
->
incUpdate
(
callback
);
}
...
...
paddle/gserver/layers/NormLayer.cpp
浏览文件 @
f21e3f73
...
...
@@ -56,14 +56,4 @@ bool ResponseNormLayer::init(const LayerMap& layerMap,
return
true
;
}
bool
CrossChannelNormLayer
::
init
(
const
LayerMap
&
layerMap
,
const
ParameterMap
&
parameterMap
)
{
Layer
::
init
(
layerMap
,
parameterMap
);
CHECK
(
parameters_
[
0
]);
const
NormConfig
&
conf
=
config_
.
inputs
(
0
).
norm_conf
();
channels_
=
conf
.
channels
();
scale_
.
reset
(
new
Weight
(
channels_
,
1
,
parameters_
[
0
]));
return
true
;
}
}
// namespace paddle
paddle/gserver/tests/LayerGradUtil.cpp
浏览文件 @
f21e3f73
...
...
@@ -465,7 +465,6 @@ void initTestLayer(TestConfig testConf,
ParameterConfig
paraConfig
)
{
paraConfig
.
set_name
(
paraName
);
paraConfig
.
set_size
(
paraSize
);
paraConfig
.
set_initial_std
(
1
);
paraConfig
.
set_is_static
(
isStatic
);
auto
para
=
std
::
make_shared
<
Parameter
>
(
paraConfig
,
FLAGS_use_gpu
,
initialize
);
...
...
@@ -499,6 +498,9 @@ void initTestLayer(TestConfig testConf,
paraConfig
.
add_dims
((
*
layerMap
)[
input
.
input_layer_name
()]
->
getSize
());
paraConfig
.
add_dims
(
testConf
.
layerConfig
.
size
());
}
CHECK_GE
(
testConf
.
paramInitialStd
,
0
);
paraConfig
.
set_initial_mean
(
testConf
.
paramInitialMean
);
paraConfig
.
set_initial_std
(
testConf
.
paramInitialStd
);
initParameter
(
paraName
,
paraSize
,
inputDef
.
isStatic
,
false
,
paraConfig
);
}
}
...
...
paddle/gserver/tests/LayerGradUtil.h
浏览文件 @
f21e3f73
...
...
@@ -125,12 +125,16 @@ struct TestConfig {
LayerConfig
layerConfig
;
std
::
vector
<
InputDef
>
inputDefs
;
size_t
biasSize
;
real
paramInitialMean
;
real
paramInitialStd
;
bool
testAccumulate
;
bool
testState
;
bool
staticBias
;
bool
testBatchState
;
TestConfig
()
:
biasSize
(
0
),
paramInitialMean
(
0.0
),
paramInitialStd
(
1.0
),
testAccumulate
(
true
),
testState
(
false
),
staticBias
(
false
),
...
...
paddle/gserver/tests/test_LayerGrad.cpp
浏览文件 @
f21e3f73
...
...
@@ -1669,6 +1669,8 @@ TEST(Layer, PadLayer) {
TEST
(
Layer
,
CrossChannelNormLayer
)
{
TestConfig
config
;
config
.
paramInitialMean
=
1.
;
config
.
paramInitialStd
=
0.
;
config
.
layerConfig
.
set_type
(
"norm"
);
config
.
layerConfig
.
set_size
(
100
);
LayerInputConfig
*
input
=
config
.
layerConfig
.
add_inputs
();
...
...
@@ -1682,7 +1684,7 @@ TEST(Layer, CrossChannelNormLayer) {
config
.
inputDefs
.
push_back
({
INPUT_DATA
,
"layer_0"
,
100
,
10
});
for
(
auto
useGpu
:
{
false
,
true
})
{
testLayerGrad
(
config
,
"cross-channel-norm"
,
10
,
false
,
useGpu
,
false
,
5
);
testLayerGrad
(
config
,
"cross-channel-norm"
,
10
,
false
,
useGpu
,
false
);
}
}
...
...
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