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8b9e678d
编写于
7月 26, 2017
作者:
C
caoying03
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
fix dropout and clipping setttings in layer helpers.
上级
eff17a68
变更
2
隐藏空白更改
内联
并排
Showing
2 changed file
with
12 addition
and
21 deletion
+12
-21
python/paddle/trainer_config_helpers/attrs.py
python/paddle/trainer_config_helpers/attrs.py
+1
-1
python/paddle/trainer_config_helpers/layers.py
python/paddle/trainer_config_helpers/layers.py
+11
-20
未找到文件。
python/paddle/trainer_config_helpers/attrs.py
浏览文件 @
8b9e678d
...
@@ -272,7 +272,7 @@ class ExtraLayerAttribute(object):
...
@@ -272,7 +272,7 @@ class ExtraLayerAttribute(object):
for
key
in
self
.
attr
:
for
key
in
self
.
attr
:
if
not
hasattr
(
self
,
'can_%s'
%
key
)
or
\
if
not
hasattr
(
self
,
'can_%s'
%
key
)
or
\
not
getattr
(
self
,
'can_%s'
%
key
):
not
getattr
(
self
,
'can_%s'
%
key
):
raise
NotImplementedError
(
"Layer %s
can
not support %s"
%
raise
NotImplementedError
(
"Layer %s
does
not support %s"
%
(
layer_name
,
key
))
(
layer_name
,
key
))
@
staticmethod
@
staticmethod
...
...
python/paddle/trainer_config_helpers/layers.py
浏览文件 @
8b9e678d
...
@@ -865,7 +865,7 @@ def data_layer(name, size, height=None, width=None, layer_attr=None):
...
@@ -865,7 +865,7 @@ def data_layer(name, size, height=None, width=None, layer_attr=None):
@
wrap_name_default
(
"embedding"
)
@
wrap_name_default
(
"embedding"
)
@
wrap_param_attr_default
()
@
wrap_param_attr_default
()
@
layer_support
(
ERROR_CLIPPING
)
@
layer_support
(
ERROR_CLIPPING
,
DROPOUT
)
def
embedding_layer
(
input
,
size
,
name
=
None
,
param_attr
=
None
,
layer_attr
=
None
):
def
embedding_layer
(
input
,
size
,
name
=
None
,
param_attr
=
None
,
layer_attr
=
None
):
"""
"""
Define a embedding Layer.
Define a embedding Layer.
...
@@ -1320,7 +1320,7 @@ def pooling_layer(input,
...
@@ -1320,7 +1320,7 @@ def pooling_layer(input,
@
wrap_act_default
(
param_names
=
[
'gate_act'
],
act
=
SigmoidActivation
())
@
wrap_act_default
(
param_names
=
[
'gate_act'
],
act
=
SigmoidActivation
())
@
wrap_act_default
(
param_names
=
[
"act"
,
'state_act'
],
act
=
TanhActivation
())
@
wrap_act_default
(
param_names
=
[
"act"
,
'state_act'
],
act
=
TanhActivation
())
@
wrap_name_default
(
"lstmemory"
)
@
wrap_name_default
(
"lstmemory"
)
@
layer_support
(
DROPOUT
)
@
layer_support
()
def
lstmemory
(
input
,
def
lstmemory
(
input
,
name
=
None
,
name
=
None
,
size
=
None
,
size
=
None
,
...
@@ -1429,7 +1429,7 @@ def lstmemory(input,
...
@@ -1429,7 +1429,7 @@ def lstmemory(input,
@
wrap_act_default
(
param_names
=
[
'gate_act'
],
act
=
SigmoidActivation
())
@
wrap_act_default
(
param_names
=
[
'gate_act'
],
act
=
SigmoidActivation
())
@
wrap_act_default
(
param_names
=
[
"act"
],
act
=
TanhActivation
())
@
wrap_act_default
(
param_names
=
[
"act"
],
act
=
TanhActivation
())
@
wrap_name_default
(
"gru"
)
@
wrap_name_default
(
"gru"
)
@
layer_support
(
DROPOUT
)
@
layer_support
()
def
grumemory
(
input
,
def
grumemory
(
input
,
size
=
None
,
size
=
None
,
name
=
None
,
name
=
None
,
...
@@ -1793,7 +1793,7 @@ def repeat_layer(input,
...
@@ -1793,7 +1793,7 @@ def repeat_layer(input,
@
wrap_name_default
(
"seqreshape"
)
@
wrap_name_default
(
"seqreshape"
)
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
layer_support
()
@
layer_support
(
ERROR_CLIPPING
,
DROPOUT
)
def
seq_reshape_layer
(
input
,
def
seq_reshape_layer
(
input
,
reshape_size
,
reshape_size
,
act
=
None
,
act
=
None
,
...
@@ -2703,7 +2703,7 @@ def img_cmrnorm_layer(input,
...
@@ -2703,7 +2703,7 @@ def img_cmrnorm_layer(input,
default_factory
=
lambda
_
:
ParamAttr
(
initial_mean
=
1.0
,
initial_std
=
0.
))
default_factory
=
lambda
_
:
ParamAttr
(
initial_mean
=
1.0
,
initial_std
=
0.
))
@
wrap_act_default
(
act
=
ReluActivation
())
@
wrap_act_default
(
act
=
ReluActivation
())
@
wrap_name_default
(
"batch_norm"
)
@
wrap_name_default
(
"batch_norm"
)
@
layer_support
(
DROPOUT
)
@
layer_support
(
DROPOUT
,
ERROR_CLIPPING
)
def
batch_norm_layer
(
input
,
def
batch_norm_layer
(
input
,
act
=
None
,
act
=
None
,
name
=
None
,
name
=
None
,
...
@@ -2783,15 +2783,6 @@ def batch_norm_layer(input,
...
@@ -2783,15 +2783,6 @@ def batch_norm_layer(input,
:return: LayerOutput object.
:return: LayerOutput object.
:rtype: LayerOutput
:rtype: LayerOutput
"""
"""
if
not
isinstance
(
act
,
ReluActivation
):
logger
.
log
(
logging
.
WARN
,
"%s is not recommend for batch normalization's activation, "
"maybe the relu is better"
%
act
.
name
)
if
not
isinstance
(
input
.
activation
,
LinearActivation
):
logger
.
log
(
logging
.
WARN
,
"The activation should be inside batch normalization, the "
"previous layer's activation may be Linear"
)
if
num_channels
is
None
:
if
num_channels
is
None
:
if
input
.
num_filters
is
not
None
:
if
input
.
num_filters
is
not
None
:
...
@@ -2861,7 +2852,7 @@ def sum_to_one_norm_layer(input, name=None, layer_attr=None):
...
@@ -2861,7 +2852,7 @@ def sum_to_one_norm_layer(input, name=None, layer_attr=None):
@
wrap_name_default
(
"addto"
)
@
wrap_name_default
(
"addto"
)
@
wrap_act_default
(
act
=
LinearActivation
())
@
wrap_act_default
(
act
=
LinearActivation
())
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
layer_support
(
DROPOUT
)
@
layer_support
(
DROPOUT
,
ERROR_CLIPPING
)
def
addto_layer
(
input
,
act
=
None
,
name
=
None
,
bias_attr
=
None
,
layer_attr
=
None
):
def
addto_layer
(
input
,
act
=
None
,
name
=
None
,
bias_attr
=
None
,
layer_attr
=
None
):
"""
"""
AddtoLayer.
AddtoLayer.
...
@@ -2940,7 +2931,7 @@ def addto_layer(input, act=None, name=None, bias_attr=None, layer_attr=None):
...
@@ -2940,7 +2931,7 @@ def addto_layer(input, act=None, name=None, bias_attr=None, layer_attr=None):
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_name_default
(
"concat"
)
@
wrap_name_default
(
"concat"
)
@
layer_support
()
@
layer_support
(
DROPOUT
,
ERROR_CLIPPING
)
def
concat_layer
(
input
,
act
=
None
,
name
=
None
,
layer_attr
=
None
,
bias_attr
=
None
):
def
concat_layer
(
input
,
act
=
None
,
name
=
None
,
layer_attr
=
None
,
bias_attr
=
None
):
"""
"""
Concat all input vector into one huge vector.
Concat all input vector into one huge vector.
...
@@ -3024,7 +3015,7 @@ def concat_layer(input, act=None, name=None, layer_attr=None, bias_attr=None):
...
@@ -3024,7 +3015,7 @@ def concat_layer(input, act=None, name=None, layer_attr=None, bias_attr=None):
@
wrap_name_default
(
"seqconcat"
)
@
wrap_name_default
(
"seqconcat"
)
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
layer_support
()
@
layer_support
(
DROPOUT
,
ERROR_CLIPPING
)
def
seq_concat_layer
(
a
,
b
,
act
=
None
,
name
=
None
,
layer_attr
=
None
,
def
seq_concat_layer
(
a
,
b
,
act
=
None
,
name
=
None
,
layer_attr
=
None
,
bias_attr
=
None
):
bias_attr
=
None
):
"""
"""
...
@@ -3177,7 +3168,7 @@ def memory(name,
...
@@ -3177,7 +3168,7 @@ def memory(name,
@
wrap_act_default
(
param_names
=
[
'state_act'
],
act
=
TanhActivation
())
@
wrap_act_default
(
param_names
=
[
'state_act'
],
act
=
TanhActivation
())
@
wrap_act_default
(
act
=
TanhActivation
())
@
wrap_act_default
(
act
=
TanhActivation
())
@
wrap_name_default
(
'lstm_step'
)
@
wrap_name_default
(
'lstm_step'
)
@
layer_support
(
ERROR_CLIPPING
,
DROPOUT
)
@
layer_support
()
def
lstm_step_layer
(
input
,
def
lstm_step_layer
(
input
,
state
,
state
,
size
=
None
,
size
=
None
,
...
@@ -4480,7 +4471,7 @@ def tensor_layer(a,
...
@@ -4480,7 +4471,7 @@ def tensor_layer(a,
@
wrap_param_attr_default
()
@
wrap_param_attr_default
()
@
wrap_bias_attr_default
()
@
wrap_bias_attr_default
()
@
wrap_act_default
()
@
wrap_act_default
()
@
layer_support
()
@
layer_support
(
DROPOUT
,
ERROR_CLIPPING
)
def
selective_fc_layer
(
input
,
def
selective_fc_layer
(
input
,
size
,
size
,
select
=
None
,
select
=
None
,
...
@@ -5974,7 +5965,7 @@ def crop_layer(input, offset, axis=2, shape=None, name=None, layer_attr=None):
...
@@ -5974,7 +5965,7 @@ def crop_layer(input, offset, axis=2, shape=None, name=None, layer_attr=None):
"""
"""
The crop layer crops images by offset and shape. User can set crop shape by
The crop layer crops images by offset and shape. User can set crop shape by
args 'shape' explicitly or by reference input layer.
args 'shape' explicitly or by reference input layer.
The example usage is:
The example usage is:
.. code-block:: python
.. code-block:: python
...
...
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