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0752b3b7
编写于
11月 14, 2016
作者:
L
Luo Tao
浏览文件
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电子邮件补丁
差异文件
add layer check for recurrent_group
上级
35c175dd
变更
1
显示空白变更内容
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并排
Showing
1 changed file
with
21 addition
and
2 deletion
+21
-2
python/paddle/trainer_config_helpers/layers.py
python/paddle/trainer_config_helpers/layers.py
+21
-2
未找到文件。
python/paddle/trainer_config_helpers/layers.py
浏览文件 @
0752b3b7
...
@@ -2754,7 +2754,12 @@ class SubsequenceInput(object):
...
@@ -2754,7 +2754,12 @@ class SubsequenceInput(object):
@
wrap_name_default
(
"recurrent_group"
)
@
wrap_name_default
(
"recurrent_group"
)
def
recurrent_group
(
step
,
input
,
reverse
=
False
,
name
=
None
,
targetInlink
=
None
):
def
recurrent_group
(
step
,
input
,
reverse
=
False
,
name
=
None
,
targetInlink
=
None
,
is_train
=
True
):
"""
"""
Recurrent layer group is an extremely flexible recurrent unit in
Recurrent layer group is an extremely flexible recurrent unit in
PaddlePaddle. As long as the user defines the calculation done within a
PaddlePaddle. As long as the user defines the calculation done within a
...
@@ -2819,6 +2824,12 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
...
@@ -2819,6 +2824,12 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
:type targetInlink: LayerOutput|SubsequenceInput
:type targetInlink: LayerOutput|SubsequenceInput
:param is_train: recurrent_group is used for training (True) or generating (False).
If is training, one of the input type must be LayerOutput; else,
none of input type should be LayerOutput.
: type is_train: bool
:return: LayerOutput object.
:return: LayerOutput object.
:rtype: LayerOutput
:rtype: LayerOutput
"""
"""
...
@@ -2866,6 +2877,7 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
...
@@ -2866,6 +2877,7 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
seq_reversed
=
reverse
,
seq_reversed
=
reverse
,
target_inlinkname
=
targetInlinkName
)
target_inlinkname
=
targetInlinkName
)
in_args
=
[]
in_args
=
[]
has_LayerOutput
=
True
for
each_input
in
input
:
for
each_input
in
input
:
assert
is_single_input
(
each_input
)
assert
is_single_input
(
each_input
)
if
isinstance
(
each_input
,
LayerOutput
):
if
isinstance
(
each_input
,
LayerOutput
):
...
@@ -2873,6 +2885,7 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
...
@@ -2873,6 +2885,7 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
elif
isinstance
(
each_input
,
SubsequenceInput
):
elif
isinstance
(
each_input
,
SubsequenceInput
):
in_args
.
append
(
each_input
.
input
)
in_args
.
append
(
each_input
.
input
)
else
:
else
:
has_LayerOutput
=
False
mem_name
=
"__%s_memory__"
%
each_input
.
input
.
name
mem_name
=
"__%s_memory__"
%
each_input
.
input
.
name
mem
=
memory
(
mem
=
memory
(
name
=
mem_name
,
name
=
mem_name
,
...
@@ -2886,6 +2899,8 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
...
@@ -2886,6 +2899,8 @@ def recurrent_group(step, input, reverse=False, name=None, targetInlink=None):
mix
+=
identity_projection
(
mem
)
mix
+=
identity_projection
(
mem
)
in_args
.
append
(
mem
)
in_args
.
append
(
mem
)
assert
(
is_train
==
has_LayerOutput
)
layer_outs
=
step
(
*
in_args
)
layer_outs
=
step
(
*
in_args
)
if
isinstance
(
layer_outs
,
LayerOutput
):
if
isinstance
(
layer_outs
,
LayerOutput
):
...
@@ -3177,7 +3192,11 @@ def beam_search(step,
...
@@ -3177,7 +3192,11 @@ def beam_search(step,
return
predict
return
predict
tmp
=
recurrent_group
(
tmp
=
recurrent_group
(
step
=
__real_step__
,
input
=
real_input
,
reverse
=
False
,
name
=
name
)
step
=
__real_step__
,
input
=
real_input
,
reverse
=
False
,
name
=
name
,
is_train
=
False
)
return
tmp
return
tmp
...
...
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