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6cf56035
编写于
2月 22, 2017
作者:
D
dangqingqing
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15180e85
ac712688
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8
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8 changed file
with
100 addition
and
20 deletion
+100
-20
doc/api/trainer_config_helpers/layers.rst
doc/api/trainer_config_helpers/layers.rst
+6
-0
paddle/gserver/layers/SequenceReshapeLayer.cpp
paddle/gserver/layers/SequenceReshapeLayer.cpp
+6
-3
python/paddle/trainer_config_helpers/layers.py
python/paddle/trainer_config_helpers/layers.py
+61
-0
python/paddle/trainer_config_helpers/tests/configs/file_list.sh
.../paddle/trainer_config_helpers/tests/configs/file_list.sh
+1
-1
python/paddle/trainer_config_helpers/tests/configs/protostr/test_seq_concat_reshape.protostr
...s/tests/configs/protostr/test_seq_concat_reshape.protostr
+12
-0
python/paddle/trainer_config_helpers/tests/configs/test_seq_concat_reshape.py
...r_config_helpers/tests/configs/test_seq_concat_reshape.py
+5
-2
python/paddle/v2/__init__.py
python/paddle/v2/__init__.py
+2
-9
python/paddle/v2/layer.py
python/paddle/v2/layer.py
+7
-5
未找到文件。
doc/api/trainer_config_helpers/layers.rst
浏览文件 @
6cf56035
...
...
@@ -308,6 +308,12 @@ repeat_layer
:members: repeat_layer
:noindex:
seq_reshape_layer
-----------------
.. automodule:: paddle.trainer_config_helpers.layers
:members: seq_reshape_layer
:noindex:
Math Layers
===========
...
...
paddle/gserver/layers/SequenceReshapeLayer.cpp
浏览文件 @
6cf56035
...
...
@@ -20,9 +20,12 @@ limitations under the License. */
namespace
paddle
{
/**
* A layer for reshaping the sequence
* Input: a sequence
* Output: a sequence
* A layer for reshaping the sequence. Assume the input sequence has
* T instances, the dimension of each instance is M, and the input
* reshape_dim is N, then the output sequence has T*M/N instances,
* the dimension of each instance is N.
*
* Note that T*M/N must be an integer.
*/
class
SequenceReshapeLayer
:
public
Layer
{
...
...
python/paddle/trainer_config_helpers/layers.py
浏览文件 @
6cf56035
...
...
@@ -37,6 +37,7 @@ __all__ = [
"dotmul_projection"
,
"dotmul_operator"
,
"repeat_layer"
,
"seq_reshape_layer"
,
"table_projection"
,
"mixed_layer"
,
"data_layer"
,
...
...
@@ -125,6 +126,7 @@ class LayerType(object):
GRUMEMORY
=
"gated_recurrent"
SEQUENCE_LAST_INSTANCE
=
"seqlastins"
SEQUENCE_FIRST_INSTANCE
=
"seqfirstins"
SEQUENCE_RESHAPE
=
"seqreshape"
POOLING_MAX
=
"max"
POOLING_AVG
=
'average'
FC_LAYER
=
"fc"
...
...
@@ -1450,6 +1452,61 @@ def repeat_layer(input, num_repeats, name=None, layer_attr=None):
parents
=
[
input
])
@
wrap_name_default
(
"seqreshape"
)
@
wrap_act_default
(
act
=
IdentityActivation
())
@
wrap_bias_attr_default
(
has_bias
=
False
)
@
layer_support
()
def
seq_reshape_layer
(
input
,
reshape_size
,
act
=
None
,
name
=
None
,
layer_attr
=
None
,
bias_attr
=
None
):
"""
A layer for reshaping the sequence. Assume the input sequence has T instances,
the dimension of each instance is M, and the input reshape_size is N, then the
output sequence has T*M/N instances, the dimension of each instance is N.
Note that T*M/N must be an integer.
The example usage is:
.. code-block:: python
reshape = seq_reshape_layer(input=layer, reshape_size=4)
:param input: Input layer.
:type input: LayerOutput
:param reshape_size: the size of reshaped sequence.
:type reshape_size: int
:param name: Layer name.
:type name: basestring
:param act: Activation type.
:type act: BaseActivation
:param layer_attr: extra layer attributes.
:type layer_attr: ExtraLayerAttribute.
:param bias_attr: The Bias Attribute. If no bias, then pass False or
something not type of ParameterAttribute. None will get a
default Bias.
:type bias_attr: ParameterAttribute or None or bool
:return: LayerOutput object.
:rtype: LayerOutput
"""
Layer
(
inputs
=
[
input
.
name
],
name
=
name
,
size
=
reshape_size
,
type
=
LayerType
.
SEQUENCE_RESHAPE
,
bias
=
ParamAttr
.
to_bias
(
bias_attr
),
**
ExtraAttr
.
to_kwargs
(
layer_attr
))
return
LayerOutput
(
name
=
name
,
size
=
reshape_size
,
layer_type
=
LayerType
.
SEQUENCE_RESHAPE
,
parents
=
[
input
])
@
wrap_name_default
()
@
layer_support
()
def
interpolation_layer
(
input
,
weight
,
name
=
None
,
layer_attr
=
None
):
...
...
@@ -2604,6 +2661,10 @@ def seq_concat_layer(a, b, act=None, name=None, layer_attr=None,
:type act: BaseActivation
:param layer_attr: Extra Layer Attribute.
:type layer_attr: ExtraLayerAttribute
:param bias_attr: The Bias Attribute. If no bias, then pass False or
something not type of ParameterAttribute. None will get a
default Bias.
:type bias_attr: ParameterAttribute or None or bool
:return: LayerOutput object.
:rtype: LayerOutput
"""
...
...
python/paddle/trainer_config_helpers/tests/configs/file_list.sh
浏览文件 @
6cf56035
...
...
@@ -5,6 +5,6 @@ last_first_seq test_expand_layer test_ntm_layers test_hsigmoid
img_layers img_trans_layers util_layers simple_rnn_layers unused_layers test_cost_layers
test_rnn_group shared_fc shared_lstm shared_gru test_cost_layers_with_weight
test_spp_layer test_bilinear_interp test_maxout test_bi_grumemory math_ops
test_seq_concat
)
test_seq_concat
_reshape
)
export
whole_configs
=(
test_split_datasource
)
python/paddle/trainer_config_helpers/tests/configs/protostr/test_seq_concat.protostr
→
python/paddle/trainer_config_helpers/tests/configs/protostr/test_seq_concat
_reshape
.protostr
浏览文件 @
6cf56035
...
...
@@ -23,17 +23,29 @@ layers {
input_layer_name: "data2"
}
}
layers {
name: "__seqreshape_0__"
type: "seqreshape"
size: 5
active_type: "linear"
inputs {
input_layer_name: "data1"
}
}
input_layer_names: "data1"
input_layer_names: "data2"
output_layer_names: "__seqconcat_0__"
output_layer_names: "__seqreshape_0__"
sub_models {
name: "root"
layer_names: "data1"
layer_names: "data2"
layer_names: "__seqconcat_0__"
layer_names: "__seqreshape_0__"
input_layer_names: "data1"
input_layer_names: "data2"
output_layer_names: "__seqconcat_0__"
output_layer_names: "__seqreshape_0__"
is_recurrent_layer_group: false
}
python/paddle/trainer_config_helpers/tests/configs/test_seq_concat.py
→
python/paddle/trainer_config_helpers/tests/configs/test_seq_concat
_reshape
.py
浏览文件 @
6cf56035
...
...
@@ -3,7 +3,10 @@ from paddle.trainer_config_helpers import *
settings
(
batch_size
=
1000
,
learning_rate
=
1e-5
)
din1
=
data_layer
(
name
=
'data1'
,
size
=
30
)
din2
=
data_layer
(
name
=
'data2'
,
size
=
30
)
outputs
(
seq_concat_layer
(
a
=
din1
,
b
=
din2
))
opts
=
[]
opts
.
append
(
seq_concat_layer
(
a
=
din1
,
b
=
din2
))
opts
.
append
(
seq_reshape_layer
(
input
=
din1
,
reshape_size
=
5
))
outputs
(
opts
)
python/paddle/v2/__init__.py
浏览文件 @
6cf56035
...
...
@@ -21,15 +21,8 @@ import data_type
import
py_paddle.swig_paddle
as
api
__all__
=
[
'optimizer'
,
'layer'
,
'activation'
,
'parameters'
,
'init'
,
'trainer'
,
'event'
,
'data_type'
,
'data_feeder'
,
'optimizer'
,
'layer'
,
'activation'
,
'parameters'
,
'init'
,
'trainer'
,
'event'
,
'data_type'
,
'data_feeder'
]
...
...
python/paddle/v2/layer.py
浏览文件 @
6cf56035
...
...
@@ -66,12 +66,14 @@ Also, the creation of a protobuf message is hidden in the invocation of
paddle.v2.parameters.create, no longer exposed to users.
"""
import
collections
import
paddle.trainer_config_helpers
as
conf_helps
from
.
import
data_type
as
v2_data
from
paddle.trainer_config_helpers.config_parser_utils
import
\
parse_network_config
as
__parse__
from
paddle.trainer_config_helpers.default_decorators
import
wrap_name_default
import
collections
import
data_type
__all__
=
[
'parse_network'
,
'data'
,
'fc'
,
'max_id'
,
'classification_cost'
,
...
...
@@ -166,7 +168,7 @@ So we also need to implement some special LayerV2.
class
DataLayerV2
(
Layer
):
def
__init__
(
self
,
name
,
type
,
**
kwargs
):
assert
isinstance
(
type
,
v2_data
.
InputType
)
assert
isinstance
(
type
,
data_type
.
InputType
)
self
.
type
=
type
self
.
__method_name__
=
'data_layer'
...
...
@@ -198,8 +200,8 @@ cross_entropy_cost = __convert_to_v2__(
parent_names
=
[
'input'
,
'label'
])
if
__name__
==
'__main__'
:
pixel
=
data
(
name
=
'pixel'
,
type
=
v2_data
.
dense_vector
(
784
))
label
=
data
(
name
=
'label'
,
type
=
v2_data
.
integer_value
(
10
))
pixel
=
data
(
name
=
'pixel'
,
type
=
data_type
.
dense_vector
(
784
))
label
=
data
(
name
=
'label'
,
type
=
data_type
.
integer_value
(
10
))
hidden
=
fc
(
input
=
pixel
,
size
=
100
,
act
=
conf_helps
.
SigmoidActivation
())
inference
=
fc
(
input
=
hidden
,
size
=
10
,
act
=
conf_helps
.
SoftmaxActivation
())
maxid
=
max_id
(
input
=
inference
)
...
...
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