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023166a8
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023166a8
编写于
10月 23, 2017
作者:
T
typhoonzero
浏览文件
操作
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电子邮件补丁
差异文件
add ut, follow comments
上级
71c2b296
变更
5
隐藏空白更改
内联
并排
Showing
5 changed file
with
102 addition
and
8 deletion
+102
-8
paddle/math/RowBuffer.h
paddle/math/RowBuffer.h
+3
-1
python/paddle/v2/tests/CMakeLists.txt
python/paddle/v2/tests/CMakeLists.txt
+1
-0
python/paddle/v2/tests/test_paramconf_order.py
python/paddle/v2/tests/test_paramconf_order.py
+85
-0
python/paddle/v2/topology.py
python/paddle/v2/topology.py
+10
-7
python/paddle/v2/trainer.py
python/paddle/v2/trainer.py
+3
-0
未找到文件。
paddle/math/RowBuffer.h
浏览文件 @
023166a8
...
...
@@ -60,7 +60,9 @@ public:
*/
inline
real
*
get
(
int
row
)
const
{
if
(
preallocatedBuf_
)
{
CHECK_LE
((
row
+
1
)
*
width_
*
sizeof
(
real
),
preallocatedBuf_
->
getSize
());
// CHECK_LE((row + 1) * width_ * sizeof(real),
// preallocatedBuf_->getSize());
CHECK_LE
((
row
)
*
width_
*
sizeof
(
real
),
preallocatedBuf_
->
getSize
());
return
reinterpret_cast
<
real
*>
(
preallocatedBuf_
->
getBuf
())
+
row
*
width_
;
}
else
{
CHECK_LE
((
row
+
1
)
*
width_
,
rowStore_
.
size
());
...
...
python/paddle/v2/tests/CMakeLists.txt
浏览文件 @
023166a8
...
...
@@ -5,3 +5,4 @@ py_test(test_topology SRCS test_topology.py)
py_test
(
test_rnn_layer SRCS test_rnn_layer.py
)
py_test
(
test_parameters SRCS test_parameters.py
)
py_test
(
test_data_feeder SRCS test_data_feeder.py
)
py_test
(
test_paramconf_order SRCS test_paramconf_order.py
)
python/paddle/v2/tests/test_paramconf_order.py
0 → 100644
浏览文件 @
023166a8
# Copyright PaddlePaddle contributors. All Rights Reserved
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
import
unittest
import
math
import
paddle.v2
as
paddle
def
wordemb
(
inlayer
):
wordemb
=
paddle
.
layer
.
table_projection
(
input
=
inlayer
,
size
=
5
,
param_attr
=
paddle
.
attr
.
Param
(
name
=
"_proj"
,
initial_std
=
0.001
,
learning_rate
=
1
,
l2_rate
=
0
))
return
wordemb
def
train
():
word_dict
=
paddle
.
dataset
.
imikolov
.
build_dict
()
dict_size
=
len
(
word_dict
)
# Every layer takes integer value of range [0, dict_size)
firstword
=
paddle
.
layer
.
data
(
name
=
"firstw"
,
type
=
paddle
.
data_type
.
integer_value
(
dict_size
))
secondword
=
paddle
.
layer
.
data
(
name
=
"secondw"
,
type
=
paddle
.
data_type
.
integer_value
(
dict_size
))
thirdword
=
paddle
.
layer
.
data
(
name
=
"thirdw"
,
type
=
paddle
.
data_type
.
integer_value
(
dict_size
))
fourthword
=
paddle
.
layer
.
data
(
name
=
"fourthw"
,
type
=
paddle
.
data_type
.
integer_value
(
dict_size
))
nextword
=
paddle
.
layer
.
data
(
name
=
"fifthw"
,
type
=
paddle
.
data_type
.
integer_value
(
dict_size
))
Efirst
=
wordemb
(
firstword
)
Esecond
=
wordemb
(
secondword
)
Ethird
=
wordemb
(
thirdword
)
Efourth
=
wordemb
(
fourthword
)
contextemb
=
paddle
.
layer
.
concat
(
input
=
[
Efirst
,
Esecond
,
Ethird
,
Efourth
])
hidden1
=
paddle
.
layer
.
fc
(
name
=
"fc1"
,
input
=
contextemb
,
size
=
128
,
act
=
paddle
.
activation
.
Sigmoid
(),
layer_attr
=
paddle
.
attr
.
Extra
(
drop_rate
=
0.5
),
bias_attr
=
paddle
.
attr
.
Param
(
learning_rate
=
2
),
param_attr
=
paddle
.
attr
.
Param
(
initial_std
=
1.
/
math
.
sqrt
(
5
*
8
),
learning_rate
=
1
,
l2_rate
=
6e-4
))
predictword
=
paddle
.
layer
.
fc
(
input
=
hidden1
,
size
=
dict_size
,
bias_attr
=
paddle
.
attr
.
Param
(
learning_rate
=
2
),
act
=
paddle
.
activation
.
Softmax
())
return
paddle
.
layer
.
classification_cost
(
input
=
predictword
,
label
=
nextword
)
class
TestParamConfOrder
(
unittest
.
TestCase
):
def
test_param_conf_order
(
self
):
paddle
.
init
()
cost
=
train
()
parameters
=
paddle
.
parameters
.
create
(
cost
)
adagrad
=
paddle
.
optimizer
.
AdaGrad
(
learning_rate
=
3e-3
,
regularization
=
paddle
.
optimizer
.
L2Regularization
(
rate
=
8e-4
))
trainer
=
paddle
.
trainer
.
SGD
(
cost
,
parameters
,
adagrad
)
for
p
in
trainer
.
get_topology_proto
().
parameters
:
if
p
.
name
==
"_fc1.w0"
:
self
.
assertEqual
(
p
.
decay_rate
,
6e-4
)
else
:
self
.
assertEqual
(
p
.
decay_rate
,
8e-4
)
if
__name__
==
'__main__'
:
unittest
.
main
()
python/paddle/v2/topology.py
浏览文件 @
023166a8
...
...
@@ -52,11 +52,10 @@ class Topology(object):
assert
isinstance
(
self
.
__model_config__
,
ModelConfig
)
def
update_from_default
(
self
):
# HACK(typhoonzero): update ParameterConfig(proto) in case of
optimizers
# are defined after layers, or between layers.
# HACK(typhoonzero): update ParameterConfig(proto) in case of
#
optimizers
are defined after layers, or between layers.
# Must be called from trainer.__init__()
for
parameter
in
self
.
__model_config__
.
parameters
:
print
"####"
,
parameter
.
decay_rate
,
cp
.
g_default_decay_rate
if
parameter
.
momentum
==
0.0
and
cp
.
g_default_momentum
:
parameter
.
momentum
=
cp
.
g_default_momentum
if
parameter
.
decay_rate
==
0.0
and
cp
.
g_default_decay_rate
:
...
...
@@ -69,10 +68,14 @@ class Topology(object):
parameter
.
initial_strategy
=
cp
.
g_default_initial_strategy
if
parameter
.
initial_smart
==
False
:
parameter
.
initial_smart
=
cp
.
g_default_initial_smart
if
parameter
.
num_batches_regularization
==
1
and
cp
.
g_default_num_batches_regularization
:
parameter
.
num_batches_regularization
=
cp
.
g_default_num_batches_regularization
if
parameter
.
gradient_clipping_threshold
==
0.0
and
cp
.
g_default_gradient_clipping_threshold
:
parameter
.
gradient_clipping_threshold
=
cp
.
g_default_gradient_clipping_threshold
if
parameter
.
num_batches_regularization
==
1
and
\
cp
.
g_default_num_batches_regularization
:
parameter
.
num_batches_regularization
=
\
cp
.
g_default_num_batches_regularization
if
parameter
.
gradient_clipping_threshold
==
0.0
and
\
cp
.
g_default_gradient_clipping_threshold
:
parameter
.
gradient_clipping_threshold
=
\
cp
.
g_default_gradient_clipping_threshold
if
parameter
.
device
==
-
1
and
cp
.
g_default_device
:
parameter
.
device
=
cp
.
g_default_device
# FIXME(typhoonzero): ignored: update_hooks, g_default_compact_func
...
...
python/paddle/v2/trainer.py
浏览文件 @
023166a8
...
...
@@ -96,6 +96,9 @@ class SGD(object):
self
.
__parameters__
.
append_gradient_machine
(
gm
)
self
.
__parameter_updater__
=
None
def
get_topology_proto
(
self
):
return
self
.
__topology_in_proto__
def
__use_remote_sparse_updater__
(
self
):
return
self
.
__use_sparse_updater__
and
not
self
.
__is_local__
...
...
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