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f98797ef
编写于
3月 26, 2019
作者:
Z
Zeyu Chen
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电子邮件补丁
差异文件
add hub task
上级
02086c0d
变更
2
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2 changed file
with
54 addition
and
0 deletion
+54
-0
paddle_hub/__init__.py
paddle_hub/__init__.py
+1
-0
paddle_hub/finetune/task.py
paddle_hub/finetune/task.py
+53
-0
未找到文件。
paddle_hub/__init__.py
浏览文件 @
f98797ef
...
...
@@ -26,3 +26,4 @@ from .tools.logger import logger
from
.tools.paddle_helper
import
connect_program
from
.io.type
import
DataType
from
.hub_server
import
default_hub_server
from
.finetune.task
import
append_mlp_classifier
paddle_hub/finetune/task.py
0 → 100644
浏览文件 @
f98797ef
# Copyright (c) 2019 PaddlePaddle Authors. 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
os
import
paddle.fluid
as
fluid
__all__
=
[
'append_mlp_classifier'
]
def
append_mlp_classifier
(
feature
,
label
,
num_classes
=
2
,
hidden_units
=
None
):
cls_feats
=
fluid
.
layers
.
dropout
(
x
=
feature
,
dropout_prob
=
0.1
,
dropout_implementation
=
"upscale_in_train"
)
# append fully connected layer according to hidden_units
if
hidden_units
!=
None
:
for
n_hidden
in
hidden_units
:
cls_feats
=
fluid
.
layers
.
fc
(
input
=
cls_feats
,
size
=
n_hidden
)
logits
=
fluid
.
layers
.
fc
(
input
=
cls_feats
,
size
=
num_classes
,
param_attr
=
fluid
.
ParamAttr
(
name
=
"cls_out_w"
,
initializer
=
fluid
.
initializer
.
TruncatedNormal
(
scale
=
0.02
)),
bias_attr
=
fluid
.
ParamAttr
(
name
=
"cls_out_b"
,
initializer
=
fluid
.
initializer
.
Constant
(
0.
)))
ce_loss
,
probs
=
fluid
.
layers
.
softmax_with_cross_entropy
(
logits
=
logits
,
label
=
label
,
return_softmax
=
True
)
loss
=
fluid
.
layers
.
mean
(
x
=
ce_loss
)
num_example
=
fluid
.
layers
.
create_tensor
(
dtype
=
'int64'
)
accuracy
=
fluid
.
layers
.
accuracy
(
input
=
probs
,
label
=
label
,
total
=
num_example
)
# TODO: encapsulate to Task
return
loss
,
probs
,
accuracy
,
num_example
class
Task
(
object
):
def
__init__
(
self
):
pass
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