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26af11ba
编写于
2月 18, 2021
作者:
J
Jiawei Wang
提交者:
GitHub
2月 18, 2021
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Merge branch 'develop' into docs_0.5.0
上级
24afa1b8
50d0c290
变更
4
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Showing
4 changed file
with
41 addition
and
104 deletion
+41
-104
python/examples/criteo_ctr/README.md
python/examples/criteo_ctr/README.md
+1
-1
python/examples/criteo_ctr/README_CN.md
python/examples/criteo_ctr/README_CN.md
+1
-1
python/examples/criteo_ctr/criteo_reader.py
python/examples/criteo_ctr/criteo_reader.py
+0
-83
python/examples/criteo_ctr/test_client.py
python/examples/criteo_ctr/test_client.py
+39
-19
未找到文件。
python/examples/criteo_ctr/README.md
浏览文件 @
26af11ba
...
...
@@ -26,6 +26,6 @@ python -m paddle_serving_server_gpu.serve --model ctr_serving_model/ --port 9292
### RPC Infer
```
python test_client.py ctr_client_conf/serving_client_conf.prototxt raw_data/
python test_client.py ctr_client_conf/serving_client_conf.prototxt raw_data/
part-0
```
the latency will display in the end.
python/examples/criteo_ctr/README_CN.md
浏览文件 @
26af11ba
...
...
@@ -26,6 +26,6 @@ python -m paddle_serving_server_gpu.serve --model ctr_serving_model/ --port 9292
### 执行预测
```
python test_client.py ctr_client_conf/serving_client_conf.prototxt raw_data/
python test_client.py ctr_client_conf/serving_client_conf.prototxt raw_data/
part-0
```
预测完毕会输出预测过程的耗时。
python/examples/criteo_ctr/criteo_reader.py
已删除
100644 → 0
浏览文件 @
24afa1b8
# Copyright (c) 2020 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.
# pylint: disable=doc-string-missing
import
sys
import
paddle.fluid.incubate.data_generator
as
dg
class
CriteoDataset
(
dg
.
MultiSlotDataGenerator
):
def
setup
(
self
,
sparse_feature_dim
):
self
.
cont_min_
=
[
0
,
-
3
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
]
self
.
cont_max_
=
[
20
,
600
,
100
,
50
,
64000
,
500
,
100
,
50
,
500
,
10
,
10
,
10
,
50
]
self
.
cont_diff_
=
[
20
,
603
,
100
,
50
,
64000
,
500
,
100
,
50
,
500
,
10
,
10
,
10
,
50
]
self
.
hash_dim_
=
sparse_feature_dim
# here, training data are lines with line_index < train_idx_
self
.
train_idx_
=
41256555
self
.
continuous_range_
=
range
(
1
,
14
)
self
.
categorical_range_
=
range
(
14
,
40
)
def
_process_line
(
self
,
line
):
features
=
line
.
rstrip
(
'
\n
'
).
split
(
'
\t
'
)
dense_feature
=
[]
sparse_feature
=
[]
for
idx
in
self
.
continuous_range_
:
if
features
[
idx
]
==
''
:
dense_feature
.
append
(
0.0
)
else
:
dense_feature
.
append
((
float
(
features
[
idx
])
-
self
.
cont_min_
[
idx
-
1
])
/
\
self
.
cont_diff_
[
idx
-
1
])
for
idx
in
self
.
categorical_range_
:
sparse_feature
.
append
(
[
hash
(
str
(
idx
)
+
features
[
idx
])
%
self
.
hash_dim_
])
return
dense_feature
,
sparse_feature
,
[
int
(
features
[
0
])]
def
infer_reader
(
self
,
filelist
,
batch
,
buf_size
):
def
local_iter
():
for
fname
in
filelist
:
with
open
(
fname
.
strip
(),
"r"
)
as
fin
:
for
line
in
fin
:
dense_feature
,
sparse_feature
,
label
=
self
.
_process_line
(
line
)
#yield dense_feature, sparse_feature, label
yield
[
dense_feature
]
+
sparse_feature
+
[
label
]
import
paddle
batch_iter
=
paddle
.
batch
(
paddle
.
reader
.
shuffle
(
local_iter
,
buf_size
=
buf_size
),
batch_size
=
batch
)
return
batch_iter
def
generate_sample
(
self
,
line
):
def
data_iter
():
dense_feature
,
sparse_feature
,
label
=
self
.
_process_line
(
line
)
feature_name
=
[
"dense_input"
]
for
idx
in
self
.
categorical_range_
:
feature_name
.
append
(
"C"
+
str
(
idx
-
13
))
feature_name
.
append
(
"label"
)
yield
zip
(
feature_name
,
[
dense_feature
]
+
sparse_feature
+
[
label
])
return
data_iter
if
__name__
==
"__main__"
:
criteo_dataset
=
CriteoDataset
()
criteo_dataset
.
setup
(
int
(
sys
.
argv
[
1
]))
criteo_dataset
.
run_from_stdin
()
python/examples/criteo_ctr/test_client.py
浏览文件 @
26af11ba
...
...
@@ -14,43 +14,63 @@
# pylint: disable=doc-string-missing
from
paddle_serving_client
import
Client
import
paddle
import
sys
import
os
import
time
import
criteo_reader
as
criteo
from
paddle_serving_client.metric
import
auc
import
numpy
as
np
import
sys
class
CriteoReader
(
object
):
def
__init__
(
self
,
sparse_feature_dim
):
self
.
cont_min_
=
[
0
,
-
3
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
,
0
]
self
.
cont_max_
=
[
20
,
600
,
100
,
50
,
64000
,
500
,
100
,
50
,
500
,
10
,
10
,
10
,
50
]
self
.
cont_diff_
=
[
20
,
603
,
100
,
50
,
64000
,
500
,
100
,
50
,
500
,
10
,
10
,
10
,
50
]
self
.
hash_dim_
=
sparse_feature_dim
# here, training data are lines with line_index < train_idx_
self
.
train_idx_
=
41256555
self
.
continuous_range_
=
range
(
1
,
14
)
self
.
categorical_range_
=
range
(
14
,
40
)
def
process_line
(
self
,
line
):
features
=
line
.
rstrip
(
'
\n
'
).
split
(
'
\t
'
)
dense_feature
=
[]
sparse_feature
=
[]
for
idx
in
self
.
continuous_range_
:
if
features
[
idx
]
==
''
:
dense_feature
.
append
(
0.0
)
else
:
dense_feature
.
append
((
float
(
features
[
idx
])
-
self
.
cont_min_
[
idx
-
1
])
/
\
self
.
cont_diff_
[
idx
-
1
])
for
idx
in
self
.
categorical_range_
:
sparse_feature
.
append
(
[
hash
(
str
(
idx
)
+
features
[
idx
])
%
self
.
hash_dim_
])
return
sparse_feature
py_version
=
sys
.
version_info
[
0
]
client
=
Client
()
client
.
load_client_config
(
sys
.
argv
[
1
])
client
.
connect
([
"127.0.0.1:9292"
])
reader
=
CriteoReader
(
1000001
)
batch
=
1
buf_size
=
100
dataset
=
criteo
.
CriteoDataset
()
dataset
.
setup
(
1000001
)
test_filelists
=
[
"{}/part-%d"
.
format
(
sys
.
argv
[
2
])
%
x
for
x
in
range
(
len
(
os
.
listdir
(
sys
.
argv
[
2
])))
]
reader
=
dataset
.
infer_reader
(
test_filelists
[
len
(
test_filelists
)
-
40
:],
batch
,
buf_size
)
label_list
=
[]
prob_list
=
[]
start
=
time
.
time
()
for
ei
in
range
(
1000
):
if
py_version
==
2
:
data
=
reader
().
next
()
else
:
data
=
reader
().
__next__
()
f
=
open
(
sys
.
argv
[
2
],
'r'
)
for
ei
in
range
(
10
):
data
=
reader
.
process_line
(
f
.
readline
())
feed_dict
=
{}
for
i
in
range
(
1
,
27
):
feed_dict
[
"sparse_{}"
.
format
(
i
-
1
)]
=
np
.
array
(
data
[
0
][
i
]).
reshape
(
-
1
)
feed_dict
[
"sparse_{}.lod"
.
format
(
i
-
1
)]
=
[
0
,
len
(
data
[
0
][
i
])]
feed_dict
[
"sparse_{}"
.
format
(
i
-
1
)]
=
np
.
array
(
data
[
i
-
1
]).
reshape
(
-
1
)
feed_dict
[
"sparse_{}.lod"
.
format
(
i
-
1
)]
=
[
0
,
len
(
data
[
i
-
1
])]
fetch_map
=
client
.
predict
(
feed
=
feed_dict
,
fetch
=
[
"prob"
])
print
(
fetch_map
)
end
=
time
.
time
()
print
(
end
-
start
)
f
.
close
(
)
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