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988f3d40
编写于
1月 15, 2020
作者:
M
MRXLT
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电子邮件补丁
差异文件
add multi thread client
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python/examples/imdb/README.md
python/examples/imdb/README.md
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python/examples/imdb/test_client_multithread.py
python/examples/imdb/test_client_multithread.py
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python/examples/imdb/README.md
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### 使用方法
假设数据文件为test.data,配置文件为inference.conf
单进程client
```
cat test.data | python test_client.py > result
```
多进程client,若进程数为4
```
python test_client_multithread.py inference.conf test.data 4 > result
```
python/examples/imdb/test_client_multithread.py
0 → 100644
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988f3d40
# 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.
from
paddle_serving
import
Client
import
sys
import
subprocess
from
multiprocessing
import
Pool
,
Queue
import
time
def
predict
(
p_id
,
p_size
,
data_list
):
client
=
Client
()
client
.
load_client_config
(
conf_file
)
client
.
connect
([
"127.0.0.1:8010"
])
result
=
[]
for
line
in
data_list
:
group
=
line
.
strip
().
split
()
words
=
[
int
(
x
)
for
x
in
group
[
1
:
int
(
group
[
0
])]]
label
=
[
int
(
group
[
-
1
])]
feed
=
{
"words"
:
words
,
"label"
:
label
}
fetch
=
[
"acc"
,
"cost"
,
"prediction"
]
fetch_map
=
client
.
predict
(
feed
=
feed
,
fetch
=
fetch
)
#print("{} {}".format(fetch_map["prediction"][1], label[0]))
result
.
append
([
fetch_map
[
"prediction"
][
1
],
label
[
0
]])
return
result
def
predict_multi_thread
(
p_num
):
data_list
=
[]
with
open
(
data_file
)
as
f
:
for
line
in
f
.
readlines
():
data_list
.
append
(
line
)
start
=
time
.
time
()
p
=
Pool
(
p_num
)
p_size
=
len
(
data_list
)
/
p_num
result_list
=
[]
for
i
in
range
(
p_num
):
result_list
.
append
(
p
.
apply_async
(
predict
,
[
i
,
p_size
,
data_list
[
i
*
p_size
:(
i
+
1
)
*
p_size
]]))
p
.
close
()
p
.
join
()
for
i
in
range
(
p_num
):
result
=
result_list
[
i
].
get
()
for
j
in
result
:
print
(
"{} {}"
.
format
(
j
[
0
],
j
[
1
]))
cost
=
time
.
time
()
-
start
print
(
"{} threads cost {}"
.
format
(
p_num
,
cost
))
if
__name__
==
'__main__'
:
conf_file
=
sys
.
argv
[
1
]
data_file
=
sys
.
argv
[
2
]
p_num
=
sys
.
argv
[
3
]
predict_multi_thread
(
p_num
)
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