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4e48778e
编写于
5月 17, 2021
作者:
H
HexToString
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add resnet50_benchmark
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python/examples/resnet_v2_50/benchmark.py
python/examples/resnet_v2_50/benchmark.py
+101
-0
python/examples/resnet_v2_50/benchmark.sh
python/examples/resnet_v2_50/benchmark.sh
+58
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python/examples/resnet_v2_50/run_benchmark.sh
python/examples/resnet_v2_50/run_benchmark.sh
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python/examples/resnet_v2_50/benchmark.py
0 → 100644
浏览文件 @
4e48778e
# -*- coding: utf-8 -*-
#
# 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
from
__future__
import
unicode_literals
,
absolute_import
import
os
import
sys
import
time
import
json
import
requests
import
numpy
as
np
from
paddle_serving_client
import
Client
from
paddle_serving_client.utils
import
MultiThreadRunner
from
paddle_serving_client.utils
import
benchmark_args
,
show_latency
from
paddle_serving_app.reader
import
Sequential
,
File2Image
,
Resize
,
CenterCrop
from
paddle_serving_app.reader
import
RGB2BGR
,
Transpose
,
Div
,
Normalize
args
=
benchmark_args
()
def
single_func
(
idx
,
resource
):
total_number
=
0
profile_flags
=
False
latency_flags
=
False
if
os
.
getenv
(
"FLAGS_profile_client"
):
profile_flags
=
True
if
os
.
getenv
(
"FLAGS_serving_latency"
):
latency_flags
=
True
latency_list
=
[]
if
args
.
request
==
"rpc"
:
client
=
Client
()
client
.
load_client_config
(
args
.
model
)
client
.
connect
([
resource
[
"endpoint"
][
idx
%
len
(
resource
[
"endpoint"
])]])
start
=
time
.
time
()
for
i
in
range
(
turns
):
if
args
.
batch_size
>=
1
:
l_start
=
time
.
time
()
seq
=
Sequential
([
File2Image
(),
Resize
(
256
),
CenterCrop
(
224
),
RGB2BGR
(),
Transpose
((
2
,
0
,
1
)),
Div
(
255
),
Normalize
(
[
0.485
,
0.456
,
0.406
],
[
0.229
,
0.224
,
0.225
],
True
)
])
image_file
=
"daisy.jpg"
img
=
seq
(
image_file
)
result
=
client
.
predict
(
feed
=
{
"image"
:
img
},
fetch
=
[
"save_infer_model/scale_0.tmp_0"
])
l_end
=
time
.
time
()
if
latency_flags
:
latency_list
.
append
(
l_end
*
1000
-
l_start
*
1000
)
total_number
=
total_number
+
1
else
:
print
(
"unsupport batch size {}"
.
format
(
args
.
batch_size
))
else
:
raise
ValueError
(
"not implemented {} request"
.
format
(
args
.
request
))
end
=
time
.
time
()
if
latency_flags
:
return
[[
end
-
start
],
latency_list
,
[
total_number
]]
else
:
return
[[
end
-
start
]]
if
__name__
==
'__main__'
:
multi_thread_runner
=
MultiThreadRunner
()
endpoint_list
=
[
"127.0.0.1:9393"
]
turns
=
1
start
=
time
.
time
()
result
=
multi_thread_runner
.
run
(
single_func
,
args
.
thread
,
{
"endpoint"
:
endpoint_list
,
"turns"
:
turns
})
end
=
time
.
time
()
total_cost
=
end
-
start
total_number
=
0
avg_cost
=
0
for
i
in
range
(
args
.
thread
):
avg_cost
+=
result
[
0
][
i
]
total_number
+=
result
[
2
][
i
]
avg_cost
=
avg_cost
/
args
.
thread
print
(
"total cost-include init: {}s"
.
format
(
total_cost
))
print
(
"each thread cost: {}s. "
.
format
(
avg_cost
))
print
(
"qps: {}samples/s"
.
format
(
args
.
batch_size
*
total_number
/
(
avg_cost
*
args
.
thread
)))
print
(
"total count: {} "
.
format
(
total_number
))
if
os
.
getenv
(
"FLAGS_serving_latency"
):
show_latency
(
result
[
1
])
python/examples/resnet_v2_50/benchmark.sh
0 → 100644
浏览文件 @
4e48778e
rm
profile_log
*
rm
-rf
resnet_log
*
export
CUDA_VISIBLE_DEVICES
=
0
#export FLAGS_profile_server=1
#export FLAGS_profile_client=1
export
FLAGS_serving_latency
=
1
gpu_id
=
0
#save cpu and gpu utilization log
if
[
-d
utilization
]
;
then
rm
-rf
utilization
else
mkdir
utilization
fi
#start server
python3.6
-m
paddle_serving_server.serve
--model
$1
--port
9393
--thread
10
--gpu_ids
0
--use_trt
--ir_optim
>
elog 2>&1 &
sleep
20
#warm up
python3.6 benchmark.py
--thread
1
--batch_size
1
--model
$2
/serving_client_conf.prototxt
--request
rpc
>
profile 2>&1
echo
-e
"import psutil
\n
import time
\n
while True:
\n\t
cpu_res = psutil.cpu_percent()
\n\t
with open('cpu.txt', 'a+') as f:
\n\t\t
f.write(f'{cpu_res}
\\\n
')
\n\t
time.sleep(0.1)"
>
cpu.py
for
thread_num
in
1
do
for
batch_size
in
1
do
job_bt
=
`
date
'+%Y%m%d%H%M%S'
`
nvidia-smi
--id
=
0
--query-compute-apps
=
used_memory
--format
=
csv
-lms
100
>
gpu_memory_use.log 2>&1 &
nvidia-smi
--id
=
0
--query-gpu
=
utilization.gpu
--format
=
csv
-lms
100
>
gpu_utilization.log 2>&1 &
rm
-rf
cpu.txt
python3.6 cpu.py &
gpu_memory_pid
=
$!
python3.6 benchmark.py
--thread
$thread_num
--batch_size
$batch_size
--model
$2
/serving_client_conf.prototxt
--request
rpc
>
profile 2>&1
kill
`
ps
-ef
|grep used_memory|awk
'{print $2}'
`
>
/dev/null
kill
`
ps
-ef
|grep utilization.gpu|awk
'{print $2}'
`
>
/dev/null
kill
`
ps
-ef
|grep cpu.py|awk
'{print $2}'
`
>
/dev/null
echo
"model_name:"
$1
echo
"thread_num:"
$thread_num
echo
"batch_size:"
$batch_size
echo
"=================Done===================="
echo
"model_name:
$1
"
>>
profile_log_
$1
echo
"batch_size:
$batch_size
"
>>
profile_log_
$1
job_et
=
`
date
'+%Y%m%d%H%M%S'
`
awk
'BEGIN {max = 0} {if(NR>1){if ($1 > max) max=$1}} END {print "CPU_UTILIZATION:", max}'
cpu.txt
>>
profile_log_
$1
#awk 'BEGIN {max = 0} {if(NR>1){if ($1 > max) max=$1}} END {print "MAX_GPU_MEMORY:", max}' gpu_memory_use.log >> profile_log_$1
#awk 'BEGIN {max = 0} {if(NR>1){if ($1 > max) max=$1}} END {print "GPU_UTILIZATION:", max}' gpu_utilization.log >> profile_log_$1
grep
-av
'^0 %'
gpu_utilization.log
>
gpu_utilization.log.tmp
awk
'BEGIN {max = 0} {if(NR>1){if ($1 > max) max=$1}} END {print "MAX_GPU_MEMORY:", max}'
gpu_memory_use.log
>>
profile_log_
$1
awk
-F
" "
'{sum+=$1} END {print "GPU_UTILIZATION:", sum/NR, sum, NR }'
gpu_utilization.log.tmp
>>
profile_log_
$1
rm
-rf
gpu_memory_use.log gpu_utilization.log gpu_utilization.log.tmp
python3.6 ../util/show_profile.py profile
$thread_num
>>
profile_log_
$1
tail
-n
9 profile
>>
profile_log_
$1
echo
""
>>
profile_log_
$1
done
done
#Divided log
awk
'BEGIN{RS="\n\n"}{i++}{print > "resnet_log_"i}'
profile_log_
$1
mkdir
resnet_log
&&
mv
resnet_log_
*
resnet_log
ps
-ef
|grep
'serving'
|grep
-v
grep
|cut
-c
9-15 | xargs
kill
-9
python/examples/resnet_v2_50/run_benchmark.sh
0 → 100644
浏览文件 @
4e48778e
if
[
!
-x
"ResNet50.tar.gz"
]
;
then
wget https://paddle-inference-dist.bj.bcebos.com/AI-Rank/models/Paddle/ResNet50.tar.gz
fi
tar
-xzvf
ResNet50.tar.gz
python3.6
-m
paddle_serving_client.convert
--dirname
./ResNet50
--model_filename
model
--params_filename
params
bash benchmark.sh serving_server serving_client
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