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体验新版 GitCode,发现更多精彩内容 >>
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ee49f54e
编写于
12月 19, 2017
作者:
T
tensor-tang
浏览文件
操作
浏览文件
下载
电子邮件补丁
差异文件
use small samples to infer openblas for saving time.
上级
a87f4963
变更
6
隐藏空白更改
内联
并排
Showing
6 changed file
with
18 addition
and
9 deletion
+18
-9
benchmark/paddle/image/googlenet.py
benchmark/paddle/image/googlenet.py
+3
-1
benchmark/paddle/image/provider.py
benchmark/paddle/image/provider.py
+2
-1
benchmark/paddle/image/resnet.py
benchmark/paddle/image/resnet.py
+3
-1
benchmark/paddle/image/run_openblas_infer.sh
benchmark/paddle/image/run_openblas_infer.sh
+6
-5
benchmark/paddle/image/run_openblas_train.sh
benchmark/paddle/image/run_openblas_train.sh
+1
-0
benchmark/paddle/image/vgg.py
benchmark/paddle/image/vgg.py
+3
-1
未找到文件。
benchmark/paddle/image/googlenet.py
浏览文件 @
ee49f54e
...
...
@@ -7,13 +7,15 @@ num_class = 1000
batch_size
=
get_config_arg
(
'batch_size'
,
int
,
128
)
use_gpu
=
get_config_arg
(
'use_gpu'
,
bool
,
True
)
is_infer
=
get_config_arg
(
"is_infer"
,
bool
,
False
)
num_samples
=
get_config_arg
(
'num_samples'
,
int
,
2560
)
args
=
{
'height'
:
height
,
'width'
:
width
,
'color'
:
True
,
'num_class'
:
num_class
,
'is_infer'
:
is_infer
'is_infer'
:
is_infer
,
'num_samples'
:
num_samples
}
define_py_data_sources2
(
"train.list"
if
not
is_infer
else
None
,
...
...
benchmark/paddle/image/provider.py
浏览文件 @
ee49f54e
...
...
@@ -14,6 +14,7 @@ def initHook(settings, height, width, color, num_class, **kwargs):
else
:
settings
.
data_size
=
settings
.
height
*
settings
.
width
settings
.
is_infer
=
kwargs
.
get
(
'is_infer'
,
False
)
settings
.
num_samples
=
kwargs
.
get
(
'num_samples'
,
2560
)
if
settings
.
is_infer
:
settings
.
slots
=
[
dense_vector
(
settings
.
data_size
)]
else
:
...
...
@@ -23,7 +24,7 @@ def initHook(settings, height, width, color, num_class, **kwargs):
@
provider
(
init_hook
=
initHook
,
min_pool_size
=-
1
,
cache
=
CacheType
.
CACHE_PASS_IN_MEM
)
def
process
(
settings
,
file_list
):
for
i
in
xrange
(
2560
if
settings
.
is_infer
else
1024
):
for
i
in
xrange
(
settings
.
num_samples
):
img
=
np
.
random
.
rand
(
1
,
settings
.
data_size
).
reshape
(
-
1
,
1
).
flatten
()
if
settings
.
is_infer
:
yield
img
.
astype
(
'float32'
)
...
...
benchmark/paddle/image/resnet.py
浏览文件 @
ee49f54e
...
...
@@ -7,13 +7,15 @@ num_class = 1000
batch_size
=
get_config_arg
(
'batch_size'
,
int
,
64
)
layer_num
=
get_config_arg
(
"layer_num"
,
int
,
50
)
is_infer
=
get_config_arg
(
"is_infer"
,
bool
,
False
)
num_samples
=
get_config_arg
(
'num_samples'
,
int
,
2560
)
args
=
{
'height'
:
height
,
'width'
:
width
,
'color'
:
True
,
'num_class'
:
num_class
,
'is_infer'
:
is_infer
'is_infer'
:
is_infer
,
'num_samples'
:
num_samples
}
define_py_data_sources2
(
"train.list"
if
not
is_infer
else
None
,
...
...
benchmark/paddle/image/run_openblas_infer.sh
浏览文件 @
ee49f54e
...
...
@@ -23,24 +23,25 @@ function infer() {
echo
"./run_mkl_infer.sh to save the model first"
exit
0
fi
log_period
=
$((
256
/
bs
))
log_period
=
$((
32
/
bs
))
paddle train
--job
=
test
\
--config
=
"
${
topology
}
.py"
\
--use_mkldnn
=
False
\
--use_gpu
=
False
\
--trainer_count
=
$thread
\
--log_period
=
$log_period
\
--config_args
=
"batch_size=
${
bs
}
,layer_num=
${
layer_num
}
,is_infer=True"
\
--config_args
=
"batch_size=
${
bs
}
,layer_num=
${
layer_num
}
,is_infer=True
,num_samples=256
"
\
--init_model_path
=
$models_in
\
2>&1 |
tee
${
log
}
# calculate the last 5 logs period time of 1
280
samples,
# calculate the last 5 logs period time of 1
60(=32*5)
samples,
# the time before are burning time.
start
=
`
tail
${
log
}
-n
7 |
head
-n
1 |
awk
-F
' '
'{print $2}'
| xargs
`
end
=
`
tail
${
log
}
-n
2 |
head
-n
1 |
awk
-F
' '
'{print $2}'
| xargs
`
start_sec
=
`
clock_to_seconds
$start
`
end_sec
=
`
clock_to_seconds
$end
`
fps
=
`
awk
'BEGIN{printf "%.2f",(1
28
0 / ('
$end_sec
' - '
$start_sec
'))}'
`
echo
"Last 1
28
0 samples start:
${
start
}
(
${
start_sec
}
sec), end:
${
end
}
(
${
end_sec
}
sec;"
>>
${
log
}
fps
=
`
awk
'BEGIN{printf "%.2f",(1
6
0 / ('
$end_sec
' - '
$start_sec
'))}'
`
echo
"Last 1
6
0 samples start:
${
start
}
(
${
start_sec
}
sec), end:
${
end
}
(
${
end_sec
}
sec;"
>>
${
log
}
echo
"FPS:
$fps
images/sec"
2>&1 |
tee
-a
${
log
}
}
...
...
benchmark/paddle/image/run_openblas_train.sh
浏览文件 @
ee49f54e
...
...
@@ -12,6 +12,7 @@ function train() {
config
=
"
${
topology
}
.py"
paddle train
--job
=
time
\
--config
=
$config
\
--use_mkldnn
=
False
\
--use_gpu
=
False
\
--trainer_count
=
$thread
\
--log_period
=
10
\
...
...
benchmark/paddle/image/vgg.py
浏览文件 @
ee49f54e
...
...
@@ -7,13 +7,15 @@ num_class = 1000
batch_size
=
get_config_arg
(
'batch_size'
,
int
,
64
)
layer_num
=
get_config_arg
(
'layer_num'
,
int
,
19
)
is_infer
=
get_config_arg
(
"is_infer"
,
bool
,
False
)
num_samples
=
get_config_arg
(
'num_samples'
,
int
,
2560
)
args
=
{
'height'
:
height
,
'width'
:
width
,
'color'
:
True
,
'num_class'
:
num_class
,
'is_infer'
:
is_infer
'is_infer'
:
is_infer
,
'num_samples'
:
num_samples
}
define_py_data_sources2
(
"train.list"
if
not
is_infer
else
None
,
...
...
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