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PaddleOCR
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e51e2b2b
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PaddleOCR
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e51e2b2b
编写于
7月 06, 2021
作者:
T
tink2123
浏览文件
操作
浏览文件
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电子邮件补丁
差异文件
add autolog for infer_rec
上级
38801c7f
变更
1
隐藏空白更改
内联
并排
Showing
1 changed file
with
30 addition
and
4 deletion
+30
-4
tools/infer/predict_rec.py
tools/infer/predict_rec.py
+30
-4
未找到文件。
tools/infer/predict_rec.py
浏览文件 @
e51e2b2b
...
...
@@ -64,6 +64,24 @@ class TextRecognizer(object):
self
.
postprocess_op
=
build_post_process
(
postprocess_params
)
self
.
predictor
,
self
.
input_tensor
,
self
.
output_tensors
,
self
.
config
=
\
utility
.
create_predictor
(
args
,
'rec'
,
logger
)
self
.
benchmark
=
args
.
benchmark
if
args
.
benchmark
:
import
auto_log
pid
=
os
.
getpid
()
self
.
autolog
=
auto_log
.
AutoLogger
(
model_name
=
"rec"
,
model_precision
=
args
.
precision
,
batch_size
=
6
,
data_shape
=
"dynamic"
,
save_path
=
"./output/auto_log.lpg"
,
inference_config
=
self
.
config
,
pids
=
pid
,
process_name
=
None
,
gpu_ids
=
0
if
args
.
use_gpu
else
None
,
time_keys
=
[
'preprocess_time'
,
'inference_time'
,
'postprocess_time'
],
warmup
=
10
)
def
resize_norm_img
(
self
,
img
,
max_wh_ratio
):
imgC
,
imgH
,
imgW
=
self
.
rec_image_shape
...
...
@@ -168,6 +186,8 @@ class TextRecognizer(object):
rec_res
=
[[
''
,
0.0
]]
*
img_num
batch_num
=
self
.
rec_batch_num
st
=
time
.
time
()
if
self
.
benchmark
:
self
.
autolog
.
times
.
start
()
for
beg_img_no
in
range
(
0
,
img_num
,
batch_num
):
end_img_no
=
min
(
img_num
,
beg_img_no
+
batch_num
)
norm_img_batch
=
[]
...
...
@@ -196,6 +216,8 @@ class TextRecognizer(object):
norm_img_batch
.
append
(
norm_img
[
0
])
norm_img_batch
=
np
.
concatenate
(
norm_img_batch
)
norm_img_batch
=
norm_img_batch
.
copy
()
if
self
.
benchmark
:
self
.
autolog
.
times
.
stamp
()
if
self
.
rec_algorithm
==
"SRN"
:
encoder_word_pos_list
=
np
.
concatenate
(
encoder_word_pos_list
)
...
...
@@ -222,6 +244,8 @@ class TextRecognizer(object):
for
output_tensor
in
self
.
output_tensors
:
output
=
output_tensor
.
copy_to_cpu
()
outputs
.
append
(
output
)
if
self
.
benchmark
:
self
.
autolog
.
times
.
stamp
()
preds
=
{
"predict"
:
outputs
[
2
]}
else
:
self
.
input_tensor
.
copy_from_cpu
(
norm_img_batch
)
...
...
@@ -231,11 +255,14 @@ class TextRecognizer(object):
for
output_tensor
in
self
.
output_tensors
:
output
=
output_tensor
.
copy_to_cpu
()
outputs
.
append
(
output
)
if
self
.
benchmark
:
self
.
autolog
.
times
.
stamp
()
preds
=
outputs
[
0
]
rec_result
=
self
.
postprocess_op
(
preds
)
for
rno
in
range
(
len
(
rec_result
)):
rec_res
[
indices
[
beg_img_no
+
rno
]]
=
rec_result
[
rno
]
if
self
.
benchmark
:
self
.
autolog
.
times
.
end
(
stamp
=
True
)
return
rec_res
,
time
.
time
()
-
st
...
...
@@ -251,9 +278,6 @@ def main(args):
for
i
in
range
(
10
):
res
=
text_recognizer
([
img
])
cpu_mem
,
gpu_mem
,
gpu_util
=
0
,
0
,
0
count
=
0
for
image_file
in
image_file_list
:
img
,
flag
=
check_and_read_gif
(
image_file
)
if
not
flag
:
...
...
@@ -273,6 +297,8 @@ def main(args):
for
ino
in
range
(
len
(
img_list
)):
logger
.
info
(
"Predicts of {}:{}"
.
format
(
valid_image_file_list
[
ino
],
rec_res
[
ino
]))
if
args
.
benchmark
:
text_recognizer
.
autolog
.
report
()
if
__name__
==
"__main__"
:
...
...
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