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5c3d64a4
编写于
6月 29, 2022
作者:
Z
zhiboniu
提交者:
zhiboniu
7月 01, 2022
浏览文件
操作
浏览文件
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电子邮件补丁
差异文件
python smooth ok
上级
54b828a8
变更
1
隐藏空白更改
内联
并排
Showing
1 changed file
with
49 addition
and
39 deletion
+49
-39
deploy/python/det_keypoint_unite_infer.py
deploy/python/det_keypoint_unite_infer.py
+49
-39
未找到文件。
deploy/python/det_keypoint_unite_infer.py
浏览文件 @
5c3d64a4
...
...
@@ -143,8 +143,8 @@ def topdown_unite_predict_video(detector,
writer
=
cv2
.
VideoWriter
(
out_path
,
fourcc
,
fps
,
(
width
,
height
))
index
=
0
store_res
=
[]
previous_keypoints
=
None
keypoint_smoothing
=
KeypointSmoothing
(
width
,
height
,
filter_type
=
FLAGS
.
filter_type
,
alpha
=
0.8
,
beta
=
1
)
keypoint_smoothing
=
KeypointSmoothing
(
width
,
height
,
filter_type
=
FLAGS
.
filter_type
,
beta
=
0.05
)
while
(
1
):
ret
,
frame
=
capture
.
read
()
...
...
@@ -164,11 +164,11 @@ def topdown_unite_predict_video(detector,
keypoint_res
=
predict_with_given_det
(
frame2
,
results
,
topdown_keypoint_detector
,
keypoint_batch_size
,
FLAGS
.
run_benchmark
)
if
FLAGS
.
smooth
:
current_keypoints
=
np
.
array
(
keypoint_res
[
'keypoint'
][
0
][
0
])
smooth_keypoints
=
keypoint_smoothing
.
smooth_process
(
previous_keypoints
,
current_keypoints
)
previous_keypoints
=
smooth_keypoints
smooth_keypoints
=
keypoint_smoothing
.
smooth_process
(
current_keypoints
)
keypoint_res
[
'keypoint'
][
0
][
0
]
=
smooth_keypoints
.
tolist
()
...
...
@@ -205,13 +205,24 @@ def topdown_unite_predict_video(detector,
class
KeypointSmoothing
(
object
):
# The following code are modified from:
# https://github.com/610265158/Peppa_Pig_Face_Engine/blob/7bb1066ad3fbb12697924ba7f9287bf198c15232/lib/core/LK/lk.py
def
__init__
(
self
,
width
,
height
,
filter_type
,
alpha
=
0.5
,
fc_d
=
1
,
fc_min
=
1
,
beta
=
0
):
# https://github.com/jaantollander/OneEuroFilter
def
__init__
(
self
,
width
,
height
,
filter_type
,
alpha
=
0.5
,
fc_d
=
0.1
,
fc_min
=
0.1
,
beta
=
0.1
,
thres_mult
=
0.2
):
super
(
KeypointSmoothing
,
self
).
__init__
()
self
.
image_width
=
width
self
.
image_height
=
height
self
.
threshold
=
[
0.005
,
0.005
,
0.005
,
0.005
,
0.005
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
]
self
.
threshold
=
np
.
array
([
0.005
,
0.005
,
0.005
,
0.005
,
0.005
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
,
0.01
])
*
thres_mult
self
.
filter_type
=
filter_type
self
.
alpha
=
alpha
self
.
dx_prev_hat
=
None
...
...
@@ -219,7 +230,7 @@ class KeypointSmoothing(object):
self
.
fc_d
=
fc_d
self
.
fc_min
=
fc_min
self
.
beta
=
beta
if
self
.
filter_type
==
'one_euro'
:
self
.
smooth_func
=
self
.
one_euro_filter
elif
self
.
filter_type
==
'ema'
:
...
...
@@ -227,51 +238,50 @@ class KeypointSmoothing(object):
else
:
raise
ValueError
(
'filter type must be one_euro or ema'
)
def
smooth_process
(
self
,
previous_keypoints
,
current_keypoints
):
if
previous_keypoints
is
None
:
previous_keypoints
=
current_keypoints
result
=
current_keypoints
def
smooth_process
(
self
,
current_keypoints
):
if
self
.
x_prev_hat
is
None
:
self
.
x_prev_hat
=
current_keypoints
[:,
:
2
]
self
.
dx_prev_hat
=
np
.
zeros
(
current_keypoints
[:,
:
2
].
shape
)
return
current_keypoints
else
:
result
=
[]
result
=
current_keypoints
num_keypoints
=
len
(
current_keypoints
)
for
i
in
range
(
num_keypoints
):
result
.
append
(
self
.
smooth
(
previous_keypoints
[
i
],
current_keypoints
[
i
],
self
.
threshold
[
i
]))
return
np
.
array
(
result
)
def
smooth
(
self
,
previous_keypoint
,
current_keypoint
,
threshold
):
distance
=
np
.
sqrt
(
np
.
square
((
current_keypoint
[
0
]
-
previous_keypoint
[
0
])
/
self
.
image_width
)
+
np
.
square
((
current_keypoint
[
1
]
-
previous_keypoint
[
1
])
/
self
.
image_height
))
result
[
i
,
:
2
]
=
self
.
smooth
(
current_keypoints
[
i
,
:
2
],
self
.
threshold
[
i
],
i
)
return
result
def
smooth
(
self
,
current_keypoint
,
threshold
,
index
):
distance
=
np
.
sqrt
(
np
.
square
((
current_keypoint
[
0
]
-
self
.
x_prev_hat
[
index
][
0
])
/
self
.
image_width
)
+
np
.
square
((
current_keypoint
[
1
]
-
self
.
x_prev_hat
[
index
][
1
])
/
self
.
image_height
))
if
distance
<
threshold
:
result
=
previous_keypoint
result
=
self
.
x_prev_hat
[
index
]
else
:
result
=
self
.
smooth_func
(
previous_keypoint
,
current_keypoint
)
result
=
self
.
smooth_func
(
current_keypoint
,
self
.
x_prev_hat
[
index
],
index
)
return
result
def
one_euro_filter
(
self
,
x_prev
,
x_cur
):
def
one_euro_filter
(
self
,
x_cur
,
x_pre
,
index
):
te
=
1
self
.
alpha
=
self
.
smoothing_factor
(
te
,
self
.
fc_d
)
if
self
.
x_prev_hat
is
None
:
self
.
x_prev_hat
=
x_prev
dx_cur
=
(
x_cur
-
self
.
x_prev_hat
)
/
te
if
self
.
dx_prev_hat
is
None
:
self
.
dx_prev_hat
=
0
dx_cur_hat
=
self
.
exponential_smoothing
(
self
.
dx_prev_hat
,
dx_cur
)
dx_cur
=
(
x_cur
-
x_pre
)
/
te
dx_cur_hat
=
self
.
exponential_smoothing
(
dx_cur
,
self
.
dx_prev_hat
[
index
])
fc
=
self
.
fc_min
+
self
.
beta
*
np
.
abs
(
dx_cur_hat
)
self
.
alpha
=
self
.
smoothing_factor
(
te
,
fc
)
x_cur_hat
=
self
.
exponential_smoothing
(
self
.
x_prev_hat
,
x_cur
)
self
.
dx_prev_hat
=
dx_cur_hat
self
.
x_prev_hat
=
x_cur_hat
x_cur_hat
=
self
.
exponential_smoothing
(
x_cur
,
x_pre
)
self
.
dx_prev_hat
[
index
]
=
dx_cur_hat
self
.
x_prev_hat
[
index
]
=
x_cur_hat
return
x_cur_hat
def
smoothing_factor
(
self
,
te
,
fc
):
r
=
2
*
math
.
pi
*
fc
*
te
return
r
/
(
r
+
1
)
def
exponential_smoothing
(
self
,
x_
prev
,
x_cur
):
return
self
.
alpha
*
x_cur
+
(
1
-
self
.
alpha
)
*
x_pre
v
def
exponential_smoothing
(
self
,
x_
cur
,
x_pre
,
index
=
0
):
return
self
.
alpha
*
x_cur
+
(
1
-
self
.
alpha
)
*
x_pre
def
main
():
...
...
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