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2768e1ae
编写于
5月 26, 2022
作者:
S
shangliang Xu
提交者:
GitHub
5月 26, 2022
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[PPYOLOE] fix assigner bug (#6066)
上级
d2f86f6e
变更
3
隐藏空白更改
内联
并排
Showing
3 changed file
with
13 addition
and
22 deletion
+13
-22
ppdet/modeling/assigners/atss_assigner.py
ppdet/modeling/assigners/atss_assigner.py
+6
-11
ppdet/modeling/assigners/task_aligned_assigner.py
ppdet/modeling/assigners/task_aligned_assigner.py
+1
-3
ppdet/modeling/assigners/utils.py
ppdet/modeling/assigners/utils.py
+6
-8
未找到文件。
ppdet/modeling/assigners/atss_assigner.py
浏览文件 @
2768e1ae
...
@@ -51,7 +51,6 @@ class ATSSAssigner(nn.Layer):
...
@@ -51,7 +51,6 @@ class ATSSAssigner(nn.Layer):
def
_gather_topk_pyramid
(
self
,
gt2anchor_distances
,
num_anchors_list
,
def
_gather_topk_pyramid
(
self
,
gt2anchor_distances
,
num_anchors_list
,
pad_gt_mask
):
pad_gt_mask
):
pad_gt_mask
=
pad_gt_mask
.
tile
([
1
,
1
,
self
.
topk
]).
astype
(
paddle
.
bool
)
gt2anchor_distances_list
=
paddle
.
split
(
gt2anchor_distances_list
=
paddle
.
split
(
gt2anchor_distances
,
num_anchors_list
,
axis
=-
1
)
gt2anchor_distances
,
num_anchors_list
,
axis
=-
1
)
num_anchors_index
=
np
.
cumsum
(
num_anchors_list
).
tolist
()
num_anchors_index
=
np
.
cumsum
(
num_anchors_list
).
tolist
()
...
@@ -61,15 +60,12 @@ class ATSSAssigner(nn.Layer):
...
@@ -61,15 +60,12 @@ class ATSSAssigner(nn.Layer):
for
distances
,
anchors_index
in
zip
(
gt2anchor_distances_list
,
for
distances
,
anchors_index
in
zip
(
gt2anchor_distances_list
,
num_anchors_index
):
num_anchors_index
):
num_anchors
=
distances
.
shape
[
-
1
]
num_anchors
=
distances
.
shape
[
-
1
]
topk_metrics
,
topk_idxs
=
paddle
.
topk
(
_
,
topk_idxs
=
paddle
.
topk
(
distances
,
self
.
topk
,
axis
=-
1
,
largest
=
False
)
distances
,
self
.
topk
,
axis
=-
1
,
largest
=
False
)
topk_idxs_list
.
append
(
topk_idxs
+
anchors_index
)
topk_idxs_list
.
append
(
topk_idxs
+
anchors_index
)
topk_idxs
=
paddle
.
where
(
pad_gt_mask
,
topk_idxs
,
is_in_topk
=
F
.
one_hot
(
topk_idxs
,
num_anchors
).
sum
(
paddle
.
zeros_like
(
topk_idxs
))
axis
=-
2
).
astype
(
gt2anchor_distances
.
dtype
)
is_in_topk
=
F
.
one_hot
(
topk_idxs
,
num_anchors
).
sum
(
axis
=-
2
)
is_in_topk_list
.
append
(
is_in_topk
*
pad_gt_mask
)
is_in_topk
=
paddle
.
where
(
is_in_topk
>
1
,
paddle
.
zeros_like
(
is_in_topk
),
is_in_topk
)
is_in_topk_list
.
append
(
is_in_topk
.
astype
(
gt2anchor_distances
.
dtype
))
is_in_topk_list
=
paddle
.
concat
(
is_in_topk_list
,
axis
=-
1
)
is_in_topk_list
=
paddle
.
concat
(
is_in_topk_list
,
axis
=-
1
)
topk_idxs_list
=
paddle
.
concat
(
topk_idxs_list
,
axis
=-
1
)
topk_idxs_list
=
paddle
.
concat
(
topk_idxs_list
,
axis
=-
1
)
return
is_in_topk_list
,
topk_idxs_list
return
is_in_topk_list
,
topk_idxs_list
...
@@ -155,9 +151,8 @@ class ATSSAssigner(nn.Layer):
...
@@ -155,9 +151,8 @@ class ATSSAssigner(nn.Layer):
iou_threshold
=
iou_threshold
.
reshape
([
batch_size
,
num_max_boxes
,
-
1
])
iou_threshold
=
iou_threshold
.
reshape
([
batch_size
,
num_max_boxes
,
-
1
])
iou_threshold
=
iou_threshold
.
mean
(
axis
=-
1
,
keepdim
=
True
)
+
\
iou_threshold
=
iou_threshold
.
mean
(
axis
=-
1
,
keepdim
=
True
)
+
\
iou_threshold
.
std
(
axis
=-
1
,
keepdim
=
True
)
iou_threshold
.
std
(
axis
=-
1
,
keepdim
=
True
)
is_in_topk
=
paddle
.
where
(
is_in_topk
=
paddle
.
where
(
iou_candidates
>
iou_threshold
,
is_in_topk
,
iou_candidates
>
iou_threshold
.
tile
([
1
,
1
,
num_anchors
]),
paddle
.
zeros_like
(
is_in_topk
))
is_in_topk
,
paddle
.
zeros_like
(
is_in_topk
))
# 6. check the positive sample's center in gt, [B, n, L]
# 6. check the positive sample's center in gt, [B, n, L]
is_in_gts
=
check_points_inside_bboxes
(
anchor_centers
,
gt_bboxes
)
is_in_gts
=
check_points_inside_bboxes
(
anchor_centers
,
gt_bboxes
)
...
...
ppdet/modeling/assigners/task_aligned_assigner.py
浏览文件 @
2768e1ae
...
@@ -112,9 +112,7 @@ class TaskAlignedAssigner(nn.Layer):
...
@@ -112,9 +112,7 @@ class TaskAlignedAssigner(nn.Layer):
# select topk largest alignment metrics pred bbox as candidates
# select topk largest alignment metrics pred bbox as candidates
# for each gt, [B, n, L]
# for each gt, [B, n, L]
is_in_topk
=
gather_topk_anchors
(
is_in_topk
=
gather_topk_anchors
(
alignment_metrics
*
is_in_gts
,
alignment_metrics
*
is_in_gts
,
self
.
topk
,
topk_mask
=
pad_gt_mask
)
self
.
topk
,
topk_mask
=
pad_gt_mask
.
tile
([
1
,
1
,
self
.
topk
]).
astype
(
paddle
.
bool
))
# select positive sample, [B, n, L]
# select positive sample, [B, n, L]
mask_positive
=
is_in_topk
*
is_in_gts
*
pad_gt_mask
mask_positive
=
is_in_topk
*
is_in_gts
*
pad_gt_mask
...
...
ppdet/modeling/assigners/utils.py
浏览文件 @
2768e1ae
...
@@ -88,7 +88,7 @@ def gather_topk_anchors(metrics, topk, largest=True, topk_mask=None, eps=1e-9):
...
@@ -88,7 +88,7 @@ def gather_topk_anchors(metrics, topk, largest=True, topk_mask=None, eps=1e-9):
largest (bool) : largest is a flag, if set to true,
largest (bool) : largest is a flag, if set to true,
algorithm will sort by descending order, otherwise sort by
algorithm will sort by descending order, otherwise sort by
ascending order. Default: True
ascending order. Default: True
topk_mask (Tensor,
bool|None): shape[B, n, topk
], ignore bbox mask,
topk_mask (Tensor,
float32): shape[B, n, 1
], ignore bbox mask,
Default: None
Default: None
eps (float): Default: 1e-9
eps (float): Default: 1e-9
Returns:
Returns:
...
@@ -98,13 +98,11 @@ def gather_topk_anchors(metrics, topk, largest=True, topk_mask=None, eps=1e-9):
...
@@ -98,13 +98,11 @@ def gather_topk_anchors(metrics, topk, largest=True, topk_mask=None, eps=1e-9):
topk_metrics
,
topk_idxs
=
paddle
.
topk
(
topk_metrics
,
topk_idxs
=
paddle
.
topk
(
metrics
,
topk
,
axis
=-
1
,
largest
=
largest
)
metrics
,
topk
,
axis
=-
1
,
largest
=
largest
)
if
topk_mask
is
None
:
if
topk_mask
is
None
:
topk_mask
=
(
topk_metrics
.
max
(
axis
=-
1
,
keepdim
=
True
)
>
eps
).
tile
(
topk_mask
=
(
[
1
,
1
,
topk
])
topk_metrics
.
max
(
axis
=-
1
,
keepdim
=
True
)
>
eps
).
astype
(
metrics
.
dtype
)
topk_idxs
=
paddle
.
where
(
topk_mask
,
topk_idxs
,
paddle
.
zeros_like
(
topk_idxs
))
is_in_topk
=
F
.
one_hot
(
topk_idxs
,
num_anchors
).
sum
(
is_in_topk
=
F
.
one_hot
(
topk_idxs
,
num_anchors
).
sum
(
axis
=-
2
)
axis
=-
2
).
astype
(
metrics
.
dtype
)
is_in_topk
=
paddle
.
where
(
is_in_topk
>
1
,
return
is_in_topk
*
topk_mask
paddle
.
zeros_like
(
is_in_topk
),
is_in_topk
)
return
is_in_topk
.
astype
(
metrics
.
dtype
)
def
check_points_inside_bboxes
(
points
,
def
check_points_inside_bboxes
(
points
,
...
...
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