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bf535713
编写于
7月 01, 2019
作者:
J
jerrywgz
提交者:
qingqing01
7月 01, 2019
浏览文件
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浏览文件
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电子邮件补丁
差异文件
Refine model zoo doc (#2618)
上级
cfbaa865
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Showing
3 changed file
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PaddleCV/PaddleDetection/configs/mask_rcnn_r101_fpn_2x.yml
PaddleCV/PaddleDetection/configs/mask_rcnn_r101_fpn_2x.yml
+0
-145
PaddleCV/PaddleDetection/configs/mask_rcnn_r50_fpn_2x.yml
PaddleCV/PaddleDetection/configs/mask_rcnn_r50_fpn_2x.yml
+0
-145
PaddleCV/PaddleDetection/docs/MODEL_ZOO.md
PaddleCV/PaddleDetection/docs/MODEL_ZOO.md
+21
-26
未找到文件。
PaddleCV/PaddleDetection/configs/mask_rcnn_r101_fpn_2x.yml
已删除
100644 → 0
浏览文件 @
cfbaa865
architecture
:
MaskRCNN
train_feed
:
MaskRCNNTrainFeed
eval_feed
:
MaskRCNNEvalFeed
test_feed
:
MaskRCNNTestFeed
use_gpu
:
true
max_iters
:
360000
snapshot_iter
:
10000
log_smooth_window
:
20
save_dir
:
output
pretrain_weights
:
https://paddle-imagenet-models-name.bj.bcebos.com/ResNet101_pretrained.tar
metric
:
COCO
weights
:
output/mask_rcnn_r101_fpn_2x/model_final/
MaskRCNN
:
backbone
:
ResNet
fpn
:
FPN
rpn_head
:
FPNRPNHead
roi_extractor
:
FPNRoIAlign
bbox_head
:
BBoxHead
bbox_assigner
:
BBoxAssigner
ResNet
:
depth
:
101
feature_maps
:
[
2
,
3
,
4
,
5
]
freeze_at
:
2
norm_type
:
affine_channel
FPN
:
max_level
:
6
min_level
:
2
num_chan
:
256
spatial_scale
:
[
0.03125
,
0.0625
,
0.125
,
0.25
]
FPNRPNHead
:
anchor_generator
:
aspect_ratios
:
[
0.5
,
1.0
,
2.0
]
variance
:
[
1.0
,
1.0
,
1.0
,
1.0
]
anchor_start_size
:
32
max_level
:
6
min_level
:
2
num_chan
:
256
rpn_target_assign
:
rpn_batch_size_per_im
:
256
rpn_fg_fraction
:
0.5
rpn_negative_overlap
:
0.3
rpn_positive_overlap
:
0.7
rpn_straddle_thresh
:
0.0
train_proposal
:
min_size
:
0.0
nms_thresh
:
0.7
pre_nms_top_n
:
2000
post_nms_top_n
:
2000
test_proposal
:
min_size
:
0.0
nms_thresh
:
0.7
pre_nms_top_n
:
1000
post_nms_top_n
:
1000
FPNRoIAlign
:
canconical_level
:
4
canonical_size
:
224
max_level
:
5
min_level
:
2
sampling_ratio
:
2
box_resolution
:
7
mask_resolution
:
14
MaskHead
:
dilation
:
1
num_chan_reduced
:
256
num_classes
:
81
num_convs
:
4
resolution
:
28
BBoxAssigner
:
batch_size_per_im
:
512
bbox_reg_weights
:
[
0.1
,
0.1
,
0.2
,
0.2
]
bg_thresh_hi
:
0.5
bg_thresh_lo
:
0.0
fg_fraction
:
0.25
fg_thresh
:
0.5
num_classes
:
81
MaskAssigner
:
resolution
:
28
BBoxHead
:
head
:
TwoFCHead
nms
:
keep_top_k
:
100
nms_threshold
:
0.5
score_threshold
:
0.05
num_classes
:
81
TwoFCHead
:
num_chan
:
1024
LearningRate
:
base_lr
:
0.01
schedulers
:
-
!PiecewiseDecay
gamma
:
0.1
milestones
:
[
240000
,
320000
]
-
!LinearWarmup
start_factor
:
0.3333333333333333
steps
:
500
OptimizerBuilder
:
optimizer
:
momentum
:
0.9
type
:
Momentum
regularizer
:
factor
:
0.0001
type
:
L2
MaskRCNNTrainFeed
:
batch_size
:
1
dataset
:
dataset_dir
:
dataset/coco
annotation
:
annotations/instances_train2017.json
image_dir
:
train2017
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
MaskRCNNEvalFeed
:
batch_size
:
1
dataset
:
dataset_dir
:
dataset/coco
annotation
:
annotations/instances_val2017.json
image_dir
:
val2017
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
MaskRCNNTestFeed
:
batch_size
:
1
dataset
:
annotation
:
annotations/instances_val2017.json
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
PaddleCV/PaddleDetection/configs/mask_rcnn_r50_fpn_2x.yml
已删除
100644 → 0
浏览文件 @
cfbaa865
architecture
:
MaskRCNN
train_feed
:
MaskRCNNTrainFeed
eval_feed
:
MaskRCNNEvalFeed
test_feed
:
MaskRCNNTestFeed
use_gpu
:
true
max_iters
:
360000
snapshot_iter
:
10000
log_smooth_window
:
20
save_dir
:
output
pretrain_weights
:
https://paddle-imagenet-models-name.bj.bcebos.com/ResNet50_cos_pretrained.tar
metric
:
COCO
weights
:
output/mask_rcnn_r50_fpn_2x/model_final/
MaskRCNN
:
backbone
:
ResNet
fpn
:
FPN
rpn_head
:
FPNRPNHead
roi_extractor
:
FPNRoIAlign
bbox_head
:
BBoxHead
bbox_assigner
:
BBoxAssigner
ResNet
:
depth
:
50
feature_maps
:
[
2
,
3
,
4
,
5
]
freeze_at
:
2
norm_type
:
affine_channel
FPN
:
max_level
:
6
min_level
:
2
num_chan
:
256
spatial_scale
:
[
0.03125
,
0.0625
,
0.125
,
0.25
]
FPNRPNHead
:
anchor_generator
:
aspect_ratios
:
[
0.5
,
1.0
,
2.0
]
variance
:
[
1.0
,
1.0
,
1.0
,
1.0
]
anchor_start_size
:
32
max_level
:
6
min_level
:
2
num_chan
:
256
rpn_target_assign
:
rpn_batch_size_per_im
:
256
rpn_fg_fraction
:
0.5
rpn_negative_overlap
:
0.3
rpn_positive_overlap
:
0.7
rpn_straddle_thresh
:
0.0
train_proposal
:
min_size
:
0.0
nms_thresh
:
0.7
pre_nms_top_n
:
2000
post_nms_top_n
:
2000
test_proposal
:
min_size
:
0.0
nms_thresh
:
0.7
pre_nms_top_n
:
1000
post_nms_top_n
:
1000
FPNRoIAlign
:
canconical_level
:
4
canonical_size
:
224
max_level
:
5
min_level
:
2
sampling_ratio
:
2
box_resolution
:
7
mask_resolution
:
14
MaskHead
:
dilation
:
1
num_chan_reduced
:
256
num_classes
:
81
num_convs
:
4
resolution
:
28
BBoxAssigner
:
batch_size_per_im
:
512
bbox_reg_weights
:
[
0.1
,
0.1
,
0.2
,
0.2
]
bg_thresh_hi
:
0.5
bg_thresh_lo
:
0.0
fg_fraction
:
0.25
fg_thresh
:
0.5
num_classes
:
81
MaskAssigner
:
resolution
:
28
BBoxHead
:
head
:
TwoFCHead
nms
:
keep_top_k
:
100
nms_threshold
:
0.5
score_threshold
:
0.05
num_classes
:
81
TwoFCHead
:
num_chan
:
1024
LearningRate
:
base_lr
:
0.01
schedulers
:
-
!PiecewiseDecay
gamma
:
0.1
milestones
:
[
240000
,
320000
]
-
!LinearWarmup
start_factor
:
0.3333333333333333
steps
:
500
OptimizerBuilder
:
optimizer
:
momentum
:
0.9
type
:
Momentum
regularizer
:
factor
:
0.0001
type
:
L2
MaskRCNNTrainFeed
:
batch_size
:
1
dataset
:
dataset_dir
:
dataset/coco
annotation
:
annotations/instances_train2017.json
image_dir
:
train2017
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
MaskRCNNEvalFeed
:
batch_size
:
1
dataset
:
dataset_dir
:
dataset/coco
annotation
:
annotations/instances_val2017.json
image_dir
:
val2017
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
MaskRCNNTestFeed
:
batch_size
:
1
dataset
:
annotation
:
annotations/instances_val2017.json
batch_transforms
:
-
!PadBatch
pad_to_stride
:
32
num_workers
:
2
PaddleCV/
object_d
etection/docs/MODEL_ZOO.md
→
PaddleCV/
PaddleD
etection/docs/MODEL_ZOO.md
浏览文件 @
bf535713
...
@@ -32,38 +32,33 @@ The backbone models pretrained on ImageNet are available. All backbone models ar
...
@@ -32,38 +32,33 @@ The backbone models pretrained on ImageNet are available. All backbone models ar
| Backbone | Type | Img/gpu | Lr schd | Box AP | Mask AP | Download |
| Backbone | Type | Img/gpu | Lr schd | Box AP | Mask AP | Download |
| :------------------- | :------------- | :-----: | :-----: | :----: | :-----: | :----------------------------------------------------------: |
| :------------------- | :------------- | :-----: | :-----: | :----: | :-----: | :----------------------------------------------------------: |
| ResNet50 | Faster | 1 | 1x | 35.
1
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_1x.tar
)
|
| ResNet50 | Faster | 1 | 1x | 35.
2
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_1x.tar
)
|
| ResNet50 | Faster | 1 | 2x | 37.
0
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_2x.tar
)
|
| ResNet50 | Faster | 1 | 2x | 37.
1
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_2x.tar
)
|
| ResNet50 | Mask | 1 | 1x | 36.5 | 32.2 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/
F
mask_rcnn_r50_1x.tar
)
|
| ResNet50 | Mask | 1 | 1x | 36.5 | 32.2 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r50_1x.tar
)
|
| ResNet50 | Mask | 1 | 2x | | |
[
model
](
)
|
| ResNet50 | Mask | 1 | 2x | | |
[
model
](
)
|
| ResNet50-D | Faster | 1 | 1x | 36.4 | - |
[
model
](
ttps://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_vd_1x.tar
)
|
| ResNet50-D | Faster | 1 | 1x | 36.4 | - |
[
model
](
ttps://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_vd_1x.tar
)
|
| ResNet50-FPN | Faster | 2 | 1x | 37.2 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_fpn_1x.tar
)
|
| ResNet50-FPN | Faster | 2 | 1x | 37.2 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_fpn_1x.tar
)
|
| ResNet50-FPN | Faster | 2 | 2x | 3
8.1
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_fpn_2x.tar
)
|
| ResNet50-FPN | Faster | 2 | 2x | 3
7.7
| - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_fpn_2x.tar
)
|
| ResNet50-FPN | Mask | 2 | 1x | 37.9 | 34.2 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r50_fpn_1x.tar
)
|
| ResNet50-FPN | Mask | 2 | 1x | 37.9 | 34.2 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r50_fpn_1x.tar
)
|
| ResNet50-FPN | Mask | 2 | 2x | | |
[
model
](
)
|
| ResNet50-FPN | Cascade Faster | 2 | 1x | 40.9 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/cascade_rcnn_r50_fpn_1x.tar
)
|
| ResNet50-FPN | Cascade Faster | 2 | 1x | 40.4 | - |
[
model
](
)
|
| ResNet50-D-FPN | Faster | 2 | 2x | 38.9 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r50_vd_fpn_2x.tar
)
|
| ResNet50-D-FPN | Faster | 2 | 2x | | - |
[
model
](
)
|
| ResNet50-D-FPN | Mask | 2 | 2x | 39.8 | 35.4 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r50_vd_fpn_2x.tar
)
|
| ResNet50-D-FPN | Mask | 2 | 2x | 39.8 | 35.4 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r50_vd_fpn_2x.tar
)
|
| ResNet101 | Faster | 1 | 1x | | - |
[
model
](
)
|
| ResNet101 | Faster | 1 | 1x | 38.3 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r101_1x.tar
)
|
| ResNet101-FPN | Faster | 1 | 1x | | - |
[
model
](
)
|
| ResNet101-FPN | Faster | 1 | 1x | 38.7 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r101_fpn_1x.tar
)
|
| ResNet101-FPN | Faster | 1 | 2x | | - |
[
model
](
)
|
| ResNet101-FPN | Faster | 1 | 2x | 39.1 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r101_fpn_2x.tar
)
|
| ResNet101-FPN | Mask | 1 | 1x | | |
[
model
](
)
|
| ResNet101-FPN | Mask | 1 | 1x | 39.5 | 35.2 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_r101_fpn_1x.tar
)
|
| ResNet101-FPN | Mask | 1 | 2x | | |
[
model
](
)
|
| ResNet101-D-FPN | Faster | 1 | 1x | 40.0 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r101_fpn_1x.tar
)
|
| ResNet101-D-FPN | Faster | 1 | 1x | | - |
[
model
](
)
|
| ResNet101-D-FPN | Faster | 1 | 2x | 40.6 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_r101_fpn_2x.tar
)
|
| ResNet101-D-FPN | Faster | 1 | 2x | | - |
[
model
](
)
|
| SENet154-D-FPN | Faster | 1 | 1.44x | 43.5 | - |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/faster_rcnn_se154_fpn_s1x.tar
)
|
| ResNet101-D-FPN | Mask | 1 | 2x | | |
[
model
](
)
|
| ResNeXt101-64x4d-FPN | Faster | 1 | 1x | | - |
[
model
](
)
|
| ResNeXt101-64x4d-FPN | Faster | 1 | 2x | | - |
[
model
](
)
|
| ResNeXt101-64x4d-FPN | Mask | 1 | 1x | | |
[
model
](
)
|
| ResNeXt101-64x4d-FPN | Mask | 1 | 2x | | |
[
model
](
)
|
| SENet154-D-FPN | Faster | 1 | 1.44x | | - |
[
model
](
)
|
| SENet154-D-FPN | Mask | 1 | 1.44x | 44.0 | 38.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_se154_vd_fpn_s1x.tar
)
|
| SENet154-D-FPN | Mask | 1 | 1.44x | 44.0 | 38.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/mask_rcnn_se154_vd_fpn_s1x.tar
)
|
### Yolo v3
### Yolo v3
| Backbone | Size | Lr schd | Box AP | Download |
| Backbone | Size | Lr schd | Box AP | Download |
| :-------- | :--: | :-----: | :----: | :-------: |
| :-------- | :--: | :-----: | :----: | :-------: |
| DarkNet53 | 608 | 120e | 25.7 |
[
model
](
)
|
| DarkNet53 | 608 | 120e | 25.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/yolov3_darknet.tar
)
|
| MobileNet-V1 | 608 | 120e | 25.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/yolov3_mobilenet_v1.tar
)
|
| ResNet34 | 608 | 120e | 25.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/yolov3_mobilenet_v1.tar
)
|
-
Notes: Data Augmentation(TODO:Kaipeng)
-
Notes: Data Augmentation(TODO:Kaipeng)
...
@@ -71,13 +66,13 @@ The backbone models pretrained on ImageNet are available. All backbone models ar
...
@@ -71,13 +66,13 @@ The backbone models pretrained on ImageNet are available. All backbone models ar
| Backbone | Size | Lr schd | Box AP | Download |
| Backbone | Size | Lr schd | Box AP | Download |
| :----------- | :--: | :-----: | :----: | :-------: |
| :----------- | :--: | :-----: | :----: | :-------: |
| ResNet50-FPN | 300 | 120e | 25.7 |
[
model
](
)
|
| ResNet50-FPN | 300 | 120e | 36.0 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/retinanet_r50_fpn_1x.tar
)
|
| ResNet101-FPN | 300 | 120e | 37.3 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/retinanet_r101_fpn_1x.tar
)
|
-
Notes: (TODO:Kaipeng)
-
Notes: (TODO:Kaipeng)
### SSD
### SSD
on PascalVOC
| Backbone | Size | Lr schd | Box AP | Download |
| Backbone | Size | Lr schd | Box AP | Download |
| :----------- | :--: | :-----: | :----: | :-------: |
| :----------- | :--: | :-----: | :----: | :-------: |
| MobileNet v1 | 300 | 120e | 25.7 |
[
model
](
)
|
| MobileNet v1 | 300 | 120e | 25.7 |
[
model
](
https://paddlemodels.bj.bcebos.com/object_detection/ssd_mobilenet_v1_voc.tar
)
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