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91f47f38
编写于
7月 01, 2021
作者:
W
Walter
提交者:
GitHub
7月 01, 2021
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Merge pull request #1003 from RainFrost1/vehicle_reid
update VehicleReID model
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b67b1df3
f0af483a
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5
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5 changed file
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6 addition
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15 deletion
+6
-15
docs/en/application/vehicle_recognition_en.md
docs/en/application/vehicle_recognition_en.md
+2
-5
docs/en/tutorials/quick_start_recognition_en.md
docs/en/tutorials/quick_start_recognition_en.md
+1
-1
docs/zh_CN/application/vehicle_recognition.md
docs/zh_CN/application/vehicle_recognition.md
+1
-4
docs/zh_CN/tutorials/quick_start_recognition.md
docs/zh_CN/tutorials/quick_start_recognition.md
+1
-1
ppcls/configs/Vehicle/ResNet50_ReID.yaml
ppcls/configs/Vehicle/ResNet50_ReID.yaml
+1
-4
未找到文件。
docs/en/application/vehicle_recognition_en.md
浏览文件 @
91f47f38
...
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@@ -58,10 +58,7 @@ This method is used in VERI-Wild dataset. This dataset was captured in a large C
| GLAMOR(Resnet50+PGN)[3] | 77.15 | 92.13 | 97.43 |
| PVEN(Resnet50)[4] | 79.8 | 94.01 | 98.06 |
| SAVER(VAE+Resnet50)[5] | 80.9 | 93.78 | 97.93 |
| PaddleClas baseline1 | 65.6 | 92.37 | 97.23 |
| PaddleClas baseline2 | 80.09 |
**93.81**
|
**98.26**
|
Baseline1 is the released, and baseline2 will be released soon.
| PaddleClas baseline | 80.57 |
**93.81**
|
**98.06**
|
### 2.2 Vehicle Fine-grained Classification
...
...
@@ -79,7 +76,7 @@ The images in the dataset mainly come from the network and monitoring data. The
| Fine-Tuning DARTS[7] | 95.9% |
| Resnet50 + COOC[8] | 95.6% |
| A3M[9] | 95.4% |
| PaddleClas baseline (ResNet50) |
**97.3
6
**
% |
| PaddleClas baseline (ResNet50) |
**97.3
7
**
% |
## 3 References
...
...
docs/en/tutorials/quick_start_recognition_en.md
浏览文件 @
91f47f38
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@@ -41,7 +41,7 @@ The detection model with the recognition inference model for the 4 directions (L
| Cartoon Face Recognition Model| Cartoon Face Scenario |
[
Model Download Link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/cartoon_rec_ResNet50_iCartoon_v1.0_infer.tar
)
|
[
inference_cartoon.yaml
](
../../../deploy/configs/inference_cartoon.yaml
)
|
[
build_cartoon.yaml
](
../../../deploy/configs/build_cartoon.yaml
)
|
| Vehicle Fine-Grained Classfication Model | Vehicle Scenario |
[
Model Download Link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_cls_ResNet50_CompCars_v1.0_infer.tar
)
|
[
inference_vehicle.yaml
](
../../../deploy/configs/inference_vehicle.yaml
)
|
[
build_vehicle.yaml
](
../../../deploy/configs/build_vehicle.yaml
)
|
| Product Recignition Model | Product Scenario |
[
Model Download Link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/product_ResNet50_vd_Inshop_v1.0_infer.tar
)
|
[
inference_product.yaml
](
../../../deploy/configs/inference_product.yaml
)
|
[
build_product.yaml
](
../../../deploy/configs/build_product.yaml
)
|
| Vehicle ReID Model | Vehicle ReID Scenario |
[
Model Download Link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_reid_ResNet50_VERI
_
Wild_v1.0_infer.tar
)
| - | - |
| Vehicle ReID Model | Vehicle ReID Scenario |
[
Model Download Link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_reid_ResNet50_VERIWild_v1.0_infer.tar
)
| - | - |
Demo data in this tutorial can be downloaded here:
[
download link
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/data/recognition_demo_data_en_v1.0.tar
)
.
...
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docs/zh_CN/application/vehicle_recognition.md
浏览文件 @
91f47f38
...
...
@@ -57,10 +57,7 @@ ReID,也就是 Re-identification,其定义是利用算法,在图像库中
| GLAMOR(Resnet50+PGN)[3] | 77.15 | 92.13 | 97.43 |
| PVEN(Resnet50)[4] | 79.8 | 94.01 | 98.06 |
| SAVER(VAE+Resnet50)[5] | 80.9 | 93.78 | 97.93 |
| PaddleClas baseline1 | 65.6 | 92.37 | 97.23 |
| PaddleClas baseline2 | 80.09 |
**93.81**
|
**98.26**
|
注:baseline1 为目前的开源模型,baseline2即将开源
| PaddleClas baseline | 80.57 |
**93.81**
|
**98.06**
|
### 2.2 车辆细分类
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docs/zh_CN/tutorials/quick_start_recognition.md
浏览文件 @
91f47f38
...
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@@ -41,7 +41,7 @@
| 动漫人物识别模型 | 动漫人物场景 |
[
模型下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/cartoon_rec_ResNet50_iCartoon_v1.0_infer.tar
)
|
[
inference_cartoon.yaml
](
../../../deploy/configs/inference_cartoon.yaml
)
|
[
build_cartoon.yaml
](
../../../deploy/configs/build_cartoon.yaml
)
|
| 车辆细分类模型 | 车辆场景 |
[
模型下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_cls_ResNet50_CompCars_v1.0_infer.tar
)
|
[
inference_vehicle.yaml
](
../../../deploy/configs/inference_vehicle.yaml
)
|
[
build_vehicle.yaml
](
../../../deploy/configs/build_vehicle.yaml
)
|
| 商品识别模型 | 商品场景 |
[
模型下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/product_ResNet50_vd_aliproduct_v1.0_infer.tar
)
|
[
inference_product.yaml
](
../../../deploy/configs/inference_product.yaml
)
|
[
build_product.yaml
](
../../../deploy/configs/build_product.yaml
)
|
| 车辆ReID模型 | 车辆ReID场景 |
[
模型下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_reid_ResNet50_VERI
_
Wild_v1.0_infer.tar
)
| - | - |
| 车辆ReID模型 | 车辆ReID场景 |
[
模型下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/models/inference/vehicle_reid_ResNet50_VERIWild_v1.0_infer.tar
)
| - | - |
本章节demo数据下载地址如下:
[
数据下载链接
](
https://paddle-imagenet-models-name.bj.bcebos.com/dygraph/rec/data/recognition_demo_data_v1.0.tar
)
。
...
...
ppcls/configs/Vehicle/ResNet50_ReID.yaml
浏览文件 @
91f47f38
...
...
@@ -52,11 +52,8 @@ Optimizer:
name
:
Momentum
momentum
:
0.9
lr
:
name
:
MultiStepDecay
name
:
Cosine
learning_rate
:
0.01
milestones
:
[
30
,
60
,
70
,
80
,
90
,
100
,
120
,
140
]
gamma
:
0.5
verbose
:
False
last_epoch
:
-1
regularizer
:
name
:
'
L2'
...
...
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