yangjun dfa27afb39 提交PaddleDetection develop 分支 d56cf3f7c294a7138013dac21f87da4ea6bee829 | 1 år sedan | |
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README.md | 1 år sedan | |
gfl_r101vd_fpn_mstrain_2x_coco.yml | 1 år sedan | |
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gflv2_r50_fpn_1x_coco.yml | 1 år sedan |
We reproduce the object detection results in the paper Generalized Focal Loss: Learning Qualified and Distributed Bounding Boxes for Dense Object Detection and Generalized Focal Loss V2. And We use a better performing pre-trained model and ResNet-vd structure to improve mAP.
Backbone | Model | batch-size/GPU | lr schedule | FPS | Box AP | download | config |
---|---|---|---|---|---|---|---|
ResNet50 | GFL | 2 | 1x | ---- | 41.0 | model | log | config |
ResNet50 | GFL + CWD | 2 | 2x | ---- | 44.0 | model | log | config1, config2 |
ResNet101-vd | GFL | 2 | 2x | ---- | 46.8 | model | log | config |
ResNet34-vd | GFL | 2 | 1x | ---- | 40.8 | model | log | config |
ResNet18-vd | GFL | 2 | 1x | ---- | 36.6 | model | log | config |
ResNet18-vd | GFL + LD | 2 | 1x | ---- | 38.2 | model | log | config1, config2 |
ResNet50 | GFLv2 | 2 | 1x | ---- | 41.2 | model | log | config |
Notes:
mAP(IoU=0.5:0.95)
.@article{li2020generalized,
title={Generalized Focal Loss: Learning Qualified and Distributed Bounding Boxes for Dense Object Detection},
author={Li, Xiang and Wang, Wenhai and Wu, Lijun and Chen, Shuo and Hu, Xiaolin and Li, Jun and Tang, Jinhui and Yang, Jian},
journal={arXiv preprint arXiv:2006.04388},
year={2020}
}
@article{li2020gflv2,
title={Generalized Focal Loss V2: Learning Reliable Localization Quality Estimation for Dense Object Detection},
author={Li, Xiang and Wang, Wenhai and Hu, Xiaolin and Li, Jun and Tang, Jinhui and Yang, Jian},
journal={arXiv preprint arXiv:2011.12885},
year={2020}
}