metafile.yml 1.1 KB

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  1. Collections:
  2. - Name: Dynamic R-CNN
  3. Metadata:
  4. Training Data: COCO
  5. Training Techniques:
  6. - SGD with Momentum
  7. - Weight Decay
  8. Training Resources: 8x V100 GPUs
  9. Architecture:
  10. - Dynamic R-CNN
  11. - FPN
  12. - RPN
  13. - ResNet
  14. - RoIAlign
  15. Paper:
  16. URL: https://arxiv.org/pdf/2004.06002
  17. Title: 'Dynamic R-CNN: Towards High Quality Object Detection via Dynamic Training'
  18. README: configs/dynamic_rcnn/README.md
  19. Code:
  20. URL: https://github.com/open-mmlab/mmdetection/blob/v2.2.0/mmdet/models/roi_heads/dynamic_roi_head.py#L11
  21. Version: v2.2.0
  22. Models:
  23. - Name: dynamic-rcnn_r50_fpn_1x_coco
  24. In Collection: Dynamic R-CNN
  25. Config: configs/dynamic_rcnn/dynamic-rcnn_r50_fpn_1x_coco.py
  26. Metadata:
  27. Training Memory (GB): 3.8
  28. Epochs: 12
  29. Results:
  30. - Task: Object Detection
  31. Dataset: COCO
  32. Metrics:
  33. box AP: 38.9
  34. Weights: https://download.openmmlab.com/mmdetection/v2.0/dynamic_rcnn/dynamic_rcnn_r50_fpn_1x/dynamic_rcnn_r50_fpn_1x-62a3f276.pth