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- Collections:
- - Name: Libra R-CNN
- Metadata:
- Training Data: COCO
- Training Techniques:
- - IoU-Balanced Sampling
- - SGD with Momentum
- - Weight Decay
- Training Resources: 8x V100 GPUs
- Architecture:
- - Balanced Feature Pyramid
- Paper:
- URL: https://arxiv.org/abs/1904.02701
- Title: 'Libra R-CNN: Towards Balanced Learning for Object Detection'
- README: configs/libra_rcnn/README.md
- Code:
- URL: https://github.com/open-mmlab/mmdetection/blob/v2.0.0/mmdet/models/necks/bfp.py#L10
- Version: v2.0.0
- Models:
- - Name: libra-faster-rcnn_r50_fpn_1x_coco
- In Collection: Libra R-CNN
- Config: configs/libra_rcnn/libra-faster-rcnn_r50_fpn_1x_coco.py
- Metadata:
- Training Memory (GB): 4.6
- inference time (ms/im):
- - value: 52.63
- hardware: V100
- backend: PyTorch
- batch size: 1
- mode: FP32
- resolution: (800, 1333)
- Epochs: 12
- Results:
- - Task: Object Detection
- Dataset: COCO
- Metrics:
- box AP: 38.3
- Weights: https://download.openmmlab.com/mmdetection/v2.0/libra_rcnn/libra_faster_rcnn_r50_fpn_1x_coco/libra_faster_rcnn_r50_fpn_1x_coco_20200130-3afee3a9.pth
- - Name: libra-faster-rcnn_r101_fpn_1x_coco
- In Collection: Libra R-CNN
- Config: configs/libra_rcnn/libra-faster-rcnn_r101_fpn_1x_coco.py
- Metadata:
- Training Memory (GB): 6.5
- inference time (ms/im):
- - value: 69.44
- hardware: V100
- backend: PyTorch
- batch size: 1
- mode: FP32
- resolution: (800, 1333)
- Epochs: 12
- Results:
- - Task: Object Detection
- Dataset: COCO
- Metrics:
- box AP: 40.1
- Weights: https://download.openmmlab.com/mmdetection/v2.0/libra_rcnn/libra_faster_rcnn_r101_fpn_1x_coco/libra_faster_rcnn_r101_fpn_1x_coco_20200203-8dba6a5a.pth
- - Name: libra-faster-rcnn_x101-64x4d_fpn_1x_coco
- In Collection: Libra R-CNN
- Config: configs/libra_rcnn/libra-faster-rcnn_x101-64x4d_fpn_1x_coco.py
- Metadata:
- Training Memory (GB): 10.8
- inference time (ms/im):
- - value: 117.65
- hardware: V100
- backend: PyTorch
- batch size: 1
- mode: FP32
- resolution: (800, 1333)
- Epochs: 12
- Results:
- - Task: Object Detection
- Dataset: COCO
- Metrics:
- box AP: 42.7
- Weights: https://download.openmmlab.com/mmdetection/v2.0/libra_rcnn/libra_faster_rcnn_x101_64x4d_fpn_1x_coco/libra_faster_rcnn_x101_64x4d_fpn_1x_coco_20200315-3a7d0488.pth
- - Name: libra-retinanet_r50_fpn_1x_coco
- In Collection: Libra R-CNN
- Config: configs/libra_rcnn/libra-retinanet_r50_fpn_1x_coco.py
- Metadata:
- Training Memory (GB): 4.2
- inference time (ms/im):
- - value: 56.5
- hardware: V100
- backend: PyTorch
- batch size: 1
- mode: FP32
- resolution: (800, 1333)
- Epochs: 12
- Results:
- - Task: Object Detection
- Dataset: COCO
- Metrics:
- box AP: 37.6
- Weights: https://download.openmmlab.com/mmdetection/v2.0/libra_rcnn/libra_retinanet_r50_fpn_1x_coco/libra_retinanet_r50_fpn_1x_coco_20200205-804d94ce.pth
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