575 lines
20 KiB
YAML
575 lines
20 KiB
YAML
Collections:
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- Name: deeplabv3plus
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Metadata:
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Training Data:
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- Cityscapes
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- ADE20K
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- ' Pascal VOC 2012 + Aug'
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- ' Pascal Context'
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- ' Pascal Context 59'
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Models:
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- Name: deeplabv3plus_r50-d8_512x1024_40k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (512,1024)
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lr schd: 40000
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inference time (ms/im):
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- value: 253.81
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 7.5
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.61
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mIoU(ms+flip): 81.01
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x1024_40k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x1024_40k_cityscapes/deeplabv3plus_r50-d8_512x1024_40k_cityscapes_20200605_094610-d222ffcd.pth
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- Name: deeplabv3plus_r101-d8_512x1024_40k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D8
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crop size: (512,1024)
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lr schd: 40000
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inference time (ms/im):
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- value: 384.62
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 11.0
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.21
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mIoU(ms+flip): 81.82
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x1024_40k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x1024_40k_cityscapes/deeplabv3plus_r101-d8_512x1024_40k_cityscapes_20200605_094614-3769eecf.pth
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- Name: deeplabv3plus_r50-d8_769x769_40k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (769,769)
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lr schd: 40000
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inference time (ms/im):
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- value: 581.4
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 8.5
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 78.97
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mIoU(ms+flip): 80.46
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_769x769_40k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_769x769_40k_cityscapes/deeplabv3plus_r50-d8_769x769_40k_cityscapes_20200606_114143-1dcb0e3c.pth
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- Name: deeplabv3plus_r101-d8_769x769_40k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D8
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crop size: (769,769)
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lr schd: 40000
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inference time (ms/im):
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- value: 869.57
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 12.5
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.46
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mIoU(ms+flip): 80.5
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_769x769_40k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_769x769_40k_cityscapes/deeplabv3plus_r101-d8_769x769_40k_cityscapes_20200606_114304-ff414b9e.pth
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- Name: deeplabv3plus_r18-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-18-D8
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crop size: (512,1024)
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lr schd: 80000
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inference time (ms/im):
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- value: 70.08
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 2.2
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 76.89
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mIoU(ms+flip): 78.76
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Config: configs/deeplabv3plus/deeplabv3plus_r18-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r18-d8_512x1024_80k_cityscapes/deeplabv3plus_r18-d8_512x1024_80k_cityscapes_20201226_080942-cff257fe.pth
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- Name: deeplabv3plus_r50-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (512,1024)
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lr schd: 80000
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.09
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mIoU(ms+flip): 81.13
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x1024_80k_cityscapes/deeplabv3plus_r50-d8_512x1024_80k_cityscapes_20200606_114049-f9fb496d.pth
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- Name: deeplabv3plus_r101-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D8
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crop size: (512,1024)
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lr schd: 80000
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.97
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mIoU(ms+flip): 82.03
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x1024_80k_cityscapes/deeplabv3plus_r101-d8_512x1024_80k_cityscapes_20200606_114143-068fcfe9.pth
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- Name: deeplabv3plus_r18-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-18-D8
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crop size: (769,769)
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lr schd: 80000
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inference time (ms/im):
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- value: 174.22
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 2.5
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 76.26
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mIoU(ms+flip): 77.91
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Config: configs/deeplabv3plus/deeplabv3plus_r18-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r18-d8_769x769_80k_cityscapes/deeplabv3plus_r18-d8_769x769_80k_cityscapes_20201226_083346-f326e06a.pth
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- Name: deeplabv3plus_r50-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (769,769)
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lr schd: 80000
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.83
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mIoU(ms+flip): 81.48
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_769x769_80k_cityscapes/deeplabv3plus_r50-d8_769x769_80k_cityscapes_20200606_210233-0e9dfdc4.pth
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- Name: deeplabv3plus_r101-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D8
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crop size: (769,769)
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lr schd: 80000
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.98
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mIoU(ms+flip): 82.18
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_769x769_80k_cityscapes/deeplabv3plus_r101-d8_769x769_80k_cityscapes_20200607_000405-a7573d20.pth
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- Name: deeplabv3plus_r101-d16-mg124_512x1024_40k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D16-MG124
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crop size: (512,1024)
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lr schd: 40000
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inference time (ms/im):
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- value: 133.69
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 5.8
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.09
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mIoU(ms+flip): 80.36
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d16-mg124_512x1024_40k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d16-mg124_512x1024_40k_cityscapes/deeplabv3plus_r101-d16-mg124_512x1024_40k_cityscapes_20200908_005644-cf9ce186.pth
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- Name: deeplabv3plus_r101-d16-mg124_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D16-MG124
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crop size: (512,1024)
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lr schd: 80000
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memory (GB): 9.9
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.9
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mIoU(ms+flip): 81.33
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d16-mg124_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d16-mg124_512x1024_80k_cityscapes/deeplabv3plus_r101-d16-mg124_512x1024_80k_cityscapes_20200908_005644-ee6158e0.pth
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- Name: deeplabv3plus_r18b-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-18b-D8
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crop size: (512,1024)
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lr schd: 80000
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inference time (ms/im):
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- value: 66.89
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 2.1
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 75.87
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mIoU(ms+flip): 77.52
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Config: configs/deeplabv3plus/deeplabv3plus_r18b-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r18b-d8_512x1024_80k_cityscapes/deeplabv3plus_r18b-d8_512x1024_80k_cityscapes_20201226_090828-e451abd9.pth
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- Name: deeplabv3plus_r50b-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50b-D8
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crop size: (512,1024)
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lr schd: 80000
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inference time (ms/im):
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- value: 253.81
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 7.4
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.28
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mIoU(ms+flip): 81.44
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Config: configs/deeplabv3plus/deeplabv3plus_r50b-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50b-d8_512x1024_80k_cityscapes/deeplabv3plus_r50b-d8_512x1024_80k_cityscapes_20201225_213645-a97e4e43.pth
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- Name: deeplabv3plus_r101b-d8_512x1024_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101b-D8
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crop size: (512,1024)
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lr schd: 80000
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inference time (ms/im):
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- value: 384.62
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,1024)
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memory (GB): 10.9
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 80.16
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mIoU(ms+flip): 81.41
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Config: configs/deeplabv3plus/deeplabv3plus_r101b-d8_512x1024_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101b-d8_512x1024_80k_cityscapes/deeplabv3plus_r101b-d8_512x1024_80k_cityscapes_20201226_190843-9c3c93a4.pth
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- Name: deeplabv3plus_r18b-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-18b-D8
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crop size: (769,769)
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lr schd: 80000
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inference time (ms/im):
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- value: 167.79
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 2.4
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 76.36
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mIoU(ms+flip): 78.24
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Config: configs/deeplabv3plus/deeplabv3plus_r18b-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r18b-d8_769x769_80k_cityscapes/deeplabv3plus_r18b-d8_769x769_80k_cityscapes_20201226_151312-2c868aff.pth
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- Name: deeplabv3plus_r50b-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50b-D8
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crop size: (769,769)
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lr schd: 80000
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inference time (ms/im):
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- value: 581.4
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 8.4
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.41
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mIoU(ms+flip): 80.56
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Config: configs/deeplabv3plus/deeplabv3plus_r50b-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50b-d8_769x769_80k_cityscapes/deeplabv3plus_r50b-d8_769x769_80k_cityscapes_20201225_224655-8b596d1c.pth
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- Name: deeplabv3plus_r101b-d8_769x769_80k_cityscapes
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101b-D8
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crop size: (769,769)
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lr schd: 80000
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inference time (ms/im):
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- value: 909.09
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (769,769)
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memory (GB): 12.3
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Results:
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Task: Semantic Segmentation
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Dataset: Cityscapes
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Metrics:
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mIoU: 79.88
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mIoU(ms+flip): 81.46
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Config: configs/deeplabv3plus/deeplabv3plus_r101b-d8_769x769_80k_cityscapes.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101b-d8_769x769_80k_cityscapes/deeplabv3plus_r101b-d8_769x769_80k_cityscapes_20201226_205041-227cdf7c.pth
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- Name: deeplabv3plus_r50-d8_512x512_80k_ade20k
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (512,512)
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lr schd: 80000
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inference time (ms/im):
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- value: 47.6
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,512)
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memory (GB): 10.6
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Results:
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Task: Semantic Segmentation
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Dataset: ADE20K
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Metrics:
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mIoU: 42.72
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mIoU(ms+flip): 43.75
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x512_80k_ade20k.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x512_80k_ade20k/deeplabv3plus_r50-d8_512x512_80k_ade20k_20200614_185028-bf1400d8.pth
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- Name: deeplabv3plus_r101-d8_512x512_80k_ade20k
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-101-D8
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crop size: (512,512)
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lr schd: 80000
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inference time (ms/im):
|
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- value: 70.62
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,512)
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memory (GB): 14.1
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Results:
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Task: Semantic Segmentation
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Dataset: ADE20K
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Metrics:
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mIoU: 44.6
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mIoU(ms+flip): 46.06
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x512_80k_ade20k.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x512_80k_ade20k/deeplabv3plus_r101-d8_512x512_80k_ade20k_20200615_014139-d5730af7.pth
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- Name: deeplabv3plus_r50-d8_512x512_160k_ade20k
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In Collection: deeplabv3plus
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Metadata:
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backbone: R-50-D8
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crop size: (512,512)
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lr schd: 160000
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Results:
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Task: Semantic Segmentation
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Dataset: ADE20K
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Metrics:
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mIoU: 43.95
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mIoU(ms+flip): 44.93
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x512_160k_ade20k.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x512_160k_ade20k/deeplabv3plus_r50-d8_512x512_160k_ade20k_20200615_124504-6135c7e0.pth
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- Name: deeplabv3plus_r101-d8_512x512_160k_ade20k
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In Collection: deeplabv3plus
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Metadata:
|
|
backbone: R-101-D8
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crop size: (512,512)
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lr schd: 160000
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Results:
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Task: Semantic Segmentation
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Dataset: ADE20K
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Metrics:
|
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mIoU: 45.47
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mIoU(ms+flip): 46.35
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x512_160k_ade20k.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x512_160k_ade20k/deeplabv3plus_r101-d8_512x512_160k_ade20k_20200615_123232-38ed86bb.pth
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- Name: deeplabv3plus_r50-d8_512x512_20k_voc12aug
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In Collection: deeplabv3plus
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Metadata:
|
|
backbone: R-50-D8
|
|
crop size: (512,512)
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lr schd: 20000
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inference time (ms/im):
|
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- value: 47.62
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hardware: V100
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backend: PyTorch
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batch size: 1
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mode: FP32
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resolution: (512,512)
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memory (GB): 7.6
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Results:
|
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Task: Semantic Segmentation
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Dataset: ' Pascal VOC 2012 + Aug'
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Metrics:
|
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mIoU: 75.93
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mIoU(ms+flip): 77.5
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Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x512_20k_voc12aug.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x512_20k_voc12aug/deeplabv3plus_r50-d8_512x512_20k_voc12aug_20200617_102323-aad58ef1.pth
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- Name: deeplabv3plus_r101-d8_512x512_20k_voc12aug
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In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (512,512)
|
|
lr schd: 20000
|
|
inference time (ms/im):
|
|
- value: 72.05
|
|
hardware: V100
|
|
backend: PyTorch
|
|
batch size: 1
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mode: FP32
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|
resolution: (512,512)
|
|
memory (GB): 11.0
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|
Results:
|
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Task: Semantic Segmentation
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|
Dataset: ' Pascal VOC 2012 + Aug'
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Metrics:
|
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mIoU: 77.22
|
|
mIoU(ms+flip): 78.59
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Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x512_20k_voc12aug.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x512_20k_voc12aug/deeplabv3plus_r101-d8_512x512_20k_voc12aug_20200617_102345-c7ff3d56.pth
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- Name: deeplabv3plus_r50-d8_512x512_40k_voc12aug
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In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-50-D8
|
|
crop size: (512,512)
|
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lr schd: 40000
|
|
Results:
|
|
Task: Semantic Segmentation
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Dataset: ' Pascal VOC 2012 + Aug'
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Metrics:
|
|
mIoU: 76.81
|
|
mIoU(ms+flip): 77.57
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|
Config: configs/deeplabv3plus/deeplabv3plus_r50-d8_512x512_40k_voc12aug.py
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Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r50-d8_512x512_40k_voc12aug/deeplabv3plus_r50-d8_512x512_40k_voc12aug_20200613_161759-e1b43aa9.pth
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- Name: deeplabv3plus_r101-d8_512x512_40k_voc12aug
|
|
In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (512,512)
|
|
lr schd: 40000
|
|
Results:
|
|
Task: Semantic Segmentation
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|
Dataset: ' Pascal VOC 2012 + Aug'
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|
Metrics:
|
|
mIoU: 78.62
|
|
mIoU(ms+flip): 79.53
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|
Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_512x512_40k_voc12aug.py
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|
Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_512x512_40k_voc12aug/deeplabv3plus_r101-d8_512x512_40k_voc12aug_20200613_205333-faf03387.pth
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- Name: deeplabv3plus_r101-d8_480x480_40k_pascal_context
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|
In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (480,480)
|
|
lr schd: 40000
|
|
inference time (ms/im):
|
|
- value: 110.01
|
|
hardware: V100
|
|
backend: PyTorch
|
|
batch size: 1
|
|
mode: FP32
|
|
resolution: (480,480)
|
|
Results:
|
|
Task: Semantic Segmentation
|
|
Dataset: ' Pascal Context'
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|
Metrics:
|
|
mIoU: 47.3
|
|
mIoU(ms+flip): 48.47
|
|
Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_480x480_40k_pascal_context.py
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|
Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_480x480_40k_pascal_context/deeplabv3plus_r101-d8_480x480_40k_pascal_context_20200911_165459-d3c8a29e.pth
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|
- Name: deeplabv3plus_r101-d8_480x480_80k_pascal_context
|
|
In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (480,480)
|
|
lr schd: 80000
|
|
Results:
|
|
Task: Semantic Segmentation
|
|
Dataset: ' Pascal Context'
|
|
Metrics:
|
|
mIoU: 47.23
|
|
mIoU(ms+flip): 48.26
|
|
Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_480x480_80k_pascal_context.py
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|
Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_480x480_80k_pascal_context/deeplabv3plus_r101-d8_480x480_80k_pascal_context_20200911_155322-145d3ee8.pth
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- Name: deeplabv3plus_r101-d8_480x480_40k_pascal_context_59
|
|
In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (480,480)
|
|
lr schd: 40000
|
|
Results:
|
|
Task: Semantic Segmentation
|
|
Dataset: ' Pascal Context 59'
|
|
Metrics:
|
|
mIoU: 52.86
|
|
mIoU(ms+flip): 54.54
|
|
Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_480x480_40k_pascal_context_59.py
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|
Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_480x480_40k_pascal_context_59/deeplabv3plus_r101-d8_480x480_40k_pascal_context_59_20210416_111233-ed937f15.pth
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|
- Name: deeplabv3plus_r101-d8_480x480_80k_pascal_context_59
|
|
In Collection: deeplabv3plus
|
|
Metadata:
|
|
backbone: R-101-D8
|
|
crop size: (480,480)
|
|
lr schd: 80000
|
|
Results:
|
|
Task: Semantic Segmentation
|
|
Dataset: ' Pascal Context 59'
|
|
Metrics:
|
|
mIoU: 53.2
|
|
mIoU(ms+flip): 54.67
|
|
Config: configs/deeplabv3plus/deeplabv3plus_r101-d8_480x480_80k_pascal_context_59.py
|
|
Weights: https://download.openmmlab.com/mmsegmentation/v0.5/deeplabv3plus/deeplabv3plus_r101-d8_480x480_80k_pascal_context_59/deeplabv3plus_r101-d8_480x480_80k_pascal_context_59_20210416_111127-7ca0331d.pth
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