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SOTA
Semi Supervised Semantic Segmentation
Semi Supervised Semantic Segmentation On 25
Semi Supervised Semantic Segmentation On 25
評価指標
mIoU (1% Labels)
mIoU (10% Labels)
mIoU (20% Labels)
mIoU (50% Labels)
評価結果
このベンチマークにおける各モデルのパフォーマンス結果
Columns
モデル名
mIoU (1% Labels)
mIoU (10% Labels)
mIoU (20% Labels)
mIoU (50% Labels)
Paper Title
Repository
Sup.-only (Range View)
38.3
57.5
62.7
67.6
FIDNet: LiDAR Point Cloud Semantic Segmentation with Fully Interpolation Decoding
MeanTeacher (Range View)
42.1
60.4
65.4
69.4
Mean teachers are better role models: Weight-averaged consistency targets improve semi-supervised deep learning results
CPS (Range View)
40.7
60.8
64.9
68.0
Semi-Supervised Semantic Segmentation with Cross Pseudo Supervision
PLE (Voxel)
62.9
74.3
76
76.1
Learning from Spatio-temporal Correlation for Semi-Supervised LiDAR Semantic Segmentation
CBST (Range View)
40.9
60.5
64.3
69.3
Unsupervised Domain Adaptation for Semantic Segmentation via Class-Balanced Self-Training
Sup.-only (Voxel)
50.9
65.9
66.6
71.2
Cylindrical and Asymmetrical 3D Convolution Networks for LiDAR Segmentation
LaserMix (Voxel)
-
-
-
-
Learning from Spatio-temporal Correlation for Semi-Supervised LiDAR Semantic Segmentation
CutMix-Seg (Range View)
43.8
63.9
64.8
69.8
Semi-supervised semantic segmentation needs strong, varied perturbations
LaserMix (Range View)
49.5
68.2
70.6
73.0
LaserMix for Semi-Supervised LiDAR Semantic Segmentation
MeanTeacher (Voxel)
51.6
66.0
67.1
71.7
Mean teachers are better role models: Weight-averaged consistency targets improve semi-supervised deep learning results
LaserMix (Voxel)
55.3
69.9
71.8
73.2
LaserMix for Semi-Supervised LiDAR Semantic Segmentation
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