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SOTA
全景分割
Panoptic Segmentation On Mapillary Val
Panoptic Segmentation On Mapillary Val
评估指标
PQ
PQst
PQth
mIoU
评测结果
各个模型在此基准测试上的表现结果
Columns
模型名称
PQ
PQst
PQth
mIoU
Paper Title
Repository
OneFormer (DiNAT-L, single-scale)
46.7
54.9
40.5
61.7
OneFormer: One Transformer to Rule Universal Image Segmentation
OneFormer (ConvNeXt-L, single-scale)
46.4
54.0
40.6
61.6
OneFormer: One Transformer to Rule Universal Image Segmentation
Panoptic FCN* (Swin-L, single-scale)
45.7
52.1
40.8
-
Fully Convolutional Networks for Panoptic Segmentation
Panoptic-DeepLab (SWideRNet-(1, 1, 4.5), multi-scale)
44.8
51.9
39.3
60.0
Scaling Wide Residual Networks for Panoptic Segmentation
-
Mask2Former + Intra-Batch Supervision (ResNet-50)
42.2
52.0
34.9
-
Intra-Batch Supervision for Panoptic Segmentation on High-Resolution Images
Axial-DeepLab-L (multi-scale)
41.1
51.3
33.4
58.4
Axial-DeepLab: Stand-Alone Axial-Attention for Panoptic Segmentation
EfficientPS
40.6
-
-
-
EfficientPS: Efficient Panoptic Segmentation
Panoptic-DeepLab (X71)
40.5
-
-
-
Panoptic-DeepLab: A Simple, Strong, and Fast Baseline for Bottom-Up Panoptic Segmentation
AdaptIS (ResNeXt-101)
40.3
-
-
56.8
AdaptIS: Adaptive Instance Selection Network
-
Panoptic FCN* (ResNet-FPN)
36.9
-
32.9
-
Fully Convolutional Networks for Panoptic Segmentation
JSIS-Net (ResNet-50)
17.6
-
-
-
Panoptic Segmentation with a Joint Semantic and Instance Segmentation Network
-
HRNet-OCR (Hierarchical Multi-Scale Attention)
17.6
-
-
-
Hierarchical Multi-Scale Attention for Semantic Segmentation
Panoptic FCN* (ResNet-50-FPN)
-
42.3
-
-
Fully Convolutional Networks for Panoptic Segmentation
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