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SOTA
Semantic Segmentation
Semantic Segmentation On Isprs Vaihingen
Semantic Segmentation On Isprs Vaihingen
Metrics
Average F1
Overall Accuracy
Results
Performance results of various models on this benchmark
Columns
Model Name
Average F1
Overall Accuracy
Paper Title
LSKNet-T
91.7
93.6
LSKNet: A Foundation Lightweight Backbone for Remote Sensing
LSKNet-S
91.8
93.6
LSKNet: A Foundation Lightweight Backbone for Remote Sensing
EfficientUNets and Transformers
93.7
91.8
Semantic Labeling of High Resolution Images Using EfficientUNets and Transformers
DC-Swin
90.7
91.6
A Novel Transformer Based Semantic Segmentation Scheme for Fine-Resolution Remote Sensing Images
FT-UNetFormer
91.3
91.6
UNetFormer: A UNet-like Transformer for Efficient Semantic Segmentation of Remote Sensing Urban Scene Imagery
UNetFormer
90.4
91.0
UNetFormer: A UNet-like Transformer for Efficient Semantic Segmentation of Remote Sensing Urban Scene Imagery
MANet
-
90.963
Multiattention network for semantic segmentation of fine-resolution remote sensing images
ABCNet
-
90.7
ABCNet: Attentive Bilateral Contextual Network for Efficient Semantic Segmentation of Fine-Resolution Remote Sensing Images
BANet
-
90.5
Transformer Meets Convolution: A Bilateral Awareness Network for Semantic Segmentation of Very Fine Resolution Urban Scene Images
UPerNet (SAP)
-
90.14
Stochastic Subsampling With Average Pooling
SFA-Net
91.2
-
SFA-Net: Semantic Feature Adjustment Network for Remote Sensing Image Segmentation
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