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March 3, 2026
Label-constrained Unsupervised Domain Adaptation for Semantic Segmentation
AS
Alexandre Stenger
ÉB
Étienne Baudrier
BN
Benoît Naegel
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Puntos clave
Enhanced accuracy in semantic segmentation models shows a 20% improvement under specific label constraints.
Observational analysis across various datasets reveals significant resilience to domain shifts.
Unsupervised domain adaptation techniques were applied to improve performance without labeled data.
Indicates the need for novel methods to bridge domain gaps in real-world applications.
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International audience
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Stenger et al. (Sun,) studied this question.
synapsesocial.com/papers/69a75b9ec6e9836116a233f9
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Label-constrained Unsupervised Domain Adaptation for Semantic Segmentation | Synapse