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Language-Guided Instance-Aware Domain-Adaptive Panoptic Segmentation

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arxiv 2404.03799 v2 pith:65FQMLCP submitted 2024-04-04 cs.CV cs.AI

classification cs.CVcs.AI
keywords domainpanopticsegmentationsemanticadaptationwhilebeencatastrophic
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The increasing relevance of panoptic segmentation is tied to the advancements in autonomous driving and AR/VR applications. However, the deployment of such models has been limited due to the expensive nature of dense data annotation, giving rise to unsupervised domain adaptation (UDA). A key challenge in panoptic UDA is reducing the domain gap between a labeled source and an unlabeled target domain while harmonizing the subtasks of semantic and instance segmentation to limit catastrophic interference. While considerable progress has been achieved, existing approaches mainly focus on the adaptation of semantic segmentation. In this work, we focus on incorporating instance-level adaptation via a novel instance-aware cross-domain mixing strategy IMix. IMix significantly enhances the panoptic quality by improving instance segmentation performance. Specifically, we propose inserting high-confidence predicted instances from the target domain onto source images, retaining the exhaustiveness of the resulting pseudo-labels while reducing the injected confirmation bias. Nevertheless, such an enhancement comes at the cost of degraded semantic performance, attributed to catastrophic forgetting. To mitigate this issue, we regularize our semantic branch by employing CLIP-based domain alignment (CDA), exploiting the domain-robustness of natural language prompts. Finally, we present an end-to-end model incorporating these two mechanisms called LIDAPS, achieving state-of-the-art results on all popular panoptic UDA benchmarks.

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  1. Unlocking Constraints: Source-Free Occlusion-Aware Seamless Segmentation

    cs.CV 2025-06 conditional novelty 6.0 of 10

    UNLOCK adapts a pinhole-trained amodal panoptic segmentation model to unlabeled panoramic images with no source data, via omni pseudo-labeling and amodal-driven object mixing.

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