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Opti-Acoustic Semantic SLAM with Unknown Objects in Underwater Environments

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arxiv 2403.12837 v2 pith:IJZZVJA2 submitted 2024-03-19 cs.RO

classification cs.RO
keywords methodunderwaterobjectobjectssemanticslambaselineclasses
verification ladder T0 review T1 audit T2 compute T3 formal
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Despite recent advances in semantic Simultaneous Localization and Mapping (SLAM) for terrestrial and aerial applications, underwater semantic SLAM remains an open and largely unaddressed research problem due to the unique sensing modalities and the object classes found underwater. This paper presents an object-based semantic SLAM method for underwater environments that can identify, localize, classify, and map a wide variety of marine objects without a priori knowledge of the object classes present in the scene. The method performs unsupervised object segmentation and object-level feature aggregation, and then uses opti-acoustic sensor fusion for object localization. Probabilistic data association is used to determine observation to landmark correspondences. Given such correspondences, the method then jointly optimizes landmark and vehicle position estimates. Indoor and outdoor underwater datasets with a wide variety of objects and challenging acoustic and lighting conditions are collected for evaluation and made publicly available. Quantitative and qualitative results show the proposed method achieves reduced trajectory error compared to baseline methods, and is able to obtain comparable map accuracy to a baseline closed-set method that requires hand-labeled data of all objects in the scene.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Semantic Communication for the Internet of Underwater Things: Architectures, Applications, Challenges, and Future Directions

    eess.SP 2026-01 reject novelty 2.0 of 10

    A survey of semantic communication for underwater IoT that compiles architectures, applications, and future directions, but contains internally inconsistent performance claims and many non-archival citations.

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