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Self-Improving Autonomous Underwater Manipulation

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arxiv 2410.18969 v1 pith:A26MXKUY submitted 2024-10-24 cs.RO

classification cs.RO
keywords manipulationaquabothumanautonomousunderwaterexperimentsreal-worldself-improving
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Underwater robotic manipulation faces significant challenges due to complex fluid dynamics and unstructured environments, causing most manipulation systems to rely heavily on human teleoperation. In this paper, we introduce AquaBot, a fully autonomous manipulation system that combines behavior cloning from human demonstrations with self-learning optimization to improve beyond human teleoperation performance. With extensive real-world experiments, we demonstrate AquaBot's versatility across diverse manipulation tasks, including object grasping, trash sorting, and rescue retrieval. Our real-world experiments show that AquaBot's self-optimized policy outperforms a human operator by 41% in speed. AquaBot represents a promising step towards autonomous and self-improving underwater manipulation systems. We open-source both hardware and software implementation details.

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Cited by 1 Pith paper

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  1. Control of Marine Robots in the Era of Data-Driven Intelligence

    cs.RO 2025-06 conditional novelty 2.0 of 10

    A survey of data-driven control for single and cooperative marine robots, with a taxonomy of methods and a list of open-source simulators and robot platforms.

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