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Star-Searcher: A Complete and Efficient Aerial System for Autonomous Target Search in Complex Unknown Environments

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arxiv 2402.16348 v2 pith:DBMZDBCM submitted 2024-02-26 cs.RO

classification cs.RO
keywords planningsearchaerialglobalpathstar-searchertargetautonomous
verification ladder T0 review T1 audit T2 compute T3 formal
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This paper tackles the challenge of autonomous target search using unmanned aerial vehicles (UAVs) in complex unknown environments. To fill the gap in systematic approaches for this task, we introduce Star-Searcher, an aerial system featuring specialized sensor suites, mapping, and planning modules to optimize searching. Path planning challenges due to increased inspection requirements are addressed through a hierarchical planner with a visibility-based viewpoint clustering method. This simplifies planning by breaking it into global and local sub-problems, ensuring efficient global and local path coverage in real-time. Furthermore, our global path planning employs a history-aware mechanism to reduce motion inconsistency from frequent map changes, significantly enhancing search efficiency. We conduct comparisons with state-of-the-art methods in both simulation and the real world, demonstrating shorter flight paths, reduced time, and higher target search completeness. Our approach will be open-sourced for community benefit at https://github.com/SYSU-STAR/STAR-Searcher.

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