Configuration-Induced Passive Self-Rotation for Perception-Enhanced Autonomous Flight
Abstract
Autonomous flight in confined and cluttered environments is fundamentally limited by the restricted field of view (FoV) of onboard sensors. Passive self-rotation expands sensing coverage without additional sensors but introduces a tradeoff between swept-FoV refresh rate and flight performance. This letter presents a configuration-induced passively self-rotating tricopter for perception-enhanced autonomous flight. Firstly, the rear-arm configuration parameter is exploited to regulate the passive self-rotation operating point, providing an airframe-level mechanism for balancing swept-FoV refresh rate and flight performance. Secondly, a hierarchical autonomy framework integrating planning and control is developed to enable agile and robust autonomous flight under continuous passive self-rotation. For waypoint-based inspection, guide-point replanning is further used to improve task-level coverage. Extensive real-world experiments, including high-speed trajectory tracking, disturbance-rejection tests, and autonomous navigation in representative cluttered environments, demonstrate the effectiveness of the proposed approach for perception-enhanced autonomous flight.
Cite
@article{arxiv.2607.17646,
title = {Configuration-Induced Passive Self-Rotation for Perception-Enhanced Autonomous Flight},
author = {Xurui Liu and Miao Wang and Tianyu He and Linrui Yang and Xiaobin Zhou},
journal= {arXiv preprint arXiv:2607.17646},
year = {2026}
}
Comments
9 pages, 7 figures, 4 tables