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Research paper

Time-Optimal Flight in Cluttered Environments via Safe Reinforcement Learning

Wei Xiao* Zhaohan Feng* Ziyu Zhou* Jian Sun* Gang Wang* ( )Jie Chen*, 
School of Automation, Beijing Institute of Technology, Beijing 100081, China
Department of Control Science and Engineering, Tongji University, Shanghai 201804, China

This paper was recommended for publication in its revised form by editorial board member, Jinqiang Cui.

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Abstract

This paper addresses the problem of guiding a quadrotor through a predefined sequence of waypoints in cluttered environments, aiming to minimize the flight time while avoiding collisions. Previous approaches either suffer from prolonged computational time caused by solving complex non-convex optimization problems or are limited by the inherent smoothness of polynomial trajectory representations, thereby restricting the flexibility of movement. In this work, we present a safe reinforcement learning approach for autonomous drone racing with time-optimal flight in cluttered environments. The reinforcement learning policy, trained using safety and terminal rewards specifically designed to enforce near time-optimal and collision-free flight, outperforms current state-of-the-art algorithms. Additionally, experimental results demonstrate the efficacy of the proposed approach in achieving both minimum flight time and obstacle avoidance objectives in complex environments, with a commendable 66.7% success rate in unseen, challenging settings.

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Unmanned Systems
Pages 391-400

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Cite this article:
Xiao W, Feng Z, Zhou Z, et al. Time-Optimal Flight in Cluttered Environments via Safe Reinforcement Learning. Unmanned Systems, 2026, 14(2): 391-400. https://doi.org/10.1142/S230138502650007X

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Received: 18 October 2024
Accepted: 14 January 2025
Published: 22 March 2025
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