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Review Paper

Application of Reinforcement Learning in UAV Tasks: A Survey

Jiahao Fu*, Feng Yang, ( )
National Elite Institute of Engineering, Northwestern Polytechnical University, Xi’an 710072, P. R. China
Key Laboratory of Information Fusion Technology, Ministry of Education, Xi’an 710072, P. R. China
School of Automation, Northwestern Polytechnical University, Xi’an 710072, P. R. China

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

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Abstract

The burgeoning demand for unmanned aerial vehicles (UAVs) across diverse domains can be attributed to their high flexibility, ease of deployment and low operational costs. Concomitantly, rapid advancements in reinforcement learning have emerged as a viable avenue for augmenting the autonomy of UAVs. This paper provides a comprehensive overview of the foundational concepts and methodologies of reinforcement learning and taxonomizes its applications in UAV decision-making into three primary categories: fundamental tasks encompassing obstacle avoidance and path planning, advanced tasks involving cooperative control, and complex tasks requiring adversarial decision-making. Additionally, the challenges associated with implementing reinforcement learning in UAV applications are critically examined. In the final section, we envision future research directions and provide a comprehensive summary of the study. This will assist practitioners and researchers in selecting appropriate reinforcement learning algorithms for their drone mission applications.

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Unmanned Systems
Pages 267-280

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Review Status: {{reviewData.commendedNum}} Commended , {{reviewData.revisionRequiredNum}} Revision Required , {{reviewData.notCommendedNum}} Not Commended Under Peer Review

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Cite this article:
Fu J, Yang F. Application of Reinforcement Learning in UAV Tasks: A Survey. Unmanned Systems, 2026, 14(2): 267-280. https://doi.org/10.1142/S2301385026300015

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Received: 30 October 2024
Revised: 26 December 2024
Accepted: 26 December 2024
Published: 06 March 2025
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