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DRL-Based Adaptive Dynamic Window Approach for Path Planning of UAV in Dynamic Environments

  • Kai Meng
  • , Binghong Wu
  • , Chen Chen*
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The path planning and obstacle avoidance in dy-namic environments are crucial challenges for UAV autonomous navigation. While the dynamic window approach (DWA) is widely used for such tasks, it suffers from poor robustness and a high dependency on parameter tuning. To overcome these limitations, we propose DBADWA, an adaptive algorithm that integrates deep reinforcement learning with DWA to dynamically predict optimal weighting parameters, enhancing local navigation. In DBADWA, the action space is restructured using key parameters of DWA, including target heading deviation, distance to the nearest obstacle, and velocity. To address the issue of sparse rewards, we enhance the reward function of the advantage actor-critic model by incorporating the distance to obstacles alongside DWA's metrics, such as distance, velocity, and heading. Exper-imental results across various dynamic scenarios demonstrate that DBADWA significantly reduces path length, shortens arrival times, and improves adaptability, outperforming existing methods in complex environments.

Original languageEnglish
Title of host publicationProceedings of the 37th Chinese Control and Decision Conference, CCDC 2025
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages6117-6122
Number of pages6
ISBN (Electronic)9798331510565
DOIs
Publication statusPublished - 2025
Externally publishedYes
Event37th Chinese Control and Decision Conference, CCDC 2025 - Xiamen, China
Duration: 16 May 202519 May 2025

Publication series

NameProceedings of the 37th Chinese Control and Decision Conference, CCDC 2025

Conference

Conference37th Chinese Control and Decision Conference, CCDC 2025
Country/TerritoryChina
CityXiamen
Period16/05/2519/05/25

Keywords

  • dy-namic environments
  • dynamic window approach
  • path planning
  • sparse reward

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