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UAV–UGV Cooperative Trajectory Optimization and Task Allocation for Medical Rescue Tasks in Post-Disaster Environments

  • Kaiyuan Chen
  • , Wanpeng Zhao
  • , Yongxi Liu
  • , Na Wang
  • , Yuanqing Xia
  • , Wannian Liang*
  • , Shuo Wang
  • *Corresponding author for this work
  • CAS - Institute of Automation
  • Tsinghua University
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

In post-disaster scenarios, rapid and efficient delivery of medical resources is critical and challenging due to severe damage to infrastructure. To provide an optimized solution, we propose a cooperative trajectory optimization and task allocation framework leveraging unmanned aerial vehicles (UAVs) and unmanned ground vehicles (UGVs). This study integrates a Genetic Algorithm (GA) for efficient task allocation among multiple UAVs and UGVs, and employs an informed-RRT* (Rapidly-exploring Random Tree Star) algorithm for collision-free trajectory generation. Further optimization of task sequencing and path efficiency is conducted using Covariance Matrix Adaptation Evolution Strategy (CMA-ES). Simulation experiments conducted in a realistic post-disaster environment demonstrate that our proposed approach significantly improves the overall efficiency of medical rescue operations compared to traditional strategies. Specifically, our method reduces the total mission completion time to 26.7 min for a 15-task scenario, outperforming K-means clustering and random allocation by over 73%. Furthermore, the framework achieves a substantial 15.1% reduction in total traveled distance after CMA-ES optimization. The cooperative utilization of UAVs and UGVs effectively balances their complementary advantages, highlighting the system’s scalability and practicality for real-world deployment.

Original languageEnglish
JournalUnmanned Systems
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

Keywords

  • CMA-ES
  • Post-disaster rescue
  • collaboration of UAV and UGV
  • genetic algorithm
  • informed-RRT*
  • task allocation
  • trajectory optimization

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