Acta Aeronautica et Astronautica Sinica ›› 2025, Vol. 46 ›› Issue (11): 531296.doi: 10.7527/S1000-6893.2024.31296
• Reviews • Previous Articles
Haijun ZHANG1(
), Qingyue XIA1, Xu MA1, Chao REN1, Yang LU2
Received:2024-09-30
Revised:2024-10-14
Accepted:2024-11-05
Online:2024-11-26
Published:2024-11-20
Contact:
Haijun ZHANG
E-mail:zhanghaijun@ustb.edu.cn
Supported by:CLC Number:
Haijun ZHANG, Qingyue XIA, Xu MA, Chao REN, Yang LU. A review of unmanned aerial vehicles deployment optimization in 6G low-altitude communication scenarios[J]. Acta Aeronautica et Astronautica Sinica, 2025, 46(11): 531296.
Table 2
Comparison of UAV deployment optimization algorithms
| 算法类型 | 适用的无人机部署场景 | 优点 | 缺点 | 文献 |
|---|---|---|---|---|
| 智能搜索算法 | 适用于中等规模问题 | 可找到全局最优解或近似解,适用于多类应用场景 | 对于大规模问题计算成本高,易陷入局部最优 | [ |
| 凸优化 | 适用于中等规模问题 | 可处理具有凸约束的优化问题,可以得到全局最优解 | 对于非凸问题不适用,大规模问题计算成本高 | [ |
| 深度强化学习 | 适合大规模和复杂环境问题,如无人机自主部署 | 可处理高维状态空间和连续动作空间,具有较好的泛化能力 | 需要大量数据进行训练,对环境的动态变化敏感 | [ |
| 多智能体深度强化学习 | 适用于多无人机协同任务和动态部署环境 | 在分布式决策和协同优化上具有优势,适合动态环境下的无人机协作部署 | 策略复杂,易受环境不稳定性影响,训练开销大 | [ |
| 图论 | 适合离散和组合优化问题 | 算法成熟,在特定环境下求解迅速 | 对于复杂场景,其轨迹难以转化为图 | [ |
| 博弈论 | 取决于无人机博弈的复杂性和参与者数量 | 有利于解决多无人机协作问题,确定纳什均衡策略解 | 对于非零和博弈或不完全信息博弈可能难以找到解 | [ |
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