On the Prospect of UAV-assisted Communications Paradigm in Public Safety Networks

Panagiotis Vamvakas, Eirini-Eleni Tsiropoulou, S. Papavassiliou
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引用次数: 15

Abstract

Modern models for Public Safety Networks (PSNs) utilize Unmanned Aerial Vehicles (UAVs) acting as ad-hoc base stations and complementing the Macro Base Station (MBS) to support the ground users' efficient and undisturbed communication. In this paper, we introduce a holistic and realistic framework that dynamically enables the ground users to invest their transmission power in an autonomous manner either in the UAV-based and/or MBS-based communication, while accounting for their Quality of Service (QoS) prerequisites and risk preferences. The UAV-based communication is characterized by limited available bandwidth, but close distance among the users and the UAV, thus resulting in users' low transmission powers and high achievable data rate, if properly utilized. In our work, the UAV's bandwidth is treated as a Common Pool of Resources (CPR), which can be exploited by all the users residing in the disaster area. However, the latter comes at the expense of resource fragility and potential failure from over-exploitation, due to its fully shared nature and excessive competition among the users. In contrast, the MBS due to its inherent characteristics acts as a safe resource, providing a guaranteed perceived satisfaction to the users based on their transmission power investment. Considering ground users' diverse behavioral patterns, when probabilistic uncertainty of the UAV's shared bandwidth is introduced, we model the ground users' power control problem under the principles of Prospect Theory. The formulated resource orchestration problem is solved as a Fragile CPR game and its convergence to a unique Pure Nash Equilibrium (PNE) point is proven. A distributed low-complexity algorithm that converges to the unique PNE is devised, while the performance of the proposed approach is evaluated through modeling and simulation.
公共安全网络中无人机辅助通信范式的展望
公共安全网络(psn)的现代模型利用无人机(uav)作为自组织基站,并补充宏基站(MBS),以支持地面用户的高效和不受干扰的通信。在本文中,我们引入了一个整体和现实的框架,该框架动态地使地面用户能够自主地将其传输功率投入到基于无人机和/或基于mbs的通信中,同时考虑到他们的服务质量(QoS)先决条件和风险偏好。基于无人机的通信的特点是可用带宽有限,但用户与无人机之间的距离较近,如果利用得当,用户的传输功率低,可实现的数据速率高。在我们的工作中,无人机的带宽被视为一个公共资源池(CPR),它可以被居住在灾区的所有用户使用。然而,后者的代价是资源的脆弱性,以及由于其完全共享的性质和使用者之间的过度竞争而造成的过度开发的潜在失败。相比之下,MBS由于其固有的特性,作为一种安全的资源,为用户提供基于其传输功率投资的有保证的感知满意度。考虑到地面用户行为模式的多样性,在引入无人机共享带宽概率不确定性的情况下,根据前景理论原理对地面用户功率控制问题进行建模。将拟定的资源编排问题作为一个脆弱的CPR博弈来解决,并证明了其收敛于一个唯一的纯纳什均衡(PNE)点。设计了一种收敛于唯一PNE的分布式低复杂度算法,并通过建模和仿真对该方法的性能进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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