Cloud-Based Mathematical Models for Self-organizing Swarms of UAVs: Design and Analysis

S. Poghosyan, V. Poghosyan, Sergey Abrahamyan, A. Lazyan, Hrachya Astsatryan, Y. Alaverdyan, Karen Eguiazarian
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Abstract

Unmanned Aerial Vehicle (UAV) swarms have gained significant attention for their potential applications in various fields. The effective coordination and control of UAV swarms require the development of robust mathematical models that can capture their complex dynamics. The paper introduces mathematical models and relevant paradigms based on the design and analysis of self-organizing swarms of UAVs. The logical and technological construction of the model relies on the theorems developed by authors for obtaining full information exchange during the swarm quasi-random walk. The suggested rotor-router model interprets the discrete-time walk accompanied by the deterministic evolution of configurations of rotors randomly placed on the vertices of the swarm graph. The recommended optimal and fault-tolerant gossip/broadcast schemes support the resilience of swarm to internal failures and external attacks, and cryptographic protocols approve the security. The proposed cloud network topology serves as the implementation framework for the model, encompassing various connectivity options to ensure the expected behavior of the UAV swarms.
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基于云的无人机群自组织数学模型:设计与分析
无人机群因其在各个领域的潜在应用而备受关注。要对无人飞行器群进行有效协调和控制,就必须建立能捕捉其复杂动态的稳健数学模型。本文介绍了基于无人机群自组织设计和分析的数学模型和相关范式。模型的逻辑和技术构建依赖于作者为在蜂群准随机行走过程中获得充分信息交换而开发的定理。建议的旋翼路由器模型解释了离散时间行走,以及随机放置在蜂群图顶点上的旋翼配置的确定性演变。推荐的最优容错流言/广播方案支持蜂群抵御内部故障和外部攻击,加密协议则确保了安全性。建议的云网络拓扑结构是该模型的实施框架,包含各种连接选项,以确保无人机群的预期行为。
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