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Distributed control systems with incomplete and uncertain information.

机译:具有不完整和不确定信息的分布式控制系统。

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Scientific and engineering advances in wireless communication, sensors, propulsion, and other areas are rapidly making it possible to develop unmanned air vehicles (UAVs) with sophisticated capabilities. UAVs have come to the forefront as tools for airborne reconnaissance to search for, detect, and destroy enemy targets in relatively complex environments. They potentially reduce risk to human life, are cost effective, and are superior to manned aircraft for certain types of missions. It is desirable for UAVs to have a high level of intelligent autonomy to carry out mission tasks with little external supervision and control. This raises important issues involving tradeoffs between centralized control and the associated potential to optimize mission plans, and decentralized control with great robustness and the potential to adapt to changing conditions. UAV capabilities have been extended several ways through armament (e.g., Hellfire missiles on Predator UAVs), increased endurance and altitude (e.g., Global Hawk), and greater autonomy. Some known barriers to full-scale implementation of UAVs are increased communication and control requirements as well as increased platform and system complexity. One of the key problems is how UAV systems can handle incomplete and uncertain information in dynamic environments. Especially when the system is composed of heterogeneous and distributed UAVs, the overall system complexity is increased under such conditions.;Presented through the use of published papers, this dissertation lays the groundwork for the study of methodologies for handling incomplete and uncertain information for distributed control systems. An agent-based simulation framework is built to investigate mathematical approaches (optimization) and emergent intelligence approaches. The first paper provides a mathematical approach for systems of UAVs to handle incomplete and uncertain information. The second paper describes an emergent intelligence approach for UAVs, again in handling incomplete and uncertain information. The third paper combines mathematical and emergent intelligence approaches.
机译:科学和工程技术在无线通信,传感器,推进和其他领域的进步正迅速使开发具有先进功能的无人飞行器(UAV)成为可能。无人机作为空中侦察工具在相对复杂的环境中搜索,检测和摧毁敌方目标而走在前列。它们潜在地降低了人类生命的风险,具有成本效益,并且在某些类型的任务中优于有人驾驶飞机。希望无人机具有高度的智能自主性,以在很少的外部监督和控制的情况下执行任务任务。这就提出了重要的问题,包括在集中控制和优化任务计划的相关潜力之间进行权衡,以及分散控制的鲁棒性和适应不断变化的条件的潜力。无人机的功能已经通过多种方式扩展(例如,在捕食者无人机上使用地狱火导弹),增加了续航能力和高度(例如,全球鹰)以及更大的自主权。无人机全面实施的一些已知障碍是通信和控制要求的提高以及平台和系统复杂性的提高。关键问题之一是无人机系统如何在动态环境中处理不完整和不确定的信息。特别是当系统由异构的和分布式的无人机组成时,在这种情况下,整个系统的复杂性会增加。通过论文的发表,本论文为研究分布式控制的不完全和不确定信息的方法学奠定了基础。系统。建立了基于代理的仿真框架,以研究数学方法(优化)和紧急情报方法。第一篇论文为无人机系统处理不完整和不确定的信息提供了一种数学方法。第二篇论文描述了一种用于无人机的紧急情报方法,同样用于处理不完整和不确定的信息。第三篇论文结合了数学和新兴智能方法。

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