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Autonomic System Architecture: An Automated Planning Perspective

机译:自治系统体系结构:自动化规划的观点

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Control systems embodying artificial intelligence (AI) techniques tend to be "reactive" rather than "deliberative" in many application areas. There arises a need for systems that can sense, interpret and deliberate with their actions and goals to be achieved, taking into consideration continuous changes in state, required service level and environmental constraints. The requirement of such systems is that they can plan and act effectively after such deliberation, so that behaviourally they appear self-aware. In this paper, we focus on designing a generic architecture for autonomic systems which is inspired by the Human Autonomic Nervous System. Our architecture consists of four main components which are discussed in the context of the Urban Traffic Control Domain. We also highlight the role of AI planning in enabling self-management property of autonomic systems. We believe that creating a generic architecture that enables control systems to automatically reason with knowledge of their environment and their controls, in order to generate plans and schedules to manage themselves, would be a significant step forward in the field of autonomic systems.
机译:体现人工智能(AI)技术的控制系统在许多应用领域中往往是“反应性的”而不是“协商性的”。考虑到状态,要求的服务水平和环境约束的不断变化,需要一种能够感知,解释和仔细考虑要实现的动作和目标的系统。此类系统的要求是,它们可以在进行这种审议后有效地进行计划和采取行动,从而使其表现出自我意识。在本文中,我们专注于设计受人类自主神经系统启发的自主系统通用体系结构。我们的体系结构由四个主要组成部分组成,这些组成部分在“城市交通控制领域”中进行了讨论。我们还强调了AI规划在实现自主系统的自我管理特性方面的作用。我们相信,创建一个通用的体系结构,使控制系统能够根据其环境和控制知识自动进行推理,以便生成计划和进度表来进行自我管理,这将是自主系统领域的重要一步。

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