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A cyber-physical system for building automation and control based on a distributed MPC with an efficient method for communication

机译:一种网络物理系统,用于基于具有高效通信方法的分布式MPC构建自动化和控制

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This paper introduces a cyber-physical system for building automation and control that is developed based on a distributed model predictive control. The implemented distributed method significantly reduces computation overhead with respect to the centralized methods. However, continuous data transfer between subsystems, which are often far from each other, is required when using this method. Information transmission between subsystems is very often subject to the limitations of transmission bandwidth and/or short communication range resulting in significant communication overhead. This causes significant time latency between making measurements and applying control commands, which adversely affects the control performance. Therefore, the distributed method used in this paper implements a twolevel communication architecture to reduce the communication overhead. In order to avoid collision in communication inside neighborhood using this method, the TDMA-OFDMA scheme is used for wireless communication between distributed devices. Under these assumptions, the communication overhead is calculated. Then, a novel algorithm for finding the size of neighborhoods resulting in the lowest time latency between making measurements and applying control commands is presented for a typical office building. Finally, the satisfactory performance of the proposed cyber-physical system for the temperature control of a typical office building in the presence of disturbance and model inaccuracy is illustrated using computer simulations. (c) 2021 European Control Association. Published by Elsevier Ltd. All rights reserved.
机译:本文介绍了一种网络物理系统,用于建立基于分布式模型预测控制的自动化和控制。实现的分布式方法显着降低了集中方法的计算开销。但是,在使用此方法时,需要在彼此之间的子系统之间的连续数据传输。子系统之间的信息传输通常经常受到传输带宽和/或短通信范围的限制,导致显着的通信开销。这导致进行测量和应用控制命令之间的显着时间延迟,这对控制性能产生了不利影响。因此,本文中使用的分布式方法实现了Twolevel通信架构,以减少通信开销。为了避免使用该方法在邻域内通信中的碰撞,TDMA-OFDMA方案用于分布式设备之间的无线通信。在这些假设下,计算通信开销。然后,为典型的Office建筑呈现了一种用于找到测量和应用控制命令之间的最低时间延迟的邻域大小的新颖算法。最后,使用计算机模拟说明了在存在干扰和模型不准确的情况下,提出了用于典型办公大楼温度控制的令人满意的网络物理系统的令人满意的性能。 (c)2021年欧洲控制协会。 elsevier有限公司出版。保留所有权利。

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