具有分散事件触发的输出反馈最终有界控制

IF 0.4 4区 计算机科学 Q4 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE
Koichi KITAMURA, Koichi KOBAYASHI, Yuh YAMASHITA
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引用次数: 0

摘要

在物理和信息组件之间交互的网络物理系统(cps)中,有许多通过通信网络连接的传感器。在这种情况下,减少通信费用是很重要的。事件触发控制是一种众所周知的cps控制方法,即只有当测量值发生较大变化时才更新控制输入。在本文中,我们提出了一种具有分散事件触发机制的输出反馈控制器的设计方法,其中使用一致最终有界性的概念作为控制规范。使用这个概念,我们可以保证状态在一定时间后保持在包含原点的特定集合内,这取决于初始状态。因此,事件发生的次数可以减少。首先,制定设计问题。然后,将该问题简化为一个BMI(双线性矩阵不等式)优化问题,通过求解多个LMI(线性矩阵不等式)优化问题来求解。最后通过一个算例验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Output Feedback Ultimate Boundedness Control with Decentralized Event-Triggering
In cyber-physical systems (CPSs) that interact between physical and information components, there are many sensors that are connected through a communication network. In such cases, the reduction of communication costs is important. Event-triggered control that the control input is updated only when the measured value is widely changed is well known as one of the control methods of CPSs. In this paper, we propose a design method of output feedback controllers with decentralized event-triggering mechanisms, where the notion of uniformly ultimate boundedness is utilized as a control specification. Using this notion, we can guarantee that the state stays within a certain set containing the origin after a certain time, which depends on the initial state. As a result, the number of times that the event occurs can be decreased. First, the design problem is formulated. Next, this problem is reduced to a BMI (bilinear matrix inequality) optimization problem, which can be solved by solving multiple LMI (linear matrix inequality) optimization problems. Finally, the effectiveness of the proposed method is presented by a numerical example.
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来源期刊
CiteScore
1.10
自引率
20.00%
发文量
137
审稿时长
3.9 months
期刊介绍: Includes reports on research, developments, and examinations performed by the Society''s members for the specific fields shown in the category list such as detailed below, the contents of which may advance the development of science and industry: (1) Reports on new theories, experiments with new contents, or extensions of and supplements to conventional theories and experiments. (2) Reports on development of measurement technology and various applied technologies. (3) Reports on the planning, design, manufacture, testing, or operation of facilities, machinery, parts, materials, etc. (4) Presentation of new methods, suggestion of new angles, ideas, systematization, software, or any new facts regarding the above.
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