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Evolving Granular Fuzzy Model-Based Control of Nonlinear Dynamic Systems

机译:基于演化颗粒模糊模型的非线性动力系统控制

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Unknown nonstationary processes require modeling and control design to be done in real time using streams of data collected from the process. The purpose is to stabilize the closed-loop system under changes of the operating conditions and process parameters. This paper introduces a model-based evolving granular fuzzy control approach as a step toward the development of a general framework for online modeling and control of unknown nonstationary processes with no human intervention. An incremental learning algorithm is introduced to develop and adapt the structure and parameters of the process model and controller based on information extracted from uncertain data streams. State feedback control laws and closed-loop stability are obtained from the solution of relaxed linear matrix inequalities derived from a fuzzy Lyapunov function. Bounded control inputs are also taken into account in the control system design. We explain the role of fuzzy granular data and the use of parallel distributed compensation. Fuzzy granular computation provides a way to handle data uncertainty and facilitates incorporation of domain knowledge. Although the evolving granular approach is oriented to control systems whose dynamics is complex and unknown, for expositional clarity, we consider online modeling and stabilization of the well-known Lorenz chaos as an illustrative example.
机译:未知的非平稳过程需要使用从过程中收集的数据流实时完成建模和控制设计。目的是在操作条件和过程参数发生变化时稳定闭环系统。本文介绍了一种基于模型的进化颗粒模糊控制方法,以此为通用模型的开发迈出了一步,该模型无需人工干预即可对未知非平稳过程进行在线建模和控制。引入了增量学习算法,用于基于从不确定数据流中提取的信息来开发和调整过程模型和控制器的结构和参数。通过从模糊Lyapunov函数得到的松弛线性矩阵不等式的解获得状态反馈控制律和闭环稳定性。在控制系统设计中还应考虑有限的控制输入。我们解释了模糊粒度数据的作用以及并行分布补偿的使用。模糊粒度计算提供了一种处理数据不确定性的方法,并有助于合并领域知识。尽管不断发展的粒度方法面向动态复杂且未知的控制系统,但为了便于说明,我们将在线建模和稳定的著名Lorenz混沌视为一个说明性示例。

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