Online evolving fuzzy control design: An application to a CSTR plant

Jérôme Mendes, F. Souza, R. Araújo
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引用次数: 7

Abstract

The paper proposes a methodology to self-evolve an online fuzzy logic controller (FLC). The proposed methodology does not require any initialization at all, it can start with an empty set of fuzzy control rules or with a simple collection of fuzzy control rules obtained from an expert operator. The FLC design is online, using only the input/output data obtained during the normal operation of the system while it is being controlled. The FLC is composed of a simple structure, where each input variable has its own set of fuzzy control rules, and is evaluated individually by the proposed methodology avoiding the high increase in the number of fuzzy control rules. The FLC structure and their antecedent and consequent parameters are both online modified by the proposed methodology. Only simple information about the system and controller is need, specifically the universe of discourse of the input and output variables, an information that is mandatory to control any process. The performance of the proposed methodology is tested on a simulated continuous-stirred tank reactor (CSTR) system where the results show that the proposed methodology has the capability of designing the FLC in order to successfully controlling the CSTR system by evolving/modifying the FLC structure when unknown regions of operation are reached (unknown for the controller).
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在线演化模糊控制设计:在CSTR装置中的应用
提出了一种在线模糊控制器的自进化方法。所提出的方法不需要任何初始化,它可以从一组空的模糊控制规则开始,也可以从专家算子获得的简单模糊控制规则集合开始。FLC设计是在线的,仅使用系统在被控制时正常运行期间获得的输入/输出数据。FLC由一个简单的结构组成,其中每个输入变量都有自己的一组模糊控制规则,并通过所提出的方法单独评估,避免了模糊控制规则数量的大量增加。采用该方法对FLC结构及其前、后参数进行在线修正。只需要关于系统和控制器的简单信息,特别是输入和输出变量的范围,这是控制任何过程所必需的信息。在模拟连续搅拌槽式反应器(CSTR)系统上进行了性能测试,结果表明,所提出的方法具有设计FLC的能力,以便在到达未知操作区域(控制器未知)时通过进化/修改FLC结构来成功控制CSTR系统。
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