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Comparative analysis on performances of adjustable-gain single-neuron PID controllers based on general fuzzy logic and normal cloud model

机译:基于通用模糊逻辑和正态云模型的可调增益单神经元PID控制器性能比较分析

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The solutions to parameter setting of PID controllers have always been an essential problem of control system design. The single-neuron PID controller can achieve the parameters' self-adaption to the real operation conditions by adjusting the gain value. Two computational intelligent algorithms deriving their theory sources from the uncertain reasoning are introduced to realize the on-line adjustments of gain, which are general fuzzy logic and a normal cloud model with universality. The designs on these two regulators are given containing the forms of the membership functions under the fuzzy logic & cloud model, control rules for 1-dimensional & 2-dimensional input modes, and the inference models, etc. The numerical simulations are implemented and the comparative analysis on the dynamic performance is presented based on the existent step responses and the adjustable parameters' curves with adaptive changes. By contrast, it concludes that a 2-dimensional normal cloud model leads to the desired overshoot, and its 1-dimensional model with shorter program running time adapts to occasions of high real-time demands, and fuzzy logic regulators can better meet the control requirements of the shorter setting time.
机译:PID控制器的参数设置解决方案一直是控制系统设计的基本问题。单神经元PID控制器可以通过调整增益值来实现参数对实际运行条件的自适应。引入了两种基于不确定性推理的计算智能算法来实现增益的在线调整,即通用模糊逻辑和具有通用性的普通云模型。给出了这两个调节器的设计,包括模糊逻辑和云模型下的隶属函数形式,一维和二维输入模式的控制规则以及推理模型等。基于已有的阶跃响应和自适应变化的可调整参数曲线,对动态性能进行了比较分析。相比之下,得出的结论是,二维正态云模型会导致所需的过冲,其具有较短程序运行时间的一维模型可适应高实时性需求的情况,并且模糊逻辑调节器可以更好地满足控制要求较短的设定时间。

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