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An IMC based fuzzy self-tuning mechanism for fuzzy PID controllers

机译:基于IMC的模糊PID控制器模糊自整定机制。

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In this study, we will present a novel Internal Model Control (IMC) based Self-Tuning (ST) mechanism to tune the Scaling Factors (SFs) of the fuzzy PID controllers in an online manner. Moreover, we will present a fuzzy PI-D (FPI-D) structure in order to eliminate the derivative kick and the effect of noise on the control signal. The proposed IMC based fuzzy ST mechanism is constructed by two Fuzzy Inference Systems (FISs) and an IMC based SF (IMC-SF) parameter regulator. The two FISs will predict the current values of the system parameters by using the system output value and then the IMC-SF parameter regulator will tune the SFs of FPI-D with respect to presented tuning method. The performance of the proposed Self-Tuning FPI-D (ST-FPI-D) will be evaluated on a realtime laboratory scale extruder process with its discrete implementation via the ABB PLC PM573 industrial controller. We will compare and examine the control system performance of the proposed ST fuzzy control structure with an IMC based tuned ABB-PID and FPI-D structures. The real-time experimental results will show that the proposed ST-FPI-D structure enhanced significantly the control performance for various operating points and in the presence of uncertainties and nonlinearities when compared to the ABB-PID and FPI-D structures.
机译:在这项研究中,我们将提出一种新颖的基于内部模型控制(IMC)的自调整(ST)机制,以在线方式调整模糊PID控制器的比例因子(SF)。此外,我们将提出一种模糊的PI-D(FPI-D)结构,以消除微分踢和噪声对控制信号的影响。所提出的基于IMC的模糊ST机制由两个模糊推理系统(FIS)和基于IMC的SF(IMC-SF)参数调节器构成。这两个FIS将通过使用系统输出值来预测系统参数的当前值,然后IMC-SF参数调节器将相对于所提出的调整方法来调整FPI-D的SF。拟议的自整定FPI-D(ST-FPI-D)的性能将通过ABB PLC PM573工业控制器在其离散实施的实时实验室规模挤出机工艺上进行评估。我们将与基于IMC的ABB-PID和FPI-D结构调整后的ST模糊控制结构的控制系统性能进行比较和检查。实时实验结果表明,与ABB-PID和FPI-D结构相比,所提出的ST-FPI-D结构显着提高了各种工作点的控制性能,并且在存在不确定性和非线性的情况下。

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