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NSGA-II-Based Parameter Tuning Method and GM(1,1)-Based Development of Fuzzy Immune PID Controller for Automatic Train Operation System

机译:基于NSGA-II的参数调谐方法和GM(1,1) - 基于模糊免疫PID控制器的开发,用于自动列车操作系统

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Automatic train operation (ATO) system is one of the important components in advanced train operation control systems. Ideal controllers are expected for the automatic driving function of ATO systems. Aiming at the intelligence requirements of the systems, an NSGA-II-based parameter tuning method for the fuzzy immune PID (FI-PID) controller and a grey model GM(1,1)-based fuzzy grey immune PID (FGI-PID) controller were proposed. Taking a maglev train’s model as the control object and a velocity-time curve as the input, the feasibility of the parameter tuning method for the FI-PID controller and the applicability of the FI-PID controller and the FGI-PID controller for the ATO system were tested. The results showed that the optimized parameters were ideal, the two controllers all showed good performance on the indicators of traceability and comfort level, and the FGI-PID controller performed better than the FI-PID controller. The results exhibited the effectiveness of the proposed methods.
机译:自动列车操作(ATO)系统是高级列车运行控制系统中的重要组成部分之一。理想的控制器预计ATO系统的自动驱动功能。针对系统的智能要求,基于NSGA-II的参数调整方法,用于模糊免疫PID(FI-PID)控制器和灰色模型GM(1,1)基于模糊灰色免疫PID(FGI-PID)提出了控制器。将Maglev列车的模型作为控制对象和速度 - 时曲线作为输入,FI-PID控制器参数调谐方法的可行性以及FI-PID控制器的适用性和用于ATO的FGI-PID控制器系统进行了测试。结果表明,优化的参数是理想的,两个控制器都在可追溯性和舒适度的指标上显示出良好的性能,并且FGI-PID控制器比FI-PID控制器更好。结果表现出所提出的方法的有效性。

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