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Optimized fuzzy PDC controller for nonlinear systems with T-S model mismatch

机译:具有T-S模型不匹配的非线性系统的优化模糊PDC控制器

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In this paper, a heuristic method based on Genetic Algorithms (GA) is proposed to improve the performance of Fuzzy Logic Controllers (FLCs) designed for Takagi-Sugeno (T-S) model of nonlinear plants by Parallel Distributed Compensation (PDC) technique. Generally, T-S models might not represent the dynamics of nonlinear plants accurately. Due to this mismatch, sometimes the response of the controlled nonlinear plant is not as desirable as the response of the corresponding T-S model controlled by the same FLC. Despite the fact that there is a flurry of research on the stability of FLCs applied to T-S model of nonlinear systems, the stability matters of FLCs applied to nonlinear systems is still a challenge. It is obvious that the performance of FLCs is entirely affected by the characteristics of membership functions. Thus, by tuning the type or parameters of fuzzy controller's membership functions using GA, the drawbacks caused by model mismatch can be decreased. In fact, the proposed method concerns the applicability of fuzzy PDC controllers to nonlinear plants and does not confide itself to dealing with T-S models. Thus, the improved fuzzy PDC controller is a fine-tuned PDC controller that can compensate the nonlinear plant as well as the corresponding T-S model. In order to verify the introduced strategy, the problem of balancing and swing up of an inverted pendulum on a cart is considered as a nonlinear case study. The simulation results demonstrate the effectiveness of the improved PDC.
机译:本文提出了一种基于遗传算法的启发式方法,通过并行分布式补偿(PDC)技术提高了针对非线性植物的Takagi-Sugeno(T-S)模型设计的模糊逻辑控制器(FLC)的性能。通常,T-S模型可能无法准确地表示非线性植物的动力学。由于这种失配,有时受控非线性设备的响应不如由相同FLC控制的相应T-S模型的响应那么理想。尽管有很多关于将FLC应用于非线性系统的T-S模型的稳定性的研究,但将FLC应用于非线性系统的稳定性仍然是一个挑战。显然,FLC的性能完全受隶属函数特性的影响。因此,通过使用GA调整模糊控制器隶属函数的类型或参数,可以减少由模型不匹配引起的弊端。实际上,所提出的方法涉及模糊PDC控制器对非线性设备的适用性,并且不适合处理T-S模型。因此,改进的模糊PDC控制器是一种微调PDC控制器,可以补偿非线性设备以及相应的T-S模型。为了验证所引入的策略,将倒立摆在推车上的平衡和摆动问题视为非线性案例研究。仿真结果证明了改进后的PDC的有效性。

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