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On the practice of artificial intelligence based predictive control scheme: A case study

机译:基于人工智能的预测控制方案的实践:一个案例研究

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摘要

This paper describes a novel artificial intelligence based predictive control scheme for the purpose of dealing with so many complicated systems. In the control scheme proposed here, the system has to be first represented through a multi-Takagi-Sugeno-Kang (TSK) fuzzy-based model approach to make an appropriate prediction of the system behavior. Subsequently, a multi-generalized predictive control (GPC) scheme, which is organized based on a number of GPC schemes, is realized in line with the investigated model outcomes, at chosen operating points of the system. In case of the proposed control strategy realization, the investigated multi-GPC scheme is instantly updated to handle the system by activating the best control scheme through a new GPC identifier, while the system output is suddenly varied with respect to time. To present the applicability of the proposed control scheme, an industrial tubular heat exchanger system and also a drum-type boiler-turbine system have been chosen to drive through the proposed strategy. In such a case, the simulations are carried out and the corresponding results are compared with those obtained using traditional GPC scheme in addition to nonlinear GPC (NLGPC) scheme, as benchmark approaches, where the acquired results of the proposed control scheme are desirably verified.
机译:本文描述了一种新颖的基于人工智能的预测控制方案,旨在处理如此众多的复杂系统。在此处提出的控制方案中,必须首先通过多高木-Sugeno-Kang(TSK)基于模糊的模型方法来表示系统,以对系统行为进行适当的预测。随后,根据调查的模型结果,在系统的选定操作点上实现了基于多个GPC方案组织的多广义预测控制(GPC)方案。在实现所提出的控制策略的情况下,通过激活新的GPC标识符激活最佳控制方案,可以立即更新所研究的多GPC方案以处理系统,而系统输​​出随时间突然变化。为了展示所提出的控制方案的适用性,已经选择了工业管状热交换器系统以及鼓式锅炉-涡轮系统来驱动所提出的策略。在这种情况下,将进行仿真,并将与非线性GPC(NLGPC)方案之外的传统GPC方案获得的结果进行比较,以作为基准方法,其中希望验证所提出的控制方案的结果。

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