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首页> 外文期刊>Journal of computer sciences >OPTIMAL CONTROL ALGORITHMS FOR SECOND ORDER SYSTEMS
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OPTIMAL CONTROL ALGORITHMS FOR SECOND ORDER SYSTEMS

机译:二阶系统的最优控制算法

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Proportional Integral Derivative (PID) controllers are widely used in industrial processes for their simplicity and robustness. The main application problems are the tuning of PID parameters to obtain good settling time, rise time and overshoot. The challenge is to improve the timing parameters to achieve optimal control performances. Remarkable findings are obtained through the use of Artificial Intelligence techniques as Fuzzy Logic, Genetic Algorithms and Neural Networks. The combination of these theories can give good results in terms of settling time, rise time and overshoot. In this study, suitable controllers able of improving timing performance of second order plants are proposed. The results show that the PID controller has good overshoot values and shows optimal robustness. The genetic-fuzzy controller gives a good value of settling time and a very good overshoot value. The neural-fuzzy controller gives the best timing parameters improving the control performances of the others two approaches. Further improvements are achieved designing a real-time optimization algorithm which works on a genetic-neuro-fuzzy controller.
机译:比例积分微分(PID)控制器由于其简单性和鲁棒性而广泛用于工业过程中。主要的应用问题是PID参数的调整以获得良好的建立时间,上升时间和过冲。挑战在于改善时序参数以实现最佳控制性能。通过使用人工智能技术(如模糊逻辑,遗传算法和神经网络)获得了惊人的发现。这些理论的结合可以在建立时间,上升时间和过冲方面给出良好的结果。在这项研究中,提出了能够改善二阶工厂时序性能的合适控制器。结果表明,PID控制器具有良好的超调值,并显示出最佳的鲁棒性。遗传模糊控制器具有很好的建立时间和超调值。神经模糊控制器提供了最佳的时序参数,从而改善了其他两种方法的控制性能。设计一种实时优化算法可实现进一步的改进,该算法可用于遗传神经模糊控制器。

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