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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >Process control using genetic algorithm and ant colony optimization algorithm
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Process control using genetic algorithm and ant colony optimization algorithm

机译:使用遗传算法和蚁群优化算法的过程控制

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摘要

Artificial life uses biological knowledge and techniques to solve different engineering, management, control and computational problems. Natural systems teach us that very simple individual organisms can form systems capable of performing highly complex tasks by dynamically interacting with each other. In this study, artificial life based approaches are handled and incorporated to enable a real-time water level control. The process was first modelled using NARX type Artificial Neural Network. A fuzzy controller was then attached to the model. For a better performance, fuzzy controller membership function boundary values and action values were optimized simultaneously. The optimization process was performed using genetic algorithm and ant colony optimization algorithm, respectively. Finally, the performance of the controllers was discussed further by considering the system outputs. The developed structure replaces the tedious process of trial-and-error for better combination of fuzzy parameters and can settle the problem of designing fuzzy controller without an expert's experience.
机译:人工生命利用生物学知识和技术来解决不同的工程,管理,控制和计算问题。自然系统告诉我们,非常简单的个体生物可以通过相互动态相互作用而形成能够执行高度复杂任务的系统。在本研究中,处理并结合了基于人工生命的方法,以实现实时水位控制。首先使用NARX型人工神经网络对过程进行建模。然后将模糊控制器附加到模型。为了获得更好的性能,同时优化了模糊控制器隶属函数的边界值和作用值。优化过程分别使用遗传算法和蚁群优化算法进行。最后,通过考虑系统输出进一步讨论了控制器的性能。所开发的结构取代了繁琐的反复试验过程,可以更好地组合模糊参数,并且可以解决没有专家经验的模糊控制器设计问题。

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