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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Cerebellar model articulation controller proportional velocity parameters variations and learning schemes - A study on electrohydraulic servo system
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Cerebellar model articulation controller proportional velocity parameters variations and learning schemes - A study on electrohydraulic servo system

机译:小脑模型关节控制器速度参数比例变化与学习方案-电液伺服系统研究

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摘要

Cerebellar model articulation controller neural networks is one of the computational intelligence tools that can be applied for modeling, classification, and control. Proportional velocity controller is a servo-type controller, which is commonly applied to motion control systems. This paper presents a novel combination of cerebellar model articulation controller neural networks and optimal proportional velocity controller. A simple mathematical model for applying and studying cerebellar model articulation controller is introduced, and a study of its parameters is presented individually. The effect of parameters variation on cerebellar model articulation controller performance is identified. Learning algorithms highly affect the cerebellar model articulation controller behavior even when the parameters are optimized, and proper selection of the learning scheme must be taken under consideration. Three different learning algorithms are studied for evaluating transient and steady-state cerebellar model articulation controller responses. The results showed that the change of cerebellar model articulation controller generalization size and scale of the control signal has a marked effect on the performance of cerebellar model articulation controller. Furthermore, the constant learning rate algorithm gives the best overall performance.
机译:小脑模型关节控制器神经网络是可用于建模,分类和控制的计算智能工具之一。比例速度控制器是一种伺服型控制器,通常应用于运动控制系统。本文提出了小脑模型关节控制器神经网络和最优比例速度控制器的新型组合。介绍了应用和研究小脑模型关节控制器的简单数学模型,并对其参数进行了单独研究。确定了参数变化对小脑模型关节控制器性能的影响。即使对参数进行了优化,学习算法也会对小脑模型关节控制器的行为产生很大影响,因此必须考虑对学习方案的正确选择。研究了三种不同的学习算法,用于评估瞬态和稳态小脑模型关节控制器的响应。结果表明,小脑模型关节控制器的泛化大小和控制信号的大小的变化对小脑模型关节控制器的性能有显着影响。此外,恒定学习率算法可提供最佳的整体性能。

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