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Classification by induction: application to modelling and control of non-linear dynamical systems

机译:通过归纳分类:在非线性动力系统的建模和控制中的应用

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摘要

The modelling and identification of non-Linear dynamical systems are considered in this paper. The emulation of an existing controller, a skilled human for example, is a special case of this general treatment. A technique is sought, capable of developing general black-box non-linear models with both numerical and symbolic data. The models themselves are expressed in a high-level human-understandable format and are induced from examples of past behaviour. In the case of human controllers, this approach removes reliance on the articulation of skilled behaviour. The studied approach is based on the automatic induction of decision trees and production rules from examples; these are particular cases of classifiers. The algorithms used are a product of the machine learning sub-field of artificial intelligence research. A formalism is developed whereby the modelling and control of general dynamical systems are transformed to classification problems, and therefore become amenable to processing by the induction algorithms mentioned above. Experimental results are presented describing the induction of executable models, both of skilled human control behaviour and of an existing automatic controller. Experiments were performed in simulations and on physical laboratory apparatus.
机译:本文考虑了非线性动力学系统的建模与辨识。现有控制器的模仿,例如技术人员,是这种一般处理的特例。寻求一种能够开发具有数字和符号数据的通用黑盒非线性模型的技术。模型本身以高级的人类可理解的格式表示,并且是从过去的行为示例中得出的。在人工控制器的情况下,这种方法消除了对熟练行为表达的依赖。研究的方法基于实例的决策树和生产规则的自动归纳;这些是分类器的特殊情况。所使用的算法是人工智能研究的机器学习子领域的产品。发展了形式主义,由此将通用动力系统的建模和控制转换为分类问题,因此可以通过上述归纳算法进行处理。给出了实验结果,描述了可执行模型的归纳,包括熟练的人为控制行为和现有自动控制器。实验是在模拟和物理实验室仪器上进行的。

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