Multi-resolution techniques in the rules-based intelligent control systems: a universal approximation result

Y. Yam, Hung T. Nguyen, V. Kreinovich
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引用次数: 21

Abstract

One of the main problems of fuzzy control is that the number of rules which are necessary to represent a given control strategy with a given accuracy, grows exponentially with the increase in accuracy. As a result, for reasonable accuracy and a reasonable number of input variables, a great number of rules is sometimes needed. In this paper, we start to solve this problem by pointing out that traditional one-step fuzzy rule bases, in which expert rules directly express control in terms of the input, are often a simplification of the actual multi-step expert reasoning. We show that a natural formalization of such expert reasoning leads to a universal approximation result in which the number of control rules does not increase with the increase in accuracy. Thus, this multi-resolution approach looks like a promising solution to the rule base explosion problem.
基于规则的智能控制系统中的多分辨率技术:一个通用的近似结果
模糊控制的一个主要问题是,以给定精度表示给定控制策略所需的规则数量随着精度的增加呈指数增长。因此,为了合理的准确性和合理数量的输入变量,有时需要大量的规则。在本文中,我们开始解决这个问题,指出传统的一步模糊规则库,其中专家规则直接表示控制的输入,往往是简化了实际的多步专家推理。我们证明了这种专家推理的自然形式化导致了一个普遍的近似结果,其中控制规则的数量不随着精度的增加而增加。因此,这种多分辨率方法看起来很有希望解决规则库爆炸问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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