Modelling capabilities of fuzzy relational models

Yue Wu, A. Dexter
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引用次数: 9

Abstract

The paper considers the types of non-linear dynamic systems that can be modeled ideally using a fuzzy relational model. It is shown that it is possible to find values of the rule confidences that guarantee there are no prediction errors at the centres or the input sets, if the behaviour of the non-linear dynamic system can be described by a Hammerstein model. An expression for the maximum prediction error is also derived. Results are presented which demonstrate that a fuzzy relational model with "ideal" values for its rule confidences can accurately describe the non-linear dynamic operation of a simulated cooling coil. Results are also presented that show how the "ideal" values of the rule confidences can be used to assess the performance of on-line fuzzy identification schemes and evaluate the quality of different sets of training data.
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模糊关系模型的建模能力
本文考虑了可以用模糊关系模型理想地建模的非线性动态系统的类型。结果表明,如果非线性动态系统的行为可以用Hammerstein模型描述,则有可能找到保证在中心或输入集没有预测误差的规则置信度值。给出了最大预测误差的表达式。结果表明,规则置信度为“理想”值的模糊关系模型能够准确地描述模拟冷却盘管的非线性动态运行。结果还表明,规则置信度的“理想”值可以用来评估在线模糊识别方案的性能,并评估不同训练数据集的质量。
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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