Fuzzy modeling by ID3 algorithm and its application to prediction of heater outlet temperature

T. Tani, M. Sakoda, Kazuo Tanaka
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引用次数: 31

Abstract

The authors propose a practical method for fuzzy modeling. The ID3 algorithm, used in the field of machine learning, was applied to select the effective variables in the premises of a fuzzy model and compute their boundary values. Even when the process had many variables, effective variables were chosen and their boundary values for fuzzification were computed automatically. This method was applied to a system to predict heater outlet temperature. Good results were obtained, and the system was operated with the required accuracy without adding new rules or without modifying rules.<>
ID3算法模糊建模及其在加热器出口温度预测中的应用
作者提出了一种实用的模糊建模方法。采用机器学习领域的ID3算法,选取模糊模型前提中的有效变量,计算其边界值。当过程中存在多个变量时,选择有效变量并自动计算其模糊化边界值。将该方法应用于加热器出口温度预测系统。结果表明,在不增加新规则或不修改规则的情况下,系统运行精度达到了要求。
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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