New concepts for fuzzy partitioning, defuzzification and derivation of probabilistic fuzzy decision trees

J. Baldwin, S. B. Karale
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引用次数: 6

Abstract

Mass assignment based ID3 by Baldwin is an extension of ID3 algorithm by Quinlan for decision making and prediction problems. Mass assignment ID3 has been proved to be important while dealing with continuous variables. Use of entropy calculation to obtain better fuzzy partitions is introduced which results in asymmetric fuzzy sets. Use of asymmetric fuzzy sets, gives way to form decision trees, which increases the reliability and efficiency of the fuzzy ID3 algorithm in case of clustered databases or gives the competitive results. One attribute reduced database format is used to deal with the databases. Specific method of defuzzification is used to derive a point value from the probability distribution over the fuzzy sets of the target attribute, which becomes the prediction.
给出了概率模糊决策树的模糊划分、去模糊化和推导的新概念
Baldwin的基于质量分配的ID3算法是对Quinlan的ID3算法在决策和预测问题上的扩展。质量赋值ID3在处理连续变量时已被证明是重要的。引入了利用熵计算来获得更好的模糊划分,从而得到不对称模糊集。利用不对称模糊集,让位给决策树的形成,提高了模糊ID3算法在聚类数据库情况下的可靠性和效率,或者给出了竞争结果。使用一种属性简化的数据库格式来处理数据库。采用特定的去模糊化方法,从目标属性模糊集上的概率分布中得到一个点值,成为预测结果。
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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