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Prediction method with the variable threshold based on fuzzy association rules

机译:基于模糊关联规则的可变阈值预测方法

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Quantitative attributes are partitioned into several fuzzy sets by fuzzy c-means algorithm, and the search technology of a priori algorithm is improved to discover interesting fuzzy association rules. Then, the prediction method with the variable threshold based on the fuzzy association rules is presented. In this prediction method, a little error between prediction value and actual value is allowed. When the error is less than a given threshold, prediction value is regarded as acceptable or rational. The parameters of triangular fuzzy numbers are adjusted to improve the prediction accuracy by the genetic algorithm last. This prediction method can obtain the different prediction accuracy corresponding to the different error threshold chosen by the users, so it is more flexible and effective.
机译:通过模糊c均值算法将定量属性划分为几个模糊集,并改进了先验算法的搜索技术以发现有趣的模糊关联规则。然后,提出了一种基于模糊关联规则的可变阈值预测方法。在该预测方法中,允许预测值与实际值之间的误差很小。当误差小于给定阈值时,预测值被认为是可接受的或合理的。最后通过遗传算法调整三角模糊数的参数以提高预测精度。该预测方法可以获得与用户选择的不同错误阈值相对应的不同预测精度,因此更加灵活有效。

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