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首页> 外文期刊>International Journal of Intelligent Systems >Forecasting Enrollments Using High-Order Fuzzy Time Series and Genetic Algorithms
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Forecasting Enrollments Using High-Order Fuzzy Time Series and Genetic Algorithms

机译:使用高阶模糊时间序列和遗传算法预测入学人数

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摘要

In recent years, many researchers have presented different forecasting methods to deal with forecasting problems based on fuzzy time series. When we deal with forecasting problems using fuzzy time series, it is important to decide the length of each interval in the universe of discourse due to the fact that it will affect the forecasting accuracy rate. In this article, we present a new method to deal with the forecasting problems based on high-order fuzzy time series and genetic algorithms, where the length of each interval in the universe of discourse is tuned by using genetic algorithms, and the historical enrollments of the University of Alabama are used to illustrate the forecasting process of the proposed method. The proposed method can achieve a higher forecasting accuracy rate than the existing methods.
机译:近年来,许多研究人员提出了不同的预测方法来处理基于模糊时间序列的预测问题。当我们使用模糊时间序列处理预测问题时,重要的是确定话语范围中每个间隔的长度,因为它会影响预测准确率。在本文中,我们提出了一种基于高阶模糊时间序列和遗传算法的预测问题的新方法,其中,通过使用遗传算法调整话语范围中每个区间的长度,以及阿拉巴马大学用来说明该方法的预测过程。与现有方法相比,该方法可以达到更高的预测准确率。

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