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A hybrid forecasting model for enrollments based on aggregated fuzzy time series and particle swarm optimization

机译:基于集合模糊时间序列和粒子群算法的混合入学预测模型

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摘要

In this paper, a new forecasting model based on two computational methods, fuzzy time series and particle swarm optimization, is presented for academic enrollments. Most of fuzzy time series forecasting methods are based on modeling the global nature of the series behavior in the past data. To improve forecasting accuracy of fuzzy time series, the global information of fuzzy logical relationships is aggregated with the local information of latest fuzzy fluctuation to find the forecasting value in fuzzy time series. After that, a new forecasting model based on fuzzy time series and particle swarm optimization is developed to adjust the lengths of intervals in the universe of discourse. From the empirical study of forecasting enrollments of students of the University of Alabama, the experimental results show that the proposed model gets lower forecasting errors than those of other existing models including both training and testing phases.
机译:本文提出了一种基于模糊时间序列和粒子群优化两种计算方法的新型预测模型。大多数模糊时间序列预测方法都是基于对过去数据中序列行为的全局性质建模。为了提高模糊时间序列的预测精度,将模糊逻辑关系的全局信息与最新的模糊波动的局部信息进行汇总,以求出模糊时间序列的预测值。此后,建立了一个基于模糊时间序列和粒子群优化的新预测模型来调整话语范围中的区间长度。通过对阿拉巴马大学学生的预测入学率的实证研究,实验结果表明,与包括训练和测试两个阶段在内的其他现有模型相比,该模型的预测误差更低。

著录项

  • 来源
    《Expert Systems with Application》 |2011年第7期|p.8014-8023|共10页
  • 作者单位

    Department of Computer Science and Information Engineering, National Taiwan University of Science and Technology, Taipei 106, Taiwan;

    Department of Computer Science and Information Engineering, National Taiwan University of Science and Technology, Taipei 106, Taiwan,School of Mathematics and Computer Engineering, Xihua University, 610039 Chengdu, Sichuan, PR China,Institute of Mobile Communications Southwest jiaotong University, 610031 Chengdu, Sichuan, PR China;

    School of Mathematics and Computer Engineering, Xihua University, 610039 Chengdu, Sichuan, PR China;

    Institute of Mobile Communications Southwest jiaotong University, 610031 Chengdu, Sichuan, PR China;

    Department of Electronic Engineering, Technology and Science Institute of Northern Taiwan, Taipei 112, Taiwan;

    Center of Excellence in Information Assurance, King Saud University, Saudi Arabia;

    Department of Electronic Engineering, National United University, 36003 Miao-Li, Taiwan;

    Department of Information Management, St. Mary's Medicine, Nursing and Management College, Yi-Lan 266, Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fuzzy time series; particle swarm optimization; fuzzy forecasting; latest fuzzy fluctuation;

    机译:模糊时间序列;粒子群优化;模糊预测;最新的模糊波动;

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