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An extended grey forecasting model for omnidirectional forecasting considering data gap difference

机译:考虑数据缺口差异的全向扩展灰色预测模型

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摘要

To achieve effective and efficient decision making in a highly competitive business envi ronment, an enterprise must have an appropriate forecasting technique that can meet the requirements of both timeliness and accuracy. Accordingly, in the early stages, building a forecasting model with incomplete information and limited samples is very important to a business. Grey system theory is one of the prediction methods that can be built with a small sample and yet has a strong ability to make short-term predictions. The purpose of this study is to come up with an improved forecasting model based on the concept of this theory to enlarge the applicability of the grey forecasting model in various situations. By extending the data transforming approach, this method generalizes a building proce dure for the grey model to grasp the data outline and information trend. Specifically, a novel inverse accumulating generation operator is developed to enable omnidirectional forecasting. The research utilizes observations of the titanium alloy fatigue limit along with temperature changes as raw data to verify the performance of the proposed method. The experimental results show that not only can this method expand the application scope of the grey forecasting model, but also improve its forecasting accuracy.
机译:为了在竞争激烈的业务环境中做出有效而高效的决策,企业必须拥有能够同时满足及时性和准确性要求的适当预测技术。因此,在早期阶段,建立具有不完整信息和有限样本的预测模型对企业来说非常重要。灰色系统理论是可以用少量样本构建的预测方法之一,但是具有进行短期预测的强大能力。本研究的目的是基于该理论的概念提出一种改进的预测模型,以扩大灰色预测模型在各种情况下的适用性。通过扩展数据转换方法,该方法概括了灰色模型的构建过程,以掌握数据轮廓和信息趋势。具体而言,开发了一种新颖的逆累积发电算子以实现全向预测。该研究利用对钛合金疲劳极限以及温度变化的观察作为原始数据来验证所提出方法的性能。实验结果表明,该方法不仅可以扩展灰色预测模型的应用范围,而且可以提高其预测精度。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2011年第10期|p.5051-5058|共8页
  • 作者单位

    Department of Industrial and Information Management, National Chen Kung University, No. 1, University Road, Tainan City 70101, Taiwan, ROC;

    Department of Industrial and Information Management, National Chen Kung University, No. 1, University Road, Tainan City 70101, Taiwan, ROC;

    Department of Industrial and Information Management, National Chen Kung University, No. 1, University Road, Tainan City 70101, Taiwan, ROC;

    Department of Industrial and Information Management, National Chen Kung University, No. 1, University Road, Tainan City 70101, Taiwan, ROC;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    forecasting; grey theory; small data set; fatigue limit;

    机译:预测;灰色理论小数据集;疲劳极限;
  • 入库时间 2022-08-18 03:00:08

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