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Research on a novel fractional GM(α, n) model and its applications

机译:新型分数克(α,N)模型及其应用研究

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摘要

Purpose - The purpose of this paper is to develop a novel multivariate fractional grey model termed GM(α, n) based on the classical GM(1, n) model. The new model can provide accurate prediction with more freedom, and enrich the content of grey theory. Design/methodology/approach - The GM(α, n) model is systematically studied by using the grey modelling technique and the forward difference method. The optimal fractional order a is computed by the genetic algorithm. Meanwhile, a stochastic testing scheme is presented to verify the accuracy of the new GM(α, n) model. Findings - The recursive expressions of the time response function and the restored values of the presented model are deduced. The GM(1, n), GM(α, 1) and GM(1,1) models are special cases of the model. Computational results illustrate that the GM(α, n) model provides accurate prediction. Research limitations/implications - The GM(α, n) model is used to predict China's total energy consumption with the raw data from 2006 to 2016. The superiority of the GM(α, n) model is more freedom and better modelling by fractional derivative, which implies its high potential to be used in energy field. Originality/value - It is the first time to investigate the multivariate fractional grey GM(α, n)) model, apply it to study the effects of China's economic growth and urbanization on energy consumption.
机译:目的 - 本文的目的是基于古典GM(1,N)模型,开发一种新的多变量分数灰色模型称为GM(α,N)。新模型可以提供更准确的预测,并丰富灰色理论的内容。设计/方法/方法 - 通过使用灰色建模技术和前向差异方法来系统地研究GM(α,N)模型。通过遗传算法计算最佳分数A.同时,提出了一种随机测试方案以验证新GM(α,N)模型的准确性。调查结果 - 推导出时间响应函数的递归表达和所提出的模型的恢复值。 GM(1,N),GM(α,1)和GM(1,1)模型是模型的特殊情况。计算结果说明了GM(α,N)模型提供精确的预测。研究限制/含义 - GM(α,N)模型用于预测中国2006年至2016年的原始数据的总能源消耗。GM(α,N)模型的优越性是由分数衍生物的更大和更好的建模,这意味着它在能量场中使用的高潜力。原创/价值 - 这是第一次调查多元分数灰色通用(α,N))模型,应用它来研究中国经济增长和城市化对能源消耗的影响。

著录项

  • 来源
    《Grey systems: theory and application》 |2019年第3期|356-373|共18页
  • 作者单位

    School of Science Southwest University of Science and Technology Mianyang China and V.C. and V.R. Key Laboratory of Sichuan Province Sichuan Normal University Chengdu China;

    School of Science Southwest University of Science and Technology Mianyang China and State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation Southwest Petroleum University Chengdu China;

    School of Science Southwest Petroleum University Chengdu China;

    School of Science Southwest University of Science and Technology Mianyang China;

    College of Business Planning Chongqing Technology and Business University Chongqing China;

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

    Genetic algorithm; Energy consumption; Forward difference method; Multivariate grey system; GM(α, n)) model;

    机译:遗传算法;能源消耗;前向差分法;多变量灰色系统;GM(α;N))模型;

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