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An Improved Nonhomogeneous Grey Model with Fractional-Order Accumulation and Its Application

机译:具有分数级积累及其应用的改进的非均匀灰色模型

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The nonhomogeneous grey model has been seen as an effective method for forecasting time series with approximate nonhomogeneous index law, which has been widely used in diverse disciplines on account of its high prediction precision. However, there remains room for improvements. For this, this study presents an improved nonhomogeneous grey model by incorporating the dynamic integral mean value theorem and fractional accumulation simultaneously. In order to promote the efficacy of the optimised model, we apply the whale optimization algorithm (WOA) to ascertain its optimal parameter. In particular, two examples are conducted to validate the superiority of the proposed model in contrast with other benchmarks, and the experimental results show that the mean absolute percentage error of the proposed approach is 808692% and 6.0706%, respectively, indicating the proposed approach performs better than other competing models.
机译:非均匀灰色模型被视为预测时间序列的有效方法,其具有近似的非均匀指标法,这已被广泛应用于其高预测精度的不同学科。 但是,仍有改进的空间。 为此,本研究通过同时结合动态积分平均值定理和分数累积来提高非均匀灰色模型。 为了促进优化模型的功效,我们应用鲸鱼优化算法(WOA)来确定其最佳参数。 特别地,进行了两个示例以与其他基准相比,验证所提出的模型的优越性,实验结果表明,所提出的方法的平均绝对百分比误差分别为808692%和6.0706%,表明所提出的方法表现 比其他竞争模式更好。

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