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A Dynamic Spatial Weight Matrix and Localized Space-Time Autoregressive Integrated Moving Average for Network Modeling

机译:用于网络建模的动态空间权重矩阵和局部时空自回归综合移动平均值

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摘要

Various statistical model specifications for describing spatiotemporal processes have been proposed over the years, including the space-time autoregressive integrated moving average (STARIMA) and its various extensions. These model specifications assume that the correlation in data can be adequately described by parameters that are globally fixed spatially and/or temporally. They are inadequate for cases in which the correlations among data are dynamic and heterogeneous, such as network data. The aim of this article is to describe autocorrelation in network data with a dynamic spatial weight matrix and a localized STARIMA model that captures the autocorrelation locally (heterogeneity) and dynamically (nonstationarity). The specification is tested with traffic data collected for central London. The result shows that the performance of estimation and prediction is improved compared with standard STARIMA models that are widely used for space-time modeling.
机译:多年来,已经提出了用于描述时空过程的各种统计模型规范,包括时空自回归综合移动平均值(STARIMA)及其各种扩展。这些模型规范假定可以通过在空间和/或时间上全局固定的参数来充分描述数据中的相关性。对于数据之间的相关性是动态且异构的情况(例如网络数据),它们是不足够的。本文的目的是用动态空间权重矩阵和本地STARIMA模型描述网络数据中的自相关,该模型可以捕获本地(异质性)和动态(非平稳)自相关。该规范已针对伦敦市中心收集的交通数据进行了测试。结果表明,与广泛用于时空建模的标准STARIMA模型相比,估计和预测的性能有所提高。

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  • 来源
    《Geographical analysis》 |2014年第1期|75-97|共23页
  • 作者单位

    SpaceTimeLab, Department of Civil, Environmental and Geomatic Engineering, University College London, Gower Street, London WC1E 6BT, U.K.;

    Centre for Advanced Spatial Analysis, University College London, London, U.K;

    SpaceTimeLab, Department of Civil, Environmental and Geomatic Engineering, University College London, London, U.K.;

    SpaceTimeLab, Department of Civil, Environmental and Geomatic Engineering, University College London, London, U.K.;

    SpaceTimeLab, Department of Civil, Environmental and Geomatic Engineering, University College London, London, U.K.;

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