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Wavelet-Based Estimation of Anisotropic Spatiotemporal Long-Range Dependence

机译:基于小波的各向异性时空长距离相关性估计

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摘要

In this article, the estimation of spatiotemporal long-range dependence is formulated in the spectral wavelet domain. Sample information is provided by functional spectral data. Their high local singularity at the origin is captured by the wavelet transform. Weak consistency of the spectral wavelet estimators proposed is derived. Two functional estimation algorithms are implemented. A simulation study is developed to illustrate the efficiency of the computational methods derived. An approximation to the empirical convergence rate of the spectral wavelet periodogram is computed in some simulated examples.
机译:本文在频谱小波域中提出了时空长期相关性的估计。样品信息由功能光谱数据提供。它们在原点的高局部奇异性被小波变换捕获。推导了所提出的谱小波估计的弱一致性。实现了两种功能估计算法。进行了仿真研究,以说明导出的计算方法的效率。在一些模拟示例中,可以计算出频谱小波周期图的经验收敛速率的近似值。

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