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Multiscale smoothing error models

机译:多尺度平滑误差模型

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A class of multiscale stochastic models based on scale-recursive dynamics on trees has recently been introduced. These models are interesting because they can be used to represent a broad class of physical phenomena and because they lead to efficient algorithms for estimation and likelihood calculation. In this paper, we provide a complete statistical characterization of the error associated with smoothed estimates of the multiscale stochastic processes described by these models. In particular, we show that the smoothing error is itself a multiscale stochastic process with parameters that can be explicitly calculated
机译:最近引入了一类基于树上尺度递归动力学的多尺度随机模型。这些模型之所以有趣,是因为它们可以用来代表一类广泛的物理现象,并且因为它们导致了高效的估计和似然计算算法。在本文中,我们提供了与这些模型所描述的多尺度随机过程的平滑估计相关的误差的完整统计特性。特别是,我们表明平滑误差本身就是一个多尺度随机过程,其参数可以显式计算

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