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Daily spatiotemporal precipitation simulation using latent and transformed Gaussian processes

机译:利用潜在的和变换的高斯过程进行每日时空降水模拟

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摘要

A daily stochastic spatiotemporal precipitation generator that yields spatially consistent gridded quantitative precipitation realizations is described. The methodology relies on a latent Gaussian process to drive precipitation occurrence and a probability integral transformed Gaussian process for intensity. At individual locations, the model reduces to a Markov chain for precipitation occurrence and a gamma distribution for precipitation intensity, allowing statistical parameters to be included in a generalized linear model framework. Statistical parameters are modeled as spatial Gaussian processes, which allows for interpolation to locations where there are no direct observations via kriging. One advantage of such a model for the statistical parameters is that stochastic generator parameters are immediately available at any location, with the ability to adapt to spatially varying precipitation characteristics. A second advantage is that parameter uncertainty, generally unavailable with deterministic interpolators, can be immediately quantified at all locations. The methodology is illustrated on two data sets, the first in Iowa and the second over the Pampas region of Argentina. In both examples, the method is able to capture the local and domain aggregated precipitation behavior fairly well at a wide range of time scales, including daily, monthly, and annually.
机译:描述了每日随机时空降水产生器,其产生空间一致的网格化定量降水实现。该方法依赖于潜在的高斯过程来驱动降水的发生,并依赖于概率积分变换的高斯过程来获得强度。在各个位置,该模型都简化为用于降水发生的马尔可夫链和用于降水强度的伽马分布,从而允许将统计参数包含在广义线性模型框架中。统计参数被建模为空间高斯过程,从而可以通过克里金法插值到没有直接观测值的位置。这种用于统计参数的模型的优点是,随机发生器参数可在任何位置立即获得,并具有适应空间变化的降水特征的能力。第二个优点是参数不确定性(通常是确定性插值器无法提供)可以在所有位置立即量化。在两个数据集上说明了该方法,第一个数据集在爱荷华州,第二个数据集在阿根廷的潘帕斯地区。在这两个示例中,该方法都能够在很宽的时间范围内(包括每天,每月和每年)很好地捕获本地和区域聚集的降水行为。

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  • 来源
    《Water resources research》 |2012年第1期|p.W01523.1-W01523.17|共17页
  • 作者单位

    Institute for Mathematics Applied to Geosciences, National Center for Atmospheric Research, PO Box 3000, Boulder, CO 80307-3000, USA;

    Institute for Mathematics Applied to Geosciences, National Center for Atmospheric Research, PO Box 3000, Boulder, CO 80307-3000, USA;

    Department of Civil, Environmental and Architectural Engineering, University of Colorado at Boulder, Boulder, CO 80309,USA;

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