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Non-stationary Cross-Covariance Models for Multivariate Processes on a Globe

机译:地球上多元过程的非平稳交叉协方差模型

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In geophysical and environmental problems, it is common to have multiple variables of interest measured at the same location and time. These multiple variables typically have dependence over space (and/or time). As a consequence, there is a growing interest in developing models for multivariate spatial processes, in particular, the cross-covariance models. On the other hand, many data sets these days cover a large portion of the Earth such as satellite data, which require valid covariance models on a globe. We present a class of parametric covariance models for multivariate processes on a globe. The covariance models are flexible in capturing non-stationarity in the data yet computationally feasible and require moderate numbers of parameters. We apply our covariance model to surface temperature and precipitation data from an NCAR climate model output. We compare our model to the multivariate version of the Matern cross-covariance function and models based on coregionalization and demonstrate the superior performance of our model in terms of AIC (and/or maximum loglikelihood values) and predictive skill. We also present some challenges in modelling the cross-covariance structure of the temperature and precipitation data. Based on the fitted results using full data, we give the estimated cross-correlation structure between the two variables.
机译:在地球物理和环境问题中,通常需要在同一位置和同一时间测量多个关注变量。这些多个变量通常与空间(和/或时间)相关。结果,对开发用于多元空间过程的模型,特别是交叉协方差模型的兴趣日益浓厚。另一方面,如今,许多数据集覆盖了地球的很大一部分,例如卫星数据,这些数据需要地球上有效的协方差模型。我们为地球上的多元过程提供了一类参数协方差模型。协方差模型可灵活地捕获数据中的非平稳性,但在计算上可行,并且需要适量的参数。我们将协方差模型应用于NCAR气候模型输出的地表温度和降水数据。我们将我们的模型与基于共同区域化的Matern交叉协方差函数和模型的多元版本进行比较,并证明了我们的模型在AIC(和/或最大对数似然值)和预测技能方面的优越性能。我们还对建模温度和降水数据的互协方差结构提出了一些挑战。基于使用完整数据的拟合结果,我们给出了两个变量之间的估计互相关结构。

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