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首页> 外文期刊>Quarterly Journal of the Royal Meteorological Society >A review of forecast error covariance statistics in atmospheric variational data assimilation. I: Characteristics and measurements of forecast error covariances
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A review of forecast error covariance statistics in atmospheric variational data assimilation. I: Characteristics and measurements of forecast error covariances

机译:大气变化数据同化中的预测误差协方差统计量综述。 I:预测误差协方差的特征和度量

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This article reviews the characteristics of forecast error statistics in meteorological data assimilation from the substantial literature on this subject. It is shown how forecast error statistics appear in the data assimilation problem through the background error covariance matrix, B. The mathematical and physical properties of the covariances are surveyed in relation to a number of leading systems that are in use for operational weather forecasting. Different studies emphasize different aspects ofB, and the known ways that B can impact the assimilation are brought together. Treating B practically in data assimilation is problematic. One such problem is in the numerical measurement of B, and five calibration methods are reviewed, including analysis of innovations, analysis of forecast differences and ensemble methods. Another problem is the prohibitive size of B. This needs special treatment in data assimilation, and is covered in a companion article (Part II). Examples are drawn from the literature that show the univariate and multivariate structure of the B-matrix, in terms of variances and correlations, which are interpreted in terms of the properties of the atmosphere.
机译:本文从有关该主题的大量文献中回顾了气象数据同化中预测误差统计的特征。通过背景误差协方差矩阵B显示了预测误差统计如何出现在数据同化问题中。相对于用于运营天气预报的许多领先系统,对协方差的数学和物理性质进行了调查。不同的研究侧重于B的不同方面,并且将B影响同化的已知方式结合在一起。在数据同化中实际处理B是有问题的。一个这样的问题是B的数值测量,并审查了五种校准方法,包括创新分析,预测差异分析和整体方法。另一个问题是B的大小过大。这需要在数据同化中进行特殊处理,并在随附的文章中进行了介绍(第二部分)。从文献中得出的例子表明,B矩阵的单变量和多变量结构是根据方差和相关性来解释的,而方差和相关性是根据大气的性质来解释的。

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