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Estimation of CO_2 flux from targeted satellite observations: a Bayesian approach

机译:从有针对性的卫星观测值估计CO_2通量:贝叶斯方法

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We consider the estimation of carbon dioxide flux at the ocean-atmosphere interface, given weighted averages of the mixing ratio in a vertical atmospheric column. In particular we examine the dependence of the posterior covariance on the weighting function used in taking observations, motivated by the fact that this function is instrument-dependent, hence one needs the ability to compare different weights. The estimation problem is considered using a variational data assimilation method, which is shown to admit an equivalent infinite-dimensional Bayesian formulation. The main tool in our investigation is an explicit formula for the posterior covariance in terms of the prior covariance and observation operator. Using this formula, we compare weighting functions concentrated near the surface of the earth with those concentrated near the top of the atmosphere, in terms of the resulting covariance operators. We also consider the problem of observational targeting, and ask if it is possible to reduce the covariance in a prescribed direction through an appropriate choice of weighting function. We find that this is not the case-there exist directions in which one can never gain information, regardless of the choice of weight.
机译:考虑到垂直大气柱中混合比的加权平均值,我们考虑海洋-大气界面处二氧化碳通量的估计。特别地,我们检验后协方差对用于观察的加权函数的依赖性,这是由于该函数是依赖于仪器的事实所致,因此需要比较不同权重的能力。使用变分数据同化方法考虑了估计问题,该方法被证明可以接受等效的无穷维贝叶斯公式。我们研究的主要工具是根据先验协方差和观测算子对后协方差的一个明确公式。使用此公式,我们比较了集中在地球表面附近的加权函数和集中在大气层顶部的加权函数,并得出了协方差算子。我们还考虑了观测目标的问题,并询问是否可以通过适当选择权重函数来减小指定方向的协方差。我们发现事实并非如此,无论权重的选择如何,存在着永远无法获得信息的方向。

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