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Technical Note: A novel approach to estimation of time-variable surface sources and sinks of carbon dioxide using empirical orthogonal functions and the Kalman filter

机译:技术说明:一种使用经验正交函数和卡尔曼滤波器估算二氧化碳的时变表面源和汇的新颖方法

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摘要

In this work we propose an approach to solving a source estimation problem based on representation of carbon dioxide surface emissions as a linear combination of a finite number of pre-computed empirical orthogonal functions (EOFs). We used National Institute for Environmental Studies (NIES) transport model for computing response functions and Kalman filter for estimating carbon dioxide emissions. Our approach produces results similar to these of other models participating in the TransCom3 experiment. Using the EOFs we can estimate surface fluxes at higher spatial resolution, while keeping the dimensionality of the problem comparable with that in the regions approach. This also allows us to avoid potentially artificial sharp gradients in the fluxes in between pre-defined regions. EOF results generally match observations more closely given the same error structure as the traditional method. Additionally, the proposed approach does not require additional effort of defining independent self-contained emission regions.
机译:在这项工作中,我们提出了一种基于二氧化碳表面排放量表示形式的解决源估计问题的方法,该方法是将有限数量的预先计算的经验正交函数(EOF)进行线性组合。我们使用美国国家环境研究所(NIES)的运输模型来计算响应函数,并使用卡尔曼滤波器来估算二氧化碳排放量。我们的方法产生的结果类似于参与TransCom3实验的其他模型的结果。使用EOF,我们可以在较高的空间分辨率下估算表面通量,同时使问题的维数与区域方法中的维数可比。这也使我们能够避免在预定义区域之间的通量中可能出现人为的尖锐梯度。在给出与传统方法相同的错误结构的情况下,EOF结果通常与观测值更接近匹配。另外,所提出的方法不需要额外的努力来定义独立的自包含发射区域。

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