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Filling the Data Gaps Within GRACE Missions Using Singular Spectrum Analysis

机译:使用奇异频谱分析填充Grace任务中的数据差距

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Dozens of missing epochs in the monthly gravity product of the satellite mission Gravity Recovery and Climate Experiment (GRACE) and its follow-on (GRACE-FO) mission greatly inhibit the complete analysis and full utilization of the data. Despite previous attempts to handle this problem, a general all-purpose gap-filling solution is still lacking. Here we propose a non-parametric, data-adaptive and easy-to-implement approach-composed of the Singular Spectrum Analysis gap-filling technique, cross-validation, and spectral testing for significant components-to produce reasonable gap-filling results in the form of spherical harmonic coefficients (SHCs). We demonstrate that this approach is adept at inferring missing data from long-term and oscillatory changes extracted from available observations. A comparison in the spectral domain reveals that the gap-filling result in the same signal intensity as the product of GRACE missions for spherical harmonic degrees below 30. As the degree increases above 30, the degree variance of the gap-filling result decreases more rapidly than that of GRACE/GRACE-FO SHCs, demonstrating effective suppression of noise. As a result, our approach can reduce noise in the oceans without sacrificing resolutions on land. The quality of the gap-filling product is evaluated through comparison with a surface mass balance based estimate in Greenland, Swarm gravity solutions and a climate-driven water storage model, all of which confirm the good performance of our results. This study makes a ready-to-use gap-filling product in the form of SHCs together with proper error estimates available. Nonetheless, our method is also applicable to smoothed gridded observations.
机译:卫星任务重力恢复和气候试验(GRACE)及其后续任务(GRACE-FO)的每月重力乘积中有几十个缺失的时代,极大地阻碍了数据的完整分析和充分利用。尽管之前曾试图解决这个问题,但仍然缺乏通用的填补缺口的解决方案。在这里,我们提出了一种非参数、数据自适应且易于实现的方法,该方法由奇异谱分析间隙填充技术、交叉验证和重要组件的光谱测试组成,以球谐系数(SHC)的形式产生合理的间隙填充结果。我们证明,这种方法擅长从从现有观测数据中提取的长期和振荡变化中推断缺失数据。光谱域中的比较表明,对于低于30的球谐度,间隙填充产生的信号强度与GRACE任务的乘积相同。当阶数增加到30以上时,间隙填充结果的阶数方差比GRACE/GRACE-FO SHCs的阶数方差减少得更快,表明有效抑制了噪声。因此,我们的方法可以在不牺牲陆地分辨率的情况下减少海洋中的噪音。通过与格陵兰岛基于表面质量平衡的估算、Swarm重力解决方案和气候驱动的蓄水模型进行比较,对间隙填充产品的质量进行了评估,所有这些都证实了我们结果的良好性能。本研究以SHCs的形式制作了一款现成的间隙填充产品,并提供了适当的误差估计。尽管如此,我们的方法也适用于平滑网格观测。

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