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首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Multivariate reconstruction of missing data in sea surface temperature, chlorophyll, and wind satellite fields
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Multivariate reconstruction of missing data in sea surface temperature, chlorophyll, and wind satellite fields

机译:海面温度,叶绿素和风星场中缺失数据的多元重建

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摘要

An empirical orthogonal function–based technique called Data Interpolating Empirical Orthogonal Functions (DINEOF) is used in a multivariate approach to reconstruct missing data. Sea surface temperature (SST), chlorophyll a concentration, and QuikSCAT winds are used to assess the benefit of a multivariate reconstruction. In particular, the combination of SST plus chlorophyll, SST plus lagged SST plus chlorophyll, and SST plus lagged winds have been studied. To assess the quality of the reconstructions, the reconstructed SST and winds have been compared to in situ data. The combination of SST plus chlorophyll, as well as SST plus lagged SST plus chlorophyll, significantly improves the results obtained by the reconstruction of SST alone. All the experiments correctly represent the SST, and an upwelling/downwelling event in the West Florida Shelf reproduced by the reconstructed data is studied.
机译:一种基于经验正交函数的技术,称为数据插值经验正交函数(DINEOF),用于多变量方法中,用于重建丢失的数据。海面温度(SST),叶绿素a浓度和QuikSCAT风用于评估多变量重建的好处。特别地,已经研究了SST加叶绿素,SST加滞后SST加叶绿素以及SST加滞风的组合。为了评估重建的质量,已将重建的SST和风与原位数据进行了比较。 SST +叶绿素的组合,以及SST +滞后SST +叶绿素的组合,显着改善了仅重建SST所获得的结果。所有实验均正确地代表了SST,并且对通过重建数据再现的西佛罗里达大陆架上的上升/下降事件进行了研究。

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