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Conditional maximum covariance analysis and its application to the tropical Indian Ocean SST and surface wind stress anomalies

机译:条件最大协方差分析及其在热带印度洋海表温度和表面风应力异常中的应用

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摘要

This study introduces the conditional maximum covariance analysis (CMCA). The normal maximum covariance analysis (MCA) is a method that isolates the most coherent pairs of spatial patterns and their associated lime series by performing an eigenanalysis on the temporal covariancc matrix between two geophysical fields. Different from the normal MCA. the CMCA not only isolates the most coherent patterns between two fields but also excludes the unwanted signal by subtracting the regressed value of eachemployed field that depends on the unwanted signal. To evaluate the usefulness of the CMCA, it is applied to the tropical Indian Ocean sea surface temperature and surface wind stress anomalies, from which the El Nino-Southern Oscillation (ENSO) signal is removed. Results show that the first mode of the CMCA represents an east-west contrast pattern in SST and a monopole pattern in the zonal wind stress centered at the equatorial central Indian Ocean. The corresponding expansion coefficients are completely uncorrelated with the ENSO index. On the other hand, in the normal MCA. the expansion coefficients are correlated with both the ENSO index and the Indian Ocean east-west contrast pattern index. Thus, the CMCA method effectively detected the coherent patterns induced by the local air-sea interaction without the ENSO signal considered as an external factor, whereas the normal MCA detected the coherent patterns, but [he effects of local and external factors cannot be separated.
机译:本研究介绍了条件最大协方差分析(CMCA)。正常最大协方差分析(MCA)是通过对两个地球物理场之间的时间协方差矩阵进行特征分析来隔离空间模式及其相关的石灰系列最相关的方法。与正常的MCA不同。 CMCA不仅隔离了两个场之间最相干的模式,而且通过减去依赖于不想要信号的每个使用场的回归值来排除不想要的信号。为了评估CMCA的有用性,将其应用于热带印度洋海面温度和表面风应力异常,从中消除了厄尔尼诺-南方涛动(ENSO)信号。结果表明,CMCA的第一种模式代表了SST中的东西向对比模式,以及以赤道中部印度洋为中心的纬向风应力中的单极模式。相应的膨胀系数与ENSO指数完全不相关。另一方面,在正常的MCA中。膨胀系数与ENSO指数和印度洋东西向对比模式指数相关。因此,CMCA方法在没有将ENSO信号视为外部因素的情况下有效地检测了由局部海气相互作用引起的相干模式,而正常的MCA则检测到了相干模式,但是[局部和外部因素的影响无法分离。

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