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Estimating global ocean heat content from tidal magnetic satellite observations

机译:根据潮汐卫星观测资料估算全球海洋热量

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摘要

Ocean tides generate electromagnetic (EM) signals that are emitted into space and can be recorded with low-Earth-orbiting satellites. Observations of oceanic EM signals contain aggregated information about global transports of water, heat, and salinity. We utilize an artificial neural network (ANN) as a non-linear inversion scheme and demonstrate how to infer ocean heat content (OHC) estimates from magnetic signals of the lunar semi-diurnal (M2) tide. The ANN is trained using monthly OHC estimates based on oceanographic in-situ data from 1990–2015 and the corresponding computed tidal magnetic fields at satellite altitude. We show that the ANN can closely recover inter-annual and decadal OHC variations from simulated tidal magnetic signals. Using the trained ANN, we present the first OHC estimates from recently extracted tidal magnetic satellite observations. Such space-borne OHC estimates can complement the already existing in-situ measurements of upper ocean temperature and can also allow insights into abyssal OHC, where in-situ data are still very scarce.
机译:海洋潮汐产生电磁(EM)信号,该电磁信号被发射到太空中,并且可以用低地球轨道卫星进行记录。海洋EM信号的观测包含有关水,热和盐分全球输送的汇总信息。我们利用人工神经网络(ANN)作为非线性反演方案,并演示了如何根据月半日(M2)潮汐的磁信号来推断海洋热量(OHC)估算值。根据1990-2015年海洋学实地数据以及卫星高度处相应的潮汐磁场,使用OHC每月估算值对ANN进行训练。我们表明,人工神经网络可以从模拟潮汐磁信号中紧密恢复年际和年代际OHC变化。使用训练有素的人工神经网络,我们展示了最近提取的潮汐磁卫星观测值中的第一个OHC估算值。这种空间传播的OHC估算值可以补充已经存在的高空海洋温度的原位测量,也可以深入了解深海OHC,而原位数据仍然非常匮乏。

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