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Integrating Non-Tidal Sea Level data from altimetry and tide gauges for coastal sea level prediction

机译:整合来自测高仪和潮汐仪的非潮汐海平面数据,以进行沿海海平面预测

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摘要

The main objective of this paper is to integrate Non-Tidal Sea Level (NSL) from the joint TOPEX, Jason-1 and Jason-2 satellite altimetry with tide gauge data at the west and north coast of the United Kingdom for coastal sea level prediction. The temporal correlation coefficient between altimetric NSLs and tide gauge data reaches a maximum higher than 90% for each gauge. The results show that the multivariate regression approach can efficiently integrate the two types of data in the coastal waters of the area. The Multivariate Regression Model is established by integrating the along-track NSL from the joint TOPEX/Jason-l/Jason-2 altimeters with that from eleven tide gauges. The model results give a maximum hindcast skill of 0.95, which means maximum 95% of NSL variance can be explained by the model. The minimum Root Mean Square Error (RMSe) between altimetric observations and model predictions is 4.99 cm in the area. The validation of the model using Envisat satellite altimetric data gives a maximum temporal correlation coefficient of 0.96 and a minimum RMSe of 4.39 cm between altimetric observations and model predictions, respectively. The model is furthermore used to predict high frequency NSL variation (i.e., every 15 min) during a storm surge event at an independent tide gauge station at the Northeast of the UK (Aberdeen).
机译:本文的主要目的是将来自TOPEX,Jason-1和Jason-2卫星测高联合的非潮汐海平面(NSL)与英国西海岸和北海岸的潮汐仪数据进行整合,以进行沿海海平面预测。高度NSL和潮汐仪数据之间的时间相关系数最大达到每个仪仪的90%以上。结果表明,多元回归方法可以有效地整合该地区沿海水域中的两种数据。多元回归模型是通过将联合TOPEX / Jason-1 / Jason-2高度计的沿径NSL与11个潮汐仪的沿径NSL集成而建立的。模型结果给出的最大后验技巧为0.95,这意味着该模型可以解释最大95%的NSL方差。该地区高空观测与模型预测之间的最小均方根误差(RMSe)为4.99 cm。使用Envisat卫星高度数据对模型进行验证,分别在高度观测和模型预测之间的最大时间相关系数为0.96,最小RMSe为4.39 cm。此外,该模型还用于预测英国东北部(阿伯丁)一个独立的潮汐测量站在风暴潮事件期间的高频NSL变化(即,每15分钟)。

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