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Reconstruction of groundwater levels to impute missing values using singular and multichannel spectrum analysis: application to the Ardabil Plain, Iran

机译:使用奇异和多通道频谱分析重建地下水位以估算缺失值:应用于伊朗阿尔达比勒平原

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摘要

Groundwater-level time series often have a substantial number of missing values which should be taken into consideration before using them for further analysis, particularly for numerical groundwater flow modelling applications. This study aims to comprehensively compare two data-driven models, singular spectrum analysis (SSA) and multichannel spectrum analysis (MSSA), to reconstruct groundwater-level time series and impute the missing values for 25 piezometric stations in Ardabil Plain, northwest Iran. The reconstructed groundwater-level time series are assessed against the complete observed groundwater time series, while the imputed values are appraised against the artificially created gap values. The results show that both SSA and MSSA demonstrate a solid competency in imputation and reconstruction of groundwater-level data. However, depending on the spatial correlation between the piezometers, and the most suitable probability distribution function (pdf) fitted to the time series of each piezometer, the performance may vary from piezometer to piezometer.
机译:地下水位时间序列通常具有大量的缺失值,在将其用于进一步分析之前,尤其是在数值地下水流模拟应用中,应考虑这些缺失值。这项研究旨在全面比较两种数据驱动模型,即奇异频谱分析(SSA)和多通道频谱分析(MSSA),以重建地下水水平时间序列,并估算伊朗西北部Ardabil平原25个测压站的缺失值。根据完整的观测地下水时间序列评估重建的地下水水位时间序列,同时根据人工创建的差距值评估估算值。结果表明,SSA和MSSA都在估算和重建地下水位数据方面显示出扎实的能力。但是,取决于测压计之间的空间相关性以及适合每个测压计时间序列的最合适的概率分布函数(pdf),性能可能会因测压计而异。

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