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Reconstruction of Hydrometeorological Data in Lake Urmia Basin by Frequency Domain Analysis Using Additive Decomposition

机译:基于加法分解的频域分析重建乌尔米亚湖流域水文气象数据

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Frequency domain analysis using an additive decomposition method is proposed to reconstruct the missing hydrometeorological data of selected sites in Lake Urmia basin in Iran. Precipitation, evaporation, streamflow and groundwater time series are used for this aim. Trends, within- and multi-year cycles, and randomness are taken into account to reconstruct each of the time series for which models are developed, calibrated and validated separately. Statistical similarity between the observed and reconstructed time series is checked. Statistical characteristics including the average, standard deviation, skewness, and the first-order autocorrelation coefficient are well preserved at the reconstructed time series. A conceptual water budget model is also established to check for the consistency between the reconstructed and the observed datasets. The water budget model is taken as a quantitative way to confirm that the frequency domain analysis using the additive decomposition is an effective method for the reconstruction of the missing hydrometeorological data based on the case study performed for the Lake Urmia basin in Iran.
机译:提出了使用加法分解法进行频域分析的方法,以重建伊朗乌尔米亚湖流域某些地点丢失的水文气象数据。为此,使用了降水,蒸发,水流和地下水的时间序列。考虑到趋势,年内和多年周期以及随机性,可以分别重建模型分别开发,校准和验证的每个时间序列。检查观察到的和重建的时间序列之间的统计相似性。统计数据包括平均值,标准偏差,偏度和一阶自相关系数,在重建的时间序列中得到了很好的保留。还建立了概念上的水预算模型,以检查重建数据集和观测数据集之间的一致性。以水预算模型为定量方法,以对伊朗乌尔米亚湖盆地的案例研究为基础,确认使用加法分解的频域分析是重建缺失的水文气象数据的有效方法。

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