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Gap filling in time series: A new methodology applying spectral analysis and system identification

机译:间隙填充时间序列:应用光谱分析和系统识别的新方法

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摘要

The presence of gaps in time series makes the data analysis process difficult. Although there are several methods for filling such gaps, they do not present satisfactory results as the gap widens. The proposal of this paper is to present a new methodology that uses techniques of extraction of characteristics and identification of systems to fill the missing data. The proposed methodology was applied in time series of physical and chemical variables related to the water quality and behavior of the Paraguay River, and the effectiveness of the internal data forecast was proven.
机译:时间序列中的间隙存在使数据分析过程变得困难。虽然有几种方法来填补这种差距,但它们不会在差距变宽时呈现令人满意的结果。本文的提议是提出一种新的方法,它使用提取特征和识别系统来填补缺失数据的技术。所提出的方法在与巴拉圭河水质量和行为相关的时间序列的时间序列中,证明了内部数据预测的有效性。

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