中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Energy-Based Wavelet De-Noising of Hydrologic Time Series

文献类型:SCI/SSCI论文

作者Sang Y. F. ; Liu C. M. ; Wang Z. G. ; Wen J. ; Shang L. Y.
发表日期2014
关键词rainfall-runoff practical guide decomposition reduction multiresolution transform
英文摘要De-noising is a substantial issue in hydrologic time series analysis, but it is a difficult task due to the defect of methods. In this paper an energy-based wavelet de-noising method was proposed. It is to remove noise by comparing energy distribution of series with the background energy distribution, which is established from Monte-Carlo test. Differing from wavelet threshold de-noising (WTD) method with the basis of wavelet coefficient thresholding, the proposed method is based on energy distribution of series. It can distinguish noise from deterministic components in series, and uncertainty of de-noising result can be quantitatively estimated using proper confidence interval, but WTD method cannot do this. Analysis of both synthetic and observed series verified the comparable power of the proposed method and WTD, but de-noising process by the former is more easily operable. The results also indicate the influences of three key factors (wavelet choice, decomposition level choice and noise content) on wavelet de-noising. Wavelet should be carefully chosen when using the proposed method. The suitable decomposition level for wavelet de-noising should correspond to series' deterministic sub-signal which has the smallest temporal scale. If too much noise is included in a series, accurate de-noising result cannot be obtained by the proposed method or WTD, but the series would show pure random but not autocorrelation characters, so de-noising is no longer needed.
出处Plos One
9
10
收录类别SCI
语种英语
ISSN号1932-6203
源URL[http://ir.igsnrr.ac.cn/handle/311030/29635]  
专题地理科学与资源研究所_历年回溯文献
推荐引用方式
GB/T 7714
Sang Y. F.,Liu C. M.,Wang Z. G.,et al. Energy-Based Wavelet De-Noising of Hydrologic Time Series. 2014.

入库方式: OAI收割

来源:地理科学与资源研究所

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