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Erschienen in: Hydrogeology Journal 3/2011

01.05.2011 | Paper

Groundwater parameter estimation using the ensemble Kalman filter with localization

verfasst von: Tongchao Nan, Jichun Wu

Erschienen in: Hydrogeology Journal | Ausgabe 3/2011

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Abstract

The ensemble Kalman filter (EnKF), an efficient data assimilation method showing advantages in many numerical experiments, is deficient when used in approximating covariance from an ensemble of small size. Implicit localization is used to add distance-related weight to covariance and filter spurious correlations which weaken the EnKF’s capability to estimate uncertainty correctly. The effect of this kind of localization is studied in two-dimensional (2D) and three-dimensional (3D) synthetic cases. It is found that EnKF with localization can capture reliably both the mean and variance of the hydraulic conductivity field with higher efficiency; it can also greatly stabilize the assimilation process as a small-size ensemble is used. Sensitivity experiments are conducted to explore the effect of localization function format and filter lengths. It is suggested that too long or too short filter lengths will prevent implicit localization from modifying the covariance appropriately. Steep localization functions will greatly disturb local dynamics like the 0-1 function even if the function is continuous; four relatively gentle localization functions succeed in avoiding obvious disturbance to the system and improve estimation. As the degree of localization of the L function increases, the parameter sensitivity becomes weak, making parameter selection easier, but more information may be lost in the assimilation process.

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Metadaten
Titel
Groundwater parameter estimation using the ensemble Kalman filter with localization
verfasst von
Tongchao Nan
Jichun Wu
Publikationsdatum
01.05.2011
Verlag
Springer-Verlag
Erschienen in
Hydrogeology Journal / Ausgabe 3/2011
Print ISSN: 1431-2174
Elektronische ISSN: 1435-0157
DOI
https://doi.org/10.1007/s10040-010-0679-9

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