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Combination of geostatistics and self-organizing maps for the spatial analysis of groundwater level variations in complex hydrogeological systems

Emmanouil A. Varouchakis; Dimitri Solomatine; Gerald A. Corzo Perez; Seifeddine Jomaa; George P. Karatzas
Stochastic Environmental Research and Risk Assessment · Vol. 37, Issue 8 · pp. 3009-3020 · 2023

Abstract

Successful modelling of the groundwater level variations in hydrogeological systems in complex formations considerably depends on spatial and temporal data availability and knowledge of the boundary conditions. Geostatistics plays an important role in model-related data analysis and preparation, but has specific limitations when the aquifer system is inhomogeneous. This study combines geostatistics with machine learning approaches to solve problems in complex aquifer systems. Herein, the emphasis is given to cases where the available dataset is large and randomly distributed in the different aquifer types of the hydrogeological system. Self-Organizing Maps can be applied to identify locally similar input data, to substitute the usually uncertain correlation length of the variogram model that estimates the correlated neighborhood, and then by means of Transgaussian Kriging to estimate the bias corrected spatial distribution of groundwater level. The proposed methodology was tested on a large dataset of groundwater level data in a complex hydrogeological area. The obtained results have shown a significant improvement compared to the ones obtained by classical geostatistical approaches.

Bibliographic Information

JournalStochastic Environmental Research and Risk Assessment
PublisherSpringer
Publication Date2023-08-01
Publication Year2023
Volume37
Issue8
Pages3009-3020
Document TypeJournal Article
Print ISSN1436-3240
eISSN1436-3259
DOI10.1007/s00477-023-02436-x

Access Information

NARA Access Coverage1987-01-01~Current
Journal Homepagehttps://www.springer.com/journal/477
Publisher PageOpen Publisher Page
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