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01-05-2024 | Original Article

A SOM-LSTM combined model for groundwater level prediction in karst critical zone aquifers considering connectivity characteristics

Authors: Fei Guo, Shilong Li, Gang Zhao, Huiting Hu, Zhuo Zhang, Songshan Yue, Hong Zhang, Yi Xu

Published in: Environmental Earth Sciences | Issue 9/2024

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Abstract

The article introduces a novel SOM-LSTM combined model designed to predict groundwater levels in karst critical zones, which are known for their high spatial heterogeneity. The model integrates spatial connectivity analysis using Self-Organizing Maps (SOM) and Long Short-Term Memory Networks (LSTM) to address the challenges posed by the diverse porous media and varying groundwater flow velocities in these zones. By considering spatial-temporal correlations among geographic multi-features, the model aims to enhance the accuracy of groundwater level predictions. The study area, Baotu Spring in Jinan, China, serves as a case study to demonstrate the effectiveness of this approach. The research highlights the significance of spatial connectivity in improving prediction accuracy and provides insights into the application of advanced AI techniques in hydrological studies.

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Metadata
Title
A SOM-LSTM combined model for groundwater level prediction in karst critical zone aquifers considering connectivity characteristics
Authors
Fei Guo
Shilong Li
Gang Zhao
Huiting Hu
Zhuo Zhang
Songshan Yue
Hong Zhang
Yi Xu
Publication date
01-05-2024
Publisher
Springer Berlin Heidelberg
Published in
Environmental Earth Sciences / Issue 9/2024
Print ISSN: 1866-6280
Electronic ISSN: 1866-6299
DOI
https://doi.org/10.1007/s12665-024-11567-5

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