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Andreas Wunsch
Andreas Wunsch
Verified email at iosb.fraunhofer.de
Title
Cited by
Cited by
Year
Forecasting groundwater levels using nonlinear autoregressive networks with exogenous input (NARX)
A Wunsch, T Liesch, S Broda
Journal of Hydrology 567, 743-758, 2018
1962018
Groundwater level forecasting with artificial neural networks: a comparison of long short-term memory (LSTM), convolutional neural networks (CNNs), and non-linear …
A Wunsch, T Liesch, S Broda
Hydrology and Earth System Sciences 25 (3), 1671-1687, 2021
1312021
Deep learning shows declining groundwater levels in Germany until 2100 due to climate change
A Wunsch, T Liesch, S Broda
Nature communications 13 (1), 1221, 2022
642022
Karst modelling challenge 1: Results of hydrological modelling
PY Jeannin, G Artigue, C Butscher, Y Chang, JB Charlier, L Duran, L Gill, ...
Journal of Hydrology 600, 126508, 2021
462021
Aquifer responses to long-term climatic periodicities
T Liesch, A Wunsch
Journal of Hydrology 572, 226-242, 2019
302019
Karst spring discharge modeling based on deep learning using spatially distributed input data
A Wunsch, T Liesch, G Cinkus, N Ravbar, Z Chen, N Mazzilli, H Jourde, ...
Hydrology and Earth System Sciences 26 (9), 2405-2430, 2022
242022
Groundwater level forecasting with artificial neural networks: A comparison of LSTM, CNN and NARX
A Wunsch, T Liesch, S Broda
Hydrol. Earth Syst. Sci. Discuss 552, 1-23, 2020
242020
Deep learning shows declining groundwater levels in Germany until 2100 due to climate change. Nat. Commun. 13, 1221
A Wunsch, T Liesch, S Broda
142022
Feature-based groundwater hydrograph clustering using unsupervised self-organizing map-ensembles
A Wunsch, T Liesch, S Broda
Water Resources Management 36 (1), 39-54, 2022
142022
Comparison of artificial neural networks and reservoir models for simulating karst spring discharge on five test sites in the Alpine and Mediterranean regions
G Cinkus, A Wunsch, N Mazzilli, T Liesch, Z Chen, N Ravbar, J Doummar, ...
Hydrology and Earth System Sciences Discussions 2022, 1-41, 2022
82022
When best is the enemy of good–critical evaluation of performance criteria in hydrological models
G Cinkus, N Mazzilli, H Jourde, A Wunsch, T Liesch, N Ravbar, Z Chen, ...
Hydrology and Earth System Sciences Discussions 2022, 1-25, 2022
72022
Spatiotemporal optimization of groundwater monitoring networks using data-driven sparse sensing methods
M Ohmer, T Liesch, A Wunsch
Hydrology and Earth System Sciences 26 (15), 4033-4053, 2022
22022
Karst spring discharge modeling based on deep learning using spatially distributed input data
A Wunsch, T Liesch, G Cinkus, N Ravbar, Z Chen, N Mazzilli, H Jourde, ...
Hydrol Earth Syst Sci. https://doi. org/10 5194, 2021
22021
Nitrat-Monitoring 4.0–Intelligente Systeme zur nachhaltigen Reduzierung von Nitrat im Grundwasser
T Liesch, J Bruns, A Abecker, D Hilbring, D Karimanzira, T Martin, ...
Gesellschaft für Informatik, Bonn, 2021
22021
Entwicklung und Anwendung von Algorithmen zur Berechnung von Grundwasserständen an Referenzmessstellen auf Basis der Methode Künstlicher Neuronaler Netze: Abschlussbericht
A Wunsch, T Liesch
22020
Application of machine learning and deep neural networks for spatial prediction of groundwater nitrate concentration to improve land use management practices
D Karimanzira, J Weis, A Wunsch, L Ritzau, T Liesch, M Ohmer
Frontiers in Water 5, 1193142, 2023
12023
Modeling the discharge behavior of an alpine karst spring influenced by seasonal snow accumulation and melting based on a deep-learning approach
T Liesch, A Wunsch, Z Chen, N Goldscheider
EGU General Assembly Conference Abstracts, EGU21-12181, 2021
12021
Towards understanding the influence of seasons on low groundwater periods based on explainable machine learning
A Wunsch, T Liesch, N Goldscheider
Hydrology and Earth System Sciences Discussions 2023, 1-19, 2023
2023
Results from the 2022 Groundwater Time Series Modeling Challenge
R Collenteur, E Haaf, T Liesch, A Wunsch, M Bakker
EGU General Assembly Conference Abstracts, EGU-9341, 2023
2023
Mit Künstlicher Intelligenz dem Grundwasser auf der Spur
J Bayless, KITZ Klima, A Wunsch
2023
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