2023
DOI: 10.1007/s12145-023-01071-y
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Calibration and uncertainty analysis of integrated SWAT-MODFLOW model based on iterative ensemble smoother method for watershed scale river-aquifer interactions assessment

Bisrat Ayalew Yifru,
Seoro Lee,
Kyoung Jae Lim

Abstract: River-aquifer interaction is a key component of the hydrological cycle that affects water resources and quality. Recently, the application of integrated models to assess the interaction has been increasing. However, calibration and uncertainty analysis of coupled models has been a challenge, especially for large-scale applications. In this study, we used PESTPP-IES, an implementation of the Gauss-Levenberg-Marquardt iterative ensemble smoother, to calibrate and quantify the uncertainty of an integrated SWAT-MO… Show more

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Cited by 3 publications
(1 citation statement)
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“…Nowadays, uncertainty analysis in various studies in the field of earth science has made progresses, such as in hydrology, three-dimensional geological structure model, meteorological problem, climate change problem, soil research, hydrology and structural analysis, mineral deposit grade prediction and seismology. (Yifru et al 2023;Liang et al 2021;Boller et al 2010;Anderson et al 2011;Barrena-González et al 2023;Abbaszadeh et al 2021;Afsari et al 2022. ) At present, most mineralization prospectivity work is based on providing the location, abundance and reserves of predicted minerals.…”
Section: Introductionmentioning
confidence: 99%
“…Nowadays, uncertainty analysis in various studies in the field of earth science has made progresses, such as in hydrology, three-dimensional geological structure model, meteorological problem, climate change problem, soil research, hydrology and structural analysis, mineral deposit grade prediction and seismology. (Yifru et al 2023;Liang et al 2021;Boller et al 2010;Anderson et al 2011;Barrena-González et al 2023;Abbaszadeh et al 2021;Afsari et al 2022. ) At present, most mineralization prospectivity work is based on providing the location, abundance and reserves of predicted minerals.…”
Section: Introductionmentioning
confidence: 99%