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  4. Symmetrical rank-three vectorized loading scores Quasi-Newton for identification of hydrogeological parameters and spatiotemporal recharges
 
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Symmetrical rank-three vectorized loading scores Quasi-Newton for identification of hydrogeological parameters and spatiotemporal recharges

Journal
Water (Switzerland)
Journal Volume
12
Journal Issue
4
Date Issued
2020
Author(s)
Huang, C.-L.
Hsu, N.-S.
Hsu, F.-J.
You, G.J.-Y.
Yao, C.-H.
JIING-YUN YOU  
DOI
10.3390/W12040995
URI
https://www.scopus.com/inward/record.url?eid=2-s2.0-85086897248&partnerID=40&md5=8fffcadf9639dc956387b19959ce9a73
https://scholars.lib.ntu.edu.tw/handle/123456789/547286
Abstract
In a multi-layered groundwater model, achieving accurate spatiotemporal identification and solving the ill-posed problem is the vital topic for model calibration. This study proposes a symmetry rank three vectorized loading scores (SR3 VLS) quasi-Newton algorithm by modifying the Levenberg–Marquardt algorithm and importing a rank three structure from Broyden–Fletcher–Goldfarb–Shanno algorithm for identification of hydrogeological parameters and spatiotemporal recharge simultaneously. To accelerate directional convergence and approach a global optimum, this study uses a vectorized limited switchable step size in the transmissive groundwater inverse problem. The Hessian approximation rank three uses high and low-rank factor loading scores analyzed from simulated storage fluctuation between adjacent iterations for calculation and matrix correction. Two numerical experiments were designed to validate the proposing algorithm, showing the SR3 VLS quasi-Newton reduced the error percentages of the identified parameters by 1.63% and 9.65% compared to the Jacobian quasi-Newton. The proposing method is applied to the Chou-Shui River alluvial fan groundwater system in Taiwan. Results show that the simulated storage error decreased rapidly in six iterations, and has good head convergence as small as 0.11% with a root-mean-square-error (RMSE) of 0.134 m, indicating that the proposing algorithm reduces the computational cost to converge to the true solution.
SDGs

[SDGs]SDG6

Type
journal article

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