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Remote Sensing-Driven Hydrodynamic Modeling in Data-Scarce Regions: Integrating ICESat-2, Sentinel-2, SWOT and Re-analysis Models for Coastal MonitoringHydrodynamic models in coastal and estuarine systems are typically constrained by sparse bathymetry, boundary, and validation data, especially in regions where field campaigns are costly or impractical. Here we develop and test a fully satellite-driven framework for hydrodynamic modeling in South Africa’s Langebaan Lagoon without using any local in situ measurements. Bathymetry is derived by training multispectral Sentinel-2 reflectance against ICESat-2 ATL24 photon-derived depths using an XGBoost model optimized with Bayesian search. The final satellite-derived bathymetry reproduces independent ATL24 points with RMSE = 0.45 m and R2 = 0.97. This bathymetry was used in a depth-averaged Delft3D Flexible Mesh model driven at the open boundary by TPXO tidal harmonics and by ERA5 winds. We validate modeled water surface elevation against 16 SWOT low-rate (250 m, unsmoothed) passes in 2023. SWOT–model comparisons yield an overall RMSE of 0.11 m and R2 = 0.61, with typical point differences <0.10 m (∼7% of the 1.5 m tidal range), and showed consistent spatial gradients in water level from the offshore boundary, through Saldanha Bay, and into the lagoon. At the offshore boundary, TPXO and SWOT sea surface heights agree closely (R2 = 0.86). A simple phase adjustment of ∼26,min between TPXO and SWOT lowers the RMSE from 0.18,m to 0.11,m, showing that phase offset accounts for some of the discrepancy, with additional errors likely linked to non-tidal signals. Our results demonstrate that combining passive optical, photon-counting LiDAR, radar interferometry, and global tidal/atmospheric models enables robust, transferrable hydrodynamic modeling in data-scarce coastal systems, offering a cost-effective pathway for monitoring.
Document ID
20260001902
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Ali Reza Payandeh
(Jet Propulsion Laboratory Pasadena, United States)
Marc Simard
(Jet Propulsion Laboratory Pasadena, United States)
Daniel J Jensen
(Jet Propulsion Laboratory Pasadena, United States)
Anthony D Campbell
(University of Maryland College Park, MD)
Heidi van Deventer
(South African Council for Scientific and Industrial Research)
Alexandra L Christensen
(Jet Propulsion Laboratory Pasadena, United States)
Date Acquired
March 4, 2026
Publication Date
March 10, 2026
Publication Information
Publication: Frontiers in Remote Sensing
Publisher: Frontiers Media SA
Volume: 7
Issue Publication Date: January 1, 2026
e-ISSN: 2673-6187
Subject Category
Earth Resources and Remote Sensing
Funding Number(s)
CONTRACT_GRANT: NNH21ZDA001N-BIODIV
OTHER: NNH23ZDA001N-SWOTST)
CONTRACT_GRANT: 80NM0018D0004
CONTRACT_GRANT: 80NSSC22K1382
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
External Peer Committee
Keywords
ICESat-2
bathymetry
SWOT
hydrodynamic
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