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Title: Modeling forest canopy surface retrievals using very high-resolution spaceborne stereogrammetry : (I) methods and comparisons with actual data
Authors: Yin, T 
Montesano, PM
Cook, BD
Chavanon, E
Neigh, CSR
Shean, D
Peng, D 
Lauret, N
Mkaouar, A
Morton, DC
Regaieg, O
Zhen, Z
Gastellu-Etchegorry, JP
Issue Date: 1-Dec-2023
Source: Remote sensing of environment, 1 Dec. 2023, v. 298, 113825
Abstract: The capability of spaceborne stereogrammetry using very high-resolution (VHR, <2 m) imagery with various environmental, experimental, and sensor configurations for characterizing forest canopy surfaces has not been completely explored. Existing archives of VHR imagery include a limited subset of potential stereo image acquisition configurations and may therefore exclude optimal configurations for capturing critical structural features of forest canopy surface. By contrast, simulated VHR imagery from 3-D radiative transfer models (RTM) can explore the full range of spatial, spectral, and sun-sensor configurations to identify factors that contribute to uncertainties in stereo-derived estimates of forest canopy structure. We developed a novel method to simulate VHR stereopairs using the discrete anisotropic radiative transfer (DART) model and then derive surface elevations from the simulated images. We reconstructed one open-canopy and one closed-canopy forest scene and created a reference digital surface model/digital terrain model (DSM/DTM) using airborne small-footprint lidar points over the study sites. The VHR simulations were configured to match three independent WorldView stereopairs. The results showed that, compared to the reference DSM, the surface elevations derived using simulated and WorldView image data were consistent, with differences of <1.6 m in vertical bias, < 1 m in root mean square error (RMSE), and < 0.07 in correlation coefficient (R). We demonstrated that realistic 3-D RTM simulations could be georeferenced with a camera model for DSM generation from simulated stereopairs. This work will support a follow-up investigation that examines stereo-derived DSM quality over a broad range of surface types and acquisition parameters to suggest optimal configurations for actual VHR stereo data acquisition of vegetation canopy surfaces.
Keywords: Camera model
Canopy structure
Closed forest
Convergence angle
LiDAR
NASA STV
Open forest
Photogrammetry
Radiative transfer model
Solar zenith angle
Stereogrammetry
Surface elevation
Worldview
Publisher: Elsevier
Journal: Remote sensing of environment 
ISSN: 0034-4257
EISSN: 1879-0704
DOI: 10.1016/j.rse.2023.113825
Rights: © 2023 The Authors. Published by Elsevier Inc. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
The following publication Yin, T., Montesano, P. M., Cook, B. D., Chavanon, E., Neigh, C. S., Shean, D., ... & Gastellu-Etchegorry, J. P. (2023). Modeling forest canopy surface retrievals using very high-resolution spaceborne stereogrammetry:(I) methods and comparisons with actual data. Remote Sensing of Environment, 298, 113825 is available at https://doi.org/10.1016/j.rse.2023.113825.
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