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Recent Improvements in the Dart Model for Atmosphere, Topography, Large Landscape, Chlorophyll Fluorescence, Satellite Image InversionPhysical models simulating the radiative budget (RB) and remote sensing (RS) observation of three-dimensional (3D) landscapes are critical to better understand human and natural components of the Earth system and further develop RS technology. DART is one of the most comprehensive 3D models of Earth-atmosphere optical radiative transfer (RT), from ultraviolet (UV) to thermal infrared (TIR). It simulates the optical signal of proximal, aerial and satellite imaging spectrometers and laser scanners, the 3D RB and solar induced chlorophyll fluorescence (SIF) signal, for any urban or natural landscape and any experimental or instrument configuration. It is freely available for research and teaching activities (https://dart.omp.eu). Here, five recent advances are presented. 1) Atmosphere RT. 2) RT in non repetitive topography. 3) Monte Carlo modelling for fast RS image simulation of large landscapes. 4) SIF modelling for vegetation simulated as facets and turbid cells. 5) RS image inversion for mapping the optical properties of urban material and the urban radiative budget.
Document ID
20210016329
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
J. P. Gastellu-Etchegorry
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
Y. Wang
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
O. Regaieg
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
T. Yin
(MALIN SPACE SCIENCE SYSTEMS College Park, Maryland, United States)
Z. Malenovsky
(University of Tasmania Hobart, Tasmania, Australia)
Z. Zhen
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
X. Yang
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
Z. Tao
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
L. Landier
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
A. Al Bitar
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
Deschamps
(Centre National D'Etudes Spatiales Paris, France)
N. Lauret
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
J. Guilleux
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
E. Chavanon
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
B. Cao
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
J. Qi
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
A. Kallel
(National Engineering School of Sfax Sfax, Tunisia)
Z. Mitraka
(Centre d'Etudes Spatiales de la BIOsphère Toulouse, France)
N. Chrysoulakis
(Foundation for Research and Technology Hellas Heraklion, Greece)
B Cook
(Goddard Space Flight Center Greenbelt, Maryland, United States)
D Morton
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Date Acquired
May 25, 2021
Publication Date
February 17, 2021
Publication Information
Publication: IGARSS 2020 - 2020 IEEE International Geoscience and Remote Sensing Symposium
Publisher: IEEE
Issue Publication Date: February 17, 2021
ISBN: 978-1-7281-6374-1/20
URL: https://ieeexplore.ieee.org/document/9323458/authors#authors
Subject Category
Earth Resources And Remote Sensing
Meeting Information
Meeting: IGARSS 2020
Location: Virtual
Country: US
Start Date: September 26, 2020
End Date: October 2, 2020
Sponsors: Institute of Electrical and Electronics Engineers
Funding Number(s)
WBS: 970315.02.01.01.65
CONTRACT_GRANT: EUH 637519
PROJECT: URBANFLUXES
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
DART
atmosphere
topography
SIF
inversion
modelling
radiative budget
remote sensing
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