DocumentCode :
52906
Title :
Potential of Space-Borne LiDAR Sensors for Global Bathymetry in Coastal and Inland Waters
Author :
Abdallah, Hani ; Bailly, Jean-Stephane ; Baghdadi, Nicolas N. ; Saint-Geours, N. ; Fabre, Frederic
Author_Institution :
UMR TETIS, IRSTEA, Montpellier, France
Volume :
6
Issue :
1
fYear :
2013
fDate :
Feb. 2013
Firstpage :
202
Lastpage :
216
Abstract :
This work aimed to prospect future space-borne LiDAR sensor capacities for global bathymetry over inland and coastal waters. The sensor performances were assessed using a methodology based on waveform simulation. A global representative simulated waveform database is first built from the Wa-LiD (Water LiDAR) waveform simulator and from distributions of water parameters assumed to be representative at the global scale. A bathymetry detection and estimation process is thus applied to each waveform to determine the bathymetric measurement probabilities in coastal waters, shallow lakes, deep lakes and rivers for a range of water depths. Finally, with a sensitivity analysis of waveforms, the accuracy and some limiting factors of the bathymetry are identified for the dominant water parameters. Two future space-borne LiDAR sensors were explored: an ultraviolet (UV) LiDAR and a green LiDAR. The results show that the bathymetric measurement probabilities at a 1 m depth is 63%, 54%, 24% and 19% with the green LiDAR for deep lakes, coastal waters, rivers and shallow lakes, respectively, and 10%, 22%, 1% and 0% with the UV LiDAR, respectively. The threshold values of dominant water parameters (sediment, yellow substance and phytoplankton concentrations) above which bathymetry detection fails were identiήed and mapped. The accuracy on the bathymetry estimates for both LiDAR sensors is 2.8 cm for one standard deviation with negligible bias (approximately 0.5 cm). However, these accuracy statistics only include the errors coming from the digitizing resolution and the inversion algorithm.
Keywords :
bathymetry; geophysical techniques; inverse problems; lakes; microorganisms; oceanic crust; oceanographic techniques; optical radar; remote sensing by laser beam; rivers; seawater; sediments; waveform analysis; Wa-LiD waveform simulator; bathymetric measurement probabilities; coastal waters; deep lakes; digitizing resolution; global bathymetry; green LIDAR; inland waters; inversion algorithm; phytoplankton concentrations; rivers; sediment parameter; sensor performances; shallow lakes; simulated waveform database; space-borne LIDAR sensors; ultraviolet LIDAR; water parameter; waveform simulation; yellow substance; Lakes; Laser radar; Mathematical model; Satellites; Sea measurements; Sensors; Surface waves; Accuracy; LiDAR; bathymetry; satellite; waveform model;
fLanguage :
English
Journal_Title :
Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of
Publisher :
ieee
ISSN :
1939-1404
Type :
jour
DOI :
10.1109/JSTARS.2012.2209864
Filename :
6327381
Link To Document :
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