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Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar

Radiometric calibration of the Dual-Wavelength Echidna(®) Lidar (DWEL), a full-waveform terrestrial laser scanner with two simultaneously-pulsing infrared lasers at 1064 nm and 1548 nm, provides accurate dual-wavelength apparent reflectance (ρ(app)), a physically-defined value that is related to the...

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Autores principales: Li, Zhan, Jupp, David L. B., Strahler, Alan H., Schaaf, Crystal B., Howe, Glenn, Hewawasam, Kuravi, Douglas, Ewan S., Chakrabarti, Supriya, Cook, Timothy A., Paynter, Ian, Saenz, Edward J., Schaefer, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4813888/
https://www.ncbi.nlm.nih.gov/pubmed/26950126
http://dx.doi.org/10.3390/s16030313
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author Li, Zhan
Jupp, David L. B.
Strahler, Alan H.
Schaaf, Crystal B.
Howe, Glenn
Hewawasam, Kuravi
Douglas, Ewan S.
Chakrabarti, Supriya
Cook, Timothy A.
Paynter, Ian
Saenz, Edward J.
Schaefer, Michael
author_facet Li, Zhan
Jupp, David L. B.
Strahler, Alan H.
Schaaf, Crystal B.
Howe, Glenn
Hewawasam, Kuravi
Douglas, Ewan S.
Chakrabarti, Supriya
Cook, Timothy A.
Paynter, Ian
Saenz, Edward J.
Schaefer, Michael
author_sort Li, Zhan
collection PubMed
description Radiometric calibration of the Dual-Wavelength Echidna(®) Lidar (DWEL), a full-waveform terrestrial laser scanner with two simultaneously-pulsing infrared lasers at 1064 nm and 1548 nm, provides accurate dual-wavelength apparent reflectance (ρ(app)), a physically-defined value that is related to the radiative and structural characteristics of scanned targets and independent of range and instrument optics and electronics. The errors of ρ(app) are 8.1% for 1064 nm and 6.4% for 1548 nm. A sensitivity analysis shows that ρ(app) error is dominated by range errors at near ranges, but by lidar intensity errors at far ranges. Our semi-empirical model for radiometric calibration combines a generalized logistic function to explicitly model telescopic effects due to defocusing of return signals at near range with a negative exponential function to model the fall-off of return intensity with range. Accurate values of ρ(app) from the radiometric calibration improve the quantification of vegetation structure, facilitate the comparison and coupling of lidar datasets from different instruments, campaigns or wavelengths and advance the utilization of bi- and multi-spectral information added to 3D scans by novel spectral lidars.
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spelling pubmed-48138882016-04-06 Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar Li, Zhan Jupp, David L. B. Strahler, Alan H. Schaaf, Crystal B. Howe, Glenn Hewawasam, Kuravi Douglas, Ewan S. Chakrabarti, Supriya Cook, Timothy A. Paynter, Ian Saenz, Edward J. Schaefer, Michael Sensors (Basel) Article Radiometric calibration of the Dual-Wavelength Echidna(®) Lidar (DWEL), a full-waveform terrestrial laser scanner with two simultaneously-pulsing infrared lasers at 1064 nm and 1548 nm, provides accurate dual-wavelength apparent reflectance (ρ(app)), a physically-defined value that is related to the radiative and structural characteristics of scanned targets and independent of range and instrument optics and electronics. The errors of ρ(app) are 8.1% for 1064 nm and 6.4% for 1548 nm. A sensitivity analysis shows that ρ(app) error is dominated by range errors at near ranges, but by lidar intensity errors at far ranges. Our semi-empirical model for radiometric calibration combines a generalized logistic function to explicitly model telescopic effects due to defocusing of return signals at near range with a negative exponential function to model the fall-off of return intensity with range. Accurate values of ρ(app) from the radiometric calibration improve the quantification of vegetation structure, facilitate the comparison and coupling of lidar datasets from different instruments, campaigns or wavelengths and advance the utilization of bi- and multi-spectral information added to 3D scans by novel spectral lidars. MDPI 2016-03-02 /pmc/articles/PMC4813888/ /pubmed/26950126 http://dx.doi.org/10.3390/s16030313 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Zhan
Jupp, David L. B.
Strahler, Alan H.
Schaaf, Crystal B.
Howe, Glenn
Hewawasam, Kuravi
Douglas, Ewan S.
Chakrabarti, Supriya
Cook, Timothy A.
Paynter, Ian
Saenz, Edward J.
Schaefer, Michael
Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title_full Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title_fullStr Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title_full_unstemmed Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title_short Radiometric Calibration of a Dual-Wavelength, Full-Waveform Terrestrial Lidar
title_sort radiometric calibration of a dual-wavelength, full-waveform terrestrial lidar
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4813888/
https://www.ncbi.nlm.nih.gov/pubmed/26950126
http://dx.doi.org/10.3390/s16030313
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