Skip to main content
Article
A global compilation of in situ aquatic high spectral resolution inherent and apparent optical property data for remote sensing applications
Earth System Science Data
  • Kimberly A. Casey, NASA Goddard Space Flight Center
  • Cecile S. Rousseaux, NASA Goddard Space Flight Center
  • Watson W. Gregg, NASA Goddard Space Flight Center
  • Emmanuel Boss, University of Maine
  • Alison P. Chase, University of Maine
  • Susanne E. Craig, Universities Space Research Association
  • Colleen B. Mouw, University of Rhode Island Narragansett Bay Campus
  • Rick A. Reynolds, Marine Physical Laboratory
  • Dariusz Stramski, Marine Physical Laboratory
  • Steven G. Ackleson, Naval Research Laboratory
  • Annick Bricaud, Observatoire Océanologique de Villefranche Sur Mer
  • Blake Schaeffer, United States Environmental Protection Agency
  • Marlon R. Lewis, Dalhousie University
  • Stéphane Maritorena, University of California, Santa Barbara
Document Type
Article
Rights and Access Note
This Item is protected by copyright and/or related rights. You are free to use this item in any way that is permitted by copyright and related rights legislation that applies to your use. Rights assessment remains the responsibility of the researcher. In addition, no permission is required from the rights-holder(s) for non-commercial uses.
Publication Date
5-19-2020
Abstract/ Summary

Light emerging from natural water bodies and measured by radiometers contains information about the local type and concentrations of phytoplankton, non-algal particles and colored dissolved organic matter in the underlying waters. An increase in spectral resolution in forthcoming satellite and airborne remote sensing missions is expected to lead to new or improved capabilities for characterizing aquatic ecosystems. Such upcoming missions include NASA's Plankton, Aerosol, Cloud, ocean Ecosystem (PACE) mission; the NASA Surface Biology and Geology designated observable mission; and NASA Airborne Visible/Infrared Imaging Spectrometer - Next Generation (AVIRIS-NG) airborne missions. In anticipation of these missions, we present an organized dataset of geographically diverse, quality-controlled, high spectral resolution inherent and apparent optical property (IOP-AOP) aquatic data. The data are intended to be of use to increase our understanding of aquatic optical properties, to develop aquatic remote sensing data product algorithms, and to perform calibration and validation activities for forthcoming aquatic-focused imaging spectrometry missions. The dataset is comprised of contributions from several investigators and investigating teams collected over a range of geographic areas and water types, including inland waters, estuaries, and oceans. Specific in situ measurements include remote-sensing reflectance, irradiance reflectance, and coefficients describing particulate absorption, particulate attenuation, non-algal particulate absorption, colored dissolved organic matter absorption, phytoplankton absorption, total absorption, total attenuation, particulate backscattering, and total backscattering. The dataset can be downloaded from https://doi.org/10.1594/PANGAEA.902230 (Casey et al., 2019).

Citation/Publisher Attribution
This article was published in Earth System Science Data by Copernicus Publications.
Publisher Statement
© 2020 Author(s).
DOI
10.5194/essd-12-1123-2020
Version
publisher's version of the published document
Citation Information
Kimberly A. Casey, Cecile S. Rousseaux, Watson W. Gregg, Emmanuel Boss, et al.. "A global compilation of in situ aquatic high spectral resolution inherent and apparent optical property data for remote sensing applications" Earth System Science Data Vol. 12 Iss. 2 (2020) p. 1123 - 1139
Available at: http://works.bepress.com/emmanuel_boss/17/