Assessing the Accuracy of PRISMA Standard Reflectance Products in Globally Distributed Aquatic Sites

Author:

Pellegrino Andrea1ORCID,Fabbretto Alice12ORCID,Bresciani Mariano1ORCID,de Lima Thainara Munhoz Alexandre3ORCID,Braga Federica4ORCID,Pahlevan Nima56ORCID,Brando Vittorio Ernesto7ORCID,Kratzer Susanne8ORCID,Gianinetto Marco9,Giardino Claudia1ORCID

Affiliation:

1. Institute for Electromagnetic Sensing of the Environment, National Research Council (CNR-IREA), 20133 Milano, Italy

2. Department of Remote Sensing, Tartu University, Tartu Observatory, Observatooriumi 1, 61602 Tartu, Estonia

3. National Institute for Space Research (INPE), São José dos Campos 12227-010, SP, Brazil

4. Institute of Marine Sciences, National Research Council (CNR-ISMAR), Castello, 30122 Venice, Italy

5. NASA Goddard Space Flight Center, Greenbelt, MD 20771, USA

6. Science Systems and Applications Inc., Lanham, MD 20706, USA

7. Institute of Marine Sciences, National Research Council (CNR-ISMAR), 00133 Rome, Italy

8. Department of Ecology, Environment and Plant Sciences (DEEP), Stockholm University, SE-106 91 Stockholm, Sweden

9. Department of Architecture, Built Environment and Construction Engineering, Politecnico di Milano, 20133 Milano, Italy

Abstract

PRISMA is the Italian Space Agency’s first proof-of-concept hyperspectral mission launched in March 2019. The present work aims to evaluate the accuracy of PRISMA’s standard Level 2d (L2d) products in visible and near-infrared (NIR) spectral regions over water bodies. For this assessment, an analytical comparison was performed with in situ water reflectance available through the ocean color component of the Aerosol Robotic Network (AERONET-OC). In total, 109 cloud-free images over 20 inland and coastal water sites worldwide were available for the match-up analysis, covering a period of three years. The quality of L2d products was further evaluated as a function of ancillary parameters, such as the trophic state of the water, aerosol optical depth (AOD), observation and illumination geometry, and the distance from the coastline (DC). The results showed significant levels of uncertainty in the L2d reflectance products, with median symmetric accuracies (MdSA) varying from 33% in the green to more than 100% in the blue and NIR bands, with higher median uncertainties in oligotrophic waters (MdSA of 85% for the entire spectral range) than in meso-eutrophic (MdSA of 46%) where spectral shapes were retained adequately. Slight variations in the statistical agreement were then noted depending on AOD values, observation and illumination geometry, and DC. Overall, the results indicate that water-specific atmospheric correction algorithms should be developed and tested to fully exploit PRISMA data as a precursor for future operational hyperspectral missions as the standard L2d products are mostly intended for terrestrial applications.

Funder

Italian Space Agency

EU Horizon 2020 programme

NASA Ocean Biology and Biogeochemistry

Swedish National Space Agency infrastructure

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

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