Literature DB >> 28867834

Estimation of leaf area index and its sunlit portion from DSCOVR EPIC data: Theoretical basis.

Bin Yang1,2, Yuri Knyazikhin1, Matti Mõttus3, Miina Rautiainen4,5, Pauline Stenberg6, Lei Yan2, Chi Chen1, Kai Yan1,7, Sungho Choi1, Taejin Park1, Ranga B Myneni1.   

Abstract

This paper presents the theoretical basis of the algorithm designed for the generation of leaf area index and diurnal course of its sunlit portion from NASA's Earth Polychromatic Imaging Camera (EPIC) onboard NOAA's Deep Space Climate Observatory (DSCOVR). The Look-up-Table (LUT) approach implemented in the MODIS operational LAI/FPAR algorithm is adopted. The LUT, which is the heart of the approach, has been significantly modified. First, its parameterization incorporates the canopy hot spot phenomenon and recent advances in the theory of canopy spectral invariants. This allows more accurate decoupling of the structural and radiometric components of the measured Bidirectional Reflectance Factor (BRF), improves scaling properties of the LUT and consequently simplifies adjustments of the algorithm for data spatial resolution and spectral band compositions. Second, the stochastic radiative transfer equations are used to generate the LUT for all biome types. The equations naturally account for radiative effects of the three-dimensional canopy structure on the BRF and allow for an accurate discrimination between sunlit and shaded leaf areas. Third, the LUT entries are measurable, i.e., they can be independently derived from both below canopy measurements of the transmitted and above canopy measurements of reflected radiation fields. This feature makes possible direct validation of the LUT, facilitates identification of its deficiencies and development of refinements. Analyses of field data on canopy structure and leaf optics collected at 18 sites in the Hyytiälä forest in southern boreal zone in Finland and hyperspectral images acquired by the EO-1 Hyperion sensor support the theoretical basis.

Keywords:  DSCOVR mission; Hot spot; Operational algorithm; Radiative transfer; Spectral invariants; Sunlit leaf area index

Year:  2017        PMID: 28867834      PMCID: PMC5577800          DOI: 10.1016/j.rse.2017.05.033

Source DB:  PubMed          Journal:  Remote Sens Environ        ISSN: 0034-4257            Impact factor:   10.164


  3 in total

1.  Impact of changes in diffuse radiation on the global land carbon sink.

Authors:  Lina M Mercado; Nicolas Bellouin; Stephen Sitch; Olivier Boucher; Chris Huntingford; Martin Wild; Peter M Cox
Journal:  Nature       Date:  2009-04-23       Impact factor: 49.962

2.  Hyperspectral remote sensing of foliar nitrogen content.

Authors:  Yuri Knyazikhin; Mitchell A Schull; Pauline Stenberg; Matti Mõttus; Miina Rautiainen; Yan Yang; Alexander Marshak; Pedro Latorre Carmona; Robert K Kaufmann; Philip Lewis; Mathias I Disney; Vern Vanderbilt; Anthony B Davis; Frédéric Baret; Stéphane Jacquemoud; Alexei Lyapustin; Ranga B Myneni
Journal:  Proc Natl Acad Sci U S A       Date:  2012-12-04       Impact factor: 11.205

3.  Analyses of Impact of Needle Surface Properties on Estimation of Needle Absorption Spectrum: Case Study with Coniferous Needle and Shoot Samples.

Authors:  Bin Yang; Yuri Knyazikhin; Yi Lin; Kai Yan; Chi Chen; Taejin Park; Sungho Choi; Matti Mõttus; Miina Rautiainen; Ranga B Myneni; Lei Yan
Journal:  Remote Sens (Basel)       Date:  2016-07-02       Impact factor: 4.848

  3 in total
  5 in total

1.  Earth Observations from DSCOVR/EPIC Instrument.

Authors:  Alexander Marshak; Jay Herman; Adam Szabo; Karin Blank; Alexander Cede; Simon Carn; Igor Geogdzhayev; Dong Huang; Liang-Kang Huang; Yuri Knyazikhin; Matthew Kowalewski; Nickolay Krotkov; Alexei Lyapustin; Richard McPeters; Omar Torres; Yuekui Yang
Journal:  Bull Am Meteorol Soc       Date:  2018-10-09       Impact factor: 8.766

2.  Calibration of the DSCOVR EPIC visible and NIR channels using MODIS Terra and Aqua data and EPIC lunar observations.

Authors:  Igor V Geogdzhayev; Alexander Marshak
Journal:  Atmos Meas Tech       Date:  2018-01-17       Impact factor: 4.176

3.  Quantifying vegetation biophysical variables from the Sentinel-3/FLEX tandem mission: Evaluation of the synergy of OLCI and FLORIS data sources.

Authors:  Charlotte De Grave; Jochem Verrelst; Pablo Morcillo-Pallarés; Luca Pipia; Juan Pablo Rivera-Caicedo; Eatidal Amin; Santiago Belda; José Moreno
Journal:  Remote Sens Environ       Date:  2020-12-15       Impact factor: 13.850

4.  EPIC Spectral Observations of Variability in Earth's Global Reflectance.

Authors:  Weidong Yang; Alexander Marshak; Tamás Várnai; Yuri Knyazikhin
Journal:  Remote Sens (Basel)       Date:  2018       Impact factor: 4.848

5.  Empirical validation of photon recollision probability in single crowns of tree seedlings.

Authors:  Aarne Hovi; Petri Forsström; Giulia Ghielmetti; Michael E Schaepman; Miina Rautiainen
Journal:  ISPRS J Photogramm Remote Sens       Date:  2020-11       Impact factor: 8.979

  5 in total

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