• DocumentCode
    1510562
  • Title

    Scaling-up and model inversion methods with narrowband optical indices for chlorophyll content estimation in closed forest canopies with hyperspectral data

  • Author

    Zarco-Tejada, Pablo J. ; Miller, John R. ; Noland, Thomas L. ; Mohammed, Gina H. ; Sampson, Paul H.

  • Author_Institution
    Dept. of Land Air & Water Resources, California Univ., Davis, CA, USA
  • Volume
    39
  • Issue
    7
  • fYear
    2001
  • fDate
    7/1/2001 12:00:00 AM
  • Firstpage
    1491
  • Lastpage
    1507
  • Abstract
    Radiative transfer theory and modeling assumptions were applied at laboratory and field scales in order to study the link between leaf reflectance and transmittance and canopy hyper-spectral data for chlorophyll content estimation. This study was focused on 12 sites of Acer saccharum M. (sugar maple) in the Algoma Region, Canada, where field measurements, laboratory-simulation experiments, and hyper-spectral compact airborne spectrographic imager (CASI) imagery of 72 channels in the visible and near-infrared region and up to 1-m spatial resolution data were acquired in the 1997, 1998, and 1999 campaigns. A different set of 14 sites of the same species were used in 2000 for validation of methodologies. Infinite reflectance and canopy reflectance models were used to link leaf to canopy levels through radiative transfer simulation. The closed and dense (LAI>4) forest canopies of Acer saccharum M. used for this study, and the high spatial resolution reflectance data targeting crowns, allowed the use of optically thick simulation formulae and turbid-medium SAILH and MCRM canopy reflectance models for chlorophyll content estimation by scaling-up and by numerical model inversion approaches through coupling to the PROSPECT leaf radiative transfer model. Study of the merit function in the numerical inversion showed that red edge optical indices used in the minimizing function such as R750/R710 perform better than when all single spectral reflectance channels from hyper-spectral airborne CASI data are used, and in addition, the effect of shadows and LAI variation are minimized
  • Keywords
    forestry; geophysical techniques; vegetation mapping; Acer saccharum; Algoma Region; Canada; IR remote sensing; canopy reflectance model; chlorophyll content; closed canopy; forest; geophysical measurement technique; hyperspectral remote sensing; model inversion method; narrowband optical indices; optical imaging; radiative transfer theory; remote sensing; scaling-up; sugar maple; vegetation mapping; visible; Hyperspectral imaging; Hyperspectral sensors; Laboratories; Narrowband; Optical sensors; Pigmentation; Reflectivity; Remote sensing; Space technology; Spatial resolution;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/36.934080
  • Filename
    934080