• DocumentCode
    1757119
  • Title

    The GO4 Model in Near-Nadir Microwave Scattering From the Sea Surface

  • Author

    Boisot, Olivier ; Nouguier, Fredric ; Chapron, Bertrand ; Guerin, Charles-Antoine

  • Author_Institution
    Centre Nat. de la Rech. Sci., Univ. de Toulon, La Garde, France
  • Volume
    53
  • Issue
    11
  • fYear
    2015
  • fDate
    Nov. 2015
  • Firstpage
    5889
  • Lastpage
    5900
  • Abstract
    We introduce a practical and accurate model, referred to as “GO4,” to describe near-nadir microwave scattering from the sea surface, and at the same time, we address the issue of the filtered mean square slope (mss) conventionally used in the geometrical optics model. GO4 is a simple correction of this last model, taking into account the diffraction correction induced by the rough surface through what we call an effective mean square curvature (msc). We evaluate the effective msc as a function of the surface wavenumber spectrum and the radar frequency and show that GO4 reaches the same accuracy as the physical optics model in a wide range of incidence and frequency bands with the sole knowledge of the mss and msc parameters. The key point is that the mss entering in GO4 is not the filtered but the total slope. We provide estimation of the effective msc on the basis of classical sea spectrum models. We also evaluate the effective msc from near-nadir satellite data in various bands and show that it is consistent with model predictions. Non-Gaussian effects are discussed and shown to be incorporated in the effective msc. We give some applications of the method, namely, the estimation of the total sea surface mss and the recalibration of relative radar cross sections.
  • Keywords
    geometrical optics; ocean waves; oceanographic techniques; remote sensing; GO4 model; classical sea spectrum model; diffraction correction; effective mean square curvature; filtered mean square slope; frequency bands; geometrical optics model; incidence bands; near-nadir microwave scattering; nonGaussian effects; physical optics model; radar frequency; relative radar cross sections; surface wavenumber spectrum function; total sea surface mss; Approximation methods; Optical surface waves; Radar; Scattering; Sea surface; Surface waves; Wind speed; Curvature; geometrical optics; near-nadir; ocean radar sensing; slope;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2015.2424714
  • Filename
    7119570