• DocumentCode
    60952
  • Title

    Polarimetric Simulations of SAR at L-Band Over Bare Soil Using Scattering Matrices of Random Rough Surfaces From Numerical Three-Dimensional Solutions of Maxwell Equations

  • Author

    Kun-Shan Chen ; Leung Tsang ; Kuan-Liang Chen ; Tien Hao Liao ; Jong-Sen Lee

  • Author_Institution
    Inst. of Space Sci., Nat. Central Univ., Jhongli, Taiwan
  • Volume
    52
  • Issue
    11
  • fYear
    2014
  • fDate
    Nov. 2014
  • Firstpage
    7048
  • Lastpage
    7058
  • Abstract
    We have performed simulations of random rough surface scattering using 3-D numerical solution of Maxwell equations (NMM3D) using surface size up to 32 × 32 squared wavelengths. The rough surfaces are characterized by exponential correlation functions. The simulation results of crossand copolarization backscattering coefficients were in good agreement with experimental measurements of bare soils at L-band. Because in numerical solutions of Maxwell equations the electric fields of the scattered wave are calculated for each realization, scattering matrices can be simulated by NMM3D, and such simulations are performed in this paper. For a given RMS height, correlation length, soil permittivity, and incident angle, we calculated the radar scattering matrix up to 958 independent realizations. For each realization, the components of the scattering matrix, namely, SHH, SVV, SHV, and SVH, are calculated. Using the simulated scattering matrices, we calculate the polarimetric speckle statistics (amplitude and phase difference), followed by a comparison with theoretical distributions. For fully developed speckle from the homogeneous rough surface, the results are examined and validated to ensure the simulated data quality as far as polarimetric properties are concerned. By taking ensemble averages, we calculate the coherency matrix from which the eigenvalues, entropy, anisotropy, and alpha angle in coherent target decomposition are then calculated. In particular, characterization of polarimetric descriptors for rough surface is presented. Issues of scattering symmetry characteristics are also discussed.
  • Keywords
    Maxwell equations; S-matrix theory; backscatter; eigenvalues and eigenfunctions; electromagnetic wave scattering; entropy; permittivity; radar polarimetry; soil; speckle; synthetic aperture radar; 3D numerical solution; L-band SAR polarimetric simulations; Maxwell equations; NMM3D; RMS height; SHH component; SHV component; SVH component; SVV component; alpha angle; amplitude difference; anisotropy; bare soil; coherency matrix; coherent target decomposition; copolarization backscattering coefficient; correlation length; cross-polarization backscattering coefficient; eigenvalues; electric field; ensemble average; entropy; exponential correlation function; homogeneous rough surface; incident angle; phase difference; polarimetric descriptor characterization; polarimetric properties; polarimetric speckle statistics; radar scattering matrix; random rough surface scattering simulation; scattering symmetry characteristics; soil permittivity; wave scattering; Backscatter; Mathematical model; Numerical models; Rough surfaces; Scattering; Surface roughness; Surface waves; Coherent target decomposition; numerical simulation; polarimetric synthetic aperture radar;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2014.2306922
  • Filename
    6782414