• DocumentCode
    1765287
  • Title

    General Polarimetric Model-Based Decomposition for Coherency Matrix

  • Author

    Si-Wei Chen ; Xue-Song Wang ; Shun-Ping Xiao ; Sato, Mitsuhisa

  • Author_Institution
    State Key Lab. of Complex Electromagn. Environ. Effects on Electron. & Inf. Syst., Nat. Univ. of Defense Technol., Changsha, China
  • Volume
    52
  • Issue
    3
  • fYear
    2014
  • fDate
    41699
  • Firstpage
    1843
  • Lastpage
    1855
  • Abstract
    Orientation angle compensation was incorporated into model-based decomposition to cure overestimation of the volume scattering contribution for interpretation of polarimetric synthetic aperture radar (PolSAR) data. The compensation is based on rotating the coherency matrix to minimize the cross-polarization term. However, this processing cannot always guarantee that the double- and odd-bounce scattering components will be rotated back to zero orientation angle and left with zero cross-polarization power. As a result, built-up patches with large orientation angles may still suffer from the scattering mechanism ambiguity. In this paper, double- and odd-bounce scattering models were generalized to fit the cross-polarization and off-diagonal terms, by separating their independent orientation angles. A general decomposition framework is proposed that utilizes all elements of a coherency matrix. The residual minimization criterion is used for model inversion. All the model parameters are simultaneously obtained using a nonlinear least squares optimization technique. The manual intervention, branch conditions, and negative power issues are avoided. The performance and advantages of this approach are demonstrated and evaluated with spaceborne L-band ALOS/PALSAR and airborne X-band Pi-SAR PolSAR data sets. Comparison studies are also carried out and demonstrate that further improved decomposition performance is achieved by the proposed method, especially in oriented built-up areas.
  • Keywords
    geophysical techniques; polarisation; radar polarimetry; scattering; spaceborne radar; synthetic aperture radar; PolSAR data interpretation; airborne X-band Pi-SAR PolSAR data sets; approach advantages; approach performance; branch conditions; built-up patches; coherency matrix elements; coherency matrix rotation; cross-polarization term; cross-polarization term minimization; double-bounce scattering component; double-bounce scattering model; general decomposition framework; general polarimetric model-based decomposition; improved decomposition performance; independent orientation angles; large orientation angles; manual intervention; model inversion; model parameters; negative power issues; nonlinear least square optimization technique; odd-bounce scattering component; odd-bounce scattering model; off-diagonal term; orientation angle compensation; oriented built-up areas; polarimetric synthetic aperture radar data; residual minimization criterion; scattering mechanism ambiguity; spaceborne L-band ALOS-PALSAR; volume scattering contribution cure overestimation; zero cross-polarization power; zero orientation angle; Deorientation; general model; model-based decomposition; polarimetry; polarization orientation angle; synthetic aperture radar (SAR);
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2013.2255615
  • Filename
    6530668