• DocumentCode
    87708
  • Title

    Joint-Scatterer Processing for Time-Series InSAR

  • Author

    Xiaolei Lv ; Yazici, Birsen ; Zeghal, Mourad ; Bennett, Victoria ; Abdoun, Tarek

  • Author_Institution
    Dept. of Civil & Environ. Eng., Rensselaer Polytech. Inst., Troy, NY, USA
  • Volume
    52
  • Issue
    11
  • fYear
    2014
  • fDate
    Nov. 2014
  • Firstpage
    7205
  • Lastpage
    7221
  • Abstract
    The first-generation time-series synthetic aperture radar interferometry (TSInSAR) technique persistent-scatterer (PS) InSAR has been proven effective in ground deformation measurement over areas with high reflectivity by taking advantage of coregistered temporally coherent pointwise scatterers. In order to increase the spatial density of measurement points and quality of displacement time series over moderate reflectivity scenes, a second-generation TSInSAR called SqueeSAR was developed to extract displacement information from both PSs and distributed scatterers, by taking into account their temporal coherence and their spatial statistical behavior. In this paper, we propose a new second-generation TSInSAR, which is referred to as joint-scatterer (JS) InSAR, to measure the line-of-sight surface displacement using the neighboring pixel stacks. A novel goodness-of-fit testing approach is proposed to analyze the similarity between two JS vectors based on time-series likelihood ratios. By taking advantage of the proposed test, a new spatially adaptive filter is developed to estimate the covariance matrix. Based on the estimated covariance matrix, the projection of the joint signal subspace onto the corresponding joint noise subspace is applied to retrieve phase history. With coherence information of neighboring pixel stacks, JSInSAR is able to provide reliable geophysical parameters in the presence of large coregistration errors. The effectiveness of the proposed technique is verified with a time series of high-resolution SAR data from the TerraSAR-X satellite.
  • Keywords
    adaptive filters; covariance matrices; displacement measurement; geophysical techniques; radar interferometry; radar resolution; spatial filters; surface topography measurement; synthetic aperture radar; time series; vectors; JS InSAR; JS vector; PS InSAR; SqueeSAR; TSInSAR; TerraSAR-X satellite; coregistered temporally coherent pointwise scatterer; covariance matrix; displacement information extraction; first-generation time-series synthetic aperture radar interferometry; geophysical parameter; goodness-of-fit testing approach; ground deformation measurement; high-resolution SAR data; joint noise subspace; joint signal subspace; joint-scatterer InSAR; large coregistration error; line-of-sight surface displacement time series quality; neighboring pixel stack; persistent-scatterer InSAR; phase history retrieval; second-generation TSInSAR; spatial statistical behavior; spatially adaptive filter; temporal coherence; time-series likelihood ratio; Coherence; Covariance matrices; Joints; Synthetic aperture radar; Testing; Time series analysis; Vectors; Covariance matrix; SAR interferometry (InSAR); SqueeSAR; goodness-of-fit test; joint scatterers; likelihood ratios; persistent scatterers; spatially adaptive filter; 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.2014.2309346
  • Filename
    6803041