• DocumentCode
    104697
  • Title

    Temporal Decorrelation in L-, C-, and X-band Satellite Radar Interferometry for Pasture on Drained Peat Soils

  • Author

    Morishita, Yu ; Hanssen, Ramon F.

  • Author_Institution
    Geospatial Inf. Authority of Japan, Tsukuba, Japan
  • Volume
    53
  • Issue
    2
  • fYear
    2015
  • fDate
    Feb. 2015
  • Firstpage
    1096
  • Lastpage
    1104
  • Abstract
    Temporal decorrelation is one of the main limitations of synthetic aperture radar (SAR) interferometry. For nonurban areas, its mechanism is very complex, as it is very dependent of vegetation types and their temporal dynamics, actual land use, soil types, and climatological circumstances. Yet, an a priori assessment and comprehension of the expected coherence levels of interferograms are required for designing new satellite missions (in terms of frequency, resolution, and repeat orbits), for choosing the optimal data sets for a specific application, and for feasibility studies for new interferometric applications. Although generic models for temporal decorrelation have been proposed, their parameters depend heavily on the land use in the area of interest. Here, we report the behavior of temporal decorrelation for a specific class of land use: pasture on drained peat soils. We use L-, C-, and X-band SAR observations from the Advanced Land Observation Satellite (ALOS), European Remote Sensing Satellite, Envisat, RADARSAT-2, and TerraSAR-X missions. We present a dedicated temporal decorrelation model using three parameters and demonstrate how coherent information can be retrieved as a function of frequency, repeat intervals, and coherence estimation window sizes. New satellites such as Sentinel-1 and ALOS-2, with shorter repeat intervals than their predecessors, would enhance the possibility to obtain a coherent signal over pasture.
  • Keywords
    geophysical signal processing; land use; radar interferometry; remote sensing by radar; soil; synthetic aperture radar; terrain mapping; vegetation; vegetation mapping; ALOS-2 satellite; Advanced Land Observation Satellite mission; C-band SAR observations; C-band satellite radar interferometry; Envisat mission; European Remote Sensing Satellite mission; L-band SAR observations; L-band satellite radar interferometry; RADARSAT-2 mission; Sentinel-1 satellite; TerraSAR-X mission; X-band SAR observations; X-band satellite radar interferometry; a priori assessment; actual land use; climatological circumstances; coherence estimation window sizes; coherence levels; coherent information; coherent signal; drained peat soils; frequency function; generic models; interferograms; interferometric applications; nonurban areas; optimal data sets; pasture; repeat intervals; repeat orbits; satellite missions; soil types; synthetic aperture radar interferometry; temporal decorrelation model; temporal dynamics; vegetation types; Coherence; Decorrelation; Satellites; Sensors; Soil; Synthetic aperture radar; Vegetation mapping; Decorrelation; radar interferometry; 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.2014.2333814
  • Filename
    6862005