• DocumentCode
    76507
  • Title

    A Global Sensitivity Analysis of Soil Parameters Associated With Backscattering Using the Advanced Integral Equation Model

  • Author

    Chunfeng Ma ; Xin Li ; Shuguo Wang

  • Author_Institution
    Key Lab. of Remote Sensing of Gansu Province, Cold & Arid Regions Environ. & Eng. Res. Inst., Lanzhou, China
  • Volume
    53
  • Issue
    10
  • fYear
    2015
  • fDate
    Oct. 2015
  • Firstpage
    5613
  • Lastpage
    5623
  • Abstract
    A profound and comprehensive understanding of the sensitivity of soil parameters related to backscattering coefficient is significant for the use of active microwave algorithms for soil moisture inversion. This paper presents a global sensitivity analysis (SA) based on the Advanced Integral Equation Model for soil moisture retrieval. The analysis involves diverse parameter ranges, sensor frequencies, incidence angles, surface correlation functions, and polarizations across various experiments. The primary objectives are to quantitatively and systematically evaluate the parameter sensitivities and their variations under various conditions, resulting in an improved understanding of microwave scattering and suggesting potential approaches to the improvement of soil moisture retrieval. The performance of this SA leads to the parameter sensitivities being quantified. Sensitive and insensitive parameters are distinguished. The existence of the former informs the direction of model calibration, implying that these parameters can be inverted with high confidence. Setting the latter as constants would be a step toward model simplification. Various conditions are observed to influence the parameter sensitivities, suggesting that it is possible to perform soil moisture or roughness inversions under the most sensitive conditions for the parameters. Finally, an SA of various combinations of dual-polarization, dual-frequency, and dual-incidence-angle backscatter is conducted. The results suggest that certain combinations enhance the sensitivities of certain parameters and allow for better estimation of their values. Ultimately, the presented global SA highlights the quantitative and systematic evaluation of parameter sensitivities, particularly their interactions, leading to a more profound understanding of scattering and an improvement in soil moisture estimation.
  • Keywords
    backscatter; hydrological techniques; integral equations; microwave measurement; moisture measurement; remote sensing; sensitivity analysis; soil; active microwave algorithm; advanced integral equation model; backscattering coefficient; dual-frequency backscatter; dual-incidence-angle backscatter; dual-polarization backscatter; global sensitivity analysis; microwave scattering; model calibration; model simplification; roughness inversion; sensor frequency; soil moisture estimation; soil moisture inversion; soil moisture retrieval; soil parameters; surface correlation function; Backscatter; Rough surfaces; Scattering; Sensitivity; Soil moisture; Surface roughness; Active microwave remote sensing; extended Fourier amplitude sensitivity test (EFAST); sensitivity analysis (SA); soil moisture inversion;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2015.2426194
  • Filename
    7112113