A linearized discrete ordinate radiative transfer model for atmospheric remote-sensing retrieval

被引:180
|
作者
Spurr, RJD [1 ]
Kurosu, TP [1 ]
Chance, KV [1 ]
机构
[1] Harvard Smithsonian Ctr Astrophys, Cambridge, MA 02138 USA
关键词
D O I
10.1016/S0022-4073(00)00055-8
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The radiative transfer forward model simulation of intensities and associated parameter derivatives (weighting functions) is a vital part of the retrieval of earth atmospheric constituent information from measurements of backscattered light. The discrete ordinate method is the most commonly used approach for the determination of solutions to the radiative transfer equation. In this paper, we carry out an internal perturbation analysis of the complete discrete ordinate solution in a plane parallel multi-layered multiple-scattering atmosphere. Perturbations in layer atmospheric quantities will translate into small changes in the single-scatter albedos and optical depth values. In addition, we consider perturbations in layer thermal emission source terms and in the surface albedo. It is shown that the solution of the boundary value problem for the perturbed intensity field leads in a natural way to the weighting function associated with the parameter causing the perturbation. We have developed a numerical model LIDORT (linearized discrete ordinate radiative transfer) for the simultaneous generation of backscatter intensities and weighting function output at arbitrary elevation angles, for a user-defined set of atmospheric variations. Results for a 5-layer test atmosphere with two scatterers and thermal emission terms are shown. Intensities are validated against benchmark discrete ordinate results, while weighting functions are checked for consistency against finite difference results based on external perturbations. A second example is presented for a 60-layer terrestrial atmosphere with molecular and aerosol scattering and ozone trace gas absorption in the UV spectral range; weighting functions are shown to correspond closely with results derived from another radiative transfer model. Published by Elsevier Science Ltd.
引用
收藏
页码:689 / 735
页数:47
相关论文
共 50 条
  • [31] ATMOSPHERIC EFFECTS ON REMOTE-SENSING OF SURFACE REFLECTANCE
    KAUFMAN, YJ
    PROCEEDINGS OF THE SOCIETY OF PHOTO-OPTICAL INSTRUMENTATION ENGINEERS, 1984, 475 : 20 - 33
  • [32] PASSIVE AND ACTIVE REMOTE-SENSING OF ATMOSPHERIC PRECIPITATION
    JIN, YQ
    KONG, JA
    APPLIED OPTICS, 1983, 22 (17): : 2535 - 2545
  • [33] PROBLEMS OF REMOTE-SENSING MEASUREMENTS OF ATMOSPHERIC AEROSOLS
    PAFFRATH, D
    SINGLER, A
    KIRCHSCHLAGER, E
    JOURNAL OF AEROSOL SCIENCE, 1981, 12 (03) : 178 - 178
  • [34] MOBILE REMOTE-SENSING SYSTEM FOR ATMOSPHERIC MONITORING
    EDNER, H
    FREDRIKSSON, K
    SUNESSON, A
    SVANBERG, S
    UNEUS, L
    WENDT, W
    APPLIED OPTICS, 1987, 26 (19): : 4330 - 4338
  • [35] DEFINITIONS OF ATMOSPHERIC RADIANCE AND TRANSMITTANCES IN REMOTE-SENSING
    DESCHAMPS, PY
    HERMAN, M
    TANRE, D
    REMOTE SENSING OF ENVIRONMENT, 1983, 13 (01) : 89 - 92
  • [36] RADIATIVE-TRANSFER THEORY FOR ACTIVE REMOTE-SENSING OF A LAYER OF SMALL ELLIPSOIDAL SCATTERERS
    TSANG, L
    KUBACSI, MC
    KONG, JA
    RADIO SCIENCE, 1981, 16 (03) : 321 - 329
  • [37] A pseudo-spherical linearized radiative transfer model for trace gas profile retrieval
    Walter, H
    Landgraf, J
    Trautmann, T
    REMOTE SENSING OF CLOUDS AND THE ATMOSPHERE VI, 2002, 4539 : 362 - 368
  • [38] Building Grid Service on Atmospheric Radiative Transfer Simulation of Remote Sensing Data
    Zhan Shaobin
    Chen Shengbo
    Bao Yunfei
    2008 IEEE CONGRESS ON EVOLUTIONARY COMPUTATION, VOLS 1-8, 2008, : 2427 - +
  • [39] Efficient radiative transfer model inversion for remote sensing applications
    Hedley, John
    Roelfsema, Chris
    Phinn, Stuart R.
    REMOTE SENSING OF ENVIRONMENT, 2009, 113 (11) : 2527 - 2532
  • [40] A polarized microwave radiative transfer model for passive remote sensing
    Deiveegan, M.
    Balaji, C.
    Venkateshan, S. P.
    ATMOSPHERIC RESEARCH, 2008, 88 (3-4) : 277 - 293