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Buras, R., T. Dowling, and C. Emde (2011), New secondary-scattering correction in DISORT with increased efficiency for forward scattering, J. Quant. Spectrosc. Radiat. Transfer, 112, 2028–2034, doi:10.1016/j.jqsrt.2011.03.019.
Cahalan, R. F., L. Oreopoulos, A. Marshak, K. F. Evans, A. B. Davis, R. Pincus, K. H. Yetzer, B. Mayer, R. Davies, T. P. Ackerman, H. W. Barker, E. E. Clothiaux, R. G. Ellingson, M. J. Garay, E. K. Assianov, S. Kinne, A. Macke, W. O'Hirok, P. T. Partain, S. M. Prigarin, A. N. Rublev, G. L. Stephens, F. Szczap, E. E. Takara, T. Várnai, G. Wen, and T. B. Zhuravleva (2005), The I3RC. Bringing Together the Most Advanced Radiative Transfer Tools for Cloudy Atmospheres, Bull. Amer. Met. Soc., 86(9), 1275–1293, doi:10.1175/BAMS-86-9-1275.
Evans, K. F. (1998), The Spherical Harmonics Discrete Ordinate Method for Three-Dimensional Atmospheric Radiative Transfer, J. Atmos. Sci., 55, 429–446.
Evans, K. F. (1111), The Spherical Harmonic Discrete Ordinate Method: Application to 3D Radiatve Transfer in Boundary Layer Clouds, University of Colorado.
Haferman, J. L., T. F. Smith, and W. F. Krajewski (1997), A multi-dimensional discrete-ordinates method for polarised radiative transfer. Part I: Validation for randomly oriented axisymmetric particles, J. Quant. Spectrosc. Radiat. Transfer, 58, 379–398.
Hu, Y.-X., B. Wielicki, B. Lin, G. Gibson, S.-C. Tsay, K. Stamnes, and T. Wong (2000), δ-Fit: A fast and accurate treatment of particle scattering phase functions with weighted singular-value decomposition least-squares fitting, J. Quant. Spectrosc. Radiat. Transfer, 65(4), 681–690, doi:10.1016/S0022-4073(99)00147-8.
Li, H.-S. and G. Flamant an J.-D. Lu (2004), A new discrete ordinate algorithm for computing radiative transfer in one-dimensional atmospheres, J. Quant. Spectrosc. Radiat. Transfer, 83, 407–421.
Liou, K.-L. (1973), A Numerical Experiment on Chandrasekhar's Discrete-Ordinate Method for Radiative Transfer: Applications to Cloudy and Hazy Atmospheres, J. Atmos. Sci., 30, 1303–1314.
Min, Q. (2004), A successive order of scattering model for solving vector radiative transfer in the atmosphere, J. Quant. Spectrosc. Radiat. Transfer, 87(3-4), 243–259, doi:10.1016/j.jqsrt.2003.12.019.
Mishra, S. C., H. K. Roy, and N. Misra (2006), Discrete ordinate method with a new and a simple quadrature scheme, J. Quant. Spectrosc. Radiat. Transfer, 101, 249–262, doi:10.1016/j.jqsrt.2005.11.018.
Schulz, F. M. and K. Stamnes (2000), Angular distribution of the Stokes vector in a plane-parallel, vertically inhomogeneous medium in the vector discrete ordinate radiative transfer (VDISORT) model, J. Quant. Spectrosc. Radiat. Transfer, 65, 609–620.
Schulz, F. M., K. Stamnes, and F. Weng (1999), VDISORT: An improved and generalized discrete ordinate method for polarized (vector) radiative transfer, J. Quant. Spectrosc. Radiat. Transfer, 61(1), 105–122.
Spurr, R. J. S., T. P. Kurosu, and K. V. Chance (2001), A linearized discrete ordinate radiative transfer model for atmospheric remote-sensing retrieval, J. Quant. Spectrosc. Radiat. Transfer, 68, 689–735.
Spurr, R. J. D. (2006), VLIDORT: A linearized pseudo-spherical vector discrete ordinate radiative transfer code for forward model and retrieval studies in multilayer multiple scattering media, J. Quant. Spectrosc. Radiat. Transfer, 102(2), 316–342, doi:10.1016/j.jqsrt.2006.05.005.
Stamnes, K., S.-C. Tsay, and I. Laszlo (2000), DISORT, a General-Purpose Fortran Program for Discrete-Ordinate-Method Radiative Transfer in Scattering and Emitting Layered Media: Documentation of Methodology, Dept. of Physics and Engineering Physics Stevens Institute of Technology,NASA Goggard Space Flight Center, Department of Meteorology University of Maryland.
Stamnes, K., S.-C. Tsay, W. Wiscombe, and K. Jayaweera (1988), Numerically stable algorithm for discrete-ordinate-method radiative transfer in multiple scattering and emitting layered media, Appl. Opt., 27(12), 2502–2509, doi:10.1364/AO.27.002502.
Zhai, P.-W., Y. Hu, C. R. Trepte, and P. L. Lucker (2009), A vector radiative transfer model for coupled atmosphere and ocean systems based on successive order of scattering method, Opt. Express, 17(4), 2057–2079, doi:10.1364/OE.17.002057.