9. References

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Iwabuchi, H., 2006: Efficient Monte Carlo methods for radiative transfer modeling. Journal of the Atmospheric Sciences, 63, No. 9, 2324–2339.

Iwabuchi, H., and H. Kobayashi, 2008: Modeling of radiative transfer in cloudy atmospheres and plant canopies using Monte Carlo methods. FRCGC Technical Report No. 8, 199 pp, 2008.

Iwabuchi, H., T. Suzuki: Fast and accurate radiance calculations for cloudy atmospheres using truncation approximation. In Press, Journal of Quantitative Spectroscopy & Radiative Transfer, doi:10.1016/j.jqsrt.2009.04.006, 2009.

Lucht W., C. B. Schaaf, A. H. Strahler, 2000: An algorithm for the retrieval of albedo from space using semiempirical BRDF models. IEEE Trans. Geosci. Remote Sens. 38, 977–998.

Marchuk GI, Mikhailov GA, Nazaraliev MA, Darbinjan RA, Kargin BA, Elepov BS. The Monte Carlo methods in atmospheric optics. Berlin: Springer Series in Optical Sciences, Springer-Verlag, 208 pp, 1980.

Nakajima, T., and M. Tanaka, 1983: Effect of wind-generated waves on the transfer of solar radiation in the atmosphere-ocean system, J. Quant. Spectrosc. Radiat. Transfer, 29, 521-537.

Nakajima, T., and M. Tanaka 1988: Algorithms for radiative intensity calculations in moderately thick atmospheres using a truncation approximation. J. Quant. Spectrosc. Radiat. Transfer, 40, 51–69.

Rahman, H., B. Pinty, and M. M. Verstraete, 1993: Coupled surface-atmosphere reflectance (CSAR) model. 2. Semiempirical surface model usable with NOAA advanced very high resolution radiometer data, J. Geophys. Res., 98, 20,791–20,801.

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