1. Fung, A. K. and N. C. Kuo, "Backscattering from multi-scale and exponentially correlated surfaces," J. of Electromagn. Waves and Appl., Vol. 20, No. 1, 3-11, 2006.
doi:10.1163/156939306775777378 Google Scholar
2. Chen, K. S., A. K. Fung, J. C. Shi, and H. W. Lee, "Interpretation of backscattering mechanisms from non-Gaussion correlated randomly rough surface," J. of Electromagn. Waves and Appl., Vol. 20, No. 1, 105-118, 2006.
doi:10.1163/156939306775777404 Google Scholar
3. Hsieh, C.-Y. and A. K. Fung, "Depolarized upward and downward multiple scattering from a very rough surface," Progress In Electromagnetics Research, Vol. 54, 199-220, 2005.
doi:10.2528/PIER04100401 Google Scholar
4. Maradudin, A. A., E. R. Mendez, and T. Michel, "Backscattering effects in the elastic scattering of p-polarization light from a large amplitude random grating," Scattering in Volumes and Surfaces, 1990. Google Scholar
5. Nieto-Vesperinas, M. and J. M. Soto-Crespo, "Monte-Carlo simulations for scattering of electromagnetic waves from perfectly conducting random rough surfaces," Optics Letter, Vol. 12, 979-981, 1987. Google Scholar
6. Chen, K. S., L. Tsang, and J. C. Shi, "Microwave mission from two-dimensional inhomogeneous dielectric rough surfaces based on physics-based two-grid method," Progress In Electromagnetics Research, Vol. 67, 181-203, 2007.
doi:10.2528/PIER06082903 Google Scholar
7. Tsang, L., C. H. Chan, and K. Pak, "Backscattering enhancement of a two-dimensional random rough surface (three-dimensional scattering) based on Monte Carlo simulations," Journal of Optical Society of America A, Vol. 11, 711-715, 1994. Google Scholar
8. Pak, K., L. Tsang, and J. Johnson, "Numerical simulations and backscattering enhancement of electromagnetic waves from twodimensional dielectric random rough surfaces with the sparsematrix canonical grid method," Journal of Optical Society of America A, Vol. 14, No. 7, 1515-1529, 1997.
doi:10.1364/JOSAA.14.001515 Google Scholar
9. Tsang, L., C. H. Chan, and K. Pak, "Monte Carlo simulation of a two-dimensional random rough surface using the sparse-matrix flat-surface iterative approach," Electronic Letter, Vol. 29, 1153-1154, 1993.
doi:10.1049/el:19930771 Google Scholar
10. Pak, K., L. Tsang, C. H. Chan, and J. Johnson, "Backscattering enhancement of vector electromagnetic waves from twodimensional perfectly conducting random rough surfaces based on Monte Carlo simulations," Journal of Optics Society of America, Vol. 12, 2491-2499, 1995. Google Scholar
11. Jandhyala, V., E. Michielssen, S. Balasubramaniam, and W. C. Chew, "A combined steepest descent-fast multipole algorithm for the fast analysis of three-dimensional scattering by rough surfaces," IEEE Transactions on Geoscience Remote Sensing, Vol. 36, 738-748, 1998.
doi:10.1109/36.673667 Google Scholar
12. Tsang, L., D. Chen, and P. Xu, "Wave scattering with the UV multilevel partitioning method: 1, two dimensional problem of perfect electric conductor surface scattering," Radio Science, Vol. 39, 2004. Google Scholar
13. Tsang, L., Q Li, P. Xu, et al. "Wave scattering with the UV multilevel partitioning method: 2, three dimensional problem of nonpenerable surface scattering," Radio Science, Vol. 39, 2004. Google Scholar
14. Li, Z. X., "Wave scattering with the UV multilevel partitioning method: three dimensional problem of dielectric rough surface scattering," Microwave and Optical Technology Letter, Vol. 48, 1313-1317, 2006.
doi:10.1002/mop.21613 Google Scholar
15. Tsang, L. and Q. Li, "Wave scattering with the UV multilevel partitioning method for volume scattering by discrete scatters," Microwave and Optical Technology Letter, Vol. 12, 354-361, 2004.
doi:10.1002/mop.20140 Google Scholar
16. Tsang, L., J. A. Kong, K. H. Ding, and C. O. Ao, Scattering of Electromagnetic Waves, Vol. 2: Numerical Simulations, Vol. 2: Numerical Simulations, 2001.