1. Foschini, G. J., "Layered space-time architecture for wireless communication in a fading environment when using multiple antennas," Bell Labs. Technical Journal, Vol. 1, No. 2, 41-59, 1996.
doi:10.1002/bltj.2015 Google Scholar
2. Foschini, G. J. and M. J. Gans, "On limits of wireless communications in a fading environment when using multiple antennas," Wireless Personal Communications, Vol. 6, No. 3, 311-335, 1998.
doi:10.1023/A:1008889222784 Google Scholar
3. Gesbert, D., M. Shafi, D. Shiu, P. J. Smith, and A. Naguib, "From theory to practice: An overview of MIMO space-time coded wireless systems," IEEE J. Slect. Areas Commun., Vol. 21, No. 3, 281-302, 2003.
doi:10.1109/JSAC.2003.809458 Google Scholar
4. Varzakas, P., "Average channel capacity for rayleigh fading spread spectrum MIMO systems," International Journal of Communication Systems, Vol. 19, No. 10, 1081-1087, December 2006.
doi:10.1002/dac.784 Google Scholar
5. Mecklenbrauker, C. F., M. Matthaiou, and M. Viberg, "Eigenbeam transmission over line-of-sight MIMO channels for fixed microwave links," International ITG Workshop on Smart Antennas, Apachen, Germany, February 24-25, 2011. Google Scholar
6. Tryggvi, I. and H. Liu, Line-of-sight MIMO for microwave links: adaptive dual polarized and spatially separated systems, Master of Science Thesis, Chalmers University of Technology, Sweden, July 2009.
7. Walkenhorst, B. T., , PhD dissertation, Georgia Institute of Technology, August 2009.
8. Sheldon, C., E. Torkildson, M. Seo, C. P. Yue, U. Madhow, and M. Rodwell, "A 60 GHz line-of-sight 2 x 2 MIMO link operating at 1.2 Gbps," Antenna and Propagation Society International Symposium, San Diego, CA, USA, July 5-11, 2008. Google Scholar
9. Sheldon, C., M. Seo, E. Torkildson, and U. Madhow, "A 2.4 Gb/s millimeter-wave link using adaptive spatial multiplexing," Antenna and Propagation Society International Symposium, Toronto, ON, Canada, July 11-17, 2010. Google Scholar
10. Sheldon, C., M. Seo, E. Torkildson, M. Rodwell, and U. Madhow, "Four-channel spatial multiplexing over a millimeter-wave line-of-sight link," IEEE MTT-S International, 389-392, Boston, MA, June 7-June 12, 2009. Google Scholar
11. BΦhagen, F., P. Orten, and G. Φien, "Optimal design of uniform rectangular antenna arrays for strong line-of-sight MIMO channels," EURASIP Journal on Wireless Communications and Networking, Article ID 45084, 2007.
doi:10.1155/2007/45084 Google Scholar
12. Reggiani, L., B. Baccetti, and L. Dossi, "The role of adaptivity in MIMO line-of-sight systems for high capacity backhauling," Wireless Personal Communications, Vol. 74, No. 2, 373-389, January 2014.
doi:10.1007/s11277-013-1290-x Google Scholar
13. Gesbert, D. and J. Akhtar, "Transmittin over ill-conditioned MIMO channels: From spatial to constellation multiplexing," Smart Antennas: State of the Art (Eurasip Book Series on Signal Processing & Communications), Hindawi Publishing Corporation, December 2005. Google Scholar
14. Balanis, C. A., Antenna Theory: Analysis and Design, 2nd Ed., John Wiley & Sons, Inc., 1996.
15. Pozar, D. M., Microwave Engineering, 4th Ed., Wiley, 2011.
16. Recioui, A. and H. Bentarzi, "Capacity optimization of MIMO wireless communication systems using a hybrid genetic-taguchi algorithm," Wireless Personal Communications, Vol. 71, No. 2, 1003-1019, July 2013.
doi:10.1007/s11277-012-0857-2 Google Scholar
17. Jalden, J., Maximum likelihood detection for the linear MIMO channel, thesis, Royal Institute of Technology, Sweden, 2004.
18. Lomnitz, Y. and D. Andelman, "Efficient maximum likelihood detector for MIMO systems with small number of streams," Electronics Letters, Vol. 43, No. 22, October 2007. Google Scholar