1. Hajlaoui, N. and I. Jabri, "On the performance of IEEE 802.11n protocol," 2012 5th Joint IFIP Wireless and Mobile Networking Conference (WMNC), 64-69, 2012.
doi:10.1109/WMNC.2012.6416145 Google Scholar
2. Paul, T. K. and T. Ogunfunmi, "Wireless LAN comes of age: Understanding the IEEE 802.11n amendment," IEEE Circuits and Systems Magazine, Vol. 8, No. 1, 28-54, 2008.
doi:10.1109/MCAS.2008.915504 Google Scholar
3. Zhang, K., et al. "The study of multi-user diversity technology over the MIMO-OFDM system," 4th International Conference on Wireless Communications, Networking and Mobile Computing, WiCOM’08, 1-4, 2008.
doi:10.1002/wcm.422 Google Scholar
4. Shittu, W. A., et al. "Prediction of received signal power and propagation path loss in open/rural environments using modified free-space loss and Hata models," IEEE International RF and Microwave Conference, RFM 2008, 126-130, 2008.
doi:10.1109/RFM.2008.4897406 Google Scholar
5. Sklar, B., "Rayleigh fading channels in mobile digital communication systems. I. Characterization," IEEE Communications Magazine, Vol. 35, No. 7, 90-100, 1997.
doi:10.1109/35.601747 Google Scholar
6. Almorox-González, P. and J. I. Alonso, "Software tool for planning wireless local area networks (WLAN)," The European Conference on Wireless Technology, 387-390, 2005. Google Scholar
7. Li, M. and D. Wang, "Indoor coverage performance comparison between IEEE 802.11g and IEEE 802.11ah of wireless nodes in M2M network," Internet of Vehicles --- Technologies and Services, Vol. 8662, 211-217, Springer International Publishing, 2014. Google Scholar
8. Lopez-Perez, D. and M. Folke, "3 system-level simulation and evaluation models," Heterogeneous Cellular Networks: Theory, Simulation and Deployment, 57, 2013.
doi:10.1017/CBO9781139149709.006 Google Scholar
9. International Telecommunications Union, Radiocommunications Bureau "Recommendation ITU-R P.1411-5 Propagation Data and Predictions,", 2013. Google Scholar
10. Thiagarajah, S. P., A. Ting, D. Chieng, M. Y. Alias, and T. S. Wei, "User data rate enhancement using heterogeneous LTE-802.11n offloading in urban area. Methods for the planning of short-range outdoor radiocommunication systems and radio local area networks in the frequency range 300 MHz to 100 GHz," IEEE Symposium on Wireless Technology and Applications (ISWTA), 11-16, Sep. 2013.
doi:10.1109/ISWTA.2013.6688750 Google Scholar
11. Sommer, C. and F. Dressler, "Using the right two-ray model? A measurement based evaluation of PHY models in VANETs," Proc. ACM MobiCom., 1-3, 2011. Google Scholar
12. International Telecommunications Union, Radiocommunications Bureau "Recommendation ITU-R P.1546-5 method for point-to-area predictions for terrestrial services in the frequency range 30 MHz to 3000 MHz,", 2013. Google Scholar
13. Datasheet of Wireless N Router TL-WR841HP, , www.tp-link.com.
14. Othman, A. R., A. A. Abd Aziz, K. Pongot, N. A. Shairi, and M. N. Mohd Nor, "Design and sensitivity analysis of direct conversion RF receiver for IEEE 802.11a WLAN system at 5.8 GHz frequency," 2012 IEEE Student Conference on Research and Development (SCOReD), 262-265, Dec. 5-6, 2012. Google Scholar
15. Salo, J., L. Vuokko, H. M. El-Sallabi, and P. Vainikainen, "An additive model as a physical basis for shadow fading," IEEE Transactions on Vehicular Technology, Vol. 56, No. 1, 13-26, Jan. 2007.
doi:10.1109/TVT.2006.883797 Google Scholar