901
Views
20
CrossRef citations to date
0
Altmetric
Review Article

Millimeter-Wave in the Face of 5G Communication Potential Applications

ORCID Icon, , ORCID Icon & ORCID Icon

REFERENCES

  • Y. Niu, Y. Li, D. Jin, L. Su, and A. V. Vasilakos, “A survey of millimeter-wave communications (mmWave) for 5G: Opportunities and challenges,” Wirel. Netw., Vol. 21, pp. 2657–2676, 2015. doi: 10.1007/s11276-015-0942-z
  • M. Ishtiaq, et al., “Performance investigation of SR-HARQ transmission scheme in realistic cognitive radio system,” in 2019 IEEE 9th Annual Computing and Communication Workshop and Conference (CCWC), 2019, IEEE.
  • P. Sharma, “Evolution of mobile wireless communication networks-1G to 5G as well as future prospective of next-generation communication network,” Int. J. Comput. Sci. Mob. Compu., Vol. 2, pp. 47–53, 2013.
  • O. T. Eluwole, N. Udoh, M. Ojo, C. Okoro, and A. J. Akinyoade, “From 1G to 5G, what next?,” IAENG Int. J. Comput. Sci., Vol. 45, no. 3, pp. 413–434, 2018.
  • M. Vaezi, Z. Ding, and H. V. Poor. Multiple Access Techniques for 5G Wireless Networks and Beyond. Villanova, PA: Springer, 2019.
  • M. Attaran, “5G wireless: A transformative, disruptive technology,” Ind. Manage., Vol. 61, no. 3, pp. 16–21, 2019.
  • O. Idowu-Bismark, et al., “5G wireless communication network architecture and its key enabling technologies,” Int. Rev. Aerospace Eng. (I. RE. AS. E), Vol. 12, no. 2, pp. 70–82, 2019.
  • G. A. Akpakwu, B. J. Silva, G. P. Hancke, and A. M. Abu-Mahfouz, “A survey on 5G networks for the Internet of things: Communication technologies and challenges,” IEEE. Access., Vol. 6, pp. 3619–3647, 2018. doi: 10.1109/ACCESS.2017.2779844
  • A. A. Smith-Ditizio, and A. D. Smith, “Exploring the growth of wireless communications systems and challenges facing 4G networks,” in Encyclopedia of Information Science and Technology, 4th ed. Texas: IGI Global, 2018, pp. 6094–6105.
  • Bleicher, “The 5G phone future [News],” IEEE Spectr., Vol. 50, pp. 15–16, 2013.
  • M. Khojastepour, et al. Managing Analog Beams in mmWave Networks. Pacific Grove, CA: Google Patents, 2019.
  • N. Islam, and A. W. A. Wahab, “5G networks: A holistic view of enabling technologies and research challenges,” in Enabling Technologies and Architectures for Next-Generation Networking Capabilities. Malaya, Malaysia: IGI Global, 2019, pp. 37–70.
  • S. K. Saha, et al., “X60: A programmable testbed for wideband 60 GHz WLANs with phased arrays,” Comput. Commun., Vol. 133, pp. 77–88, 2019. doi: 10.1016/j.comcom.2018.09.005
  • I. Ahmed, H. Khammari, A. Shahid, A. Musa, K. S. Kim, E. De Poorter, and I. Moerman, “A survey on hybrid beamforming techniques in 5G: Architecture and system model perspectives,” IEEE Commun. Surv. Tutorials, Vol. 20, pp. 3060–3097, 2018. doi: 10.1109/COMST.2018.2843719
  • E. Bjornson, L. Van der Perre, S. Buzzi, and E. G. Larsson, “Massive MIMO in sub-6 GHz and mmWave: Physical, practical, and use-case differences,” IEEE Wirel. Commun., Vol. 26, no. 2, pp. 100–108, 2019. doi: 10.1109/MWC.2018.1800140
  • R. J. Baker. CMOS: Circuit Design, Layout, and Simulation. Wiley-IEEE press, 2019.
  • G. Brown, “Exploring the potential of mmWave for 5G mobile access,” White Paper, pp. 2–12, 2016.
  • M. J. Jeong, N. Hussain, J. W. Park, S. G. Park, S. Y. Rhee, and N. Kim, “Millimeter-wave microstrip patch antenna using a vertically coupled split ring metal plate for gain enhancement,” Microw. Opt. Technol. Lett., Vol. 61, no. 10, pp. 2360–2365, 2019. doi: 10.1002/mop.31908
  • Z. Pi, F. Khan, and J. Zhang. Techniques for Millimeter-Wave Mobile Communication. San Jose, CA: Google Patents, 2019.
  • W. A. G. Khawaja, et al., “Effect of passive reflectors for enhancing coverage of 28 GHz mmWave systems in an outdoor Setting,” in 2019 IEEE Radio and Wireless Symposium (RWS), 2019: IEEE.
  • K. Sato, and T. Manabe, “Estimation of propagation-path visibility for indoor wireless LAN systems under shadowing condition by human bodies,” in 48th IEEE Vehicular Technology Conference, May 1998, pp. 2109–2113.
  • K. Dong, X. Liao, and S. Zhu, “Link blockage analysis for indoor 60 GHz radio systems,” Electron. Lett., Vol. 48, no. 23, pp. 1506–1508, 2012. doi: 10.1049/el.2012.2994
  • Z. Genc, et al., “Robust 60 GHz indoor connectivity: is it possible with reflections?,” in 2010 IEEE 71st Vehicular Technology Conference (Taipei, Taiwan), May 16–19, 2010, pp. 1–5.
  • C. Yiu, and S. Singh, “Empirical capacity of mmWave WLANs,” IEEE J. Sel. Areas Commun., Vol. 27, no. 8, pp. 1479–1487, October 2009. doi: 10.1109/JSAC.2009.091017
  • X. An, et al., “Beam switching support to resolve link-blockage problem in 60 GHz WPANs,” in 2009 IEEE 20th International Symposium on Personal, Indoor and Mobile Radio Communications (Tokyo, Japan), Sept. 13–16, 2009, pp. 390–394.
  • M. Park, and H. K. Pan, “A spatial diversity technique for IEEE 802.11ad WLAN in 60 GHz band,” IEEE Commun. Lett., Vol. 16, no. 8, pp. 1260–1262, Aug. 2012. doi: 10.1109/LCOMM.2012.060112.120793
  • Z. Xiao, “Suboptimal spatial diversity scheme for 60 GHz millimeter-wave WLAN,” IEEE Commun. Lett., Vol. 17, no. 9, pp. 1790–1793, September 2013. doi: 10.1109/LCOMM.2013.071813.131181
  • Z. Lan, et al., “Directional relay with spatial time slot scheduling for mmWave WPAN systems,” in 2010 IEEE 71st Vehicular Technology Conference, Proc. VTC-Spring 2010 (Taipei, Taiwan), 1–5, May 16–19, 2010.
  • C. Zhang, W. Zhang, W. Wang, L. Yang, and W. Zhang, “Research challenges and opportunities of UAV millimeter-wave communications,” IEEE Wirel. Commun., Vol. 26, pp. 58–62, 2019. doi: 10.1109/MWC.2018.1800214
  • S. Andreev, et al., “Future of ultra-dense networks beyond 5G: Harnessing heterogeneous moving cells,” IEEE Commun. Mag., Vol. 57, no. 6, 2019.
  • D. Zhao, et al., “5G Millimeter-wave phased-array transceiver: System considerations and circuit implementations,” in 2019 IEEE International Symposium on Circuits and Systems (ISCAS), 2019, pp. 1–4.
  • H. Kotecha, and J. C. Mundarath. Method and Apparatus for Fast and Robust Cell Search for 5G and Millimeter-Wave Wireless Communication Systems. CA, USA: Google Patents, 2019.
  • W. A. G. Khawaja, et al., “Effect of passive reflectors for enhancing coverage of 28 GHz mmWave systems in an outdoor setting,” in 2019 IEEE Radio and Wireless Symposium (RWS), 2019, pp. 1–4.
  • C. Han, X. Zhang, and X. Wang, “On medium access control schemes for wireless networks in the millimeter-wave and Terahertz bands,” Nano. Commun. Netw., Vol. 19, pp. 67–80, 2019. doi: 10.1016/j.nancom.2018.11.003
  • M. Thumm. State-of-the-Art of High Power Gyro-Devices and Free Electron Masers. Update 2017 (KIT Scientific Reports; 7750). Vol. 7750. Karlsruhe, Germany: KIT Scientific Publishing, 2018.
  • IEEE doc. 11-09-0334-08-00ad, “Channel Models for 60 GHz WLAN systems,” May 2010.
  • L. Lu, X. Zhang, R. Funada, C. S. Sum, and H. Harada, “Selection of modulation and coding schemes of single carrier PHY for 802.11 ad multi-gigabit mmWave WLAN systems,” in 2011 IEEE Symposium on Computers and Communications (ISCC), June 2011, pp. 348–352.
  • Y. Bejerano, and R. Bhatia, “Mifi: A framework for fairness and QoS assurance in current IEEE 802.11 networks with multiple access points,” IEEE Trans. Network., Vol. 14, no. 4, pp. 849–862, Aug. 2006. doi: 10.1109/TNET.2006.880161
  • W. Arbaugh, A. Mishra, and M. Shin, “An empirical analysis of the IEEE 802.11 mac layer handoff process,” ACM SIGCOMM Comput. Commun. Rev., Vol. 33, no. 2, pp. 93–102, Apr. 2003. doi: 10.1145/956981.956990
  • Y. Bejerano, S. Han, and L. Li, “Fairness and load balancing in wireless lans using association control,” IEEE Trans. Network., Vol. 15, no. 3, pp. 560–573, June 2007. doi: 10.1109/TNET.2007.893680
  • G. Athanasiou, C. Weeraddana, C. Fischione, and L. Tassiulas, “Optimizing client association in 60GHz wireless access networks,” in IEEE/ACM Trans. Netw., to Appear in 2015.
  • S. Hong, et al., “Estimating rain attenuation at 72 and 84 GHz from raindrop size distribution measurements in Albuquerque, NM, USA,” IEEE Geosci. Remote Sens. Lett., Vol. 16, no. 8, pp. 1175–1179, 2019. doi: 10.1109/LGRS.2019.2893906
  • H. Yan, S. Ramesh, T. Gallagher, C. Ling, and D. Cabric, “Performance, power, and area design trade-offs in millimeter-wave transmitter beamforming architectures,” IEEE Circuits Syst. Mag., Vol. 19, pp. 33–58, 2019. doi: 10.1109/MCAS.2019.2909447
  • C. Wiltse, “History of millimeter and submillimeter waves,” IEEE Trans. Microwave Theory Tech., Vol. 32, pp. 1118–1127, 1984. doi: 10.1109/TMTT.1984.1132823
  • P. Smulders, “Exploiting the 60 GHz band for local wireless multimedia access: prospects and future directions,” IEEE Commun. Mag., Vol. 40, pp. 140–147, 2002. doi: 10.1109/35.978061
  • S. Tatu, et al., “Ultra wideband frequency division multiplexing millimeter-wave multi-port receiver analysis,” in 2009 European Wireless Technology Conference, 2009, pp. 108–111.
  • N. K. Mallat, et al., “Millimeter-wave ultra-wideband six-port receiver using cross-polarized antennas,” EURASIP J. Wirel. Commun. Netw., Vol. 2009, pp. 25, 2009. Available: https://jwcn-eurasipjournals.springeropen.com/articles/10 .1155/2009/508678
  • J. Wenger, “Automotive radar-status and perspectives,” in IEEE Compound Semiconductor Integrated Circuit Symposium, 2005. CSIC’05., 2005, p. 4.
  • J. Hasch, E. Topak, R. Schnabel, T. Zwick, R. Weigel, and C. Waldschmidt, “Millimeter-wave technology for automotive radar sensors in the 77 GHz frequency band,” IEEE Trans. Microwave Theory Tech., Vol. 60, pp. 845–860, 2012. doi: 10.1109/TMTT.2011.2178427
  • L. Han, and K. Wu, “Multifunctional transceiver for future intelligent transportation systems,” IEEE Trans. Microwave Theory Tech., Vol. 59, pp. 1879–1892, 2011. doi: 10.1109/TMTT.2011.2138156
  • H. Rohling, and E. Lissel, “77 GHz radar sensor for car application,” in Proceedings International Radar Conference, 1995, pp. 373–379.
  • K. Van Caekenberghe, et al., “A 94 GHz OFDM frequency scanning radar for autonomous landing guidance,” in 2007 IEEE Radar Conference, 2007, pp. 248–253.
  • B. Mencia-Oliva, J. Grajal, O. A. Yeste-Ojeda, G. Rubio-Cidre, and A. Badolato, “Low-cost CW-LFM radar sensor at 100 GHz,” IEEE Trans. Microwave Theory Tech., Vol. 61, pp. 986–998, 2012. doi: 10.1109/TMTT.2012.2235457
  • R. Appleby, and R. N. Anderton, “Millimeter-wave and submillimeter-wave imaging for security and surveillance,” Proc. IEEE, Vol. 95, pp. 1683–1690, 2007. doi: 10.1109/JPROC.2007.898832
  • M. Terroux, et al., “Millimeter/submillimeter wave video imaging using a THz camera for outdoor conditions,” in 2016 41st International Conference on Infrared, Millimeter, and Terahertz waves (IRMMW-THz), 2016, pp. 1–2.
  • H. Işiker, C. Ozdemir, and I. Unal, “Millimeter-wave band radiometric imaging experiments for the detection of concealed objects,” 2015 IEEE Radar Conference, IEEE, 23–26, 2015. doi: 10.1109/RadarConf.2015.7411847
  • I. McAuley, et al., “Millimetre-wave and terahertz imaging systems with medical applications,” in 2006 Joint 31st International Conference on Infrared Millimeter Waves and 14th International Conference on Teraherz Electronics, 2006, pp. 371–371.
  • K. Y. Chan, and R. Ramer, “Millimetre-wave near field probe for skin defects detection,” in 2015 International Conference on Electromagnetics in Advanced Applications (ICEAA), 2015, pp. 1392–1395.
  • A. Nanzer, “A review of microwave wireless techniques for human presence detection and classification,” IEEE Trans. Microwave Theory Tech., Vol. 65, pp. 1780–1794, 2017. doi: 10.1109/TMTT.2017.2650909

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.