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Towards 6G wireless networks-challenges and potential technologies


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[1] B. Zong, C. Fan, X. Wang, X. Duan, B. Wang, and J. Wang, “6G Technologies: Key Drivers, Core Requirements, System Architectures, and Enabling Technologies”, IEEE Vehicular Technology Magazine, vol. 14, no. 3, pp. 18-27, Sept. 2019.10.1109/MVT.2019.2921398Search in Google Scholar

[2] Z. Zhang et al “6G Wireless Networks: Vision, Requirements, Architecture, and Key Technologies”, IEEE Vehicular Technology Magazine, vol. 14, no. 3, pp. 28-41, Sept. 2019.10.1109/MVT.2019.2921208Search in Google Scholar

[3] E. Calvanese-Strinati et al “6G: The Next Frontier: From Holo- graphic Messaging to Artificial Intelligence Using Subterahertz and Visible Light Communication”, IEEE Vehicular Technology Magazine, vol. 14, no. 3, pp. 42-50, Sept. 2019.10.1109/MVT.2019.2921162Search in Google Scholar

[4] M. A. Matin, ed. Handbook of Research on Progressive Trends Wireless Communications and Networking, IGI Global, 2014.10.4018/978-1-4666-5170-8Search in Google Scholar

[5] T. Huang, W. Yang, J. Wu, J. Ma, X. Zhang, and D. Zhang, “A Survey on Green 6G Network: Architecture and Technologies”, IEEE Access, vol. 7, pp. 175758-175768, 2019.Search in Google Scholar

[6] M. Sha, A. F. Molisch, P. J. Smith, T. Haustein, P. Zhu, P. De Silva, F. Tufvesson, A. Benjebbour, and G. Wunder, “5G: A tutorial overview of standards, trials, challenges, deployment, and practice”, IEEE J. Sel. Areas Commun., vol. 35, no. 6, pp. 1201-1221, June 2017.Search in Google Scholar

[7] L. Zhang, Y. Liang, and D. Niyato, “6G Visions: Mobile ultra-broadband, super internet-of-things, and artificial intelligence”, China Communications, vol. 16, no. 8, pp. 1-14, August 2019.10.23919/JCC.2019.08.001Search in Google Scholar

[8] W. Saad, M. Bennis, and M. Chen, “A Vision of 6G Wireless Systems: Applications, Trends, Technologies, and Open Research Problems”, IEEE Network, vol. 34, no. 3, pp. 134-142, May/June 2020.10.1109/MNET.001.1900287Search in Google Scholar

[9] H. Ullah, N. Gopalakrishnan Nair, A. Moore, C. Nugent, P. Muschamp, and M. Cuevas, “5G Communication: An Overview of Vehicle-to-Everything, Drones, and Healthcare Use-Cases”, IEEE Access, vol. 7, pp. 37251-37268, 2019.Search in Google Scholar

[10] H. Ye, L. Liang, G. Ye Li, J. Kim, L. Lu, and M. Wu, “Machine Learning for Vehicular Networks: Recent Advances and Application Examples”, IEEE Vehicular Technology Magazine, vol. 13, no. 2, pp. 94-101, June 2018.10.1109/MVT.2018.2811185Search in Google Scholar

[11] E. Steinbach et al “Haptic Communications”, Proceedings of the IEEE, vol. 100, no. 4, pp. 937-956, April 2012.10.1109/JPROC.2011.2182100Search in Google Scholar

[12] E. Bastug, M. Bennis, M. M edard, and M. Debbah, “Toward interconnected virtual reality: Opportunities, challenges, and enablers, ”,IEEE Commun. Mag., vol. 55, pp. 110-117, June 2017.10.1109/MCOM.2017.1601089Search in Google Scholar

[13] R. Li, “Network 2030: Market drivers and prospects, ”, Proc. 1st International Telecommunication Union Workshop on Network 2030, New York, Oct. 2018. [Online].Search in Google Scholar

[14] G. Berardinelli, N. H. Mahmood, I. Rodriguez Larrad, and P. E. Mogensen, “Beyond 5G wireless IRT for Industry 4. 0: Design principles and spectrum aspects, ”, Proc. IEEE Global Communications Conf. Workshops, 2018.10.1109/GLOCOMW.2018.8644245Search in Google Scholar

[15] Y. Dai, D. Xu, S. Maharjan, Z. Chen, Q. He, and Y. Zhang, “Blockchain and Deep Reinforcement Learning Empowered Intelligent 5G Beyond”, IEEE Network, vol. 33, no. 3, pp. 10-17, May/June 2019.10.1109/MNET.2019.1800376Search in Google Scholar

[16] I. Ahmad, S. Shahabuddin, T. Kumar, J. Okwuibe, A. Gurtov, and M. Ylianttila, “Security for 5G and Beyond”, IEEE Communications Surveys & Tutorials, vol. 21, no. 4, pp. 3682-3722, Fourthquarter 2019.Search in Google Scholar

[17] S. K. Rao and R. K. Prasad, “Impact of 5G Technologies on Smart City Implementation, ”, Wireless Personal Communications, vol. 100, pp. 161176, May 2018.Search in Google Scholar

[18] K. B. Letaief, W. Chen, Y. Shi, J. Zhang, and Y. A. Zhang, “The Roadmap to 6G: AI Empowered Wireless Networks”, IEEE Communications Magazine, vol. 57, no. 8, pp. 84-90, August 2019.10.1109/MCOM.2019.1900271Search in Google Scholar

[19] S. J. Nawaz, S. K. Sharma, S. Wyne, M. N. Patwary, and M. Asaduzzaman, “Quantum Machine Learning for 6G Communication Networks: State-of-the-Art and Vision for the Future”, IEEE Access, vol. 7, pp. 46317-46350, 2019.Search in Google Scholar

[20] A. Yastrebova, R. Kirichek, Y. Koucheryavy, A. Borodin, and A. Koucheryavy, “Future Networks 2030: Architecture & Requirements”, 2018 10th International Congress on Ultra Modern Telecommunications and Control Systems and Workshops (ICUMT), Moscow, Russia, 2018, pp. 1-8.10.1109/ICUMT.2018.8631208Search in Google Scholar

[21] T. S. Rappaport et al “Wireless Communications and Applications Above 100 GHz: Opportunities and Challenges for 6G and Beyond”, IEEE Access, vol. 7, pp. 78729-78757, 2019.Search in Google Scholar

[22] M. Katz, M. Matinmikko-Blue, and M. Latva-Aho, “6Genesis Flagship Program: Building the Bridges Towards 6G-Enabled Wireless Smart Society and Ecosystem”, 2018 IEEE 10th Latin-American Conference on Communications (LATINCOM), Guadalajara, 2018, pp. 1-9.10.1109/LATINCOM.2018.8613209Search in Google Scholar

[23] M. Hasan, S. Arezoomandan, H. Condori, and B. Sensale-Rodriguez, “Graphene terahertz devices for communications applications”, Nano Communication Networks, vol. 10, pp. 6878, December 2016.10.1016/j.nancom.2016.07.011Search in Google Scholar

[24] M. Dashti and J. D. Carey, “GrapheneMicrostrip Patch Ultrawide Band Antennas for THz Communications”, Advanced Functional Materials, vol. 28, no. 11, March 2018.10.1002/adfm.201705925Search in Google Scholar

[25] A. S. Cacciapuoti, K. Sankhe, M. Caleffi, and K. R. Chowdhury, “Beyond 5G: THz-Based Medium Access Protocol for Mobile Heterogeneous Networks”, IEEE Communications Magazine, vol. 56, no. 6, pp. 110-115, June 2018.10.1109/MCOM.2018.1700924Search in Google Scholar

[26] I. F. Akyildiz,M. Pierobon, S. Balasubramaniam, and Y. Koucheryavy, “The internet of Bio-Nano things”, IEEE Communications Magazine, vol. 53, no. 3, pp. 32-40, March 2015.10.1109/MCOM.2015.7060516Search in Google Scholar

[27] P. Yang, Y. Xiao, M. Xiao, and S. Li, “6GWireless Communications: Vision and Potential Techniques”, IEEE Network, vol. 33, no. 4, pp. 70-75, July/August 2019.10.1109/MNET.2019.1800418Search in Google Scholar

[28] T. Nakano, Y. Okaie, S. Kobayashi, T. Hara, Y. Hiraoka, and T. Haraguchi, “Methods and Applications of Mobile Molecular Communication”, Proceedings of the IEEE, vol. 107, no. 7, pp. 1442-1456, July 2019.Search in Google Scholar

[29] M. G. Kibria, K. Nguyen, G. P. Villardi, O. Zhao, K. Ishizu, and F. Kojima, “Big Data Analytics, Machine Learning, and Artificial Intelligence Next-Generation Wireless Networks”, IEEE Access, vol. 6, pp. 32328-32338, 2018.Search in Google Scholar

[30] J. Hu et al “Experimental quantum secure direct communication with single photons”, Light: Science & Applications, vol. 5, no. 9, pp. e16144-e16144, 2016.10.1038/lsa.2016.144605992630167186Search in Google Scholar

[31] N. Hosseinidehaj, Z. Babar, R. Malaney, S. X. Ng, and L. Hanzo, “Satellite-Based Continuous-Variable Quantum Communications: State-of-the-Art and a Predictive Outlook”, IEEE Communications Surveys & Tutorials, vol. 21, no. 1, pp. 881-919, Firstquarter 2019.10.1109/COMST.2018.2864557Search in Google Scholar

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