5G INTEGRATED MOBILE SATELLITE SERVICE WITH HIGH ENERGY EFFICIENCY
PDF
PDF

How to Cite

Chen, Joy Iong-Zong. 2019. “5G INTEGRATED MOBILE SATELLITE SERVICE WITH HIGH ENERGY EFFICIENCY”. IRO Journal on Sustainable Wireless Systems 1 (3): 189-97. https://doi.org/10.36548/jsws.2019.3.005.

Keywords

— 5G
— Mobile Satellite Service
— Energy Efficiency
— Wireless Communication
— wireless network
Published: 30-09-2019

Abstract

Communication technology is moving towards its next generation network and 5G implementation. 5G provides high resource efficiency, continuity, reduced power consumption and increased resilience. This technology is integrated with mobile satellite service (MSS). This new architecture improves the commercial value proposition of the network, provide optimal performance and energy efficiency. It improvises the ubiquity, mobility, broadcast and security features of the existing communication system. It also provides an efficient broadband connectivity in moving platforms and good broadcast services. The long propagation delay of MSS is also addressed in this paper. We also the meet the increased backhaul demands thereby saving physical sites on ground.

References

  1. Liolis, Konstantinos, Alexander Geurtz, Ray Sperber, Detlef Schulz, Simon Watts, Georgia Poziopoulou, Barry Evans et al. "Use cases and scenarios of 5G integrated satellite‐terrestrial networks for enhanced mobile broadband: The SaT5G approach." International Journal of Satellite Communications and Networking 37, no. 2 (2019): 91-112.
  2. Lee, Yonghwa, and Jihwan P. Choi. "Performance Evaluation of High-Frequency Mobile Satellite Communications." IEEE Access 7 (2019): 49077-49087.
  3. Khalili, Hamzeh, Pouria Sayyad Khodashenas, Carolina Fernandez, Daniel Guija, Konstantinos Liolis, Christos Politis, Gint Atkinson et al. "Benefits and Challenges of Software Defined Satellite-5G Communication." In 2019 15th Annual Conference on Wireless On-demand Network Systems and Services (WONS), pp. 1-4. IEEE, 2019.
  4. Evans, Barry G. "The role of satellites in 5G." In 2014 7th Advanced Satellite Multimedia Systems Conference and the 13th Signal Processing for Space Communications Workshop (ASMS/SPSC), pp. 197-202. IEEE, 2014.
  5. Vassaki, Stavroula, Athanasios D. Panagopoulos, and Philip Constantinou. "Effective capacity and optimal power allocation for mobile satellite systems and services." IEEE Communications Letters 16, no. 1 (2011): 60-63.
  6. Wood, Peter. "Mobile satellite services for travellers." IEEE communications Magazine 29, no. 11 (1991): 32-35.
  7. Jia, Min, Xuemai Gu, Qing Guo, Wei Xiang, and Naitong Zhang. "Broadband hybrid satellite-terrestrial communication systems based on cognitive radio toward 5G." IEEE Wireless Communications 23, no. 6 (2016): 96-106.
  8. Mak, Ka Ming, Hau Wah Lai, Kwai Man Luk, and Chi Hou Chan. "Circularly polarized patch antenna for future 5G mobile phones." IEEE Access 2 (2014): 1521-1529.
  9. Zhang, Jiaxin, Xing Zhang, Muhammad Ali Imran, Barry Evans, Yan Zhang, and Wenbo Wang. "Energy efficient hybrid satellite terrestrial 5G networks with software defined features." Journal of Communications and Networks 19, no. 2 (2017): 147-161.
  10. Mahmoud, Korany R., and Ahmed M. Montaser. "Design of dual-band circularly polarised array antenna package for 5G mobile terminals with beam-steering capabilities." IET Microwaves, Antennas & Propagation 12, no. 1 (2017): 29-39.
  11. Orsino, Antonino, Giuseppe Araniti, Pasquale Scopelliti, Irina A. Gudkova, Konstantin E. Samouylov, and Antonio Iera. "Optimal subgroup configuration for multicast services over 5G-satellite systems." In 2017 IEEE International Symposium on Broadband Multimedia Systems and Broadcasting (BMSB), pp. 1-6. IEEE, 2017.
  12. Gineste, Mathieu, Thibault Deleu, Michel Cohen, Nicolas Chuberre, Visvesh Saravanan, Valerio Frascolla, Markus Mueck, Emilio Calvanese Strinati, and Eryk Dutkiewicz. "Narrowband IoT service provision to 5G user equipment via a satellite component." In 2017 IEEE Globecom Workshops (GC Wkshps), pp. 1-4. IEEE, 2017.
  13. Chini, Paolo, Giovanni Giambene, and Sastri Kota. "A survey on mobile satellite systems." International Journal of Satellite Communications and Networking 28, no. 1 (2010): 29-57.
  14. Lunsford, J., R. Thorne, D. Gokhale, W. Garner, and G. Davies. "The AMSC/TMI mobile satellite services (MSS) system ground segment architecture." In 14th International Communication Satellite Systems Conference and Exhibit, p. 1855. 1992.
  15. Lamminen, H. "Mobile satellite systems." Journal of telemedicine and telecare 5, no. 2 (1999): 71-83.
  16. Li, Xichun, Abudulla Gani, Rosli Salleh, and Omar Zakaria. "The future of mobile wireless communication networks." In 2009 International Conference on Communication Software and Networks, pp. 554-557. IEEE, 2009.
  17. Yuan, Jun, Zhendong Li, Man Liu, Xinpeng Lv, and Ying Wang. "A Study on the Coexistence of TD-LTE/5G and Mobile Satellite Service." In 2018 24th Asia-Pacific Conference on Communications (APCC), pp. 119-124. IEEE, 2018.
  18. Liu, Shuaijun, Bo Li, Gaofeng Cui, Xin Hu, and Weidong Wang. "Adaptive Interference Mitigation from IMT-2020 BS to Mobile-Satellite Service." In International Conference on Space Information Network, pp. 66-78. Springer, Singapore, 2017.
  19. Saha, Rony Kumer. "A Hybrid System and Technique for Sharing Multiple Spectrums of Satellite Plus Mobile Systems With Indoor Small Cells in 5G and Beyond Era." IEEE Access 7 (2019): 77569-77596.
  20. Hassan, Syed Ali, Muhammad Shahmeer Omar, Muhammad Ali Imran, Junaid Qadir, and D. N. K. Jayako. "Universal access in 5G networks, potential challenges and opportunities for urban and rural environments." 5G Networks: Fundamental Requirements, Enabling Technologies, and Operations Management (2017).