Impact of Joint Transmission (JT) Coordinated Multipoint (CoMP) on Mobile Users in 5G Heterogeneous Network

Show simple item record

dc.contributor.author Tandra, Tahmina Khanom
dc.contributor.author Tajrian, Fehima
dc.contributor.author Hossain, Afia
dc.date.accessioned 2023-05-05T04:27:00Z
dc.date.available 2023-05-05T04:27:00Z
dc.date.issued 2022-05-30
dc.identifier.citation [1] M. Lopa and J. Vora, “EVOLUTION OF MOBILE GENERATION TECHNOLOGY: 1G TO 5G AND REVIEW OF UPCOMING WIRELESS TECHNOLOGY 5G,” 2015. Accessed: May 01, 2022. [Online]. Available: chrome-extension://efaidnbmnnnibpcajpcglclefindmkaj/https://www.ijmter.com/papers/volume-2/issue-10/evolution-of-mobile-generation-technology-1g-to-5g-and-review-of-5g.pdf [2] B. U. Kazi and G. Wainer, “Handover Enhancement for LTE-Advanced and Beyond Heterogeneous Cellular Networks,” 2017. [3] D. Sun, X. Zhu, Z. Zeng and S. Wan, "Downlink power control in cognitive femtocell networks," 2011 International Conference on Wireless Communications and Signal Processing (WCSP), 2011, pp. 1-5, doi: 10.1109/WCSP.2011.6096947.. [4] F. Ashtiani and J. A. Salehi, “Mobility Modeling and Analytical Solution for Spatial Traffic Distribution in Wireless Multimedia Networks,” IEEE Journal on Selected Areas in Communications, vol. 21, no. 10, pp. 1699–1709, Dec. 2003, doi: 10.1109/JSAC.2003.815680. [5] S. Y. Hui and K. Ha. Yeung, "Challenges in the migration to 4G mobile systems," in IEEE Communications Magazine, vol. 41, no. 12, pp. 54-59, Dec. 2003, doi: 10.1109/MCOM.2003.1252799. [6] G. A. Katopis, "Operating frequency trends for high performance off-chip buses," IEEE 8th Topical Meeting on Electrical Performance of Electronic Packaging (Cat. No.99TH8412), 1999, pp. 37-41, doi: 10.1109/EPEP.1999.819189. [7] Y. Zhang, X. Sun and B. Wang, "Efficient algorithm for k-barrier coverage based on integer linear programming," in China Communications, vol. 13, no. 7, pp. 16-23, July 2016, doi: 10.1109/CC.2016.7559071. [8] Y. Saito, A. Benjebbour, Y. Kishiyama and T. Nakamura, "System-level performance evaluation of downlink non-orthogonal multiple access (NOMA)," 2013 IEEE 24th Annual International Symposium on Personal, Indoor, and Mobile Radio Communications (PIMRC), 2013, pp. 611-615, doi: 10.1109/PIMRC.2013.6666209. 54 [9] L. Zhang, M. Xiao, G. Wu, M. Alam, Y. C. Liang, and S. Li, “A Survey of Advanced Techniques for Spectrum Sharing in 5G Networks,” IEEE Wireless Communications, vol. 24, no. 5, pp. 44–51, Oct. 2017, doi: 10.1109/MWC.2017.1700069. [10] Poornima University, Poornima College of Enginering, J. Malaviya National Institute of Technology, and Institute of Electrical and Electronics Engineers, Third International Conference & Workshops on Recent Advances and Innovations in Engineering (ICRAIE-2018) : November 22-25, 2018, venue: Poornima University, Jaipur (Raj.), India. [11] A. Sabharwal, P. Schniter, D. Guo, D. W. Bliss, S. Rangarajan, and R. Wichman, “In-band full-duplex wireless: Challenges and opportunities,” IEEE Journal on Selected Areas in Communications, vol. 32, no. 9, pp. 1637–1652, 2014, doi: 10.1109/JSAC.2014.2330193. [12] M. O. Al-Kadri, Y. Deng, A. Aijaz, and A. Nallanathan, “Full-Duplex Small Cells for Next Generation Heterogeneous Cellular Networks: A Case Study of Outage and Rate Coverage Analysis,” IEEE Access, vol. 5, pp. 8025–8038, 2017, doi: 10.1109/ACCESS.2017.2684542. [13] M. H. D. N. Hindia, F. Qamar, T. Abbas, K. Dimyati, M. S. Abu Talip, and I. S. Amiri, “Interference cancelation for high-density fifth-generation relaying network using stochastic geometrical approach,” International Journal of Distributed Sensor Networks, vol. 15, no. 7, Jul. 2019, doi: 10.1177/1550147719855879. [14] F. Qamar, K. bin Dimyati, M. N. Hindia, K. A. bin Noordin, and A. M. Al-Samman, “A comprehensive review on coordinated multi-point operation for LTE-A,” Computer Networks, vol. 123, pp. 19–37, Aug. 2017, doi: 10.1016/J.COMNET.2017.05.003. [15] M. N. Hindia, F. Qamar, T. A. Rahman, and I. S. Amiri, “A stochastic geometrical approach for full-duplex MIMO relaying model of high-density network,” Ad Hoc Networks, vol. 74, pp. 34–46, May 2018, doi: 10.1016/J.ADHOC.2018.03.005. [16] M. Vaezi, Z. Ding, and H. Vincent Poor, Multiple access techniques for 5G wireless networks and beyond. Springer International Publishing, 2018. doi: 10.1007/978-3-319-92090-0. [17] Z. Yan et al. “Uplink interference management techniques for 3G femtocells.” 2011 IEEE 22nd International Symposium on Personal, Indoor and Mobile Radio Communications (2011): 16-20. [18] V. Abdrashitov, W. Nam and D. Bai, "Rate and UE Selection Algorithms for Interference-Aware Receivers," 2014 IEEE 79th Vehicular Technology Conference (VTC Spring), 2014, pp. 1-5, doi: 10.1109/VTCSpring.2014.7023067. [19] T. Bașar, B. Hajek, Institute of Electrical and Electronics Engineers., IEEE Control Systems Society., University of Illinois at Urbana-Champaign. Coordinated Science Laboratory., and University of Illinois at Urbana-Champaign. Department of Electrical and Computer Engineering., 50th Annual Allerton Conference on Communication, Control, and Computing : October 1-5, 2012. [20] J. G. Andrews et al., “What will 5G be?,” IEEE Journal on Selected Areas in Communications, vol. 32, no. 6, pp. 1065–1082, 2014, doi: 10.1109/JSAC.2014.2328098. [21] A. Ashikhmin, T. L. Marzetta, and L. Li, “Interference Reduction in Multi-Cell Massive MIMO Systems I: Large-Scale Fading Precoding and Decoding.” [22] A. Jamalipour, C. B. Papadias, Institute of Electrical and Electronics Engineers, and IEEE Communications Society, 2017 IEEE International Conference on Communications (ICC Workshops) : 21-25 May 2017. [23] M. Shafi et al., “5G: A tutorial overview of standards, trials, challenges, deployment, and practice,” IEEE Journal on Selected Areas in Communications, vol. 35, no. 6, pp. 1201–1221, Jun. 2017, doi: 10.1109/JSAC.2017.2692307. 55 [24] S. Wu, F. Liu, Z. Zeng, and H. Xia, “Cooperative Sleep and Power Allocation for Energy Saving in Dense Small Cell Networks,” IEEE Access, vol. 4, pp. 6993–7004, 2016, doi: 10.1109/ACCESS.2016.2616165. [25] A. Ghosal and M. Conti, “Security issues and challenges in V2X: A Survey,” Computer Networks, vol. 169, p. 107093, Mar. 2020, doi: 10.1016/J.COMNET.2019.107093. [26] I. Shayea, M. Ergen, M. H. Azmi, S. A. Çolak, R. Nordin, and Y. I. Daradkeh, “Key challenges, drivers and solutions for mobility management in 5G networks: A survey,” IEEE Access, vol. 8, pp. 172534–172552, 2020, doi: 10.1109/ACCESS.2020.3023802. [27] E. Demarchou, C. Psomas, and I. Krikidis, “Mobility Management in Ultra-Dense Networks: Handover Skipping Techniques,” IEEE Access, vol. 6, pp. 11921–11930, Feb. 2018, doi: 10.1109/ACCESS.2018.2810318. [28] D. Muirhead, M. A. Imran, and K. Arshad, “A Survey of the Challenges, Opportunities and Use of Multiple Antennas in Current and Future 5G Small Cell Base Stations,” IEEE Access, vol. 4. Institute of Electrical and Electronics Engineers Inc., pp. 2952–2964, 2016. doi: 10.1109/ACCESS.2016.2569483. [29] I. Bor-Yaliniz and H. Yanikomeroglu, “The New Frontier in RAN Heterogeneity: Multi-Tier Drone-Cells,” IEEE Communications Magazine, vol. 54, no. 11, pp. 48–55, Nov. 2016, doi: 10.1109/MCOM.2016.1600178CM. [30] M. Alsabaan, W. Alasmary, A. Albasir, and K. Naik, “Vehicular networks for a greener environment: A survey,” IEEE Communications Surveys and Tutorials, vol. 15, no. 3, pp. 1372–1388, 2013, doi: 10.1109/SURV.2012.101912.00184. [31] Y. Jo, J. Lim, and D. Hong, “Mobility Management Based on Beam-Level Measurement Report in 5G Massive MIMO Cellular Networks,” Electronics, vol. 9, no. 5, p. 865, May 2020, doi: 10.3390/electronics9050865. [32] M. Matyas; M. Kamargianni, The potential of mobility as a service bundles as a mobility management tool. Transportation 2019, 46, 1951–1968. https://doi.org/10.1007/s11116-018-9913-4 [33] W. Zhou, J. Wu, and P. Fan, “High Mobility Wireless Communications with Doppler Diversity: Fundamental Performance Limits,” in IEEE Transactions on Wireless Communications, Dec. 2015, vol. 14, no. 12, pp. 6981–6992. doi: 10.1109/TWC.2015.2463276. [34] D. Lynch, M. Fenton, D. Fagan, S. Kucera, H. Claussen and M. O’Neill, "Automated Self-Optimization in Heterogeneous Wireless Communications Networks," in IEEE/ACM Transactions on Networking, vol. 27, no. 1, pp. 419-432, Feb. 2019, doi: 10.1109/TNET.2018.2890547. [35] S. N. K. Marwat, S. Meyer, T. Weerawardane, and C. Goerg, “Congestion-aware handover in LTE systems for load balancing in transport network,” ETRI Journal, vol. 36, no. 5. ETRI, pp. 761–771, Oct. 01, 2014. doi: 10.4218/etrij.14.0113.1034. [36] A. B. Shams, S. R. Abied and M. A. Hoque, "Impact of user mobility on the performance of downlink resource scheduling in Heterogeneous LTE cellular networks," 2016 3rd International Conference on Electrical Engineering and Information Communication Technology (ICEEICT), 2016, pp. 1-6, doi: 10.1109/CEEICT.2016.7873091. [37] M. Boldi et al., “Coordinated MultiPoint (CoMP) Systems,” in Mobile and Wireless Communications for IMT‐Advanced and Beyond, Wiley, 2011, pp. 121–155. doi: 10.1002/9781119976431.ch6. [38] S. Mumtaz, J. Rodriguez, and L. Dai, “Introduction to mmWave massive MIMO,” mmWave Massive MIMO: A Paradigm for 5G, pp. 1–18, Jan. 2017, doi: 10.1016/B978-0-12-804418-6.00001-7. 56 [39] L. Lianming et al., “The path to 5G: mmWave aspects,” Journal of communications and information networks, vol. 1, no. 2, pp. 1–18, 2016, doi: 10.11959/j.issn.2096-1081.2016.032. [40] J. G. Andrews, T. Bai, M. N. Kulkarni, A. Alkhateeb, A. K. Gupta, and R. W. Heath, “Modeling and Analyzing Millimeter Wave Cellular Systems,” IEEE Transactions on Communications, vol. 65, no. 1, pp. 403–430, Jan. 2017, doi: 10.1109/TCOMM.2016.2618794. [41] M. Xiao et al., “Millimeter Wave Communications for Future Mobile Networks,” IEEE Journal on Selected Areas in Communications, vol. 35, no. 9. Institute of Electrical and Electronics Engineers Inc., pp. 1909–1935, Sep. 01, 2017. doi: 10.1109/JSAC.2017.2719924. [42] A. B. Shams, S. R. Abied, and M. A. Hoque, “Impact of user mobility on the performance of downlink resource scheduling in Heterogeneous LTE cellular networks,” 2016 3rd International Conference on Electrical Engineering and Information and Communication Technology, iCEEiCT 2016, no. October 2017, 2017, doi: 10.1109/CEEICT.2016.7873091. [43] A. B. Shams, M. R. Meghla, M. Asaduzzaman and M. F. Hossain, "Performance of Coordinated Scheduling in Downlink LTE-A under User Mobility," 2018 4th International Conference on Electrical Engineering and Information & Communication Technology (iCEEiCT), 2018, pp. 215-220, doi: 10.1109/CEEICT.2018.8628126. [44] M. Rupp, S. Schwarz, and M. Taranetz, “Signals and Communication Technology The Vienna LTE-Advanced Simulators Up and Downlink, Link and System Level Simulation.” [Online]. Available: http://www.springer.com/series/4748 en_US
dc.identifier.uri http://hdl.handle.net/123456789/1878
dc.description Supervised by Prof. Dr. Mohammad Tawhid Kawser, Department of Electrical and Electronic Engineering (EEE), Islamic University of Technology (IUT), Board Bazar, Gazipur-1704, Bangladesh. This thesis is submitted in partial fulfillment of the requirements for the degree of Bachelor of Science in Electrical and Electronic Engineering, 2022. en_US
dc.description.abstract The vision to ensure ubiquitous connectivity with ultra-reliable low latency, inconceivably high data rate, and support a myriad of data-hungry devices is foreseen with the widespread rollout of the 5G network. Ensuring seamless connectivity at the cell edge amidst the significant prevalence of Intercell Interference (ICI) and path loss proves to be complicated. In addition, the impact of mobility poses particular challenges to the wireless network and the high frequency of 5G networks limits the coverage area. With increase in UE mobility, Doppler effect becomes significant enough to impair the mean data rate and induce call drops. Joint transmission Coordinated (JT CoMP) is a promising ICI mitigation technique where several eNBs coordinate to create a virtual antenna array and transmit downlink (DL) data simultaneously to serve the UEs with strong radio signal links. The transmitted signals from the coordinated eNBs act as the desired signal for the UEs, reducing the interference of undesired signals. This paper examines the influence of JT CoMP technology on user velocities by incorporating closed loop spatial multiplexing (CLSM) into the Heterogenous Network (HetNet) with the aim of improving signal reception at cell edge and minimizing the effect of ICI for mobile users. To realize the effectiveness of inter-site and intra-site JT CoMP schemes in ICI mitigation and boosting cell edge throughput for mobile users in HetNet, the simulation was conducted for HetNet with CoMP and non-CoMP deployment. With the proliferation of UE velocity, the performance of CLSM degrades and less detailed feedback is reported. On the contrary, the simulation results reveal that CLSM integrated intrasite based JT CoMP offers better signal reception for low velocities and intersite based JT CoMP provides better throughput at high velocities. en_US
dc.language.iso en en_US
dc.publisher Department of Electrical and Electronic Engineering, Islamic University of Technology (IUT) The Organization of Islamic Cooperation (OIC) Board Bazar, Gazipur-1704, Bangladesh en_US
dc.subject ICI, 5G, CoMP, JT-CoMP, Round Robin, mmWave, User Mobility en_US
dc.title Impact of Joint Transmission (JT) Coordinated Multipoint (CoMP) on Mobile Users in 5G Heterogeneous Network en_US
dc.type Thesis en_US


Files in this item

This item appears in the following Collection(s)

Show simple item record

Search IUT Repository


Advanced Search

Browse

My Account

Statistics