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Interference Management In Long Term Evolution-Advanced System

Authors: Sbit, Selma; Dadi, Mohamed Bechir; Belgacem Chibani Rhaimi;

Interference Management In Long Term Evolution-Advanced System

Abstract

{"references": ["Ramjee Prasad, AlbenaMihovska, New Horizon in Mobile and wireless Communications. pp 1-25. 2009.", "Murtadha Ali Nsaif Sukar, and Maninder Pal. SC-FDMA & OFDMA in LTE physical layer. International Journal of Engineering Trends and Technology (IJETT) \u2013 Volume 12 (2), pp 74-85- Jun 2014.", "D. Astely, E. Dahlman, A. Furuskar, Y. Jading, M. Lindstrom, and S. Parkvall, LTE: the evolution of mobile broadband, IEEE Commun. Mag., vol. 47, pp. 44-51, Apr. 2008.", "E. Dahlman, S. Parkvall and J. Skold, 4G LTE/LTEAdvanced for Mobile Broadband, Academic Press: Elsevier, 2011.", "3GPP, Requirements for further Advancements for E-UTRAN (LTE- Advanced), 2011.", "Nakamura. T, Abeta. S, Iwamura. M, Abe. T & Tanno. M. Overview of lte-advanced and standardization trends. NTT Docomo Technical Journal, vol. 12 (2), pp 4-9. 2010.", "Ebrahimi, S., Riihij\u00e4rvi, J., & Petrova, M. Studying the performance and robustness of frequency allocation schemes for LTE HetNets. In Communications (ICC), IEEE International Conference on pp. 1-6. 2016", "Ahmed, H. R., Sourour, E., & Elkamchouchi, H. M. Comp-Jt With Dynamic Cell Selection, Global Precoding Matrix And Irc Receiver For LTE-A. International Journal of Wireless & Mobile Networks, Vol, 7, No. 3, pp. 27-45. 2015.", "Lu, S. H., Lai, W. P., & Wang, L. C. (2014, August). Time domain coordination for inter-cell interference reduction in LTE hierarchical cellular systems. In Heterogeneous Networking for Quality, Reliability, Security and Robustness 10th International Conference on pp. 51-55. 2014.\n[10]\tYuan, G, Zhang, X, Wang, W, & Yang, Y. Carrier aggregation for LTE-advanced mobile communication systems. Communications Magazine, IEEE, vol. 48 (2), pp 88-93. 2010.\n[11]\tPedersen, K. I., Frederiksen, F., Rosa, C., Nguyen, H., Garcia, L. G. U., & Wang, Y. Carrier aggregation for LTE-advanced: functionality and performance aspects. Communications Magazine, IEEE,vol. 49 (6), pp 89-95. 2011.\n[12]\tGhosh, A., Ratasuk, R., Mondal, B., Mangalvedhe, N., & Thomas, T. LTE-advanced: next-generation wireless broadband technology (Invited Paper). Wireless Communications, IEEE, vol. 17 (3), pp 10-22. 2010.\n[13]\tWang, H., Rosa, C., & Pedersen, K. Uplink component carrier selection for LTE-advanced systems with carrier aggregation. In International Conference Communications (ICC), IEEE. pp 1-5. 2011.\n[14]\tWang, H., Rosa, C., & Pedersen, K. Performance analysis of downlink inter-band carrier aggregation in LTE-advanced. Vehicular Technology Conference (VTC Fall), IEEE, pp 1-5. 2011.\n[15]\tCho, Y. S., Kim, J., Yang, W. Y., & Kang, C. G. MIMO-OFDM wireless communications with MATLAB. John Wiley & Sons, pp 89-95. 2010\n[16]\tLee, J., Han, J. K., & Zhang, J. MIMO technologies in 3GPP LTE and LTE-advanced. EURASIP Journal on Wireless Communications and Networking, pp 1-13. 2009.\n[17]\tChedia Jarray, Amna Barez and Belgacem Chibani. Aiming a Throughput Enhancement. In the international conference on Sciences and Techniques of Automatic control & computer engineering (STA), IEEE. 2014\n[18]\tLiang Liu, Feng Yang, Richard Wang, Zhenning Shi, Alan Stidwell, and Daqing Gu. Analysis of handover performance improvement in cloud-ran architecture. In Communications and Networking in China (CHINACOM), 7th International ICST Conference on, pages 850-855. IEEE, 2012. \n[19]\tJo\u00e3o de Quintanilha Meleiro de Ara\u00fajo Martins. Impact of MIMO and Carrier Aggregation in LTE-Advanced. 2013.\n[20]\tChung, W. G., Lim, E., Yook, J. G., & Park, H. K. Calculation of spectral efficiency for estimating spectrum requirements of IMT-Advanced in Korean mobile communication environments. ETRI journal, vol. 29 (2), pp 153-161. 2007.\n[21]\tGinting, D., Fahmi, A., & Kurniawan, A. Performance evaluation of inter-cell interference of LTE-A system using carrier aggregation and CoMP techniques. In Telecommunication Systems Services and Applications (TSSA), 9th International Conference on, pp. 1-5. IEEE, 2015."]}

Incorporating Home eNodeB (HeNB) in cellular networks, e.g. Long Term Evolution Advanced (LTE-A), is beneficial for extending coverage and enhancing capacity at low price especially within the non-line-of sight (NLOS) environments such as homes. HeNB or femtocell is a small low powered base station which provides radio coverage to the mobile users in an indoor environment. This deployment results in a heterogeneous network where the available spectrum becomes shared between two layers. Therefore, a problem of Inter Cell Interference (ICI) appears. This issue is the main challenge in LTE-A. To deal with this challenge, various techniques based on frequency, time and power control are proposed. This paper deals with the impact of carrier aggregation and higher order MIMO (Multiple Input Multiple Output) schemes on the LTE-Advanced performance. Simulation results show the advantages of these schemes on the system capacity (4.109 b/s/Hz when bandwidth B=100 MHz and when applying MIMO 8x8 for SINR=30 dB), maximum theoretical peak data rate (more than 4 Gbps for B=100 MHz and when MIMO 8x8 is used) and spectral efficiency (15 b/s/Hz and 30b/s/Hz when MIMO 4x4 and MIMO 8x8 are applying respectively for SINR=30 dB).

Keywords

peak data rate, MIMO, spectral efficiency., LTE-Advanced, capacity, carrier aggregation

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This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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