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Erschienen in: Wireless Networks 1/2020

11.10.2018

Performance analysis for 5G beamforming heterogeneous networks

Erschienen in: Wireless Networks | Ausgabe 1/2020

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Abstract

The heterogeneous network (HetNet) is an attractive solution to solve limited spectral efficiency, the increasing traffic demands, and crowded coverage. In 5G, massive multiple-input multiple-output and millimeter-wave technologies are considered to explore high array gain and alleviate high path loss with beamforming. In this paper, we propose a general tractable model for signal-to-interference-plus-noise ratio (SINR) analysis with cell expansion and beamforming for 5G. In this HetNet, each layer is characterized by particular parameters such as base station (BS) density, transmission power, beam gain, beamwidth, propagation loss, and bias factor. In our model, the expressions of outage probability for each layer and the whole network, which represent the SINR distributions, are derived through a typical user. We also analyze the rate performance by the minimum average user rates and the rate coverage probabilities. Furthermore, the spectrum reuse strategy, some layers are spectrum separation while others are spectrum sharing, are considered to consistent with the existing and future cellular network. From the simulations, system performance can be greatly improved by beamforming and affected by beamwidth, and the optimal bias changes with BS density and path loss. Furthermore, the proposed method provides practical deployment guidelines with some determined parameters.

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Literatur
1.
Zurück zum Zitat Ezhilarasan, E., & Dinakaran, M. (2017). A review on mobile technologies: 3G, 4G and 5G. In 2017 second international conference on recent trends and challenges in computational models (ICRTCCM) (pp. 369–373). Ezhilarasan, E., & Dinakaran, M. (2017). A review on mobile technologies: 3G, 4G and 5G. In 2017 second international conference on recent trends and challenges in computational models (ICRTCCM) (pp. 369–373).
2.
Zurück zum Zitat Hossain, E., Rasti, M., Tabassum, H., & Abdelnasser, A. (2014). Evolution toward 5G multi-tier cellular wireless networks: An interference management perspective. IEEE Wireless Communcation, 21(3), 118.CrossRef Hossain, E., Rasti, M., Tabassum, H., & Abdelnasser, A. (2014). Evolution toward 5G multi-tier cellular wireless networks: An interference management perspective. IEEE Wireless Communcation, 21(3), 118.CrossRef
3.
Zurück zum Zitat Wang, C. X., Haider, F., Gao, X. Q., You, X. H., Yang, Y., Yuan, D. F., et al. (2014). Cellular architecture and key technologies for 5G wireless communication networks. IEEE Communications Magazine, 52(2), 122.CrossRef Wang, C. X., Haider, F., Gao, X. Q., You, X. H., Yang, Y., Yuan, D. F., et al. (2014). Cellular architecture and key technologies for 5G wireless communication networks. IEEE Communications Magazine, 52(2), 122.CrossRef
4.
Zurück zum Zitat Damnjanovic, A., Montojo, J., Wei, Y., Ji, T., Luo, T., Vajapeyam, M., et al. (2011). A survey on 3GPP heterogeneous networks. IEEE Wireless Communcation, 18(3), 10.CrossRef Damnjanovic, A., Montojo, J., Wei, Y., Ji, T., Luo, T., Vajapeyam, M., et al. (2011). A survey on 3GPP heterogeneous networks. IEEE Wireless Communcation, 18(3), 10.CrossRef
5.
Zurück zum Zitat Liu, D., Wang, L., Chen, Y., Elkashlan, M., Wong, K. K., Schober, R., et al. (2016). User association in 5G networks: A survey and an outlook. IEEE Communications Surveys and Tutorials, 18(2), 1018.CrossRef Liu, D., Wang, L., Chen, Y., Elkashlan, M., Wong, K. K., Schober, R., et al. (2016). User association in 5G networks: A survey and an outlook. IEEE Communications Surveys and Tutorials, 18(2), 1018.CrossRef
6.
Zurück zum Zitat TS 36.101. (2015). Evolved Universal Terrestrial Radio Access (E-UTRA). 3GPP. TS 36.101. (2015). Evolved Universal Terrestrial Radio Access (E-UTRA). 3GPP.
7.
Zurück zum Zitat Bogale, T. E., & Le, L. B. (2016). Massive MIMO and mmWave for 5G wireless HetNet: Potential benefits and challenges. IEEE Vehicular Technology Magazine, 11(1), 64.CrossRef Bogale, T. E., & Le, L. B. (2016). Massive MIMO and mmWave for 5G wireless HetNet: Potential benefits and challenges. IEEE Vehicular Technology Magazine, 11(1), 64.CrossRef
8.
Zurück zum Zitat Larsson, E., Edfors, O., Tufvesson, F., & Marzetta, T. (2014). Massive MIMO for next generation wireless systems. IEEE Communications Magazine, 52(2), 186.CrossRef Larsson, E., Edfors, O., Tufvesson, F., & Marzetta, T. (2014). Massive MIMO for next generation wireless systems. IEEE Communications Magazine, 52(2), 186.CrossRef
9.
Zurück zum Zitat Andrews, J. G., Buzzi, S., Choi, W., Hanly, S. V., Lozano, A., Soong, A. C. K., et al. (2014). What will 5G be? IEEE Journal on Selected Areas in Communications, 32(6), 1065.CrossRef Andrews, J. G., Buzzi, S., Choi, W., Hanly, S. V., Lozano, A., Soong, A. C. K., et al. (2014). What will 5G be? IEEE Journal on Selected Areas in Communications, 32(6), 1065.CrossRef
10.
Zurück zum Zitat Niu, Y., Li, Y., Jin, D., Su, L., & Vasilakos, A. V. (2015). A survey of millimeter wave communications (mmWave) for 5G: opportunities and challenges. Wireless Networks, 21(8), 2657.CrossRef Niu, Y., Li, Y., Jin, D., Su, L., & Vasilakos, A. V. (2015). A survey of millimeter wave communications (mmWave) for 5G: opportunities and challenges. Wireless Networks, 21(8), 2657.CrossRef
11.
Zurück zum Zitat Wei, L., Hu, R. Q., Qian, Y., & Wu, G. (2014). Key elements to enable millimeter wave communications for 5G wireless systems. IEEE Wireless Communications, 21(6), 136.CrossRef Wei, L., Hu, R. Q., Qian, Y., & Wu, G. (2014). Key elements to enable millimeter wave communications for 5G wireless systems. IEEE Wireless Communications, 21(6), 136.CrossRef
12.
Zurück zum Zitat IEEE 802.11 WG. (2012). IEEE 802.11ad, Amendment 3: Enhancements for very high throughput in the 60 GHz band. IEEE 802.11 WG. (2012). IEEE 802.11ad, Amendment 3: Enhancements for very high throughput in the 60 GHz band.
13.
Zurück zum Zitat Rappaport, T. S., Gutierrez, F., Ben-Dor, E., Murdock, J. N., Qiao, Y., & Tamir, J. I. (2013). Broadband millimeter-wave propagation measurements and models using adaptive-beam antennas for outdoor urban cellular communications. IEEE Transactions on Antennas and Propagation, 61(4), 1850.CrossRef Rappaport, T. S., Gutierrez, F., Ben-Dor, E., Murdock, J. N., Qiao, Y., & Tamir, J. I. (2013). Broadband millimeter-wave propagation measurements and models using adaptive-beam antennas for outdoor urban cellular communications. IEEE Transactions on Antennas and Propagation, 61(4), 1850.CrossRef
14.
Zurück zum Zitat Rappaport, T. S., Sun, S., Mayzus, R., Zhao, H., Azar, Y., Wang, K., et al. (2013). Millimeter wave mobile communications for 5G cellular: It will work!. IEEE Access, 1, 335.CrossRef Rappaport, T. S., Sun, S., Mayzus, R., Zhao, H., Azar, Y., Wang, K., et al. (2013). Millimeter wave mobile communications for 5G cellular: It will work!. IEEE Access, 1, 335.CrossRef
15.
Zurück zum Zitat Rappaport, T. S., Xing, Y., MacCartney, G. R., Molisch, A. F., Mellios, E., & Zhang, J. (2017). Overview of millimeter wave communications for fifth-generation (5G) wireless networks with a focus on propagation models. IEEE Transactions on Antennas and Propagation, 65(12), 6213.CrossRef Rappaport, T. S., Xing, Y., MacCartney, G. R., Molisch, A. F., Mellios, E., & Zhang, J. (2017). Overview of millimeter wave communications for fifth-generation (5G) wireless networks with a focus on propagation models. IEEE Transactions on Antennas and Propagation, 65(12), 6213.CrossRef
16.
Zurück zum Zitat Rappaport, T. S., MacCartney, G. R., Sun, S., Yan, H., & Deng, S. (2017). Small-scale, local area, and transitional millimeter wave propagation for 5G communications. IEEE Transactions on Antennas and Propagation, 65(12), 6474.CrossRef Rappaport, T. S., MacCartney, G. R., Sun, S., Yan, H., & Deng, S. (2017). Small-scale, local area, and transitional millimeter wave propagation for 5G communications. IEEE Transactions on Antennas and Propagation, 65(12), 6474.CrossRef
17.
Zurück zum Zitat Han-Shin, J., Young Jin, S., Ping, X., & Andrews, J. G. (2012). Heterogeneous cellular networks with flexible cell association: A comprehensive downlink SINR analysis. IEEE Transactions on Wireless Communications, 11(10), 3484.CrossRef Han-Shin, J., Young Jin, S., Ping, X., & Andrews, J. G. (2012). Heterogeneous cellular networks with flexible cell association: A comprehensive downlink SINR analysis. IEEE Transactions on Wireless Communications, 11(10), 3484.CrossRef
18.
Zurück zum Zitat Singh, S., Dhillon, H. S., & Andrews, J. G. (2013). Offloading in heterogeneous networks: Modeling, analysis, and design insights. IEEE Transactions on Wireless Communications, 12(5), 2484.CrossRef Singh, S., Dhillon, H. S., & Andrews, J. G. (2013). Offloading in heterogeneous networks: Modeling, analysis, and design insights. IEEE Transactions on Wireless Communications, 12(5), 2484.CrossRef
19.
Zurück zum Zitat Chinipardaz, M., Rasti, M., & Nourhosseini, M. (2014). An overview of cell association in heterogeneous network: Load balancing and interference management perspective. In 2014 7th international symposium on telecommunications (IST) (pp. 1250–1256). Chinipardaz, M., Rasti, M., & Nourhosseini, M. (2014). An overview of cell association in heterogeneous network: Load balancing and interference management perspective. In 2014 7th international symposium on telecommunications (IST) (pp. 1250–1256).
20.
Zurück zum Zitat Andrews, J. G., Singh, S., Ye, Q., Lin, X., & Dhillon, H. S. (2014). An overview of load balancing in HetNets: Old myths and open problems. IEEE Wireless Communications, 21(2), 18.CrossRef Andrews, J. G., Singh, S., Ye, Q., Lin, X., & Dhillon, H. S. (2014). An overview of load balancing in HetNets: Old myths and open problems. IEEE Wireless Communications, 21(2), 18.CrossRef
21.
Zurück zum Zitat Chen, X., Wu, J., Cai, Y., Zhang, H., & Chen, T. (2015). Energy-efficiency oriented traffic offloading in wireless networks: A brief survey and a learning approach for heterogeneous cellular networks. IEEE Journal on Selected Areas in Communications, 33(4), 627.CrossRef Chen, X., Wu, J., Cai, Y., Zhang, H., & Chen, T. (2015). Energy-efficiency oriented traffic offloading in wireless networks: A brief survey and a learning approach for heterogeneous cellular networks. IEEE Journal on Selected Areas in Communications, 33(4), 627.CrossRef
22.
Zurück zum Zitat Ye, Q., Rong, B., Chen, Y., Al-Shalash, M., Caramanis, C., & Andrews, J. G. (2013). User association for load balancing in heterogeneous cellular networks. IEEE Transactions on Wireless Communications, 12(6), 2706.CrossRef Ye, Q., Rong, B., Chen, Y., Al-Shalash, M., Caramanis, C., & Andrews, J. G. (2013). User association for load balancing in heterogeneous cellular networks. IEEE Transactions on Wireless Communications, 12(6), 2706.CrossRef
23.
Zurück zum Zitat Muhammad, F., Abbas, Z. H., & Li, F. Y. (2017). Cell association with load balancing in nonuniform heterogeneous cellular networks: Coverage probability and rate analysis. IEEE Transactions on Vehicular Technology, 66(6), 5241.CrossRef Muhammad, F., Abbas, Z. H., & Li, F. Y. (2017). Cell association with load balancing in nonuniform heterogeneous cellular networks: Coverage probability and rate analysis. IEEE Transactions on Vehicular Technology, 66(6), 5241.CrossRef
24.
Zurück zum Zitat Akoum, S., Ayach, O. E., & Heath, R. W. (2012). Coverage and capacity in mmwave cellular systems. In 2012 conference record of the forty sixth Asilomar conference on signals, systems and computers (ASILOMAR) (pp. 688–692). Akoum, S., Ayach, O. E., & Heath, R. W. (2012). Coverage and capacity in mmwave cellular systems. In 2012 conference record of the forty sixth Asilomar conference on signals, systems and computers (ASILOMAR) (pp. 688–692).
25.
Zurück zum Zitat Tianyang, B., & Heath, R. W. (2015). Coverage and rate analysis for millimeter-wave cellular networks. IEEE Transactions on Wireless Communications, 14(2), 1100.CrossRef Tianyang, B., & Heath, R. W. (2015). Coverage and rate analysis for millimeter-wave cellular networks. IEEE Transactions on Wireless Communications, 14(2), 1100.CrossRef
26.
Zurück zum Zitat Yu, X., Zhang, J., Haenggi, M., & Letaief, K. B. (2017). Coverage Analysis for Millimeter Wave Networks: The Impact of Directional Antenna Arrays. IEEE Journal on Selected Areas in Communications, 35(7), 1498.CrossRef Yu, X., Zhang, J., Haenggi, M., & Letaief, K. B. (2017). Coverage Analysis for Millimeter Wave Networks: The Impact of Directional Antenna Arrays. IEEE Journal on Selected Areas in Communications, 35(7), 1498.CrossRef
27.
Zurück zum Zitat Rebato, M., Park, J., Popovski, P., et al. (2018). Stochastic geometric coverage analysis in mmwave cellular networks with realistic channel and antenna radiation models. arXiv preprint arXiv:1806.04193. Rebato, M., Park, J., Popovski, P., et al. (2018). Stochastic geometric coverage analysis in mmwave cellular networks with realistic channel and antenna radiation models. arXiv preprint arXiv:​1806.​04193.
28.
Zurück zum Zitat Onireti, O., Imran, A., & Imran, M. A. (2018). Coverage, capacity, and energy efficiency analysis in the uplink of mmWave cellular networks. IEEE Transactions on Vehicular Technology, 67(5), 3982–3997.CrossRef Onireti, O., Imran, A., & Imran, M. A. (2018). Coverage, capacity, and energy efficiency analysis in the uplink of mmWave cellular networks. IEEE Transactions on Vehicular Technology, 67(5), 3982–3997.CrossRef
29.
Zurück zum Zitat Umer, A., Hassan, S. A., Pervaiz, H., Ni, Q., & Musavian, L. (2017). Coverage and rate analysis for massive MIMO-enabled heterogeneous networks with millimeter wave small cells. In 2017 IEEE 85th vehicular technology conference (VTC Spring) (pp. 1–5). Umer, A., Hassan, S. A., Pervaiz, H., Ni, Q., & Musavian, L. (2017). Coverage and rate analysis for massive MIMO-enabled heterogeneous networks with millimeter wave small cells. In 2017 IEEE 85th vehicular technology conference (VTC Spring) (pp. 1–5).
30.
Zurück zum Zitat Yao, G., Liu, N., Pan, Z., & You, X. (2016). Coverage and rate analysis for non-uniform millimeter-wave heterogeneous cellular network. In 2016 8th international conference on wireless communications signal processing (WCSP) (pp. 1–6). Yao, G., Liu, N., Pan, Z., & You, X. (2016). Coverage and rate analysis for non-uniform millimeter-wave heterogeneous cellular network. In 2016 8th international conference on wireless communications signal processing (WCSP) (pp. 1–6).
31.
Zurück zum Zitat Yongyu, D., Shi, J., Leyuan, P., Xiqi, G., Lei, J., & Ming, L. (2015). Interference control based on beamforming coordination for heterogeneous network with RRH deployment. IEEE Systems Journal, 9(1), 58.CrossRef Yongyu, D., Shi, J., Leyuan, P., Xiqi, G., Lei, J., & Ming, L. (2015). Interference control based on beamforming coordination for heterogeneous network with RRH deployment. IEEE Systems Journal, 9(1), 58.CrossRef
32.
Zurück zum Zitat Liu, C. H., Liang, D. C., & Yang, J. R., et al. (2017). A generalized analytical framework for coverage evaluation in mmWave heterogeneous cellular networks in urban areas. In Proceedings of IEEE international conference on communications (ICC) (pp. 1–7). Liu, C. H., Liang, D. C., & Yang, J. R., et al. (2017). A generalized analytical framework for coverage evaluation in mmWave heterogeneous cellular networks in urban areas. In Proceedings of IEEE international conference on communications (ICC) (pp. 1–7).
33.
Zurück zum Zitat Simic, L., Panda, S., Riihijarvi, J., & Mahonen, P. (2017). Coverage and robustness of mm-Wave urban cellular networks: Multi-frequency HetNets are the 5G future. In 2017 14th annual IEEE international conference on sensing, communication, and networking (SECON), San Diego, CA (pp. 1–9). Simic, L., Panda, S., Riihijarvi, J., & Mahonen, P. (2017). Coverage and robustness of mm-Wave urban cellular networks: Multi-frequency HetNets are the 5G future. In 2017 14th annual IEEE international conference on sensing, communication, and networking (SECON), San Diego, CA (pp. 1–9).
34.
Zurück zum Zitat Xie, Y., Li, B., Zuo, X., Yang, M., Yan, Z., & Xue, Q. (2016). Outage analysis for 5G beamforming heterogeneous networks. In 2016 IEEE international conference on signal processing, communications and computing (ICSPCC) (pp. 1–6). Xie, Y., Li, B., Zuo, X., Yang, M., Yan, Z., & Xue, Q. (2016). Outage analysis for 5G beamforming heterogeneous networks. In 2016 IEEE international conference on signal processing, communications and computing (ICSPCC) (pp. 1–6).
Metadaten
Titel
Performance analysis for 5G beamforming heterogeneous networks
Publikationsdatum
11.10.2018
Erschienen in
Wireless Networks / Ausgabe 1/2020
Print ISSN: 1022-0038
Elektronische ISSN: 1572-8196
DOI
https://doi.org/10.1007/s11276-018-1846-5

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