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Non-Orthogonal Multiple Access for 5G and Beyond

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Non-Orthogonal Multiple Access for 5G and Beyond. / Liu, Yuanwei; Qin, Zhijin; Elkashlan, Maged et al.
In: Proceedings of the IEEE , Vol. 105, No. 12, 12.2017, p. 2347-2381.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Liu, Y, Qin, Z, Elkashlan, M, Ding, Z, Nallanathan, A & Hanzo, L 2017, 'Non-Orthogonal Multiple Access for 5G and Beyond', Proceedings of the IEEE , vol. 105, no. 12, pp. 2347-2381. https://doi.org/10.1109/JPROC.2017.2768666

APA

Liu, Y., Qin, Z., Elkashlan, M., Ding, Z., Nallanathan, A., & Hanzo, L. (2017). Non-Orthogonal Multiple Access for 5G and Beyond. Proceedings of the IEEE , 105(12), 2347-2381. https://doi.org/10.1109/JPROC.2017.2768666

Vancouver

Liu Y, Qin Z, Elkashlan M, Ding Z, Nallanathan A, Hanzo L. Non-Orthogonal Multiple Access for 5G and Beyond. Proceedings of the IEEE . 2017 Dec;105(12):2347-2381. Epub 2017 Nov 20. doi: 10.1109/JPROC.2017.2768666

Author

Liu, Yuanwei ; Qin, Zhijin ; Elkashlan, Maged et al. / Non-Orthogonal Multiple Access for 5G and Beyond. In: Proceedings of the IEEE . 2017 ; Vol. 105, No. 12. pp. 2347-2381.

Bibtex

@article{9fe7cea803b44c809b07387621bd3d54,
title = "Non-Orthogonal Multiple Access for 5G and Beyond",
abstract = "Driven by the rapid escalation of the wireless capacity requirements imposed by advanced multimedia applications (e.g., ultrahigh-definition video, virtual reality, etc.), as well as the dramatically increasing demand for user access required for the Internet of Things (IoT), the fifth-generation (5G) networks face challenges in terms of supporting large-scale heterogeneous data traffic. Nonorthogonal multiple access (NOMA), which has been recently proposed for the third-generation partnership projects long-term evolution advanced (3GPP-LTE-A), constitutes a promising technology of addressing the aforementioned challenges in 5G networks by accommodating several users within the same orthogonal resource block. By doing so, significant bandwidth efficiency enhancement can be attained over conventional orthogonal multiple-access (OMA) techniques. This motivated numerous researchers to dedicate substantial research contributions to this field. In this context, we provide a comprehensive overview of the state of the art in power-domain multiplexing-aided NOMA, with a focus on the theoretical NOMA principles, multiple-antenna-aided NOMA design, on the interplay between NOMA and cooperative transmission, on the resource control of NOMA, on the coexistence of NOMA with other emerging potential 5G techniques and on the comparison with other NOMA variants. We highlight the main advantages of power-domain multiplexing NOMA compared to other existing NOMA techniques. We summarize the challenges of existing research contributions of NOMA and provide potential solutions. Finally, we offer some design guidelines for NOMA systems and identify promising research opportunities for the future.",
author = "Yuanwei Liu and Zhijin Qin and Maged Elkashlan and Zhiguo Ding and Arumugam Nallanathan and Lajos Hanzo",
year = "2017",
month = dec,
doi = "10.1109/JPROC.2017.2768666",
language = "English",
volume = "105",
pages = "2347--2381",
journal = "Proceedings of the IEEE ",
issn = "0018-9219",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
number = "12",

}

RIS

TY - JOUR

T1 - Non-Orthogonal Multiple Access for 5G and Beyond

AU - Liu, Yuanwei

AU - Qin, Zhijin

AU - Elkashlan, Maged

AU - Ding, Zhiguo

AU - Nallanathan, Arumugam

AU - Hanzo, Lajos

PY - 2017/12

Y1 - 2017/12

N2 - Driven by the rapid escalation of the wireless capacity requirements imposed by advanced multimedia applications (e.g., ultrahigh-definition video, virtual reality, etc.), as well as the dramatically increasing demand for user access required for the Internet of Things (IoT), the fifth-generation (5G) networks face challenges in terms of supporting large-scale heterogeneous data traffic. Nonorthogonal multiple access (NOMA), which has been recently proposed for the third-generation partnership projects long-term evolution advanced (3GPP-LTE-A), constitutes a promising technology of addressing the aforementioned challenges in 5G networks by accommodating several users within the same orthogonal resource block. By doing so, significant bandwidth efficiency enhancement can be attained over conventional orthogonal multiple-access (OMA) techniques. This motivated numerous researchers to dedicate substantial research contributions to this field. In this context, we provide a comprehensive overview of the state of the art in power-domain multiplexing-aided NOMA, with a focus on the theoretical NOMA principles, multiple-antenna-aided NOMA design, on the interplay between NOMA and cooperative transmission, on the resource control of NOMA, on the coexistence of NOMA with other emerging potential 5G techniques and on the comparison with other NOMA variants. We highlight the main advantages of power-domain multiplexing NOMA compared to other existing NOMA techniques. We summarize the challenges of existing research contributions of NOMA and provide potential solutions. Finally, we offer some design guidelines for NOMA systems and identify promising research opportunities for the future.

AB - Driven by the rapid escalation of the wireless capacity requirements imposed by advanced multimedia applications (e.g., ultrahigh-definition video, virtual reality, etc.), as well as the dramatically increasing demand for user access required for the Internet of Things (IoT), the fifth-generation (5G) networks face challenges in terms of supporting large-scale heterogeneous data traffic. Nonorthogonal multiple access (NOMA), which has been recently proposed for the third-generation partnership projects long-term evolution advanced (3GPP-LTE-A), constitutes a promising technology of addressing the aforementioned challenges in 5G networks by accommodating several users within the same orthogonal resource block. By doing so, significant bandwidth efficiency enhancement can be attained over conventional orthogonal multiple-access (OMA) techniques. This motivated numerous researchers to dedicate substantial research contributions to this field. In this context, we provide a comprehensive overview of the state of the art in power-domain multiplexing-aided NOMA, with a focus on the theoretical NOMA principles, multiple-antenna-aided NOMA design, on the interplay between NOMA and cooperative transmission, on the resource control of NOMA, on the coexistence of NOMA with other emerging potential 5G techniques and on the comparison with other NOMA variants. We highlight the main advantages of power-domain multiplexing NOMA compared to other existing NOMA techniques. We summarize the challenges of existing research contributions of NOMA and provide potential solutions. Finally, we offer some design guidelines for NOMA systems and identify promising research opportunities for the future.

U2 - 10.1109/JPROC.2017.2768666

DO - 10.1109/JPROC.2017.2768666

M3 - Journal article

VL - 105

SP - 2347

EP - 2381

JO - Proceedings of the IEEE

JF - Proceedings of the IEEE

SN - 0018-9219

IS - 12

ER -