Home > Research > Publications & Outputs > Modeling and Analysis of Point-to-Multipoint Mi...

Electronic data

  • FINAL VERSION

    Accepted author manuscript, 963 KB, PDF document

    Available under license: CC BY

Links

Text available via DOI:

View graph of relations

Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks. / Shi, Jia; Lv, Lu; Ni, Qiang et al.
In: IEEE Transactions on Wireless Communications, Vol. 18, No. 1, 01.2019, p. 268-285.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

APA

Vancouver

Shi J, Lv L, Ni Q, Pervaiz H, Paoloni C. Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks. IEEE Transactions on Wireless Communications. 2019 Jan;18(1):268-285. Epub 2018 Nov 8. doi: 10.1109/TWC.2018.2879109

Author

Shi, Jia ; Lv, Lu ; Ni, Qiang et al. / Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks. In: IEEE Transactions on Wireless Communications. 2019 ; Vol. 18, No. 1. pp. 268-285.

Bibtex

@article{4c93b1528f4a42298c2850cf5ff9761e,
title = "Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks",
abstract = "A tractable stochastic geometry model is proposed to characterize the performance of the novel point-to-multipoint (P2MP) assisted backhaul networks with millimeter wave (mmWave) capability. The novel performance analysis is studied based on the general backhaul network (GBN) and the simplified backhaul network (SBN) models. To analyze the signal-to-interference-plus-noise ratio (SINR) coverage probability of the backhaul networks, a range of the exact- and closed-form expressions are derived for both the GBN and SBN models. With the aid of the tractable model, the optimal power control algorithm is proposed for maximizing the trade-off between energy-efficiency (EE) and area spectral-efficiency (ASE) for the mmWave backhaul networks. The analytical results of the SINR coverage probability are validated, and they can match those obtained from Monte-Carlo experiments. Our numerical results for ASE performance demonstrate the significant effectiveness of our P2MP architecture over the traditional point-to-point (P2P) setup. Moreover, our P2MP mmWave backhaul networks are able to achieve dramatically higher rate performance than that obtained by the ultra high frequency (UHF) networks. Furthermore, to achieve the optimal EE and ASE trade-off, the mmWave backhaul networks should be designed to limit the link distances and line-of-sight (LOS) interferences while optimizing the transmission power.",
author = "Jia Shi and Lu Lv and Qiang Ni and Haris Pervaiz and Claudio Paoloni",
year = "2019",
month = jan,
doi = "10.1109/TWC.2018.2879109",
language = "English",
volume = "18",
pages = "268--285",
journal = "IEEE Transactions on Wireless Communications",
issn = "1536-1276",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
number = "1",

}

RIS

TY - JOUR

T1 - Modeling and Analysis of Point-to-Multipoint Millimeter-Wave Backhaul Networks

AU - Shi, Jia

AU - Lv, Lu

AU - Ni, Qiang

AU - Pervaiz, Haris

AU - Paoloni, Claudio

PY - 2019/1

Y1 - 2019/1

N2 - A tractable stochastic geometry model is proposed to characterize the performance of the novel point-to-multipoint (P2MP) assisted backhaul networks with millimeter wave (mmWave) capability. The novel performance analysis is studied based on the general backhaul network (GBN) and the simplified backhaul network (SBN) models. To analyze the signal-to-interference-plus-noise ratio (SINR) coverage probability of the backhaul networks, a range of the exact- and closed-form expressions are derived for both the GBN and SBN models. With the aid of the tractable model, the optimal power control algorithm is proposed for maximizing the trade-off between energy-efficiency (EE) and area spectral-efficiency (ASE) for the mmWave backhaul networks. The analytical results of the SINR coverage probability are validated, and they can match those obtained from Monte-Carlo experiments. Our numerical results for ASE performance demonstrate the significant effectiveness of our P2MP architecture over the traditional point-to-point (P2P) setup. Moreover, our P2MP mmWave backhaul networks are able to achieve dramatically higher rate performance than that obtained by the ultra high frequency (UHF) networks. Furthermore, to achieve the optimal EE and ASE trade-off, the mmWave backhaul networks should be designed to limit the link distances and line-of-sight (LOS) interferences while optimizing the transmission power.

AB - A tractable stochastic geometry model is proposed to characterize the performance of the novel point-to-multipoint (P2MP) assisted backhaul networks with millimeter wave (mmWave) capability. The novel performance analysis is studied based on the general backhaul network (GBN) and the simplified backhaul network (SBN) models. To analyze the signal-to-interference-plus-noise ratio (SINR) coverage probability of the backhaul networks, a range of the exact- and closed-form expressions are derived for both the GBN and SBN models. With the aid of the tractable model, the optimal power control algorithm is proposed for maximizing the trade-off between energy-efficiency (EE) and area spectral-efficiency (ASE) for the mmWave backhaul networks. The analytical results of the SINR coverage probability are validated, and they can match those obtained from Monte-Carlo experiments. Our numerical results for ASE performance demonstrate the significant effectiveness of our P2MP architecture over the traditional point-to-point (P2P) setup. Moreover, our P2MP mmWave backhaul networks are able to achieve dramatically higher rate performance than that obtained by the ultra high frequency (UHF) networks. Furthermore, to achieve the optimal EE and ASE trade-off, the mmWave backhaul networks should be designed to limit the link distances and line-of-sight (LOS) interferences while optimizing the transmission power.

U2 - 10.1109/TWC.2018.2879109

DO - 10.1109/TWC.2018.2879109

M3 - Journal article

VL - 18

SP - 268

EP - 285

JO - IEEE Transactions on Wireless Communications

JF - IEEE Transactions on Wireless Communications

SN - 1536-1276

IS - 1

ER -