Publication result detail
Quantifying NB-IoT Performance in 5G Use-Cases With Mixture of Regular and Stochastic Traffic
MAŠEK, P.; MOLTCHANOV, D.; ŠTŮSEK, M.; MOŽNÝ, R.; KOUCHERYAVY, Y.; HOŠEK, J.
Original Title
Quantifying NB-IoT Performance in 5G Use-Cases With Mixture of Regular and Stochastic Traffic
English Title
Quantifying NB-IoT Performance in 5G Use-Cases With Mixture of Regular and Stochastic Traffic
Type
WoS Article
Original Abstract
The increasing demand for power distribution systems in terms of control with nearly immediate response requires deploying a new type of user equipment (UE) that demands permanent connectivity. In NB-IoT systems, the traffic generated by such UEs may constitute a large part of the overall load. In this paper, we first propose a detailed two-dimensional Markov chain model to capture the system's behavior with the mixture of conventional stochastic and regular traffic types. To provide a computationally efficient solution, we then apply the state aggregation technique to reduce it to a one-dimensional model and develop approximations and associated numerical algorithms for assessing the mean delay when transmitting the considered traffic. Our results show that a single NB-IoT cell remains stable for up to 72x10^4 conventional UEs and 9x10^3 UEs demanding permanent connectivity. The presence of the latter UEs type has a linear effect on their delay, but affects conventional UEs more drastically. A delay bound of 10s specified in ITU-R M.2410 is met for the conventional UEs, even under a high number of permanently connected UEs 10^3. However, the delay on the side of the latter UEs is violated even for 100 permanently connected UEs requiring redesigning the NB-IoT channel access mechanism or expanding resources.
English abstract
The increasing demand for power distribution systems in terms of control with nearly immediate response requires deploying a new type of user equipment (UE) that demands permanent connectivity. In NB-IoT systems, the traffic generated by such UEs may constitute a large part of the overall load. In this paper, we first propose a detailed two-dimensional Markov chain model to capture the system's behavior with the mixture of conventional stochastic and regular traffic types. To provide a computationally efficient solution, we then apply the state aggregation technique to reduce it to a one-dimensional model and develop approximations and associated numerical algorithms for assessing the mean delay when transmitting the considered traffic. Our results show that a single NB-IoT cell remains stable for up to 72x10^4 conventional UEs and 9x10^3 UEs demanding permanent connectivity. The presence of the latter UEs type has a linear effect on their delay, but affects conventional UEs more drastically. A delay bound of 10s specified in ITU-R M.2410 is met for the conventional UEs, even under a high number of permanently connected UEs 10^3. However, the delay on the side of the latter UEs is violated even for 100 permanently connected UEs requiring redesigning the NB-IoT channel access mechanism or expanding resources.
Keywords
5G Mobile Networks; mMTC; Narrowband IoT; Delay Performance; Mixture of Traffic Types
Key words in English
5G Mobile Networks; mMTC; Narrowband IoT; Delay Performance; Mixture of Traffic Types
Authors
MAŠEK, P.; MOLTCHANOV, D.; ŠTŮSEK, M.; MOŽNÝ, R.; KOUCHERYAVY, Y.; HOŠEK, J.
RIV year
2025
Released
12.11.2024
Publisher
IEEE
ISBN
2327-4662
Periodical
IEEE Internet of Things Journal
Volume
12
Number
6
State
United States of America
Pages from
7332
Pages to
7347
Pages count
17
URL
Full text in the Digital Library
BibTex
@article{BUT191151,
author="Pavel {Mašek} and Dmitri {Moltchanov} and Martin {Štůsek} and Radek {Možný} and Yevgeni {Koucheryavy} and Jiří {Hošek}",
title="Quantifying NB-IoT Performance in 5G Use-Cases With Mixture of Regular and Stochastic Traffic",
journal="IEEE Internet of Things Journal",
year="2024",
volume="12",
number="6",
pages="7332--7347",
doi="10.1109/JIOT.2024.3495698",
issn="2327-4662",
url="https://ieeexplore.ieee.org/document/10750346"
}
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