Performance analysis of access class barring for next generation IoT devices
Massively dense deployment of Internet of Things (IoT) devices has put a stringent requirement on cellular networks to provide convenient service for not only human type traffic (HTC) but also for bursty traffic for IoT devices. Any bottleneck in the random access process means the bottleneck of the...
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doaj-70aabf3728274716adabba0eb33cffdd2021-06-02T19:59:45ZengElsevierAlexandria Engineering Journal1110-01682021-02-01601615627Performance analysis of access class barring for next generation IoT devicesMaira Alvi0Khamael M. Abualnaja1Waqas Tariq Toor2Muhammad Saadi3Khwaja Fareed University of Engg. & IT, 64200 Rahim Yar Khan, PakistanCollege of Science, Taif University, Saudi ArabiaKhwaja Fareed University of Engg. & IT, 64200 Rahim Yar Khan, Pakistan; University of Central Punjab, Lahore 54000, PakistanSchool of Chemistry, Taif University, Saudi Arabia; Corresponding author.Massively dense deployment of Internet of Things (IoT) devices has put a stringent requirement on cellular networks to provide convenient service for not only human type traffic (HTC) but also for bursty traffic for IoT devices. Any bottleneck in the random access process means the bottleneck of the entire system because it is the first step before scheduled access. Access class barring (ACB) scheme is one of the key schemes in long term evolution advanced (LTE-A) to control the congestion in a random access process in which the access of some devices is barred based on a parameter, ACB factor, to relieve the congestion. In this paper, we analyze the ACB factor and criteria of its selection as the optimal selection of the ACB factor is essential for the maximum throughput of the system. The metrics used in the analysis of the ACB factor are total service time (TST), access delay and maximum collision, success, and idle probabilities with fixed and optimal ACB factor. Simulation results in MATLAB provide the complete picture of the behavior of the ACB factor and its control, used in the random access process.http://www.sciencedirect.com/science/article/pii/S1110016820305123IoTRandom access channelMachine type communicationNext generation networksNetwork protocolsContention resolution |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Maira Alvi Khamael M. Abualnaja Waqas Tariq Toor Muhammad Saadi |
spellingShingle |
Maira Alvi Khamael M. Abualnaja Waqas Tariq Toor Muhammad Saadi Performance analysis of access class barring for next generation IoT devices Alexandria Engineering Journal IoT Random access channel Machine type communication Next generation networks Network protocols Contention resolution |
author_facet |
Maira Alvi Khamael M. Abualnaja Waqas Tariq Toor Muhammad Saadi |
author_sort |
Maira Alvi |
title |
Performance analysis of access class barring for next generation IoT devices |
title_short |
Performance analysis of access class barring for next generation IoT devices |
title_full |
Performance analysis of access class barring for next generation IoT devices |
title_fullStr |
Performance analysis of access class barring for next generation IoT devices |
title_full_unstemmed |
Performance analysis of access class barring for next generation IoT devices |
title_sort |
performance analysis of access class barring for next generation iot devices |
publisher |
Elsevier |
series |
Alexandria Engineering Journal |
issn |
1110-0168 |
publishDate |
2021-02-01 |
description |
Massively dense deployment of Internet of Things (IoT) devices has put a stringent requirement on cellular networks to provide convenient service for not only human type traffic (HTC) but also for bursty traffic for IoT devices. Any bottleneck in the random access process means the bottleneck of the entire system because it is the first step before scheduled access. Access class barring (ACB) scheme is one of the key schemes in long term evolution advanced (LTE-A) to control the congestion in a random access process in which the access of some devices is barred based on a parameter, ACB factor, to relieve the congestion. In this paper, we analyze the ACB factor and criteria of its selection as the optimal selection of the ACB factor is essential for the maximum throughput of the system. The metrics used in the analysis of the ACB factor are total service time (TST), access delay and maximum collision, success, and idle probabilities with fixed and optimal ACB factor. Simulation results in MATLAB provide the complete picture of the behavior of the ACB factor and its control, used in the random access process. |
topic |
IoT Random access channel Machine type communication Next generation networks Network protocols Contention resolution |
url |
http://www.sciencedirect.com/science/article/pii/S1110016820305123 |
work_keys_str_mv |
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1721401275550007296 |