A Comprehensive Worst Case Bounds Analysis of IEEE 802.15.7

Author:

Kurunathan HarrisonORCID,Severino RicardoORCID,Tovar Eduardo

Abstract

Visible Light Communication (VLC) has been emerging as a promising technology to address the increasingly high data-rate and time-critical demands that the Internet of Things (IoT) and 5G paradigms impose on the underlying Wireless Sensor Actuator Networking (WSAN) technologies. In this line, the IEEE 802.15.7 standard proposes several physical layers and Medium Access Control (MAC) sub-layer mechanisms that support a variety of VLC applications. Particularly, at the MAC sub-layer, it can support contention-free communications using Guaranteed Timeslots (GTS), introducing support for time-critical applications. However, to effectively guarantee accurate usage of such functionalities, it is vital to derive the worst-case bounds of the network. In this paper, we use network calculus to carry out the worst-case bounds analysis for GTS utilization of IEEE 802.15.7 and complement our model with an in-depth performance analysis. We also propose the inclusion of an additional mechanism to improve the overall scalability and effective bandwidth utilization of the network.

Publisher

MDPI AG

Subject

Control and Optimization,Computer Networks and Communications,Instrumentation

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Towards Multi-channel GTS Allocation in Visible Light Communication;2023 South American Conference On Visible Light Communications (SACVLC);2023-11-08

2. VLC-enabled monitoring in a healthcare setting: Overview and Challenges;2023 South American Conference On Visible Light Communications (SACVLC);2023-11-08

3. An Efficient and Adaptive Superframe Structure for IEEE 802.15.7-Based Real-time Sensor Networks;2023-06-15

4. A Survey on IEEE 802.15.7 MAC Protocols for Visible Light Communication;2023 1st International Conference on Advanced Innovations in Smart Cities (ICAISC);2023-01-23

5. Optical Wireless Communications: Research Challenges for MAC Layer;IEEE Access;2022

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