Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication

Wireless Body Area Networks (WBANs) are a fast-growing field fueled by the number of wearable devices developed for countless applications appearing on the market. To enable communication between a variety of those devices, the IEEE 802.15.6 standard was established. However, this standard has some...

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Main Authors: Flavien Solt, Robin Benarrouch, Guillaume Tochou, Oliver Facklam, Antoine Frappe, Andreia Cathelin, Andreas Kaiser, Jan M. Rabaey
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9212365/
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spelling doaj-ddbb8e48baad4bebb1a6d8298afe30212021-03-30T04:22:57ZengIEEEIEEE Access2169-35362020-01-01818296618298310.1109/ACCESS.2020.30288009212365Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled CommunicationFlavien Solt0https://orcid.org/0000-0002-0872-5562Robin Benarrouch1https://orcid.org/0000-0002-8456-9602Guillaume Tochou2https://orcid.org/0000-0002-5881-2699Oliver Facklam3https://orcid.org/0000-0003-4394-5955Antoine Frappe4https://orcid.org/0000-0002-0977-549XAndreia Cathelin5https://orcid.org/0000-0003-2745-4523Andreas Kaiser6https://orcid.org/0000-0003-0377-7408Jan M. Rabaey7https://orcid.org/0000-0001-6290-4855École Polytechnique, IP Paris, Palaiseau, FranceSTMicroelectronics, Crolles, FranceSTMicroelectronics, Crolles, FranceÉcole Polytechnique, IP Paris, Palaiseau, FranceUniv. Lille, CNRS, Centrale Lille, Univ. Polytechnique Hauts-de-France, Yncrea Hauts-de-France, UMR 8520 - IEMN, Lille, FranceSTMicroelectronics, Crolles, FranceUniv. Lille, CNRS, Centrale Lille, Univ. Polytechnique Hauts-de-France, Yncrea Hauts-de-France, UMR 8520 - IEMN, Lille, FranceBWRC, University of California Berkeley, Berkeley, CA, USAWireless Body Area Networks (WBANs) are a fast-growing field fueled by the number of wearable devices developed for countless applications appearing on the market. To enable communication between a variety of those devices, the IEEE 802.15.6 standard was established. However, this standard has some intrinsic limitations in addressing the heterogeneity of the network nodes in terms of activity, data rates (from less than bit/s to multiple Mbit/s), energy availability, form factor, and location on, around or inside the body. To address these concerns, an alternative model is proposed that could serve as an extension of the IEEE 802.15.6 Standard. At its core is an adaptive and low-overhead synchronization scheme based on heartbeat sensing. This forms the base for a TDMA-based (Time Division Multiple Access) Media Access Control (MAC) protocol dedicated to multi-tier networks. While this effort focuses specifically on Capacitive Body-Coupled Communication (C-BCC), other physical layers can be easily incorporated as well. Based on these premises, this paper compares various random-access slot allocation approaches to accommodate the multiple data rates matching the system requirements, while incorporating a duty-cycling strategy anchored by heartbeat detection. This work proposes a novel, flexible, and robust solution, making use of heartbeat synchronization and addressing the corresponding challenges. It efficiently interconnects multiple device types over a wide range of data rates and targets a mesh of stars topology. At the cost of an increased communication latency, the proposed protocol outperforms the IEEE 802.15.4 MAC standard in terms of energy efficiency by a factor of at least 12x in a realistic scenario.https://ieeexplore.ieee.org/document/9212365/Bio-signalbody area network (BAN)communication protocolenergy efficiencymedium access control (MAC)synchronization
collection DOAJ
language English
format Article
sources DOAJ
author Flavien Solt
Robin Benarrouch
Guillaume Tochou
Oliver Facklam
Antoine Frappe
Andreia Cathelin
Andreas Kaiser
Jan M. Rabaey
spellingShingle Flavien Solt
Robin Benarrouch
Guillaume Tochou
Oliver Facklam
Antoine Frappe
Andreia Cathelin
Andreas Kaiser
Jan M. Rabaey
Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
IEEE Access
Bio-signal
body area network (BAN)
communication protocol
energy efficiency
medium access control (MAC)
synchronization
author_facet Flavien Solt
Robin Benarrouch
Guillaume Tochou
Oliver Facklam
Antoine Frappe
Andreia Cathelin
Andreas Kaiser
Jan M. Rabaey
author_sort Flavien Solt
title Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
title_short Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
title_full Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
title_fullStr Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
title_full_unstemmed Energy Efficient Heartbeat-Based MAC Protocol for WBAN Employing Body Coupled Communication
title_sort energy efficient heartbeat-based mac protocol for wban employing body coupled communication
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Wireless Body Area Networks (WBANs) are a fast-growing field fueled by the number of wearable devices developed for countless applications appearing on the market. To enable communication between a variety of those devices, the IEEE 802.15.6 standard was established. However, this standard has some intrinsic limitations in addressing the heterogeneity of the network nodes in terms of activity, data rates (from less than bit/s to multiple Mbit/s), energy availability, form factor, and location on, around or inside the body. To address these concerns, an alternative model is proposed that could serve as an extension of the IEEE 802.15.6 Standard. At its core is an adaptive and low-overhead synchronization scheme based on heartbeat sensing. This forms the base for a TDMA-based (Time Division Multiple Access) Media Access Control (MAC) protocol dedicated to multi-tier networks. While this effort focuses specifically on Capacitive Body-Coupled Communication (C-BCC), other physical layers can be easily incorporated as well. Based on these premises, this paper compares various random-access slot allocation approaches to accommodate the multiple data rates matching the system requirements, while incorporating a duty-cycling strategy anchored by heartbeat detection. This work proposes a novel, flexible, and robust solution, making use of heartbeat synchronization and addressing the corresponding challenges. It efficiently interconnects multiple device types over a wide range of data rates and targets a mesh of stars topology. At the cost of an increased communication latency, the proposed protocol outperforms the IEEE 802.15.4 MAC standard in terms of energy efficiency by a factor of at least 12x in a realistic scenario.
topic Bio-signal
body area network (BAN)
communication protocol
energy efficiency
medium access control (MAC)
synchronization
url https://ieeexplore.ieee.org/document/9212365/
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