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Wake-up radio as an energy-efficient alternative to conventional wireless sensor networks MAC protocols

Published: 03 November 2013 Publication History

Abstract

The use of duty-cycling in Medium Access Control (MAC) protocols effectively helps improving the energy efficiency of wireless networks. However, while the benefits of these protocols are unquestionable, most of them still suffer from overhearing and idle listening, two issues that prevent duty-cycled systems from achieving optimum energy usage, which is a crucial aspect in specific types of wireless networks such as Wireless Sensor Networks (WSN).Wake-up Radio (WuR) systems have been employed recently to overcome these issues. Under this approach, the nodes' MicroController Unit (MCU) and main radio transceiver are completely switched off and only activated when a secondary, extremely low-power receiver in the node is triggered by a particular wireless transmission. Wake-up Radio systems allow for drastic energy savings since receiver nodes are only activated on-demand, maximizing their battery lifetimes. In this paper, we have modeled and simulated a real, recent and promising WuR hardware platform based on its time and energy consumption characterization. By comparing such WuR approach to B-MAC and IEEE 802.15.4, two well-known and widely employed MAC protocols, we show it effectively out-performs the conventional WSN MAC approaches in terms of energy efficiency. To the best of authors' knowledge, this is the first study to include a comparative analysis for multi-hop networks based on a real WuR platform, which shows WuR systems represent an energy-efficient solution that also provides a good tradeoff between latency, packet delivery ratio and applicability.

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        cover image ACM Conferences
        MSWiM '13: Proceedings of the 16th ACM international conference on Modeling, analysis & simulation of wireless and mobile systems
        November 2013
        468 pages
        ISBN:9781450323536
        DOI:10.1145/2507924
        Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than the author(s) must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected].

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        Published: 03 November 2013

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        Author Tags

        1. duty-cycling
        2. energy-efficient communications
        3. low-power listening
        4. mac
        5. mixim
        6. omnet++
        7. wake-up radio
        8. wake-up receiver
        9. wsn

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        MSWiM '13 Paper Acceptance Rate 42 of 184 submissions, 23%;
        Overall Acceptance Rate 398 of 1,577 submissions, 25%

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        • (2024)A near-zero quiescent power breeze wake-up anemometer based on a rolling-bearing triboelectric nanogeneratorMicrosystems & Nanoengineering10.1038/s41378-024-00676-710:1Online publication date: 8-Apr-2024
        • (2023)Strategic Energy Saving Technique for Multiple Visible Light Communication Access Points (VAP)2023 15th International Conference on COMmunication Systems & NETworkS (COMSNETS)10.1109/COMSNETS56262.2023.10041406(440-444)Online publication date: 3-Jan-2023
        • (2023)Energy Efficient Multiple Visible Light Communication Access Points (VAP)2023 15th International Conference on COMmunication Systems & NETworkS (COMSNETS)10.1109/COMSNETS56262.2023.10041340(480-482)Online publication date: 3-Jan-2023
        • (2023)Near-Zero Quiescent Power Sound Wake-Up and Identification System Based on a Triboelectric NanogeneratorACS Applied Materials & Interfaces10.1021/acsami.3c0332815:19(23328-23336)Online publication date: 9-May-2023
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        • (2021)A Comprehensive Review on Energy Harvesting Integration in IoT Systems from MAC Layer Perspective: Challenges and OpportunitiesSensors10.3390/s2109309721:9(3097)Online publication date: 29-Apr-2021
        • (2021)Strategic Sleeping of Visible Light Communication Access Point2021 6th International Conference on Signal Processing, Computing and Control (ISPCC)10.1109/ISPCC53510.2021.9609445(387-392)Online publication date: 7-Oct-2021
        • (2019)Advances and Opportunities in Passive Wake-Up Radios with Wireless Energy Harvesting for the Internet of Things ApplicationsSensors10.3390/s1914307819:14(3078)Online publication date: 12-Jul-2019
        • (2019)BLITZACM Transactions on Sensor Networks10.1145/330970215:2(1-38)Online publication date: 28-Mar-2019
        • (2019)Design and Implementation of a Wake-Up Radio Receiver for Fast 250 kb/s Bit RateIEEE Wireless Communications Letters10.1109/LWC.2019.29262708:6(1537-1540)Online publication date: Dec-2019
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