ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor

In wireless sensor networks, duty cycling has been an imperative choice to reduce idle listening but it introduces sleep delay. To break through the energy-latency tradeoff, we propose a pair of a radio wave sensor called radio frequency wakeup sensor and an on-demand media access control protocol c...

Full description

Bibliographic Details
Main Authors: Sang Hoon Lee, Lynn Choi
Format: Article
Language:English
Published: Hindawi - SAGE Publishing 2017-08-01
Series:International Journal of Distributed Sensor Networks
Online Access:https://doi.org/10.1177/1550147717716397
_version_ 1797764788135133184
author Sang Hoon Lee
Lynn Choi
author_facet Sang Hoon Lee
Lynn Choi
author_sort Sang Hoon Lee
collection DOAJ
description In wireless sensor networks, duty cycling has been an imperative choice to reduce idle listening but it introduces sleep delay. To break through the energy-latency tradeoff, we propose a pair of a radio wave sensor called radio frequency wakeup sensor and an on-demand media access control protocol called ZeroMAC. Radio frequency wakeup sensor is dedicated to sense the presence of a signal. The distinctive feature is that the sensor can provide the same sensitivity while it consumes only two orders of magnitude less energy than the underlying radio frequency module. With the sensor, a node no longer requires duty cycling. We also propose an on-demand media access control protocol called ZeroMAC that can effectively utilize the on-demand wakeup functionality of a radio frequency wakeup sensor by broadcasting a dedicated signal to wake up nodes before starting a communication. Since each node can notify neighbor nodes of a communication immediately, ZeroMAC can eliminate both idle listening and sleep delay. ZeroMAC wakes up only the nodes on the communication path by propagating wakeup signals in a hop-by-hop manner, avoiding unnecessary signal flooding. To further save energy, ZeroMAC can turn off radio frequency module as soon as it detects the end of communication. According to packet level simulation results, ZeroMAC can deliver data packets at least 1.87 times faster by eliminating both idle listening and sleep delay while it consumes only 3% of the energy compared to X-MAC and A-MAC.
first_indexed 2024-03-12T20:00:43Z
format Article
id doaj.art-5138935f36ef4e4ea754991b2031a470
institution Directory Open Access Journal
issn 1550-1477
language English
last_indexed 2024-03-12T20:00:43Z
publishDate 2017-08-01
publisher Hindawi - SAGE Publishing
record_format Article
series International Journal of Distributed Sensor Networks
spelling doaj.art-5138935f36ef4e4ea754991b2031a4702023-08-02T02:24:46ZengHindawi - SAGE PublishingInternational Journal of Distributed Sensor Networks1550-14772017-08-011310.1177/1550147717716397ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensorSang Hoon Lee0Lynn Choi1Automotive Electronics Business Team, Samsung Electronics, Suwon, KoreaSchool of Electrical Engineering, Korea University, Seoul, KoreaIn wireless sensor networks, duty cycling has been an imperative choice to reduce idle listening but it introduces sleep delay. To break through the energy-latency tradeoff, we propose a pair of a radio wave sensor called radio frequency wakeup sensor and an on-demand media access control protocol called ZeroMAC. Radio frequency wakeup sensor is dedicated to sense the presence of a signal. The distinctive feature is that the sensor can provide the same sensitivity while it consumes only two orders of magnitude less energy than the underlying radio frequency module. With the sensor, a node no longer requires duty cycling. We also propose an on-demand media access control protocol called ZeroMAC that can effectively utilize the on-demand wakeup functionality of a radio frequency wakeup sensor by broadcasting a dedicated signal to wake up nodes before starting a communication. Since each node can notify neighbor nodes of a communication immediately, ZeroMAC can eliminate both idle listening and sleep delay. ZeroMAC wakes up only the nodes on the communication path by propagating wakeup signals in a hop-by-hop manner, avoiding unnecessary signal flooding. To further save energy, ZeroMAC can turn off radio frequency module as soon as it detects the end of communication. According to packet level simulation results, ZeroMAC can deliver data packets at least 1.87 times faster by eliminating both idle listening and sleep delay while it consumes only 3% of the energy compared to X-MAC and A-MAC.https://doi.org/10.1177/1550147717716397
spellingShingle Sang Hoon Lee
Lynn Choi
ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
International Journal of Distributed Sensor Networks
title ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
title_full ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
title_fullStr ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
title_full_unstemmed ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
title_short ZeroMAC: Toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
title_sort zeromac toward a zero sleep delay and zero idle listening media access control protocol with ultralow power radio frequency wakeup sensor
url https://doi.org/10.1177/1550147717716397
work_keys_str_mv AT sanghoonlee zeromactowardazerosleepdelayandzeroidlelisteningmediaaccesscontrolprotocolwithultralowpowerradiofrequencywakeupsensor
AT lynnchoi zeromactowardazerosleepdelayandzeroidlelisteningmediaaccesscontrolprotocolwithultralowpowerradiofrequencywakeupsensor