skip to main content
10.5555/1996039.1996085acmconferencesArticle/Chapter ViewAbstractPublication PagesiwqosConference Proceedingsconference-collections
research-article

Multi-channel reliability and spectrum usage in real homes: empirical studies for home-area sensor networks

Published: 06 June 2011 Publication History

Abstract

Home area networks (HANs) consisting of wireless sensors have emerged as the enabling technology for important applications such as smart energy. These applications impose unique QoS constraints, requiring low data rates but high network reliability in the face of unpredictable wireless environments. This paper presents two in-depth empirical studies on wireless channels in real homes, providing key design guidelines for meeting the QoS constraints of HAN applications. The spectrum study analyzes spectrum usage in the 2.4 GHz band where HANs based on the IEEE 802.15.4 standard must coexist with existing wireless devices. We characterize the ambient wireless environment in six apartments through passive spectrum analysis across the entire 2.4 GHz band over seven days in each apartment. We find that the wireless conditions in these residential environments are much more complex and varied than in a typical office environment. Moreover, while 802.11 signals play a significant role in spectrum usage, there also exists non-negligible noise from non-802.11 devices. The multichannel link study measures the reliability of different 802.15.4 channels through active probing with motes in ten apartments. We find that there is not always a persistently reliable channel over 24 hours, and that link reliability does not exhibit cyclic behavior at daily or weekly timescales. Nevertheless, reliability can be maintained through infrequent channel hopping, suggesting dynamic channel hopping as a key tool for meeting the QoS requirements of HAN applications. Our empirical studies provide important guidelines and insights in designing HANs for residential environments.

References

[1]
IEEE Computer Society, Part 15.4: Wireless Medium Access Control (MAC) and Physical Layer (PHY) Specifications for Low-Rate Wireless Personal Area Networks (WPANs), 2006.
[2]
ZigBee Standards Organization, ZigBee Smart Energy Profile Specification, 2008.
[3]
"IPv6 over low power WPAN," http://datatracker.ietf.org/wg/6lowpan/charter/.
[4]
"Routing over low power and lossy networks (ROLL)," http://datatracker.ietf.org/wg/roll/charter/.
[5]
X. Jing, S. S. Anandaraman, M. A. Ergin, I. Seskar, and D. Raychaudhuri, "Distributed coordination schemes for multi-radio co-existence in dense spectrum environments: An experimental study on the orbit testbed," in DySPAN, 2008.
[6]
A. Sikora and V. F. Groza, "Coexistence of IEEE 802.15.4 with other systems in the 2.4 GHz ISM band," in IMTC, 2005.
[7]
ZigBee Alliance, "Zigbee and wireless radio frequency coexistence," 2007.
[8]
I. Howitt and J. A. Gutierrez, "IEEE 802.15.4 low rate - wireless personal area network coexistence issues," in WCNC, 2003.
[9]
S. Y. Shin, H. S. Park, S. Choi, and W. H. Kwon, "Packet error rate analysis of ZigBee under WLAN and Bluetooth interferences," in IEEE trans. on wireless communications, 2007.
[10]
S. Y. Shin, H. S. Parky, S. Choi, and W. H. Kwon, "Packet error rate analysis of IEEE 802.15.4 under IEEE 802.11b interference," in WWIC, 2005.
[11]
D. G. Yoon, S. Y. Shin, W. H. Kwon, and H. S. Park, "Packet error rate analysis of IEEE 802.11b under IEEE 802.15.4 interference," in VTC Spring, 2006.
[12]
S. Pollin, M. Ergen, M. Timmers, A. Dejonghe, L. van der Perre, F. Catthoor, I. Moerman, and A. Bahai, "Distributed cognitive coexistence of 802.15.4 with 802.11," in Cognitive Radio Oriented Wireless Networks and Communications, 2006.
[13]
R. Gummadi, D. Wetherall, B. Greenstein, and S. Seshan, "Understanding and mitigating the impact of RF interference on 802.11 networks," in Sigcomm, 2007.
[14]
K. Srinivasan, P. Dutta, A. Tavakoli, and P. Levis, "An empirical study of low power wireless," in ACM Transactions on Sensor Networks, 2010.
[15]
C.-J. M. Liang, B. Priyantha, J. Liu, and A. Terzis, "Surviving Wi-Fi interference in low power zigbee networks," in SenSys, 2010.
[16]
P. Bahl, R. Chandra, T. Moscibroda, R. Murty, and M. Welsh, "White space networking with Wi-Fi like connectivity," in Sigcomm, 2009.
[17]
D. Chen, S. Yin, Q. Zhang, M. Liu, and S. Li, "Mining spectrum usage data: a large-scale spectrum measurement study," in Mobicom, 2009.
[18]
K. Papagiannaki, M. Yarvis, and W. S. Conner, "Experimental characterization of home wireless networks and design implications," in INFOCOM, 2006.
[19]
J. Ortiz and D. Culler, "Multichannel reliability assessment in real world WSNs," in IPSN, 2010.
[20]
J.-H. Hauer, V. Handziski, and A. Wolisz, "Experimental study of the impact of WLAN interference on IEEE 802.15.4 body area networks," in EWSN, 2009.
[21]
R. C. Shah, L. Nachman, and C.-y. Wan, "On the performance of bluetooth and ieee 802.15.4 radios in a body area network," in BodyNets, 2008.
[22]
Wi-Spy, http://www.metageek.net/.
[23]
M. Sha, G. Hackmann, and C. Lu, "Multi-channel reliability and spectrum usage in real homes: Empirical studies for home-area sensor networks," Washington University in St. Louis, Tech. Rep. WUCSE-2010-32, 2010. {Online}. Available: http://cse.wustl.edu/Research/Pages/technical-reports.aspx
[24]
{Online}. Available: http://www.metageek.net/recordings
[25]
J. Polastre, R. Szewczyk, and D. Culler, "Telos: Enabling ultra-low power wireless research," in IPSN, 2005.
[26]
2.4 GHz IEEE 802.15.4/ZigBee-ready RF Transceiver, Texas Instruments.
[27]
http://www.tinyos.net/.
[28]
J. Zhao and R. Govindan, "Understanding packet delivery performance in dense wireless sensor networks," in Sensys, 2003.
[29]
Specification of the Bluetooth System, Version 4.0.
[30]
Technical Overview of Time Synchronized Mesh Protocol, White Paper, http://www.dustnetworks.com.
[31]
"IEEE 802.15.4e WPAN task group." {Online}. Available: http://www.ieee802.org/15/pub/TG4e.html
[32]
S. M. Stigler, "Francis Galton's account of the invention of correlation," Statistical Science, vol. 4, no. 2, 1989.

Cited By

View all
  1. Multi-channel reliability and spectrum usage in real homes: empirical studies for home-area sensor networks

    Recommendations

    Comments

    Information & Contributors

    Information

    Published In

    cover image ACM Conferences
    IWQoS '11: Proceedings of the Nineteenth International Workshop on Quality of Service
    June 2011
    275 pages

    Sponsors

    Publisher

    IEEE Press

    Publication History

    Published: 06 June 2011

    Check for updates

    Qualifiers

    • Research-article

    Conference

    IWQoS '11
    Sponsor:

    Contributors

    Other Metrics

    Bibliometrics & Citations

    Bibliometrics

    Article Metrics

    • Downloads (Last 12 months)3
    • Downloads (Last 6 weeks)1
    Reflects downloads up to 14 Sep 2024

    Other Metrics

    Citations

    Cited By

    View all

    View Options

    Get Access

    Login options

    View options

    PDF

    View or Download as a PDF file.

    PDF

    eReader

    View online with eReader.

    eReader

    Media

    Figures

    Other

    Tables

    Share

    Share

    Share this Publication link

    Share on social media