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Sensei-uu: a relocatable sensor network testbed

Published: 20 September 2010 Publication History

Abstract

A testbed is a powerful complement to simulation and emulation for evaluation of wireless sensor network (WSN) applications. However, testbeds tend to be limited to lab environments and tightly coupled to specific hardware and sensor OS configurations. These limitations, in addition to dependency on local infrastructure make it hard to evaluate applications on actual hardware in the intended target environment.
We introduce Sensei-UU, a WSN testbed designed to be easily relocatable between different physical environments and not tightly dependent on specific sensor hardware or OS. The ability to relocate the testbed enables users to evaluate WSN applications in their intended target environments. The wide range of supported sensor node platforms allows users to evaluate heterogeneous applications. Sensei-UU achieves its flexibility by following a distributed design in which control functionality is put on control machines close to the sensor nodes, and by using a wireless control channel.
We have run experiments to ensure that our wireless control channel does not interfere with the WSN application under evaluation. We show that Sensei-UU can be relocated between environments and that seemingly similar physical locations can have a large difference in radio environment. These differences between locations motivate the need for relocatable testbeds like Sensei-UU

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  • (2018)Mobile Ad hoc Network Testbed Using Mobile Robot TechnologyJournal of Physics: Conference Series10.1088/1742-6596/1019/1/0120471019(012047)Online publication date: 27-Jun-2018
  • (2018)Mobility in MANET Using Robot: A ReviewFuturistic Trends in Network and Communication Technologies10.1007/978-981-13-3804-5_23(304-324)Online publication date: 25-Dec-2018
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Published In

cover image ACM Conferences
WiNTECH '10: Proceedings of the fifth ACM international workshop on Wireless network testbeds, experimental evaluation and characterization
September 2010
88 pages
ISBN:9781450301404
DOI:10.1145/1860079
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 ACM 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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Publication History

Published: 20 September 2010

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Author Tags

  1. heterogeneity
  2. mobility
  3. testbed
  4. wireless sensor networks

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Cited By

View all
  • (2019)Uzak kullanıcı destekli bir IoT-WSN sanal laboratuvarı ve test platformu: FıratWSNGazi Üniversitesi Mühendislik-Mimarlık Fakültesi Dergisi10.17341/gazimmfd.571588Online publication date: 21-Jun-2019
  • (2018)Mobile Ad hoc Network Testbed Using Mobile Robot TechnologyJournal of Physics: Conference Series10.1088/1742-6596/1019/1/0120471019(012047)Online publication date: 27-Jun-2018
  • (2018)Mobility in MANET Using Robot: A ReviewFuturistic Trends in Network and Communication Technologies10.1007/978-981-13-3804-5_23(304-324)Online publication date: 25-Dec-2018
  • (2017)Replacing Free-Ranging Robots with Alternative Mobile Nodes2017 26th International Conference on Computer Communication and Networks (ICCCN)10.1109/ICCCN.2017.8038360(1-9)Online publication date: Jul-2017
  • (2016)MobiLab: A Testbed for Evaluating Mobility Management Protocols in WSNTestbeds and Research Infrastructures for the Development of Networks and Communities10.1007/978-3-319-49580-4_5(49-58)Online publication date: 24-Nov-2016
  • (2014)A Survey on Testbeds and Experimentation Environments for Wireless Sensor NetworksIEEE Communications Surveys & Tutorials10.1109/COMST.2014.232005116:4(1820-1838)Online publication date: Dec-2015
  • (2013)A testbed for adaptive security for IoT in eHealthProceedings of the International Workshop on Adaptive Security10.1145/2523501.2523506(1-8)Online publication date: 8-Sep-2013
  • (2013)FlockLabProceedings of the 12th international conference on Information processing in sensor networks10.1145/2461381.2461402(153-166)Online publication date: 8-Apr-2013
  • (2013)A long-term study of correlations between meteorological conditions and 802.15.4 link performance2013 IEEE International Conference on Sensing, Communications and Networking (SECON)10.1109/SAHCN.2013.6644981(221-229)Online publication date: Jun-2013
  • (2012)A lightweight approach to online detection and classification of interference in 802.15.4-based sensor networksACM SIGBED Review10.1145/2367580.23675829:3(11-20)Online publication date: 1-Jul-2012
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