Proceedings Article10.1145/958491.958523
CODA: congestion detection and avoidance in sensor networks
Chieh-Yih Wan,Shane B. Eisenman,Andrew T. Campbell +2 more
- 05 Nov 2003
- pp 266-279
1K
TL;DR: Simulation results indicate that CODA significantly improves the performance of data dissemination applications such as directed diffusion by mitigating hotspots, and reducing the energy tax with low fidelity penalty on sensing applications.
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Abstract: Event-driven sensor networks operate under an idle or light load and then suddenly become active in response to a detected or monitored event. The transport of event impulses is likely to lead to varying degrees of congestion in the network depending on the sensing application. It is during these periods of event impulses that the likelihood of congestion is greatest and the information in transit of most importance to users. To address this challenge we propose an energy efficient congestion control scheme for sensor networks called CODA (COngestion Detection and Avoidance) that comprises three mechanisms: (i) receiver-based congestion detection; (ii) open-loop hop-by-hop backpressure; and (iii) closed-loop multi-source regulation. We present the detailed design, implementation, and evaluation of CODA using simulation and experimentation. We define two important performance metrics (i.e., energy tax and fidelity penalty) to evaluate the impact of CODA on the performance of sensing applications. We discuss the performance benefits and practical engineering challenges of implementing CODA in an experimental sensor network testbed based on Berkeley motes using CSMA. Simulation results indicate that CODA significantly improves the performance of data dissemination applications such as directed diffusion by mitigating hotspots, and reducing the energy tax with low fidelity penalty on sensing applications. We also demonstrate that CODA is capable of responding to a number of congestion scenarios that we believe will be prevalent as the deployment of these networks accelerates.
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Citations
Reliable data delivery in large-scale low-power sensor networks
TL;DR: This work designs a routing architecture, Arbutus, that exploits this interplay among routing performance, link estimation, congestion control, and load balancing, and performs an extensive experimental evaluation on testbeds of 100-150 Berkeley motes.
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Ronghua Wang,Wenliang Du,Peng Ning +2 more
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Faisal Karim Shaikh,Abdelmajid Khelil,Azad Ali,Neeraj Suri +3 more
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Pavlos Antoniou,Andreas Pitsillides,Andries P. Engelbrecht,Tim Blackwell,Loizos Michael +4 more
- 01 Dec 2009
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References
Directed diffusion: a scalable and robust communication paradigm for sensor networks
Chalermek Intanagonwiwat,Ramesh Govindan,Deborah Estrin +2 more
- 01 Aug 2000
TL;DR: This paper explores and evaluates the use of directed diffusion for a simple remote-surveillance sensor network and its implications for sensing, communication and computation.
•Journal Article
An Energy-Efficient MAC Protocol for Wireless Sensor Networks
TL;DR: S-MAC as discussed by the authors is a medium access control protocol designed for wireless sensor networks, which uses three novel techniques to reduce energy consumption and support self-configuration, including virtual clusters to auto-sync on sleep schedules.
5.5K
An energy-efficient MAC protocol for wireless sensor networks
Wei Ye,John Heidemann,Deborah Estrin +2 more
- 07 Nov 2002
TL;DR: S-MAC uses three novel techniques to reduce energy consumption and support self-configuration, and applies message passing to reduce contention latency for sensor-network applications that require store-and-forward processing as data move through the network.
Wireless integrated network sensors
TL;DR: The WINS network represents a new monitoring and control capability for applications in such industries as transportation, manufacturing, health care, environmental oversight, and safety and security, and opportunities depend on development of a scalable, low-cost, sensor-network architecture.
3.6K
Geography-informed energy conservation for Ad Hoc routing
Ya Xu,John Heidemann,Deborah Estrin +2 more
- 16 Jul 2001
TL;DR: A geographical adaptive fidelity algorithm that reduces energy consumption in ad hoc wireless networks by identifying nodes that are equivalent from a routing perspective and then turning off unnecessary nodes, keeping a constant level of routing fidelity.