Title :
Energy-efficient Contention-Resilient Medium Access for Wireless Sensor Networks
Author :
Yuanyuan Zhou ; Medidi, M.
Author_Institution :
Washington State Univ., Pullman
Abstract :
Wireless sensor networks have distinct requirements on the medium access control (MAC) protocol, including energy-efficiency, low latency, contention-resilience, etc. The trade-off between energy-efficiency and latency is usually addressed by adding synchronization overhead and/or radio hardware, and most proposed MAC do not efficiently handle the "spatially-correlated contention" common in typical sensor applications, i.e., close-by nodes reporting a common event simultaneously. We propose a cross-layered MAC protocol, which employs a dynamic forwarder selection technique, to improve both energy-efficiency and delay without requiring additional synchronization or radio hardware support. Furthermore, our MAC can efficiently handle spatially-correlated contention and scales well with the network density. Results show that our MAC provides significant energy-savings, low delay and high network throughput.
Keywords :
access protocols; wireless sensor networks; MAC protocol; energy-efficient contention-resilient medium access; medium access control protocol; wireless sensor networks; Access protocols; Delay; Energy efficiency; Hardware; Media Access Protocol; Sleep; Telecommunication traffic; Throughput; Wireless application protocol; Wireless sensor networks;
Conference_Titel :
Communications, 2007. ICC '07. IEEE International Conference on
Conference_Location :
Glasgow
Print_ISBN :
1-4244-0353-7
DOI :
10.1109/ICC.2007.527