TY - JOUR
T1 - Energy-efficient low duty cycle MAC protocol fo wireless body area networks
AU - Marinković, Stevan Jovica
AU - Popovici, Emanuel Mihai
AU - Spagnol, Christian
AU - Faul, Stephen
AU - Marnane, William Peter
PY - 2009/11
Y1 - 2009/11
N2 - This paper presents an energy-efficient medium access control protocol suitable for communication in a wireless body area network for remote monitoring of physiological signals such as EEG and ECG. The protocol takes advantage of the static nature of the body area network to implement the effective time-division multiple access (TDMA) strategy with very little amount of overhead and almost no idle listening (by static, we refer to the fixed topology of the network investigated). The main goal is to develop energy-efficient and reliable communication protocol to support streaming of large amount of data. TDMA synchronization problems are discussed and solutions are presented. Equations for duty cycle calculation are also derived for power consumption and battery life predictions. The power consumption model was also validated through measurements. Our results show that the protocol is energy efficient for streaming communication as well as sending short bursts of data, and thus can be used for different types of physiological signals with different sample rates. The protocol is implemented on the analog devices ADF7020 RF transceivers.
AB - This paper presents an energy-efficient medium access control protocol suitable for communication in a wireless body area network for remote monitoring of physiological signals such as EEG and ECG. The protocol takes advantage of the static nature of the body area network to implement the effective time-division multiple access (TDMA) strategy with very little amount of overhead and almost no idle listening (by static, we refer to the fixed topology of the network investigated). The main goal is to develop energy-efficient and reliable communication protocol to support streaming of large amount of data. TDMA synchronization problems are discussed and solutions are presented. Equations for duty cycle calculation are also derived for power consumption and battery life predictions. The power consumption model was also validated through measurements. Our results show that the protocol is energy efficient for streaming communication as well as sending short bursts of data, and thus can be used for different types of physiological signals with different sample rates. The protocol is implemented on the analog devices ADF7020 RF transceivers.
KW - Body area networks (BANs)
KW - Energy efficiency
KW - Medium access control (MAC) protocol
KW - Wireless sensor networks
UR - https://www.scopus.com/pages/publications/70449567214
U2 - 10.1109/TITB.2009.2033591
DO - 10.1109/TITB.2009.2033591
M3 - Article
C2 - 19846380
AN - SCOPUS:70449567214
SN - 1089-7771
VL - 13
SP - 915
EP - 925
JO - IEEE Transactions on Information Technology in Biomedicine
JF - IEEE Transactions on Information Technology in Biomedicine
IS - 6
M1 - 5290149
ER -