Title :
Low Power, Accurate Time Synchronization MAC Protocol for Real-Time Wireless Data Acquisition
Author :
Jie Zhang ; Jie Wu ; Zhao Han ; Liefeng Liu ; Kaiyun Tian ; Juan Dong
Author_Institution :
Dept. of Modern Phys. & State Key Lab. of Particle Detection & Electron., Univ. of Sci. & Technol. of China, Hefei, China
Abstract :
The issues of real-time wireless data acquisition networks, i.e., the design and management of large scale sensor networks distributed over a vast geographical area, have received more attention during the last few years. This paper proposes a real-time wireless data acquisition media access control (MAC) protocol fulfilling the requirements of high throughput, low end-to-end latency, low energy consumption and accurate time synchronization. A hybrid approach, combining the advantages of Time Division Multiple Access (TDMA) and Frequency Hopping Spread Spectrum (FHSS), is adopted for anti-jamming and collision prevention. The packets of commands and data are delivered in a “bucket brigade”-like manner for optimum bandwidth utilization and low end-to-end latency. Correspondingly, we propose a novel time synchronization approach which is tightly coupled with TDMA scheme. As the non-determinism of timestamp is removed from the transmission path, the frequency difference between local clock and parent´s clock is accurately estimated by periodically receiving beacons. The results show that our algorithm provides a hop-to-hop latency of 14 milliseconds and synchronization accuracy within 0.6 microseconds under an acceptable power consumption of 34.61 mW.
Keywords :
bandwidth allocation; frequency hop communication; spread spectrum communication; time division multiple access; wireless sensor networks; FHSS; TDMA scheme; anti-jamming; bandwidth utilization; bucket brigade-like manner; collision prevention; end-to-end latency; energy consumption; frequency hopping spread spectrum; media access control protocol; power 34.61 mW; real-time wireless data acquisition; sensor network management; time division multiple access; time synchronization MAC protocol; Data acquisition; Media Access Protocol; Real-time systems; Synchronization; Time division multiple access; Wireless communication; Frequency hopping spread spectrum; real time systems; synchronization; time division multiple access; wireless communication;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2013.2250306