Title :
Ultrasonic intra-body networking: Interference modeling, stochastic channel access and rate control
Author :
Zhangyu Guan ; Santagati, G. Enrico ; Melodia, Tommaso
Author_Institution :
Dept. of Electr. & Comput. Eng., Northeastern Univ., Boston, MA, USA
fDate :
April 26 2015-May 1 2015
Abstract :
We consider the problem of designing optimal network control algorithms for distributed networked systems of implantable medical devices wirelessly interconnected by means of ultrasonic waves, which are known to propagate better than radio-frequency electromagnetic waves in aqueous media such as human tissues. Specifically, we propose lightweight, asynchronous, and distributed algorithms for joint rate control and stochastic channel access designed to maximize the throughput of ultrasonic intra-body area networks under energy constraints. We first develop (and validate through testbed experiments) a statistical model of the ultrasonic channel and of the spatial and temporal variability of ultrasonic interference. Compared to in-air radio frequency (RF), human tissues show a much lower propagation speed, which further causes unaligned interference at the receiver. It is therefore inefficient to perform adaptation based on instantaneous channel state information (CSI). Based on this model, we formulate the problem of maximizing the network throughput by jointly controlling the transmission rate and the channel access probability over a finite time horizon based only on a statistical characterization of interference. We then propose a fully distributed solution algorithm, and through both simulation and testbed results, we show that the algorithm achieves considerable throughput gains compared with traditional algorithms.
Keywords :
biological tissues; biomedical ultrasonics; body area networks; interference (signal); stochastic processes; CSI; aqueous media; channel access probability; distributed algorithms; distributed networked systems; energy constraints; finite time horizon; human tissues; implantable medical devices; instantaneous channel state information; joint rate control; network throughput; optimal network control algorithms; spatial variability; statistical model; stochastic channel access; temporal variability; transmission rate; ultrasonic channel; ultrasonic interference; ultrasonic intra-body area networks; ultrasonic waves; unaligned interference; Acoustics; Interference; Nakagami distribution; Radio frequency; Receivers; Throughput; Ultrasonic variables measurement;
Conference_Titel :
Computer Communications (INFOCOM), 2015 IEEE Conference on
Conference_Location :
Kowloon
DOI :
10.1109/INFOCOM.2015.7218631