DocumentCode :
15336
Title :
In-Body to On-Body Ultrawideband Propagation Model Derived From Measurements in Living Animals
Author :
Floor, Pal Anders ; Chavez-Santiago, Raul ; Brovoll, Sverre ; Aardal, Oyvind ; Bergsland, Jacob ; Grymyr, Ole-Johannes H. N. ; Halvorsen, Per Steinar ; Palomar, Rafael ; Plettemeier, Dirk ; Hamran, Svein-Erik ; Ramstad, Tor A. ; Balasingham, Ilangko
Author_Institution :
Intervention Centre, Oslo Univ. Hosp., Oslo, Norway
Volume :
19
Issue :
3
fYear :
2015
fDate :
May-15
Firstpage :
938
Lastpage :
948
Abstract :
Ultrawideband (UWB) radio technology for wireless implants has gained significant attention. UWB enables the fabrication of faster and smaller transceivers with ultralow power consumption, which may be integrated into more sophisticated implantable biomedical sensors and actuators. Nevertheless, the large path loss suffered by UWB signals propagating through inhomogeneous layers of biological tissues is a major hindering factor. For the optimal design of implantable transceivers, the accurate characterization of the UWB radio propagation in living biological tissues is indispensable. Channel measurements in phantoms and numerical simulations with digital anatomical models provide good initial insight into the expected path loss in complex propagation media like the human body, but they often fail to capture the effects of blood circulation, respiration, and temperature gradients of a living subject. Therefore, we performed UWB channel measurements within 1-6 GHz on two living porcine subjects because of the anatomical resemblance with an average human torso. We present for the first time, a path loss model derived from these in vivo measurements, which includes the frequency-dependent attenuation. The use of multiple on-body receiving antennas to combat the high propagation losses in implant radio channels was also investigated.
Keywords :
biological tissues; biomedical communication; biomedical equipment; biomedical measurement; microwave antennas; numerical analysis; phantoms; radio transceivers; receiving antennas; ultra wideband antennas; ultra wideband communication; wireless channels; UWB channel measurements; UWB radio propagation; digital anatomical models; frequency 1 GHz to 6 GHz; frequency-dependent attenuation; implant radio channels; implantable transceivers; in vivo measurements; in-body ultrawideband propagation model; living animals; living biological tissues; living porcine subjects; multiple on-body receiving antennas; numerical simulations; on-body ultrawideband propagation model; path loss model; phantoms; propagation losses; ultrawideband radio technology; wireless implants; Antenna measurements; Biological system modeling; Biomedical measurement; Dipole antennas; Loss measurement; Channel model; channel model; implant; in vivo; in-body; in-body (IB); in-vivo; path loss;
fLanguage :
English
Journal_Title :
Biomedical and Health Informatics, IEEE Journal of
Publisher :
ieee
ISSN :
2168-2194
Type :
jour
DOI :
10.1109/JBHI.2015.2417805
Filename :
7080834
Link To Document :
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