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Temperature Compensation of Complex Permittivities of Biological Tissues and Organs in Quasi-Millimeter-Wave and Millimeter-Wave Bands

  • Sakai, Taiji (National Institute of Information and Communications Technology) ;
  • Wake, Kanako (National Institute of Information and Communications Technology) ;
  • Watanabe, Soichi (National Institute of Information and Communications Technology) ;
  • Hashimoto, Osamu (Department of Electrical Engineering and Electronics of Aoyama, Gakuin University)
  • 투고 : 2010.10.01
  • 발행 : 2010.12.31

초록

This study proposes a temperature compensation method of the complex permittivities of biological tissues and organs. The method is based on the temperature dependence of the Debye model of water, which has been thoroughly investigated. This method was applied to measured data at room temperature for whole blood, kidney cortex, bile, liver, and heart muscle. It is shown that our method can compensate for the Cole-Cole model using measured data at 20 $^{\circ}C$, given the Cole-Cole model based on measured data at 35 $^{\circ}C$, with a root-mean-squared deviation of 3~11 % and 2~6 % for the real and imaginary parts of the complex permittivities, respectively, among the measured tissues.

키워드

참고문헌

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피인용 문헌

  1. Ultrawideband Technology for Medical In-Body Sensor Networks: An Overview of the Human Body as a Propagation Medium, Phantoms, and Approaches for Propagation Analysis vol.60, pp.3, 2018, https://doi.org/10.1109/MAP.2018.2818458