Physical Multi-Layer Phantoms for Intra-Body Communications
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[1] H. Hosaka,et al. Simplified circuit modeling and fabrication of intrabody communication devices , 2005, The 13th International Conference on Solid-State Sensors, Actuators and Microsystems, 2005. Digest of Technical Papers. TRANSDUCERS '05..
[2] Jiang Xu,et al. Propagation characteristics of intra-body communications for body area networks , 2006, CCNC 2006. 2006 3rd IEEE Consumer Communications and Networking Conference, 2006..
[3] Q. Balzano,et al. Formulation and characterization of tissue equivalent liquids used for RF densitometry and dosimetry measurements , 2004, IEEE Transactions on Microwave Theory and Techniques.
[4] Hoi-Jun Yoo,et al. The Human Body Characteristics as a Signal Transmission Medium for Intrabody Communication , 2007, IEEE Transactions on Microwave Theory and Techniques.
[5] Javier Reina-Tosina,et al. Distributed Circuit Modeling of Galvanic and Capacitive Coupling for Intrabody Communication , 2012, IEEE Transactions on Biomedical Engineering.
[6] Rizwan Bashirullah,et al. Channel characterization for galvanic coupled in vivo biomedical devices , 2011, 2011 IEEE International Symposium of Circuits and Systems (ISCAS).
[7] Amin M. Abbosh,et al. Artificial Human Phantoms: Human Proxy in Testing Microwave Apparatuses That Have Electromagnetic Interaction with the Human Body , 2015, IEEE Microwave Magazine.
[8] Hitoshi Shimasaki,et al. Signal Propagation Characteristics between Transceivers on Human Body for MHz-Band Near-Field Coupling Communication , 2013, BODYNETS.
[9] S. Uebayashi,et al. Dry phantom composed of ceramics and its application to SAR estimation , 1993 .
[10] Robin Augustine,et al. Electromagnetic modelling of human tissues and its application on the interaction between antenna and human body in the BAN context , 2009 .
[11] Peng Un Mak,et al. A preliminary two dimensional model for Intra-body Communication of Body Sensor Networks , 2008, 2008 International Conference on Intelligent Sensors, Sensor Networks and Information Processing.
[12] Paul M. Meaney,et al. A conductive plastic for simulating biological tissue at microwave frequencies , 2000 .
[13] Y. Nikawa,et al. Soft and dry phantom modeling material using silicone rubber with carbon fiber , 1996 .
[14] Wolfgang Fichtner,et al. An Attempt to Model the Human Body as a Communication Channel , 2007, IEEE Transactions on Biomedical Engineering.
[15] Elise Fear,et al. Stable and Flexible Materials to Mimic the Dielectric Properties of Human Soft Tissues , 2014, IEEE Antennas and Wireless Propagation Letters.
[16] Tomy Varghese,et al. Anthropomorphic breast phantoms for testing elastography systems. , 2006, Ultrasound in medicine & biology.
[17] Ahmed M. Eltawil,et al. Intra-body communication model based on variable biological parameters , 2015, 2015 49th Asilomar Conference on Signals, Systems and Computers.
[18] Wolfgang Fichtner,et al. Signal Transmission by Galvanic Coupling Through the Human Body , 2010, IEEE Transactions on Instrumentation and Measurement.
[19] Shuichi Shoji,et al. A very low-power consumption wireless ECG monitoring system using body as a signal transmission medium , 1997, Proceedings of International Solid State Sensors and Actuators Conference (Transducers '97).
[20] T. Nojima,et al. A dry phantom material composed of ceramic and graphite powder , 1997 .
[21] Zeljka Lucev,et al. Past Results, Present Trends, and Future Challenges in Intrabody Communication , 2018, Wirel. Commun. Mob. Comput..
[22] Bo Zhao,et al. A Five-Tissue-Layer Human Body Communication Circuit Model Tunable to Individual Characteristics , 2018, IEEE Transactions on Biomedical Circuits and Systems.
[23] Michael Faulkner,et al. Investigation of Galvanic-Coupled Intrabody Communication Using the Human Body Circuit Model , 2014, IEEE Journal of Biomedical and Health Informatics.
[24] G. Vermeeren,et al. Characterization of Scattering Parameters Near a Flat Phantom for Wireless Body Area Networks , 2008, IEEE Transactions on Electromagnetic Compatibility.
[25] Wolfgang Fichtner,et al. Galvanic Coupling Enabling Wireless Implant Communications , 2009, IEEE Transactions on Instrumentation and Measurement.
[26] Ingrid Moerman,et al. A Comprehensive Survey of Wireless Body Area Networks , 2012, Journal of Medical Systems.
[27] K. Fujii,et al. Electric Field Distributions of Wearable Devices Using the Human Body as a Transmission Channel , 2007, IEEE Transactions on Antennas and Propagation.
[28] Koichi Ito,et al. Development and characteristics of a biological tissue‐equivalent phantom for microwaves , 2001 .
[29] R. W. Lau,et al. The dielectric properties of biological tissues: II. Measurements in the frequency range 10 Hz to 20 GHz. , 1996, Physics in medicine and biology.
[30] Ken Sasaki,et al. Intra-body data transmission for the personal area network , 2005 .
[31] Peng Un Mak,et al. Quasi-Static Modeling of Human Limb for Intra-Body Communications With Experiments , 2011, IEEE Transactions on Information Technology in Biomedicine.
[32] Ahmed M. Eltawil,et al. On the optimum data carrier for intra-body communication applications , 2016 .
[33] A. W. Guy,et al. Analyses of Electromagnetic Fields Induced in Biological Tissues by Thermographic Studies on Equivalent Phantom Models , 1971 .