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Satellite edge computing for 5G rural applications., , , , , , , , , и 3 other автор(ы). MeditCom, стр. 1-2. IEEE, (2021)Accurate broadband measurement of electromagnetic tissue phantoms using open-ended coaxial systems., , , , и . ISMICT, стр. 32-36. IEEE, (2017)Wideband phantoms of different body tissues for heterogeneous models in body area networks., , , , и . EMBC, стр. 3032-3035. IEEE, (2017)Ultra wideband propagation for future in-body sensor networks., , , , , и . PIMRC, стр. 2160-2163. IEEE, (2014)Initial Results of Semisolid Phantoms Based on Synthetic Hydrogels for the cmWave Band., , , , , и . PIMRC, стр. 1128-1129. IEEE, (2018)Experimental Path Loss Models for In-Body Communications Within 2.36-2.5 GHz., , , , , , , и . IEEE J. Biomed. Health Informatics, 19 (3): 930-937 (2015)Deployment of 5G Experiments on Underserved Areas using the Open5GENESIS Suite., , , , , , , , , и 3 other автор(ы). SmartNets, стр. 1-4. IEEE, (2021)Formulas for easy-to-prepare tailored phantoms at 2.4 GHz ISM band., , , , и . ISMICT, стр. 27-31. IEEE, (2017)Experimental ultra wideband path loss models for implant communications., , , , , , , , , и . PIMRC, стр. 1-6. IEEE, (2016)Dielectric Characterization of In Vivo Abdominal and Thoracic Tissues in the 0.5-26.5 GHz Frequency Band for Wireless Body Area Networks., , , , , , и . IEEE Access, (2019)