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Experimental Path Loss Models Comparison and Localization of Wireless Endoscopic Capsule in the Ultra-Wideband Frequency Band.

, , , , , , , , and . BODYNETS, page 443-453. Springer, (2018)

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UWB Channel Characterization for Wireless Capsule Endoscopy Localization., , , and . ICC Workshops, page 1-6. IEEE, (2020)Simulation-based Digital Twin for 5G Connected Automated and Autonomous Vehicles., , , , , and . EuCNC, page 273-278. IEEE, (2022)Low complexity adaptive schemes for energy detection threshold in the IEEE 802.15.6 CSMA/CA., , and . CSCN, page 237-242. IEEE, (2016)Impact of Receivers Location on the Accuracy of Capsule Endoscope Localization., , , , , and . PIMRC, page 340-344. IEEE, (2018)Localization for capsule endoscopy at UWB frequencies using an experimental multilayer phantom., , , , and . WCNC Workshops, page 390-395. IEEE, (2018)Initial UWB in-body channel characterization using a novel multilayer phantom measurement setup., , , , and . WCNC Workshops, page 384-389. IEEE, (2018)A queue-size & channel quality based adaptation of the energy detection threshold in IEEE802.15.6 CSMA/CA., , , and . HealthCom, page 1-6. IEEE, (2016)Impact of the energy detection threshold on performance of the IEEE 802.15.6 CSMA/CA., , and . CSCN, page 224-228. IEEE, (2015)Application of link adaptation in body area networks., , and . PIMRC, page 1-6. IEEE, (2017)Using RTS/CTS to enhance the performance of IEEE 802.15.6 CSMA/CA., , and . PIMRC, page 1-5. IEEE, (2016)