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Superregenerative Wake-Up Receiver with 20 µW Power Consumption for Human Body Communications.

, , , , and . NTMS, page 1-5. IEEE, (2016)

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On the coverage of LPWANs: range evaluation and channel attenuation model for LoRa technology., , , , and . ITST, page 55-59. IEEE, (2015)Preliminary study of superregenerative wake-up receiver for WBANs., , , , and . ISMICT, page 1-5. IEEE, (2014)Large and Dense LoRaWAN Deployment to Monitor Real Estate Conditions and Utilization Rate., , , and . PIMRC, page 1-6. IEEE, (2018)On the selection of protocol and parameters for UWB-based wireless indoors localization., , , , and . ISMICT, page 1-5. IEEE, (2016)Soft handover method for mobile wireless sensor networks based on 6LoWPAN., and . DCOSS, page 1-6. IEEE Computer Society, (2011)Energy efficient UWB-WUR dual-radio solution for WBANs., , , , , and . ISMICT, page 64-68. IEEE, (2017)A generic wake-up radio based MAC protocol for energy efficient short range communication., , , , and . PIMRC, page 2173-2177. IEEE, (2014)Experimental RF-signal based wireless energy transmission., , and . EuCNC, page 1-6. IEEE, (2017)Energy Efficient IR-UWB WBAN using a Generic Wake-up Radio based MAC Protocol., , , and . BODYNETS, ICST, (2014)Combining IoT Deployment and Data Visualization: experiences within campus maintenance use-case., , , , , , , , , and . NOF, page 101-105. IEEE, (2018)