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Другие публикации лиц с тем же именем

Biosafety Considerations of a Capacitive Link for Wireless Power Transfer to Biomedical Implants., , и . BioCAS, стр. 1-4. IEEE, (2018)A 1-10-MHz Frequency-Aware CMOS Active Rectifier With Dual-Loop Adaptive Delay Compensation and >230-mW Output Power for Capacitively Powered Biomedical Implants., , , и . IEEE J. Solid State Circuits, 55 (3): 756-766 (2020)Self-biased resistive-feedback current-reused CMOS UWB LNA with 1.7dB nf for IR-UWB applications., , и . ICM, стр. 132-135. IEEE, (2014)26.7 A 280µW 108dB DR Readout IC with Wireless Capacitive Powering Using a Dual-Output Regulating Rectifier for Implantable PPG Recording., , , и . ISSCC, стр. 412-414. IEEE, (2020)Transcutaneous capacitive wireless power transfer (C-WPT) for biomedical implants., , , и . ISCAS, стр. 1-4. IEEE, (2017)Block-Sparse Compressive Sensing for High-Fidelity Recording of Photoplethysmogram., , и . BioCAS, стр. 1-4. IEEE, (2018)The Effects of Filtering PPG Signal on Pulse Arrival Time-Systolic Blood Pressure Correlation., , , , и . EMBC, стр. 674-677. IEEE, (2022)A 1-10MHz Frequency-Aware CMOS Active Rectifier with Dual-Loop Adaptive Delay Compensation and >230 mW Output Power for Capacitively Powered Biomedical Implants., , и . CICC, стр. 1-4. IEEE, (2019)Highly phase-linear self-biased CMOS IR-UWB LNA with Sub-ps group-delay variations., , и . ICM, стр. 153-156. IEEE, (2016)Minimally invasive muscle-based recording of photoplethysmogram toward chronic implantation., , , и . BioCAS, стр. 388-391. IEEE, (2016)