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79 GHz Fully Integrated Fully Differential Si/SiGe HBT Amplifier for Automotive Radar Applications.

, , , , and . ICECS, page 1011-1014. IEEE, (2006)

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Ultra-Low-Noise 50-nm InGaAs mHEMT Technology and MMICs for Room Temperature and Cryogenic Applications., , , , , , and . IGARSS, page 1115-1118. IEEE, (2023)Advanced mHEMT Technologies for Use in Radar, Communication and Meteorological Applications., , , , , , , and . BCICTS, page 219-224. IEEE, (2023)79 GHz Fully Integrated Fully Differential Si/SiGe HBT Amplifier for Automotive Radar Applications., , , , and . ICECS, page 1011-1014. IEEE, (2006)Towards a highly flexible spectrum sensing platform for cognitive radio networks., , , , , , and . ISSSE, page 1-6. IEEE, (2012)Single-Ended Resistive Down-Converter MMICs in InGaAs mHEMT and GaN-HEMT Technologies for D-Band (110-170 GHz) Applications., , , , , and . BCICTS, page 288-291. IEEE, (2023)InGaAs HEMT Technology for Submillimeter-Wave and Ultra-Wideband Monolithic Integrated Circuits., , , , , and . IGARSS, page 565-567. IEEE, (2023)Highly flexible cognitive radio spectrum sensing front-end., , , and . RWS, page 181-183. IEEE, (2014)A 1.92-GS/s CT ΔΣ modulator with 70-db DR and 78-db SFDR in 15-MHz bandwidth., , , , , , and . NEWCAS, page 480-483. IEEE, (2014)Simulation of a Lévy process by PCA sampling to reduce the effective dimension., , and . WSC, page 436-443. WSC, (2008)