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7.5 A TCXO-less 100Hz-minimum-bandwidth transceiver for ultra-narrow-band sub-GHz IoT cellular networks.

, , , , , , , , , , and . ISSCC, page 134-135. IEEE, (2017)

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A Flexible Physical Layer for LPWA Applications: Simulations and Field Trials., , and . WF-IoT, page 160-164. IEEE, (2019)Coherent Multi-Channel Ranging for Narrowband LPWAN: Simulation and Experimentation Results., , , , , and . WPNC, page 1-6. IEEE, (2018)7.5 A TCXO-less 100Hz-minimum-bandwidth transceiver for ultra-narrow-band sub-GHz IoT cellular networks., , , , , , , , , and 1 other author(s). ISSCC, page 134-135. IEEE, (2017)Coherent Multi-channel Ranging for Precise Localization in Narrowband LPWA Networks: Performance Trials in an Indoor Environment., , and . EuCNC/6G Summit, page 271-275. IEEE, (2021)Evaluating a TDMA MAC for body area networks using a space-time dependent channel model., , , and . PIMRC, page 2101-2105. IEEE, (2009)A 3.4Mb/s RFID Front-end for Proximity Applications Based on a Delta-modulator., , , , , and . ISSCC, page 1211-1217. IEEE, (2006)Low Complexity LoRa Frame Synchronization for Ultra-Low Power Software-Defined Radios., , and . IEEE Trans. Commun., 68 (5): 3140-3152 (2020)Multi-Frequency Phase Difference of Arrival for Precise Localization in Narrowband LPWA Networks., , , , and . ICC, page 1-6. IEEE, (2021)An Ultra-Low-Power 4.7mA-Rx 22.4mA-Tx Transceiver Circuit in 65-nm CMOS for M2M Satellite Communications., , , , , and . IEEE Trans. Circuits Syst. II Express Briefs, 65-II (5): 592-596 (2018)Comparison of Multi-channel Ranging Algorithms for Narrowband LPWA Network Localization., , , , and . UNet, volume 12293 of Lecture Notes in Computer Science, page 3-17. Springer, (2019)