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FPGA-Based Implementation and Experimental Demonstration of a Vehicular VLC System.

, , and . VCC, page 282-287. IEEE, (2023)

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Modeling Method for Interference Analysis between IMT-2020 and Satellite in the mmWave Band., , , , and . GLOBECOM Workshops, page 1-6. IEEE, (2019)FPGA-Based Implementation and Experimental Demonstration of a Vehicular VLC System., , and . VCC, page 282-287. IEEE, (2023)Methods to Evaluate and Mitigate the Interference from Maritime ESIM to Other Services in 27.5-29.5 GHz Band., , and . ICTC, page 1058-1063. IEEE, (2018)Experimental Investigation of Angle Diversity Receiver for Vehicular VLC., , and . MobiCom, page 148:1-148:3. ACM, (2023)Implementation of Software-Defined Adaptive DCO-OFDM for Vehicular Visible Light Communication., , and . 6GNet, page 1-3. IEEE, (2023)Artificial Neural Network Modeling for Path Loss Prediction in Urban Environments., , and . CoRR, (2019)Experimental Investigation of MISO Vehicular Visible Light Communication Under Mobility Conditions., , , and . VCC, page 276-281. IEEE, (2023)Adjacent Channel Compatibility between OFDM-Based Earth Station in Motion and 5G., , , and . GLOBECOM Workshops, page 1-6. IEEE, (2019)Vehicular Visible Light Communications with A Solar Panel Receiver., , , and . MobiCom, page 128:1-128:3. ACM, (2023)Dual-Channel Visible Light Communication System for Enhanced V2V Video Streaming., , and . ICSPIS, page 1-6. IEEE, (2024)