研究目的
To propose, design, and evaluate a VLC system that employs beam steering using adaptive finite vocabulary of holograms in conjunction with an imaging receiver and a DAT to enhance SNR and to mitigate the impact of ISI at high data rates (20 Gb/s).
研究成果
The fully adaptive VLC system can achieve 20 Gb/s with full receiver mobility in a realistic indoor environment. The system has strong robustness against shadowing, signal blockage, and mobility.
研究不足
The complexity is associated with the computation time required to identify the optimum location to perform BSR and the time needed to generate the hologram that generates beams at the optimum angles.
1:Experimental Design and Method Selection:
The study employs beam steering using adaptive finite vocabulary of holograms, imaging receivers, and delay adaptation techniques to enhance SNR and mitigate ISI at high data rates.
2:Sample Selection and Data Sources:
The simulation was conducted in an empty room with dimensions of 4 m × 8 m × 3 m, modeled as Lambertian reflectors.
3:List of Experimental Equipment and Materials:
RGB-LDs light units, imaging receivers, and spatial light modulators (SLMs) were used.
4:Experimental Procedures and Operational Workflow:
The system employs a location estimation algorithm (LEA) to estimate the receiver location and beam steering to direct part of the white light towards the receiver.
5:Data Analysis Methods:
The performance was evaluated in terms of impulse response, delay spread, 3 dB channel bandwidth, and SNR.
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