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Related Experiment Video

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Optoelectronics Interfaces for a VLC System for UHD Audio-Visual Content Transmission in a Passenger Van: HW Design.

Carlos Iván Del Valle Morales1, Juan Sebastián Betancourt Perlaza1, Juan Carlos Torres Zafra1

  • 1The Photonic Displays and Applications Group (GDAF), Electronic Technology Department, University Carlos III of Madrid, Calle Butarque 15, Leganés, 28911 Madrid, Spain.

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|September 14, 2024
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Summary

This study presents a hardware design for visible light communication (VLC) systems, enabling ultra-high-definition video streaming in vehicles. The system utilizes existing lamps for data transmission and is solar-powered for sustainability.

Keywords:
analog-to-digital interfacedigital-to-analog interfaceenergy harvestinglight fidelityoptical wireless communicationsself-powered systemvisible light communication

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Area of Science:

  • Optoelectronics and Communication Systems
  • Hardware Design for Wireless Networks
  • Visible Light Communication (VLC) Technology

Background:

  • Existing infrastructure in passenger vans, such as reading lamps, can be repurposed for data transmission.
  • Visible Light Communication (VLC) offers a potential solution for high-speed data transfer in confined spaces.
  • Integration of uplink and downlink channels is crucial for interactive communication systems.

Purpose of the Study:

  • To design and implement the hardware (HW) of optoelectronics interfaces for a VLC system.
  • To enable ultra-high-definition (UHD) video streaming in passenger vans using existing lighting.
  • To develop a self-powered system for mobile communication applications.

Main Methods:

  • Designed and implemented a Light Fidelity (LiFi) router for the downlink (visible light) and a USB dongle for the uplink (infrared light).
  • Utilized Light-Emitting Diodes (LEDs) and receivers optimized for specific light spectrums.
  • Integrated a solar panel and power bank to create a self-sustaining power source for the user-side components.

Main Results:

  • Achieved downlink bandwidth of 11.66 MHz and uplink bandwidth of 12.27 MHz.
  • Demonstrated successful UHD video streaming with a Single-Input Multiple-Output (SIMO) system.
  • Reached bit rates of 15.2 Mbps (OOK) and 11.25 Mbps (QPSK with OFDM) with a low bit-error rate (BER) of 3.3259 × 10-5.
  • Maintained a minimum signal-to-noise ratio (SNRmin) of 10.74 dB at 110 cm distance.
  • The solar-powered system provided 22.3 hours of battery life after 13.4 hours of charging.

Conclusions:

  • The custom hardware design of optoelectronics interfaces enables efficient VLC systems for in-vehicle communication.
  • The system is capable of delivering high-quality video streaming and interactive data transfer.
  • The self-powered, solar-integrated design enhances the practicality and sustainability of mobile VLC solutions.