Rerouting light pathways and enhancing signal-to-noise ratio to sustain and optimize vehicle-to-vehicle visible light communication
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Özet (EN)
Visible light communication (VLC) between vehicles is gaining attention as a complementary technology to radio frequency (RF) based communication methods due to its broad, license-free spectrum and immunity to interference. However, vehicle-to-vehicle (V2V) VLC can face interruptions at intersections due to the limited field of view (FOV) of the receiver. To address this challenge, this thesis presents a novel empirical approach to enhance V2V VLC along curvy roads through adjusting the lateral position of self-angle-adjustable mirror-reflective road signs (SAAMRS) and using wide-angle complementary photodiodes (CPDs) circuitry for direction sensing. A real-time image processing-based vehicle detection model is developed to adjust the SAAMRS's angle to effectively reflect the transmitted light from the transmitter vehicle (TV) towards the receiver vehicle (RV). In addition, a novel method is introduced to enhance the performance of V2V VLC by employing different transmitter (Tx) light-emitting diode (LED) array arrangements with different LED orientations. Improving the signal-to-noise ratio (SNR) is crucial for V2V VLC systems to provide long communication ranges. A V2V VLC system using on–off keying (OOK) is modeled to simulate the SNR and bit error rate (BER) for 6 different Tx configurations: single-LED Txs, as well as 3 x 3 square-, single hexagonal-, octagonal-, 5 x 5 square-, and honeycomb hexagonal-shaped LED arrays. My results show that the honeycomb hexagonal Tx design provides a 19\% improvement in system performance with a spacing of 1 cm, and maintains a 16\% improvement when the array size is reduced by a factor of 100, making it smaller than the smallest industrial headlight modules.
Yazar
Ahmet Deniz
Kurum
Boğaziçi University
Elektrik Elektronik Mühendisliği Bilim Dalı
Bu Yayına Nasıl Atıf Yapılır
Ahmet Deniz (Doctorate thesis). Rerouting light pathways and enhancing signal-to-noise ratio to sustain and optimize vehicle-to-vehicle visible light communication, 2024, Boğaziçi University.
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