Rate Maximization in Vehicular uRLLC with Optical Camera Communications
Amirul Islam, Leila Musavian, and Nikolaos Thomos

TL;DR
This paper proposes an optimal power allocation and rate optimization framework for vehicular optical camera communication systems to meet ultra-reliable, low-latency requirements, enhancing data rates and latency performance in autonomous vehicle networks.
Contribution
It introduces a novel rate optimization approach using mixed-integer programming and continuous relaxation, along with an efficient algorithm for vehicular OCC under uRLLC constraints.
Findings
Increasing transmit power improves average rate.
Power allocation reduces latency.
Optimization enhances communication reliability.
Abstract
Optical camera communication (OCC) has emerged as a key enabling technology for the seamless operation of future autonomous vehicles. By leveraging the supreme performance of OCC, we can meet the stringent requirements of ultra-reliable and low-latency communication (uRLLC) in vehicular OCC. In this paper, we introduce a rate optimization approach in vehicular OCC through optimal power allocation while respecting uRLLC requirements. We first formulate a discrete-rate optimization problem as a mixed-integer programming (MIP) subject to average transmit power and uRLLC constraints for a given set of modulation schemes. To reduce the complexity in solving the MIP problem, we convert the discrete-rate problem into a continuous-rate optimization scheme. Then, we present an algorithm based on Lagrangian relaxation and Bisection method to solve the optimization problem. Considering the…
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Taxonomy
TopicsOptical Wireless Communication Technologies · IoT and Edge/Fog Computing · Wireless Communication Security Techniques
