Context-Aware Target Classification with Hybrid Gaussian Process prediction for Cooperative Vehicle Safety systems
Rodolfo Valiente, Arash Raftari, Hossein Nourkhiz Mahjoub, Mahdi, Razzaghpour, Syed K. Mahmud, Yaser P. Fallah

TL;DR
This paper introduces a context-aware target classification module with hybrid Gaussian process prediction to improve the robustness of cooperative vehicle safety systems against data loss and sensor inaccuracies.
Contribution
It proposes a novel hybrid learning-based predictive model combined with a context-aware classification module for enhanced vehicle safety in V2X communication environments.
Findings
Improved trajectory prediction accuracy under communication congestion.
Enhanced robustness of CVS systems against data loss.
Validated effectiveness through simulation and real-world scenarios.
Abstract
Vehicle-to-Everything (V2X) communication has been proposed as a potential solution to improve the robustness and safety of autonomous vehicles by improving coordination and removing the barrier of non-line-of-sight sensing. Cooperative Vehicle Safety (CVS) applications are tightly dependent on the reliability of the underneath data system, which can suffer from loss of information due to the inherent issues of their different components, such as sensors failures or the poor performance of V2X technologies under dense communication channel load. Particularly, information loss affects the target classification module and, subsequently, the safety application performance. To enable reliable and robust CVS systems that mitigate the effect of information loss, we proposed a Context-Aware Target Classification (CA-TC) module coupled with a hybrid learning-based predictive modeling technique…
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Taxonomy
TopicsAutonomous Vehicle Technology and Safety · Vehicle emissions and performance · Human-Automation Interaction and Safety
MethodsClass-activation map · Gaussian Process
