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Social Interaction‐Aware Dynamical Models and Decision‐Making for Autonomous Vehicles

Luca Crosato, Kai Tian, Hubert P. H. Shum, Edmond S. L. Ho, Yafei Wang, Chongfeng Wei

2023Advanced Intelligent Systems58 citationsDOIOpen Access PDF

Abstract

Interaction‐aware autonomous driving (IAAD) is a rapidly growing field of research that focuses on the development of autonomous vehicles (AVs) that are capable of interacting safely and efficiently with human road users. This is a challenging task, as it requires the AV to be able to understand and predict the behaviour of human road users. In this literature review, the current state of IAAD research is surveyed. Commencing with an examination of terminology, attention is drawn to challenges and existing models employed for modeling the behaviour of drivers and pedestrians. Next, a comprehensive review is conducted on various techniques proposed for interaction modeling, encompassing cognitive methods, machine‐learning approaches, and game‐theoretic methods. The conclusion is reached through a discussion of potential advantages and risks associated with IAAD, along with the illumination of pivotal research inquiries necessitating future exploration.

Topics & Concepts

TerminologyComputer scienceTask (project management)Field (mathematics)Human–computer interactionArtificial intelligenceData scienceRisk analysis (engineering)Systems engineeringEngineeringMedicinePure mathematicsLinguisticsPhilosophyMathematicsAutonomous Vehicle Technology and SafetyHuman-Automation Interaction and SafetyTraffic control and management