Planning and Decision-Making for Autonomous Vehicles
Планирование и принятие решений для автономных транспортных средств
2018-01-12
SCID: 54.1/nbdbabq7
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autonomous vehiclesbehavior-aware planningend-to-end learninginteractive planningplanning and decision-making
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Abstract (AI)
In this review, we provide an overview of emerging trends and challenges in the field of intelligent and autonomous, or self-driving, vehicles. Recent advances in the field of perception, planning, and decision-making for autonomous vehicles have led to great improvements in functional capabilities, with several prototypes already driving on our roads and streets. Yet challenges remain regarding guaranteed performance and safety under all driving circumstances. For instance, planning methods that provide safe and system-compliant performance in complex, cluttered environments while modeling the uncertain interaction with other traffic participants are required. Furthermore, new paradigms, such as interactive planning and end-to-end learning, open up questions regarding safety and reliability that need to be addressed. In this survey, we emphasize recent approaches for integrated perception and planning and for behavior-aware planning, many of which rely on machine learning. This raises the question of verification and safety, which we also touch upon. Finally, we discuss the state of the art and remaining challenges for managing fleets of autonomous vehicles.
Key Findings
1
Future planning methods must ensure safe, system-compliant behavior in complex, cluttered environments while modeling uncertain interactions with other traffic participants.
2
Integrated perception-planning, behavior-aware planning, and autonomous-vehicle fleet management represent important research directions with significant remaining challenges.
3
Interactive planning and end-to-end learning introduce unresolved safety and reliability challenges, particularly regarding verification.
4
Recent advances in perception, planning, and decision-making have substantially improved autonomous vehicles’ functional capabilities, with prototypes operating on public roads.
5
Reliable autonomous driving still lacks guaranteed performance and safety across all driving circumstances.
Research Object
autonomous vehicles and their fleets operating in road-traffic environments
Research Subject
planning and decision-making performance, safety, reliability, verification, and interaction-aware behavior under complex and uncertain driving conditions
Publication Details
Publication Date
2018-01-12
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