Autonomous driving paper index

End-to-End Autonomous Driving: Challenges and Frontiers

2023-06-29 · IEEE Transactions on Pattern Analysis and Machine Intelligence · arXiv: 2306.16927

end-to-end autonomous drivingautonomous drivingend-to-end drivingend-to-endmotion predictionfoundation modelperceptionpredictionplanning

One-line summary

The autonomous driving community has witnessed a rapid growth in approaches that embrace an end-to-end algorithm framework, utilizing raw sensor input to generate vehicle motion plans, instead of concentrating on individual tasks such as detection and motion prediction.

Engineering notes

Key topics: end-to-end autonomous driving, autonomous driving, end-to-end driving, end-to-end, motion prediction, foundation model, perception, prediction, planning. See the paper for implementation details and experimental results.

Chinese explanation / 中文解读

中文解读待补充:本站会优先为端到端自动驾驶、BEV感知、3D目标检测、轨迹预测、路径规划、LiDAR感知等高价值论文补充中文说明。

Original abstract

The autonomous driving community has witnessed a rapid growth in approaches that embrace an end-to-end algorithm framework, utilizing raw sensor input to generate vehicle motion plans, instead of concentrating on individual tasks such as detection and motion prediction. End-to-end systems, in comparison to modular pipelines, benefit from joint feature optimization for perception and planning. This field has flourished due to the availability of large-scale datasets, closed-loop evaluation, and the increasing need for autonomous driving algorithms to perform effectively in challenging scenarios. In this survey, we provide a comprehensive analysis of more than 270 papers, covering the motivation, roadmap, methodology, challenges, and future trends in end-to-end autonomous driving. We delve into several critical challenges, including multi-modality, interpretability, causal confusion, robustness, and world models, amongst others. Additionally, we discuss current advancements in foundation models and visual pre-training, as well as how to incorporate these techniques within the end-to-end driving framework.

5.5Engineering value
7.5Research novelty
5.0Business relevance

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