论文标题

退出模拟:大规模通向健壮和弹性的自动驾驶汽车的道路

Exiting the Simulation: The Road to Robust and Resilient Autonomous Vehicles at Scale

论文作者

Chakra, Richard

论文摘要

在过去的二十年中,由于越来越多的机器学习能力,自动驾驶已被催化为现实。这种范式转变具有改变流动性并重塑整个社会的巨大潜力。随着最新的感知,计划和控制能力的进步,正在为公众试验而推广自动驾驶技术,但是我们仍然无法严格确保这些系统在驾驶环境的长尾性质中的弹性操作。考虑到现实世界测试的局限性,自动驾驶汽车模拟是探索自动驾驶能力边缘的关键组成部分,开发成功现实世界操作所需的强大行为,并促进部署前从这些复杂系统中提取隐藏风险。本文介绍了用于开发自主驾驶系统的当前最新模拟框架和方法,重点是概述如何使用模拟来构建现实操作所需的弹性以及为弥合模拟与现实之间差距而开发的方法。提出了围绕自主驾驶模拟的主要挑战的综合,特别强调了进一步促进在模拟中不断学习并有效地将学习转移到现实世界中的机会 - 使自动驾驶汽车能够退出模拟的护栏,并在大规模上提供强大的和弹性的操作。

In the past two decades, autonomous driving has been catalyzed into reality by the growing capabilities of machine learning. This paradigm shift possesses significant potential to transform the future of mobility and reshape our society as a whole. With the recent advances in perception, planning, and control capabilities, autonomous driving technologies are being rolled out for public trials, yet we remain far from being able to rigorously ensure the resilient operations of these systems across the long-tailed nature of the driving environment. Given the limitations of real-world testing, autonomous vehicle simulation stands as the critical component in exploring the edge of autonomous driving capabilities, developing the robust behaviors required for successful real-world operation, and enabling the extraction of hidden risks from these complex systems prior to deployment. This paper presents the current state-of-the-art simulation frameworks and methodologies used in the development of autonomous driving systems, with a focus on outlining how simulation is used to build the resiliency required for real-world operation and the methods developed to bridge the gap between simulation and reality. A synthesis of the key challenges surrounding autonomous driving simulation is presented, specifically highlighting the opportunities to further advance the ability to continuously learn in simulation and effectively transfer the learning into the real-world - enabling autonomous vehicles to exit the guardrails of simulation and deliver robust and resilient operations at scale.

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