A multi-agent deep reinforcement learning framework for automated driving on highways

Louis Bakker, Sergio Grammatico
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引用次数: 2

Abstract

We apply deep reinforcement learning to automated driving on highways. We propose a novel, simple framework with improved performance with respect to the state of the art. When implementing our algorithm on multilane highway scenarios, after the training phase, we observe via numerical simulations that the vehicles are able to avoid collisions and to reach their respective destination lanes with very high probability.
高速公路自动驾驶的多智能体深度强化学习框架
我们将深度强化学习应用于高速公路上的自动驾驶。我们提出了一个新颖,简单的框架,提高了性能,相对于艺术的状态。当我们的算法在多车道高速公路场景中实施时,经过训练阶段,我们通过数值模拟观察到车辆能够避免碰撞并以非常高的概率到达各自的目的车道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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