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A study on al-based approaches for high-level decision making in highway autonomous driving

机译:基于al的高速公路自动驾驶高层决策方法研究

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Autonomous driving relies on a wide range of domains of research. It faces rapid technological and theoretical advances, with various methods and process developments. For the interest of the high-level decision making subpart of autonomous vehicle architecture, the previous states of the art report a vast literature, from traditional mobile robotics to human-modelling approaches. The purpose of this paper is to survey the current and major algorithms in the specific field of artificial intelligence for autonomous vehicles. Such systems are particularly suited for high-level decision making since they must, by definition, be able to perceive and react to their environment in order to reach given objectives. The scope is reduced to highway driving applications, considering individual, collective, and cooperative decisions. Strengths and limitations of the reviewed methods are compared, with respect to the structure and constraints of the studied driving situations. Open questions are proposed as a reflection towards the next generation of decision-makers for autonomous vehicles.
机译:自动驾驶依赖于广泛的研究领域。随着各种方法和工艺的发展,它面临着快速的技术和理论发展。为了自动驾驶汽车架构的高级决策子部分的利益,从传统的移动机器人技术到人类建模方法,现有技术已有大量文献报道。本文的目的是调查自动驾驶汽车人工智能特定领域中的当前和主要算法。这样的系统特别适合于高层决策,因为根据定义,它们必须能够感知并对其环境做出反应才能达到给定的目标。考虑到个人,集体和合作决策,范围缩小到高速公路驾驶应用。就所研究的驾驶情况的结构和约束条件,比较了所审查方法的优缺点。提出了开放性问题,以反映下一代自动驾驶汽车决策者的想法。

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