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Automated synthesis of control algorithms from first principles

机译:根据第一原理自动合成控制算法

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A variety of machine learning techniques have been employed to automatically create control algorithms for autonomous vehicles. Much research has focused on various ¿black box¿ approaches, in which the synthesized or learned control algorithms perform well when tested, but are difficult or impossible to analyze and understand. This paper presents the use of the ADATE system to evolve a control algorithm based on a racing car simulator. The system evolved compact and analyzable yet sophisticated control algorithms capable of driving millions of randomly generated tracks at high speeds without ever driving off the road. The approach presented is likely to be applicable to most automatic control problems, given a set of training examples and a suitable software simulator.
机译:已经采用了多种机器学习技术来自动创建用于自动驾驶车辆的控制算法。许多研究都集中在各种“黑匣子”方法上,在这种方法中,经过综合或学习的控制算法在测试时表现良好,但很难或不可能进行分析和理解。本文介绍了使用ADATE系统来开发基于赛车模拟器的控制算法的方法。该系统发展了紧凑,可分析但又复杂的控制算法,该算法可以高速驱动数百万条随机生成的轨道,而无需离开道路。给出一组训练示例和合适的软件模拟器,提出的方法很可能适用于大多数自动控制问题。

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