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Exploration of Simulated Creatures Learning to Cross a Highway Using Frequency Histograms

机译:利用频率直方图探索模拟生物穿越高速公路的探索

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We study via frequency histograms, the behaviour of a model of simulated cognitive agents (creatures) learning to safely cross a cellular automaton based highway. The creatures have the ability to learn from each other by evaluating how successful other creatures in the past were for their current situation. We examine the effects of the model parameters on the learning outcomes measured through metrics such as the number of creatures that have successfully crossed. In particular, we focus on the effects of the knowledge base transfer on the creatures’ success of learning. The presented model is general enough so that the considered cognitive agent, called creature, maybe even interpreted as an abstraction of an autonomous vehicle (AV), encountering suddenly another moving vehicle on its trajectory. The AV has to decide whether to continue or to break/stop in order to avoid being destroyed.
机译:我们通过频率直方图研究模拟认知代理(生物)学习安全穿越基于细胞自动机的高速公路的行为。这些生物可以通过评估过去其他生物在当前状况下的成功程度来相互学习。我们研究了模型参数对学习成果的影响,这些成果是通过指标(例如成功穿越的生物数量)来衡量的。特别是,我们专注于知识库转移对生物学习成功的影响。提出的模型足够通用,以至于被认为是认知主体的生物称为“生物”,甚至可能被解释为自动驾驶汽车(AV)的抽象,在其轨迹上突然遇到了另一辆正在行驶的汽车。 AV必须决定是继续还是中断/停止以避免被破坏。

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