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Behavior Clustering and Explicitation for the Study of Agents' Credibility: Application to a Virtual Driver Simulation

机译:行为聚类和显式研究Agent的可信度:在虚拟驾驶员仿真中的应用

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The aim of this article is to provide a method for evaluating the credibility of agents' behaviors in immersive multi-agent simulations. It is based on a quantitative data collection from both humans and agents simulation logs during an experiment. These data allow us to semi-automatically extract behavior clusters. In order to obtain explicit information about the behaviors, we analyze questionnaires filled by the users and annotations filled by a second set of participants. It enables to draw user categories related to their behavior in the context of the simulation or of their real life habits. We then study the similarities between behavior clusters, user categories, and participants' annotations. Afterwards, we evaluate the agents' credibility and make their behaviors explicit by comparing human behaviors to agent ones according to user categories and annotations. Our method is applied to the study of virtual driver simulation through an immersive driving simulator.
机译:本文的目的是提供一种在沉浸式多智能体仿真中评估智能体行为可信性的方法。它基于实验期间从人员和代理商模拟日志中收集的定量数据。这些数据使我们能够半自动提取行为簇。为了获得有关行为的明确信息,我们分析了用户填写的问卷和第二组参与者填写的注释。它可以绘制与用户在模拟或现实生活中的行为相关的用户类别。然后,我们研究行为集群,用户类别和参与者的注释之间的相似性。然后,我们通过根据用户类别和注释将人的行为与代理的行为进行比较,评估代理的信誉,并明确其行为。我们的方法通过沉浸式驾驶模拟器应用于虚拟驾驶员仿真研究。

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