A Method for Semi-automatic Explicitation of Agentźs Behavior
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This paper presents a method for evaluating the credibility of agentsâ behaviors in immersive multi-agent
simulations. It combines two approaches. The first one is based on a qualitative analysis of questionnaires
filled by the users and annotations filled by others participants to draw categories of users (related to their
behavior in the context of the simulation or in real life). The second one carries out a quantitative behavior
data collection during simulations in order to automatically extract behavior clusters. We then study the
similarities between user categories, participantsâ annotations and behavior clusters. Afterward, relying on
user categories and annotations, we compare human behaviors to agent ones in order to evaluate the agentsâ
credibility and make their behaviors explicit. We illustrate our method with an immersive driving simulator
experiment.