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首页> 外文期刊>Cognitive Systems Research >Learning HMM-based cognitive load models for supporting human-agent teamwork
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Learning HMM-based cognitive load models for supporting human-agent teamwork

机译:学习基于HMM的认知负荷模型以支持人与人的团队合作

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Cognitive studies indicate that members of a high performing team often develop shared mental models to predict others' needs and coordinate their behaviors. The concept of shared mental models is especially useful in the study of human-centered collaborative systems that require humans to team with autonomous agents in complex activities. We take the position that in a mixed human-agent team, agents empowered with cognitive load models of human team members can help humans develop better shared mental models to enhance team performance. Inspired by human information processing system, we here propose a HMM-based load model for members of human-agent teams, and investigate the development of realistic cognitive load models. A cognitive experiment was conducted in team contexts to collect data about the observable secondary task performance of human participants. The data were used to train hidden Markov models (HMM) with varied numbers of hypothetical hidden states. The result indicates that the model spaces have a three-layer structure. Statistical analysis also reveals some characteristics of the models at the top-layer. This study can be used in guiding the selection of HMM-based cognitive load models for agents in human-centered multi-agent systems.
机译:认知研究表明,一支高绩效团队的成员通常会开发共享的心理模型来预测他人的需求并协调他们的行为。共享心智模型的概念在以人为中心的协作系统的研究中特别有用,该系统要求人们在复杂的活动中与自主代理协作。我们采取的立场是,在混合人员代理团队中,赋予人员成员认知负荷模型的代理商可以帮助人们开发更好的共享心理模型,从而提高团队绩效。受人类信息处理系统的启发,我们在此为人类代理团队的成员提出基于HMM的负载模型,并研究现实的认知负载模型的开发。在团队环境中进行了一项认知实验,以收集有关人类参与者可观察到的次要任务绩效的数据。数据用于训练具有各种假设的隐藏状态的隐藏马尔可夫模型(HMM)。结果表明,模型空间具有三层结构。统计分析还揭示了顶层模型的某些特征。该研究可用于指导以人为中心的多主体系统中基于HMM的认知负荷模型的选择。

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