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Supervising Attention in an E-Learning System

机译:监督电子学习系统中的注意力

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Until now, the level of attention of a worker has been evaluated through his/her productivity: the more one produces, the better his/her attention at work. First, the worst aspect about this approach is that it only points out a potential decrease of attention after a productivity loss. An approach that could point out, in advance, upcoming breaks in attention could allow active/preventive interventions rather than reactive ones. In this paper we present a distributed system for monitoring attention in teams (of people). It is especially suited for people working with computers and it can be interesting for domains such as the workplace or the classroom. It constantly analyzes the behavior of the user while interacting with the computer and together with knowledge about the task, is able to temporally classify attention.
机译:到目前为止,一名工人的关注程度通过他/她的生产力进行了评估:越多,生产越多,他的注意力就越好。首先,关于这种方法的最糟糕的方面是,在生产率损失后它只指出了关注的潜在降低。可以提前指出的方法即将到来的注意力突破可能允许活跃/预防性干预而不是反应性的干预措施。在本文中,我们提出了一个用于监测团队(人)的关注的分布式系统。它特别适用于使用计算机的人,并且对于工作场所或教室等域来说,它可能是有趣的。它不断分析用户在与计算机交互时的行为,以及与任务的知识一起,能够在时间上分类关注。

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