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Simultaneous assessment of teams in collaborative virtual environments using Fuzzy Naive Bayes

机译:使用模糊天真贝叶斯同时评估合作虚拟环境中的团队

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In the recent years, computational architectures have been proposed to allow teams assessment in collaborative training based on virtual reality. In the virtual environments, procedures are performed by a team of professionals acting simultaneously, as in real surgical rooms. It is important to verify if the group performed the procedure correctly or not. The assessment systems utilizes user and users data from the execution of the virtual procedure, generated by the virtual reality system, to be compared with predefined classes of performance. Previous approaches basically used fuzzy rule based expert systems and presented some problems with respect to calibration which was performed in phases. In this paper, we propose a new approach based on Fuzzy Naive Bayes to perform the calibration in a single phase, without lost of accuracy in the assessment of the performance.
机译:近年来,已经提出了计算架构,以允许基于虚拟现实的协同培训团队评估。在虚拟环境中,程序由一支专业人士同时行动,如真正的外科房间。重要的是要验证组是否正确执行了该过程。评估系统利用来自虚拟现实系统生成的虚拟过程的用户和用户数据,以与预定义的性能进行比较。以前的方法基本上使用了基于模糊的规则的专家系统,并对在阶段进行的校准呈现了一些问题。在本文中,我们提出了一种基于模糊幼稚贝叶斯的新方法,以在单阶段进行校准,而不会对性能进行评估而损失准确性。

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