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Skills Assessment of Users in Medical Training Based on Virtual Reality Using Bayesian Networks

机译:基于虚拟现实的医学培训技能评估,基于贝叶斯网络的虚拟现实

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Virtual reality allows the development of digital environments that can explore users' senses to provide realistic and immersive experiences. When used for training purposes, interaction data can be used to verify users skills. In order to do that, intelligent methodologies must be coupled to the simulations to classify users' skills into N a priori defined classes of expertise. To reach that, models based on intelligent methodologies are composed from data provided by experts. However, online Single User's Assessment System (SUAS) for training must have low complexity algorithms to do not compromise the performance of the simulator. Several approaches to perform it have been proposed. In this paper, it is made an analysis of performance of SUAS based on a Bayesian Network and also a comparison between that SUAS and another methodology based on Classical Bayes Rule.
机译:虚拟现实允许开发能够探索用户感官的数字环境,以提供现实和沉浸的体验。当用于培训目的时,交互数据可用于验证用户技能。为此,智能方法必须耦合到模拟,以将用户的技能分类为n先验定义的专业专业知识。为此,基于智能方法的模型由专家提供的数据组成。但是,在线单一用户的评估系统(SUAS)用于培训必须具有低复杂性算法,无法损害模拟器的性能。已经提出了几种执行它的方法。在本文中,基于贝叶斯网络的SUA的性能分析,并且该苏斯基于古典贝叶斯规则的苏斯和另一种方法的比较。

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