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A Talent Assessment Model Based on Learning Behaviors and Patterns

机译:基于学习行为和模式的人才评估模型

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摘要

Talent assessment is an important topic in various areas like enterprise management, education, and psychology. However, it is also a challenging topic as the conventional assessment methods and models are unsuitable for talent assessment due to the following two aspects: (i) domain-dependent. The assessment of talent is highly depended on a specific domain which requires a large volume of domain knowledge in the assessment model; and (ii) behavior-based (or pattern-based). The characteristics of talents are reflected by a wide range of factors like their behaviors (patterns), emotions, self-identities, and metacognition. In this paper, we propose a talent assessment model based on online learning behaviors and patterns by using fuzzy models. Specifically, we attempt to develop a talent assessment model by identifying their learning data as we believe that the learning behaviors in the online learning platforms like massive open online courses (MOOCs) can reflect some characteristics of talents. Furthermore, we discuss what are the data sources, the learning behaviors and the potential computational methods in this assessment model in details. In addition, the potential limitations and possible improvement plans are introduced.
机译:人才评估是企业管理,教育和心理等各个领域的重要课题。但是,由于传统的评估方法和模型,由于以下两个方面,传统的评估方法和模型不适合才能进行人才评估:(i)依赖域名。人才评估高度依赖于特定领域,该领域需要评估模型中大量的领域知识; (ii)基于行为(或基于模式)。人才的特征是由它们的行为(模式),情绪,自我身份和元认知等各种因素反映。在本文中,我们通过使用模糊模型提出基于在线学习行为和模式的人才评估模型。具体而言,我们试图通过识别他们的学习数据来制定人才评估模型,因为我们相信在线学习平台等大规模开放的在线课程(Moocs)中的学习行为可以反映人才的一些特征。此外,我们详细讨论了该评估模型中的数据源,学习行为和潜在计算方法是什么。此外,还引入了潜在的限制和可能的改进计划。

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