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Machine learning for user modeling in a multilingual learning system

机译:在多语言学习系统中用于用户建模的机器学习

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Towards the successful creation of user models that can be incorporated into foreign language learning systems, we have used algorithmic approaches residing in the field of machine learning. The creation of user models is even more demanding in the area of Computer Assisted Multilanguage Learning, since modeling is an even more complex process that concurrently handles information from multiple domains. These domains have important similarities but also basic differences. This paper describes the implementation of student modeling through machine learning techniques, which aims to ameliorate future multiple language learning systems. The incorporation of k-means clustering is used to address several barriers posed by the heterogeneous learning audience. The resulting system both generates and discovers user profiles, based on students' characteristics, performance and preferences. Through our system, we promote the adaptivity and individualization to each user that interacts with the application, by providing individualized help, error diagnosis and error proneness along with advice generator components.
机译:为了成功创建可以并入外语学习系统的用户模型,我们使用了机器学习领域中的算法方法。在计算机辅助多语言学习领域,用户模型的创建甚至更加苛刻,因为建模是一个更复杂的过程,可以同时处理来自多个域的信息。这些领域既有重要的相似点,也有基本的区别。本文介绍了通过机器学习技术实现学生建模的方法,旨在改善未来的多语言学习系统。 k均值聚类的合并用于解决异构学习受众所构成的若干障碍。最终的系统会根据学生的特征,表现和偏好来生成和发现用户资料。通过我们的系统,我们通过提供个性化的帮助,错误诊断和错误倾向以及建议生成器组件,来促进与应用程序交互的每个用户的适应性和个性化。

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