混合学习课程中的自动内容搜索模型

Mohamed Mahmood Abdulkarim, Mohamed Alsaeed, Sohail Safdar
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引用次数: 0

摘要

混合式学习是当今新兴的教学方法之一。它的名声是由于电子和传统教学方法的整合,已经证明了显著的效果。值得注意的是,学生在上课时需要获得额外的资源。在电子学习中,他们可以在课后或在指导下提前搜索相关参考资料。然而,值得注意的是,在正在进行的讲座中,有参考资料可以帮助学生不错过任何重要的概念,也可以改善他们的学习体验。本研究的主要目的是通过在活跃的讲座中应用文献检索来增强文献检索。本研究采用语音识别系统从授课教师的语音中获取关键词。词干提取和TF -IDF用于获取相关关键字,从而形成所需的关键字串。与传统的搜索方法相比,这个过程在后台工作,产生了显著的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic Content Searching Model During Blended Learning Class Sessions
Blended Learning is one of the emerging methods of teaching and learning these days. Its fame is due to the integration of both electronic as well as traditional teaching methods that has proven remarkable outcomes. It is noted that the students require an access of additional resources while they attend their lectures. In e-learning they have this provision of searching related reference material either after their lecture class or they may do so in advance, if guided. However, it may be noted that, having the reference material right at the time of ongoing lecture may help the student not to miss any important concept but also improves their learning experience. The main objective of this research is to enhance the literature search by applying it during active lecture sessions. The research adapted the voice recognition system to acquire the keywords from instructor's voice during lecture. Stemming and TF -IDF is used to acquire relevant keywords that results in the formulation of desired key strings. The process has worked in background and produced significant results in comparison to traditional search methods.
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