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A Text Mining Approach for Automatic Selection of Academic Course Topics based on Course Specifications

机译:基于课程规范的学术课程主题自动选择的文本挖掘方法

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Topics selection for an educational material can take a lot of manual work. The manual operations can be exhaustive, especially in case of large volume of materials. In order to overcome this problem, we have proposed an automated topic selection approach, which is able to select topics automatically for any educational material with a consideration of achieving course specifications. Our research focused on text mining and n-gram analysis. In addition, filtering criteria was applied to improve efficiency and to eliminate as many irrelevant or non-critical keyphrases as possible. The proposed method was applied on educational materials in Institute of Statistical Studies and Research (ISSR), information technology and Computer Sciences department, Cairo University and in the American University of Beirut (AUB), electrical and computer engineering department, Beirut, Lebanon. The results show that the automatic selection technique is more reliable than the manual selection and reduced a lot of time and effort for course coordinators and teachers to choose the topics that will be taught and discover them automatically.
机译:选择教育材料的主题可能需要大量的手工工作。手动操作可能是详尽无遗的,尤其是在大量材料的情况下。为了克服这个问题,我们提出了一种自动主题选择方法,该方法能够在考虑达到课程规范的情况下为任何教育材料自动选择主题。我们的研究重点是文本挖掘和n-gram分析。此外,应用了过滤标准以提高效率并消除尽可能多的不相关或非关键的关键短语。该方法已应用于开罗大学统计研究所(ISSR),信息技术和计算机科学系以及黎巴嫩贝鲁特美国贝鲁特大学(AUB)电气和计算机工程系的教材中。结果表明,自动选择技术比手动选择更可靠,并且减少了课程协调员和教师选择要教授的主题并自动发现它们的时间和精力。

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