Knowledge-Based Content Linking for Online Textbooks

Rui Meng, Shuguang Han, Yun Huang, Daqing He, Peter Brusilovsky
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引用次数: 14

Abstract

Although the volume of online educational resources has dramatically increased in recent years, many of these resources are isolated and distributed in diverse websites and databases. This hinders the discovery and overall usage of online educational resources. By using linking between related subsections of online textbooks as a testbed, this paper explores multiple knowledge-based content linking algorithms for connecting online educational resources. We focus on examining semantic-based methods for identifying important knowledge components in textbooks and their usefulness in linking book subsections. To overcome the data sparsity in representing textbook content, we evaluated the utility of external corpuses, such as more textbooks or other online educational resources in the same domain. Our results show that semantic modeling can be integrated with a term-based approach for additional performance improvement, and that using extra textbooks significantly benefits semantic modeling. Similar results are obtained when we applied the same approach to other domains.
基于知识的在线教科书内容链接
尽管近年来在线教育资源的数量急剧增加,但其中许多资源是孤立的,分布在不同的网站和数据库中。这阻碍了在线教育资源的发现和全面利用。本文以在线教科书相关章节之间的链接为实验平台,探索了多种基于知识的在线教育资源链接算法。我们的重点是研究基于语义的方法来识别教科书中重要的知识成分,以及它们在连接书籍子章节中的作用。为了克服表示教科书内容的数据稀疏性,我们评估了外部语料库的效用,例如同一领域的更多教科书或其他在线教育资源。我们的结果表明,语义建模可以与基于术语的方法集成以获得额外的性能改进,并且使用额外的教科书显著地有利于语义建模。将同样的方法应用于其他领域也得到了类似的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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