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An Issue-oriented Syllabus Retrieval System based on Terminology-based Syllabus Structuring and Visualization

机译:基于术语的基于术语的教学大纲构造和可视化的有导向的教学大纲检索系统

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The purpose of this research was to develop an issue-oriented syllabus retrieval system that combined terminological processing, information retrieval, similarity calculation-based document clustering, and visualization. Recently, scientific knowledge has grown explosively because of rapid advancements that have occurred in academia and society. Because of this dramatic expansion of knowledge, learners and educators sometimes struggle to comprehend the overall aspects of syllabi. In addition, learners may find it difficult to discover appropriate courses of study from syllabi because of the increasing growth of interdisciplinary studies programs. We believe that an issue-oriented syllabus structure might be more efficient because it provides clear directions for users. In this paper, we introduce an issue-oriented automatic syllabus retrieval system that integrates automatic term recognition as an issue extraction, and similarity calculation as terminology-based document clustering. We use automatically-recognized terms to represent each lecture in clustering and visualization. Retrieved syllabi are automatically classified based on their included terms or issues. The main goal of syllabus retrieval and classification is the development of an issue-oriented syllabus retrieval website that will present users with distilled knowledge in a concise form. In comparison with conventional systems, simple keyword-based syllabus retrieval is based on the assumption that our methods can provide users, and, in particular, novice users (students), with efficient lecture retrieval from an enormous number of syllabi. The system is currently in practical use for issue-oriented syllabus retrieval and clustering for syllabi for the University of Tokyo's Open Course Ware and for the School/Department of Engineering. Usability evaluations based on questionnaires used to survey over 100 students revealed that our proposed system is sufficiently efficient at syllabus retrieval.
机译:本研究的目的是开发一个面向问题的教学大纲检索系统,可以组合术语处理,信息检索,相似度计算的文档聚类和可视化。最近,科学知识因学术界和社会中发生的快速进步而产生了爆炸性。由于这种戏剧性的知识的扩大,学习者和教育工作者有时会努力理解教学大纲的整体方面。此外,由于跨学科研究计划的增长,学习者可能会发现难以从教学大纲从教学大纲发现适当的学习课程。我们认为,面向问题的教学大纲结构可能更有效,因为它为用户提供了清晰的方向。在本文中,我们介绍了一个面向问题的自动Syllabus检索系统,它将自动术语识别集成为问题提取,以及与基于术语的文档群集的相似性计算。我们使用自动识别的术语来表示聚类和可视化中的每个讲义。检索到的Syllabi基于包含条款或问题自动分类。教学大纲检索和分类的主要目标是开发出于问题的教学大纲检索网站,将以简洁的形式向用户提供蒸馏知识。与传统系统相比,基于简单的基于关键字的课程文件检索是基于我们的方法可以为用户提供用户,以及尤其是新手用户(学生),从巨大数量的教学大小写中获得有效的讲座检索。该系统目前正在实际应用于为东京大学开放课程洁具和学校/工程系的课程为期教学大纲检索和聚类。根据用于调查100多名学生的调查问卷的可用性评估显示,我们所提出的系统在教学大纲检索中足够有效。

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