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Metro maps for efficient knowledge learning by summarizing massive electronic textbooks

机译:通过总结大型电子教科书的高效知识学习的地铁地图

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As the number of textbooks soars, people may be stuck into thousands of books when learning knowledge. In order to provide a concise yet comprehensive picture for learning, we propose a novel framework, called MM4Books, to automatically build metro maps for efficient knowledge learning by summarizing massive electronic textbooks. We represent each book in digital libraries as a sequence of chapters, and then obtain learning objects by clustering the semantically similar chapters via an unsupervised clustering method to create a learning graph, and then build the metro map by applying an integer linear programming-based technique to select a collection of high informative and fluent but low redundant learning paths from the learning graph. To the best of our knowledge, it is the first work to address this task. Experiments show that our proposed approach outperforms all the state-of-the-art baseline approaches, and we also implemented a practical MM4Books system to prove that users can really benefit from the proposed approach for knowledge learning.
机译:随着教科书的数量飙升,在学习知识时,人们可能会被困在成千上万的书中。为了提供简明且全面的学习映像,我们提出了一种新颖的框架,称为MM4Books,通过总结大规模电子教科书来自动构建Metro地图以实现高效的知识学习。我们将数字图书馆中的每本书代表为一系列章节,然后通过无监督的聚类方法群集语义类似的章节来获得学习对象来创建学习图,然后通过应用基于整数基于线性编程的技术来构建地铁地图从学习图中选择一系列高信息和流畅但低冗余的学习路径。据我们所知,它是第一个解决这项任务的工作。实验表明,我们提出的方法优于所有最先进的基线方法,我们还实施了一个实用的MM4Books系统,以证明用户可以真正受益于所提出的知识学习方法。

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