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Detection of Words Accepted to Dynamic Abstracts Focusing on Local Variation of Word Frequency

机译:检测可接受动态摘要的单词,专注于词频的局部变化

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Through the widely-spread of digital devices such as smartphone, the digital books have become more popular. We are aiming to develop a system to support reading novel taking an advantage of digital books. In this paper, we propose an elemental method to generate dynamic abstracts for each reading progress. Generating dynamic abstract can be assumed as a topic of summarization task in the field of natural language processing. The proposed method focuses on the local variation of word importance, though some existing criterions for summarization focus on the overall word importance. We prepared four types of local variation and compared the effectiveness of those with each other. We conducted the experiment to detect words accepted to manually-generated dynamic abstracts with each types of the proposed method while the general word importance criterion (tf-idf) is used as the comparative method. Through the discussions of the results, it was confirmed that some types of the proposed method were more effective to detect the words accepted to dynamic abstracts than the comparative method.
机译:通过智能手机等数字设备的广泛传播,数字书籍已经变得更加流行。我们旨在开发一个支持阅读小说的系统,从而利用数字书籍。在本文中,我们提出了一种元素方法,用于为每次阅读进度生成动态摘要。可以假设生成动态摘要作为自然语言处理领域的摘要任务的主题。所提出的方法侧重于单词重要性的局部变化,尽管一些现有的摘要标准侧重于整体单词重要性。我们准备了四种类型的局部变异,并比较了彼此的效果。我们进行了实验,以检测接受的单词与各种所提出的方法手动生成动态摘要,而一般单词重要性标准(TF-IDF)用作比较方法。通过对结果的讨论,证实了某些类型的提出方法更有效地检测到动态摘要的单词而不是比较方法。

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