Exploring named-entity recognition techniques for academic books

IF 2.2 3区 管理学 Q2 INFORMATION SCIENCE & LIBRARY SCIENCE
Pablo Calleja Ibañez, Elea Giménez-Toledo
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Abstract

Recent advances in the natural language processing (NLP) field have achieved impressive results in various tasks. However, NLP techniques are underrepresented in the analysis of Humanities and Social Science texts and in languages other than English. In particular, academic books are a highly valuable source of information that has not been exploited by these techniques at all. The recognition of named entities (person names, organizations or locations) and their semantic annotation over books could enrich the visibility and discoverability of the information by users. This is an opportunity for academia and the academic publishing industry in which semantic search is a central task and now books can be queried by named entities of interest that are in their content. This work proposes a methodology to apply named-entity recognition to publish the results into an ontological semantic-web format. The work has been performed over a corpus of academic books provided by UNE (Unión de Editoriales Universitarias Españolas, Union of Spanish University Presses). Results show an enrichment of the information extracted over the books and of the possibilities of querying them at the individual level but also within the whole set of books, increasing the possibilities for books to be discovered or retrieved beyond metadata.

Abstract Image

探索学术书籍的命名实体识别技术
自然语言处理(NLP)领域的最新进展在各种任务中取得了令人瞩目的成果。然而,NLP 技术在分析人文和社会科学文本以及英语以外的其他语言文本方面的代表性不足。特别是,学术书籍是一个非常有价值的信息来源,但这些技术却完全没有加以利用。识别图书中的命名实体(人名、组织或地点)并对其进行语义注释,可以丰富用户对信息的可见性和可发现性。这对学术界和学术出版业来说是一个机遇,因为在学术界和学术出版业中,语义搜索是一项核心任务,现在可以通过图书内容中感兴趣的命名实体对图书进行查询。这项工作提出了一种应用命名实体识别的方法,将识别结果发布为本体语义网格式。这项工作是在 UNE(Unión de Editoriales Universitarias Españolas,西班牙大学出版社联盟)提供的学术书籍语料库中进行的。结果表明,从图书中提取的信息得到了丰富,不仅可以在单个层面上查询图书,还可以在整套图书中进行查询,从而提高了发现或检索元数据之外的图书的可能性。
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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来源期刊
Learned Publishing
Learned Publishing INFORMATION SCIENCE & LIBRARY SCIENCE-
CiteScore
4.40
自引率
17.90%
发文量
72
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