Deep author name disambiguation using DBLP data

IF 1.6 Q2 INFORMATION SCIENCE & LIBRARY SCIENCE
Zeyd Boukhers, Nagaraj Bahubali Asundi
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引用次数: 0

Abstract

Abstract In the academic world, the number of scientists grows every year and so does the number of authors sharing the same names. Consequently, it is challenging to assign newly published papers to their respective authors. Therefore, author name ambiguity is considered a critical open problem in digital libraries. This paper proposes an author name disambiguation approach that links author names to their real-world entities by leveraging their co-authors and domain of research. To this end, we use data collected from the DBLP repository that contains more than 5 million bibliographic records authored by around 2.6 million co-authors. Our approach first groups authors who share the same last names and same first name initials. The author within each group is identified by capturing the relation with his/her co-authors and area of research, represented by the titles of the validated publications of the corresponding author. To this end, we train a neural network model that learns from the representations of the co-authors and titles. We validated the effectiveness of our approach by conducting extensive experiments on a large dataset.

Abstract Image

使用DBLP数据的深度作者姓名消歧
在学术界,科学家的数量每年都在增加,同名作者的数量也在增加。因此,将新发表的论文分配给各自的作者是一项挑战。因此,作者姓名歧义被认为是数字图书馆中一个重要的开放性问题。本文提出了一种作者姓名消歧方法,通过利用作者的共同作者和研究领域,将作者姓名与其现实世界的实体联系起来。为此,我们使用了从DBLP存储库收集的数据,该存储库包含约260万共同作者撰写的500多万条书目记录。我们的方法首先对姓氏和名字首字母相同的作者进行分组。每个组中的作者通过捕捉与其共同作者和研究领域的关系来识别,由通讯作者的有效出版物的标题表示。为此,我们训练了一个神经网络模型,该模型从共同作者和标题的表示中学习。我们通过在大型数据集上进行广泛的实验来验证我们方法的有效性。
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来源期刊
CiteScore
4.30
自引率
6.70%
发文量
20
期刊介绍: The International Journal on Digital Libraries (IJDL) examines the theory and practice of acquisition definition organization management preservation and dissemination of digital information via global networking. It covers all aspects of digital libraries (DLs) from large-scale heterogeneous data and information management & access to linking and connectivity to security privacy and policies to its application use and evaluation.The scope of IJDL includes but is not limited to: The FAIR principle and the digital libraries infrastructure Findable: Information access and retrieval; semantic search; data and information exploration; information navigation; smart indexing and searching; resource discovery Accessible: visualization and digital collections; user interfaces; interfaces for handicapped users; HCI and UX in DLs; Security and privacy in DLs; multimodal access Interoperable: metadata (definition management curation integration); syntactic and semantic interoperability; linked data Reusable: reproducibility; Open Science; sustainability profitability repeatability of research results; confidentiality and privacy issues in DLs Digital Library Architectures including heterogeneous and dynamic data management; data and repositories Acquisition of digital information: authoring environments for digital objects; digitization of traditional content Digital Archiving and Preservation Digital Preservation and curation Digital archiving Web Archiving Archiving and preservation Strategies AI for Digital Libraries Machine Learning for DLs Data Mining in DLs NLP for DLs Applications of Digital Libraries Digital Humanities Open Data and their reuse Scholarly DLs (incl. bibliometrics altmetrics) Epigraphy and Paleography Digital Museums Future trends in Digital Libraries Definition of DLs in a ubiquitous digital library world Datafication of digital collections Interaction and user experience (UX) in DLs Information visualization Collection understanding Privacy and security Multimodal user interfaces Accessibility (or "Access for users with disabilities") UX studies
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