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Semi-Automatic Annotation for Citation Function Classification

机译:引用函数分类的半自动注释

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摘要

Citation function classification generally is a way to classify citations into different functions. Commonly, functions are used to determine authors purposes of citing a particular paper. Automated classification of citation functions plays a significant role in increasing educational use of citation function in scholarly publication. Due to varied informative citation, many researchers are experiencing difficulties in retrieving automatically the nature of the citations that meet their research needs. In addition, corpus builders demand tools and models that will help them carry out citation functions annotation effectively. Most of previous studies annotated the citations manually in different ways, which is often time-consuming and domain dependent. To overcome these challenges, in this paper we propose new semi-automatic annotation for citation functions classification. The proposed approach builds an annotated corpus from the citation sentences. The effectiveness of the approach is compared with existing machine-learning methods. The results indicate that our approach outperforms other methods in terms of accuracy, precision and recall.
机译:引文函数分类通常是将引用分为不同功能的方法。通常,使用功能来确定引用特定纸张的作者目的。引文函数的自动分类在提高学术出版物中提高引文函数的教育使用方面发挥着重要作用。由于不同的信息引用,许多研究人员在自动检索符合其研究需求的引用性质时遇到困难。此外,CORPUS BUILDERS需求工具和模型,可以帮助他们有效地进行引用功能注释。以前的大多数研究以不同方式手动向引文注释,这通常是耗时和域名。为了克服这些挑战,在本文中,我们提出了新的半自动注释进行引文函数分类。拟议的方法从引文句子建立了一个注释的语料库。将该方法的有效性与现有的机器学习方法进行比较。结果表明,我们的方法在准确性,精度和召回方面优于其他方法。

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