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Lexicon-based context-sensitive reference comments crawler

机译:基于词典的上下文相关参考注释搜寻器

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摘要

This paper proposes a novel system that aids in the writing of research papers by gathering and analysing other researchers' comments for a given reference paper to provide some features, advantages or disadvantages of the referenced research. A lexicon-based reference comments crawler (LRCC) classifies the comments about a reference paper and the surrounding sentences using part-of-speech lexicons and a dynamic text window into four categories (normal, advantage, disadvantage and complex). The extraction of comments and surrounding sentences from research papers is effectively and efficiently carried out using the reference identifier and some simple extraction rules. In this paper, we considered the various types of reference identifiers, because a reference identifier is a key solution for the sentence extraction in the LRCC system. Several experiments were performed using published research papers to evaluate the LRCC's precision and recall. The results showed that the LRCC can extract and classify comments with a high degree of precision and recall, as well as present them to the user in an effective and efficient manner.
机译:本文提出了一种新颖的系统,该系统可通过收集和分析给定参考文献的其他研究人员的评论来帮助撰写研究论文,从而提供参考研究的某些功能,优点或缺点。基于词典的参考注释搜寻器(LRCC)使用词性词典和动态文本窗口将有关参考论文和周围句子的注释分类为四个类别(正常,优势,劣势和复杂)。使用参考标识符和一些简单的提取规则,可以有效,高效地从研究论文中提取评论和周围的句子。在本文中,我们考虑了各种类型的参考标识符,因为参考标识符是LRCC系统中句子提取的关键解决方案。使用已发表的研究论文进行了几次实验,以评估LRCC的准确性和召回率。结果表明,LRCC可以高度准确地提取和分类评论并回想,并以有效和高效的方式将其呈现给用户。

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