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Multidocument Summarization of Engineering Papers Based on Macro- and Microstructure

机译:基于宏观和微观结构的工程论文多文档摘要

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摘要

This paper focuses on automatic summarization of multiple engineering papers. A summarization approach based on documents' macro- and microstructure has been proposed. The macrostructure consists of a list of ranked topics from engineering papers. Topics are discovered by extracting and grouping frequently appearing word sequences into equivalence classes. Hence, the macrostructure symbolically presents the topical links in different papers. Meanwhile, the microstructure is defined as the rhetorical structure within a single paper. The identification of microstructure is approached as a classification problem. Each sentence in a paper is automatically labeled with one of the predefined rhetorical categories. Unlike existing summarization methods that first separate documents into nonoverlapping clusters and then summarize each cluster individually, our approach aims to summarize multiple documents according to the characteristics suggested at macro- and microstructure levels. The experimental study showed that our proposed approach outperformed peer systems in terms of recall-oriented understudy for gisting evaluation scores and readers' responsiveness. In an independent manual categorization task using the summaries generated by our approach and peer systems, we also performed better in terms of precision and recall.
机译:本文着重于多篇工程论文的自动摘要。提出了一种基于文档的宏观和微观结构的总结方法。宏观结构由工程论文中的排名主题列表组成。通过提取频繁出现的单词序列并将其分组为等效类来发现主题。因此,宏观结构在不同的论文中象征性地提出了主题链接。同时,微观结构被定义为单张纸内的修辞结构。微观结构的识别被作为分类问题。论文中的每个句子都会自动用预定义的修辞类别之一标记。与现有的摘要方法不同,现有的摘要方法首先将文档分为不重叠的群集,然后分别汇总每个群集,而我们的方法旨在根据宏观和微观结构级别建议的特征汇总多个文档。实验研究表明,我们的方法在以回忆为导向的学习中,要获得较高的评估分数和读者的响应能力,其性能优于同级系统。在使用方法和对等系统生成的摘要进行的独立手动分类任务中,我们在准确性和召回率方面也表现更好。

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