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Using Argumentative Semantic Feature for Summarization

机译:使用争论性语义特征来汇总

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The last decade has witnessed digitization of many government organization's data. Text summarization of the political discourse, particularly the parliamentary proceedings is relatively a lesser explored area of research. In this paper, we investigate the role of semantics especially theory of argumentation in debate summarization and use it to design a semi automatic pipeline for generating these summaries. The proposed approach considers the topic-relevance, argumentative nature, sentiment and context features. We test our approach on the dataset of debates mined from Lok Sabha, the elected house of representatives in India. Our proposed methodology and pipeline show significant improvement over the high performing popular systems for ROUGE-1, ROUGE-2 and ROUGE-L metrics.
机译:过去十年目睹了许多政府组织的数据的数字化。政治话语的文本总结,特别是议会诉讼程序比较小的研究领域。在本文中,我们调查了语义上的作用,尤其是辩论概述中的论证理论,并用它来设计一个用于产生这些摘要的半自动管道。该方法考虑了主题相关性,争论性的性质,情绪和上下文特征。 We test our approach on the dataset of debates mined from Lok Sabha, the elected house of representatives in India.我们提出的方法和管道对Rouge-1,Rouge-2和Rouge-L指标的高性能流行系统显着改进。

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