A Context Based Text Summarization System

Rafael Ferreira, F. Freitas, L. Cabral, R. Lins, Rinaldo Lima, G. Silva, S. Simske, Luciano Favaro
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引用次数: 61

Abstract

Text summarization is the process of creating a shorter version of one or more text documents. Automatic text summarization has become an important way of finding relevant information in large text libraries or in the Internet. Extractive text summarization techniques select entire sentences from documents according to some criteria to form a summary. Sentence scoring is the technique most used for extractive text summarization, today. Depending on the context, however, some techniques may yield better results than some others. This paper advocates the thesis that the quality of the summary obtained with combinations of sentence scoring methods depend on text subject. Such hypothesis is evaluated using three different contexts: news, blogs and articles. The results obtained show the validity of the hypothesis formulated and point at which techniques are more effective in each of those contexts studied.
基于上下文的文本摘要系统
文本摘要是为一个或多个文本文档创建更短版本的过程。自动文本摘要已成为大型文本库或互联网中查找相关信息的重要方式。摘要抽取技术根据一定的标准从文档中选择完整的句子来形成摘要。句子评分是当今最常用于摘录文本摘要的技术。然而,根据上下文,某些技术可能比其他技术产生更好的结果。本文主张综合运用句子评分方法得到的摘要质量取决于语篇主语。这种假设是用三种不同的语境来评估的:新闻、博客和文章。所获得的结果显示了所制定的假设的有效性,并指出哪些技术在所研究的每个背景下更有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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