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Assessing sentence scoring techniques for extractive text summarization

机译:评估句子评分技术以提取文本摘要

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摘要

Text summarization is the process of automatically creating a shorter version of one or more text documents. It is an important way of finding relevant information in large text libraries or in the Internet. Essentially, text summarization techniques are classified as Extractive and Abstractive. Extractive techniques perform text summarization by selecting sentences of documents according to some criteria. Abstractive summaries attempt to improve the coherence among sentences by eliminating redundancies and clarifying the contest of sentences. In terms of extractive summarization, sentence scoring is the technique most used for extractive text summarization. This paper describes and performs a quantitative and qualitative assessment of 15 algorithms for sentence scoring available in the literature. Three different datasets (News, Blogs and Article contexts) were evaluated. In addition, directions to improve the sentence extraction results obtained are suggested.
机译:文本摘要是自动创建一个或多个文本文档的较短版本的过程。这是在大型文本库或Internet中查找相关信息的重要方法。本质上,文本摘要技术分为提取性和抽象性。提取技术通过根据一些标准选择文档的句子来执行文本摘要。抽象性摘要试图通过消除冗余并阐明句子之间的竞争来提高句子之间的连贯性。就提取摘要而言,句子评分是最常用于提取文本摘要的技术。本文描述并执行了文献中可用的15种句子评分算法的定量和定性评估。评估了三个不同的数据集(新闻,博客和文章上下文)。另外,建议了改善获得的句子提取结果的方向。

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