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Text Summarization For Storytelling: Formal Document Case

机译:讲故事的文本摘要:正式文件案例

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Text summarization (TS) is a significant part of the human text understanding process. A large number of summarization methods has been developed in the last decade. TS is important because human have limited cognitive abilities, which makes impossible to them to deal with a large number of text documents. There are two fundamental approaches to text summarization: extractive and abstractive one. The proposed abstractive method learns an internal language representation to generate more humanlike summaries in form of comic book, paraphrasing the intention of the original text. Our idea is to automatically generate 3 images (comic strip). First the interesting concept word will be presented, secondly the tag clouds related to this concept will be visualized, and the last picture will present the attitude to this concept in documents (positive or negative). These three pictures create histories summarizing the concept representation given in the set of documents. The machine learning techniques ware used to carry out the analysis. The research analysis the Communication concerning the position of the Council published by the European Union office.
机译:文本摘要(TS)是人类文本理解过程的重要组成部分。在过去十年中已经开发了大量摘要方法。 TS很重要,因为人类的认知能力有限,这使他们无法处理大量的文本文件。文本摘要有两种基本方法:提取和抽象。建议的抽象方法学习内部语言表示,以漫画的形式生成更多的人类摘要,释放原文的意图。我们的想法是自动生成3个图像(漫画)。首先,将呈现有趣的概念词,其次是与此概念相关的标签云将被可视化,最后一张图片将在文档中向该概念呈现态度(正或负面)。这三张图片创建历史概述了文件集中给出的概念表示。用于执行分析的机器学习技术。研究分析欧洲联盟办公室发表的安理会职位的沟通。

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