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Argumentation mining

机译:论证挖掘

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摘要

Argumentation mining aims to automatically detect, classify and structure argumentation in text. Therefore, argumentation mining is an important part of a complete argumentation analyisis, i.e. understanding the content of serial arguments, their linguistic structure, the relationship between the preceding and following arguments, recognizing the underlying conceptual beliefs, and understanding within the comprehensive coherence of the specific topic. We present different methods to aid argumentation mining, starting with plain argumentation detection and moving forward to a more structural analysis of the detected argumentation. Different state-of-the-art techniques on machine learning and context free grammars are applied to solve the challenges of argumentation mining. We also highlight fundamental questions found during our research and analyse different issues for future research on argumentation mining.
机译:论证挖掘旨在自动检测,分类和构造文本中的论证。因此,论证挖掘是完整论证分析的重要组成部分,即了解系列论证的内容,其语言结构,前后论证之间的关系,认识潜在的概念信念以及在特定论证的全面连贯性内进行理解话题。我们提供了各种方法来辅助论证挖掘,从简单的论证检测开始,然后继续对检测到的论证进行更结构化的分析。应用了机器学习和上下文无关语法方面的各种最新技术来解决论证挖掘的挑战。我们还将重点介绍在研究过程中发现的基本问题,并分析不同的问题,以便将来进行论证挖掘的研究。

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