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Claim Detection in Judgments of the EU Court of Justice

机译:欧盟法院判决中的索赔检测

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Mining arguments from text has recently become a hot topic in Artificial Intelligence. The legal domain offers an ideal scenario to apply novel techniques corning from machine learning and natural language processing, addressing this challenging task. Following recent approaches to argumentation mining in juridical documents, this paper presents two distinct contributions. The first one is a novel annotated corpus for argumentation mining in the legal domain, together with a set of annotation guidelines. The second one is the empirical evaluation of a recent machine learning method for claim detection in judgments. The method, which is based on Tree Kernels, has been applied to context-independent claim detection in other genres such as Wikipedia articles and essays. Here we show that this method also provides a useful instrument in the legal domain, especially when used in combination with domain-specific information.
机译:从文本中挖掘参数最近已成为人工智能的热门话题。法律领域为应用来自机器学习和自然语言处理的创新技术提供了理想的方案,从而解决了这一艰巨的任务。遵循法律文件中论证挖掘的最新方法,本文提出了两个不同的贡献。第一个是一种新颖的带注释的语料库,用于法律领域的论证挖掘,以及一组注释准则。第二个是对用于判断中的索赔检测的最新机器学习方法的经验评估。该方法基于Tree Kernels,已应用于其他类型的独立于上下文的声明检测,例如Wikipedia文章和论文。在这里,我们证明了这种方法在法律领域也提供了一种有用的工具,特别是与特定领域的信息结合使用时。

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