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Semi-automatic knowledge population in a legal document management system

机译:法律文件管理系统中的半自动知识填充

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摘要

Every organization has to deal with operational risks, arising from the execution of a company's primary business functions. In this paper, we describe a legal knowledge management system which helps users understand the meaning of legislative text and the relationship between norms. While much of the knowledge requires the input of legal experts, we focus in this article on NLP applications that semi-automate essential time-consuming and lower-skill tasks-classifying legal documents, identifying cross-references and legislative amendments, linking legal terms to the most relevant definitions, and extracting key elements of legal provisions to facilitate clarity and advanced search options. The use of Natural Language Processing tools to semi-automate such tasks makes the proposal a realistic commercial prospect as it helps keep costs down while allowing greater coverage.
机译:每个组织都必须应对因执行公司主要业务职能而产生的运营风险。在本文中,我们描述了一个法律知识管理系统,该系统可以帮助用户理解立法文本的含义以及规范之间的关系。虽然许多知识需要法律专家的投入,但我们在本文中将重点放在NLP应用程序上,这些应用程序将基本耗时和技能较低的任务半自动化,包括对法律文件进行分类,识别交叉引用和立法修正案,将法律术语链接到最相关的定义,并提取法律规定的关键要素,以促进清晰度和高级搜索选项。使用自然语言处理工具将这些任务半自动化可以使该提案具有现实的商业前景,因为它有助于降低成本,同时允许更大的覆盖范围。

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  • 来源
    《Artificial Intelligence and Law》 |2019年第2期|227-251|共25页
  • 作者单位

    Department of Computer Science, University of Turin, Turin, Italy;

    Department of Computer Science, University of Turin, Turin, Italy;

    Department of Computer Science, University of Turin, Turin, Italy;

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