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Named Entity Recognition, Linking and Generation for Greek Legislation

机译:名为实体识别,链接和生成希腊立法

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We investigate named entity recognition in Greek legislation using state-of-the-art deep neural network architectures. The recognized entities are used to enrich the Greek legislation knowledge graph with more detailed information about persons, organizations, geopolitical entities, legislation references, geographical landmarks and public document references. We also interlink the textual references of the recognized entities to the corresponding entities represented in other open public datasets and, in this way, we enable new sophisticated ways of querying Greek legislation. Relying on the results of the aforementioned methods we generate and publish a new dataset of geographical landmarks mentioned in Greek legislation. We make available publicly all datasets and other resources used in our study. Our work is the first of its kind for the Greek language in such an extended form and one of the few that examines legal text in a full spectrum, for both entity recognition and linking.
机译:我们使用最先进的深神经网络架构调查希腊立法中的命名实体识别。公认的实体用于丰富希腊立法知识图表,了解有关人员,组织,地缘政治实体,立法参考,地理位基地和公共文件参考的更多详细信息。我们还将识别的实体的文本引用介入到其他开放公共数据集中代表的相应实体,并以这种方式,我们可以启用新的查询希腊立法的复杂方法。依靠上述方法的结果,我们在希腊立法中提到的新的地理标志性的新数据集。我们可以公开提供我们研究中使用的所有数据集和其他资源。我们的作品是以这种延长形式的希腊语和少数几个审查全方位的法律文本之一的首先,为实体认可和连接。

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