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Neural Cross-Lingual Transfer and Limited Annotated Data for Named Entity Recognition in Danish

机译:在丹麦语中指定实体识别的神经交叉旋转和有限的注释数据

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Named Entity Recognition (NER) has greatly advanced by the introduction of deep neural architectures. However, the success of these methods depends on large amounts of training data. The scarcity of publicly-available human-labeled datasets has resulted in limited evaluation of existing NER systems, as is the case for Danish. This paper studies the effectiveness of cross-lingual transfer for Danish, evaluates its complementarity to limited gold data, and sheds light on performance of Danish NER.
机译:被命名实体识别(NER)通过引入深度神经架构的引入大大提升。但是,这些方法的成功取决于大量的培训数据。公开可用的人类标签数据集的稀缺性导致现有NER系统的有限评估,正如丹麦语的情况一样。本文研究了丹麦交叉转移的有效性,评估其对金数据有限的互补性,并阐明了丹麦人的表现。

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