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Automatic Relation Extraction with Model Order Selection and Discriminative Label Identification

机译:用模型顺序选择和鉴别标签识别自动关系提取

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In this paper, we study the problem of unsupervised relation extraction based on model order identification and discriminative feature analysis. The model order identification is achieved by stability-based clustering and used to infer the number of the relation types between entity pairs automatically. The discriminative feature analysis is used to find discriminative feature words to name the relation types. Experiments on ACE corpus show that the method is promising.
机译:本文基于模型顺序识别和鉴别特征分析研究了无监督关系提取问题。 模型顺序识别是通过基于稳定性的聚类实现的,并且用于自动地推断实体对之间的关系类型的数量。 判别特征分析用于找到命名关系类型的判别特征词。 ACE语料库的实验表明该方法是有前途的。

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