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Structured Named Entity Retrieval in Audio Broadcast News

机译:音频广播新闻中的结构化命名实体检索

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This paper focuses on the role of structures in named entity retrieval inside audio transcription. We consider the transcription documents structures that guide the parsing process, and from which we deduce an optimal hierarchical structure of the space of concepts. Therefore, a concept (named entity) is represented by a node or any sub-path in this hierarchy. We show the interest of such structure in the recognition of the named entities using the conditional random fields (CRFs). The comparison of our approach to the hidden Markov model (HMM) method shows an important improvement of recognition using combining CRFs. We also show the impact of time axis in the prediction process.
机译:本文着重于音频转录内部命名实体检索中结构的作用。我们考虑指导解析过程的转录文档结构,并据此推断出概念空间的最佳分层结构。因此,概念(命名实体)由此层次结构中的节点或任何子路径表示。我们在使用条件随机字段(CRF)识别命名实体时显示了这种结构的兴趣。我们对隐马尔可夫模型(HMM)方法的比较表明,使用组合CRF可以显着提高识别率。我们还展示了时间轴在预测过程中的影响。

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