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A Composite Kernel Approach for Detecting Interactive Segments in Chinese Topic Documents

机译:一种用于中文主题文档中交互式句段检测的复合核方法

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Discovering the interactions between persons mentioned in a set of topic documents can help readers construct the background of a topic and facilitate comprehension. In this paper, we propose a rich interactive tree structure to represent syntactic, content, and semantic information in text. We also present a composite kernel classification method that integrates the tree structure with a bigram kernel to identify text segments that mention person interactions in topic documents. Empirical evaluations demonstrate that the proposed tree structure and bigram kernel are effective and the composite kernel approach outperforms well-known relation extraction and PPI methods.
机译:发现一组主题文档中提到的人与人之间的互动可以帮助读者构建主题的背景并有助于理解。在本文中,我们提出了一种丰富的交互式树结构来表示文本中的句法,内容和语义信息。我们还提出了一种复合内核分类方法,该方法将树结构与bigram内核集成在一起,以识别提及主题文档中人与人互动的文本段。经验评估表明,所提出的树结构和二元核是有效的,并且复合核方法优于已知的关系提取和PPI方法。

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