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Unsupervised Slot Filler Refinement via Entity Community Construction

机译:通过实体社区建设进行无监督的插槽填充程序优化

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摘要

Given an entity (query), slot filling aims to find and extract the values (slot fillers) of its specific attributes (slot types) from a large-scale of document collections. Most existing work of slot filling models slot fillers separately and only considers direct relations between slot fillers and query, ignoring other slot fillers in context. In this paper we propose an unsupervised slot filler refinement approach via entity community construction to filter out the incorrect fillers collaboratively. The community-based framework mainly consists of (1) filler community generated by a point-wise mutual information-based hierarchical clustering, and (2) query community constructed by a co-occurrence graph model.
机译:给定一个实体(查询),槽位填充旨在从大规模文档集合中查找和提取其特定属性(槽位类型)的值(槽位填充符)。插槽填充的大多数现有工作都是单独对插槽填充进行建模,并且仅考虑插槽填充和查询之间的直接关系,而忽略上下文中的其他插槽填充。在本文中,我们提出了一种通过实体社区构建的无监督槽填充器细化方法,以协同过滤掉不正确的填充器。基于社区的框架主要由(1)由基于逐点互信息的层次聚类生成的填充器社区,以及(2)由共现图模型构建的查询社区组成。

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