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Filtering spurious knowledge graph relationships between labeled entities

机译:过滤标记实体之间的虚假知识图形关系

摘要

Systems and techniques that facilitate spurious relationship filtration from external knowledge graphs based on distributional semantics of an input corpus are provided. In one or more embodiments, a context component can generate a context-based word embedding of one or more first terms in a document collection. The embedding can yield vector representations of the one or more first terms. The one or more first terms can correspond to knowledge terms in one or more first nodes of a knowledge graph. In one or more embodiments, a filtering component can filter out a relationship between the one or more first nodes and a second node of the knowledge graph based on a similarity value being less than a threshold. The similarity value can be a function of the vector representations of the one or more first terms. In various embodiments, cosine similarity can be used to compute the similarity value.
机译:提供了基于基于输入语料库的分布语义的外部知识图的杂散关系过滤的系统和技术。在一个或多个实施例中,上下文组件可以在文档收集中生成基于上下文的词嵌入一个或多个术语。嵌入可以产生一种或多种术语的矢量表示。一个或多个术语可以对应于知识图的一个或多个第一节点中的知识术语。在一个或多个实施例中,滤波分量可以基于小于阈值的相似性值滤除一个或多个第一节点和知识图的第二节点之间的关系。相似度值可以是一个或多个第一项的矢量表示的函数。在各种实施例中,余弦相似度可用于计算相似性值。

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