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An Entity Relationship Extraction Model Based on Chameleon Clustering Algorithm

机译:基于变色龙聚类算法的实体关系提取模型

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Current relationship extraction models are human centered. It doesn't consider the impact of time attribute and only focuses on extracting whole relationship network of a group. In accordance with these problems, this paper proposes an entity relationship extraction model based on Chameleon Clustering Algorithm. By collecting and analyzing interactions between entities, the new model can find out sub-clusters of a group and extract relationship between these sub-clusters. It fully considers the impact of time attribute. With a real data set, the experiments demonstrate that sub-clusters and relationship between them can be found by the model we proposed efficiently. It lays a solid foundation for further study of entity relationship networks.
机译:目前的关系提取模型是人以人为本的。它不考虑时间属性的影响,并且仅关注提取组的整个关系网络。根据这些问题,本文提出了一种基于变色龙聚类算法的实体关系提取模型。通过收集和分析实体之间的交互,新模型可以发现组的子集群并提取这些子集群之间的关系。它充分考虑时间属性的影响。通过真实数据集,实验表明,我们有效地提出的模型可以找到它们之间的子集群和关系。它为进一步研究实体关系网络奠定了坚实的基础。

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