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More Is Better: Sequential Combinations of Knowledge Graph Embedding Approaches

机译:更多更好:知识图嵌入方法的顺序组合

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Constructing and maintaining large-scale good quality knowledge graphs present many challenges. Knowledge graph completion has been regarded a promising direction in the knowledge graph community. The majority of current work for knowledge graph completion approaches do not take the schema of a target knowledge graph as input. As a result, the triples generated by these approaches are not necessarily consistent with the schema of the target knowledge graph. This paper proposes to improve the correctness of knowledge graph completion based on Schema Aware Triple Classification (SATC), which enables sequential combinations of knowledge graph embedding approaches. Extensive experiments show that our proposed approaches can significantly improve the correctness of the new triples produced by knowledge graph embedding methods.
机译:构建和维护大规模的优质知识图表具有许多挑战。知识图表完成已经在知识图形社区中被认为是有希望的方向。知识图表完成方法的大多数当前工作不将目标知识图的架构作为输入。结果,由这些方法产生的三元组不一定与目标知识图的架构一致。本文提出基于模式感知三重分类(SATC)来提高知识图表完成的正确性,这使得知识图嵌入方法的顺序组合。广泛的实验表明,我们的提出方法可以显着提高知识图形嵌入方法所产生的新三层的正确性。

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