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Embedding Entities and Relations for Learning and Inference in Knowledge Bases
A survey on approaches to learning first-order logic rules over knowledge graphs.
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Embedding Entities and Relations for Learning and Inference in Knowledge Bases
By Wu, Hong, Wen-tau Yih, Wang, Kewen, Omran, Pouya Ghiasnezhad, Li, JiangmengarXiv (Cornell University)
Read original article →This paper reviews state-of-the-art systems for learning first-order logic rules over knowledge graphs. It conducts a comparative analysis of various approaches, including ILP-based, statistical path generalisation, and neuro-symbolic methods.
The authors highlight important application scenarios of rule learning in knowledge graph completion, fact checking, and other research areas.
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