AI RESEARCH
Inductive Entity Representations from Text via Link Prediction
arXiv CS.AI
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ArXi:2010.03496v4 Announce Type: replace-cross Knowledge Graphs (KG) are of vital importance for multiple applications on the web, including information retrieval, recommender systems, and metadata annotation. Regardless of whether they are built manually by domain experts or with automatic pipelines, KGs are often incomplete. Recent work has begun to explore the use of textual descriptions available in knowledge graphs to learn vector representations of entities in order to preform link prediction.