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Papers/Learning Attention-based Embeddings for Relation Predictio...

Learning Attention-based Embeddings for Relation Prediction in Knowledge Graphs

Deepak Nathani, Jatin Chauhan, Charu Sharma, Manohar Kaul

2019-06-04ACL 2019 7Knowledge GraphsKnowledge Graph EmbeddingsKnowledge Graph CompletionKnowledge Base CompletionRelation PredictionLink Prediction
PaperPDFCodeCode(official)

Abstract

The recent proliferation of knowledge graphs (KGs) coupled with incomplete or partial information, in the form of missing relations (links) between entities, has fueled a lot of research on knowledge base completion (also known as relation prediction). Several recent works suggest that convolutional neural network (CNN) based models generate richer and more expressive feature embeddings and hence also perform well on relation prediction. However, we observe that these KG embeddings treat triples independently and thus fail to cover the complex and hidden information that is inherently implicit in the local neighborhood surrounding a triple. To this effect, our paper proposes a novel attention based feature embedding that captures both entity and relation features in any given entity's neighborhood. Additionally, we also encapsulate relation clusters and multihop relations in our model. Our empirical study offers insights into the efficacy of our attention based model and we show marked performance gains in comparison to state of the art methods on all datasets.

Results

TaskDatasetMetricValueModel
Link PredictionWN18RRHits@10.361KBGAT
Link PredictionWN18RRHits@100.581KBGAT
Link PredictionWN18RRHits@30.483KBGAT
Link PredictionWN18RRMR1940KBGAT
Link PredictionWN18RRMRR0.44KBGAT
Knowledge GraphsFB15k-237Hits@1062.6KBGAT
Knowledge GraphsFB15k-237Hits@354KBGAT
Knowledge GraphsFB15k-237Hits@146KBAT
Knowledge GraphsFB15k-237MR0.21KBAT
Knowledge GraphsFB15k-237MRR0.518KBAT
Knowledge GraphsWN18RRHits@10.361KBGAT
Knowledge GraphsWN18RRHits@100.581KBGAT
Knowledge GraphsWN18RRHits@30.483KBGAT
Knowledge Graph CompletionFB15k-237Hits@1062.6KBGAT
Knowledge Graph CompletionFB15k-237Hits@354KBGAT
Knowledge Graph CompletionFB15k-237Hits@146KBAT
Knowledge Graph CompletionFB15k-237MR0.21KBAT
Knowledge Graph CompletionFB15k-237MRR0.518KBAT
Knowledge Graph CompletionWN18RRHits@10.361KBGAT
Knowledge Graph CompletionWN18RRHits@100.581KBGAT
Knowledge Graph CompletionWN18RRHits@30.483KBGAT
Large Language ModelFB15k-237Hits@1062.6KBGAT
Large Language ModelFB15k-237Hits@354KBGAT
Large Language ModelFB15k-237Hits@146KBAT
Large Language ModelFB15k-237MR0.21KBAT
Large Language ModelFB15k-237MRR0.518KBAT
Large Language ModelWN18RRHits@10.361KBGAT
Large Language ModelWN18RRHits@100.581KBGAT
Large Language ModelWN18RRHits@30.483KBGAT
Inductive knowledge graph completionFB15k-237Hits@1062.6KBGAT
Inductive knowledge graph completionFB15k-237Hits@354KBGAT
Inductive knowledge graph completionFB15k-237Hits@146KBAT
Inductive knowledge graph completionFB15k-237MR0.21KBAT
Inductive knowledge graph completionFB15k-237MRR0.518KBAT
Inductive knowledge graph completionWN18RRHits@10.361KBGAT
Inductive knowledge graph completionWN18RRHits@100.581KBGAT
Inductive knowledge graph completionWN18RRHits@30.483KBGAT

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