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4 months ago

Hypernetwork Knowledge Graph Embeddings

Ivana Balažević; Carl Allen; Timothy M. Hospedales

Hypernetwork Knowledge Graph Embeddings

Abstract

Knowledge graphs are graphical representations of large databases of facts, which typically suffer from incompleteness. Inferring missing relations (links) between entities (nodes) is the task of link prediction. A recent state-of-the-art approach to link prediction, ConvE, implements a convolutional neural network to extract features from concatenated subject and relation vectors. Whilst results are impressive, the method is unintuitive and poorly understood. We propose a hypernetwork architecture that generates simplified relation-specific convolutional filters that (i) outperforms ConvE and all previous approaches across standard datasets; and (ii) can be framed as tensor factorization and thus set within a well established family of factorization models for link prediction. We thus demonstrate that convolution simply offers a convenient computational means of introducing sparsity and parameter tying to find an effective trade-off between non-linear expressiveness and the number of parameters to learn.

Code Repositories

ibalazevic/HypER
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
link-prediction-on-fb15kHypER
Hits@1: 0.734
Hits@10: 0.885
Hits@3: 0.829
MRR: 0.790
link-prediction-on-fb15k-237HypER
Hits@1: 0.252
Hits@10: 0.520
Hits@3: 0.376
MRR: 0.341
link-prediction-on-wn18HypER
Hits@1: 0.947
Hits@10: 0.958
Hits@3: 0.955
MRR: 0.951
link-prediction-on-wn18rrHypER
Hits@1: 0.436
Hits@10: 0.522
Hits@3: 0.477
MR: 5796
MRR: 0.465

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