A

HopfE

Proceedings of the ... ACM International Conference on Information & Knowledge Management, pp. 89–99

Abstract

Recently, several Knowledge Graph Embedding (KGE) approaches have been devised to represent entities and relations in a dense vector space and employed in downstream tasks such as link prediction. A few KGE techniques address interpretability, i.e., mapping the connectivity patterns of the relations (symmetric/asymmetric, inverse, and composition) to a geometric interpretation such as rotation. Other approaches model the representations in higher dimensional space such as four-dimensional space (4D) to enhance the ability to infer the connectivity patterns (i.e., expressiveness). However, modeling relation and entity in a 4D space often comes at the cost of interpretability. We propose HopfE, a novel KGE approach aiming to achieve the interpretability of inferred relations in the four-dimensional space. HopfE models the structural embeddings in 3D Euclidean space. Next, we map the entity embedding vector from a 3D Euclidean space to a 4D hypersphere using the inverse Hopf Fibration, in which we embed the semantic information from the KG ontology. Thus, HopfE considers the structural and semantic properties of the entities without losing expressivity and interpretability. Our empirical results on four well-known benchmarks achieve state-of-the-art performance for KG completion.

Authors 6

  1. Indian Institute of Technology Hyderabad

    Affiliation as printed

    Indian Institute of Technology, Hyderabad, Hyderabad, India

  2. Affiliation as printed

    Zerotha Research and Cerence GmbH, Aachen, Germany

  3. RWTH Aachen University

    Affiliation as printed

    Zerotha Research and RWTH Aachen, Aachen, Germany

  4. University of Dayton

    Affiliation as printed

    University of Dayton, Dayton, OH, USA

  5. IBM (United States)

    Affiliation as printed

    IBM Research & Zerotha Research, Nairobi, Kenya

  6. Goldman Sachs (United States)

    Affiliation as printed

    Goldman Sachs, Frankfurt, Germany

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References 35