Papers › Message Passing Query Embedding

Message Passing Query Embedding

6 Feb 2020arXiv:2002.02406archive 2025-07-28

Daniel Daza, Michael Cochez

Recent works on representation learning for Knowledge Graphs have moved beyond the problem of link prediction, to answering queries of an arbitrary structure. Existing methods are based on ad-hoc mechanisms that require training with a diverse set of query structures. We propose a more general architecture that employs a graph neural network to encode a graph representation of the query, where nodes correspond to entities and variables. The generality of our method allows it to encode a more diverse set of query types in comparison to previous work. Our method shows competitive performance against previous models for complex queries, and in contrast with these models, it can answer complex queries when trained for link prediction only. We show that the model learns entity embeddings that capture the notion of entity type without explicit supervision.

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_reverse_relation dfdazac/mpqe/mpqe/model.py official repository ran · violated contract fingerprinted no licence file found · pointer only · 406a4be3163bbde8 · report
QueryEncoderDecoder dfdazac/mpqe/mpqe/model.py official repository unverified no licence file found · pointer only · d58b6770b1685aae · report

Tasks

Entity EmbeddingsGraph Neural NetworkKnowledge GraphsLink PredictionRepresentation Learning

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Methods

Graph Neural Network

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