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5 months ago

Neural-Symbolic Models for Logical Queries on Knowledge Graphs

Zhaocheng Zhu; Mikhail Galkin; Zuobai Zhang; Jian Tang

Neural-Symbolic Models for Logical Queries on Knowledge Graphs

Abstract

Answering complex first-order logic (FOL) queries on knowledge graphs is a fundamental task for multi-hop reasoning. Traditional symbolic methods traverse a complete knowledge graph to extract the answers, which provides good interpretation for each step. Recent neural methods learn geometric embeddings for complex queries. These methods can generalize to incomplete knowledge graphs, but their reasoning process is hard to interpret. In this paper, we propose Graph Neural Network Query Executor (GNN-QE), a neural-symbolic model that enjoys the advantages of both worlds. GNN-QE decomposes a complex FOL query into relation projections and logical operations over fuzzy sets, which provides interpretability for intermediate variables. To reason about the missing links, GNN-QE adapts a graph neural network from knowledge graph completion to execute the relation projections, and models the logical operations with product fuzzy logic. Experiments on 3 datasets show that GNN-QE significantly improves over previous state-of-the-art models in answering FOL queries. Meanwhile, GNN-QE can predict the number of answers without explicit supervision, and provide visualizations for intermediate variables.

Code Repositories

Benchmarks

BenchmarkMethodologyMetrics
complex-query-answering-on-fb15kGNN-QE
MRR 1p: 0.885
MRR 2i: 0.797
MRR 2p: 0.693
MRR 2u: 0.741
MRR 3i: 0.835
MRR 3p: 0.587
MRR ip: 0.704
MRR pi: 0.699
MRR up: 0.610
complex-query-answering-on-fb15k-237GNN-QE
MRR 1p: 0.428
MRR 2i: 0.383
MRR 2p: 0.147
MRR 2u: 0.162
MRR 3i: 0.541
MRR 3p: 0.118
MRR ip: 0.189
MRR pi: 0.311
MRR up: 0.134
complex-query-answering-on-nell-995GNN-QE
MRR 1p: 0.533
MRR 2i: 0.424
MRR 2p: 0.189
MRR 2u: 0.159
MRR 3i: 0.525
MRR 3p: 0.149
MRR ip: 0.189
MRR pi: 0.308
MRR up: 0.126

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Neural-Symbolic Models for Logical Queries on Knowledge Graphs | Papers | HyperAI