Duality-Induced Regularizer for Tensor Factorization Based Knowledge Graph Completion
Zhanqiu Zhang, Jianyu Cai, Jie Wang
Abstract
Tensor factorization based models have shown great power in knowledge graph completion (KGC). However, their performance usually suffers from the overfitting problem seriously. This motivates various regularizers---such as the squared Frobenius norm and tensor nuclear norm regularizers---while the limited applicability significantly limits their practical usage. To address this challenge, we propose a novel regularizer---namely, DUality-induced RegulArizer (DURA)---which is not only effective in improving the performance of existing models but widely applicable to various methods. The major novelty of DURA is based on the observation that, for an existing tensor factorization based KGC model (primal), there is often another distance based KGC model (dual) closely associated with it. Experiments show that DURA yields consistent and significant improvements on benchmarks.
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Install the CLIlune papers fulltext 979c49b1-b91f-4dbf-a669-db845193ab44Cited by top-tier papers16
- ConE: Cone Embeddings for Multi-Hop Reasoning over Knowledge GraphsZhanqiu Zhang, Jie Wang, Jiajun Chen, Shuiwang Ji et al.NeurIPS 2021 · 161 citations
- Topology-Aware Correlations Between Relations for Inductive Link Prediction in Knowledge GraphsJiajun Chen, Huarui He, Feng Wu, Jie WangAAAI 2021 · 161 citations
- Rethinking Graph Convolutional Networks in Knowledge Graph CompletionZhanqiu Zhang, Jie Wang, Jieping Ye, Feng WuWWW 2022 · 83 citations
- MINES: Message Intercommunication for Inductive Relation Reasoning over Neighbor-Enhanced SubgraphsKe Liang, Lingyuan Meng, Sihang Zhou, Wenxuan Tu et al.AAAI 2024 · 41 citations
- DREAM: Adaptive Reinforcement Learning based on Attention Mechanism for Temporal Knowledge Graph ReasoningShangfei Zheng, Hongzhi Yin, Tong Chen, Quoc Viet Hung Nguyen et al.SIGIR 2023 · 27 citations
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