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Papers/LightEA: A Scalable, Robust, and Interpretable Entity Alig...

LightEA: A Scalable, Robust, and Interpretable Entity Alignment Framework via Three-view Label Propagation

Xin Mao, Wenting Wang, Yuanbin Wu, Man Lan

2022-10-19Entity Alignment
PaperPDFCode(official)Code(official)

Abstract

Entity Alignment (EA) aims to find equivalent entity pairs between KGs, which is the core step of bridging and integrating multi-source KGs. In this paper, we argue that existing GNN-based EA methods inherit the inborn defects from their neural network lineage: weak scalability and poor interpretability. Inspired by recent studies, we reinvent the Label Propagation algorithm to effectively run on KGs and propose a non-neural EA framework -- LightEA, consisting of three efficient components: (i) Random Orthogonal Label Generation, (ii) Three-view Label Propagation, and (iii) Sparse Sinkhorn Iteration. According to the extensive experiments on public datasets, LightEA has impressive scalability, robustness, and interpretability. With a mere tenth of time consumption, LightEA achieves comparable results to state-of-the-art methods across all datasets and even surpasses them on many.

Results

TaskDatasetMetricValueModel
Data IntegrationDBP1M DE-ENHit@10.289LightEA-I
Data IntegrationDBP1M DE-ENHit@10.262LightEA-B
Data IntegrationDBP1M FR-ENHit@10.285LightEA
Entity AlignmentDBP1M DE-ENHit@10.289LightEA-I
Entity AlignmentDBP1M DE-ENHit@10.262LightEA-B
Entity AlignmentDBP1M FR-ENHit@10.285LightEA

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