Informed multi-context entity alignment

Kexuan Xin, Zequn Sun, Wen Hua, Wei Hu, Xiaofang Zhou

Research output: Chapter in Book/Report/Conference proceedingConference proceeding contributionpeer-review

31 Citations (Scopus)

Abstract

Entity alignment is a crucial step in integrating knowledge graphs (KGs) from multiple sources. Previous attempts at entity alignment have explored different KG structures, such as neighborhood-based and path-based contexts, to learn entity embeddings, but they are limited in capturing the multi-context features. Moreover, most approaches directly utilize the embedding similarity to determine entity alignment without considering the global interaction among entities and relations. In this work, we propose an Informed Multi-context Entity Alignment (IMEA) model to address these issues. In particular, we introduce Transformer to flexibly capture the relation, path, and neighborhood contexts, and design holistic reasoning to estimate alignment probabilities based on both embedding similarity and the relation/entity functionality. The alignment evidence obtained from holistic reasoning is further injected back into the Transformer via the proposed soft label editing to inform embedding learning. Experimental results on several benchmark datasets demonstrate the superiority of our IMEA model compared with existing state-of-the-art entity alignment methods.
Original languageEnglish
Title of host publicationWSDM'22
Subtitle of host publicationProceedings of the Fifteenth ACM International Conference on Web Search and Data Mining
Place of PublicationNew York
PublisherAssociation for Computing Machinery (ACM)
Pages1197-1205
Number of pages9
ISBN (Electronic)9781450391320
DOIs
Publication statusPublished - 3 Feb 2022
Externally publishedYes
Event15th ACM International Conference on Web Search and Data Mining, WSDM 2022 - Virtual, Online, United States
Duration: 21 Feb 202225 Feb 2022

Conference

Conference15th ACM International Conference on Web Search and Data Mining, WSDM 2022
Country/TerritoryUnited States
CityVirtual, Online
Period21/02/2225/02/22

Keywords

  • Knowledge Graph
  • Entity Alignment
  • Multi-context Transformer
  • Holistic Reasoning
  • Holistic reasoning
  • Entity alignment
  • Multi-context transformer
  • Knowledge graph

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