JOURNAL ARTICLE

Entity Alignment in Multi-lingual, Temporal, and Probabilistic Knowledge Graphs

Li, Yunfei

Year: 2025 Journal:   OPAL (Open@LaTrobe) (La Trobe University)   Publisher: La Trobe University

Abstract

This Thesis focuses on dynamic knowledge graphs, specifically addressing entity alignment. In temporal scenarios, take weather forecasting as an example. Our methods can analyze historical data from knowledge graphs over time, improving prediction accuracy. In probabilistic knowledge graphs, in medical research, it deals with uncertain patient symptoms and test results. Doctors can make more informed diagnoses, potentially saving lives. By streamlining knowledge utilization, it not only boosts efficiency in these diverse fields but also enriches user experiences, ultimately bringing widespread benefits to society, from enhancing scientific research capabilities to making daily life more convenient.

Keywords:
Probabilistic logic Knowledge graph Field (mathematics) Test (biology) Knowledge-based systems Medical knowledge

Metrics

1
Cited By
3.85
FWCI (Field Weighted Citation Impact)
0
Refs
0.92
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Species Distribution and Climate Change
Physical Sciences →  Environmental Science →  Ecological Modeling
Research Data Management Practices
Physical Sciences →  Computer Science →  Information Systems
Remote Sensing in Agriculture
Physical Sciences →  Environmental Science →  Ecology

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