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2024 | OriginalPaper | Chapter

Dual Contrastive Learning for Anomaly Detection in Attributed Networks

Authors : Shijie Xue, He Kong, Qi Wang

Published in: Intelligent Information Processing XII

Publisher: Springer Nature Switzerland

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Abstract

The chapter focuses on the critical issue of anomaly detection in attributed networks, which model complex real-world scenarios by including both node interactions and rich attributes. Traditional methods often fall short in effectively identifying anomalies at different levels. The proposed Cobra method addresses this by employing a dual contrastive learning framework that considers both contextual and behavioral anomalies. By sampling subgraphs and utilizing self-supervised learning strategies, Cobra captures the intricate relationships and behaviors within the network, providing a more accurate and comprehensive evaluation of node abnormality. Extensive experiments on various datasets demonstrate the superior performance of Cobra compared to state-of-the-art methods, highlighting its potential in enhancing anomaly detection across diverse applications.

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Metadata
Title
Dual Contrastive Learning for Anomaly Detection in Attributed Networks
Authors
Shijie Xue
He Kong
Qi Wang
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-57808-3_1

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