Federated Graph Anomaly Detection Through Contrastive Learning with Global Negative Pairs
Nannan Wu, Yazheng Zhao, Hongdou Dong, Keao Xi, Wei Yu, Wenjun Wang
Abstract
Anomaly detection on attributed graphs has applications in various domains such as finance and email spam detection, thus gaining substantial attention. Distributed scenarios can also involve issues related to anomaly detection in attribute graphs, such as in medical scenarios. However, most of the existing anomaly detection methods are designed for centralized scenarios, and directly applying them to distributed settings may lead to reduced performance. One possible reason for this issue is that, when graph data are distributed across multiple clients, federated graph learning may struggle to fully exploit the potential of the dispersed data, leading to suboptimal performance. Building on this insight, we propose FedCLGN, a federated graph anomaly detection framework that leverages contrastive self-supervised learning. First, we put forward an augmentation method to maintain global negative pairs on the server. This involves identifying anomalous nodes using pseudo-labels, extracting embedding representations of the negative pairs corresponding to these anomalous nodes from clients, and uploading them to the server. Then, we adopt graph diffusion to enhance the feature representation of nodes, capturing the global structure and local connection patterns. This strategy can strengthen the differentiation between positive and negative instance pairs. Finally, the effectiveness of our approach is verified by experimental results on four real graph datasets.
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Install the CLIlune papers fulltext c47873f1-0db6-4217-988d-71b6e3eec78aCited by top-tier papers3
- ACL-GAD: Active Counterfactual Contrastive Learning for Graph Anomaly DetectionKamal Berahmand, Saman Forouzandeh, Mehrnoush Mohammadi, Parham Moradi et al.WWW 2026
- CoRe-Fed: Bridging Collaborative and Representation Fairness via Federated Embedding DistillationNoorain Mukhtiar, Adnan Mahmood, Quan Z. ShengAAAI 2026
- MV-FGAD: Towards Efficient and Effective Federated Graph Anomaly Detection via Multi-view LearningJunyi Yan, KE LIANG, Hao Yu, Meng Liu et al.ICML 2026
Builds on5
- GCC: Graph Contrastive Coding for Graph Neural Network Pre-TrainingJiezhong Qiu, Qibin Chen, Yuxiao Dong, Jing Zhang et al.KDD 2020 · 755 citations
- Subgraph Federated Learning with Missing Neighbor GenerationKe Zhang, Carl Yang, Xiaoxiao Li, Lichao Sun et al.NeurIPS 2021 · 320 citations
- Personalized Subgraph Federated LearningJinheon Baek, Wonyong Jeong, Jiongdao Jin, Jaehong Yoon et al.ICML 2023 · 102 citations
- FedCDA: Federated Learning with Cross-rounds Divergence-aware AggregationHaozhao Wang, Haoran Xu, Yichen Li, Yuan Xu et al.ICLR 2024 · 62 citations
- FedNLR: Federated Learning with Neuron-wise Learning RatesHaozhao Wang, Peirong Zheng, Xingshuo Han, Wenchao Xu et al.KDD 2024 · 15 citations
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