Toward Privacy-Aware Efficient Federated Graph Attention Network in Smart Cloud

Jinhao Zhou, Zhou Su*, Yuntao Wang, Yanghe Pan, Qianqian Pan, Lizheng Liu, Jun Wu*

*この研究の対応する著者

研究成果: Conference contribution

1 被引用数 (Scopus)

抄録

Federated graph attention networks (FGATs), blending federated learning (FL) with graph attention networks (GAT), present a novel paradigm for collaborative, privacy-conscious graph model training in the smart cloud. FGATs leverage distributed attention mechanisms to enhance graph feature prioritization, improving representation learning while preserving data decentralization. Despite their advancements, FGATs face privacy concerns, such as attribute inference. Our study proposes an efficient privacy-preserving FGAT (PFGAT). We devise an improved multiplication triplet (IMT)-based attention mechanism with a hybrid differential privacy (DP) approach. We invent a novel triplet generation method and a hybrid neighbor aggregation algorithm, specifically designed to respect the distinct traits of neighbor nodes, efficiently secures GAT node embeddings. Evaluations on benchmarks such as Cora, Citeseer, and Pubmed demonstrate PFGAT's ability to safeguard privacy without compromising on efficiency or performance.

本文言語English
ホスト出版物のタイトルProceedings - 2024 IEEE 9th International Conference on Smart Cloud, SmartCloud 2024
出版社Institute of Electrical and Electronics Engineers Inc.
ページ19-24
ページ数6
ISBN(電子版)9798350389500
DOI
出版ステータスPublished - 2024
イベント9th IEEE International Conference on Smart Cloud, SmartCloud 2024 - New York City, United States
継続期間: 2024 5月 102024 5月 12

出版物シリーズ

名前Proceedings - 2024 IEEE 9th International Conference on Smart Cloud, SmartCloud 2024

Conference

Conference9th IEEE International Conference on Smart Cloud, SmartCloud 2024
国/地域United States
CityNew York City
Period24/5/1024/5/12

ASJC Scopus subject areas

  • 人工知能
  • コンピュータ ネットワークおよび通信
  • コンピュータ サイエンスの応用
  • コンピュータ ビジョンおよびパターン認識
  • 情報システム
  • モデリングとシミュレーション

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