Differentially Private Densest Subgraph Detection
Dung Nguyen, Anil Vullikanti
摘要
Densest subgraph detection is a fundamental graph mining problem, with a large number of applications. There has been a lot of work on efficient algorithms for finding the densest subgraph in massive networks. However, in many domains, the network is private, and returning a densest subgraph can reveal information about the network. Differential privacy is a powerful framework to handle such settings. We study the densest subgraph problem in the edge privacy model, in which the edges of the graph are private. We present the first sequential and parallel differentially private algorithms for this problem. We show that our algorithms have an additive approximation guarantee. We evaluate our algorithms on a large number of real-world networks, and observe a good privacy-accuracy tradeoff when the network has high density.
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引用它的顶会 Paper12
- Differential Privacy from Locally Adjustable Graph Algorithms: k-Core Decomposition, Low Out-Degree Ordering, and Densest SubgraphsLaxman Dhulipala, Quanquan C. Liu, Sofya Raskhodnikova, Jessica Shi 等FOCS 2022 · 被引用 24 次
- Near-Optimal Correlation Clustering with PrivacyVincent Cohen-Addad, Chenglin Fan, Silvio Lattanzi, Slobodan Mitrovic 等NeurIPS 2022 · 被引用 18 次
- EXTRACT and REFINE: Finding a Support Subgraph Set for Graph RepresentationKuo Yang, Zhengyang Zhou, Wei Sun, Pengkun Wang 等KDD 2023 · 被引用 13 次
- Faster approximate subgraph counts with privacyDung Nguyen, Mahantesh Halappanavar, Venkatesh Srinivasan, Anil VullikantiNeurIPS 2023 · 被引用 8 次
- Differentially private exact recovery for stochastic block modelsDung Nguyen, Anil Kumar S. VullikantiICML 2024 · 被引用 5 次
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