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Personalized sampling graph collection with local differential privacy for link prediction

  • 08-05-2023
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Abstract

The article explores the challenges of preserving privacy in graph data analysis, particularly in link prediction tasks. It introduces a personalized sampling randomized response (PRR) mechanism and a community-based graph collection method (CPRR) that ensure local differential privacy (LDP) while enhancing the accuracy of link prediction. The methods are designed to reduce noise addition and preserve edge distribution characteristics, making them superior to existing LDP methods. The paper includes a detailed analysis of privacy guarantees, computational complexity, and experimental results demonstrating the effectiveness of the proposed methods on various real-life datasets.

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Title
Personalized sampling graph collection with local differential privacy for link prediction
Authors
Linyu Jiang
Yukun Yan
Zhihong Tian
Zuobin Xiong
Qilong Han
Publication date
08-05-2023
Publisher
Springer US
Published in
World Wide Web / Issue 5/2023
Print ISSN: 1386-145X
Electronic ISSN: 1573-1413
DOI
https://doi.org/10.1007/s11280-023-01136-4
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