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Partition-based differentially private synthetic data generation (2310.06371v1)

Published 10 Oct 2023 in cs.CR and cs.LG

Abstract: Private synthetic data sharing is preferred as it keeps the distribution and nuances of original data compared to summary statistics. The state-of-the-art methods adopt a select-measure-generate paradigm, but measuring large domain marginals still results in much error and allocating privacy budget iteratively is still difficult. To address these issues, our method employs a partition-based approach that effectively reduces errors and improves the quality of synthetic data, even with a limited privacy budget. Results from our experiments demonstrate the superiority of our method over existing approaches. The synthetic data produced using our approach exhibits improved quality and utility, making it a preferable choice for private synthetic data sharing.

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Authors (3)
  1. Meifan Zhang (8 papers)
  2. Dihang Deng (1 paper)
  3. Lihua Yin (6 papers)