dpart: Differentially Private Autoregressive Tabular, a General Framework for Synthetic Data Generation

July 12, 2022 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Sofiane Mahiou, Kai Xu, Georgi Ganev arXiv ID 2207.05810 Category cs.LG: Machine Learning Cross-listed cs.CR Citations 14 Venue arXiv.org Repository https://github.com/hazy/dpart Last Checked 1 month ago
Abstract
We propose a general, flexible, and scalable framework dpart, an open source Python library for differentially private synthetic data generation. Central to the approach is autoregressive modelling -- breaking the joint data distribution to a sequence of lower-dimensional conditional distributions, captured by various methods such as machine learning models (logistic/linear regression, decision trees, etc.), simple histogram counts, or custom techniques. The library has been created with a view to serve as a quick and accessible baseline as well as to accommodate a wide audience of users, from those making their first steps in synthetic data generation, to more experienced ones with domain expertise who can configure different aspects of the modelling and contribute new methods/mechanisms. Specific instances of dpart include Independent, an optimized version of PrivBayes, and a newly proposed model, dp-synthpop. Code: https://github.com/hazy/dpart
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