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Geração de Dados Sintéticos para Controle de Divulgação×Privacidade Diferencial×
ÁreaPrivacidadePrivacidade
FamíliaMachine learningMachine learning
Ano de origem19932006
Autor originalDonald RubinCynthia Dwork
TipoPrivacy-preserving data synthesisPrivacy-preserving randomized mechanism
Fonte seminalRubin, D. B. (1993). Statistical disclosure limitation. Journal of Official Statistics, 9(2), 461–468. link ↗Dwork, C. (2006). Differential privacy. International Colloquium on Automata, Languages and Programming (ICALP), 1–12. DOI ↗
Outros nomesFully Synthetic Data, Partial Synthetic Data, Statistical Data Synthesis, Sentetik Veri ÜretimiDP, epsilon-differential privacy, randomized privacy, Diferansiyel Gizlilik
Relacionados33
ResumoSynthetic data generation is a statistical disclosure limitation technique introduced by Donald Rubin in 1993, in which values in a confidential dataset are replaced by draws from a fitted posterior predictive distribution rather than released directly. The resulting artificial records preserve the joint statistical structure of the original data while preventing the identification of real individuals, enabling analysts to work with a publicly releasable dataset that behaves like the original for most inferential purposes.Differential privacy is a mathematical framework for releasing statistical information about a dataset while providing rigorous guarantees that individual records cannot be identified or inferred. Introduced by Cynthia Dwork in 2006, it formalizes privacy as a probabilistic bound: any single individual's presence or absence in the dataset changes the output distribution by at most a multiplicative factor of e^ε, where ε is the privacy budget controlling the privacy–utility tradeoff.
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ScholarGateComparar métodos: Synthetic Data Generation · Differential Privacy. Recuperado em 2026-06-18 de https://scholargate.app/pt/compare