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Risicobeoordeling van openbaarmaking×k-Anonymiteit: Bescherming van Individuele Privacy in Gepubliceerde Data×
VakgebiedPrivacyPrivacy
FamilieRegression modelMachine learning
Jaar van ontstaan19892002
GrondleggerGeorge Duncan & Diane LambertLatanya Sweeney
TypeProbabilistic risk modelPrivacy-preserving data transformation
Oorspronkelijke bronDuncan, G. T., & Lambert, D. (1989). The risk of disclosure for microdata. Journal of Business & Economic Statistics, 7(2), 207–217. DOI ↗Sweeney, L. (2002). k-anonymity: A model for protecting privacy. International Journal of Uncertainty, Fuzziness and Knowledge-Based Systems, 10(5), 557–570. DOI ↗
AliassenMicrodata Disclosure Risk, Statistical Disclosure Control Risk Estimation, Istatistiksel Açıklama Riski Değerlendirmesi, Re-identification Risk Assessmentk-Anonymization, k-Anonymous Microdata, Quasi-Identifier Suppression Model, k-Anonimlik
Verwant32
SamenvattingDisclosure Risk Assessment is a probabilistic framework introduced by Duncan and Lambert (1989) for quantifying how likely it is that releasing microdata — individual-level records from surveys or administrative files — will allow an outside party to identify a specific respondent or infer sensitive attributes. It is used by statistical agencies, data custodians, and researchers charged with protecting confidentiality before any public release of person-level datasets.k-Anonymity is a formal privacy model introduced by Latanya Sweeney in 2002 to protect individuals when personal data is released for research or public use. It requires that every record in a published dataset be indistinguishable from at least k−1 other records with respect to a designated set of quasi-identifying attributes — such as age, gender, and ZIP code — preventing re-identification by linking released data to external sources.
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ScholarGateMethoden vergelijken: Disclosure Risk Assessment · k-Anonymity. Geraadpleegd op 2026-06-19 via https://scholargate.app/nl/compare