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data-deidentification-design

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Actualizado25 de junio de 2026 a las 11:58

Designs the de-identification treatment for sensitive fields — technique selection per field (suppression / masking / tokenization / pseudonymization / hashing / generalization / k-anonymity·l-diversity·t-closeness / differential privacy / format-preserving encryption), direct-vs-quasi-identifier classification, re-identification risk scoring, the utility-vs-privacy tradeoff against the downstream ML task, and a per-field treatment matrix. Use AFTER `/pii-scan` has identified sensitive fields and you need to decide HOW to treat each one before release for analytics or model training. The design-side complement to `/pii-scan`'s audit. Distinct from `/privacy-preserving-ml` (training/inference-time mechanism) and from `/synthetic-data-gen` (generate-fake alternative).

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