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auditing-model-fairness

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更新时间2026年6月17日 16:52

Audits a trained classifier or scoring model for disparate treatment across protected attributes (race, sex, age, disability, religion, national origin, sexual orientation, or any user-supplied subgroup) using equal-opportunity, demographic-parity, calibration-within-group, and intersectional cuts. Use when the model decides outcomes for people (hiring, lending, healthcare triage, content moderation, criminal justice scoring), when a downstream user asks whether the model is "fair", when a regulator requires a disparate-impact analysis, or before deployment of any consequential ML system. Refuses to audit without a documented protected-attribute list and refuses to declare a model "fair" from a single metric.

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