Delayed Impact of Fair Machine Learning

Author: Lydia T. Liu, Sarah Dean, Esther Rolf, Max Simchowitz, Moritz Hardt

Publisher: BAIR

Publication Year: 2018

Summary: The following article discusses the pursuit of fairness in terms of machine learning implementation in regards to treatment of disadvantaged groups that has led to a collection of intuitive “fairness criteria” (e.g., demographic parity, equal opportunity). The interactive article explains how blindly employing fairness criteria constraints without thought for the long-term well being outcomes for populations can work against intended efforts.


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