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Information-Theoretic Methods for Fair Risk Minimization

Simons Institute via YouTube

Overview

Explore information-theoretic approaches to fair risk minimization in machine learning with Ahmad Beirami from Google Research. Delve into advanced concepts and techniques for developing trustworthy AI systems, focusing on how information theory can be applied to address fairness concerns in risk assessment and decision-making processes. Gain insights into cutting-edge research that aims to enhance the reliability and equity of machine learning models across various applications.

Syllabus

Information-Theoretic Methods for Fair Risk Minimization

Taught by

Simons Institute

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