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#040 - Adversarial Examples (Dr. Nicholas Carlini, Dr. Wieland Brendel, Florian Tramèr)

Machine Learning Street Talk (MLST)

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Intro

This chapter explores the nature of adversarial examples in machine learning, highlighting how tiny changes to data can significantly affect classifier results. It also examines important research differentiating robust features from non-robust ones and their implications for classifier training and resilience against attacks.

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