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

Machine Learning Street Talk (MLST)

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Navigating Adversarial Challenges in Machine Learning

This chapter explores the complexities of adversarial examples in machine learning, focusing on their infinite nature and the challenges of developing effective defenses. It discusses various attack types and the fundamental trade-off between model robustness and accuracy, as well as the skepticism within the community regarding security prioritization. Key insights on the evolving understanding of neural network vulnerabilities and the intricate interplay of dataset features are also examined.

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