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

Machine Learning Street Talk (MLST)

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The Duality of Neural Networks: Memorization vs Generalization

This chapter examines the complexities of neural networks, particularly their propensity for texture bias and memorization of training data. It raises critical questions about the implications of these characteristics on privacy, human-like understanding, and the overall effectiveness of deep learning models.

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