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

Machine Learning Street Talk (MLST)

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Neural Networks and the Balance of Security

This chapter delves into the complexities of neural networks regarding adversarial examples and their security implications. It examines the relationship between network design choices, such as pruning, and the risk of attacks, alongside the role of obscurity in enhancing protection in machine learning applications like malware detection.

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