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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 Challenges of Classifying Malware with Machine Learning

This chapter explores the use of machine learning for classifying malware versus benign software, focusing on the challenges of achieving accurate predictions despite potential adversarial examples. It emphasizes the critical need for understanding ground truth and the limitations faced by classifiers in the realm of malware detection.

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