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Adversarial Examples and Data Modelling - Andrew Ilyas (MIT)

Machine Learning Street Talk (MLST)

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Challenges in Machine Learning Deployment

This chapter explores the complexities of deploying machine learning models, emphasizing a holistic approach to understanding their predictability and reliability. It covers topics from the significance of adversarial examples to the intricacies of data collection and labeling, highlighting the journey from undergraduate studies to advanced research.

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