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047 Interpretable Machine Learning - Christoph Molnar

Machine Learning Street Talk (MLST)

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Exploring the Complexities of Machine Learning Models and Interdisciplinary Approaches

This chapter explores the intricacies of adversarial examples in machine learning and the impact of non-robust features in neural networks. It emphasizes the need for interdisciplinary collaboration to enhance model interpretability and considers the broader societal implications of machine learning technologies.

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