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Adversarial Examples and Data Modelling - Andrew Ilyas (MIT)

Machine Learning Street Talk (MLST)

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Evolution of Data Attribution and Modeling

This chapter explores the development of influence functions and Shapley values in data attribution and deep learning, tracing their historical roots and applications. The discussion includes insights into machine teaching, the role of embeddings in data modeling, and the balance between efficiency and predictive capability in complex neural networks. Additionally, it addresses challenges faced in non-random datasets and proposes new methodologies for improving data model efficiency.

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