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The Lottery Ticket Hypothesis with Jonathan Frankle

Machine Learning Street Talk (MLST)

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Exploring the Lottery Ticket Hypothesis

This chapter investigates the lottery ticket hypothesis in both unsupervised and supervised learning, emphasizing the transferability of sparse networks across various datasets. It discusses empirical findings related to the generalizability of these networks and the implications for different neural network architectures. The speakers examine the evolution of this concept, its theoretical complexities, and the ongoing challenges in practical applications within deep learning.

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