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Prof. Randall Balestriero - LLMs without pretraining and SSL

Machine Learning Street Talk (MLST)

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Exploring Self-Supervised Learning

This chapter examines the nuances of self-supervised learning (SSL) in contrast to supervised learning, highlighting the impact of data labeling on model performance. It discusses the theoretical frameworks that connect SSL and supervised objectives, emphasizing the importance of class balance and representation learning for enhancing generalization in various tasks.

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