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#032- Simon Kornblith / GoogleAI - SimCLR and Paper Haul!

Machine Learning Street Talk (MLST)

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Unlocking Neural Network Insights

This chapter examines neural network representations using self-similarity measures and centred kernel alignment, emphasizing issues like over-parameterization in deeper layers. It also highlights the role of loss functions in image classifiers and the significance of self-supervised learning for better representation in computer vision.

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