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Machine Learning Street Talk (MLST) cover image

Prof. Chris Bishop's NEW Deep Learning Textbook!

Machine Learning Street Talk (MLST)

NOTE

Unraveling the Mystery of Generalization in Deep Learning

It's like peering into the human brain through neuroscience; we need to dig deep to understand why deep learning models can generalize so effectively, despite being seemingly overparameterized. Unlike the human brain, we can access detailed information from every neuron in artificial models. There's a vast frontier of research to explore the phenomena where models do not overfit but instead generalize well. The puzzle deepens when deep learning models improve test loss even after training error convergence, a paradox that defies logic. It's akin to unraveling the unknown territory beyond optimization algorithms, where stories like weight space offer mere glimpses of explanations. This highlights the intrigue and complexity in comprehending how deep learning models operate effectively.

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