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Exact Phase Transitions in Deep Learning

By Liu Ziyin and Masahito Ueda
This work reports deep-learning-unique first-order and second-order phase transitions, whose phenomenology closely follows that in statistical physics. In particular, we prove that the competition between prediction error and model complexity in the training loss leads to the second-order phase transition for nets with one hidden layer and the first-order phase... Show more
May 25, 2022
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Exact Phase Transitions in Deep Learning
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