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  • title: Towards Understanding the Condensation of Neural Networks at Initial Training
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            Towards Understanding the Condensation of Neural Networks at Initial Training
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            Towards Understanding the Condensation of Neural Networks at Initial Training

            Nov 28, 2022

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            Empirical works show that for ReLU neural networks (NNs) with small initialization, input weights of hidden neurons (the input weight of a hidden neuron consists of the weight from its input layer to the hidden neuron and its bias term) condense on isolated orientations. The condensation dynamics implies that the training implicitly regularizes a NN towards one with a much smaller effective size. In this work, we illustrate the formation of the condensation in multi-layer fully connected NNs and…

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