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Farhad Pashakhanloo

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#machine learning Preprint Oct 2026

Broken scale symmetries in undercomplete linear autoencoders

Neural network loss landscapes have many symmetries, which are preserved by gradient flow but broken by finite-stepsize stochastic gradient descent (SGD). A canonical example of such a symmetry is scale in homogeneous networks: one can scale up the parameters in one layer and down in the next without changing the netwo...

Farhad Pashakhanloo, Jacob A. Zavatone-Veth · 0 citations

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