NeurIPS 2022accept5 citations

Combining Explicit and Implicit Regularization for Efficient Learning in Deep Networks

Dan Zhao

Abstract

Works on implicit regularization have studied gradient trajectories during the optimization process to explain why deep networks favor certain kinds of solutions over others. In deep linear networks, it has been shown that gradient descent implicitly regularizes toward low-rank solutions on matrix completion/factorization tasks. Adding depth not only improves performance on these tasks but also acts as an accelerative pre-conditioning that further enhances this bias towards low-rankedness. Inspired by this, we propose an explicit penalty to mirror this implicit bias which only takes effect with certain adaptive gradient optimizers (e.g. Adam). This combination can enable a degenerate single-layer network to achieve low-rank approximations with generalization error comparable to deep linear networks, making depth no longer necessary for learning. The single-layer network also performs competitively or out-performs various approaches for matrix completion over a range of parameter and data regimes despite its simplicity. Together with an optimizer’s inductive bias, our findings suggest that explicit regularization can play a role in designing different, desirable forms of regularization and that a more nuanced understanding of this interplay may be necessary.

optimizationregularizationdeep learningmatrix factorizationneural networksefficient learningimplicit regularizationexplicit regularizationMatrix CompletionOptimization for Deep Networks
BibTeX
@inproceedings{
zhao2022combining,
title={Combining Implicit and Explicit Regularization for Efficient Learning in Deep Networks},
author={Dan Zhao},
booktitle={Advances in Neural Information Processing Systems},
editor={Alice H. Oh and Alekh Agarwal and Danielle Belgrave and Kyunghyun Cho},
year={2022},
url={https://openreview.net/forum?id=sADLRl2STMe}
}