arXiv · 2010.11552
Fast-Rate Loss Bounds via Conditional Information Measures with Applications to Neural Networks
Abstract
We present a framework to derive bounds on the test loss of randomized learning algorithms for the case of bounded loss functions. Drawing from Steinke & Zakynthinou (2020), this framework leads to bounds that depend on the conditional information density between the the output hypothesis and the choice of the training set, given a larger set of data samples from which the training set is formed. Furthermore, the bounds pertain to the average test loss as well as to its tail probability, both for the PAC-Bayesian and the single-draw settings. If the conditional information density is bounded uniformly in the size $n$ of the training set, our bounds decay as $1/n$. This is in contrast with the tail bounds involving conditional information measures available in the literature, which have a less benign $1/\sqrt{n}$ dependence. We demonstrate the usefulness of our tail bounds by showing that they lead to nonvacuous estimates of the test loss achievable with some neural network architectures trained on MNIST and Fashion-MNIST.
Explore related subjects
Keep this discovery
Fredrik Hellström, Giuseppe Durisi. 2020-10-22. Fast-Rate Loss Bounds via Conditional Information Measures with Applications to Neural Networks. https://arxiv.org/abs/2010.11552
Cite the original work for its findings. Save a collection to share your selection of sources.