arXiv Analytics

Sign in

arXiv:2008.06786 [stat.ML]AbstractReferencesReviewsResources

The Neural Tangent Kernel in High Dimensions: Triple Descent and a Multi-Scale Theory of Generalization

Ben Adlam, Jeffrey Pennington

Published 2020-08-15Version 1

Modern deep learning models employ considerably more parameters than required to fit the training data. Whereas conventional statistical wisdom suggests such models should drastically overfit, in practice these models generalize remarkably well. An emerging paradigm for describing this unexpected behavior is in terms of a \emph{double descent} curve, in which increasing a model's capacity causes its test error to first decrease, then increase to a maximum near the interpolation threshold, and then decrease again in the overparameterized regime. Recent efforts to explain this phenomenon theoretically have focused on simple settings, such as linear regression or kernel regression with unstructured random features, which we argue are too coarse to reveal important nuances of actual neural networks. We provide a precise high-dimensional asymptotic analysis of generalization under kernel regression with the Neural Tangent Kernel, which characterizes the behavior of wide neural networks optimized with gradient descent. Our results reveal that the test error has non-monotonic behavior deep in the overparameterized regime and can even exhibit additional peaks and descents when the number of parameters scales quadratically with the dataset size.

Comments: Published as a conference paper in the Proceedings of the 37th International Conference on Machine Learning; 31 pages; 4 figures
Categories: stat.ML, cs.LG
Related articles: Most relevant | Search more
arXiv:2005.11879 [stat.ML] (Published 2020-05-25)
Spectra of the Conjugate Kernel and Neural Tangent Kernel for linear-width neural networks
arXiv:2107.12723 [stat.ML] (Published 2021-07-27)
Stability & Generalisation of Gradient Descent for Shallow Neural Networks without the Neural Tangent Kernel
arXiv:2410.16449 [stat.ML] (Published 2024-10-21)
Robust Feature Learning for Multi-Index Models in High Dimensions