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Gil Kur

4 accepted papers

2026

Specialization after Generalization: Towards Understanding Test-Time Training in Foundation Models

ICLR 2026poster

Recent empirical studies have explored the idea of continuing to train a model at test-time for a given task, known as test-time training (TTT), and have found it to yield significant performance improvements. However, there is limited understanding of why and when TTT is effective. Earlier explanat…

Cited by 0SourceScholar
2024

Minimum Norm Interpolation Meets The Local Theory of Banach Spaces

ICML 2024poster

Minimum-norm interpolators have recently gained attention primarily as an analyzable model to shed light on the double descent phenomenon observed for neural networks. The majority of the work has focused on analyzing interpolators in Hilbert spaces, where typically an effectively low-rank structure…

Cited by 1SourcePDFScholar
2023

On the Variance, Admissibility, and Stability of Empirical Risk Minimization

NeurIPS 2023spotlight

It is well known that Empirical Risk Minimization (ERM) may attain minimax suboptimal rates in terms of the mean squared error (Birgé and Massart, 1993). In this paper, we prove that, under relatively mild assumptions, the suboptimality of ERM must be due to its bias. Namely, the variance error term…

Cited by 3SourcePDFScholar