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Can Neural Networks Achieve Optimal Computational-statistical Tradeoff? An Analysis on Single-Index Model

arXiv cs.LG · 2026-06-16 Cached

This paper demonstrates that two-layer neural networks trained with gradient-based methods can achieve the optimal computational-statistical tradeoff for learning Gaussian single-index models, matching the SQ lower bound up to polylogarithmic factors for all generative exponents and extending to sparse settings with a novel weight perturbation technique.

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