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  • title: Hardness of Noise-Free Learning for Two-Hidden-Layer Neural Networks
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            Hardness of Noise-Free Learning for Two-Hidden-Layer Neural Networks
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            Hardness of Noise-Free Learning for Two-Hidden-Layer Neural Networks

            Nov 28, 2022

            Speakers

            SC

            Sitan Chen

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            AG

            Aravind Gollakota

            Speaker · 0 followers

            AK

            Adam Klivans

            Speaker · 2 followers

            About

            We give superpolynomial statistical query (SQ) lower bounds for learning two-hidden-layer ReLU networks with respect to Gaussian inputs in the standard (noise-free) model. No general SQ lower bounds were known for learning ReLU networks of any depth in this setting: previous SQ lower bounds held only for adversarial noise models (agnostic learning) (Kothari and Klivans 2014, Goel et al. 2020a, Diakonikolas et al. 2020a) or restricted models such as correlational SQ (Goel et al. 2020b, Diakonikol…

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