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Deep learning and the rate of approximation by flows.arXiv e-prints, art

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Geometric Layer-wise Approximation Rates for Deep Networks

cs.LG · 2026-04-22 · unverdicted · novelty 7.0

A shared mixed-activation network of width 2dN+d+2 yields layer-wise L^p approximation rates bounded by the modulus of continuity at geometric scale N^{-ℓ}, reducing to (2d+1)N^{-ℓ} for 1-Lipschitz targets.

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  • Geometric Layer-wise Approximation Rates for Deep Networks cs.LG · 2026-04-22 · unverdicted · none · ref 6

    A shared mixed-activation network of width 2dN+d+2 yields layer-wise L^p approximation rates bounded by the modulus of continuity at geometric scale N^{-ℓ}, reducing to (2d+1)N^{-ℓ} for 1-Lipschitz targets.