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  • title: Spectral Bias Outside the Training Set for Deep Networks in the Kernel Regime
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            Spectral Bias Outside the Training Set for Deep Networks in the Kernel Regime
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            Spectral Bias Outside the Training Set for Deep Networks in the Kernel Regime

            Nov 28, 2022

            Sprecher:innen

            BB

            Benjamin Bowman

            Řečník · 0 sledujících

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            Guido Montúfar

            Řečník · 1 sledující

            Über

            We provide quantitative bounds measuring the L^2 difference in function space between the trajectory of a finite-width network trained on finitely many samples from the idealized kernel dynamics of infinite width and infinite data. An implication of the bounds is that the network is biased to learn the top eigenfunctions of the Neural Tangent Kernel not just on the training set but over the entire input space. This bias depends on the model architecture and input distribution alone and thus does…

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            NeurIPS 2022

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