[2604.00543] Activation Saturation and Floquet Spectrum Collapse in Neural ODEs

[2604.00543] Activation Saturation and Floquet Spectrum Collapse in Neural ODEs

arXiv - Machine Learning 3 min read

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Abstract page for arXiv paper 2604.00543: Activation Saturation and Floquet Spectrum Collapse in Neural ODEs

Mathematics > Dynamical Systems arXiv:2604.00543 (math) [Submitted on 1 Apr 2026] Title:Activation Saturation and Floquet Spectrum Collapse in Neural ODEs Authors:Nikolaos M. Matzakos View a PDF of the paper titled Activation Saturation and Floquet Spectrum Collapse in Neural ODEs, by Nikolaos M. Matzakos View PDF HTML (experimental) Abstract:We prove that activation saturation imposes a structural dynamical limitation on autonomous Neural ODEs $\dot{h}=f_\theta(h)$ with saturating activations ($\tanh$, sigmoid, etc.): if $q$ hidden layers of the MLP $f_\theta$ satisfy $|\sigma'|\le\delta$ on a region~$U$, the input Jacobian is attenuated as $\norm{Df_\theta(x)}\le C(U)$ (for activations with $\sup_{x}|\sigma'(x)|\le 1$, e.g.\ $\tanh$ and sigmoid, this reduces to $C_W\delta^q$), forcing every Floquet (Lyapunov) exponen along any $T$-periodic orbit $\gamma\subset U$ into the interval $[-C(U),\;C(U)]$. This is a collapse of the Floquet spectrum: as saturation deepens ($\delta\to 0$), all exponents are driven to zero, limiting both strong contraction and chaotic sensitivity. The obstruction is structural -- it constrains the learned vector field at inference time, independent of training quality. As a secondary contribution, for activations with $\sigma'>0$, a saturation-weighted spectral factorisation yields a refined bound $\widetilde{C}(U)\le C(U)$ whose improvement is amplified exponentially in~$T$ at the flow level. All results are numerically illustrated on the Stuart--...

Originally published on April 02, 2026. Curated by AI News.

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