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Fixed and Adaptive Topological DeepONets: Functional Measurements on Hausdorff Locally Convex Spaces

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Computer Science > Machine Learning

arXiv:2608.06428 (cs)
[Submitted on 5 Aug 2026]

Title:Fixed and Adaptive Topological DeepONets: Functional Measurements on Hausdorff Locally Convex Spaces

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Abstract:Deep Operator Networks (DeepONets; arXiv:1910.03193) typically encode an input function through point values on a fixed discretization. Building on the Topological DeepONet framework of Ismailov (arXiv:2603.11972), we replace point samples by continuous linear functionals drawn from the continuous dual of a Hausdorff locally convex space $({V},\{p_\alpha\}_{\alpha\in A})$, whose topology is generated by a point-separating family of seminorms rather than a single norm, and develop fixed and adaptive functional measurement systems. Measurements are combined with the coefficient-space Two-Step procedure of Lee and Shin (arXiv:2309.01020), while a training-only decoder and regularization stabilize the adaptive coordinates. We derive a discrete error decomposition separating measurement, output-basis, and neural-approximation errors, together with a Barron-rate refinement. The framework is evaluated on the antiderivative operator, a non-normable locally convex input space, heterogeneous Darcy flow, a controlled operator, and fixed-time and time-evolving Navier-Stokes vorticity operators. In the heterogeneous Darcy problem, the functional models retain nearly resolution-independent errors of 5.5-5.6% on unseen grids, while in the controlled problem adaptive measurements reduce the mean error below 1.2%. For the fixed-time Navier-Stokes problem, the Adaptive Topological DeepONet is the most accurate DeepONet-based model, attaining a mean relative $L^2$ error of 1.685% +/- 0.017% using 128 functional coordinates. A comparably sized Fourier neural operator (FNO; arXiv:2010.08895) achieves the lower error 0.832% +/- 0.172%, but requires the full 64x64 input field, twice the training time, and 10.7x greater peak GPU memory. The formulation provides compact, interpretable, and discretization-portable coordinates in the continuous dual $V'$, including for non-normable input spaces.
Subjects: Machine Learning (cs.LG); Mathematical Physics (math-ph); General Topology (math.GN)
MSC classes: 68T07 (Primary), 41A65, 46A03, 65N30, 76D05 (Secondary)
ACM classes: I.2.6; G.1.8; G.1.2
Cite as: arXiv:2608.06428 [cs.LG]
  (or arXiv:2608.06428v1 [cs.LG] for this version)
  https://doi.org/10.48550/arXiv.2608.06428
arXiv-issued DOI via DataCite

Submission history

From: Khemraj Shukla [view email]
[v1] Wed, 5 Aug 2026 20:23:32 UTC (5,133 KB)
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