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math.OC2026

Constructive interpolation and generalization rates for neural ODEs: a control perspective

Antonio Álvarez-López, Lorenzo Liverani, Enrique Zuazua

We study supervised regression with neural ODEs (NODEs) from a control-theoretic perspective to derive explicit population-risk bounds. We focus on a widely used class of non-auton…

math.OC2026

HYCO: A Formalism for Hybrid-Cooperative PDE Modelling

Lorenzo Liverani, Enrique Zuazua

We present Hybrid-Cooperative Learning (HYCO), a hybrid modeling framework that integrates physics-based and data-driven models through mutual regularization. Unlike traditional ap…

math.OC2026

A PDE Perspective on Generative Diffusion Models

Kang Liu, Enrique Zuazua

Score-based diffusion models have emerged as a powerful class of generative methods, achieving state-of-the-art performance across diverse domains. Despite their empirical success,…

math.OC2025

HYCO: Hybrid-Cooperative Learning for Data-Driven PDE Modeling

Lorenzo Liverani, Matthys Steynberg, Enrique Zuazua

We introduce Hybrid-Cooperative Learning (HYCO), a framework for data-driven PDE modeling in which a physics-based solver and a flexible synthetic model are trained as two independ…

math.OC2025

Cluster-based classification with neural ODEs via control

Antonio Álvarez-López, Rafael Orive-Illera, Enrique Zuazua

We address binary classification using neural ordinary differential equations from the perspective of simultaneous control of data points. We consider a single-neuron architect…