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20242026
most citedNonparametric Control Koopman Operators

3 citations · 3 across the 2 of their papers we have counts for

collaborators

9 papers

eess.SY20263 cited

Nonparametric Control Koopman Operators

Petar Bevanda, Bas Driessen, Lucian Cristian Iacob +3

This paper presents a novel Koopman composition operator representation framework for control systems in reproducing kernel Hilbert spaces (RKHSs) that is free of explicit dictiona…

cs.LG2026

SAD-Flower: Flow Matching for Safe, Admissible, and Dynamically Consistent Planning

Tzu-Yuan Huang, Armin Lederer, Dai-Jie Wu +6

Flow matching (FM) has shown promising results in data-driven planning. However, it inherently lacks formal guarantees for ensuring state and action constraints, whose satisfaction…

stat.ML2025

Operator Models for Continuous-Time Offline Reinforcement Learning

Nicolas Hoischen, Petar Bevanda, Max Beier +3

Continuous-time stochastic processes underlie many natural and engineered systems. In healthcare, autonomous driving, and industrial control, direct interaction with the environmen…

math.OC2025

Data-Driven Stochastic Optimal Control in Reproducing Kernel Hilbert Spaces

Nicolas Hoischen, Petar Bevanda, Stefan Sosnowski +2

This paper proposes a fully data-driven approach for optimal control of nonlinear control-affine systems represented by a stochastic diffusion. The focus is on the scenario where b…

eess.SY2025

Risk-Aware Trajectory Optimization and Control for an Underwater Suspended Robotic System

Yuki Origane, Nicolas Hoischen, Tzu-Yuan Huang +3

This paper focuses on the trajectory optimization of an underwater suspended robotic system comprising an uncrewed surface vessel (USV) and an uncrewed underwater vehicle (UUV) for…

eess.SY2025

Toward Near-Globally Optimal Nonlinear Model Predictive Control via Diffusion Models

Tzu-Yuan Huang, Armin Lederer, Nicolas Hoischen +4

Achieving global optimality in nonlinear model predictive control (NMPC) is challenging due to the non-convex nature of the underlying optimization problem. Since commonly employed…