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1. Sampling in Parametric and Nonparametric System Identification: Aliasing, Input Conditions, and Consistency

2. Data-enabled Predictive Repetitive Control

3. Stable Inversion of Piecewise Affine Systems with Application to Feedforward and Iterative Learning Control

4. Statistical Analysis of Block Coordinate Descent Algorithms for Linear Continuous-time System Identification

5. A Frequency-Domain Approach for Enhanced Performance and Task Flexibility in Finite-Time ILC

6. Closed-loop Data-Enabled Predictive Control and its equivalence with Closed-loop Subspace Predictive Control

7. Robust Commutation Design: Applied to Switched Reluctance Motors

8. Unconstrained Parameterization of Stable LPV Input-Output Models: with Application to System Identification

9. Identification of Additive Continuous-time Systems in Open and Closed loop

10. Reset-Free Data-Driven Gain Estimation: Power Iteration using Reversed-Circulant Matrices

11. Structured ambiguity sets for distributionally robust optimization

12. Nonlinear Bayesian Identification for Motor Commutation: Applied to Switched Reluctance Motors

13. Direct Learning for Parameter-Varying Feedforward Control: A Neural-Network Approach

14. Beyond Nyquist in Frequency Response Function Identification: Applied to Slow-Sampled Systems

15. Direct Shaping of Minimum and Maximum Singular Values: An $\mathcal{H}_{-}/\mathcal{H}_{\infty}$ Synthesis Approach for Fault Detection Filters

16. Identifying Lebesgue-sampled Continuous-time Impulse Response Models: A Kernel-based Approach

17. Cascaded Calibration of Mechatronic Systems via Bayesian Inference

18. Learning for Precision Motion of an Interventional X-ray System: Add-on Physics-Guided Neural Network Feedforward Control

19. A Kernel-Based Identification Approach to LPV Feedforward: With Application to Motion Systems

20. Kernel-based identification using Lebesgue-sampled data

21. Basis Function feedforward for Position-Dependent Systems

22. Unifying Model-Based and Neural Network Feedforward: Physics-Guided Neural Networks with Linear Autoregressive Dynamics

23. Feedforward Control in the Presence of Input Nonlinearities: A Learning-based Approach

24. Optimal Commutation for Switched Reluctance Motors using Gaussian Process Regression

25. Data-enabled predictive control with instrumental variables: the direct equivalence with subspace predictive control

26. Cross-Coupled Iterative Learning Control for Complex Systems: A Monotonically Convergent and Computationally Efficient Approach

27. Automated MIMO Motion Feedforward Control: Efficient Learning through Data-Driven Gradients via Adjoint Experiments and Stochastic Approximation

28. Frequency Domain Identification of Multirate Systems: A Lifted Local Polynomial Modeling Approach

32. Neural Network Training Using Closed-Loop Data: Hazards and an Instrumental Variable (IVNN) Solution

33. Position-Dependent Snap Feedforward: A Gaussian Process Framework

34. Gaussian Process Position-Dependent Feedforward: With Application to a Wire Bonder

35. Data-driven feedback linearisation using model predictive control

36. Physics-Guided Neural Networks for Feedforward Control: An Orthogonal Projection-Based Approach

37. Learning nonlinear feedforward: a Gaussian Process Approach Applied to a Printer with Friction

39. Intermittent Sampling in Repetitive Control: Exploiting Time-Varying Measurements

40. Conjugate gradient MIMO iterative learning control using data-driven stochastic gradients

41. Frequency Response Data Based LPV Controller Synthesis Applied to a Control Moment Gyroscope

45. Iterative learning control with discrete-time nonlinear nonminimum phase models via stable inversion

46. Frequency-Domain Data-Driven Controller Synthesis for Unstable LPV Systems

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