Found 7 relevant results in 2.10s where lecturer="Melanie Zeilinger"

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151-0073-31L 2020S , 2021S , 2022S , 2026S 20 Credits BSC D-MAVT

Students develop and build a product from A-Z! They work in teams and independently, learn to structure problems, to identify solutions, system analysis and simulations, as well as presentation and documentation techniques. They build the product with access to a machine shop and state of the art engineering tools (Matlab, Simulink, etc).

2020S
2021S
2022S
151-0371-00L 2020W , 2021W , 2022W , 2023W , 2024W , 2025W , 2026W 4 Credits DR , MSC D-MAVT , D-INFK , D-MATH , D-PHYS , D-ERDW , D-ITET

Model predictive control (MPC) has established itself as a powerful control technique for complex systems under state and input constraints. This course discusses the theory and application of recent advanced MPC concepts, focusing on system uncertainties and safety, as well as data-driven formulations and learning-based control.

2020W
2021W
2022W
2023W
2024W
2025W
151-0073-51L 2022S , 2023S , 2024S , 2025S , 2026S 20 Credits BSC D-MAVT

Students develop and build a product from A-Z! They work in teams and independently, learn to structure problems, to identify solutions, system analysis and simulations, as well as presentation and documentation techniques. They build the product with access to a machine shop and state of the art engineering tools (Matlab, Simulink, etc).

2022S
2023S
2024S
2025S
151-0590-00L 2005S , 2006S , 2007S , 2008S , 2020S , 2021S , 2022S , 2023S , 2024S , 2025S , 2026S 4 Credits BSC D-MAVT

This course builds upon the modeling and control of LTI SISO systems introduced in Control Systems I. It extends these foundations with state feedback and estimation, multi-input multi-output (MIMO) systems, nonlinear control, optimization, optimal control and model predictive control (MPC) for constrained linear systems.

2005S
2006S
2007S
2008S
2020S
2021S
2022S
2023S
2024S
2025S
151-0660-00L 2020S , 2021S , 2022S , 2023S , 2024S , 2025S , 2026S , 2026W 4 Credits BSC , DR , MSC D-ERDW , D-ARCH , D-INFK , D-MATH , D-MAVT , D-PHYS , D-ITET

Model predictive control is a flexible paradigm that defines the control law as an optimization problem, enabling the specification of time-domain objectives, high performance control of complex multivariable systems and the ability to explicitly enforce constraints on system behavior. This course provides an introduction to the theory and practice of MPC and covers advanced topics.

2020S
2021S
2022S
2023S
2024S
2025S
2026W
401-5860-00L 2020S , 2020W , 2021S , 2021W , 2022S , 2022W , 2023S , 2024S 4 Credits MSC D-MATH

This course provides an opportunity to familiarize yourself with the advanced topics of robotics and mechatronics research. The seminar consists of a literature study, including a report and a presentation.

2020S
2020W
2021S
2021W
2022S
2022W
2023S
173-0003-00L 2022S , 2023S , 2024S , 2025S , 2026S 6 Credits NDS D-MAVT

Signals arise in most engineering applications. They contain information about the behavior of physical systems. Systems respond to signals and produce other signals. In this course, we explore how signals can be represented and manipulated, and their effects on systems. We further explore how we can discover basic system properties by exciting a system with various types of signals.

2022S
2023S
2024S
2025S