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Michael Zeitz

Researcher at University of Stuttgart

Publications -  108
Citations -  3277

Michael Zeitz is an academic researcher from University of Stuttgart. The author has contributed to research in topics: Nonlinear system & Feed forward. The author has an hindex of 24, co-authored 107 publications receiving 3160 citations. Previous affiliations of Michael Zeitz include Peking University & Ruhr University Bochum.

Papers
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Canonical form observer design for non-linear time-variable systems

TL;DR: In this article, an observer of canonical (phase-variable) form for non-linear time-variable systems is introduced, which is an assumption similar to that of the extended Kalman filter based on a linearization about the current estimate.
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The extended Luenberger observer for nonlinear systems

TL;DR: The extended Luenberger observer as discussed by the authors is a nonlinear observer design for nonlinear single-input single-output (SISO) systems, which is based on the extended Kalman filter (EKF) algorithm.
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Extended Luenberger observer for non-linear multivariable systems

TL;DR: For non-linear MIMO systems, the extended Luenberger observer as discussed by the authors is a nonlinear observer design for all sufficiently smooth and locally observable systems that can be simplified using the degrees of freedom available in the case of multiple outputs.
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A new approach to inversion-based feedforward control design for nonlinear systems

TL;DR: The presented approach treats the considered transition task as a two-point boundary value problem (BVP) and yields causal feedforward trajectories, which are constant outside the transition interval, which can be used for the numerical solution of the BVP.
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Flatness based control of a nonlinear chemical reactor model

TL;DR: The nonlinear model of a continuous stirred tank reactor is shown to be flat, which permits the design of suitable trajectories on the basis of the explicit stationary solution and the tracking of these trajectories asymptotically using quasi-static state feedback linearization.