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J

Jan M. Maciejowski

Researcher at University of Cambridge

Publications -  287
Citations -  14150

Jan M. Maciejowski is an academic researcher from University of Cambridge. The author has contributed to research in topics: Model predictive control & Control theory. The author has an hindex of 40, co-authored 286 publications receiving 13449 citations. Previous affiliations of Jan M. Maciejowski include Control Group & Imperial College London.

Papers
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Book

Predictive Control With Constraints

TL;DR: A standard formulation of Predictive Control is presented, with examples of step response and transfer function formulations, and a case study of robust predictive control in the context of MATLAB.
Book

Multivariable Feedback Design

TL;DR: In this article, a comprehensive and unified view of modern multivariate feedback theory and design is presented, where balancing techniques with theory, the objective throughout is to enable the feedback engineer to design real systems.
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Optimization over state feedback policies for robust control with constraints

TL;DR: It is shown that the class of admissible affine state feedback control policies with knowledge of prior states is equivalent to the classOf admissible feedback policies that are affine functions of the past disturbance sequence, which implies that a broad class of constrained finite horizon robust and optimal control problems can be solved in a computationally efficient fashion using convex optimization methods.
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On Particle Methods for Parameter Estimation in State-Space Models

TL;DR: A comprehensive review of particle methods that have been proposed to perform static parameter estimation in state-space models is presented in this article, where the advantages and limitations of these methods are discussed.
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An overview of sequential Monte Carlo methods for parameter estimation in general state-space models

TL;DR: The aim of this paper is to present a comprehensive overview of SMC methods that have been proposed to perform static parameter estimation in general state-space models and discuss the advantages and limitations of these methods.