Model-Free Predictive Control: An Algorithmic Approach Buy on Amazon
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Model-Free Predictive Control: An Algorithmic Approach

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Book Details
Author(s) Tim Barry
ISBN / ASIN 3639227409
ISBN-13 9783639227406
Availability Usually ships in 24 hours
Sales Rank #7,645,575
Marketplace United States 🇺🇸
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Description
This book presents a data-driven approach to constrained control in the form of a subspace-based state-space system identification algorithm integrated into a model predictive controller. Previous research into this area focused on the system identification aspects resulting in an omission of many of the features that would make such a control strategy attractive to industry. These features include constraint handling, zero-offset set-point tracking and non-stationary disturbance rejection. Parameterisation with Laguerre orthonormal functions was proposed for the reduction in computational load of the controller. Simulation studies were performed using three real-world systems demonstrating: identification capabilities in the presence of white noise and non-stationary disturbances; unconstrained and constrained control; and the benefits and costs of parameterisation with Laguerre polynomials. The discussed algorithms have also been presented in Matlab code.
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