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Model predictive control with linear models

AIChE Journal · 1993 · Vol. 39(2) · pp. 262–287
Kenneth R. MuskeJames B. Rawlings

Abstract

Abstract This article discusses the existing linear model predictive control concepts in a unified theoretical framework based on a stabilizing, infinite horizon, linear quadratic regulator. In order to represent unstable as well as stable multivariable systems, the standard state‐space formulation is used for the plant model. The incorporation of a nominally stabilizing constrained regulator eliminates the current requirement of tuning for nominal stability. Output feedback is addressed in the well‐established framework of the linear quadratic state‐estimation problem. This framework allows the flexibility to handle nonsquare systems, noisy inputs and outputs, and nonzero input, output, and state disturbances. This formulation subsumes the integral control schemes designed to remove steady‐state offset currently in industrial use. The online implementation of the controller requires the solution of a standard quadratic program that is no more computationally intensive than existing algorithms.

Advanced Control Systems OptimizationFault Detection and Control SystemsControl Systems and IdentificationControl theory (sociology)Model predictive controlLinear-quadratic regulatorMultivariable calculusLinear systemFlexibility (engineering)Offset (computer science)Quadratic equationComputer scienceState (computer science)
Citations
703
FWCI
22.02
field-weighted impact
References
34
Percentile
100%
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Citations per year
References
Dynamic matrix control¿A computer control algorithm
IEEE Transactions on Automatic Control · 1980 · 1,702 citations
Model predictive heuristic control
Automatica · 1978 · 1,985 citations
On the dynamic behavior of continuous stirred tank reactors
Chemical Engineering Science · 1974 · 728 citations
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