Stochastic Model Predictive Control for Quasi-Linear Parameter Varying Systems: Case Study on Automotive Engine Control

Author:

Chen Kaian1,Zhang Kaixiang1,Li Zhaojian1,Wang Yan2,Wu Kai3,Kalabić Uroš V.4

Affiliation:

1. Robotics and Intelligent Vehicle Automation Lab, Department of Mechanical Engineering, Michigan State University, East Lansing, MI 48824

2. Research and Advanced Engineering, Ford Motor Company, Dearborn, MI 48124

3. Global Data Insight and Analytics, Ford Motor Company, Dearborn, MI 48124

4. Mitsubishi Electric Research Labs, Cambridge, MA 02139

Abstract

Abstract This paper presents an efficient stochastic model predictive control (SMPC) framework for quasi-linear parameter varying (qLPV) systems. The framework applies to general nonlinear systems that are driven by stochastic additive disturbances and subject to chance constraints. The qLPV form is featured by a composition of a set of linear time-invariant (LTI) models with state-/control-dependent scheduling variables, which can be obtained by the spatial–temporal filtering-based system identification approach developed in our earlier work. The overall framework can then be transformed into a tube-based MPC optimization problem which can be efficiently handled by a series of quadratic programing (QP) problems. A case study on automotive engine control is presented as a pilot demonstration of the proposed qLPV–SMPC where we show its advantage over the zone-based MPC, much greater computational efficiency than nonlinear MPC (NMPC) and less conservativeness of the proposed method as compared to its robust MPC (RMPC) counterpart.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

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