In this paper, a Force-based Model Predictive Control (F-MPC) scheme for braking systems is proposed. The use of longitudinal force information for slip tracking shows two main advantages: 1) the closed-loop system becomes robust to different grip conditions without the need of a friction model, 2) the optimization problem can be formulated as a quadratic program, suitable for real-time implementation. The approach is tested on a full-fledged vehicle simulator coupled with a nonlinear actuator calibrated on a real electro-hydraulic brake. A comparison with state-of-the-art solutions highlights better transient and tracking performance under both nominal and uncertain friction conditions
With the recent emergence of electric drivetrains, a faster and energy efficient braking actuator - ...
In order to achieve automatic braking and optimization of the braking process, this paper proposes a...
In this paper a novel vehicle lateral dynamic control approach is presented. A differential braking ...
In this paper, a Force-based Model Predictive Control (F-MPC) scheme for braking systems is proposed...
This paper describes the application of Model Predictive Control (MPC) to vehicle motion control usi...
This article compares the performance of three predictive braking control algorithms for electric ve...
The proposed control provides more longitudinal motion control compared to conventional Vehicle Stab...
State of the art vehicle dynamics control systems do not exploit tire road forces information, even ...
In this paper we present a Model Predictive Control (MPC) approach for combined braking and steering...
This article is concerned with the design of braking control systems for electric vehicles endowed w...
Abstract: Electromechanical brakes (EMB) have great potential for automotive applications due to per...
This paper presents a traction controller for combined driving and cornering conditions, based on ex...
A Model Predictive Control (MPC) approach for controlling active front steering, active braking and ...
Abstract—The electromechanical brake (EMB) force control problem has been approached in prior work u...
In this paper we present a Model Predictive Control (MPC) approach for combined braking and steering...
With the recent emergence of electric drivetrains, a faster and energy efficient braking actuator - ...
In order to achieve automatic braking and optimization of the braking process, this paper proposes a...
In this paper a novel vehicle lateral dynamic control approach is presented. A differential braking ...
In this paper, a Force-based Model Predictive Control (F-MPC) scheme for braking systems is proposed...
This paper describes the application of Model Predictive Control (MPC) to vehicle motion control usi...
This article compares the performance of three predictive braking control algorithms for electric ve...
The proposed control provides more longitudinal motion control compared to conventional Vehicle Stab...
State of the art vehicle dynamics control systems do not exploit tire road forces information, even ...
In this paper we present a Model Predictive Control (MPC) approach for combined braking and steering...
This article is concerned with the design of braking control systems for electric vehicles endowed w...
Abstract: Electromechanical brakes (EMB) have great potential for automotive applications due to per...
This paper presents a traction controller for combined driving and cornering conditions, based on ex...
A Model Predictive Control (MPC) approach for controlling active front steering, active braking and ...
Abstract—The electromechanical brake (EMB) force control problem has been approached in prior work u...
In this paper we present a Model Predictive Control (MPC) approach for combined braking and steering...
With the recent emergence of electric drivetrains, a faster and energy efficient braking actuator - ...
In order to achieve automatic braking and optimization of the braking process, this paper proposes a...
In this paper a novel vehicle lateral dynamic control approach is presented. A differential braking ...