Title :
Generalized model predictive static programming and its application to 3D impact angle constrained guidance of air-to-surface missiles
Author :
Maity, Avisek ; Oza, Harshal B. ; Padhi, Radhakant
Author_Institution :
Dept. of Aerosp. Eng., Indian Inst. of Sci., Bangalore, India
Abstract :
A new `generalized model predictive static programming (G-MPSP)´ technique is presented in this paper in the continuous time framework for rapidly solving a class of finite-horizon nonlinear optimal control problems with hard terminal constraints. A key feature of the technique is backward propagation of a small-dimensional weight matrix dynamics, using which the control history gets updated. This feature, as well as the fact that it leads to a static optimization problem, are the reasons for its high computational efficiency. It has been shown that under Euler integration, it is equivalent to the existing model predictive static programming technique, which operates on a discrete-time approximation of the problem. Performance of the proposed technique is demonstrated by solving a challenging three-dimensional impact angle constrained missile guidance problem. The problem demands that the missile must meet constraints on both azimuth and elevation angles in addition to achieving near zero miss distance, while minimizing the lateral acceleration demand throughout its flight path. Both stationary and maneuvering ground targets are considered in the simulation studies. Effectiveness of the proposed guidance has been verified by considering first order autopilot lag as well as various target maneuvers.
Keywords :
approximation theory; continuous time systems; integration; matrix algebra; missile guidance; optimisation; predictive control; 3D impact angle constrained guidance; Euler integration; G-MPSP technique; air-to-surface missile; azimuth; continuous time framework; control history; discrete-time approximation; elevation angle; finite-horizon nonlinear optimal control; first order autopilot lag; flight path; generalized model predictive static programming; hard terminal constraint; lateral acceleration demand; maneuvering ground target; small-dimensional weight matrix dynamics; static optimization problem; stationary ground target; zero miss distance; Acceleration; Atmospheric modeling; Azimuth; History; Missiles; Optimal control; Vehicle dynamics; Computationally Efficient Optimal Control; Generalized Model Predictive Static Programming; Impact Angle Constrained Guidance;
Conference_Titel :
American Control Conference (ACC), 2013
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4799-0177-7
DOI :
10.1109/ACC.2013.6580614