Title :
H∞ filtering and physical modeling for robust kinematics estimation
Author :
Lo, Edward W B ; Liu, Huafeng ; Shi, Pengcheng
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ. of Sci. & Technol., China
Abstract :
A robust H∞ algorithm for object kinematics estimation from image sequences is presented. The framework relies on both the physical modeling of the object structure and behavior, and the minimization of the worst-case error filtering criterion. By employing the finite element method, the system dynamics of the object is constructed as a set of physically meaningful partial differential equations, which are then converted into continuous- and discrete-time state space representations. In contrast to the popular Kalman filtering strategy which produces the minimum-mean-square-error estimates, the mini-max H∞ filter is adopted which assumes no prior statistics knowledge on the external disturbances. A series of experiments are performed using synthetic data of various noise types and levels to assess the accuracy and robustness of the H∞ filtering framework, and to make comparisons to the Kalman filtering results. Practical applications to magnetic resonance image sequences of the heart are also presented.
Keywords :
finite element analysis; image sequences; kinematics; magnetic resonance; minimisation; partial differential equations; state-space methods; continuous-time state space representation; discrete-time state space representations; finite element method; image sequences; magnetic resonance; mini-max H∞ filter; minimization; object kinematics estimation; partial differential equations; worst-case error filtering criterion; Filtering; Finite element methods; Image sequences; Kalman filters; Kinematics; Magnetic separation; Partial differential equations; Robustness; State-space methods; Statistics;
Conference_Titel :
Image Processing, 2003. ICIP 2003. Proceedings. 2003 International Conference on
Print_ISBN :
0-7803-7750-8
DOI :
10.1109/ICIP.2003.1246643