DocumentCode :
2609886
Title :
Simultaneous state and parameter estimation for physics-based tracking of heart surface motion
Author :
Bogatyrenko, Evgeniya ; Hanebeck, Uwe D.
Author_Institution :
Intell. Sensor-Actuator-Syst. Lab. (ISAS), Inst. for Anthropomatics, Karlsruhe, Germany
fYear :
2010
fDate :
5-7 Sept. 2010
Firstpage :
109
Lastpage :
114
Abstract :
Most existing approaches for tracking of the beating heart motion assume known cardiac kinematics and material parameters. However, these assumptions are not realistic for application in beating heart surgery. In this paper, a novel probabilistic tracking approach based on a physical model of the heart surface is presented. In contrast to existing approaches, the physical information about heart kinematics and material properties is incorporated and considered in an estimation of the heart behavior. An additional advantage is that the time-dependencies and uncertainties of the heart parameters are efficiently handled by exploiting simultaneous state and parameter estimation. Furthermore, by decomposing the state into linear and nonlinear substructures, the computational complexity of the estimation problem is reduced. The experimental results demonstrate the high performance of the method proposed in this paper. The solution of the parameter identification problem allows a personalized physical model and opens up possibilities to apply the physics-based tracking of the heart surface motion in a clinical environment.
Keywords :
computational complexity; kinematics; medical image processing; medical robotics; motion estimation; parameter estimation; state estimation; surgery; tracking; beating heart motion; beating heart surgery; cardiac kinematics; computational complexity; heart behavior estimation; heart kinematics; heart surface; heart surface motion tracking; linear substructures; nonlinear substructures; parameter estimation; parameter identification problem; personalized physical model; physics-based tracking; probabilistic tracking approach; simultaneous state estimation; Computational modeling; Estimation; Heart; Mathematical model; Parameter estimation; Surgery; Tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multisensor Fusion and Integration for Intelligent Systems (MFI), 2010 IEEE Conference on
Conference_Location :
Salt Lake City, UT
Print_ISBN :
978-1-4244-5424-2
Type :
conf
DOI :
10.1109/MFI.2010.5604449
Filename :
5604449
Link To Document :
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