DocumentCode :
3000812
Title :
Finite element methods for real-time haptic feedback of soft-tissue models in virtual reality simulators
Author :
Frank, Andreas O. ; Twombly, I. Alexander ; Barth, Timothy J. ; Smith, Jeffrey D.
Author_Institution :
Center for Bioinf., NASA Ames Res. Center, Moffett Field, CA, USA
fYear :
2001
fDate :
17-17 March 2001
Firstpage :
257
Lastpage :
263
Abstract :
Applies the linear elastic finite element method to compute haptic force feedback and domain deformations of soft-tissue models for use in virtual reality simulators. Our results show that, for virtual object models of high-resolution 3D data (>10,000 nodes), haptic real-time computations (<500 Hz) are nor currently possible using traditional methods. Current research efforts are focused in the following areas: (1) efficient implementation of fully adaptive multi-resolution methods, and (2) multi-resolution methods with specialized basis functions to capture the singularity at the haptic interface (point loading). To achieve real-time computations, we propose parallel processing of a Jacobi pre-conditioned conjugate gradient method applied to a reduced system of equations resulting from surface domain decomposition. This can effectively be achieved using reconfigurable computing systems such as field programmable gate arrays (FPGAs), thereby providing a flexible solution that allows for new FPGA implementations as improved algorithms become available. The resulting soft-tissue simulation system would meet NASA Virtual Glovebox requirements and, at the same time, provide a generalized simulation engine for any immersive environment application, such as biomedical/surgical procedures or interactive scientific applications.
Keywords :
Jacobian matrices; biological tissues; digital simulation; elastic deformation; field programmable gate arrays; finite element analysis; force feedback; haptic interfaces; medical computing; parallel programming; real-time systems; reconfigurable architectures; virtual reality; FPGA implementations; Jacobi preconditioned conjugate gradient method; NASA Virtual Glovebox; biomedical procedures; domain deformations; field programmable gate arrays; flexible solution; fully adaptive multi-resolution methods; generalized simulation engine; haptic interface singularity; high-resolution 3D data; immersive environment; interactive scientific applications; linear elastic finite element method; multi-resolution methods; parallel processing; point loading; real-time haptic feedback; reconfigurable computing systems; reduced equation system; soft-tissue models; specialized basis functions; surface domain decomposition; surgical procedures; virtual object models; virtual reality simulators; Computational modeling; Concurrent computing; Deformable models; Field programmable gate arrays; Finite element methods; Force feedback; Haptic interfaces; Parallel processing; Real time systems; Virtual reality;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Virtual Reality, 2001. Proceedings. IEEE
Conference_Location :
Yokohama, Japan
Print_ISBN :
0-7695-0948-7
Type :
conf
DOI :
10.1109/VR.2001.913794
Filename :
913794
Link To Document :
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