PETERLÍK, Igor, Mert SEDEF, Cagatay BASDOGAN and Luděk MATYSKA. Real-time visio-haptic interaction with static soft tissue models having geometric and material nonlinearity. Computers & Graphics. Elsevier, 2010, vol. 34, No 1, p. 43-54. ISSN 0097-8493.
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Basic information
Original name Real-time visio-haptic interaction with static soft tissue models having geometric and material nonlinearity
Name in Czech Vizualní a haptická interakce se statickými geometricky a fyzikálně nelineárními modely v reálném čase
Authors PETERLÍK, Igor (703 Slovakia, guarantor), Mert SEDEF (792 Turkey), Cagatay BASDOGAN (792 Turkey) and Luděk MATYSKA (203 Czech Republic, belonging to the institution).
Edition Computers & Graphics, Elsevier, 2010, 0097-8493.
Other information
Original language English
Type of outcome Article in a journal
Field of Study 10201 Computer sciences, information science, bioinformatics
Country of publisher Netherlands
Confidentiality degree is not subject to a state or trade secret
WWW URL
Impact factor Impact factor: 0.735
RIV identification code RIV/00216224:14330/10:00043753
Organization unit Faculty of Informatics
UT WoS 000275245900006
Keywords (in Czech) metoda konečných prvků, nelineární modely, distribuované výpočty, interpolace
Keywords in English Finite element modeling; Nonlinear model; Distributed computations; Interpolation methods; Haptics; Surgical simulation; Real-time interaction; Soft tissue modeling
Tags International impact, Reviewed
Changed by Changed by: RNDr. Igor Peterlík, Ph.D., učo 39642. Changed: 4/2/2014 13:42.
Abstract
Realistic soft tissue models running in real-time are required for the development of computer-based surgical training systems. To construct a realistic soft tissue model, finite element (FE) modeling techniques are preferred over the particle-based techniques since the material properties can be integrated directly into the FE model to provide more accurate visual and haptic feedback to a user during the simulations. However, running even a static (time-independent) nonlinear FE model in real-time is a highly challenging task because the resulting stiffness matrix (K) is not constant and varies with the depth of penetration into the model. We propose a new computational approach allowing visio-haptic interaction with an FE model of a human liver having both nonlinear geometric and material properties. Our computational approach consists of two main steps: a pre-computation of the configuration space of all deformation configurations of the model, followed by the interpolation of the precomputed data for the calculation of the nodal displacements and reaction forces that are displayed to the user during the real-time interactions through a visual display and a haptic device, respectively. For the implementation of the proposed approach, no a priori assumptions or modeling simplifications about the mathematical complexity of the underlying soft tissue model, size and irregularity of the FE mesh are necessary. Moreover, it turns out that the deformation and force responses of the liver in the simulations are heavily influenced by the selected simulation parameters, such as the material model, boundary conditions and loading path, but the stability of the visual and haptic rendering in our approach does not depend on these parameters. In addition to showing the stability of our approach, the length of the precomputations as well as the accuracy of the interpolation scheme are evaluated for different interpolation functions and configuration space densities.
Abstract (in Czech)
Realistická simulace měkkých tkání v reálném času se vyžaduje pro vývoj chirurgických simulátorů: Navrhujeme nový přístup vhodný pro modelování geometrických i materiálových nelinearit v kombinaci s vysokovou obnovovací prekvencí, která je nevyhnutná pro haptickou interakci. Technika je založená na distribuovaném předpočítání stavového prostoru. Kromě popisu techniky uvádíme její podrobné vyhodnocení pro různé parametry simulace.
Links
MSM0021622419, plan (intention)Name: Vysoce paralelní a distribuované výpočetní systémy
Investor: Ministry of Education, Youth and Sports of the CR, Highly Parallel and Distributed Computing Systems
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