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Anatomy- and physics-based facial animation for craniofacial surgery simulations

  • Special Section: Modelling and Simulation in Biomedicine
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Abstract

A modelling approach for the realistic simulation of facial expressions of emotion in craniofacial surgery planning is presented. The method is different from conventional, non-physical techniques for character animation in computer graphics. A consistent physiological mechanism for facial expressions was assumed, which was the effect of contracting muscles on soft tissues. For the numerical solution of the linear elastic boundary values, the finite element method on tetrahedral grids was used. The approach was validated on a geometrical model of a human head derived from tomographic data. Using this model, individual facial expressions of emotion were estimated by the superpositioning of precomputed single muscle actions.

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References

  • Ciarlet, P. G. (1988): ‘Mathematical elasticity, vol. I: Threedimensional elasticity’, taken from the series: Studies in Mathematics & its Applications’ (North-Holland, Amsterdam, 1988)

    Google Scholar 

  • Ekman, P., andFriesen, W. (1975): ‘Unmasking the face. A guide to recognizing emotions from facial clues’, (Prentice-Hall, Englewood Cliffs, New Jersey, 1975)

    Google Scholar 

  • Fung, Y. C. (1993): ‘Biomechanics—mechanical properties of living tissues’ (Springer, Berlin, 1993)

    Google Scholar 

  • Gladilin, E., Zachow, S., Deuflhard, P., andHege, H.-C. (2001): ‘Virtual fibers: a robust approach for muscle simulation’. Proc. MEDICON’01 Conf. Pula, Croatia, pp. 961–964

  • Gladilin, E., Zachow, S., Deuflhard, P., andHege, H. C. (2002): ‘Adaptive nonlinear elastic FEM for realistic prediction of soft tissue in craniofacial surgery simulations’. Proc. SPIE Medical Imaging Conference, San Diego, USA

  • Koch, R. M., Gross, M. H., andBosshard, A. A. (1998): ‘Emotion editing using finite elements’,Proc. Eurographics’98 Conf.,17, pp. 295–302

    Google Scholar 

  • Lee, Y., Terzopoulos, D., andWaters, K. (1995): Realistic modelling for facial animation, Proc. SIGGRAPH’95 Conf.

  • Magnenat-Thalmann, N., Primeau, N. E., andThalmann, D. (1988): ‘Abstract muscle actions procedures for human face animation’,Visual Comput.,3, pp. 290–297

    Google Scholar 

  • Parke, F. I., andWaters, K. (1996): ‘Computer facial animation’ (A. K. Peters, Wellesley, 1996)

    Google Scholar 

  • Peskin, C., andMcQueen, D. (1989): ‘A three-dimensional computational method for blood flow in the heart. Immersed elastic fibers in a viscous incompressible fluid’,J. Comput. Phys.,81, pp. 372–405

    Article  MathSciNet  Google Scholar 

  • Stalling, D., Zöckler, M., andHege, H.-C. ‘Amira: An advanced 3D visualization and modeling system’, URL: http://amira.zib.de

  • Terzopoulos, D., andWaters, K. (1990): ‘Physically based facial modeling, analysis and animation’,Proc. Visual. Comput. Anim.,1, pp. 73–80

    Google Scholar 

  • Zachow, S., Gladilin, E., Hege, H. C., andDeuflhard, P. (2002): ‘Towards patient specific, anatomy based simulation of facial mimics for surgical nerve rehabilitation’. Proc. CARS’02 Conf., Paris, France

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Correspondence to E. Gladilin.

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Gladilin, E., Zachow, S., Deuflhard, P. et al. Anatomy- and physics-based facial animation for craniofacial surgery simulations. Med. Biol. Eng. Comput. 42, 167–170 (2004). https://doi.org/10.1007/BF02344627

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  • DOI: https://doi.org/10.1007/BF02344627

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