Title :
Dynamic modeling of butterfly subdivision surfaces
Author :
Mandal, Chhandomay ; Qin, Hong ; Vemuri, Baba C.
Author_Institution :
Sun Microsyst. Inc., Chelmsford, MA, USA
Abstract :
The authors develop integrated techniques that unify physics based modeling with geometric subdivision methodology and present a scheme for dynamic manipulation of the smooth limit surface generated by the (modified) butterfly scheme using physics based “force” tools. This procedure based surface model obtained through butterfly subdivision does not have a closed form analytic formulation (unlike other well known spline based models), and hence poses challenging problems to incorporate mass and damping distributions, internal deformation energy, forces, and other physical quantities required to develop a physics based model. Our primary contributions to computer graphics and geometric modeling include: (1) a new hierarchical formulation for locally parameterizing the butterfly subdivision surface over its initial control polyhedron, (2) formulation of dynamic butterfly subdivision surface as a set of novel finite elements, and (3) approximation of this new type of finite elements by a collection of existing finite elements subject to implicit geometric constraints. Our new physics based model can be sculpted directly by applying synthesized forces and its equilibrium is characterized by the minimum of a deformation energy subject to the imposed constraints. We demonstrate that this novel dynamic framework not only provides a direct and natural means of manipulating geometric shapes, but also facilitates hierarchical shape and nonrigid motion estimation from large range and volumetric data sets using very few degrees of freedom (control vertices that define the initial polyhedron)
Keywords :
CAD; bibliographies; computational geometry; finite element analysis; interactive systems; iterative methods; butterfly scheme; butterfly subdivision surfaces; computer graphics; control vertices; damping distributions; deformation energy; dynamic framework; dynamic manipulation; dynamic modeling; finite elements; geometric modeling; geometric shapes; geometric subdivision methodology; hierarchical formulation; hierarchical shape; implicit geometric constraints; initial control polyhedron; initial polyhedron; integrated techniques; internal deformation energy; nonrigid motion estimation; physical quantities; physics based force tools; physics based modeling; procedure based surface model; smooth limit surface; spline based models; synthesized forces; volumetric data sets; Computer graphics; Damping; Deformable models; Finite element methods; Manipulator dynamics; Motion estimation; Physics; Shape control; Solid modeling; Spline;
Journal_Title :
Visualization and Computer Graphics, IEEE Transactions on
DOI :
10.1109/2945.879787