DocumentCode
1421697
Title
Scan-Based Volume Animation Driven by Locally Adaptive Articulated Registrations
Author
Rhee, Taehyun ; Lewis, J.P. ; Neumann, Ulrich ; Nayak, Krishna S.
Author_Institution
3D Graphics & VR Group, Samsung Electron. Co., Ltd., Yongin, South Korea
Volume
17
Issue
3
fYear
2011
fDate
3/1/2011 12:00:00 AM
Firstpage
368
Lastpage
379
Abstract
This paper describes a complete system to create anatomically accurate example-based volume deformation and animation of articulated body regions, starting from multiple in vivo volume scans of a specific individual. In order to solve the correspondence problem across volume scans, a template volume is registered to each sample. The wide range of pose variations is first approximated by volume blend deformation (VBD), providing proper initialization of the articulated subject in different poses. A novel registration method is presented to efficiently reduce the computation cost while avoiding strong local minima inherent in complex articulated body volume registration. The algorithm highly constrains the degrees of freedom and search space involved in the nonlinear optimization, using hierarchical volume structures and locally constrained deformation based on the biharmonic clamped spline. Our registration step establishes a correspondence across scans, allowing a data-driven deformation approach in the volume domain. The results provide an occlusion-free person-specific 3D human body model, asymptotically accurate inner tissue deformations, and realistic volume animation of articulated movements driven by standard joint control estimated from the actual skeleton. Our approach also addresses the practical issues arising in using scans from living subjects. The robustness of our algorithms is tested by their applications on the hand, probably the most complex articulated region in the body, and the knee, a frequent subject area for medical imaging due to injuries.
Keywords
biology computing; biomedical imaging; computer animation; image registration; nonlinear programming; solid modelling; 3D human body model; articulated body region; biharmonic clamped spline; hierarchical volume structure; medical imaging; nonlinear optimization; search space; standard joint control; vivo volume scan; volume animation; volume blend deformation; Animation; Biological system modeling; Body regions; Computational efficiency; Constraint optimization; Deformable models; Humans; In vivo; Joints; Spline; Registration; deformation; volume animation.; Algorithms; Humans; Imaging, Three-Dimensional; Pattern Recognition, Automated; Whole Body Imaging;
fLanguage
English
Journal_Title
Visualization and Computer Graphics, IEEE Transactions on
Publisher
ieee
ISSN
1077-2626
Type
jour
DOI
10.1109/TVCG.2010.39
Filename
5416708
Link To Document