DocumentCode :
2803986
Title :
Modeling the constraints of human hand motion
Author :
Lin, John ; Wu, Ying ; Huang, Thomas S.
Author_Institution :
Beckman Inst. for Adv. Sci. & Technol., Illinois Univ., Urbana, IL, USA
fYear :
2000
fDate :
2000
Firstpage :
121
Lastpage :
126
Abstract :
Hand motion capture is one of the most important parts of gesture interfaces. Many current approaches to this task generally involve a formidable nonlinear optimization problem in a large search space. Motion capture can be achieved more cost-efficiently when considering the motion constraints of a hand. Although some constraints can be represented as equalities or inequalities, there exist many constraints which cannot be explicitly represented. In this paper, we propose a learning approach to model the hand configuration space directly. The redundancy of the configuration space can be eliminated by finding a lower-dimensional subspace of the original space. Finger motion is modeled in this subspace based on the linear behavior observed in the real motion data collected by a CyberGlove. Employing the constrained motion model, we are able to efficiently capture finger motion from video inputs. Several experiments show that our proposed model is helpful for capturing articulated motion
Keywords :
biomechanics; constraint theory; data gloves; gesture recognition; image motion analysis; optimisation; redundancy; CyberGlove; articulated motion; equalities; finger motion; gesture interfaces; hand configuration space; hand motion capture; human hand motion; inequalities; large search space; learning approach; linear behavior; lower-dimensional subspace; motion constraint modelling; nonlinear optimization; redundancy elimination; video inputs; Animation; Biological system modeling; Costs; Data gloves; Fingers; Human computer interaction; Image analysis; Image motion analysis; Motion analysis; Motion estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Human Motion, 2000. Proceedings. Workshop on
Conference_Location :
Los Alamitos, CA
Print_ISBN :
0-7695-0939-8
Type :
conf
DOI :
10.1109/HUMO.2000.897381
Filename :
897381
Link To Document :
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