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Expressive Gesture Animation Based on Non Parametric Learning of Sensory-Motor Models
New Brunswick, New Jersey May 08-May 09
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/CASA.2003.119930716th International Conference on Comp ...
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Sylvie Gibet, Universit? de Bretagne Sud
Pierre-Fran?ois Marteau, Universit? de Bretagne Sud
This paper presents an efficient method of learning motion control for autonomous animated characters. The method uses a non parametric learning approach which identifies non linear mappings between sensory signals and motor control. The learning phase is handled through a General Regression Neural Network model simulated by using near neighbors search algorithms (kd-tree). The resulting adaptive model (ASMM) is suitable for the expressive animation of an anthropomorphic hand-arm system involved in reaching or tracking tasks.
Citation:
Sylvie Gibet, Pierre-Fran?ois Marteau, "Expressive Gesture Animation Based on Non Parametric Learning of Sensory-Motor Models," casa, pp.79, 16th International Conference on Computer Animation and Social Agents (CASA 2003), 2003
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