Artificial neural networks for 3D nonrigid motion analysis

T. Chen, W. Lin, C.-T. Chen
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引用次数: 4

Abstract

A novel approach to 3D nonrigid motion analysis using artificial neural networks is presented. A set of neural networks is proposed to tackle the problem of nonrigidity in 3D motion estimation. Constraints are specified to ensure a stable and global consistent estimation of local deformations. The assignments of weights between two layers, the initial values of the outputs, and the connections between each network reflect the constraints defined. The objective of the proposed neural networks is to find the optimal deformation matrices that satisfy the constraints for all the points on the surface of the nonrigid object. Experimental results on synthetic and real data are provided.<>
三维非刚体运动分析的人工神经网络
提出了一种利用人工神经网络进行三维非刚性运动分析的新方法。提出了一套神经网络来解决三维运动估计中的非刚性问题。指定约束以确保局部变形的稳定和全局一致估计。两层之间的权值分配、输出的初始值以及每个网络之间的连接反映了所定义的约束。提出的神经网络的目标是寻找满足非刚性物体表面所有点约束的最优变形矩阵。给出了合成数据和实际数据的实验结果。
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