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针对表情动作单元跟踪的隧道隐变量法
Tunneled Latent Variables Method for Facial Action Unit Tracking
【摘要】 针对低维隐变量分布的连通性问题提出了表情动作单元(Fa- cial action units,FAU)跟踪的隧道隐变量法.该方法通过有侧重的随机跳转克服了隐变量连通性不足所导致的局部收敛.实验表明该方法较普通隐变量法具有较好的鲁棒性和FAU跟踪精度.
【Abstract】 A nonlinear data reduction process with limited training examples usually results in a latent variables space with some unpleasant disconnections which may cause a tracking pro- cedure to fall at local minimums.This paper presents a novel method to resolve the problem.It is used to track facial action units in the video and the experiment results are encouraging.
【关键词】 非线性降维;
高斯过程;
聚类分析;
粒子滤波;
【Key words】 Nonlinear data reduction; Gaussian process(GP); cluster analysis; particle filtering;
【Key words】 Nonlinear data reduction; Gaussian process(GP); cluster analysis; particle filtering;
【基金】 国家自然科学基金(60673093)资助~~
- 【文献出处】 自动化学报 ,Acta Automatica Sinica , 编辑部邮箱 ,2009年02期
- 【分类号】TP391.41
- 【被引频次】4
- 【下载频次】129