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首页> 外文期刊>International Journal of Computer Vision >3D Human Motion Tracking with a Coordinated Mixture of Factor Analyzers
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3D Human Motion Tracking with a Coordinated Mixture of Factor Analyzers

机译:结合因子分析仪的3D人体运动跟踪

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A major challenge in applying Bayesian tracking methods for tracking 3D human body pose is the high dimensionality of the pose state space. It has been observed that the 3D human body pose parameters typically can be assumed to lie on a low-dimensional manifold embedded in the high-dimensional space. The goal of this work is to approximate the low-dimensional manifold so that a low-dimensional state vector can be obtained for efficient and effective Bayesian tracking. To achieve this goal, a globally coordinated mixture of factor analyzers is learned from motion capture data. Each factor analyzer in the mixture is a “locally linear dimensionality reducer” that approximates a part of the manifold. The global parametrization of the manifold is obtained by aligning these locally linear pieces in a global coordinate system. To enable automatic and optimal selection of the number of factor analyzers and the dimensionality of the manifold, a variational Bayesian formulation of the globally coordinated mixture of factor analyzers is proposed. The advantages of the proposed model are demonstrated in a multiple hypothesis tracker for tracking 3D human body pose. Quantitative comparisons on benchmark datasets show that the proposed method produces more accurate 3D pose estimates over time than those obtained from two previously proposed Bayesian tracking methods. Keywords 3D human body tracking - Particle filtering - High-dimensional state space - Variational methods
机译:应用贝叶斯跟踪方法来跟踪3D人体姿势的主要挑战是姿势状态空间的高维度。已经观察到,通常可以假定3D人体姿势参数位于嵌入在高维空间中的低维歧管上。这项工作的目的是近似低维流形,以便获得低维状态向量,以进行有效的贝叶斯跟踪。为了实现这一目标,从运动捕获数据中学习了全局协调的因子分析器混合物。混合物中的每个因子分析仪都是一个“局部线性降维器”,它近似于歧管的一部分。通过在全局坐标系中对齐这些局部线性件来获得歧管的全局参数化。为了能够自动,最佳地选择因子分析仪的数量和歧管的维数,提出了因子分析仪的全局协调混合物的变分贝叶斯公式。在用于跟踪3D人体姿势的多重假设跟踪器中证明了所提出模型的优点。在基准数据集上进行的定量比较表明,与从先前提出的两种贝叶斯跟踪方法获得的3D姿态估计相比,所提出的方法随着时间的推移会产生更准确的3D姿态估计。关键词3D人体跟踪-粒子滤波-高维状态空间-变分方法

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