首页> 外文会议>International Conference on Articulated Motion and Deformable Objects(AMDO 2006); 20060711-14; Port d'Andratx, Mallorca(ES) >Probabilistic Spatio-temporal 2D-Model for Pedestrian Motion Analysis in Monocular Sequences
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Probabilistic Spatio-temporal 2D-Model for Pedestrian Motion Analysis in Monocular Sequences

机译:单眼序列中行人运动分析的概率时空二维模型

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This paper addresses the problem of probabilistic modelling of human motion by combining several 2D views. This method takes advantage of 3D information avoiding the use of a complex 3D model. Considering that the main disadvantage of 2D models is their restriction to the camera angle, a solution to this limitation is proposed in this paper. A multi-view Gaussian Mixture Model (GMM) is therefore fitted to a feature space made of Shapes and Stick figures manually labelled. Temporal and spatial constraints are considered to build a probabilistic transition matrix. During the fitting, this matrix limits the feature space only to the most probable models from the GMM. Preliminary results have demonstrated the ability of this approach to adequately estimate postures independently of the direction of motion during the sequence.
机译:本文通过组合几个2D视图解决了人体运动的概率建模问题。该方法利用了3D信息,从而避免了使用复杂的3D模型。考虑到二维模型的主要缺点是它们对摄像机角度的限制,本文提出了一种解决方案。因此,将多视图高斯混合模型(GMM)装配到由手动标记的“形状”和“简笔画”组成的特征空间中。考虑时间和空间约束以建立概率转移矩阵。在拟合期间,此矩阵仅将特征空间限制为GMM中最可能的模型。初步结果证明了这种方法能够独立于序列中的运动方向来充分估计姿势。

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