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Carrying Object Detection Using Pose Preserving Dynamic Shape Models

机译:使用姿态保持动态形状模型进行携带物体检测

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摘要

In this paper, we introduce a framework for carrying object detection in different people from different views using pose preserving dynamic shape models. We model dynamic shape deformations in different people using kinematics manifold embedding and decomposable generative models by kernel map and multilinear analysis. The generative model supports pose-preserving shape reconstruction in different people, views and body poses. Iterative estimation of shape style and view with pose preserving generative model allows estimation of outlier in addition to accurate body pose. The model is also used for hole filling in the background-subtracted silhouettes using mask generated from the best fitting shape model. Experimental results show accurate estimation of carrying objects with hole filling in discrete and continuous view variations.
机译:在本文中,我们介绍了一个使用姿态保持动态形状模型从不同角度在不同人群中进行物体检测的框架。我们使用运动学流形嵌入和可分解的生成模型,通过核图和多线性分析,对不同人的动态形状变形进行建模。生成模型支持在不同的人,视图和身体姿势中保持姿势的形状重构。使用姿势保留生成模型对形状样式和视图进行迭代估计,除了精确的身体姿势外,还可以估计离群值。该模型还用于使用从最佳拟合形状模型生成的蒙版填充背景减去的轮廓中的孔。实验结果表明,在离散的和连续的视图变化中,带有孔填充的携带物体的准确估计。

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