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Estimating Human Body Configurations Using Shape Context Matching

机译:使用形状上下文匹配估算人体配置

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The problem we consider in this paper is to take a single two-dimensional image containing a human body, locate the joint positions, and use these to estimate the body configuration and pose in three-dimensional space. The basic approach is to store a number of exemplar 2D views of the human body in a variety of different configurations and viewpoints with respect to the camera. On each of these stored views, the locations of the body joints (left elbow, right knee, etc.) are manually marked and labelled for future use. The test shape is then matched to each stored view, using the technique of shape context matching in conjunction with a kinematic chain-based deformation model. Assuming that there is a stored view sufficiently similar in configuration and pose, the correspondence process will succeed. The locations of the body joints are then transferred from the exemplar view to the test shape. Given the joint locations, the 3D body configuration and pose are then estimated. We can apply this technique to video by treating each frame independently-tracking just becomes repeated recognition! We present results on a variety datasets.
机译:我们考虑本文的问题是采取包含人体的单个二维图像,定位接合位置,并使用这些来估计身体配置并在三维空间中姿势。基本方法是在各种不同的配置和视点相对于相机存储人体的多个示例性2D视图。在每个存储的视图中,手动标记和标记身体关节(左弯头,右膝部等)以供将来使用。然后,使用与基于运动链的变形模型结合的形状上下文匹配的技术匹配的技术,测试形状与每个存储的视图匹配。假设在配置和姿势中存在足够相似的存储视图,则对应过程将成功。然后将主体接头的位置从示例性视图转移到测试形状。鉴于联合位置,然后估计3D体配置和姿势。我们可以通过对待每个帧独立跟踪将这种技术应用于视频,只会变得重复识别!我们在品种数据集上呈现结果。

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