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Cooperative estimation of human motion and surfaces using multiview videos

机译:使用多视点视频对人体运动和表面进行协作估计

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摘要

We propose a human motion tracking method that not only captures the motion of the skeleton model but also generates a sequence of surfaces using images acquired by multiple synchronized cameras. Our method extracts articulated postures with 42 degrees of freedom through a sequence of visual hulls. We seek a globally optimized solution for likelihood using local memorization of the "fitness" of each body segment. Our method efficiently avoids problems of local minima by using a mean combination and an articulated combination of particles selected according to the weights of the different body segments. The surface is produced by deforming the template and the details are recovered by fitting the deformed surface to 2D silhouette rims. The extracted posture and estimated surface are cooperatively refined by registering the corresponding body segments. In our experiments, the mean error between the samples of the deformed reference model and the target is about 2 cm and the mean matching difference between the images projected by the estimated surfaces and the original images is about 6%.
机译:我们提出了一种人类运动跟踪方法,该方法不仅可以捕获骨架模型的运动,而且还可以使用由多个同步相机获取的图像来生成一系列表面。我们的方法通过一系列视觉船体提取具有42个自由度的关节姿势。我们使用局部记忆每个身体部分的“适合度”来寻求一种针对可能性的全局优化解决方案。我们的方法通过使用平均组合和根据不同身体部分的重量选择的粒子的铰接组合,有效避免了局部极小值的问题。通过使模板变形来生成表面,并通过将变形的表面装配到2D轮廓边缘来恢复细节。通过记录相应的身体部位,可以对提取的姿势和估计的曲面进行协调完善。在我们的实验中,变形参考模型的样本与目标之间的平均误差约为2 cm,估计表面投影的图像与原始图像之间的平均匹配差异约为6%。

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