基于高斯和体模型的快速关节运动跟踪

Carsten Stoll, N. Hasler, Juergen Gall, H. Seidel, C. Theobalt
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引用次数: 220

摘要

我们提出了一种通过空间高斯和(SoG)对人体建模的方法,使我们能够从多视图视频序列中执行快速和高质量的无标记运动捕获。SoG模型配备了一个颜色模型来表示人的形状和外观,可以从稀疏的图像集合中重建。与人体相似,我们也将图像域表示为SoG,该SoG对颜色一致的图像斑点进行建模。基于图像和人体的SoG模型,我们引入了一种新的连续和可微的模型-图像相似性度量,即使在许多摄像机视图下,该度量也可用于估计人体骨骼每秒5-15帧的运动。在我们的实验中,我们表明我们的方法不依赖于轮廓或训练数据,在精度和计算成本之间提供了很好的平衡。
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Fast articulated motion tracking using a sums of Gaussians body model
We present an approach for modeling the human body by Sums of spatial Gaussians (SoG), allowing us to perform fast and high-quality markerless motion capture from multi-view video sequences. The SoG model is equipped with a color model to represent the shape and appearance of the human and can be reconstructed from a sparse set of images. Similar to the human body, we also represent the image domain as SoG that models color consistent image blobs. Based on the SoG models of the image and the human body, we introduce a novel continuous and differentiable model-to-image similarity measure that can be used to estimate the skeletal motion of a human at 5–15 frames per second even for many camera views. In our experiments, we show that our method, which does not rely on silhouettes or training data, offers an good balance between accuracy and computational cost.
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