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A New Method for Detection and Initial Pose Estimation Based on Mumford-Shah Segmentation Functional

机译:一种基于Mumford-Shah分段功能的检测与初始姿态估计的新方法

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In this paper we describe a new method for detection and initial pose estimation of a person in a human computer interaction in an uncontrolled indoor environment. We used the Koepfler-Morel-Solimini mathematical formulation of Mumford-Shah segmentation functional adapted to color images. The idea is to obtain a system to detect the hands and face in a sequence of monocular or binocular images. The skin color is predefined and a procedure is parameterized to segment and recognize the homogeneous regions. Besides, we fit our results to a restriction that the two hands and face must be detected at the same time. We also use a biomechanical restriction to reach this initial estimation. So, the centroid of the blob is computed for every region. We explain the mathematical background segmentation, and region classification (hands, face, head and upper-torso). Finally, we present some interesting results and we implements the algorithm efficiently in order to obtain real time results processing standard video format.
机译:在本文中,我们描述了一种在不受控制的室内环境中的人机交互中的检测和初始姿态估计的新方法。我们使用Koepfler-Morel-solimini的Mumford-Shah分段函数,适用于彩色图像。该想法是获得一种系统以在单眼或双目图像序列中检测手和面部。肤色是预定义的,并且将过程参数化为段并识别均匀区域。此外,我们将结果符合必须在同时检测到两只手和面部的限制。我们还使用生物力学限制来达到这种初始估计。因此,为每个区域计算BLOB的质心。我们解释了数学背景分割,区域分类(手,脸,头部和上躯干)。最后,我们提出了一些有趣的结果,我们有效地实现了算法,以便获得实时结果处理标准视频格式。

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