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Human Pose Estimation and Tracking via Parsing a Tree Structure Based Human Model

机译:通过分析基于树结构的人体模型进行人体姿态估计和跟踪

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Human pose estimation and tracking is the task of determining the states (location, orientation, and scale) of each body part over time. It is important for many vision understanding applications, such as visual interactive gaming, immersive virtual reality, visual surveillance, and content-based image retrieval. However, it remains a challenging task due to unknown image background, presence of clutter and especially the high dimensional state space (usually 30+ dimensions). In this paper, we contribute to human pose estimation and tracking in two aspects. First, we design two efficient Markov Chain dynamics under the data-driven Markov Chain Monte Carlo framework to effectively explore the high dimensional state space. Second, we parse the tree structure state space into a lexicographic order according to the image observations and body topology, and the optimization process is conducted in this order. This realizes a much more efficient exploration of the state space than the sampling based search or exhaustive search, and thus achieves a tremendous speed-up. Experimental results demonstrate the efficiency and effectiveness of the proposed method in estimating and tracking various kinds of human poses, even against cluttered backgrounds, in poor illumination or under partial self-occlusion.
机译:人体姿势估计和跟踪是确定随时间推移每个身体部位的状态(位置,方向和比例)的任务。对于许多视觉理解应用程序来说,这一点很重要,例如视觉互动游戏,沉浸式虚拟现实,视觉监控以及基于内容的图像检索。然而,由于未知的图像背景,混乱的存在,尤其是高维状态空间(通常为30多个维),这仍然是一项艰巨的任务。在本文中,我们从两个方面为人体姿势估计和跟踪做出了贡献。首先,我们在数据驱动的马尔可夫链蒙特卡洛框架下设计了两个有效的马尔可夫链动力学,以有效地探索高维状态空间。其次,根据图像观察和人体拓扑将树状结构状态空间解析为字典顺序,并以此顺序进行优化处理。与基于采样的搜索或穷举搜索相比,这实现了对状态空间的更有效的探索,从而实现了极大的加速。实验结果证明了该方法在估计和跟踪各种人体姿势时的效率和有效性,即使在杂乱的背景下,光线不足或部分自遮挡的情况下也是如此。

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