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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Action-specific motion prior for efficient Bayesian 3D human body tracking
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Action-specific motion prior for efficient Bayesian 3D human body tracking

机译:特定于动作的动作先验可实现有效的贝叶斯3D人体跟踪

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摘要

In this paper, we aim to reconstruct the 3D motion parameters of a human body model from the known 2D positions of a reduced set of joints in the image plane. Towards this end, an action-specific motion model is trained from a database of real motion-captured performances, and used within a particle filtering framework as a priori knowledge on human motion. First, our dynamic model guides the particles according to Similar situations previously learnt. Then, the state space is constrained so only feasible human postures are accepted as valid solutions at each time step. As a result, we are able to track the 3D configuration of the full human body from several cycles of walking motion sequences using only the 2D positions of a very reduced set of joints from lateral or frontal viewpoints.
机译:在本文中,我们旨在从图像平面中一组减少的关节的已知2D位置重建人体模型的3D运动参数。为此,从实际运动捕获的性能的数据库中训练了特定于动作的运动模型,并将其用作粒子过滤框架中有关人类运动的先验知识。首先,我们的动态模型根据以前学习过的类似情况引导粒子。然后,约束状态空间,以便在每个时间步仅接受可行的人体姿势作为有效解。结果,从横向或正面的角度来看,我们仅使用非常减少的一组关节的2D位置,就可以从几个周期的步行运动序列中跟踪整个人体的3D配置。

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