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Human body pose recognition from a single-view depth camera

机译:单视角深度相机识别人体姿势

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We propose a model-based approach for human body pose recognition from a single-view depth camera. The proposed algorithm applies an articulated cylinder model to detect human pose and track them based on a particle filter without numerous training data or heuristic detectors. To reduce high degrees of freedom, we adopt a hierarchical method that detects torso and limbs successively. Moreover, we take the advantage of a particle filter to track complex human motion and the results show that the proposed system is robust in human motion tracking. The qualitative evaluation shows that our method can deal with self-occlusion problem and ambiguous human motion effectively, and the quantitative evaluation shows that the average tracking error is 0.06 meters with a standard deviation of 0.04 meters. The proposed method tracks human poses successfully at the speed of 18 frames per second on a laptop with Intel Core i3-2100 CPU and without graphic processing unit.
机译:我们提出了一种基于模型的方法,用于从单视角深度相机进行人体姿势识别。所提出的算法应用铰接的圆柱模型来检测人体姿态并基于粒子滤波器对人体姿态进行跟踪,而无需大量训练数据或启发式检测器。为了降低高度自由度,我们采用了一种分层方法来连续检测躯干和四肢。此外,我们利用粒子滤波器的优势来跟踪复杂的人体运动,结果表明,该系统在人体运动跟踪方面具有鲁棒性。定性评估表明我们的方法可以有效地解决自我遮挡问题和人为运动的歧义,定量评估表明平均跟踪误差为0.06米,标准偏差为0.04米。所提出的方法在具有Intel Core i3-2100 CPU且没有图形处理单元的笔记本电脑上以每秒18帧的速度成功地跟踪了人体姿势。

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