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Extraction and temporal segmentation of multiple motion trajectories in human motion

机译:人体运动中多个运动轨迹的提取和时间分割

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摘要

A new method for extraction and temporal segmentation of multiple motion trajectories in human motion is presented. The proposed method extracts motion trajectories generated by body parts without any initialization or any assumption on color distribution. Motion trajectories are very compact and representative features for activity recognition. Tracking human body parts (hands and feet) is inherently difficult because the body parts which generate most of the motion trajectories are relatively small compared to the human body. This problem is overcome by using a new motion segmentation method: at every frame, candidate motion locations are detected and set as significant motion points (SMPs). The motion trajectories are obtained by combining these SMPs and the color-optical flow based tracker results. These motion trajectories are inturn used as features for temporal segmentation of specific activities from continuous video sequences. The proposed approach is tested on actual ballet step sequences. Experimental results show that the proposed method can successfully extract and temporally segment multiple motion trajectories from human motion.
机译:提出了一种提取人体运动中多个运动轨迹并进行时间分割的新方法。所提出的方法提取由身体部位产生的运动轨迹,而无需任何初始化或对颜色分布的任何假设。运动轨迹非常紧凑,具有活动识别性的代表性特征。追踪人体部位(手和脚)本质上是困难的,因为与人体相比,产生大部分运动轨迹的人体部位相对较小。通过使用新的运动分割方法可以解决此问题:在每一帧,候选运动位置都被检测到并设置为有效运动点(SMP)。通过将这些SMP和基于彩色光学流的跟踪器结果组合在一起,可以获得运动轨迹。这些运动轨迹又被用作从连续视频序列中对特定活动进行时间分割的特征。在实际的芭蕾舞步序上测试了所提出的方法。实验结果表明,该方法可以成功地从人体运动中提取出多个运动轨迹并进行时间分割。

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