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Real-time 3D pose reconstruction of human body from monocular video sequences

机译:从单眼视频序列对人体进行实时3D姿态重建

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We present an effective real-time approach for automatically reconstructing 3D human body poses from monocular video sequences. In this approach, human body is automatically detected from video sequence, then image features such as silhouette, edge and color are extracted and integrated to infer 3D human poses in an iterative way by minimizing the cost function defined between 2D features from the projected 3D model and image sequence. After convergence, the reconstruction result is evaluated for detecting tracking failure, which can be quickly recovered by adjusting initial pose to restart the minimization procedure. The results show the efficiency and robustness of the proposed approach.
机译:我们提出了一种有效的实时方法,用于从单眼视频序列自动重建3D人体姿势。通过这种方法,可以从视频序列中自动检测人体,然后通过最小化投影3D模型中2D特征之间定义的成本函数,以迭代方式提取并集成诸如轮廓,边缘和颜色之类的图像特征,以推断3D人类姿势。和图像序列。收敛之后,评估重建结果以检测跟踪失败,可以通过调整初始姿态以重新开始最小化过程来快速恢复。结果表明了该方法的有效性和鲁棒性。

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