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Simultaneous pose recovery and camera registration from multiple views of a walking person

机译:从步行者的多个视角同时进行姿势恢复和摄像机注册

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We present an algorithm to estimate the body pose of a walking person given synchronized video input from multiple uncalibrated cameras. We construct an appearance model of human walking motion by generating examples from the space of body poses and camera locations, and clustering them using expectation-maximization. Given a segmented input video sequence, we find the closest matching appearance cluster for each silhouette and use the sequence of matched clusters to extrapolate the position of the camera with respect to the person's direction of motion. For each frame, the matching cluster also provides an estimate of the walking phase. We combine these estimates from all views and find the most likely sequence of walking poses using a cyclical, feed-forward hidden Markov model. Our algorithm requires no manual initialization and no prior knowledge about the locations of the cameras.
机译:我们提出了一种算法,用于从多个未经校准的摄像机输入同步视频时估算步行者的身体姿势。通过从身体姿势和相机位置的空间生成示例,并使用期望最大化对它们进行聚类,我们构建了人类步行运动的外观模型。给定分段的输入视频序列,我们为每个轮廓找到最接近的匹配外观群集,并使用匹配群集的序列来推断摄像机相对于人的运动方向的位置。对于每个帧,匹配簇还提供步行阶段的估计。我们从所有角度组合这些估计值,并使用周期性前馈隐式马尔可夫模型找到最可能的步行姿势序列。我们的算法不需要手动初始化,也不需要事先了解摄像机的位置。

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