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Real Time Head Model Creation and Head Pose Estimation on Consumer Depth Cameras

机译:消费者深度相机的实时头部模型创建和头部姿势估计

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Head pose estimation is an important part of the human perception and is therefore also relevant to make interaction with computer systems more natural. However, accurate estimation of the pose in a wide range is a challenging computer vision problem. We present an accurate approach for head pose estimation on consumer depth cameras that works in a wide pose range without prior knowledge about the tracked person and without prior training of a detector. Our algorithm builds and registers a 3D head model with the iterative closest point algorithm. To track the head pose using this head model an initialization with a known pose is necessary. Instead of providing such an initialization manually we determine the initial pose using features of the head and improve this pose over time. An evaluation shows that our algorithm works in real time with limited resources and achieves superior accuracy compared to other state of the art systems. Our main contribution is the combination of features of the head and the head model generation to build a detector that gives accurate results in a wide pose range.
机译:头部姿势估计是人类感知的重要组成部分,因此也与使与计算机系统的交互更加自然相关。但是,在宽范围内准确估计姿势是一个具有挑战性的计算机视觉问题。我们提出了一种用于消费者深度相机的准确头姿势估计的准确方法,该方法可在较宽的姿势范围内工作,而无需事先了解被跟踪的人员,也无需事先对检测器进行培训。我们的算法使用迭代最近点算法构建并注册3D头部模型。为了使用该头部模型跟踪头部姿势,必须进行具有已知姿势的初始化。代替手动提供这种初始化,我们使用头部的特征来确定初始姿势,并随着时间的推移改善该姿势。评估表明,与其他现有技术系统相比,我们的算法可在有限的资源下实时运行,并具有卓越的准确性。我们的主要贡献是结合了头部的功能和生成的头部模型,构建了一个能够在较宽的姿势范围内提供准确结果的检测器。

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