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Head pose determination from one image using a generic model

机译:使用通用模型从一个图像姿态确定

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We present a new method for determining the pose of a human head from its 2D image. It does not use any artificial markers put on a face. The basic idea is to use a generic model of a human head, which accounts for variation in shape and facial expression. Particularly, a set of 3D curves are used to model the contours of eyes, lips and eyebrows. A technique called iterative closest curve matching (ICC) is proposed, which aims at recovering the pose by iteratively minimizing the distances between the projected model curves and their closest image curves. Because curves contain richer information (such as curvature and length) than points, ICC is both more robust and more efficient than the well-known iterative closest point matching techniques (ICP). Furthermore, the image can be taken by a camera with unknown internal parameters, which can be recovered by our technique thanks to the 3D model. Preliminary experiments show that the proposed technique is promising and that an accurate pose estimate can be obtained from just one image with a generic head model.
机译:我们提出了一种从其2D图像确定人头姿势的新方法。它不使用任何人为标记放在脸上。基本思想是使用人头的通用模型,这会考虑形状和面部表情的变化。特别地,一组3D曲线用于模拟眼睛,嘴唇和眉毛的轮廓。提出了一种称为迭代最近曲线匹配(ICC)的技术,其目的是通过迭代地最小化投影模型曲线和其最近的图像曲线之间的距离来恢复姿势。因为曲线比点含有更丰富的信息(例如曲率和长度),所以ICC既比众所周知的迭代最近点匹配技术(ICP)都比较稳健更高。此外,图像可以通过具有未知内部参数的相机拍摄,这是由于3D模型可以通过我们的技术恢复。初步实验表明,所提出的技术是有前途的,并且可以从具有通用头模型的一个图像获得准确的姿势估计。

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