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SCALE ROBUST HEAD POSE ESTIMATION BASED ON RELATIVE HOMOGRAPHY TRANSFORMATION

机译:基于相对照相变换的尺度稳健头部姿态估计

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摘要

Head pose estimation has been widely studied in recent decades due to many significant applications. Different from most of the current methods which utilize face models to estimate head position, we develop a relative homography transformation based algorithm which is robust to the large scale change of the head. In the proposed method, salient Harris corners are detected on a face, and local binary pattern features are extracted around each of the corners. And then, relative homography transformation is calculated by using RANSAC optimization algorithm, which applies homography to a region of interest (ROI) on an image and calculates the transformation of a planar object moving in the scene relative to a virtual camera. By doing so, the face center initialized in the first frame will be tracked frame by frame. Meanwhile, a head shoulder model based Chamfer matching method is proposed to estimate the head centroid. With the face center and the detected head centroid, the head pose is estimated. The experiments show the effectiveness and robustness of the proposed algorithm.
机译:由于许多重要的应用,近几十年来头部姿势估计已被广泛研究。与目前大多数利用面部模型估计头部位置的方法不同,我们开发了一种基于相对应单应变换的算法,该算法对头部的大规模变化具有鲁棒性。在提出的方法中,在面部上检测到显着的哈里斯角,并在每个角附近提取局部二进制模式特征。然后,使用RANSAC优化算法来计算相对应的单应变换,该算法将单应性应用于图像上的感兴趣区域(ROI),并计算相对于虚拟相机在场景中移动的平面对象的变换。这样,将逐帧跟踪在第一帧中初始化的面部中心。同时,提出了一种基于头肩模型的Chamfer匹配方法来估计头质心。利用脸部中心和检测到的头部质心,可以估计头部姿势。实验证明了该算法的有效性和鲁棒性。

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