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Tracking with the EM Contour Algorithm

机译:跟踪EM轮廓算法

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A novel active-contour method is presented and applied to pose refinement and tracking. The main innovation is that no "features" are detected at any stage: contours are simply assumed to remove statistical dependencies between pixels on opposite sides of the contour. This assumption, together with a simple model of shape variability of the geometric models, leads to the application of an EM method for maximizing the likelihood of pose parameters. In addition, a dynamical model of the system leads to the application of a Kalman filter. The method is demonstrated by tracking motor vehicles with 3-D models.
机译:提出了一种新的活性轮廓方法并应用于造成细化和跟踪。主要创新是在任何阶段检测到“特征”:简单地假设轮廓删除轮廓的相对侧的像素之间的统计依赖性。这种假设与几何模型的形状变异性的简单模型一起导致EM方法的应用来最大化姿势参数的可能性。此外,系统的动态模型导致卡尔曼滤波器的应用。通过跟踪带3D模型的机动车辆来证明该方法。

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