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Region Covariance Matrix-Based Object Tracking with Occlusions Handling

机译:基于区域协方差矩阵的对象跟踪遮挡处理

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This work proposes an optical-flow based feature tracking that is combined with region covariance matrix for dealing with tracking of an object undergoing considerable occlusions. The object is tracked using a set of key-points. The key-points are tracked via a computationally inexpensive optical flow algorithm. If the occlusion of the feature is detected the algorithm calculates the covariance matrix inside a region, which is located at the feature's position just before the occlusion. The region covariance matrix is then used to detect the ending of the feature occlusion. This is achieved via comparing the covariance matrix based similarity measures in some window surrounding the occluded key-point. The outliers that arise in the optical flow at the boundary of the objects are excluded using RANSAC and affine transformation. Experimental results that were obtained on freely available image sequences show the feasibility of our approach to perform tracking of objects undergoing considerable occlusions. The resulting algorithm can cope with occlusions of faces as well as objects of similar colors and shapes.
机译:该工作提出了一种基于光流的特征跟踪,其与区域协方差矩阵组合,用于处理经历相当封闭的对象的跟踪。使用一组键点跟踪该对象。通过计算廉价的光学流算法跟踪键点。如果检测到该特征的遮挡,则该算法计算区域内的协方差矩阵,该区域位于闭塞之前的特征位置。然后使用区域协方差矩阵来检测特征闭塞的结束。这是通过比较在围绕遮挡关键点的某些窗口中的协方差基于基于窗口的协方差矩阵的相似度测量来实现。使用Ransac和仿射变换,排除在对象边界处产生的异常值。在自由的图像序列上获得的实验结果表明了我们对经历相当封闭的物体跟踪物体的方法的可行性。得到的算法可以应对面孔的闭塞以及类似颜色和形状的对象。

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