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Simultaneous Appearance Modeling and Segmentation for Matching People Under Occlusion

机译:封闭下匹配人的同步外观建模与分割

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We describe an approach to segmenting foreground regions corresponding to a group of people into individual humans. Given background subtraction and ground plane homography, hierarchical part-template matching is employed to determine a reliable set of human detection hypotheses, and progressive greedy optimization is performed to estimate the best configuration of humans under a Bayesian MAP framework. Then, appearance models and segmentations are simultaneously estimated in an iterative sampling-expectation paradigm. Each human appearance is represented by a nonparametric kernel density estimator in a joint spatial-color space and a recursive probability update scheme is employed for soft segmentation at each iteration. Additionally, an automatic occlusion reasoning method is used to determine the layered occlusion status between humans. The approach is evaluated on a number of images and videos, and also applied to human appearance matching using a symmetric distance measure derived from the Kullback-Leiber divergence.
机译:我们描述了一种将与一群人分割成单个人类的前景地区的方法。给定背景减法和接地平面配合,采用分层部分模板匹配来确定可靠的人类检测假设,并且执行逐步贪婪优化以估计贝叶斯地图框架下的人类最佳配置。然后,在迭代采样期望范式中同时估计外观模型和分割。每个人类外观由联合空间空间中的非参数内核密度估计器表示,并且在每次迭代时采用递归概率更新方案进行软分段。另外,使用自动遮挡推理方法来确定人类之间的分层闭塞状态。该方法是在许多图像和视频上评估的方法,并且还使用从克拉尔贝莱韦倍发散的对称距离测量来应用于人类外观匹配。

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