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Tracking through scattered occlusion

机译:通过散射闭塞跟踪

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Scattered occlusion is an occlusion that is not localized in space or time. It occurs because of heavy smoke, rain, snow and fog, as well as tree branches and leafs, or any other thick flora for that matter. As a result, we can not assume that there is correlation in the visibility of nearby pixels. We propose a new tracker, dubbed Scatter Tracker that can efficiently deal with this type of occlusion. Our tracker is based on a new similarity measure between images that combines order statistics with a spatial prior that forces the order statistics to work on non-overlapping patches. We analyze the probability of detection, and false detection, of our tracker and show that it can be modeled as a sequence of independent Bernoulli trials on pixel similarity. In addition, to handle appearance variations of the tracked target, an appearance model update scheme based on incremental-PCA procedure is incorporated into the tracker. We show that the combination of order statistics and spatial prior greatly enhances the quality of our tracker and demonstrate its effectiveness on a number of challenging video sequences.
机译:散射闭塞是一种在空间或时间内未局限的闭塞。它发生的是因为烟雾,雨,雪和雾,以及树枝和叶子,或任何其他厚厚的植物群。结果,我们不能认为附近像素的可见性存在相关性。我们提出了一个新的跟踪器,被称为散射跟踪器,可以有效地处理这种类型的遮挡。我们的跟踪器基于图像之间的新的相似性测量,该图像将顺序统计信息与空间中的顺序统计器强制迫使订单统计信息在非重叠补丁上工作。我们分析了我们跟踪器的检测和错误检测的概率,并表明它可以作为像素相似性的独立Bernoulli试验序列建模。另外,为了处理跟踪目标的外观变化,基于增量PCA过程的外观模型更新方案结合到跟踪器中。我们表明订单统计和空间的组合主要提高了跟踪器的质量,并展示了许多具有挑战性的视频序列的有效性。

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