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Color-Based Probabilistic Tracking

机译:基于颜色的概率跟踪

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Color-based trackers recently proposed in [3,4,5] have been proved robust and versatile for a modest computational cost. They are especially appealing for tracking tasks where the spatial structure of the tracked objects exhibits such a dramatic variability that trackers based on a space-dependent appearance reference would break down very fast. Trackers in [3,4,5] rely on the deterministic search of a window whose color content matches a reference histogram color model. Relying on the same principle of color histogram distance, but within a probabilistic framework, we introduce a new Monte Carlo tracking technique. The use of a particle filter allows us to better handle color clutter in the background, as well as complete occlusion of the tracked entities over a few frames. This probabilistic approach is very flexible and can be extended in a number of useful ways. In particular, we introduce the following ingredients: multi-part color modeling to capture a rough spatial layout ignored by global histograms, incorporation of a background color model when relevant, and extension to multiple objects.
机译:最近在[3,4,5]中提出的基于颜色的跟踪器已被证明是为了适度的计算成本,已被证明是强大和多功能的。它们特别吸引跟踪跟踪物体的空间结构表现出基于空间相关的外观参考的跟踪器的戏剧性变化将非常快地分解。 [3,4,5]中的跟踪器依赖于其颜色内容与参考直方图颜色模型匹配的窗口的确定性搜索。依靠相同的颜色直方图距离,但在概率框架内,我们介绍了一种新的蒙特卡罗跟踪技术。粒子过滤器的使用允许我们更好地处理背景中的颜色杂波,以及在几帧中完全遮挡跟踪实体。这种概率方法非常灵活,可以以多种有用的方式扩展。特别是,我们介绍以下成分:多件颜色建模,以捕获全局直方图忽略的粗略空间布局,在相关时纳入背景颜色模型,扩展到多个对象。

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