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An Occlusion-Resolving Hand Tracking Method

机译:遮挡手部追踪方法

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摘要

This paper proposes a novel algorithm for real-time hand detection and tracking, and this algorithm can successfully track a hand even when it is overlapped with other skin-color objects during tracking. An on-line adaptive learning approach associated with negative skin-color exclusion is used to fit the skin color distribution of each individual hand in various environments. When skin-color objects have been extracted, three states (separation, proximity and overlap) between tracked objects are defined. A separation template image of the tracking hand is created whenever it is in the proximity state, and a feature-point-based matching comparison by using the newly created separation template is conducted when it is in the overlap state. The experimental results show the proposed algorithm not only can obtain a highly accurate hand tracking rate in various situations, but also can run in real time with 30-45 frames per second.
机译:本文提出了一种新颖的实时手部检测和跟踪算法,该算法即使在跟踪过程中与其他肤色对象重叠时也能成功地进行手部跟踪。与否定肤色相关的在线自适应学习方法可用于适应各种环境中每只手的肤色分布。提取肤色对象后,将定义跟踪对象之间的三种状态(分离,接近和重叠)。每当跟踪手处于接近状态时就创建其分离模板图像,并且当其处于重叠状态时通过使用新创建的分离模板进行基于特征点的匹配比较。实验结果表明,该算法不仅可以在各种情况下获得较高的手部跟踪率,而且可以每秒30-45帧的速度实时运行。

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