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Skin Subspace Color Modeling for Daytime and Nighttime Group Activity Recognition in Confined Operational Spaces

机译:受限操作空间中白天和夜间小组活动识别的皮肤子空间颜色建模

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In many military and homeland security persistent surveillance applications, accurate detection of different skin colors in varying observability and illumination conditions is a valuable capability for video analytics. One of those applications is In-Vehicle Group Activity (IVGA) recognition, in which significant changes in observability and illumination may occur during the course of a specific human group activity of interest. Most of the existing skin color detection algorithms, however, are unable to perform satisfactorily in confined operational spaces with partial observability and occultation, as well as under diverse and changing levels of illumination intensity, reflection, and diffraction. In this paper, we investigate the salient features of ten popular color spaces for skin subspace color modeling. More specifically, we examine the advantages and disadvantages of each of these color spaces, as well as the stability and suitability of their features in differentiating skin colors under various illumination conditions. The salient features of different color subspaces are methodically discussed and graphically presented. Furthermore, we present robust and adaptive algorithms for skin color detection based on this analysis. Through examples, we demonstrate the efficiency and effectiveness of these new color skin detection algorithms and discuss their applicability for skin detection in IVGA recognition applications.
机译:在许多军事和国土安全持续监视应用中,在可观察性和照明条件不同的情况下准确检测不同肤色是视频分析的宝贵功能。这些应用之一是车载小组活动(IVGA)识别,其中在关注的特定人类小组活动过程中,可观察性和照明可能发生重大变化。但是,大多数现有的皮肤颜色检测算法无法在具有部分可观察性和隐蔽性的密闭操作空间中以及在变化和变化的照明强度,反射和衍射水平下令人满意地执行。在本文中,我们调查了用于皮肤子空间颜色建模的十个流行颜色空间的显着特征。更具体地说,我们研究了每种颜色空间的优缺点,以及在各种照明条件下区分肤色时其特征的稳定性和适用性。有条不紊地讨论了不同颜色子空间的显着特征,并以图形方式展示了它们。此外,我们基于此分析提出了用于肤色检测的鲁棒和自适应算法。通过示例,我们演示了这些新的彩色皮肤检测算法的效率和有效性,并讨论了它们在IVGA识别应用中用于皮肤检测的适用性。

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