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Tracking human faces in infrared video

机译:追踪红外视频中的人脸

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Detection and tracking of face regions in image sequences has applications to important problems such as face recognition, human-computer interaction, and video surveillance. Visible sensors have inherent limitations in solving this task, such as the need for sufficient and specific lighting conditions, as well as sensitivity to variations in skin color. Thermal infrared (IR) imaging sensors image emitted light, not reflected light, and therefore do not have these limitations, providing a 24-h, 365-day capability while also being more robust to variations in the appearance of individuals. In this paper, we present a system for tracking human heads that has three components. First, a method for modeling thermal emission from human skin that can be used for the purpose of segmenting and detecting faces and other exposed skin regions in IR imagery is presented. Second, the segmentation model is applied to the CONDENSATION algorithm for tracking the head regions over time. This includes a new observation density that is motivated by the segmentation results. Finally, we examine how to use the tracking results to refine the segmentation estimate.
机译:图像序列中面部区域的检测和跟踪已应用于重要问题,例如面部识别,人机交互和视频监控。可见传感器在解决此任务时有固有的局限性,例如需要足够和特定的照明条件,以及对肤色变化的敏感性。热红外(IR)成像传感器对发出的光进行成像,而不是反射光,因此不受这些限制,提供24小时,365天的能力,同时对个人外观的变化也更加可靠。在本文中,我们提出了一种具有三个组成部分的人体头部跟踪系统。首先,提出了一种用于模拟人体皮肤热辐射的方法,该方法可用于分割和检测红外图像中的面部和其他裸露的皮肤区域。其次,将分割模型应用于CONDENSATION算法,以随时间跟踪头部区域。这包括由分割结果驱动的新观测密度。最后,我们研究如何使用跟踪结果来细化细分估计。

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