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Experimental Study on Multiple Face Detection with Depth and Skin Color

机译:具有深度和肤色的多重人脸检测的实验研究

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Human face considers as an important biometric trait for person identification or video surveillance due to the digital camera technology that available on our daily life gadget. Since the digital signage easily found in the public and uncontrolled environment, the common situation could be single or multiple audiences that viewing at the digital signage display. The digital camera acts as a non-invasive detector for non-obtrusive digital advertising to collect the surrounding people’s face. The accuracy rate of face detection becomes the priority to detect the audience’s face. Besides that, the processing time also become a concern for time-constrained applications. This paper develops a framework for non-obtrusive digital advertising that applied the depth camera to detect multiple audiences for the audience location simulation and gather the depth information restrict the region of interests (ROI). Viola-Jones algorithm detects the audience frontal face who is facing towards the digital signage in the ROI. Subsequently, skin color analysis verifies the skin face and exclude the non-skin face to improve the face detection true detection rate. The depth information is combined with the face XY-position to map the audience actual location in the real-world environment on the aerial map. The experiment result shown that post-processing approach for Viola-Jones algorithm with skin color analysis increases the face true detection rate with the short processing time. Meanwhile, the simulation of multiple audience locations in the ROI can be shown on the aerial map which corresponds to the actual location in the real-world environment.
机译:由于在我们的日常生活小工具中可以使用数码相机技术,因此人脸被认为是用于身份识别或视频监控的重要生物特征。由于数字标牌容易在公共场所和不受控制的环境中找到,因此常见的情况可能是在数字标牌显示器上观看的单个或多个观众。数码相机可作为非侵入性检测器,用于非干扰性数字广告来收集周围人的脸。面部检测的准确率成为检测观众面部的优先级。除此之外,对于时间受限的应用程序,处理时间也成为一个问题。本文开发了一种用于非干扰性数字广告的框架,该框架应用深度相机来检测多个受众,以进行受众位置模拟,并收集深度信息以限制感兴趣的区域(ROI)。 Viola-Jones算法检测面向ROI中数字标牌的观众正面。随后,肤色分析将验证皮肤的脸部并排除非皮肤的脸部,以提高脸部检测的真实检测率。深度信息与面部XY位置相结合,以在空中地图的真实环境中绘制观众的实际位置。实验结果表明,采用肤色分析的Viola-Jones算法的后处理方法在较短的处理时间下提高了人脸真实检测率。同时,可以在航图上显示ROI中多个受众位置的模拟,该航图对应于现实环境中的实际位置。

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