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An Efficient Face Detection and Recognition for Video Surveilnlance

机译:用于视频监控的有效人脸检测和识别

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In this paper, a comprehensive scheme is proposed for unconstrained joint face detection and recognition in video sequences for surveillance systems. Unlike conventional video based face recognition techniques, emphasis is laid on the acquisition of a pose constrained training video database followed by the extraction of well aligned face images from the training videos. We have proposed a new Indian Faces Video Database (IFVD) to demonstrate the performance of the proposed approach especially in the challenging environment of varying skin color and texture of faces from the Indian subcontinent.Our approach produces successful face tracking results on over 86% of all videos. The good tracking performance induces high recognition rates: 85.86 on Honda/UCSD and over 77.49 % on IFVD. The proposed technique is robust and aims to develop a unified framework to address the challenges of varying head orientation, pose and illumination level in a highly integrated fashion so as to benefit from the interdependence between the high fidelity face detection and the subsequent recognition phases.
机译:本文提出了一种用于监视系统的视频序列中的无约束联合人脸检测和识别的综合方案。与传统的基于视频的面部识别技术不同,重点放在姿势约束的培训视频数据库的获取上,然后从培训视频中提取对齐好的面部图像。我们提出了一个新的印度人脸视频数据库(IFVD),以证明该方法的性能,特别是在印度次大陆的肤色和纹理变化的挑战性环境中,我们的方法在86%以上的人脸产生了成功的人脸跟踪结果所有视频。良好的跟踪性能引起很高的识别率:本田/ UCSD为85.86,IFVD为77.49%。所提出的技术是鲁棒的,并且旨在开发一个统一的框架以高度集成的方式应对变化的头部方向,姿势和照明水平的挑战,从而受益于高保真面部检测与后续识别阶段之间的相互依赖性。

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