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A Contour based Procedure for Face Detection and Tracking from Video

机译:基于轮廓的面部检测和视频跟踪的过程

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During the past few years face detection and tracking from video has received maximum importance because of commercial and enforcement application of varied an extreme range. It is also most challenging task in video, where the variation of illuminations, noise, locations of human face and pose can differ from one frame to another. For face detection and tracking from video database is being presented a unique technique in this paper. In this study, primary goal is to recognize location of faces from video. Moreover, finding face motion leads to be a part of face recognition system. Firstly, face edges are detected using Robert edge detector followed by a set of arithmetic operations between an initial frame and the nearest ones. Thereafter, non-desired edges and noise are removed by Gaussian filtering technique. A logical operation is then performed between the previous two output frames and noiseless face contour frame for detecting edges corresponding to face video. Finally, four corner points i.e. top-left, top-right, bottom-left, bottom-right are computed to draw rectangle around the face and detect face contour of each frame. To track human face from video, scalar and vector distance between four corner points of two consecutive frames are calculated. Displacement of corner points means position and location of face changes in the next frame. On Honda/UCSD video database the proposed method has been tested and it has been found through experimental results that it can detect and track from video efficiently human face.
机译:在过去几年中,由于商业和执法范围的商业和执法应用,从视频的面部检测和跟踪已经获得了最大的重要性。它在视频中也是最具挑战性的任务,其中照明的变化,噪声,人脸的位置和姿势的位置可以与另一个框架不同。对于来自视频数据库的脸部检测和跟踪正在呈现本文的独特技术。在这项研究中,主要目标是识别来自视频的面部的位置。此外,发现面部运动导致面部识别系统的一部分。首先,使用罗伯特边缘检测器检测面部边缘,然后检测初始帧和最近的一组算术操作。此后,通过高斯滤波技术去除未期望的边缘和噪声。然后在前两个输出帧和无噪声面轮廓帧之间执行逻辑操作,用于检测与面部视频相对应的边缘。最后,四个角点i.e.左上角,右上角,左下方,右下方,右下方被计算为绘制围绕面部的矩形并检测每个帧的面部轮廓。要从视频中跟踪人脸,计算两个连续帧的四个角点之间的标量和矢量距离。角点的位移意味着下一帧的面部变化的位置和位置。在本田/ UCSD视频数据库上,已经测试了所提出的方法,并通过实验结果发现它可以从视频有效地从视频中检测和跟踪。

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