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Face annotation for online personal videos using color feature fusion based face recognition

机译:使用基于颜色特征融合的人脸识别功能对在线个人视频进行人脸注释

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This paper proposes a novel weighted feature fusion in color face recognition (FR) to automatically annotate faces in personal videos. In the proposed FR method, multiple face images (belonging to the same subject) are clustered from a sequence of video frames. To facilitate a complementary effect on improving annotation performance, the grouped faces are combined using the proposed weighted feature fusion. In addition, we make effective use of facial color feature to cope with decrease in annotation performance due to a low-resolution face in personal videos. To evaluate the effectiveness of proposed FR method, more than 40,000 video frames for 10 real-world personal videos are collected from an existing online video sharing website. Experimental results show that the proposed FR method significantly improves annotation performance obtained using conventional grayscale image based FR methods.
机译:本文提出了一种新颖的彩色人脸识别(FR)中的加权特征融合,可以自动注释个人视频中的人脸。在提出的FR方法中,多个人脸图像(属于同一主题)是从一系列视频帧中聚类的。为了促进对改善注释性能的补充效果,使用建议的加权特征融合将分组的面部进行组合。此外,我们有效利用面部颜色功能来应对由于个人视频中的低分辨率人脸而导致的注释性能下降。为了评估建议的FR方法的有效性,从一个现有的在线视频共享网站上收集了10个真实个人视频的40,000多个视频帧。实验结果表明,提出的FR方法显着提高了使用基于常规灰度图像的FR方法获得的注释性能。

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