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Robust textural features for real time face recognition

机译:强大的纹理特征可实时识别人脸

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Automatic face recognition in real life environment is challenged by various issues such as the object motion, lighting conditions, poses and expressions. In this paper, we present the development of a system based on a refined Enhanced Local Binary Pattern (ELBP) feature set and a Support Vector Machine (SVM) classifier to perform face recognition in a real life environment. Instead of counting the number of 1's in ELBP, we use the 8-bit code of the thresholded data as per the ELBP rule, and then binarize the image with a predefined threshold value, removing the small connections on the binarized image. The proposed system is currently trained with several people's face images obtained from video sequences captured by a surveillance camera. One test set contains the disjoint images of the trained people's faces to test the accuracy and the second test set contains the images of non-trained people's faces to test the percentage of the false positives. The recognition rate among 570 images of 9 trained faces is around 94%, and the false positive rate with 2600 images of 34 non-trained faces is around 1%. Research work is progressing for the recognition of partially occluded faces as well. An appropriate weighting strategy will be applied to the different parts of the face area to achieve a better performance.
机译:现实生活环境中的自动面部识别受到各种问题的挑战,例如对象运动,照明条件,姿势和表达。在本文中,我们介绍了基于精细增强的局部二进制模式(ELBP)特征集的系统的开发和支持向量机(SVM)分类器,以在真实生活环境中执行面部识别。根据ELBP规则,我们使用阈值数据的8位代码而不是计算阈值数据的8位代码,然后用预定义的阈值二进制化,从而删除二值化图像上的小连接。该提出的系统目前培训,其中几个人的脸部图像从监视摄像机捕获的视频序列获得。一个测试集包含训练有素的人员脸部的差别图像以测试精度,第二个测试集包含未培训的人员脸部的图像,以测试误报的百分比。 57个培训面的570个图像之间的识别率约为94%,具有2600个非培训面的2600个图像的假阳性率约为1%。研究工作正在进展识别部分封闭的面孔。适当的加权策略将应用于面部区域的不同部分以实现更好的性能。

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