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Recognizing Human Faces with Tilt

机译:用倾斜度识别人脸

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摘要

Issues related to realtime face recognition are perpetual even with many existing approaches. Generalizing these issues is tedious over different applications. In this paper, the real time issues such as tilt or rotation variation and few samples problem for face recognition are addressed and proposed an efficient method. In preprocessing, an edge detection method using Robert's operator is utilized to identify facial borders for cropping purpose. The query images are axially tilted for different degrees of rotation. Both database and test images are segmented into one hundred fragments of 5 * 5 size each. Four different matrix characteristics are derived for each divided part of the image. Corresponding attributes are added to yield features related to final matrix. Final one hundred facial attributes are obtained by fusing diagonal features with one hundred features of matrix. Euclidean distance between the final attributes of gallery and query images is computed. The results on Yale dataset has superior performance compared to the existing different approaches and it is convincing over the dataset created.
机译:即使有许多现有方法,与实时面部识别有关的问题也是永久性的。概括这些问题在不同的应用程序上是乏味的。在本文中,解决了倾斜或旋转变化等实时问题,以及用于面部识别的少量样本问题,并提出了一种有效的方法。在预处理中,利用使用Robert运算符的边缘检测方法来识别用于裁剪目的的面部边界。查询图像轴向倾斜以用于不同的旋转程度。数据库和测试图像都被分段为每个5 * 5尺寸的一百个碎片。为图像的每个划分部分导出四种不同的矩阵特征。添加相应的属性以产生与最终矩阵相关的结果。通过融合矩阵的一百个特征来获得最终一百个面部属性。计算图库的最终属性与查询图像之间的欧几里德距离。与现有的不同方法相比,耶鲁数据集的结果具有卓越的性能,并且它正在令人信服地创建的数据集。

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