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Multiscale wavelet based edge detection and Independent Component Analysis (ICA) for Face Recognition

机译:基于多尺度小波的边缘检测和独立分量分析(ICA)的人脸识别

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In this paper we have proposed wavelet based edge detection algorithm that combines the coefficients of wavelet transforms on a series of scales. The outcome of this algorithm is edginess like information further used to obtain Independent Components using ICA algorithms. The combination of Multiscale wavelet based edge detection and Independent Component Analysis (ICA) is used for Face Recognition becomes a novel approach. The independent components obtained by ICA algorithms are used as feature vectors for classification. The Euclidean distance (L2) classifier is used for testing of images. The algorithm is tested on two different databases i.e Asian face database and Indian face database of face images for variation in illumination, facial expressions and facial poses up to 1800rotation angle. Encouraging results of this unique approach of face recognition has given future direction for research work in this area.
机译:在本文中,我们提出了一种基于小波的边缘检测算法,该算法在一系列尺度上组合了小波变换的系数。该算法的结果是前卫之类的信息,该信息可进一步用于使用ICA算法获得独立组件。基于多尺度小波的边缘检测和独立分量分析(ICA)的组合用于人脸识别成为一种新颖的方法。通过ICA算法获得的独立分量用作分类的特征向量。欧氏距离(L2)分类器用于图像测试。该算法在两个不同的数据库上进行了测试,即亚洲人脸数据库和印度人脸图像的人脸数据库,以检测光照,面部表情和高达1800旋转角度的面部姿势的变化。这种独特的面部识别方法的令人鼓舞的结果为该领域的研究工作指明了未来的方向。

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