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Face recognition using Krawtchouk moment

机译:使用Krawtchouk矩进行人脸识别

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Feature extraction is one of the important tasks in face recognition. Moments are widely used feature extractor due to their superior discriminatory power and geometrical invariance. Moments generally capture the global features of the image. This paper proposes Krawtchouk moment for feature extraction in face recognition system, which has the ability to extract local features from any region of interest. Krawtchouk moment is used to extract both local features and global features of the face. The extracted features are fused using summed normalized distance strategy. Nearest neighbour classifier is employed to classify the faces. The proposed method is tested using ORL and Yale databases. Experimental results show that the proposed method is able to recognize images correctly, even if the images are corrupted with noise and possess change in facial expression and tilt.
机译:特征提取是人脸识别的重要任务之一。矩因其卓越的辨别力和几何不变性而被广泛使用。瞬间通常会捕获图像的整体特征。本文提出了Krawtchouk矩用于人脸识别系统中的特征提取,该系统具有从感兴趣区域中提取局部特征的能力。 Krawtchouk矩用于提取脸部的局部特征和全局特征。使用总归一化距离策略融合提取的特征。使用最近的邻居分类器对面孔进行分类。使用ORL和Yale数据库对提出的方法进行了测试。实验结果表明,所提出的方法即使被噪声破坏并具有面部表情和倾斜度变化,也能够正确识别图像。

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