Feature Extraction using DCT fusion based on facial symmetry for enhanced face recognition

P. Prathik, R. Nafde, K. Manikantan, S. Ramachandran
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引用次数: 9

Abstract

Feature Extraction plays a very important role in Face Recognition technology. This paper proposes a novel Discrete Cosine Transform (DCT) fusion technique based on facial symmetry. Also proposed are DCT subset matrix selection based on aspect ratio of the image and pre-processing concepts, namely Local Histogram Equalization to remove illumination variation and Scale normalization using skin detection for colored images. The performance of proposed techniques is evaluated by computing the recognition rate and number of features selected for ORL, Extended Yale B and Color FERET databases.
基于面部对称性的DCT融合特征提取增强人脸识别
特征提取在人脸识别技术中起着非常重要的作用。提出了一种基于面部对称性的离散余弦变换(DCT)融合技术。此外,还提出了基于图像宽高比的DCT子集矩阵选择和预处理概念,即局部直方图均衡化(Local Histogram Equalization)来去除光照变化和彩色图像的皮肤检测尺度归一化。通过计算ORL、Extended Yale B和Color FERET数据库的识别率和特征数量来评估所提出技术的性能。
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