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Modular 2DPCA face recognition algorithm based on image segmentation

机译:基于图像分割的模块化2DPCA人脸识别算法

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摘要

In order to further improve the recognition rate and computing efficiency of modular 2DPCA in face recognition, an improved modular 2DPCA method based on image segmentation is proposed. Firstly, segmentation of threshold value optimization is utilized to segment face image of training samples into several non-overlapping sub-image spaces so that the pixel number has uniform distribution in each sub-image space. Then, sub-images are synthesized, and the composite image has only few gray levels. Finally, modular 2DPCA is utilized to extract feature of composite image, and the nearest distance classification is used to distinguish each face. The experimental results on ORL face database show that the proposed method on the recognition rate is better than ordinary modules 2DPCA methods.
机译:为了进一步提高模块化2DPCA在人脸识别中的识别率和计算效率,提出了一种改进的基于图像分割的模块化2DPCA方法。首先,利用阈值优化分割技术将训练样本的人脸图像分割为若干个非重叠的子图像空间,使像素数在每个子图像空间中具有均匀的分布。然后,子图像被合成,并且合成图像仅具有很少的灰度级。最后,利用模块化的2DPCA提取合成图像的特征,并使用最近距离分类来区分每个人脸。在ORL人脸数据库上的实验结果表明,该方法在识别率上优于普通模块2DPCA方法。

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