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A Mobile Computing Method Using CNN and SR for Signature Authentication with Contour Damage and Light Distortion

机译:使用CNN和SR的具有轮廓损坏和光线失真的签名认证的移动计算方法

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A signature is a useful human feature in our society, and determining the genuineness of a signature is very important. A signature image is typically analyzed for its genuineness classification; however, increasing classification accuracy while decreasing computation time is difficult. Many factors affect image quality and the genuineness classification, such as contour damage and light distortion or the classification algorithm. To this end, we propose a mobile computing method of signature image authentication (SIA) with improved recognition accuracy and reduced computation time. We demonstrate theoretically and experimentally that the proposed golden global-local (G-L) algorithm has the best filtering result compared with the methods of mean filtering, medium filtering, and Gaussian filtering. The developed minimum probability threshold (MPT) algorithm produces the best segmentation result with minimum error compared with methods of maximum entropy and iterative segmentation. In addition, the designed convolutional neural network (CNN) solves the light distortion problem for detailed frame feature extraction of a signature image. Finally, the proposed SIA algorithm achieves the best signature authentication accuracy compared with CNN and sparse representation, and computation times are competitive. Thus, the proposed SIA algorithm can be easily implemented in a mobile phone.
机译:签名是我们社会中有用的人类特征,确定签名的真实性非常重要。通常会分析签名图像的真实性分类。但是,很难在降低计算时间的同时提高分类精度。许多因素会影响图像质量和真实性分类,例如轮廓损坏和光线失真或分类算法。为此,我们提出了一种签名识别算法(SIA)的移动计算方法,该方法可提高识别精度并减少计算时间。我们在理论和实验上证明,与均值滤波,中值滤波和高斯滤波方法相比,提出的黄金全局局部(G-L)算法具有最佳的滤波效果。与最大熵和迭代分割方法相比,开发的最小概率阈值(MPT)算法可产生具有最小误差的最佳分割结果。此外,设计的卷积神经网络(CNN)解决了用于特征图像详细帧特征提取的光失真问题。最后,与CNN和稀疏表示相比,所提出的SIA算法具有最佳的签名认证精度,并且计算时间具有竞争力。因此,所提出的SIA算法可以容易地在移动电话中实现。

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