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Study on an optical encryption algorithm based on compressive ghost imaging and super-resolution reconstruction

机译:基于压缩鬼成像和超分辨率重建的光加密算法研究

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摘要

Optical encryption schemes based on compressive ghost imaging (CGI) are associated with low-quality decrypted images and unsatisfactory security. In order to cope with these issues, we propose an optical encryption algorithm based on compressive ghost imaging and superresolution reconstruction. A convolution neural network is established to reconstruct the images. Compared with CGI, the convolutional neural network super-resolution convolutional neural networks can not only restore the reconstructed image of the CGI to a HR image, but also realize secondary encryption by using the convolution kernel parameter of the convolutional neural network. Therefore, this algorithm can improve the resolution of the decrypted image and the security of the algorithm.
机译:基于压缩Ghost成像(CGI)的光学加密方案与低质量的解密图像和不令人满意的安全性相关联。 为了应对这些问题,我们提出了一种基于压缩鬼映像和超级化重建的光学加密算法。 建立卷积神经网络以重建图像。 与CGI相比,卷积神经网络超分辨率卷积神经网络不仅可以将CGI的重建图像恢复到HR图像,而且还通过使用卷积神经网络的卷积核参数来实现辅助加密。 因此,该算法可以提高解密图像的分辨率和算法的安全性。

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