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Embedding Image Through Generated Intermediate Medium Using Deep Convolutional Generative Adversarial Network

机译:通过使用深卷积生成的对抗网络通过生成的中间介质嵌入图像

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Deep neural network has proven to be very effective in computer vision fields.Deep convolutional network can learn the most suitable features of certain images without specific measure functions and outperform lots of traditional image processing methods.Generative adversarial network(GAN)is becoming one of the highlights among these deep neural networks.GAN is capable of generating realistic images which are imperceptible to the human vision system so that the generated images can be directly used as intermediate medium for many tasks.One promising application of using GAN generated images would be image concealing which requires the embedded image looks like not being tampered to human vision system and also undetectable to most analyzers.Texture synthesizing has drawn lots of attention in computer vision field and is used for image concealing in steganography and watermark.The traditional methods which use synthesized textures for information hiding mainly select features and mathematic functions by human metrics and usually have a low embedding rate.This paper takes advantage of the generative network and proposes an approach for synthesizing complex texture-like image of arbitrary size using a modified deep convolutional generative adversarial network(DCGAN),and then demonstrates the feasibility of embedding another image inside the generated texture while the difference between the two images is nearly invisible to the human eyes.
机译:深度神经网络已被证明在计算机视觉田间非常有效。Deep卷积网络可以学习某些图像的最合适的特征而无需特定的测量功能,并且优于传统的传统图像处理方法。生物对抗网络(GaN)正在成为其中之一这些深度神经网络中的亮点.Gan能够生成对人类视觉系统不可察觉的现实图像,使得所生成的图像可以直接用作许多任务的中间介质。希望使用GaN生成的图像的应用程序是隐藏的图像隐藏这需要嵌入式图像看起来不被篡改到人类视觉系统,并且对大多数分析仪也无法侦测。纹理合成在计算机视野中绘制了很多关注,并且用于隐藏在隐写和水印中的图像。使用合成纹理的传统方法有关信息隐藏主要选择功能和Mathem人为度量的ATIC函数,通常具有低的嵌入率。本文利用了生成网络,并提出了一种使用改进的深卷积生成对冲网络(DCGAN)来合成任意尺寸的复杂纹理形象的方法,然后演示在所产生的纹理内嵌入另一个图像的可行性,而两个图像之间的差异对人眼几乎是看不见的。

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