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A New Steganalysis Method Using Densely Connected ConvNets

机译:一种使用密集连接的卷积网的隐写分析新方法

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Steganography is an ancient art of communicating a secret message through an innocent-looking image. On the other hand, steganalysis is the counter process of the steganography, which targets to detect hidden trace within a given image. In this paper, a new approach to steganalysis is presented to learn prominent features and avoid loss of stego signals. The proposed model uses diverse sized filters to capture all useful steganalytic features through a densely connected convolutional network. Moreover, there is no fully connected network in the proposed model, which allows testing any size of images regardless of the image size used for training. To justify the applicability of the proposed scheme, it has been shown experimentally that the proposed scheme outperforms most of the related state-of-the-art methods.
机译:隐秘术是一种通过看起来无辜的图像传达秘密信息的古老艺术。另一方面,隐写分析是隐写术的反过程,其目标是检测给定图像中的隐藏痕迹。在本文中,提出了一种新的隐写分析方法,以学习显着特征并避免隐秘信号丢失。提出的模型使用大小不同的过滤器,以通过密集连接的卷积网络捕获所有有用的隐写分析特征。而且,在提出的模型中没有完全连接的网络,该网络允许测试任何大小的图像,而不管用于训练的图像大小如何。为了证明所提出的方案的适用性,已通过实验证明了所提出的方案优于大多数相关的最新技术。

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