End-to-end Trained CNN Encode-Decoder Networks for Image Steganography

November 20, 2017 ยท Declared Dead ยท ๐Ÿ› ECCV Workshops

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Authors Atique ur Rehman, Rafia Rahim, M Shahroz Nadeem, Sibt ul Hussain arXiv ID 1711.07201 Category cs.MM: Multimedia Cross-listed cs.CV Citations 142 Venue ECCV Workshops Last Checked 1 month ago
Abstract
All the existing image steganography methods use manually crafted features to hide binary payloads into cover images. This leads to small payload capacity and image distortion. Here we propose a convolutional neural network based encoder-decoder architecture for embedding of images as payload. To this end, we make following three major contributions: (i) we propose a deep learning based generic encoder-decoder architecture for image steganography; (ii) we introduce a new loss function that ensures joint end-to-end training of encoder-decoder networks; (iii) we perform extensive empirical evaluation of proposed architecture on a range of challenging publicly available datasets (MNIST, CIFAR10, PASCAL-VOC12, ImageNet, LFW) and report state-of-the-art payload capacity at high PSNR and SSIM values.
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