隐写术
计算机科学
信息隐藏
人工智能
图像(数学)
隐写分析技术
编码
计算机视觉
代表(政治)
深度学习
隐写工具
模式识别(心理学)
基因
政治
生物化学
政治学
化学
法学
出处
期刊:Neural Information Processing Systems
日期:2017-12-04
卷期号:30: 2066-2076
被引量:190
摘要
Steganography is the practice of concealing a secret message within another, ordinary, message. Commonly, steganography is used to unobtrusively hide a small message within the noisy regions of a larger image. In this study, we attempt to place a full size color image within another image of the same size. Deep neural networks are simultaneously trained to create the hiding and revealing processes and are designed to specifically work as a pair. The system is trained on images drawn randomly from the ImageNet database, and works well on natural images from a wide variety of sources. Beyond demonstrating the successful application of deep learning to hiding images, we carefully examine how the result is achieved and explore extensions. Unlike many popular steganographic methods that encode the secret message within the least significant bits of the carrier image, our approach compresses and distributes the secret image's representation across all of the available bits.
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