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AuthorSubramanian N.
AuthorCheheb I.
AuthorElharrouss O.
AuthorAl-Maadeed, Somaya
AuthorBouridane A.
Available date2022-05-19T10:23:08Z
Publication Date2021
Publication NameIEEE Access
ResourceScopus
Identifierhttp://dx.doi.org/10.1109/ACCESS.2021.3113953
URIhttp://hdl.handle.net/10576/31102
AbstractImage steganography is used to hide a secret image inside a cover image in plain sight. Traditionally, the secret data is converted into binary bits and the cover image is manipulated statistically to embed the secret binary bits. Overloading the cover image may lead to distortions and the secret information may become visible. Hence the hiding capacity of the traditional methods are limited. In this paper, a light-weight yet simple deep convolutional autoencoder architecture is proposed to embed a secret image inside a cover image as well as to extract the embedded secret image from the stego image. The proposed method is evaluated using three datasets - COCO, CelebA and ImageNet. Peak Signal-to-Noise Ratio, hiding capacity and imperceptibility results on the test set are used to measure the performance. The proposed method has been evaluated using various images including Lena, airplane, baboon and peppers and compared against other traditional image steganography methods. The experimental results have demonstrated that the proposed method has higher hiding capacity, security and robustness, and imperceptibility performances than other deep learning image steganography methods.
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
SubjectConvolution
Deep learning
Feature extraction
Image processing
Signal to noise ratio
Auto encoders
Cover-image
Deep learning
Features extraction
Image steganography
Information hiding
Medium
Robustness
Security
Steganography
TitleEnd-to-End Image Steganography Using Deep Convolutional Autoencoders
TypeArticle
Pagination135585-135593
Volume Number9
dc.accessType Abstract Only


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