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Digital image steganography using universal distortion

Published: 17 June 2013 Publication History

Abstract

Currently, the most secure practical steganographic schemes for empirical cover sources embed their payload while minimizing a distortion function designed to capture statistical detectability. Since there exists a general framework for this embedding paradigm with established payload-distortion bounds as well as near-optimal practical coding schemes, building an embedding scheme has been essentially reduced to the distortion design. This is not an easy task as relating distortion to statistical detectability is a hard and open problem. In this article, we propose an innovative idea to measure the embedding distortion in one fixed domain independently of the domain where the embedding changes (and coding) are carried out. The proposed universal distortion is additive and evaluates the cost of changing an image element (e.g., pixel or DCT coefficient) from directional residuals obtained using a Daubechies wavelet filter bank. The intuition is to limit the embedding changes only to those parts of the cover that are difficult to model in multiple directions while avoiding smooth regions and clean edges. The utility of the universal distortion is demonstrated by constructing steganographic schemes in the spatial, JPEG, and side-informed JPEG domains, and comparing their security to current state-of-the-art methods using classifiers trained with rich media models.

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    cover image ACM Conferences
    IH&MMSec '13: Proceedings of the first ACM workshop on Information hiding and multimedia security
    June 2013
    242 pages
    ISBN:9781450320818
    DOI:10.1145/2482513
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    Published: 17 June 2013

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    Author Tags

    1. JPEG
    2. distortion function
    3. side-informed embedding
    4. steganography

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    IH&MMSec '13 Paper Acceptance Rate 27 of 74 submissions, 36%;
    Overall Acceptance Rate 128 of 318 submissions, 40%

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    Cited By

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    • (2024)Blockchain Meets Generative Behavior Steganography: A Novel Covert Communication Framework for Secure IoT Edge ComputingChinese Journal of Electronics10.23919/cje.2023.00.38233:4(886-898)Online publication date: Jul-2024
    • (2024)Lightweight Steganography Detection Method Based on Multiple Residual Structures and TransformerChinese Journal of Electronics10.23919/cje.2022.00.45233:4(965-978)Online publication date: Jul-2024
    • (2024)Image Steganography Approaches and Their Detection Strategies: A SurveyACM Computing Surveys10.1145/369496557:2(1-40)Online publication date: 10-Oct-2024
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    • (2024)MSIHNet: A Multi-size Image Hiding Method That Can Hide A Large-Size Image into A Small-Size Image2024 IEEE 14th International Conference on Electronics Information and Emergency Communication (ICEIEC)10.1109/ICEIEC61773.2024.10561712(8-15)Online publication date: 24-May-2024
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