2022
DOI: 10.3390/math10224249
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Trace Concealment Histogram-Shifting-Based Reversible Data Hiding with Improved Skipping Embedding and High-Precision Edge Predictor (ChinaMFS 2022)

Abstract: Reversible data hiding (RDH) is a special class of steganography, in which the cover image can be perfectly recovered upon the extraction of the secret data. However, most image-based RDH schemes focus on improving capacity–distortion performance. In this paper, we propose a novel RDH scheme which not only effectively conceals the traces left by HS but also improves capacity–distortion performance. First, high-precision edge predictor LS-ET (Least Square predictor with Edge Type) is proposed, and the predictor… Show more

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Cited by 2 publications
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“…The paper by Shi et al [5] presents a novel reversible data hiding (RDH) scheme that introduces the LS-ET (Least Square predictor with Edge Type) to accurately predict different types of pixels based on stronger local consistency and a prediction-based histogramshifting (HS) framework to hide embedding traces in stego images.…”
mentioning
confidence: 99%
“…The paper by Shi et al [5] presents a novel reversible data hiding (RDH) scheme that introduces the LS-ET (Least Square predictor with Edge Type) to accurately predict different types of pixels based on stronger local consistency and a prediction-based histogramshifting (HS) framework to hide embedding traces in stego images.…”
mentioning
confidence: 99%