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Pixel Complexity Sorting Embedding for Reversible Data Hiding Based on Elastic net Predictor

  • Haoyu Shen*
  • , Shuyuan Liu
  • , Zhaoxia Yin
  • *此作品的通讯作者

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Reversible data hiding techniques have increasingly garnered attention from researchers in the field of information security due to their capacity to recover the original image non-destructively and their substantial embedding capacity. Over recent years, researchers have made strides in achieving commendable prediction accuracy through the use of linear regression models. However, it is important to note that linear regression models such as ridge and lasso regression have limitations and their performance is not always optimal. In this paper, we propose a novel reversible data hiding model based on an elastic prediction network and pixel complexity order. The elastic net predictor combines the advantages of ridge and lasso regression, incorporating L1 and L2 paradigms as penalty terms. This paper divides the image into a dot set and a cross set, and the elastic network trains the rhombus predictor. Subsequently, it is segmented into a two-stage prediction process, with embedding occurring in the order of pixel complexity from low to high. The proposed method outperforms other existing linear regression predictor methods at low embedding loads.

源语言英语
主期刊名ACM CPSS 2024 - Proceedings of the 10th ACM Cyber-Physical System Security Workshop
出版商Association for Computing Machinery, Inc
36-42
页数7
ISBN(电子版)9798400704208
DOI
出版状态已出版 - 2 7月 2024
活动10th ACM Cyber-Physical System Security Workshop, CPSS 2024, co-located with ACM AsiaCCS 2024 - Singapore, 新加坡
期限: 2 7月 2024 → …

出版系列

姓名ACM CPSS 2024 - Proceedings of the 10th ACM Cyber-Physical System Security Workshop

会议

会议10th ACM Cyber-Physical System Security Workshop, CPSS 2024, co-located with ACM AsiaCCS 2024
国家/地区新加坡
Singapore
时期2/07/24 → …

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