郭艳卿

(教授)

 博士生导师  硕士生导师
学位:博士
性别:男
毕业院校:大连理工大学
所在单位:未来技术学院/人工智能学院
电子邮箱:guoyq@dlut.edu.cn

论文成果

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Secure spread-spectrum data embedding with PN-sequence masking

发表时间:2019-03-09 点击次数:

论文名称:Secure spread-spectrum data embedding with PN-sequence masking
论文类型:期刊论文
发表刊物:SIGNAL PROCESSING-IMAGE COMMUNICATION
收录刊物:SCIE、EI
卷号:39
页面范围:17-25
ISSN号:0923-5965
关键字:Data hiding; Information hiding; Pseudo-noise masking; Signal-to-interference-plus-noise ratio (SINR); Spread-spectrum embedding; Steganography
摘要:Conventional additive spread-spectrum (SS) data embedding has a dangerous security flaw that unauthorized receivers can blindly extract hidden information without the knowledge of carrier(s). In this paper, pseudo-noise (PN) masking technique is adopted as an efficient security measure against illegitimate data extraction. The proposed PN-sequence masked SS embedding can offer efficient security against current SS embedding analysis without inducing any additional distortion to host nor notable recovery performance loss. To further improve recovery performance, optimal carrier design for PN-masked SS embedding is also developed. With any given host distortion budget, we aim at designing a carrier to maximize the output signal-to-interference-plus-noise ratio (SINR) of the corresponding maximum-SINR linear filter. Then, we present jointly optimal carrier and linear processor designs for PN-masked SS embedding in linearly modified transform domain host data. Finally, PN-masked multi-carrier/multi-message SS embedding is studied as well. The extensive experimental studies confirm our analytical performance predictions and illustrate the benefits of the designed PN masked optimal SS embedding. (C) 2015 Elsevier B.V. All rights reserved.
发表时间:2015-11-01