加密
计算机科学
概率加密
散列函数
多重加密
块(置换群论)
争先恐后
算法
水印
数字水印
理论计算机科学
混乱的
56位加密
密码学
文件系统级加密
40位加密
动态加密
水印攻击
混沌(操作系统)
确定性加密
匹配(统计)
计算机安全
数字签名
链路加密
签名(拓扑)
图像(数学)
密码哈希函数
计算机工程
钥匙(锁)
数据安全
密码系统
认证(法律)
作者
Hongliang Zhang,ChangWu Wang,Chengye Zou,Xiangqi Fei,Jing Liu
出处
期刊:Physica Scripta
[IOP Publishing]
日期:2026-02-17
卷期号:101 (10): 106001-106001
标识
DOI:10.1088/1402-4896/ae46f4
摘要
Abstract Medical images carry patients’ privacy and serve as critical evidence for clinical diagnosis, making the security of their cloud transmission of paramount importance. To address the limitations of existing encryption schemes, including the lack of integrity verification, difficulty in tampering localization, insufficient identity traceability, and weak encryption strength, this paper proposes a security protection scheme integrating chaotic encryption, watermark embedding, and block hash verification. First, an improved two-dimensional chaotic system (2D-ICBHM) is constructed, and experimental results demonstrate that its chaotic performance is significantly superior to that of the original system and other chaotic systems reported in recent years. Second, an encryption mechanism is designed based on this system: pixel-wise encryption is implemented on images decomposed by bit-plane through n -group index scrambling and dual chaotic sequence substitution, and global block-level encryption is accomplished by combining block swap-rotation permutation and block diffusion algorithms. Third, a block hash verification (BHT) mechanism is introduced, which achieves accurate block-level localization of tampered regions by matching the hash features of segmented sub-blocks. In addition, binary doctor signatures generated via chaotic encryption are converted into watermark data streams, which serve dual purposes of identity recognition and integrity verification. The proposed scheme integrates pixel-level and block-level encryption to enhance encryption effectiveness, and combines signature watermarking with the BHT mechanism to realize source traceability, tampering detection, and fine-grained block localization. Security evaluation confirms that the scheme exhibits robust anti-attack capability and reliable tampering detection and localization performance, which can effectively mitigate medical security risks and provide a feasible solution for secure data transmission.
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