Enhancing Medical Image Security: A Deep Learning Approach with Cloud-based Color Space Scrambling

被引:0
|
作者
Aswathy K. Cherian [1 ]
Serin V. Simpson [2 ]
M. Vaidhehi [1 ]
Ramaprabha Marimuthu [3 ]
M. Shankar [4 ]
机构
[1] SRM Institute of Science and Technology,Department of Computing Technologies
[2] Kattankulathur,School of Computer Science and Engineering
[3] Presidency University,Department of Computer Science and Technology
[4] Veltech Dr. Rangarajan Dr. Sagunthala Research Institute of Science and Technology,undefined
[5] Madanapalle Institute of Technology and Science,undefined
[6] Angallu,undefined
关键词
Deep learning; Medical images; Colour space-based scrambling algorithms (CSSA); JPEG standard; Multilayer Perceptron’s (MLP); Encryption techniques;
D O I
10.1007/s41870-024-02109-0
中图分类号
学科分类号
摘要
Progress in wisdom medicine has been driven by advancements in big data, cloud computing, and artificial intelligence, enabling the accumulation of valuable information and insights. However, the increasing reliance on cloud-based storage and transmission of medical images has raised significant concerns regarding information security. The risk of unauthorized access to patients' private data poses a considerable obstacle to medical research advancement. Thus, safeguarding patient data in cloud environments is imperative. Color space-based scrambling algorithms (CSSA) are gaining traction for multimedia data encryption due to their compatibility with JPEG and reduced processing requirements. However, traditional CSSA methods rely on colorful images to optimize security, limiting their applicability in fields like medical image processing where color images may be scarce. This study seeks to integrate CSSA image encryption with Multilayer Perceptron (MLP)-based techniques for securing medical images. Additionally, a noise-based data augmentation method is developed to address data scarcity in medical image analysis. Security analysis and temporal complexity assessments are employed to evaluate the effectiveness of the proposed MLP-CSSA deep learning model in encrypting medical images. Results demonstrate robust security in encrypting both grayscale and color medical images, with the proposed MLP-CSSA method outperforming existing encryption techniques.
引用
收藏
页码:5041 / 5054
页数:13
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