Cloud Security System for ECG Transmission and Monitoring Based on Chaotic Logistic Maps

Rajasree Gopalakrishnan, Retnaswami Mathusoothana Satheesh Kumar
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引用次数: 0

Abstract

Biomedical data or information must be transmitted securely via the internet for smart healthcare. The Electrocardiogram (ECG) signal is amongst the most essential clinical signals which must be delivered to hospital facilities. Prime focus of this research is on the encryption of ECG for secure transmission. Chaos theory is used for the development of deterministic nonlinear systems, that can be used to create random numbers for the Chaotic Logistic Map (CLM) based encryption. This study describes a cryptographic algorithm for encrypting ECG signals that uses a mix of the CLM and fingerprint data. The common factor between the patient section and monitoring section is the operation on sample data points of ECG. The choice of proper encryption and decryption theme can save more amount of time and is invulnerable both to noise-based attacks and hacking instances. The proposed framework is implemented on Dropbox based cloud storage and access is possible from any given locations. Simulation tests are used to assess the system performance in terms of Structural Similarity Index Matrix (SSIM), Histogram, Spectral Distortion (SD), Correlation and Log-Likelihood Ratio (LLR). The incorporation of complex layers of CLM encryption increases security.
基于混沌逻辑图的心电图传输与监测云安全系统
生物医学数据或信息必须通过互联网安全传输,以实现智能医疗。心电图(ECG)信号是必须传送到医院设施的最基本临床信号之一。本研究的主要重点是对心电图进行加密以实现安全传输。混沌理论用于开发确定性非线性系统,可为基于混沌逻辑图(CLM)的加密创建随机数。本研究介绍了一种加密心电信号的加密算法,该算法混合使用了 CLM 和指纹数据。病人部分和监控部分的共同点是对心电图样本数据点进行操作。选择适当的加密和解密主题可以节省更多时间,并且不会受到基于噪声的攻击和黑客攻击。建议的框架是在基于 Dropbox 的云存储上实现的,可以从任何指定地点访问。仿真测试用于评估系统在结构相似性指数矩阵(SSIM)、直方图、频谱失真(SD)、相关性和对数似然比(LLR)方面的性能。采用复杂的 CLM 加密层提高了安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
1.30
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