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Neural Synchronization-Guided Concatenation of Header and Secret Shares for Secure Transmission of Patients' Electronic Medical Record: Enhancing Telehealth Security for COVID-19

机译:用于安全传播患者电子病历的头部和秘密股的神经同步引导串联:加强Covid-19的远程安全保障

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摘要

This paper deals with one of the key problems of e-healthcare which is the security. Patients are worried about the confidentiality of their electronic medical record (EMR) which could be used to expose their identities. It is high time to revisit the confidentiality and security issues of the existing telehealth system. Intruders can perform sniffing, spoofing, or phishing operations effortlessly during the online exchange of the EMR using a digital platform. The EMR must be transmitted anonymously with a high degree of hardness of encryption by protecting the authentication, confidentiality, and integrity criteria of the patient. These requirements recommend the security of the current system to be improved. In this paper, a neural synchronization-guided concatenation of header and secret shares with the ability to transmit the EMR with an end-to-end security protocol has been proposed. This proposed methodology breaks down the EMR into the n number of secret shares and transmits to the n number of recipients. The original EMR can be reconstructed after the amalgamation of a minimum k (threshold) number of secret shares. The novelty of the technique is that one share should come from a specific recipient to whom a special privilege is given to recreate the EMR among such a predefined number of shares. In the absence of this privileged share, the original EMR cannot be reconstructed. This proposed technique has passed various parametric tests. The results are compared with existing benchmark techniques. The results of the proposed technique have shown robust and effective potential.
机译:本文涉及电子医疗保健的关键问题之一,这是安全。患者担心其电子医疗记录(EMR)的机密性,可用于暴露其身份。重新审视现有远程医疗系统的机密性和安全问题是很高的时机。入侵者可以在使用数字平台的在线交换期间努力执行嗅探,欺骗或网络钓鱼操作。 EMR必须通过保护患者的认证,机密性和完整性标准来匿名传输高度的加密硬度。这些要求建议提高当前系统的安全性。在本文中,已经提出了具有通过端到端安全协议发送EMR的能力的标题和秘密共享的神经同步引导级联。这一提出的方法将EMR分解为N个秘密共享并传输到N个收件人。在融合最小k(阈值)的秘密股份的融合后,可以重建原始EMR。该技术的新颖性是,一个份额应该来自特定的收件人,以便在这种预定义的股票之间提供特殊权限的特定收件人来重建EMR。在没有此特权共享的情况下,无法重建原始EMR。这种提出的技术通过了各种参数测试。结果与现有的基准技术进行了比较。所提出的技术的结果表明了稳健且有效的潜力。

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