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Contextual fully homomorphic encryption schemes-based privacy preserving framework for securing fog-assisted healthcare data exchanging applications

机译:基于上下文完全同性恋加密方案的隐私保留框架,用于保护雾辅助保健数据交换应用程序

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摘要

The collection of pervasive data from e-healthcare system inherits potential medical significance through the mode of data exchange with the service providers of professional health care. The sensitive data exchange between the health care providers need to satisfy the requirements of user privacy, since the environment of fog computing is highly vulnerable due to the injection of false data from the hybrid IoT devices. However, sharing health data introduces a diversified number of security issues that include privacy leakage and access control with the further possibility of facing crucial challenges for attaining significant data investigation and services. In this paper, a contextual fully homomorphic encryption techniques-based privacy preserving framework (CFHET-PPF) for securing fog-assisted health data exchanging applications. This proposed CFHET-PPF framework integrates three significant fully homomorphic encryption approaches together in preventing false data injection. It is proposed for facilitating the fog nodes to categorize the shared data based on disease risks for indispensable health data analysis. It aids in achieving a maximum reduction in the number of encryptions by offloading a part of storage and computation burden at the side of the patients to the fog nodes. The security investigations of the proposed CFHET-PPF framework confirmed its superiority in fine grained access control, lightweight process and confidentiality with collusion resistance.
机译:来自电子医疗保健系统的普遍数据的集合继承了通过与专业保健服务提供商的数据交换方式继承了潜在的医学意义。医疗保健提供者之间的敏感数据交换需要满足用户隐私的要求,因为由于从混合IOT设备的错误数据注入错误数据,因此雾计算环境非常脆弱。然而,共享健康数据引入了一个多样化的安全问题,包括隐私泄漏和访问控制,进一步可能面临对实现重要数据调查和服务的关键挑战。在本文中,基于上下常的同性恋加密技术的隐私保留框架(CFHET-PPF),用于保护雾辅助的健康数据交换应用程序。这提出的CFHET-PPF框架将三种显着的完全同态加密方法集成在一起,以防止虚假数据注入。建议基于疾病风险对不可或缺的健康数据分析进行促进雾节点来促进雾节点。它可以通过将患者侧面的存储和计算负担卸载到雾节点来实现通过卸载一部分存储和计算负担来实现最大值。拟议的CFHET-PPF框架的安全调查证实了其在细粒度访问控制,轻质过程和抗侵占机密性的优越性。

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