使用联合学习实现基于云的医疗物联网安全数据存储和访问控制

IF 0.6 Q4 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Priyanka kumari Bhansali, Dilendra Hiran, Hemant Kothari, K. Gulati
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引用次数: 3

摘要

目的本文的目的是计算是最近出现的一种云模型,它为客户提供了无限的设施,降低了客户存储和计算的速率,并提高了易用性,导致在云中存储数据的企业和个人数量激增。云服务被各种组织(教育、医疗和商业)用来存储其数据。例如,在医疗保健行业,患者医疗数据被外包给云服务器。客户可以通过云访问他们的医疗数据,而不是依赖医疗服务提供商。设计/方法论/方法本节解释了所提出的用于安全数据存储和访问控制的基于云的医疗保健系统,称为基于哈希的密文策略属性签名加密(hCP-ABES)。它为访问控制提供了更精细的粒度、安全性、身份验证和医疗数据的用户机密性。它通过散列、加密和签名增强了基于密文策略属性的加密(CP-ABE)。拟议的架构包括保护机制,以确保医疗保健和医疗信息可以通过云在卫生系统之间安全交换。图2描绘了拟议作品的建筑设计。查找对于医疗保健相关的应用程序,与托管在云服务器上的常见文档的安全联系变得越来越重要。然而,设计一种有效和安全的数据访问方法存在许多限制,包括云服务器性能、大量数据用户和各种安全要求。这项工作为经典的CP-ABE技术添加了散列和签名。它保护医疗保健数据的机密性,同时允许细粒度的访问控制。根据对安全需求的分析,这项工作使用联合学习来实现健康信息的隐私和完整性。独创性/价值物联网(IoT)技术和智能诊断植入物通过允许在任何时间、任何地点远程访问和筛查患者的健康问题,增强了医疗保健系统。医疗物联网设备监测患者的健康状况,并将这些信息组合到医疗记录中,然后将这些信息传输到云端,由医疗服务提供商查看以供决策。然而,在信息传输方面,电子健康记录的安全性和保密性成为一个主要问题。这项工作为智能医疗系统提供了有效的数据存储和访问控制,以保护机密性。CP-ABE确保了数据的机密性,还允许在更精细的级别上控制数据访问。此外,它还允许所有者在云层下建立动态的患者健康数据共享策略。hCP-ABES提出了医疗数据的细粒度数据访问、安全性、身份验证和用户隐私。本文通过散列、加密和签名对CP-ABE进行了增强。对所提出的方法进行了评估,结果表明,与其他使用联合学习的访问控制方案相比,所提出的hCP-ABES是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cloud-based secure data storage and access control for internet of medical things using federated learning
Purpose The purpose of this paper Computing is a recent emerging cloud model that affords clients limitless facilities, lowers the rate of customer storing and computation and progresses the ease of use, leading to a surge in the number of enterprises and individuals storing data in the cloud. Cloud services are used by various organizations (education, medical and commercial) to store their data. In the health-care industry, for example, patient medical data is outsourced to a cloud server. Instead of relying onmedical service providers, clients can access theirmedical data over the cloud. Design/methodology/approach This section explains the proposed cloud-based health-care system for secure data storage and access control called hash-based ciphertext policy attribute-based encryption with signature (hCP-ABES). It provides access control with finer granularity, security, authentication and user confidentiality of medical data. It enhances ciphertext-policy attribute-based encryption (CP-ABE) with hashing, encryption and signature. The proposed architecture includes protection mechanisms to guarantee that health-care and medical information can be securely exchanged between health systems via the cloud. Figure 2 depicts the proposed work's architectural design. Findings For health-care-related applications, safe contact with common documents hosted on a cloud server is becoming increasingly important. However, there are numerous constraints to designing an effective and safe data access method, including cloud server performance, a high number of data users and various security requirements. This work adds hashing and signature to the classic CP-ABE technique. It protects the confidentiality of health-care data while also allowing for fine-grained access control. According to an analysis of security needs, this work fulfills the privacy and integrity of health information using federated learning. Originality/value The Internet of Things (IoT) technology and smart diagnostic implants have enhanced health-care systems by allowing for remote access and screening of patients’ health issues at any time and from any location. Medical IoT devices monitor patients’ health status and combine this information into medical records, which are then transferred to the cloud and viewed by health providers for decision-making. However, when it comes to information transfer, the security and secrecy of electronic health records become a major concern. This work offers effective data storage and access control for a smart healthcare system to protect confidentiality. CP-ABE ensures data confidentiality and also allows control on data access at a finer level. Furthermore, it allows owners to set up a dynamic patients health data sharing policy under the cloud layer. hCP-ABES proposed fine-grained data access, security, authentication and user privacy of medical data. This paper enhances CP-ABE with hashing, encryption and signature. The proposed method has been evaluated, and the results signify that the proposed hCP-ABES is feasible compared to other access control schemes using federated learning.
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来源期刊
International Journal of Pervasive Computing and Communications
International Journal of Pervasive Computing and Communications COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS-
CiteScore
6.60
自引率
0.00%
发文量
54
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