Enhancing Internet of Things security in healthcare using a blockchain-driven lightweight hashing system

IF 2.6 Q2 MULTIDISCIPLINARY SCIENCES
Bassam W. Aboshosha, M. Mokhtar Zayed, Hany S. khalifa, Rabie A. Ramadan
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引用次数: 0

Abstract

Background

The rapid expansion of Internet of Things applications in healthcare has created new opportunities for improving patient care through real-time monitoring and data sharing. However, this growth also introduces significant challenges related to data security, privacy, and system efficiency, especially for devices with limited processing power and energy resources. To address these issues, this study introduces a blockchain-based lightweight hashing system specifically designed for healthcare environments with resource-constrained devices. The goal is to ensure secure, efficient, and scalable handling of sensitive medical data without overwhelming the capabilities of connected devices.

Results

The proposed system combines a collision-resistant, lightweight hash function with blockchain technology to enhance data integrity, authentication, and privacy. The hash function minimizes computational demands, making it ideal for wearable and embedded healthcare devices. Blockchain integration enables decentralized data management, preventing unauthorized access and tampering. The system generates unique, immutable patient identifiers and protects electronic health information from common security threats, including collision attacks, Sybil attacks, and cryptographic analysis. Simulation results show improved computational efficiency, lower latency, and effective handling of high transaction volumes with minimal resource usage.

Conclusions

This research presents a secure and efficient framework for managing medical data in healthcare Internet of Things applications. By leveraging lightweight cryptographic techniques and decentralized data structures, the system addresses key limitations in current solutions while supporting scalability and real-world deployment. Potential applications include secure patient monitoring, real-time sharing of health data, and decentralized management of medical records. The proposed approach provides a foundation for future advancements in digital healthcare systems, particularly in remote care, emergency response, and wearable health technologies.

使用区块链驱动的轻量级哈希系统增强医疗保健中的物联网安全性
物联网在医疗保健领域的应用迅速扩展,为通过实时监控和数据共享改善患者护理创造了新的机会。然而,这种增长也带来了与数据安全、隐私和系统效率相关的重大挑战,特别是对于处理能力和能源有限的设备。为了解决这些问题,本研究引入了一种基于区块链的轻量级哈希系统,专门为具有资源受限设备的医疗保健环境设计。目标是确保安全、高效和可扩展地处理敏感医疗数据,而不会压倒连接设备的功能。结果该系统将抗碰撞、轻量级哈希函数与区块链技术相结合,增强了数据完整性、身份验证和隐私性。哈希函数最大限度地减少了计算需求,使其成为可穿戴和嵌入式医疗保健设备的理想选择。区块链集成实现分散的数据管理,防止未经授权的访问和篡改。该系统生成唯一的、不可变的患者标识符,并保护电子健康信息免受常见的安全威胁,包括碰撞攻击、Sybil攻击和加密分析。仿真结果表明,提高了计算效率,降低了延迟,并以最小的资源使用有效地处理了高交易量。结论本研究提出了一种安全高效的医疗物联网数据管理框架。通过利用轻量级加密技术和分散的数据结构,该系统解决了当前解决方案中的关键限制,同时支持可伸缩性和实际部署。潜在的应用包括安全的病人监控、实时共享健康数据和分散的医疗记录管理。所提出的方法为数字医疗系统的未来发展提供了基础,特别是在远程医疗、应急响应和可穿戴医疗技术方面。
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来源期刊
CiteScore
2.60
自引率
0.00%
发文量
0
期刊介绍: Beni-Suef University Journal of Basic and Applied Sciences (BJBAS) is a peer-reviewed, open-access journal. This journal welcomes submissions of original research, literature reviews, and editorials in its respected fields of fundamental science, applied science (with a particular focus on the fields of applied nanotechnology and biotechnology), medical sciences, pharmaceutical sciences, and engineering. The multidisciplinary aspects of the journal encourage global collaboration between researchers in multiple fields and provide cross-disciplinary dissemination of findings.
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