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Enabling Secure Authentication in Industrial IoT With Transfer Learning Empowered Blockchain

机译:通过转移学习在工业物联网中启用安全身份验证赋予赋权区块

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摘要

Industrial Internet of Things (IIoT) is ushering in huge development opportunities in the era of Industry 4.0. However, there are significant data security and privacy challenges during automatic and real-time data collection, monitoring for industrial applications in IIoT. Data security and privacy in IIoT applications are closely related to the reliability of users, which is determined by user authentication that have been widely used as an effective approach. However, the existing user authentication mechanisms in IIoT suffer from single factor authentication and poor adaptability with the rapid growth of the number of users and the diversity of user categories. To solve the aforementioned issues, this article proposes a novel Authentication mechanism based on Transfer Learning empowered Blockchain, coined ATLB. In ATLB, blockchains are applied to achieve the privacy preservation for industrial applications. In addition, by introducing the transfer learning based authentication mechanism, trustworthy blockchains are built such that the privacy preservation for industrial applications is further enhanced. Specifically, ATLB first employs a guiding deep deterministic policy gradient algorithm to train the user authentication model of a specific region, which is then transferred locally for foreign user authentication or cross-regionally for another region's user authentication such that the model training time is significantly reduced. Experimental results show that the proposed ATLB not only provides accurate authentications for IIoT applications but also achieves high throughput and low latency.
机译:工业互联网(IIOT)迎来了4.0时代的巨大发展机遇。但是,在自动和实时数据收集期间存在显着的数据安全和隐私挑战,在IIOT中的工业应用监测。 IIOT应用程序中的数据安全性和隐私与用户的可靠性密切相关,这是由已被广泛用作有效方法的用户认证确定的。然而,IIOT中的现有用户身份验证机制患有单一因素认证和对用户数量的快速增长以及用户类别的多样性的差。为了解决上述问题,本文提出了一种基于转移学习的新型认证机制,赋予授权的区块链,被创建的ATLB。在ATLB中,应用区块链以实现工业应用的隐私保存。此外,通过引入基于转移学习的认证机制,建立了值得信赖的区块链,使得工业应用的隐私保存是进一步增强的。具体地,ATLB首先采用引导深度确定性政策梯度算法来训练特定区域的用户认证模型,然后将其在本地传送外国用户认证或者交叉区域用于另一区域的用户认证,使得模型训练时间显着降低。实验结果表明,建议的ATLB不仅为IIOT应用程序提供准确认证,而且还可以实现高吞吐量和低延迟。

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