论文标题

部分可观测时空混沌系统的无模型预测

Blockchain based AI-enabled Industry 4.0 CPS Protection against Advanced Persistent Threat

论文作者

Rahman, Ziaur, Khalil, Xun Yi Ibrahim

论文摘要

Industry 4.0就是以同时,安全和细粒度的方式做事。物联网边缘传感器及其相关数据在当今行业生态系统中起主要作用。注射高级持续威胁(APT)后,违反数据或锻造源设备会损害行业所有者的资金和运营商的损失。现有的挑战包括针对脆弱边缘设备的APT注射攻击,数据运输不安全,利益相关者之间的信任不一致,不符合的数据存储机制等。边缘服务器通常会遭受损失,因为它们的轻量级计算能力可以消除未经授权的数据或指令,这本质上使他们暴露于攻击者中。当攻击者在使用传统的PKI渲染信托运输数据时靶向边缘服务器时,财团区块链(CBC)提供了良好的技术,可以安全地传输和维护这些敏感数据。随着边缘机器学习的最新改进,Edge设备可以在其末端过滤恶意数据,这在很大程度上激发了我们建立区块链和AI对齐的APT检测系统。本文的独特贡献包括在边缘的有效适应性检测以及在不可变的区块链分类帐中对检测历史记录的透明记录。与此一致,无证书数据传输机制促进了合作者之间的信任,并在消除现有证书授权后确保经济和可持续的机制。最后,符合边缘的存储技术有助于有效的预测维护。各自的实验结果表明,所提出的技术优于其他竞争系统和模型。

Industry 4.0 is all about doing things in a concurrent, secure, and fine-grained manner. IoT edge-sensors and their associated data play a predominant role in today's industry ecosystem. Breaching data or forging source devices after injecting advanced persistent threats (APT) damages the industry owners' money and loss of operators' lives. The existing challenges include APT injection attacks targeting vulnerable edge devices, insecure data transportation, trust inconsistencies among stakeholders, incompliant data storing mechanisms, etc. Edge-servers often suffer because of their lightweight computation capacity to stamp out unauthorized data or instructions, which in essence, makes them exposed to attackers. When attackers target edge servers while transporting data using traditional PKI-rendered trusts, consortium blockchain (CBC) offers proven techniques to transfer and maintain those sensitive data securely. With the recent improvement of edge machine learning, edge devices can filter malicious data at their end which largely motivates us to institute a Blockchain and AI aligned APT detection system. The unique contributions of the paper include efficient APT detection at the edge and transparent recording of the detection history in an immutable blockchain ledger. In line with that, the certificateless data transfer mechanism boost trust among collaborators and ensure an economical and sustainable mechanism after eliminating existing certificate authority. Finally, the edge-compliant storage technique facilitates efficient predictive maintenance. The respective experimental outcomes reveal that the proposed technique outperforms the other competing systems and models.

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