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Towards Security of Cyber-Physical Systems using Quantum Computing Algorithms

机译:利用量子计算算法实现网络物理系统的安全性

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For cyber-physical systems (CPS), ensuring process and data security is critically important since the corresponding infrastructure needs to have high operational efficiency with no downtime. There are many techniques available that make communications in CPS environments secure – such as enabling traffic encryption between sensors and the computers processing the sensor’s data, incorporating message authentication codes to achieve integrity, etc. However, most of these techniques are dependent on some form of symmetric or asymmetric cryptographic algorithms like AES and RSA. These algorithms are under threat because of the emerging quantum computing paradigm: with quantum computing, these encryption algorithms can be potentially broken. It is therefore desirable to explore the use of quantum cryptography – which cannot be broken by quantum computing – for securing the classical communications infrastructure deployed in CPS. In this paper, we discuss possible consequences of this option. We also explain how quantum computers can help even more: namely, they can be used to maximize the system’s security where scalability is never a constraint, and to ensure we are not wasting time cycles on communicating and processing irrelevant information.
机译:对于网络物理系统(CPS),确保流程和数据安全至关重要,因为相应的基础架构需要在不停机的情况下具有较高的运营效率。有许多可用的技术可确保CPS环境中的通信安全-例如,启用传感器与处理传感器数据的计算机之间的流量加密,并入消息身份验证代码以实现完整性等。但是,这些技术大多数都依赖于某种形式的对称或非对称密码算法,例如AES和RSA。由于新兴的量子计算范式,这些算法受到威胁:利用量子计算,这些加密算法可能会被破坏。因此,需要探索使用量子密码术(它不能被量子计算打破)来保护部署在CPS中的经典通信基础结构。在本文中,我们讨论了此选项的可能后果。我们还将说明量子计算机如何提供更多帮助:即,它们可用于在可扩展性永远不受限制的情况下最大化系统的安全性,并确保我们不会浪费时间在通信和处理不相关的信息上。

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