论文标题
量子时代的网络物理防御
Cyber-Physical Defense in the Quantum Era
论文作者
论文摘要
网络控制系统(NCSS)是一种网络物理系统,由紧密整合的计算,通信和控制技术组成。尽管它们是非常灵活的环境,但它们容易受到计算和网络攻击的影响。最近的NCSS黑客事件产生了重大影响。他们呼吁对网络物理安全进行更多研究。担心使用量子计算破坏当前的密码系统会使情况变得更糟。虽然量子威胁促使创建新学科来处理该问题,例如量词后加密术,但其他领域却忽略了支持量子的对手的存在。网络物理防御研究就是这种情况,这是对网络物理保护的独特但互补的纪律。网络物理防御是指检测和反应于网络物理攻击的能力。具体而言,它涉及在事件发生期间和之后识别不良事件并准备响应计划的机制的整合。在本文中,我们假设最终可用的量子计算机将为对手针对防御者提供优势,除非他们也采用了这项技术。我们设想了进行范式转变的必要性,在量子至上,由于量子至上而增加的对抗资源并没有转化为更高的破坏可能性。与当前在其他领域的系统设计实践一致,例如使用人工智能来加强攻击检测工具,我们概述了下一代网络物理防御层的愿景,从而利用量子计算和机器学习来利用思想。通过一个例子,我们表明,NCSS的捍卫者可以学习并改善他们的策略,以期待和从攻击中恢复。
Networked-Control Systems (NCSs), a type of cyber-physical systems, consist of tightly integrated computing, communication and control technologies. While being very flexible environments, they are vulnerable to computing and networking attacks. Recent NCSs hacking incidents had major impact. They call for more research on cyber-physical security. Fears about the use of quantum computing to break current cryptosystems make matters worse. While the quantum threat motivated the creation of new disciplines to handle the issue, such as post-quantum cryptography, other fields have overlooked the existence of quantum-enabled adversaries. This is the case of cyber-physical defense research, a distinct but complementary discipline to cyber-physical protection. Cyber-physical defense refers to the capability to detect and react in response to cyber-physical attacks. Concretely, it involves the integration of mechanisms to identify adverse events and prepare response plans, during and after incidents occur. In this paper, we make the assumption that the eventually available quantum computer will provide an advantage to adversaries against defenders, unless they also adopt this technology. We envision the necessity for a paradigm shift, where an increase of adversarial resources because of quantum supremacy does not translate into higher likelihood of disruptions. Consistently with current system design practices in other areas, such as the use of artificial intelligence for the reinforcement of attack detection tools, we outline a vision for next generation cyber-physical defense layers leveraging ideas from quantum computing and machine learning. Through an example, we show that defenders of NCSs can learn and improve their strategies to anticipate and recover from attacks.