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Tamper-indicating Quantum Seals

机译:防篡改量子密封

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摘要

Confidence in the means for identifying when tampering occurs is critical for containment and surveillance technologies. Fiber-optic seals have proven especially useful for actively surveying large areas or inventories due to the extended transmission range and flexible layout of fiber. However, it is reasonable to suspect that an intruder could tamper with a fiber-optic sensor by accurately replicating the light transmitted through the fiber. In this contribution, we demonstrate a novel approach to using fiber-optic seals for safeguarding large-scale inventories with increased confidence in the state of the seal. Our approach is based on the use of quantum mechanical phenomena to offer unprecedented surety in the authentication of the seal state. In particular, we show how quantum entangled photons can be used to monitor the integrity of a fiber-optic cable - the entangled photons serve as active sensing elements whose non-local correlations indicate normal seal operation. Moreover, we prove using the quantum no-cloning theorem that attacks against the quantum seal necessarily disturb its state and that these disturbances are immediately detected. Our quantum approach to seal authentication is based on physical principles alone and does not require the use of secret or proprietary information to ensure proper operation. We demonstrate an implementation of the quantum seal using a pair of entangled photons and we summarize our experimental results including the probability of detecting intrusions and the overall stability of the system design. We conclude by discussing the use of both free-space and fiber-based quantum seals for surveying large areas and inventories.
机译:对识别何时发生篡改的方法的信心对于遏制和监视技术至关重要。由于扩展的传输范围和灵活的光纤布置,光纤密封件已被证明对于主动调查大面积或库存特别有用。但是,有理由怀疑入侵者可以通过精确复制通过光纤传输的光来篡改光纤传感器。在此贡献中,我们展示了一种使用光纤密封件来保护大规模库存的新颖方法,并增加了对密封件状态的信心。我们的方法基于量子力学现象的使用,以在密封状态的验证中提供空前的保证。特别是,我们展示了量子纠缠光子如何用于监视光缆的完整性-纠缠光子用作主动感应元件,其非局部相关性指示正常的密封操作。此外,我们证明了使用量子无克隆定理,对量子密封的攻击必定会扰乱其状态,并立即检测到这些扰动。我们用于密封认证的量子方法仅基于物理原理,不需要使用秘密或专有信息来确保正常运行。我们演示了使用一对纠缠的光子实现量子密封的方法,并总结了我们的实验结果,包括检测到入侵的可能性和系统设计的整体稳定性。最后,我们讨论了使用自由空间和基于光纤的量子密封来测量大面积和库存的情况。

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