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Optical Network Security: Countermeasures in View of Attacks

机译:光网络安全:针对攻击的对策

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摘要

The huge amount of traffic transportable by the next generation optical network is vulnerable to attacks, as is discerned from an alarmingly increase of incidents. The types of attack are expected to range from the typical eavesdropping and service denial to more sophisticated source mimicking. As a consequence, modern encrypted methods refuge to highly sophisticated methods that emanate from quantum mechanics, known as quantum cryptography. However, the sophistication and elegance of quantum-cryptography makes the assumption that the transmission medium and the components involved on the link are perfect and that the properties of photons and the signal intensity do not change during propagation over many kilometers. Therefore, a practical implementation of Q-C may exhibit its own vulnerabilities due to non-linear interactions between photons and medium. Therefore, in addition to the sophistication of QKD and encryption algorithms, an additional function is needed that detects malicious intervention on the transmission link as well as a countermeasure strategy that outsmarts the attacker. In this paper, we consider a practical optical signal that consists of multiple photons, we consider a pragmatic medium with non-linearities, scattering and absorption centers. We describe a case of service denial with Q-C, a method by which an attack is detected, and we develop a countermeasure strategy outsmarting the attacker. Our method assumes that the data channel is encrypted using sophisticated algorithms.
机译:从事件的惊人增加可以看出,下一代光网络可传输的大量流量很容易受到攻击。攻击的类型范围从典型的窃听和拒绝服务到更复杂的源模仿。结果,现代的加密方法避开了由量子力学产生的高度复杂的方法,即量子密码术。但是,量子密码学的先进性和优雅性假定传输介质和链路中涉及的组件是完美的,并且光子的特性和信号强度在传播数公里时不会发生变化。因此,由于光子和介质之间的非线性相互作用,Q-C的实际实现可能会表现出自身的脆弱性。因此,除了复杂的QKD和加密算法之外,还需要其他功能来检测对传输链路的恶意干预以及超越攻击者的对策策略。在本文中,我们考虑了由多个光子组成的实际光信号,我们考虑了具有非线性,散射和吸收中心的实用介质。我们描述了一种使用Q-C拒绝服务的情况,这种方法可以检测到攻击,并且我们制定了一种使攻击者胜于对手的对策策略。我们的方法假定使用复杂算法对数据通道进行加密。

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