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Controlling correlative chaos in dual-color laser for cryptographic communication

机译:控制用于密码通信的双色激光中的相关混沌

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Chaotic fluctuation of light, which is being intrinsically different from deterministic chaos in lasers, arises from quantum-optic stochastic processes, and it therefore cannot be artificially replicated. When the fluctuation is correlative, however, it will be of more use in practical applications such as cryptographic communications. Throughout various experiments, it was found that a double-ring laser having a common semiconductor gain medium with strong saturation characteristics can produce a stable light beam consisting of negatively correlative dual-color components. Although each component decomposed by chromatic beam splitting is chaotic, their combination regenerates a stable light beam. This means that the photon-number states can be controlled by using an optical processing scheme for a correlative dual-color chaotic beam. How such a beam is generated is explained by a simple numerical simulation using a finite Markov chain model that assumes strong short-term intensity correlation between the components. A possible cryptosystem is presented based on the controllability of the photon-number state.
机译:光的混沌波动本质上不同于激光器中的确定性混沌,它是由量子光学随机过程引起的,因此无法进行人工复制。但是,当波动是相关的时,它将在诸如密码通信之类的实际应用中更多地使用。在各种实验中,发现具有普通半导体增益介质且饱和特性强的双环激光器可以产生由负相关双色成分组成的稳定光束。尽管通过彩色光束分裂分解的每个分量都是混沌的,但是它们的组合会重新生成稳定的光束。这意味着可以通过使用用于相关双色混沌光束的光学处理方案来控制光子数状态。通过使用有限马尔可夫链模型的简单数值模拟,解释了如何生成这样的光束,该模型假定组件之间存在强烈的短期强度相关性。基于光子数状态的可控制性,提出了一种可能的密码系统。

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