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Noise amplification by chaotic dynamics in a delayed feedback laser system and its application to nondeterministic random bit generation

机译:延迟反馈激光系统中混沌动力学的噪声放大及其在不确定性随机位生成中的应用

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摘要

We present an experimental method for directly observing the amplification of microscopic intrinsic noise in a high-dimensional chaotic laser system, a laser with delayed feedback. In the experiment, the chaotic laser system is repeatedly switched from a stable lasing state to a chaotic state, and the time evolution of an ensemble of chaotic states starting from the same initial state is measured. It is experimentally demonstrated that intrinsic noises amplified by the chaotic dynamics are transformed into macroscopic fluctuating signals, and the probability density of the output light intensity actually converges to a natural invariant probability density in a strongly chaotic regime. Moreover, with the experimental method, we discuss the application of the chaotic laser systems to physical random bit generators. It is experimentally shown that the convergence to the invariant density plays an important role in nondeterministic random bit generation, which could be desirable for future ultimate secure communication systems.
机译:我们提出了一种直接观察高维混沌激光系统(具有延迟反馈的激光器)中微观固有噪声放大率的实验方法。在实验中,将混沌激光系统从稳定的激射状态反复切换到混沌状态,并测量从相同初始状态开始的混沌状态集合的时间演化。实验证明,由混沌动力学放大的固有噪声被转换为宏观波动信号,并且在强混沌状态下,输出光强度的概率密度实际上收敛于自然不变概率密度。此外,通过实验方法,我们讨论了混沌激光系统在物理随机位发生器中的应用。实验表明,不变密度的收敛在不确定的随机比特生成中起重要作用,这对于将来的最终安全通信系统可能是理想的。

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