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Photonic Approach for Generating Randomness-Enhanced Physical Chaos Via Dual-Path Optically Injected VCSELs

机译:通过双路径光学注入VCSEL产生增强随机性的物理混沌的光子方法

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The randomness enhancement of physical chaos generated by slave vertical-cavity surface-emitting lasers (S-VCSEL) subject to dual-path polarization-preserved optical injection (DP-PPOI) from single master VCSEL (M-VCSEL) with variable-polarization optical feedback (VPOF) is investigated numerically. The randomness of chaotic signals is evaluated quantitatively by an information-theory-based quantifier, the permutation entropy. The randomness properties for S-VCSEL with DP-PPOI and S-VCSEL with single-path PPOI are compared, as well as the effects of injection strength, frequency detuning, and VPOF are considered. It is shown that, the PE values for S-VCSELs with two different injection schemes are both much higher than those for M-VCSEL, and increase initially and then decrease until they saturate at a constant level. The region of injection parameter space contributing to randomness-enhanced chaos in S-VCSEL can be greatly broadened by adopting DP-PPOI. The generation of randomness-enhanced chaos via photonic approach is highly desirable for high-speed random number generators based on chaotic VCSELs.
机译:子垂直腔表面发射激光器(S-VCSEL)产生的物理混沌的随机性增强,受到单偏振VCSEL(M-VCSEL)的双路径保偏光注入(DP-PPOI)和可变偏振光的影响反馈(VPOF)进行了数值研究。混沌信号的随机性由基于信息理论的量化器(置换熵)进行定量评估。比较了具有DP-PPOI的S-VCSEL和具有单路径PPOI的S-VCSEL的随机性,并考虑了注入强度,频率失谐和VPOF的影响。结果表明,采用两种不同注入方案的S-VCSEL的PE值均远高于M-VCSEL的PE值,并且先增大后减小,直到它们达到恒定水平。通过采用DP-PPOI,可以极大地拓宽导致S-VCSEL中随机性增强的注入参数空间区域。对于基于混沌VCSEL的高速随机数发生器,非常需要通过光子方法生成随机性增强的混沌。

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