Publication | Open Access
Minimal-post-processing 320-Gbps true random bit generation using physical white chaos
76
Citations
28
References
2017
Year
EngineeringVlsi DesignOptical Transmission SystemComputer ArchitectureRelaxation OscillationOptical AmplifierOptical ComputingHardware SecurityLaser Relaxation OscillationQuantum ComputingClock RecoveryPhysical White ChaosOptical CommunicationPhotonicsComputer EngineeringWhite ChaosMemory ArchitecturePseudorandom Number GeneratorDigital Circuit DesignOptoelectronicsOptical Logic Gate
Chaotic external-cavity semiconductor laser (ECL) is a promising entropy source for generation of high-speed physical random bits or digital keys. The rate and randomness is unfortunately limited by laser relaxation oscillation and external-cavity resonance, and is usually improved by complicated post processing. Here, we propose using a physical broadband white chaos generated by optical heterodyning of two ECLs as entropy source to construct high-speed random bit generation (RBG) with minimal post processing. The optical heterodyne chaos not only has a white spectrum without signature of relaxation oscillation and external-cavity resonance but also has a symmetric amplitude distribution. Thus, after quantization with a multi-bit analog-digital-convertor (ADC), random bits can be obtained by extracting several least significant bits (LSBs) without any other processing. In experiments, a white chaos with a 3-dB bandwidth of 16.7 GHz is generated. Its entropy rate is estimated as 16 Gbps by single-bit quantization which means a spectrum efficiency of 96%. With quantization using an 8-bit ADC, 320-Gbps physical RBG is achieved by directly extracting 4 LSBs at 80-GHz sampling rate.
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