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利用混沌激光多位量化实时产生14 Gb/s的物理随机数
引用本文:王龙生,赵彤,王大铭,吴旦昱,周磊,武锦,刘新宇,王安帮.利用混沌激光多位量化实时产生14 Gb/s的物理随机数[J].物理学报,2017,66(23):234205-234205.
作者姓名:王龙生  赵彤  王大铭  吴旦昱  周磊  武锦  刘新宇  王安帮
作者单位:1. 太原理工大学, 新型传感器与智能控制教育部重点实验室, 太原 030024;2. 太原理工大学物理与光电工程学院, 光电工程研究所, 太原 030024;3. 中国科学院微电子研究所微波器件与集成电路研究室, 北京 100029
基金项目:国家自然科学基金(批准号:61475111,61671316)、山西省优秀青年自然科学基金(批准号:2015021004)、山西省国际科技合作项目(批准号:201603D421008)和国际科技合作项目(批准号:2014DFA50870)资助的课题.
摘    要:提出了一种基于混沌激光多位量化的高速物理随机数实时产生方法.利用外腔反馈混沌半导体激光器作为物理熵源,通过时钟速率为7 GHz的多位模数转换器对其采样量化,生成6位有效位的二进制随机比特,然后利用现场可编程软件抽取低2位有效位的随机序列并进行自延迟异或处理,获得了实时速率为14 Gb/s的物理随机数.该随机数具有良好的统计随机性,可成功通过随机数行业测试标准(NIST SP 800-22).

关 键 词:半导体激光器  混沌激光  多位量化  物理随机数
收稿时间:2017-07-12

14-Gb/s physical random numbers generated in real time by using multi-bit quantization of chaotic laser
Wang Long-Sheng,Zhao Tong,Wang Da-Ming,Wu Dan-Yu,Zhou Lei,Wu Jin,Liu Xin-Yu,Wang An-Bang.14-Gb/s physical random numbers generated in real time by using multi-bit quantization of chaotic laser[J].Acta Physica Sinica,2017,66(23):234205-234205.
Authors:Wang Long-Sheng  Zhao Tong  Wang Da-Ming  Wu Dan-Yu  Zhou Lei  Wu Jin  Liu Xin-Yu  Wang An-Bang
Institution:1. Key Laboratory of Advanced Transducers and Intelligent Control System, Ministry of Education, Taiyuan University of Technology, Taiyuan 030024, China;2. Institute of Optoelectronic Engineering, College of Physics and Optoelectronics, Taiyuan University of Technology, Taiyuan 030024, China;3. Microwave Devices and Integrated Circuit Laboratory, Institute of Microelectronics of Chinese Academy of Sciences, Beijing 100029, China
Abstract:Real-time high-speed physical random numbers are crucial for a broad spectrum of applications in cryptography, communications as well as numerical computations and simulations.Chaotic laser is promising to construct high-speed physical random numbers in real time benefitting from its complex nonlinear dynamics.However,the real-time generation rate of physical random numbers by using single-bit extraction is confronted with a bottleneck because of the bandwidth limitation caused by laser relaxation,which dominates the laser chaos and then limits the effective bandwidth only to a few GHz.Although some bandwidth-enhanced methods have been proposed to increase the single-bit generation rate, the potential is very limited,and meanwhile the defects of system complexity will be introduced.
An alternative method is to construct high-speed physical random numbers by using the multi-bit extraction.In this method,each sampling point is converted to N digital bits by using multi-bit analog-to-digital converter (ADC) and their M(M 6 N) least significant bits are retained as an output of random bits,where N and M are the numbers of ADC bits and retained bits,respectively.The generation rate of random numbers is thus equal to M times sampling rate and can be greatly increased.Whereas,in the multi-bit extraction demonstrations,the intensity output of chaotic laser is usually digitized by the commercial oscilloscope and then processed with least-significant-bit retention followed by other postprocessing methods such as derivative,exclusive-OR,and bit-order reversal.These followed post-processing operations have to be implemented off-line and thus cannot support the real-time generation of random numbers.Resultantly,it is still an ongoing challenge to develop high-speed generation schemes of physical random numbers with the capability of real-time output.
In this paper,a real-time high-speed generation method of physical random numbers by using multi-bit quantization of chaotic laser is proposed and demonstrated experimentally.In the proposed generation scheme,an external-cavity feedback semiconductor laser is utilized as a source of chaotic laser.Through quantizing the chaotic laser with 6-bit ADC, which is triggered by a clock at a sampling rate of 7 GHz,a binary sequence with six significant bits can be achieved. After the selection of the two least-significant bits and self-delayed exclusive-OR operation in the field-programmable gate array (FPGA),a real-time 14-Gb/s binary stream is finally achieved.This binary stream has good uniformity and independence,and has passed the industry-standard statistical test suite provided by the National Institute of Standards and Technology (NIST),showing a good statistical randomness.It is believed that this work provides an alternative method of generating the real-time high-speed random numbers and promotes its applications in the field of information security.
Keywords:semiconductor laser  laser chaos  multi-bit quantization  physical random number
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