DocumentCode
53023
Title
Performance of Random Number Generators Using Noise-Based Superluminescent Diode and Chaos-Based Semiconductor Lasers
Author
Yamazaki, Tsutomu ; Uchida, Akira
Author_Institution
Dept. of Inf. & Comput. Sci., Saitama Univ., Saitama, Japan
Volume
19
Issue
4
fYear
2013
fDate
July-Aug. 2013
Abstract
We investigate two optical sources used for random number generation: superluminescent diode (SLD) and semiconductor lasers. Amplified spontaneous emission noise is generated in the SLD and chaotic intensity fluctuation is generated in a semiconductor laser. We investigate the performance of random number generation for both optical sources. For single-bit generation of random numbers, the maximum generation rate is 8.33 Gb/s for both the SLD and the laser with a similar bandwidth of ~15 GHz. For multibit generation schemes, we obtain the generation rate up to 400 Gb/s for both the SLD and the laser. The overall characteristics are similar between the SLD and the laser, since similar bandwidths of the RF spectra are used. The probability density function of the SLD is more symmetric than that of the chaotic laser. This fact results in slightly good performance of random number generation using the SLD for multibit generation.
Keywords
fluctuations; optical chaos; probability; random number generation; semiconductor lasers; superluminescent diodes; superradiance; SLD; amplified spontaneous emission noise; bit rate 8.33 Gbit/s; chaos-based semiconductor lasers; chaotic intensity fluctuation; chaotic laser; multibit generation schemes; noise-based superluminescent diode; optical sources; probability density function; random number generation; random number generators; Bandwidth; Fiber lasers; NIST; Optical amplifiers; Optical fibers; Semiconductor lasers; Superluminescent diodes; Chaos; information technology; noise; random number generation; semiconductor laser; superluminescent diode (SLD);
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2013.2246777
Filename
6461045
Link To Document