DocumentCode
110978
Title
Fast Random Bit Generation Using a Chaotic Laser: Approaching the Information Theoretic Limit
Author
Oliver, Nuria ; Cornelles Soriano, Miguel ; Sukow, D.W. ; Fischer, I.
Author_Institution
Inst. de Fis. Interdisciplinar y Sist. Complejos, Palma de Mallorca, Spain
Volume
49
Issue
11
fYear
2013
fDate
Nov. 2013
Firstpage
910
Lastpage
918
Abstract
We design and implement a chaotic-based system, enabling ultra-fast random bit sequence generation. The potential of this system to realize bit rates of 160 Gb/s for 8-bit digitization and 480 Gb/s for 16-bit digitization is demonstrated. In addition, we provide detailed insight into the interplay of dynamical properties, acquisition conditions, and post-processing, using simple and robust procedures. We employ the chaotic output of a semiconductor laser subjected to polarization-rotated feedback. We show that not only dynamics affect the randomness of the bits, but also the digitization conditions and postprocessing must be considered for successful random bit generation. Applying these general guidelines, extensible to other chaos-based systems, we can define the optimal conditions for random bit generation. We experimentally demonstrate the relevance of these criteria by extending the bit rate of our random bit generator by about two orders of magnitude. Finally, we discuss the information theoretic limits, showing that following our approach we reach the maximum possible generation rate.
Keywords
laser feedback; light polarisation; optical chaos; random number generation; random sequences; semiconductor lasers; 16-bit digitization; 8-bit digitization; acquisition conditions; bit rate 160 Gbit/s; bit rate 480 Gbit/s; bit rates; chaotic laser; chaotic output; chaotic-based system; dynamical properties; information theoretic limit; polarization-rotated feedback; semiconductor laser; ultrafast random bit sequence generation; Chaos; Correlation; Laser feedback; Laser theory; Optical attenuators; Optical feedback; Semiconductor lasers; Chaos; information technology; random number generation; semiconductor lasers;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2013.2280917
Filename
6589109
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