Improving randomness characterization through Bayesian model selection
Autor: | Alfred B. U'Ren, Jorge G. Hirsch, Matteo Marsili, Alí M Angulo Martínez, Rafael Díaz Hernández Rojas, Isaac Pérez Castillo, Aldo Solis |
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Jazyk: | angličtina |
Rok vydání: | 2017 |
Předmět: |
model selection
Computer science Random number generation Science Bayesian inference Posterior probability Monte Carlo method FOS: Physical sciences 01 natural sciences Article 010305 fluids & plasmas 010104 statistics & probability 0103 physical sciences Test suite cryptography random number generators Probabilistic analysis of algorithms 0101 mathematics Hardware random number generator Condensed Matter - Statistical Mechanics Randomness Parametric statistics Quantum Physics Multidisciplinary Statistical Mechanics (cond-mat.stat-mech) Probability and statistics Physics - Data Analysis Statistics and Probability Medicine Quantum Physics (quant-ph) Algorithm Data Analysis Statistics and Probability (physics.data-an) |
Zdroj: | Scientific Reports, Vol 7, Iss 1, Pp 1-6 (2017) Scientific Reports |
ISSN: | 2045-2322 |
Popis: | Nowadays random number generation plays an essential role in technology with important applications in areas ranging from cryptography, which lies at the core of current communication protocols, to Monte Carlo methods, and other probabilistic algorithms. In this context, a crucial scientific endeavour is to develop effective methods that allow the characterization of random number generators. However, commonly employed methods either lack formality (e.g. the NIST test suite), or are inapplicable in principle (e.g. the characterization derived from the Algorithmic Theory of Information (ATI)). In this letter we present a novel method based on Bayesian model selection, which is both rigorous and effective, for characterizing randomness in a bit sequence. We derive analytic expressions for a model's likelihood which is then used to compute its posterior probability distribution. Our method proves to be more rigorous than NIST's suite and the Borel-Normality criterion and its implementation is straightforward. We have applied our method to an experimental device based on the process of spontaneous parametric downconversion, implemented in our laboratory, to confirm that it behaves as a genuine quantum random number generator (QRNG). As our approach relies on Bayesian inference, which entails model generalizability, our scheme transcends individual sequence analysis, leading to a characterization of the source of the random sequences itself. 25 pages |
Databáze: | OpenAIRE |
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