English

Real-Time Source Independent Quantum Random Number Generator with Squeezed States

Quantum Physics 2019-09-18 v1

Abstract

Random numbers are a fundamental ingredient for many applications including simulation, modelling and cryptography. Sound random numbers should be independent and uniformly distributed. Moreover, for cryptographic applications they should also be unpredictable. We demonstrate a real-time self-testing source independent quantum random number generator (QRNG) that uses squeezed light as source. We generate secure random numbers by measuring the quadratures of the electromagnetic field without making any assumptions on the source; only the detection device is trusted. We use a homodyne detection to alternatively measure the Q and P conjugate quadratures of our source. Using the entropic uncertainty relation, measurements on P allow us to estimate a bound on the min-entropy of Q conditioned on any classical or quantum side information that a malicious eavesdropper may detain. This bound gives the minimum number of secure bits we can extract from the Q measurement. We discuss the performance of different estimators for this bound. We operate this QRNG with a squeezed state and we compare its performance with a QRNG using thermal states. The real-time bit rate was 8.2 kb/s when using the squeezed source and between 5.2-7.2 kb/s when the thermal state source was used.

Keywords

Cite

@article{arxiv.1903.01071,
  title  = {Real-Time Source Independent Quantum Random Number Generator with Squeezed States},
  author = {Thibault Michel and Jing Yan Haw and Davide G. Marangon and Oliver Thearle and Giuseppe Vallone and Paolo Villoresi and Ping Koy Lam and Syed M. Assad},
  journal= {arXiv preprint arXiv:1903.01071},
  year   = {2019}
}

Comments

11 pages, 9 figures

R2 v1 2026-06-23T07:57:05.412Z