4.7 Article

Experimental device-independent certified randomness generation with an instrumental causal structure

期刊

COMMUNICATIONS PHYSICS
卷 3, 期 1, 页码 -

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s42005-020-0375-6

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资金

  1. John Templeton Foundation via the grant Q-CAUSAL [61084]
  2. Ramon y Cajal fellowship, Spanish MINECO (Severo Ochoa) [SEV-2015-0522]
  3. Sao Paulo Research Foundation (FAPESP) [2016/01343-7, 2018/04208-9]
  4. Brazilian ministry CNPq [307172/2017-1, 406574/2018-9]
  5. Serrapilheira Institute [Serra-1708-15763]
  6. Brazilian agency CNPq (PQ grant) [305420/2018-6]
  7. Brazilian agency CNPq (INCT-IQ)
  8. Brazilian agency FAPERJ [JCNE E-26/202.701/2018]
  9. Brazilian agency CAPES (PROCAD2013 project)
  10. Brazilian agency Brazilian Serrapilheira Institute [Serra1709-17173]
  11. Fundacao de Amparo a Pesquisa do Estado de Sao Paulo (FAPESP) [16/01343-7] Funding Source: FAPESP

向作者/读者索取更多资源

The intrinsic random nature of quantum physics offers novel tools for the generation of random numbers, a central challenge for a plethora of fields. Bell non-local correlations obtained by measurements on entangled states allow for the generation of bit strings whose randomness is guaranteed in a device-independent manner, i.e. without assumptions on the measurement and state-generation devices. Here, we generate this strong form of certified randomness on a new platform: the so-called instrumental scenario, which is central to the field of causal inference. First, we theoretically show that certified random bits, private against general quantum adversaries, can be extracted exploiting device-independent quantum instrumental-inequality violations. Then, we experimentally implement the corresponding randomness-generation protocol using entangled photons and active feed-forward of information. Moreover, we show that, for low levels of noise, our protocol offers an advantage over the simplest Bell-nonlocality protocol based on the Clauser-Horn-Shimony-Holt inequality. Random number generation has applications spanning several sectors, from scientific research to cryptography, with the intrinsic random nature of quantum physics allows to obtain truly random sequences. The authors present a proof-of principle implementation of a device-independent random number generator protocol, whose effectiveness is certified by quantum instrumental correlations, which also ensures privacy with respect to any quantum adversarial attack.

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