English

Semi-device-independent full randomness amplification based on energy bounds

Quantum Physics 2021-08-23 v1 Cryptography and Security

Abstract

Quantum Bell nonlocality allows for the design of protocols that amplify the randomness of public and arbitrarily biased Santha-Vazirani sources, a classically impossible task. Information-theoretical security in these protocols is certified in a device-independent manner, i.e. solely from the observed nonlocal statistics and without any assumption about the inner-workings of the intervening devices. On the other hand, if one is willing to trust on a complete quantum-mechanical description of a protocol's devices, the elementary scheme in which a qubit is alternatively measured in a pair of mutually unbiased bases is, straightforwardly, a protocol for randomness amplification. In this work, we study the unexplored middle ground. We prove that full randomness amplification can be achieved without requiring entanglement or a complete characterization of the intervening quantum states and measurements. Based on the energy-bounded framework introduced in [Van Himbeeck et al., Quantum 1, 33 (2017)], our prepare-and-measure protocol is able to amplify the randomness of any public Santha-Vazirani source, requiring the smallest number of inputs and outcomes possible and being secure against quantum adversaries.

Keywords

Cite

@article{arxiv.2108.09100,
  title  = {Semi-device-independent full randomness amplification based on energy bounds},
  author = {Gabriel Senno and Antonio Acín},
  journal= {arXiv preprint arXiv:2108.09100},
  year   = {2021}
}

Comments

arXiv admin note: text overlap with arXiv:1705.04148 by other authors

R2 v1 2026-06-24T05:16:47.668Z