<p>Although quantum computers can perform a wide range of practically important tasks beyond the abilities of classical computers<sup><CitationRef CitationID="CR1">1</CitationRef>,<CitationRef CitationID="CR2">2</CitationRef></sup>, realizing this potential remains a challenge. An example is to use an untrusted remote device to generate random bits that can be certified to contain a certain amount of entropy<sup><CitationRef CitationID="CR3">3</CitationRef></sup>. Certified randomness has many applications but is impossible to achieve solely by classical computation. Here we demonstrate the generation of certifiably random bits using the 56-qubit Quantinuum H2-1 trapped-ion quantum computer accessed over the Internet. Our protocol leverages the classical hardness of recent random circuit sampling demonstrations<sup><CitationRef CitationID="CR4">4</CitationRef>,<CitationRef CitationID="CR5">5</CitationRef></sup>: a client generates quantum ‘challenge’ circuits using a small randomness seed, sends them to an untrusted quantum server to execute and verifies the results of the server. We analyse the security of our protocol against a restricted class of realistic near-term adversaries. Using classical verification with measured combined sustained performance of 1.1 × 10<sup>18</sup> floating-point operations per second across multiple supercomputers, we certify 71,313 bits of entropy under this restricted adversary and additional assumptions. Our results demonstrate a step towards the practical applicability of present-day quantum computers.</p>

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Certified randomness using a trapped-ion quantum processor

  • Minzhao Liu,
  • Ruslan Shaydulin,
  • Pradeep Niroula,
  • Matthew DeCross,
  • Shih-Han Hung,
  • Wen Yu Kon,
  • Enrique Cervero-Martín,
  • Kaushik Chakraborty,
  • Omar Amer,
  • Scott Aaronson,
  • Atithi Acharya,
  • Yuri Alexeev,
  • K. Jordan Berg,
  • Shouvanik Chakrabarti,
  • Florian J. Curchod,
  • Joan M. Dreiling,
  • Neal Erickson,
  • Cameron Foltz,
  • Michael Foss-Feig,
  • David Hayes,
  • Travis S. Humble,
  • Niraj Kumar,
  • Jeffrey Larson,
  • Danylo Lykov,
  • Michael Mills,
  • Steven A. Moses,
  • Brian Neyenhuis,
  • Shaltiel Eloul,
  • Peter Siegfried,
  • James Walker,
  • Charles Lim,
  • Marco Pistoia

摘要

Although quantum computers can perform a wide range of practically important tasks beyond the abilities of classical computers1,2, realizing this potential remains a challenge. An example is to use an untrusted remote device to generate random bits that can be certified to contain a certain amount of entropy3. Certified randomness has many applications but is impossible to achieve solely by classical computation. Here we demonstrate the generation of certifiably random bits using the 56-qubit Quantinuum H2-1 trapped-ion quantum computer accessed over the Internet. Our protocol leverages the classical hardness of recent random circuit sampling demonstrations4,5: a client generates quantum ‘challenge’ circuits using a small randomness seed, sends them to an untrusted quantum server to execute and verifies the results of the server. We analyse the security of our protocol against a restricted class of realistic near-term adversaries. Using classical verification with measured combined sustained performance of 1.1 × 1018 floating-point operations per second across multiple supercomputers, we certify 71,313 bits of entropy under this restricted adversary and additional assumptions. Our results demonstrate a step towards the practical applicability of present-day quantum computers.