Benchmarking highly entangled states on a 60-atom analogue quantum simulator
成果类型:
Article
署名作者:
Shaw, Adam L.; Chen, Zhuo; Choi, Joonhee; Mark, Daniel K.; Scholl, Pascal; Finkelstein, Ran; Elben, Andreas; Choi, Soonwon; Endres, Manuel
署名单位:
California Institute of Technology; Massachusetts Institute of Technology (MIT); Stanford University
刊物名称:
Nature
ISSN/ISSBN:
0028-3735
DOI:
10.1038/s41586-024-07173-x
发表日期:
2024-04-04
页码:
71-77
关键词:
erasure conversion
supremacy
entropy
摘要:
Quantum systems have entered a competitive regime in which classical computers must make approximations to represent highly entangled quantum states(1,2). However, in this beyond-classically-exact regime, fidelity comparisons between quantum and classical systems have so far been limited to digital quantum devices(2-5), and it remains unsolved how to estimate the actual entanglement content of experiments(6). Here, we perform fidelity benchmarking and mixed-state entanglement estimation with a 60-atom analogue Rydberg quantum simulator, reaching a high-entanglement entropy regime in which exact classical simulation becomes impractical. Our benchmarking protocol involves extrapolation from comparisons against an approximate classical algorithm, introduced here, with varying entanglement limits. We then develop and demonstrate an estimator of the experimental mixed-state entanglement(6), finding our experiment is competitive with state-of-the-art digital quantum devices performing random circuit evolution(2-5). Finally, we compare the experimental fidelity against that achieved by various approximate classical algorithms, and find that only the algorithm we introduce is able to keep pace with the experiment on the classical hardware we use. Our results enable a new model for evaluating the ability of both analogue and digital quantum devices to generate entanglement in the beyond-classically-exact regime, and highlight the evolving divide between quantum and classical systems.
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