远程超导量子比特系统的完整自我测试
Simon Storz1,2, Anatoly Kulikov1,2, Josua D Schär1,2
1ETH Zurich, Department of Physics, 8093 Zurich, Switzerland.
Physical review letters
|August 4, 2025
概括
我们展示了使用超导电路的量子系统的设备独立自我测试. 这允许对量子计算硬件进行安全的表征,而不需要知道其内部运作.
科学领域:
- 量子信息科学 量子信息科学
- 超导量子计算 超导量子计算
- 独立于设备的量子信息.
背景情况:
- 自行测试协议提供了量子系统的设备独立认证.
- 超导电路是量子计算的领先平台.
研究的目的:
- 开发和演示超导电路的设备独立的自我测试协议.
- 为了能够在没有内部知识的情况下对量子硬件进行强有力的表征.
主要方法:
- 开发了用于自我测试保利测量的理论框架.
- 执行了同时对贝尔对生成和对纠超导电路进行测量的自我测试.
- 在距离30米的电路上进行了1700万次试验.
主要成果:
- 获得了克劳泽-霍恩-西蒙尼-霍尔特 (CHSH) 的平均S值2.236.
- 经过认证的平均贝尔状态忠实度至少为58.9% (99%的信心).
- 经过认证的平均测量准确度至少为89.5% (99%的可靠性).
结论:
- 成功演示了对超导量子系统的设备独立自测.
- 在实践环境中建立了量子表征的高标准.
- 开辟了安全分布式量子计算和通信的途径.
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