概括
我们使用超导处理器的表面代码来演示低于临界值的量子错误校正. 通过抑制逻辑错误率和延长量子比特寿命,
科学领域:
- 量子计算
- 量子错误纠正
- 超导处理器
背景情况:
- 量子错误纠正对于实际的量子计算至关重要,使得逻辑量子比特具有抑制的错误率.
- 指数式错误抑制需要物理错误率低于关键值.
研究的目的:
- 在新一代超导处理器上使用表面代码来呈现低于值的量子错误校正.
- 通过实时解码来展示距离-7和距离-5代码的性能.
主要方法:
- 在Willow超导处理器上实现两个下值的表面代码内存 (距离-7和距离-5).
- 一个实时解码器的集成距离-5代码.
- 测试到距离29的重复码.
主要成果:
- 一个距离-7的代码实现了2.14 ± 0.02的逻辑错误率抑制系数.
- 每个101-量子位距离-7代码的错误率为0.143%±0.003%.
- 逻辑内存超过了物理量子位的寿命2.4±0.3倍.
- 实时解码实现了距离5的平均延迟时间63微秒.
- 到距离29的重复代码受到罕见的相关错误的限制.
结论:
- 量子内存的运行超出了平衡点, 超过了物理量子比特性能.
- 通过实时解码保持低于值的性能, 这对于可扩展的量子计算至关重要.
- 这些结果显示了实现大规模容错量子算法的潜力.
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