论文标题

量子容忍阈值的光学演示

Optical demonstration of quantum fault-tolerant threshold

论文作者

Sun, Kai, Xu, Jin-Shi, Xu, Xiao-Ye, Han, Yong-Jian, Li, Chuan-Feng, Guo, Guang-Can

论文摘要

实际量子计算中的一个主要挑战是量子系统与环境的相互作用引起的不可避免的错误。耐故障方案,其中逻辑Qubits由几个物理Qubits编码,在存在错误的情况下可以正确输出逻辑Qubits。但是,即使对于可实现的嘈杂的中间尺度量子技术,对量子台和操作员进行编码的严格要求也使实施全故障计算具有挑战性。在这里,我们通过实验证明了特殊容忍断层方案中阈值的存在。使用16个光空间模式实现了四个物理量子位,其中8个模式用于编码两个逻辑Qubit。实验结果清楚地表明,当错误率低于阈值时,用容忍故障的门形成的正确输出的概率高于相应的非编码电路中的概率。相比之下,当错误率高于阈值时,在容忍故障的实现中未观察到任何优势。开发的高准确光学系统可能会提供一个可靠的平台,以研究具有耐断层门更复杂的电路中的错误传播。

A major challenge in practical quantum computation is the ineludible errors caused by the interaction of quantum systems with their environment. Fault-tolerant schemes, in which logical qubits are encoded by several physical qubits, enable correct output of logical qubits under the presence of errors. However, strict requirements to encode qubits and operators render the implementation of a full fault-tolerant computation challenging even for the achievable noisy intermediate-scale quantum technology. Here, we experimentally demonstrate the existence of the threshold in a special fault-tolerant protocol. Four physical qubits are implemented using 16 optical spatial modes, in which 8 modes are used to encode two logical qubits. The experimental results clearly show that the probability of correct output in the circuit, formed with fault-tolerant gates, is higher than that in the corresponding non-encoded circuit when the error rate is below the threshold. In contrast, when the error rate is above the threshold, no advantage is observed in the fault-tolerant implementation. The developed high-accuracy optical system may provide a reliable platform to investigate error propagation in more complex circuits with fault-tolerant gates.

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