云量子计算机上的延迟测量单向量子计算

Zhi-Peng Yang, Yu-Ran Zhang, Fu-Li Li, Heng Fan
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引用次数: 0

摘要

单向量子计算的重点是最初生成一个纠缠簇状态,然后进行一连串测量,并对各自的测量结果进行经典通信。最近,一种延迟测量方法被用于取代单个测量结果的经典通信。在这项工作中,通过考虑延迟测量方法,我们利用云上超导量子计算平台展示了一种改进的单向 CNOT 门:Quafu。修改后的单向量子计算协议只需要三个量子比特,而不是标准协议中使用的四个量子比特。由于这种修改后的簇态减少了实现单向计算所需的物理量子比特数量,因此计算过程的可扩展性和复杂性都得到了改善。与之前的工作相比,这种改进的单向 CNOT 门在保真度和资源需求方面都优于标准门。我们还在数值上比较了标准方法和改进方法在大规模单向量子计算中的表现。我们的结果表明,在嘈杂的中尺度量子(NISQ)时代,改进后的方法在单向量子计算中显示出显著优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Delayed-measurement one-way quantum computing on cloud quantum computer
One-way quantum computation focuses on initially generating an entangled cluster state followed by a sequence of measurements with classical communication of their individual outcomes. Recently, a delayed-measurement approach has been applied to replace classical communication of individual measurement outcomes. In this work, by considering the delayed-measurement approach, we demonstrate a modified one-way CNOT gate using the on-cloud superconducting quantum computing platform: Quafu. The modified protocol for one-way quantum computing requires only three qubits rather than the four used in the standard protocol. Since this modified cluster state decreases the number of physical qubits required to implement one-way computation, both the scalability and complexity of the computing process are improved. Compared to previous work, this modified oneway CNOT gate is superior to the standard one in both fidelity and resource requirements. We have also numerically compared the behavior of standard and modified methods in large-scale one-way quantum computing. Our results suggest that in a noisy intermediate-scale quantum (NISQ) era, the modified method shows a significant advantage for one-way quantum computation.
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