论文标题

在逼真的噪声模型下使用旋转的表面代码校正量子误差的模拟和性能分析

Simulation and performance analysis of quantum error correction with a rotated surface code under a realistic noise model

论文作者

Katsuda, Mitsuki, Mitarai, Kosuke, Fujii, Keisuke

论文摘要

量子误差校正(QEC)的演示是实现成熟量子计算机的最重要里程碑之一。为此,最近已经积极地进行了使用表面代码的QEC实验。但是,尚未意识到,在物理连贯时间之外保护逻辑量子信息。在这项工作中,我们对具有代码距离5的旋转表面代码进行了QEC的完整模拟,该代码使用了49个QUAT,并且在当前最新量子计算机的范围内。特别是,我们在现实的噪声模型中评估了逻辑误差概率,该模型不仅包含了随机的Pauli误差,还包括由于系统的控制误差或意外相互作用而导致的连贯误差。虽然在合理的计算时间内不可触犯49个Qubit的直接模拟,但我们通过延迟模拟中的综合征测量值来减少26个Qubit所需的量子数。在GPU上实现的此和快速的量子计算机模拟器Qulacs使我们能够在合理的模拟时间内用任意本地噪声模拟完整的QEC。基于数值结果,我们还构建和验证了一个有效模型,将相干误差的效果纳入随机噪声模型。这使我们能够理解基于小规模的详细完整模拟,而无需完整的模拟,相干误差对逻辑误差概率的效果对逻辑错误概率有什么影响。当前的仿真框架和可以处理任意局部噪声的有效模型将在阐明未来实验QEC目标的物理参数方面发挥至关重要的作用。

The demonstration of quantum error correction (QEC) is one of the most important milestones in the realization of fully-fledged quantum computers. Toward this, QEC experiments using the surface codes have recently been actively conducted. However, it has not yet been realized to protect logical quantum information beyond the physical coherence time. In this work, we performed a full simulation of QEC for the rotated surface codes with a code distance 5, which employs 49 qubits and is within reach of the current state-of-the-art quantum computers. In particular, we evaluate the logical error probability in a realistic noise model that incorporates not only stochastic Pauli errors but also coherent errors due to a systematic control error or unintended interactions. While a straightforward simulation of 49 qubits is not tractable within a reasonable computational time, we reduced the number of qubits required to 26 qubits by delaying the syndrome measurement in simulation. This and a fast quantum computer simulator, Qulacs, implemented on GPU allows us to simulate full QEC with an arbitrary local noise within reasonable simulation time. Based on the numerical results, we also construct and verify an effective model to incorporate the effect of the coherent error into a stochastic noise model. This allows us to understand what the effect coherent error has on the logical error probability on a large scale without full simulation based on the detailed full simulation of a small scale. The present simulation framework and effective model, which can handle arbitrary local noise, will play a vital role in clarifying the physical parameters that future experimental QEC should target.

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