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Computational quantum-classical boundary of noisy commuting quantum circuits

机译:换相量子电路的计算量子经典边界

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摘要

It is often said that the transition from quantum to classical worlds is caused by decoherence originated from an interaction between a system of interest and its surrounding environment. Here we establish a computational quantum-classical boundary from the viewpoint of classical simulatability of a quantum system under decoherence. Specifically, we consider commuting quantum circuits being subject to decoherence. Or equivalently, we can regard them as measurement-based quantum computation on decohered weighted graph states. To show intractability of classical simulation in the quantum side, we utilize the postselection argument and crucially strengthen it by taking noise effect into account. Classical simulatability in the classical side is also shown constructively by using both separable criteria in a projected-entangled-pair-state picture and the Gottesman-Knill theorem for mixed state Clifford circuits. We found that when each qubit is subject to a single-qubit complete-positive-trace-preserving noise, the computational quantum-classical boundary is sharply given by the noise rate required for the distillability of a magic state. The obtained quantum-classical boundary of noisy quantum dynamics reveals a complexity landscape of controlled quantum systems. This paves a way to an experimentally feasible verification of quantum mechanics in a high complexity limit beyond classically simulatable region.
机译:人们常说,从量子世界到古典世界的转变是由退相干引起的,退相干源于感兴趣的系统与其周围环境之间的相互作用。在这里,我们从退相干下的量子系统的经典可模拟性的角度建立计算量子经典边界。具体而言,我们考虑对通量量子电路进行退相干。或等效地,我们可以将它们视为去相干加权图状态的基于测量的量子计算。为了在量子方面显示经典仿真的难处理性,我们利用了后选择参数,并通过考虑噪声效应对其进行了至关重要的增强。通过使用投影纠缠对状态图中的可分离准则和混合状态Clifford电路的Gottesman-Knill定理,还可以建设性地显示经典方面的经典可仿真性。我们发现,当每个量子位都承受单个量子位完整正迹线保留噪声时,计算量子经典边界将由魔术状态的可蒸馏性所需的噪声率急剧给出。所获得的嘈杂量子动力学的量子经典边界揭示了受控量子系统的复杂性。这为超越经典可模拟区域的高复杂度限制中的量子力学的实验可行性验证铺平了道路。

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