利用动态电路实现高效远距离纠缠

Elisa Bäumer, Vinay Tripathi, Derek S. Wang, Patrick Rall, Edward H. Chen, Swarnadeep Majumder, Alireza Seif, Zlatko K. Minev
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引用次数: 0

摘要

量子模拟传统上依赖于单元动力学,这对复杂纠缠态的生成造成了固有的效率限制。原则上,这些限制可以被非单元动态电路所取代。这些电路利用测量和条件前馈操作,为远距离纠缠门、提高近期硬件的有效连接性和更高效的状态准备提供了一种前景广阔的方法。在这里,我们探讨了浅层动态电路在大规模量子设备上创建长程纠缠的实用性。具体来说,我们研究了两项任务:通过前馈 99 个中级电路测量结果,在多达 101 个量子比特之间实现受控-非门远距传输,以及制备具有真正纠缠的格林伯格-霍恩-蔡林格状态。在前者中,我们观察到动态电路的性能优于单元电路。在后者中,通过统计编译量子电路的指令,我们提供了误差预算,详细说明了释放动态电路全部潜力所必须解决的障碍。展望未来,我们希望动态电路能在短期内在大规模量子设备上产生长程纠缠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient Long-Range Entanglement Using Dynamic Circuits

Efficient Long-Range Entanglement Using Dynamic Circuits
Quantum simulation traditionally relies on unitary dynamics, inherently imposing efficiency constraints on the generation of intricate entangled states. In principle, these limitations can be superseded by nonunitary, dynamic circuits. These circuits exploit measurements alongside conditional feed-forward operations, providing a promising approach for long-range entangling gates, higher effective connectivity of near-term hardware, and more efficient state preparations. Here, we explore the utility of shallow dynamic circuits for creating long-range entanglement on large-scale quantum devices. Specifically, we study two tasks: controlled-not gate teleportation between up to 101 qubits by feeding forward 99 midcircuit measurement outcomes, and the preparation of Greenberger–Horne–Zeilinger states with genuine entanglement. In the former, we observe that dynamic circuits can outperform their unitary counterparts. In the latter, by tallying instructions of compiled quantum circuits, we provide an error budget detailing the obstacles that must be addressed to unlock the full potential of dynamic circuits. Looking forward, we expect dynamic circuits to be useful for generating long-range entanglement in the near term on large-scale quantum devices.
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