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A Study on Fast Gates for Large-Scale Quantum Simulation with Trapped Ions

机译:捕获离子大规模量子仿真快速栅极的研究

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摘要

Large-scale digital quantum simulations require thousands of fundamental entangling gates to construct the simulated dynamics. Despite success in a variety of small-scale simulations, quantum information processing platforms have hitherto failed to demonstrate the combination of precise control and scalability required to systematically outmatch classical simulators. We analyse how fast gates could enable trapped-ion quantum processors to achieve the requisite scalability to outperform classical computers without error correction. We analyze the performance of a large-scale digital simulator, and find that fidelity of around 70% is realizable for π-pulse infidelities below 10?5 in traps subject to realistic rates of heating and dephasing. This scalability relies on fast gates: entangling gates faster than the trap period.
机译:大规模数字量子模拟需要数千个基本的纠缠栅极来构造模拟动态。尽管在各种小规模模拟中取得了成功,但迄今为止,Quantum信息处理平台未能证明系统地偶算经典模拟器所需的精确控制和可扩展性的结合。我们分析快速门可以使陷阱离子量子处理器能够实现必要的可扩展性,以优于卓越的经典计算机而无需纠错。我们分析了大规模的数字模拟器的性能,发现大约70%的保真度可实现在10?5的陷阱低于10?5的捕捉情况下,以达到逼真的加热和脱离的速率。这种可扩展性依赖于快速栅极:缠绕栅栏比陷阱周期快。

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