量子隧道:从理论到减少误差的量子模拟

IF 4.3 Q1 OPTICS Advanced quantum technologies Pub Date : 2024-09-22 DOI:10.1002/qute.202400163
Sorana Catrina, Alexandra Băicoianu
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摘要

自从关于可能的量子计算机的讨论出现以来,量子模拟一直处于可能的实用程序的最前沿,量子模拟的任务是量子优势的一个承诺。最近,随着技术的进步,利用变分量子本征解来模拟复杂分子或研究多体自旋哈密顿量的动力学成为可能。这些模拟有可能通过应用错误缓解技术产生有价值的结果。模拟较小的模型也具有很大的重要性,目前,在有噪声的中尺度量子时代,由于不容易出错,因此更可行。这项工作的目的是研究量子隧道模拟的理论背景和电路实现,重点是硬件方面的考虑。本研究介绍了这种实施所需的理论背景,并突出了其发展的主要阶段。通过建立量子隧道模拟的经典方法,本研究旨在通过采用错误缓解技术、零噪声外推和读出错误缓解来改善这种模拟的结果,并将它们与量子芯片的多路编程结合使用,这是一种用于解决在这种情况下出现的硬件利用率不足问题的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Quantum Tunneling: From Theory to Error-Mitigated Quantum Simulation

Ever since the discussions about a possible quantum computer arised, quantum simulations have been at the forefront of possible utilities, with the task of quantum simulations being one that promises quantum advantage. Recently, advancements have made it feasible to simulate complex molecules using Variational Quantum Eigensolvers or study the dynamics of many-body spin Hamiltonians. These simulations have the potential to yield valuable outcomes through the application of error mitigation techniques. Simulating smaller models carries a great amount of importance as well and currently, in the Noisy Intermediate Scale Quantum era, is more feasible since it is less prone to errors. The objective of this work is to examine the theoretical background and the circuit implementation of a quantum tunneling simulation, with an emphasis on hardware considerations. This study presents the theoretical background required for such implementation and highlights the main stages of its development. By building on classic approaches of quantum tunneling simulations, this study aims at improving the result of such simulations by employing error mitigation techniques, Zero Noise Extrapolation, and Readout Error Mitigation and uses them in conjunction with multiprogramming of the quantum chip, a technique used for solving the hardware under-utilization problem that arises in such contexts.

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CiteScore
7.90
自引率
0.00%
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