论文标题
费米量子模拟的应用基准
An application benchmark for fermionic quantum simulations
论文作者
论文摘要
预计化学和材料科学中相关的费米子的模拟将是量子处理器的第一个实际应用之一。鉴于量子硬件的快速演变,开发可靠的基准测量技术来评估专门用于费米子模拟目的的量子硬件的能力变得越来越重要。在这里,我们建议使用一维费米 - 哈伯德模型作为近期量子设备上变异量子模拟的应用基准。由于一维Hubbard模型既密切相关又与Bethe Ansatz完全溶解,因此它提供了参考基态能量,具有有限连贯性的给定设备将能够近似于最大尺寸。可以模拟的最大链的长度提供了有效的费米子长度。我们使用各种量子本质量器来近似费米 - 哈伯德实例的基态能量值,并展示如何在实践中使用费米金长度基准来评估以可扩展方式评估有界深度设备的性能。
It is expected that the simulation of correlated fermions in chemistry and material science will be one of the first practical applications of quantum processors. Given the rapid evolution of quantum hardware, it is increasingly important to develop robust benchmarking techniques to gauge the capacity of quantum hardware specifically for the purpose of fermionic simulation. Here we propose using the one-dimensional Fermi-Hubbard model as an application benchmark for variational quantum simulations on near-term quantum devices. Since the one-dimensional Hubbard model is both strongly correlated and exactly solvable with the Bethe ansatz, it provides a reference ground state energy that a given device with limited coherence will be able to approximate up to a maximal size. The length of the largest chain that can be simulated provides an effective fermionic length. We use variational quantum eigensolver to approximate the ground state energy values of Fermi-Hubbard instances and show how the fermionic length benchmark can be used in practice to assess the performance of bounded-depth devices in a scalable fashion.