Trivedi Rahul, Franco Rubio Adrian, Cirac J Ignacio
Max-Planck-Institut für Quantenoptik, Garching, Germany.
Munich Center for Quantum Science and Technology (MCQST), Munich, Germany.
Nat Commun. 2024 Aug 2;15(1):6507. doi: 10.1038/s41467-024-50750-x.
Several quantum hardware platforms, while being unable to perform fully fault-tolerant quantum computation, can still be operated as analogue quantum simulators for addressing many-body problems. However, due to the presence of errors, it is not clear to what extent those devices can provide us with an advantage with respect to classical computers. In this work, we make progress on this problem for noisy analogue quantum simulators computing physically relevant properties of many-body systems both in equilibrium and undergoing dynamics. We first formulate a system-size independent notion of stability against extensive errors, which we prove for Gaussian fermion models, as well as for a restricted class of spin systems. Remarkably, for the Gaussian fermion models, our analysis shows the stability of critical models which have long-range correlations. Furthermore, we analyze how this stability may lead to a quantum advantage, for the problem of computing the thermodynamic limit of many-body models, in the presence of a constant error rate and without any explicit error correction.
几个量子硬件平台虽然无法执行完全容错的量子计算,但仍可作为模拟量子模拟器来处理多体问题。然而,由于存在误差,尚不清楚这些设备相对于经典计算机能在多大程度上为我们提供优势。在这项工作中,我们针对有噪声的模拟量子模拟器在计算处于平衡态和动态变化的多体系统的物理相关性质方面的这一问题取得了进展。我们首先针对广泛误差制定了一个与系统规模无关的稳定性概念,我们证明了高斯费米子模型以及一类受限的自旋系统具有这种稳定性。值得注意的是,对于高斯费米子模型,我们的分析表明具有长程关联的临界模型具有稳定性。此外,我们分析了在存在恒定错误率且没有任何显式纠错的情况下,这种稳定性如何可能导致在计算多体模型的热力学极限问题上的量子优势。