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经典优化器和量子近似优化算法(QAOA)深度对噪声设备中QAOA性能的影响。

The effect of classical optimizers and Ansatz depth on QAOA performance in noisy devices.

作者信息

Pellow-Jarman Aidan, McFarthing Shane, Sinayskiy Ilya, Park Daniel K, Pillay Anban, Petruccione Francesco

机构信息

Qunova Computing Inc, Daejeon, 34051, South Korea.

School of Mathematics, Statistics & Computer Science, University of KwaZulu-Natal, Durban, 4001, South Africa.

出版信息

Sci Rep. 2024 Jul 11;14(1):16011. doi: 10.1038/s41598-024-66625-6.

Abstract

The Quantum Approximate Optimization Algorithm (QAOA) is a variational quantum algorithm for Near-term Intermediate-Scale Quantum computers (NISQ) providing approximate solutions for combinatorial optimization problems. The QAOA utilizes a quantum-classical loop, consisting of a quantum ansatz and a classical optimizer, to minimize some cost function, computed on the quantum device. This paper presents an investigation into the impact of realistic noise on the classical optimizer and the determination of optimal circuit depth for the Quantum Approximate Optimization Algorithm (QAOA) in the presence of noise. We find that, while there is no significant difference in the performance of classical optimizers in a state vector simulation, the Adam and AMSGrad optimizers perform best in the presence of shot noise. Under the conditions of real noise, the SPSA optimizer, along with ADAM and AMSGrad, emerge as the top performers. The study also reveals that the quality of solutions to some 5 qubit minimum vertex cover problems increases for up to around six layers in the QAOA circuit, after which it begins to decline. This analysis shows that increasing the number of layers in the QAOA in an attempt to increase accuracy may not work well in a noisy device.

摘要

量子近似优化算法(QAOA)是一种用于近期中等规模量子计算机(NISQ)的变分量子算法,为组合优化问题提供近似解。QAOA利用一个量子-经典循环,该循环由一个量子近似和一个经典优化器组成,以最小化在量子设备上计算的某个代价函数。本文研究了实际噪声对经典优化器的影响,以及在存在噪声的情况下确定量子近似优化算法(QAOA)的最优电路深度。我们发现,虽然在态矢模拟中经典优化器的性能没有显著差异,但Adam和AMSGrad优化器在存在散粒噪声的情况下表现最佳。在实际噪声条件下,SPSA优化器与ADAM和AMSGrad一起成为表现最佳的优化器。该研究还表明,对于一些5比特最小顶点覆盖问题,QAOA电路中多达六层时解的质量会提高,之后开始下降。该分析表明,在有噪声的设备中,试图通过增加QAOA中的层数来提高精度可能效果不佳。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45d6/11239845/932170b71d06/41598_2024_66625_Fig1_HTML.jpg

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