论文标题

将HHL算法适应量子多体理论

Adapting the HHL algorithm to quantum many-body theory

论文作者

Baskaran, Nishanth, Rawat, Abhishek Singh, Jayashankar, Akshaya, Chakravarti, Dibyajyoti, Sugisaki, K., Roy, Shibdas, Mandal, Sudhindu Bikash, Mukherjee, D., Prasannaa, V. S.

论文摘要

在开发量子化学的近期和长期量子算法方面的快速进步为我们提供了超越传统方法的动力,并探索将量子计算应用于电子结构计算的新方法。在这项工作中,我们确定了量子多体理论与量子线性求解器之间的联系,并实现了Harrow-Hassidim-lloyd(HHL)算法,以通过(非独立)线性化的造成簇理论对光分子系统的相关能量进行精确预测。我们更改HHL算法以整合两个新颖的方面 - (a)我们开出了一种新颖的缩放方法,该方法允许一个人缩放任何任意的对称阳性确定的确定矩阵A,以求解AX = B并以合理的精度实现X,所有这些都不需要在不必计算A的特征能量的情况下降低整体电池的civiver decterciver cowerd courcive depterciver cowerd courvive deplaucive。在这种情况下,我们介绍了HHL的以下变体,以针对其适当形式的量子计算时代,以适当的形式用于嘈杂的中间量表量子(NISQ),nisq晚期和早期耐断层耐受耐受性的时代,以及用于承重量子计算时代的ADAPTHHL。我们使用仿真以及11 Q量的IONQ量子硬件,证明了Adapthhlite的NISQ变体精确地捕获相关能量的能力,同时又是资源倾向。

Rapid progress in developing near- and long-term quantum algorithms for quantum chemistry has provided us with an impetus to move beyond traditional approaches and explore new ways to apply quantum computing to electronic structure calculations. In this work, we identify the connection between quantum many-body theory and a quantum linear solver, and implement the Harrow-Hassidim-Lloyd (HHL) algorithm to make precise predictions of correlation energies for light molecular systems via the (non-unitary) linearised coupled cluster theory. We alter the HHL algorithm to integrate two novel aspects- (a) we prescribe a novel scaling approach that allows one to scale any arbitrary symmetric positive definite matrix A, to solve for Ax = b and achieve x with reasonable precision, all the while without having to compute the eigenvalues of A, and (b) we devise techniques that reduce the depth of the overall circuit. In this context, we introduce the following variants of HHL for different eras of quantum computing- AdaptHHLite in its appropriate forms for noisy intermediate scale quantum (NISQ), late-NISQ, and the early fault-tolerant eras, as well as AdaptHHL for the fault-tolerant quantum computing era. We demonstrate the ability of the NISQ variant of AdaptHHLite to capture correlation energy precisely, while simultaneously being resource-lean, using simulation as well as the 11-qubit IonQ quantum hardware.

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