论文标题

关于连通性依赖性资源要求,用于数字量子模拟$ d $级粒子

On connectivity-dependent resource requirements for digital quantum simulation of $d$-level particles

论文作者

Sawaya, Nicolas P. D., Guerreschi, Gian Giacomo, Holmes, Adam

论文摘要

量子计算的主要目的是有效模拟量子物理。科学和技术上重要的量子汉密尔顿人包括那些具有旋转$ s $,振动,光子和其他波音自由度的量子,即由$ d $级别粒子(qudits)组成或近似的问题。最近,已经引入了几种将这些系统编码编码为一组Qubits的方法,其中每个编码的效率均已根据量子和栅极计数进行了研究。在这里,我们通过包括硬件连接性的效果来建立以前的结果。为了研究将常用量子运算符的掉期交换门的数量,我们同时使用分析论证和自动工具来在多个阶段优化时间表。我们研究了一个(或一hot),灰色,标准二进制和块的单位编码,具有三个连接性:线性阵列,梯形阵列和方格网格。在其他趋势中,我们发现,虽然梯阵列对线性阵列提高了效率,但正方形的优势比梯阵列不太明显。这些结果适用于硬件共同设计,并为给定的一组近期量子硬件选择有效的Qudit编码。此外,这项工作可能与其他量子算法的调度有关,该量子算法是子例程。

A primary objective of quantum computation is to efficiently simulate quantum physics. Scientifically and technologically important quantum Hamiltonians include those with spin-$s$, vibrational, photonic, and other bosonic degrees of freedom, i.e. problems composed of or approximated by $d$-level particles (qudits). Recently, several methods for encoding these systems into a set of qubits have been introduced, where each encoding's efficiency was studied in terms of qubit and gate counts. Here, we build on previous results by including effects of hardware connectivity. To study the number of SWAP gates required to Trotterize commonly used quantum operators, we use both analytical arguments and automatic tools that optimize the schedule in multiple stages. We study the unary (or one-hot), Gray, standard binary, and block unary encodings, with three connectivities: linear array, ladder array, and square grid. Among other trends, we find that while the ladder array leads to substantial efficiencies over the linear array, the advantage of the square over the ladder array is less pronounced. These results are applicable in hardware co-design and in choosing efficient qudit encodings for a given set of near-term quantum hardware. Additionally, this work may be relevant to the scheduling of other quantum algorithms for which matrix exponentiation is a subroutine.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源