Stacking the odds: full-stack quantum system design space exploration

IF 5.6 2区 物理与天体物理 Q1 OPTICS
Hila Safi, Medina Bandic, Christoph Niedermeier, Carmen G. Almudever, Sebastian Feld, Wolfgang Mauerer
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Abstract

Design space exploration (DSE) plays an important role in optimising quantum circuit execution by systematically evaluating different configurations of compilation strategies and hardware settings. In this paper, we conduct a comprehensive investigation into the impact of various layout methods, qubit routing techniques, and optimisation levels, as well as device-specific properties such as different variants and strengths of noise and imperfections, the topological structure of qubits, connectivity densities, and back-end sizes. By spanning through these dimensions, we aim to understand the interplay between compilation choices and hardware characteristics. A key question driving our exploration is whether the optimal selection of device parameters, mapping techniques, comprising of initial layout strategies and routing heuristics can mitigate device induced errors beyond standard error mitigation approaches. Our results show that carefully selecting software strategies (e.g., mapping and routing algorithms) and tailoring hardware characteristics (such as minimising noise and leveraging topology and connectivity density) significantly improve the fidelity of circuit execution outcomes, and thus the expected correctness or success probability of the computational result. We provide estimates based on key metrics such as circuit depth, gate count and expected fidelity. Our results highlight the importance of hardware–software co-design, particularly as quantum systems scale to larger dimensions, and along the way towards fully error corrected quantum systems: Our study is based on computationally noisy simulations, but considers various implementations of quantum error correction (QEC) using the same approach as for other algorithms. The observed sensitivity of circuit fidelity to noise and connectivity suggests that co-design principles will be equally critical when integrating QEC in future systems. Our exploration provides practical guidelines for co-optimising physical mapping, qubit routing, and hardware configurations in realistic quantum computing scenarios.

叠加概率:全栈量子系统设计空间探索
设计空间探索(DSE)通过系统地评估编译策略和硬件设置的不同配置,在优化量子电路执行中起着重要作用。在本文中,我们对各种布局方法、量子比特路由技术和优化水平的影响,以及设备特定属性(如噪声和缺陷的不同变体和强度、量子比特的拓扑结构、连接密度和后端大小)进行了全面的调查。通过跨越这些维度,我们的目标是理解编译选择和硬件特性之间的相互作用。驱动我们探索的一个关键问题是,设备参数的最佳选择,映射技术,包括初始布局策略和路由启发式是否可以减轻设备引起的错误,而不是标准的错误缓解方法。我们的研究结果表明,仔细选择软件策略(例如,映射和路由算法)和定制硬件特征(例如最小化噪声和利用拓扑和连接密度)显着提高了电路执行结果的保真度,从而提高了计算结果的预期正确性或成功概率。我们提供基于关键指标的估计,如电路深度,门数和预期保真度。我们的研究结果强调了软硬件协同设计的重要性,特别是当量子系统扩展到更大的维度时,以及朝着完全纠错量子系统的方向发展:我们的研究基于计算噪声模拟,但考虑了使用与其他算法相同的方法进行量子纠错(QEC)的各种实现。观察到的电路保真度对噪声和连接性的敏感性表明,在未来系统中集成QEC时,协同设计原则将同样至关重要。我们的探索为共同优化物理映射、量子比特路由和现实量子计算场景中的硬件配置提供了实用指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
EPJ Quantum Technology
EPJ Quantum Technology Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
7.70
自引率
7.50%
发文量
28
审稿时长
71 days
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. EPJ Quantum Technology covers theoretical and experimental advances in subjects including but not limited to the following: Quantum measurement, metrology and lithography Quantum complex systems, networks and cellular automata Quantum electromechanical systems Quantum optomechanical systems Quantum machines, engineering and nanorobotics Quantum control theory Quantum information, communication and computation Quantum thermodynamics Quantum metamaterials The effect of Casimir forces on micro- and nano-electromechanical systems Quantum biology Quantum sensing Hybrid quantum systems Quantum simulations.
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