MUQUT: Multi-Constraint Quantum Circuit Mapping on NISQ Computers: Invited Paper

Debjyoti Bhattacharjee, Abdullah Ash-Saki, M. Alam, A. Chattopadhyay, Swaroop Ghosh
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引用次数: 43

Abstract

Rapid advancement in the domain of quantum technologies have opened up researchers to the real possibility of experimenting with quantum circuits, and simulating small-scale quantum programs. Nevertheless, the quality of currently available qubits and environmental noise pose a challenge in smooth execution of the quantum circuits. Therefore, efficient design automation flows for mapping a given algorithm to the Noisy Intermediate Scale Quantum (NISQ) computer becomes of utmost importance. State-of-the-art quantum design automation tools are primarily focused on reducing logical depth, gate count and qubit counts with recent emphasis on topology-aware (nearest-neighbour compliance) mapping. In this work, we extend the technology mapping flows to simultaneously consider the topology and gate fidelity constraints while keeping logical depth and gate count as optimization objectives. We provide a comprehensive problem formulation and multi-tier approach towards solving it. The proposed automation flow is compatible with commercial quantum computers, such as IBM QX and Rigetti. Our simulation results over 10 quantum circuit benchmarks, show that the fidelity of the circuit can be improved up to 3.37 × with an average improvement of 1.87 ×.
MUQUT: NISQ计算机上的多约束量子电路映射:邀请论文
量子技术领域的快速发展为研究人员打开了实验量子电路和模拟小规模量子程序的真正可能性。然而,目前可用的量子比特的质量和环境噪声对量子电路的顺利执行提出了挑战。因此,将给定算法映射到噪声中尺度量子(NISQ)计算机的有效设计自动化流程变得至关重要。最先进的量子设计自动化工具主要侧重于减少逻辑深度、门计数和量子位计数,最近的重点是拓扑感知(最近邻遵从性)映射。在这项工作中,我们扩展了技术映射流程,以同时考虑拓扑和门保真度约束,同时保持逻辑深度和门计数作为优化目标。我们提供了一个全面的问题表述和多层次的方法来解决它。提出的自动化流程与商用量子计算机兼容,如IBM QX和Rigetti。我们对10个量子电路基准的仿真结果表明,电路的保真度可以提高到3.37 ×,平均提高1.87 ×。
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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