HybridQ: A Hybrid Simulator for Quantum Circuits

S. Mandrà, Jeffrey Marshall, E. Rieffel, R. Biswas
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引用次数: 11

Abstract

Developing state-of-the-art classical simulators of quantum circuits is of utmost importance to test and evaluate early quantum technology and understand the true potential of full-blown error-corrected quantum computers. In the past few years, multiple theoretical and numerical advances have continuously pushed the boundary of what is classically simulable, hence the development of a plethora of tools which are often limited to a specific purpose or designed for a particular hardware (e.g. CPUs vs. GPUs). Moreover, such tools are typically developed using tailored languages and syntax, which makes it hard to compare results from, and create hybrid approaches using, different simulation techniques. To support unified and optimized use of these techniques across platforms, we developed HybridQ , a highly extensible platform designed to provide a common framework to integrate multiple state-of-the-art techniques to run on a variety of hardware. The philosophy behind its development has been driven by three main pillars: Easy to Use, Easy to Extend, and Use the Best Available Technology. The powerful tools of HybridQ allow users to manipulate, develop, and extend noiseless and noisy circuits for different hardware architectures. HybridQ supports large-scale high-performance computing (HPC) simulations, automatically balancing workload among different processor nodes and enabling the use of multiple backends to maximize parallel efficiency. Everything is then glued together by a simple and expressive language that allows seamless switching from one technique to another as well as from one hardware to the next, without the need to write lengthy translations, thus greatly simplifying the development of new hybrid algorithms and techniques.
HybridQ:量子电路的混合模拟器
开发最先进的经典量子电路模拟器对于测试和评估早期量子技术以及了解全面纠错量子计算机的真正潜力至关重要。在过去的几年里,多种理论和数值上的进步不断突破了传统模拟的界限,因此开发了大量的工具,这些工具通常限于特定目的或为特定硬件设计(例如cpu与gpu)。此外,这些工具通常是使用定制的语言和语法开发的,这使得很难比较结果,并使用不同的模拟技术创建混合方法。为了支持这些技术跨平台的统一和优化使用,我们开发了HybridQ,这是一个高度可扩展的平台,旨在提供一个通用框架来集成多种最先进的技术,以在各种硬件上运行。其开发背后的理念由三个主要支柱驱动:易于使用、易于扩展和使用最佳可用技术。HybridQ的强大工具允许用户为不同的硬件架构操作、开发和扩展无噪声和有噪声电路。HybridQ支持大规模高性能计算(HPC)模拟,自动平衡不同处理器节点之间的工作负载,并允许使用多个后端来最大限度地提高并行效率。然后,一切都通过一种简单而富有表现力的语言粘合在一起,这种语言允许从一种技术无缝切换到另一种技术,以及从一种硬件无缝切换到另一种硬件,而无需编写冗长的翻译,从而大大简化了新的混合算法和技术的开发。
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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