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QUALE: Quantum Architecture Layout Evaluator

机译:主题:Quantum Architecture布局评估器

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The theoretical study of quantum computation has yielded efficient algorithms for traditionally very hard problems. Correspondingly, the experimental work on technologies for implementing quantum computers has yielded many of the essential discrete components. Combining these components to produce an efficient and accurate quantum architecture is an open problem and exploring this design space requires an efficient evaluation framework. To date, all such frameworks have been either highly theoretical (ignoring vital issues like spatial constraints, resource contention, and the durative nature of quantum operations), or limited to systems with less than 40 qubits because of reliance on simulating the exact quantum state of qubits in the system. To address these issues the authors present QUALE. a set of tools for the design and analysis of microarchitectures for ion-trap quantum computers. QUALE allows the user to specify a quantum program in an existing quantum language, apply error correction, schedule the resulting computation on a proposed layout, and determine an upper bound on the expected accuracy of the resulting computation. By conducting analysis on a program-architecture pair QUALE takes into account realistic architectural constraints; by targeting simulation to error as opposed to the whole quantum state, QUALE is able to efficiently simulate large systems containing thousands of quantum bits.
机译:量子计算的理论研究为传统上非常棘手的问题提供了有效的算法。相应地,有关实现量子计算机技术的实验工作已经产生了许多基本的分立组件。将这些组件组合以产生有效且准确的量子架构是一个未解决的问题,而探索该设计空间需要一个有效的评估框架。迄今为止,所有此类框架都具有很高的理论性(忽略了空间约束,资源争用和量子操作的持续性等重要问题),或者由于依赖于模拟量子点的确切量子态而被限制在少于40量子位的系统中。系统中的量子位。为了解决这些问题,作者提出了QUALE。一套用于离子阱量子计算机微体系结构设计和分析的工具。 QUALE允许用户以现有的量子语言指定量子程序,应用纠错,在建议的布局上安排结果计算,并确定结果计算的预期精度的上限。通过对程序-架构对进行分析,QUALE考虑了实际的架构约束;通过将仿真针对误差而不是整个量子状态,QUALE能够有效地仿真包含数千个量子位的大型系统。

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