在近端量子计算机上以硬件高效方式制备图状态

Sebastian Brandhofer, Ilia Polian, Stefanie Barz, Daniel Bhatti
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引用次数: 0

摘要

高度纠缠的量子态是量子计算众多应用中的一个要素。然而,要在现有量子计算机上高保真地制备这些高度纠缠的量子态,却受到无处不在的干扰的限制。除了改进量子计算机的底层技术,近期量子计算机中这些纠缠态的规模和保真度也可以通过专门的编译方法来提高。在这项研究中,我们通过定义和求解一个形式模型来解决量子电路的编译问题,以制备高度纠缠的特定架构图形状态。我们的模型结合了有关门抵消、门交换和精确门时序的信息,以确定优化的图状态准备电路。迄今为止,这些方面只被单独考虑,通常应用于任意量子电路。我们通过执行稳定器测量和确定其保真度来量化生成状态的质量。我们的研究表明,与最先进的 Qiskit 解决方案相比,我们的新方法在准备七量子比特图状态时平均减少了 3.5 倍的误差。对于线性八量子比特图状态,误差平均减少了 6.4 倍。这些结果凸显了我们的方法在基于门的量子计算硬件上制备更高保真度或更大规模图状态的能力。
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Hardware-Efficient Preparation of Graph States on Near-Term Quantum Computers
Highly entangled quantum states are an ingredient in numerous applications in quantum computing. However, preparing these highly entangled quantum states on currently available quantum computers at high fidelity is limited by ubiquitous errors. Besides improving the underlying technology of a quantum computer, the scale and fidelity of these entangled states in near-term quantum computers can be improved by specialized compilation methods. In this work, the compilation of quantum circuits for the preparation of highly entangled architecture-specific graph states is addressed by defining and solving a formal model. Our model incorporates information about gate cancellations, gate commutations, and accurate gate timing to determine an optimized graph state preparation circuit. Up to now, these aspects have only been considered independently of each other, typically applied to arbitrary quantum circuits. We quantify the quality of a generated state by performing stabilizer measurements and determining its fidelity. We show that our new method reduces the error when preparing a seven-qubit graph state by 3.5x on average compared to the state-of-the-art Qiskit solution. For a linear eight-qubit graph state, the error is reduced by 6.4x on average. The presented results highlight the ability of our approach to prepare higher fidelity or larger-scale graph states on gate-based quantum computing hardware.
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