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Circuit design for multi-body interactions in superconducting quantum annealing systems with applications to a scalable architecture.

机译:超导量子退火系统中多体相互作用的电路设计及其可扩展架构的应用。

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摘要

Quantum annealing provides a way of solving optimization problems by encoding them as Ising spin models which are implemented using physical qubits. The solution of the optimization problem then corresponds to the ground state of the system. Quantum tunneling is harnessed to enable the system to move to the ground state in a potentially high non-convex energy landscape. A major difficulty in encoding optimization problems in physical quantum annealing devices is the fact that many real world optimization problems require interactions of higher connectivity, as well as multi-body terms beyond the limitations of the physical hardware. In this work we address the question of how to implement multi-body interactions using hardware which natively only provides two-body interactions. The main result is an efficient circuit design of such multi-body terms using superconducting flux qubits in which effective N-body interactions are implemented using N ancilla qubits and only two inductive couplers. It is then shown how this circuit can be used as the unit cell of a scalable architecture by applying it to a recently proposed embedding technique for constructing an architecture of logical qubits with arbitrary connectivity using physical qubits which have nearest-neighbor four-body interactions. It is further shown that this design is robust to non-linear effects in the coupling loops, as well as mismatches in some of the circuit parameters.
机译:量子退火通过将优化问题编码为使用物理量子位实现的Ising自旋模型,提供了一种解决优化问题的方法。然后,优化问题的解决方案对应于系统的基础状态。利用量子隧道技术,可以使系统在潜在的高非凸能量环境中移动至基态。在物理量子退火设备中对优化问题进行编码的主要困难是以下事实:许多现实世界中的优化问题都需要交互性更高的交互作用,以及超出物理硬件限制的多体项。在这项工作中,我们解决了如何使用仅提供两体交互的硬件来实现多体交互的问题。主要结果是使用超导通量量子位进行此类多体项的高效电路设计,其中使用N个辅助量子位和仅两个电感耦合器实现有效的N体相互作用。然后示出了该电路如何通过将其应用于最近提出的嵌入技术来用作可扩展架构的单位单元,该嵌入技术用于使用具有最近邻居四体相互作用的物理量子位来构建具有任意连通性的逻辑量子位的体系结构。进一步表明,该设计对于耦合环路中的非线性效应以及某些电路参数的失配具有鲁棒性。

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