Mimicking an Information Reservoir by Superconducting Quantum Circuits

Ufuk Korkmaz, Cem Sanga, Deniz Türkpençe
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引用次数: 3

Abstract

The dissipative model of quantum computation is proven to be equivalent to its circuit model. Particularly, multi-qubit gates require time-dependent control with optimized parameters for some specific problems. One such problem is the simulation of a quantum version of a perceptron that classifies quantum information as binary using the framework of open quantum systems. In this scheme, a probe qubit is in contact with multiple, distinct quantum information-bearing environments and returns a binary decision depending on its amplitude parameter in its steady state. We refer to these environments as quantum information reservoirs. We choose a standard quantum collisional model in which the reservoir parameters can be defined in detail. In this study, we present the analytical results of the proposed classifier with an application to the superconductor quantum circuits for a single information reservoir. We exploit the additivity of quantum dynamic maps for dissipative processes in the weak coupling regime where optimized time-dependent control is not required to achieve the classification result. We show that the current state-of-the-art for superconducting circuits allows for the physical implementation of dissipative quantum information processing in the presence of information reservoirs with realistic parameters.
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用超导量子电路模拟信息库
证明了量子计算的耗散模型与其电路模型是等价的。特别是,对于某些特定问题,多量子位门需要具有优化参数的时变控制。其中一个问题是模拟量子版本的感知器,该感知器使用开放量子系统的框架将量子信息分类为二进制。在该方案中,探测量子位与多个不同的量子信息承载环境接触,并根据其稳定状态下的振幅参数返回二进制决策。我们把这些环境称为量子信息库。我们选择了一个可以详细定义储层参数的标准量子碰撞模型。在这项研究中,我们给出了该分类器的分析结果,并将其应用于单一信息库的超导体量子电路。我们利用弱耦合状态下耗散过程的量子动态映射的可加性,在弱耦合状态下,不需要优化的时变控制来获得分类结果。我们表明,目前超导电路的最新技术允许在具有现实参数的信息库存在的情况下物理实现耗散量子信息处理。
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