约瑟夫森量子比特的优化算法

R. Roloff, M. Wenin, Walter Pötz
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引用次数: 0

摘要

超导纳米电路是量子计算机基本构件量子比特的物理实现的有希望的候选者。我们研究了如何应用最优控制理论来优化约瑟夫森量子比特的动力学。以电荷量子位为例,采用了几种数值方法来搜索外部控制场,这些控制场在现有技术下是真实的,并且在存在耗散、退相干和泄漏的情况下尽可能忠实地诱导系统内期望的幺正时间演化(即期望的门操作)。微观模拟环境的相关计算是费时的,因此并行计算方法在抽样控制领域是有益的。特别地,我们讨论了基于差分进化算法的聚类优化的性能。使用一个更简单的林德布莱德模型的环境影响,我们比较了性能的共轭梯度方法的遗传算法。
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Optimization Algorithms for Josephson Qubits
Superconducting nanoelectrical circuits are promising candidates for the physical implementation of the basic building block of a quantum computer, the qubit. We investigate how optimal control theory can be applied to optimize the dynamics of Josephson qubits. For the example of the charge qubit, several numerical methods are employed to search for external control fields which, by current technology, are realistic and induce the desired unitary time evolution within the system (i.e. the desired gate operation) as faithfully as possible in presence of dissipation, decoherence and leakage. Associated calculations which model the environment microscopically are time-intensive so that parallel computing methods are beneficial in the sampling over control fields. In particular, we discuss the performance of differential-evolution-algorithm based optimizations on a cluster. Using a simpler Lindblad model for environmental effects, we compare the performance of a conjugate-gradient approach to that of a genetic algorithm.
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