Lune

ISCA2023顶会

Parallel Driving for Fast Quantum Computing Under Speed Limits

Evan McKinney, Chao Zhou, Mingkang Xia, Michael Hatridge, Alex K. Jones

2023年份
3被引次数
2顶会引用

摘要

Increasing quantum circuit fidelity requires an efficient instruction set to minimize errors from decoherence. The choice of a two-qubit (2Q) hardware basis gate depends on a quantum modulator's native Hamiltonian interactions and applied control drives. In this paper, we propose a collaborative design approach to select the best ratio of drive parameters that determine the best basis gate for a particular modulator. This requires considering the theoretical computing power of the gate along with the practical speed limit of that gate, given the modulator drive parameters. The practical speed limit arises from the couplers' tolerance for strong driving when one or more pumps is applied, for which some combinations can result in higher overall speed limits than others. Moreover, as this 2Q basis gate is typically applied multiple times in succession, interleaved by 1Q gates applied directly to the qubits, the speed of the 1Q gates can become a limiting factor for the quantum circuit, particularly as the pulse length of the 2Q basis gate is optimized. We propose parallel-drive to drive the modulator and qubits simultaneously, allowing a richer capability of the 2Q basis gate and in some cases for this 1Q drive time to be absorbed entirely into the 2Q operation. This allows increasingly short duration 2Q gates to be more practical while mitigating a significant source of overhead in some quantum systems. On average, this approach can decrease circuit duration by 17.8% and decrease infidelity for random 2Q gates by 10.5% compared to the currently best reported basic 2Q gate, √iSWAP.

问问这篇 Paper

智能体会读完全文。

Lune 把这篇 Paper 索引到了每一个公式,引用它的顶会 Paper 也一样。你提问,回答直接引用原文。

可以从这些问题问起

智能体调用

Luneget_paper_fulltext

在 Lune 里问

免费开始,无需绑卡

引用它的顶会 Paper2

问问它们各自怎么用它

它引用的顶会 Paper3

相关 Paper

黄昏的海面,两侧是细线勾勒的悬崖