Superconducting processor design optimization for quantum error correction performance

Fuente: arXiv
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Autores principales: Ni, Xiaotong, Wang, Ziang, Chao, Rui, Chen, Jianxin
Formato: Preprint
Publicado: 2023
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author Ni, Xiaotong
Wang, Ziang
Chao, Rui
Chen, Jianxin
author_facet Ni, Xiaotong
Wang, Ziang
Chao, Rui
Chen, Jianxin
contents In the quest for fault-tolerant quantum computation using superconducting processors, accurate performance assessment and continuous design optimization stands at the forefront. To facilitate both meticulous simulation and streamlined design optimization, we introduce a multi-level simulation framework that spans both Hamiltonian and quantum error correction levels, and is equipped with the capability to compute gradients efficiently. This toolset aids in design optimization, tailored to specific objectives like quantum memory performance. Within our framework, we investigate the often-neglected spatially correlated unitary errors, highlighting their significant impact on logical error rates. We exemplify our approach through the multi-path coupling scheme of fluxonium qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2312_04186
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Superconducting processor design optimization for quantum error correction performance
Ni, Xiaotong
Wang, Ziang
Chao, Rui
Chen, Jianxin
Quantum Physics
In the quest for fault-tolerant quantum computation using superconducting processors, accurate performance assessment and continuous design optimization stands at the forefront. To facilitate both meticulous simulation and streamlined design optimization, we introduce a multi-level simulation framework that spans both Hamiltonian and quantum error correction levels, and is equipped with the capability to compute gradients efficiently. This toolset aids in design optimization, tailored to specific objectives like quantum memory performance. Within our framework, we investigate the often-neglected spatially correlated unitary errors, highlighting their significant impact on logical error rates. We exemplify our approach through the multi-path coupling scheme of fluxonium qubits.
title Superconducting processor design optimization for quantum error correction performance
topic Quantum Physics
url https://arxiv.org/abs/2312.04186