SpinQ: Compilation strategies for scalable spin-qubit architectures

Fuente: arXiv
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Bibliographic Details
Main Authors: Paraskevopoulos, Nikiforos, Sebastiano, Fabio, Almudever, Carmen G., Feld, Sebastian
Format: Preprint
Published: 2023
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author Paraskevopoulos, Nikiforos
Sebastiano, Fabio
Almudever, Carmen G.
Feld, Sebastian
author_facet Paraskevopoulos, Nikiforos
Sebastiano, Fabio
Almudever, Carmen G.
Feld, Sebastian
contents Despite NISQ devices being severely constrained, hardware- and algorithm-aware quantum circuit mapping techniques have been developed to enable successful algorithm executions. Not so much attention has been paid to mapping and compilation implementations for spin-qubit quantum processors due to the scarce availability of experimental devices and their small sizes. However, based on their high scalability potential and their rapid progress it is timely to start exploring solutions on such devices. In this work, we discuss the unique mapping challenges of a scalable crossbar architecture with shared control and introduce SpinQ, the first native compilation framework for scalable spin-qubit architectures. At the core of SpinQ is the Integrated Strategy that addresses the unique operational constraints of the crossbar while considering compilation scalability and obtaining a O(n) computational complexity. To evaluate the performance of SpinQ on this novel architecture, we compiled a broad set of well-defined quantum circuits and performed an in-depth analysis based on multiple metrics such as gate overhead, depth overhead, and estimated success probability, which in turn allowed us to create unique mapping and architectural insights. Finally, we propose novel mapping techniques that could increase algorithm success rates on this architecture and potentially inspire further research on quantum circuit mapping for other scalable spin-qubit architectures.
format Preprint
id arxiv_https___arxiv_org_abs_2301_13241
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle SpinQ: Compilation strategies for scalable spin-qubit architectures
Paraskevopoulos, Nikiforos
Sebastiano, Fabio
Almudever, Carmen G.
Feld, Sebastian
Quantum Physics
Despite NISQ devices being severely constrained, hardware- and algorithm-aware quantum circuit mapping techniques have been developed to enable successful algorithm executions. Not so much attention has been paid to mapping and compilation implementations for spin-qubit quantum processors due to the scarce availability of experimental devices and their small sizes. However, based on their high scalability potential and their rapid progress it is timely to start exploring solutions on such devices. In this work, we discuss the unique mapping challenges of a scalable crossbar architecture with shared control and introduce SpinQ, the first native compilation framework for scalable spin-qubit architectures. At the core of SpinQ is the Integrated Strategy that addresses the unique operational constraints of the crossbar while considering compilation scalability and obtaining a O(n) computational complexity. To evaluate the performance of SpinQ on this novel architecture, we compiled a broad set of well-defined quantum circuits and performed an in-depth analysis based on multiple metrics such as gate overhead, depth overhead, and estimated success probability, which in turn allowed us to create unique mapping and architectural insights. Finally, we propose novel mapping techniques that could increase algorithm success rates on this architecture and potentially inspire further research on quantum circuit mapping for other scalable spin-qubit architectures.
title SpinQ: Compilation strategies for scalable spin-qubit architectures
topic Quantum Physics
url https://arxiv.org/abs/2301.13241