Distributed Scheduling of Quantum Circuits with Noise and Time Optimization

Fuente: arXiv
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Autori principali: Bhoumik, Debasmita, Majumdar, Ritajit, Saha, Amit, Sur-Kolay, Susmita
Natura: Preprint
Pubblicazione: 2023
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author Bhoumik, Debasmita
Majumdar, Ritajit
Saha, Amit
Sur-Kolay, Susmita
author_facet Bhoumik, Debasmita
Majumdar, Ritajit
Saha, Amit
Sur-Kolay, Susmita
contents Quantum computers are currently noisy, particularly without error correction and fault tolerance. Methods like error suppression and mitigation are widely used to improve performance. Circuit cutting, which partitions a circuit into smaller subcircuits, can also reduce noise. In this paper, we propose an Integer Linear Program (ILP) based scheduler for optimizing subcircuit schedules on available hardware. The goal is to maximize overall fidelity and ensure each hardware does not exceed its predefined execution time. For 10-qubit circuits, our method achieves an average fidelity improvement of ~12.3% and ~21% with and without measurement error mitigation, respectively, even with minimal execution time. Additionally, we introduce a polynomial-time graph-theoretic scheduling method that matches the ILP scheduler's results when the number of subcircuits does not exceed the number of hardware units, each with minimal execution time. This noise and time-optimized scheduler represents a crucial step towards optimal quantum computing performance, especially with limited hardware access.
format Preprint
id arxiv_https___arxiv_org_abs_2309_06005
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Distributed Scheduling of Quantum Circuits with Noise and Time Optimization
Bhoumik, Debasmita
Majumdar, Ritajit
Saha, Amit
Sur-Kolay, Susmita
Quantum Physics
Quantum computers are currently noisy, particularly without error correction and fault tolerance. Methods like error suppression and mitigation are widely used to improve performance. Circuit cutting, which partitions a circuit into smaller subcircuits, can also reduce noise. In this paper, we propose an Integer Linear Program (ILP) based scheduler for optimizing subcircuit schedules on available hardware. The goal is to maximize overall fidelity and ensure each hardware does not exceed its predefined execution time. For 10-qubit circuits, our method achieves an average fidelity improvement of ~12.3% and ~21% with and without measurement error mitigation, respectively, even with minimal execution time. Additionally, we introduce a polynomial-time graph-theoretic scheduling method that matches the ILP scheduler's results when the number of subcircuits does not exceed the number of hardware units, each with minimal execution time. This noise and time-optimized scheduler represents a crucial step towards optimal quantum computing performance, especially with limited hardware access.
title Distributed Scheduling of Quantum Circuits with Noise and Time Optimization
topic Quantum Physics
url https://arxiv.org/abs/2309.06005