OneAdapt: Adaptive Compilation for Resource-Constrained Photonic One-Way Quantum Computing

Fuente: arXiv
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Bibliographic Details
Main Authors: Zhang, Hezi, Ruan, Jixuan, Tullsen, Dean, Ding, Yufei, Li, Ang, Humble, Travis S.
Format: Preprint
Published: 2025
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_version_ 1866913806551089152
author Zhang, Hezi
Ruan, Jixuan
Tullsen, Dean
Ding, Yufei
Li, Ang
Humble, Travis S.
author_facet Zhang, Hezi
Ruan, Jixuan
Tullsen, Dean
Ding, Yufei
Li, Ang
Humble, Travis S.
contents Measurement-based quantum computing (MBQC), a.k.a. one-way quantum computing (1WQC), is a universal quantum computing model, which is particularly well-suited for photonic platforms. In this model, computation is driven by measurements on an entangled state, which serves as an intermediate representation (IR) between program and hardware. However, compilers on previous IRs lacks the adaptability to the resource constraint in photonic quantum computers. In this work, we propose a novel IR with new optimization passes. Based on this, it realizes a resource-adaptive compiler that minimizes the required hardware size and execution time while restricting the requirement for fusion devices within an adaptive limit. Moreover, our optimization can be integrated with Quantum Error Correction (QEC) to improve the efficiency of photonic fault-tolerant quantum computing (FTQC).
format Preprint
id arxiv_https___arxiv_org_abs_2504_17116
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle OneAdapt: Adaptive Compilation for Resource-Constrained Photonic One-Way Quantum Computing
Zhang, Hezi
Ruan, Jixuan
Tullsen, Dean
Ding, Yufei
Li, Ang
Humble, Travis S.
Quantum Physics
Hardware Architecture
Measurement-based quantum computing (MBQC), a.k.a. one-way quantum computing (1WQC), is a universal quantum computing model, which is particularly well-suited for photonic platforms. In this model, computation is driven by measurements on an entangled state, which serves as an intermediate representation (IR) between program and hardware. However, compilers on previous IRs lacks the adaptability to the resource constraint in photonic quantum computers. In this work, we propose a novel IR with new optimization passes. Based on this, it realizes a resource-adaptive compiler that minimizes the required hardware size and execution time while restricting the requirement for fusion devices within an adaptive limit. Moreover, our optimization can be integrated with Quantum Error Correction (QEC) to improve the efficiency of photonic fault-tolerant quantum computing (FTQC).
title OneAdapt: Adaptive Compilation for Resource-Constrained Photonic One-Way Quantum Computing
topic Quantum Physics
Hardware Architecture
url https://arxiv.org/abs/2504.17116