ConiQ: Enabling Concatenated Quantum Error Correction on Neutral Atom Arrays

Fuente: arXiv
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Hauptverfasser: Liu, Pengyu, Xu, Mingkuan, Zhou, Hengyun, Wang, Hanrui, Acar, Umut A., Shi, Yunong
Format: Preprint
Veröffentlicht: 2025
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author Liu, Pengyu
Xu, Mingkuan
Zhou, Hengyun
Wang, Hanrui
Acar, Umut A.
Shi, Yunong
author_facet Liu, Pengyu
Xu, Mingkuan
Zhou, Hengyun
Wang, Hanrui
Acar, Umut A.
Shi, Yunong
contents Recent progress on concatenated codes, especially many-hypercube codes, achieves unprecedented space efficiency. Yet two critical challenges persist in practice. First, these codes lack efficient implementations of addressable logical gates. Second, the required high degree of parallelism and long-range interactions pose significant challenges for current hardware platforms. In this paper, we propose an efficient compilation approach for concatenated codes, specifically many-hypercube codes, targeted at neutral atom arrays, which provide the necessary parallelism and long-range interactions. Our approach builds on two key innovations. First, we introduce Automorphism-assisted Hierarchical Addressing (AHA) logical CNOT gates that significantly reduce spacetime overhead compared to conventional distillation-based methods. Second, we develop Virtual Atom Intermediate Representation (VAIR) that enables level-wise optimization and legalization. We implement these innovations in ConiQ, a hardware-aware quantum compiler designed to compile fault-tolerant quantum circuits for neutral atom arrays using many-hypercube codes. Our evaluation demonstrates that ConiQ achieves up to 2000x reduction in spacetime overhead and up to 10^6x reduction in compilation time compared to state-of-the-art compilers, with our AHA gates providing an additional overhead reduction of up to 20x. These results establish concatenated codes as a promising approach for fault-tolerant quantum computing in the near future.
format Preprint
id arxiv_https___arxiv_org_abs_2508_05779
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle ConiQ: Enabling Concatenated Quantum Error Correction on Neutral Atom Arrays
Liu, Pengyu
Xu, Mingkuan
Zhou, Hengyun
Wang, Hanrui
Acar, Umut A.
Shi, Yunong
Hardware Architecture
Quantum Physics
Recent progress on concatenated codes, especially many-hypercube codes, achieves unprecedented space efficiency. Yet two critical challenges persist in practice. First, these codes lack efficient implementations of addressable logical gates. Second, the required high degree of parallelism and long-range interactions pose significant challenges for current hardware platforms. In this paper, we propose an efficient compilation approach for concatenated codes, specifically many-hypercube codes, targeted at neutral atom arrays, which provide the necessary parallelism and long-range interactions. Our approach builds on two key innovations. First, we introduce Automorphism-assisted Hierarchical Addressing (AHA) logical CNOT gates that significantly reduce spacetime overhead compared to conventional distillation-based methods. Second, we develop Virtual Atom Intermediate Representation (VAIR) that enables level-wise optimization and legalization. We implement these innovations in ConiQ, a hardware-aware quantum compiler designed to compile fault-tolerant quantum circuits for neutral atom arrays using many-hypercube codes. Our evaluation demonstrates that ConiQ achieves up to 2000x reduction in spacetime overhead and up to 10^6x reduction in compilation time compared to state-of-the-art compilers, with our AHA gates providing an additional overhead reduction of up to 20x. These results establish concatenated codes as a promising approach for fault-tolerant quantum computing in the near future.
title ConiQ: Enabling Concatenated Quantum Error Correction on Neutral Atom Arrays
topic Hardware Architecture
Quantum Physics
url https://arxiv.org/abs/2508.05779