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Heterogeneous architectures enable a 138x reduction in physical qubit requirements for fault-tolerant quantum computing under detailed accounting

arXiv Quantum Physics
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Researchers led by Pranav S. Mundada propose a heterogeneous quantum computing architecture that bridges the gap between hardware constraints and error-correction demands, reducing physical qubit requirements by up to 138x compared to traditional monolithic designs. The team’s unified framework integrates task-specific hardware modules and quantum error correction (QEC), enabling fault-tolerant interfaces between quantum processors and memories while remaining agnostic to qubit types or QEC codes. A new cross-system compiler optimizes algorithms at 1,000-logical-qubit scale, cutting logical errors by 551x and physical qubit overhead significantly, validated through detailed hardware-level scheduling and orchestration. For RSA-2048 factorization, the architecture requires just 381,000 physical qubits and 9.2 days using grid-coupling topology—reduced to 4.9 days with an adder accelerator (439k qubits) or 190k qubits under long-range coupling. The study demonstrates that heterogeneous designs, combined with advanced tooling, can drastically lower resource demands, making practical fault-tolerant quantum computing more feasible within the next decade.
Heterogeneous architectures enable a 138x reduction in physical qubit requirements for fault-tolerant quantum computing under detailed accounting

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Quantum Physics arXiv:2604.06319 (quant-ph) [Submitted on 7 Apr 2026] Title:Heterogeneous architectures enable a 138x reduction in physical qubit requirements for fault-tolerant quantum computing under detailed accounting Authors:Pranav S. Mundada, Aleksei Khindanov, Yulun Wang, Claire L. Edmunds, Paul Coote, Michael J. Biercuk, Yuval Baum, Michael Hush View a PDF of the paper titled Heterogeneous architectures enable a 138x reduction in physical qubit requirements for fault-tolerant quantum computing under detailed accounting, by Pranav S. Mundada and 7 other authors View PDF Abstract:Quantum computer hardware is predicted to scale over hundreds of thousands of qubits coming online in the next decade. Despite significant theoretical and experimental QEC progress, quantum computer architecture has suffered a significant gap, with bottom-up physical-device-driven challenges largely disconnected from top-down QEC-code-driven considerations. In this work, we unify these two views, presenting a complete heterogeneous quantum computing architecture incorporating task-specific hardware selection and QEC encoding, and agnostic to code selection or physical qubit parameters. Our approach further enables special-purpose processing modules, and includes a full microarchitecture for fault-tolerant implementation of interfaces between quantum processing units and quantum memories. Using this architecture and a new fully featured compiler functioning across subsystems at the scale of $1,000$ logical qubits, we schedule and orchestrate a variety of algorithms down to hardware-specific instructions; a detailed accounting of all operations reveals up to 551x reduction in algorithmic logical error and up to 138x reduction in physical-qubit overhead compared to a monolithic baseline architecture. We then consider the factorization of 2048-bit RSA-integers; using an experimentally demonstrated grid-coupling topology, factoring RSA-2048 requires 381k physical qubits and 9.2 days, which can be reduced to 4.9 days via addition of an algorithm-specific accelerator for the Adder subroutine (requiring 439k qubits). Finally, assuming hypothetical long-range coupling, implementing quantum memory using qLDPC codes reduces the resources required for factoring to just 190k qubits and under 10 days. These results and the tooling we have built indicate that heterogeneous quantum-computer architectures can deliver significant, verifiable benefits on realistic hardware. Comments: Subjects: Quantum Physics (quant-ph) Cite as: arXiv:2604.06319 [quant-ph] (or arXiv:2604.06319v1 [quant-ph] for this version) https://doi.org/10.48550/arXiv.2604.06319 Focus to learn more arXiv-issued DOI via DataCite (pending registration) Submission history From: Pranav Santosh Mundada [view email] [v1] Tue, 7 Apr 2026 18:00:11 UTC (7,695 KB) Full-text links: Access Paper: View a PDF of the paper titled Heterogeneous architectures enable a 138x reduction in physical qubit requirements for fault-tolerant quantum computing under detailed accounting, by Pranav S. Mundada and 7 other authorsView PDFTeX Source view license Current browse context: quant-ph new | recent | 2026-04 References & Citations INSPIRE HEP NASA ADSGoogle Scholar Semantic Scholar export BibTeX citation Loading... BibTeX formatted citation × loading... Data provided by: Bookmark Bibliographic Tools Bibliographic and Citation Tools Bibliographic Explorer Toggle Bibliographic Explorer (What is the Explorer?) 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Source: arXiv Quantum Physics