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XACC: A System-Level Software Infrastructure for Heterogeneous Quantum-Classical Computing

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arxiv 1911.02452 v1 pith:XFLIWFIS submitted 2019-11-06 quant-ph cs.PL

classification quant-phcs.PL
keywords quantumsoftwarecomputingprogrammingquantum-classicalxaccarchitecturesframework
verification ladder T0 review T1 audit T2 compute T3 formal
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Quantum programming techniques and software have advanced significantly over the past five years, with a majority focusing on high-level language frameworks targeting remote REST library APIs. As quantum computing architectures advance and become more widely available, lower-level, system software infrastructures will be needed to enable tighter, co-processor programming and access models. Here we present XACC, a system-level software infrastructure for quantum-classical computing that promotes a service-oriented architecture to expose interfaces for core quantum programming, compilation, and execution tasks. We detail XACC's interfaces, their interactions, and its implementation as a hardware-agnostic framework for both near-term and future quantum-classical architectures. We provide concrete examples demonstrating the utility of this framework with paradigmatic tasks. Our approach lays the foundation for the development of compilers, associated runtimes, and low-level system tools tightly integrating quantum and classical workflows.

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  1. Repositories, Contributors, and Continuity: An Empirical Study of Foundational Quantum Software

    cs.SE 2026-07 conditional novelty 5.0 of 10

    Contributor migration across 16 quantum compilation repositories shows research concepts often continue in larger industry-backed ecosystems after the original project stops active development.

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