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arXiv · 2607.02616

MLIR for Quantum Beyond Gate Cancellation: Quantum Circuit Mapping Reimagined

Abstract

The Multi-Level Intermediate Representation (MLIR) framework has become a cornerstone for building extensible, domain-specific compilers, with the quantum computing community already leveraging it to model quantum programs and implement basic optimizations. However, computationally intensive tasks in the quantum compilation pipeline, such as quantum circuit mapping, remain underexplored within the MLIR ecosystem. This paper proposes an MLIR-native blueprint for these non-local, quantum-specific optimization routines by reimplementing a well-established, state-of-the-art mapping A* search algorithm for qubit routing and SWAP insertion. Our evaluation demonstrates that this approach not only integrates seamlessly into an MLIR-based quantum compiler collection but also surpasses previous non-MLIR solutions in both solution quality and runtime. The implementation is open-source and publicly available at https://github.com/munich-quantum-toolkit/core.

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BibTeXRIS

Matthias Reumann, Yannick Stade, Robert Wille, Lukas Burgholzer. 2026-07-01. MLIR for Quantum Beyond Gate Cancellation: Quantum Circuit Mapping Reimagined. https://arxiv.org/abs/2607.02616

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