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Bosehedral: Compiler Optimization for Bosonic Quantum Computing

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arxiv 2402.02279 v1 pith:SCTI2BPL submitted 2024-02-03 quant-ph cs.ET

classification quant-phcs.ET
keywords bosehedralbosoniccompilergateprogramquantumqumodecomputing
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Bosonic quantum computing, based on the infinite-dimensional qumodes, has shown promise for various practical applications that are classically hard. However, the lack of compiler optimizations has hindered its full potential. This paper introduces Bosehedral, an efficient compiler optimization framework for (Gaussian) Boson sampling on Bosonic quantum hardware. Bosehedral overcomes the challenge of handling infinite-dimensional qumode gate matrices by performing all its program analysis and optimizations at a higher algorithmic level, using a compact unitary matrix representation. It optimizes qumode gate decomposition and logical-to-physical qumode mapping, and introduces a tunable probabilistic gate dropout method. Overall, Bosehedral significantly improves the performance by accurately approximating the original program with much fewer gates. Our evaluation shows that Bosehedral can largely reduce the program size but still maintain a high approximation fidelity, which can translate to significant end-to-end application performance improvement.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Genesis: A Compiler Framework for Hamiltonian Simulation on Hybrid CV-DV Quantum Computers

    quant-ph 2025-05 conditional novelty 6.0 of 10

    Genesis is a two-level compiler that decomposes fermion-boson Hamiltonians into hybrid CV-DV basis gates and maps them onto hardware with limited qubit-qumode connectivity.

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