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Realistic Cost to Execute Practical Quantum Circuits using Direct Clifford+T Lattice Surgery Compilation

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arxiv 2311.10686 v4 pith:CORCP5KR submitted 2023-11-17 quant-ph

Realistic Cost to Execute Practical Quantum Circuits using Direct Clifford+T Lattice Surgery Compilation

classification quant-ph
keywords magicresourcestatecircuitslatticesurgerylogicalquantum
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We report a resource estimation pipeline that explicitly compiles quantum circuits expressed using the Clifford+T gate set into a surface code lattice surgery instruction set. The cadence of magic state requests from the compiled circuit enables the optimization of magic state distillation and storage requirements in a post-hoc analysis. To compile logical circuits into lattice surgery operations, we build upon the open-source Lattice Surgery Compiler. The revised compiler operates in two stages: the first translates logical gates into an abstract, layout-independent instruction set; the second compiles these into local lattice surgery instructions that are allocated to hardware tiles according to a specified resource layout. The second stage retains logical parallelism while avoiding resource contention in the fault-tolerant layer, aiding realism. Additionally, users can specify dedicated tiles at which magic states are replenished, enabling resource costs from the logical computation to be considered independently from magic state distillation and storage. We demonstrate the applicability of our pipeline to large, practical quantum circuits by providing resource estimates for the ground state estimation of molecules. We find that variable magic state consumption rates in real circuits can cause the resource costs of magic state storage to dominate unless production is varied to suit.

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Cited by 1 Pith paper

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

  1. Harvest: Resource-Aware Quantum Compilation for Magic State Protocols

    quant-ph 2026-08 conditional novelty 6.0

    Harvest co-optimizes placement, routing, scheduling, and magic-state supply for lattice-surgery quantum programs, reporting up to 17.8x speedup over sequential execution and reclaiming up to 72% of unused magic-state patches.