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Multi-qubit Lattice Surgery Scheduling

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arxiv 2405.17688 v2 pith:OTY3JH7J submitted 2024-05-27 quant-ph cs.ARmath.OC

classification quant-phcs.ARmath.OC
keywords multi-qubitcircuitgatesquantumschedulingcircuitsexecutionfault-tolerant
verification ladder T0 review T1 audit T2 compute T3 formal
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Fault-tolerant quantum computation using two-dimensional topological quantum error correcting codes can benefit from multi-qubit long-range operations. By using simple commutation rules, a quantum circuit can be transpiled into a sequence of solely non-Clifford multi-qubit gates. Prior work on fault-tolerant compilation avoids optimal scheduling of such gates since they reduce the parallelizability of the circuit. We observe that the reduced parallelization potential is outweighed by the significant reduction in the number of gates. We therefore devise a method for scheduling multi-qubit lattice surgery using an earliest-available-first policy, solving the associated forest packing problem using a representation of the multi-qubit gates as Steiner trees. Our extensive testing on random and application-inspired circuits demonstrates the method's scalability and performance. We show that the transpilation significantly reduces the circuit length on the set of circuits tested, and that the resulting circuit of multi-qubit gates has a further reduction in the expected circuit execution time compared to serial execution.

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Cited by 2 Pith papers

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 of 10

    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.

  2. Position: Quantum Program Generation Must Prioritize Validity Over Probabilistic Scaling

    cs.LG 2026-07 conditional novelty 5.0 of 10

    The paper argues that probabilistic scaling alone cannot fix the validity gap in quantum circuit generation, so quantum code assistants must build verification into generation rather than filter outputs after the fact.

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