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Qubit assignment using time reversal

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arxiv 2201.00445 v2 pith:CI5IRT5Y submitted 2022-01-03 quant-ph

classification quant-ph
keywords assignmentqubitquantumqubitsdeviceperformanceprogramannealing
verification ladder T0 review T1 audit T2 compute T3 formal

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As the number of qubits available on noisy quantum computers grows, it will become necessary to efficiently select a subset of physical qubits to use in a quantum computation. For any given quantum program and device there are many ways to assign physical qubits for execution of the program, and assignments will differ in performance due to the variability in quality across qubits and entangling operations on a single device. Evaluating the performance of each assignment using fidelity estimation introduces significant experimental overhead and will be infeasible for many applications, while relying on standard device benchmarks provides incomplete information about the performance of any specific program. Furthermore, the number of possible assignments grows combinatorially in the number of qubits on the device and in the program, motivating the use of heuristic optimization techniques. We approach this problem using simulated annealing with a cost function based on the Loschmidt Echo, a diagnostic that measures the reversibility of a quantum process. We provide theoretical justification for this choice of cost function by demonstrating that the optimal qubit assignment coincides with the optimal qubit assignment based on state fidelity in the weak error limit, and we provide experimental justification using diagnostics performed on Google's superconducting qubit devices. We then establish the performance of simulated annealing for qubit assignment using classical simulations of noisy devices as well as optimization experiments performed on a quantum processor. Our results demonstrate that the use of Loschmidt Echoes and simulated annealing provides a scalable and flexible approach to optimizing qubit assignment on near-term hardware.

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Cited by 2 Pith papers

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

  1. S-SYNC: Shuttle and Swap Co-Optimization in Quantum Charge-Coupled Devices

    quant-ph 2025-05 conditional novelty 6.0 of 10

    S-SYNC unifies shuttling and SWAP operations into a single 'generic swap' on a static graph, and a greedy heuristic co-optimizes them to cut shuttling by 3.69x and raise success rate by 1.73x on average in simulation.

  2. Scalable Quantum Architecture Search via Landscape Analysis

    quant-ph 2025-05 conditional novelty 5.0 of 10

    A zero-shot quantum architecture search ranks circuits by relative landscape fluctuation computed with Clifford sampling, then prunes redundant gates, reaching 50-qubit VQE simulations with fewer gates.

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