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A generalized cycle benchmarking algorithm for characterizing mid-circuit measurements

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arxiv 2406.02669 v2 pith:3DIJ33GG submitted 2024-06-04 quant-ph

classification quant-ph
keywords noisealgorithmmcmscharacterizinginformationlearnedalgorithmsbenchmarking
verification ladder T0 review T1 audit T2 compute T3 formal
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Mid-circuit measurements (MCMs) are crucial ingredients in the development of fault-tolerant quantum computation. While there have been rapid experimental progresses in realizing MCMs, a systematic method for characterizing noisy MCMs is still under exploration. In this work we develop a cycle benchmarking (CB)-type algorithm to characterize noisy MCMs. The key idea is to use a joint Fourier transform on the classical and quantum registers and then estimate parameters in the Fourier space, analogous to Pauli fidelities used in CB-type algorithms for characterizing the Pauli noise channel of Clifford gates. Furthermore, we develop a theory of the noise learnability of MCMs, which determines what information can be learned about the noise model (in the presence of state preparation and terminating measurement (SPAM) noise) and what cannot, which shows that all learnable information can be learned using our algorithm. As an application, we show how to use the learned information to test the independence between measurement noise and state preparation noise in an MCM. Finally, we conduct numerical simulations to illustrate the practical applicability of the algorithm. Similar to other CB-type algorithms, we expect the algorithm to provide a useful toolkit that is of experimental interest.

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  1. Benchmarking Quantum Instruments

    quant-ph 2025-01 conditional novelty 6.0 of 10

    A randomized benchmarking protocol estimates the error rate of a quantum instrument from the exponential decay of the probability that many successive compiled measurements all succeed.

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