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Quasi-Probabilistic Readout Correction of Mid-Circuit Measurements for Adaptive Feedback via Measurement Randomized Compiling

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arxiv 2312.14139 v5 pith:IPXTDOEU submitted 2023-12-21 quant-ph

classification quant-ph
keywords errorsreadoutmeasurementmeasurementsquantumqubitscorrectionerror
verification ladder T0 review T1 audit T2 compute T3 formal
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Quantum measurements are a fundamental component of quantum computing. However, on modern-day quantum computers, measurements can be more error prone than quantum gates, and are susceptible to non-unital errors as well as non-local correlations due to measurement crosstalk. While readout errors can be mitigated in post-processing, it is inefficient in the number of qubits due to a combinatorially-large number of possible states that need to be characterized. In this work, we show that measurement errors can be tailored into a simple stochastic error model using randomized compiling, enabling the efficient mitigation of readout errors via quasi-probability distributions reconstructed from the measurement of a single preparation state in an exponentially large confusion matrix. We demonstrate the scalability and power of this approach by correcting readout errors without matrix inversion on a large number of different preparation states applied to a register of eight superconducting transmon qubits. Moreover, we show that this method can be extended to mid-circuit measurements used for active feedback via quasi-probabilistic error cancellation, and demonstrate the correction of measurement errors on an ancilla qubit used to detect and actively correct bit-flip errors on an entangled memory qubit. Our approach enables the correction of readout errors on large numbers of qubits, and offers a strategy for correcting readout errors in adaptive circuits in which the results of mid-circuit measurements are used to perform conditional operations on non-local qubits in real time.

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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. First-principle crosstalk dynamics and Hamiltonian learning via Rabi experiments

    quant-ph 2025-02 conditional novelty 6.0 of 10

    Pairwise crosstalk parameters learned from two-qubit Rabi sweeps predict three- and four-qubit drive dynamics on an 8-qubit transmon processor with median reduced chi-squared under 2.

  2. Multi-FPGA Synchronization and Data Communication for Quantum Control and Measurement

    quant-ph 2025-06 conditional novelty 5.0 of 10

    A multi-FPGA clock synchronization and fiber data communication framework for the QubiC control stack passes bench tests, keeping three boards synchronized for 16 hours and enabling cross-board feed-forward at about 1600 ns.

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