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Benchmarking the readout of a superconducting qubit for repeated measurements
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abstract
Readout of superconducting qubits faces a trade-off between measurement speed and unwanted back-action on the qubit caused by the readout drive, such as $T_1$ degradation and leakage out of the computational subspace. The readout is typically benchmarked by integrating the readout signal and choosing a binary threshold to extract the "readout fidelity". We show that readout fidelity may significantly overlook readout-induced leakage errors. Such errors are detrimental for applications that rely on continuously repeated measurements, e.g., quantum error correction. We introduce a method to measure the readout-induced leakage rate by repeatedly executing a composite operation - a readout preceded by a randomized qubit-flip. We apply this technique to characterize the readout of a superconducting qubit, optimized for fidelity across four different readout durations. Our technique highlights the importance of an independent leakage characterization by showing that the leakage rates vary from $0.12\%$ to $7.76\%$ across these readouts even though the fidelity exceeds $99.5\%$ in all four cases.
Forward citations
Cited by 3 Pith papers
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Full characterization of measurement-induced transitions of a superconducting qubit
Readout-induced leakage in high-frequency transmon readout is dominated by inelastic single-photon Raman scattering, with rate proportional to drive power and to the dissipative impedance at the emitted-photon frequency.
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Suppression of measurement-induced state transitions in cos{\phi}-coupling transmon readout
A cos-phi-coupled transmon readout is experimentally free of measurement-induced state transitions up to roughly 300 photons, with flux-controlled activation of specific transitions.
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High-power readout of a transmon qubit using a nonlinear coupling
A transmon molecule with nonlinear cosφ coupling achieves 99.21% readout fidelity at 89 photons and remains QND with less than 4% errors up to 300 photons, with a theoretical critical photon number of 377.
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