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Characterising the failure mechanisms of error-corrected quantum logic gates
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Mid-circuit measurements used in quantum error correction are essential in quantum computer architecture, as they read out syndrome data and drive logic gates. Here, we use a heavy-hex code prepared on a superconducting qubit array to investigate how different noise sources impact error-corrected logic. First, we identify that idling errors occurring during readout periods are highly detrimental to a quantum memory. We demonstrate significant improvements to the memory by designing and implementing a low-depth syndrome extraction circuit. Second, we perform a stability experiment to investigate the type of failures that can occur during logic gates due to readout assignment errors. We find that the error rate of the stability experiment improves with additional stabilizer readout cycles, revealing a trade-off as additional stability comes at the expense of time over which the memory can decay. We corroborate our results using holistic device benchmarking and by comparison to numerical simulations. Finally, by varying different parameters in our simulations we identify the key noise sources that impact the fidelity of fault-tolerant logic gates, with measurement noise playing a dominant role in logical gate performance.
Forward citations
Cited by 2 Pith papers
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Oraqle: An Empirical Analysis of Qubit Readout and Discriminators in Quantum Error Correction
Using real 5-qubit traces, this study shows readout windows can be cut to ~600 ns with negligible QEC penalty and small discriminators match large ones.
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Multi-Stage Mamba-Based Architecture for Fast and Scalable Superconducting Qubit Readout
Multi-stage Mamba discriminators reach 0.911 geometric-mean fidelity on multiplexed superconducting readout traces while cutting parameters ~50% and supporting 500 ns mid-circuit measurements.
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