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September 27, 2025Nature Communications9 citationsOpen Access

Error mitigation with stabilized noise in superconducting quantum processors

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YKYoung‐Seok KimLGLuke C. G. GoviaADAndrew E. Dane

Key Points

  • Tuning qubit-TLS interactions significantly reduces noise fluctuations, enhancing error mitigation performance.
  • Experimental results demonstrate improved observable estimation accuracy by addressing device noise instability.
  • The controlled platform used provides insights into error mitigation amidst quasi-static noise.
  • These findings are expected to advance quantum applications on solid-state processors at larger scales.

Abstract

Pre-fault tolerant quantum computers have already demonstrated the ability to estimate observable values accurately, at a scale beyond brute-force classical computation. This has been enabled by error mitigation techniques that often rely on a representative model of the device noise. However, learning and maintaining these models is complicated by fluctuations in the noise over unpredictable time scales, for instance, arising from resonant interactions between superconducting qubits and defect two-level systems (TLS). Such interactions affect the stability and uniformity of device performance as a whole, but also affect the noise model accuracy, leading to incorrect observable estimation. Here, we experimentally demonstrate that tuning of the qubit-TLS interactions helps reduce noise instabilities and consequently enables more reliable error-mitigation performance. These experiments provide a controlled platform for studying the performance of error mitigation in the presence of quasi-static noise. We anticipate that the capabilities introduced here will be crucial for the exploration of quantum applications on solid-state processors at non-trivial scales. Interactions between qubits and defect-related two-level systems in superconducting qubit devices are a major source of noise fluctuations that hinder error-mitigation performance. Here, the authors experimentally show that modulating this interaction can reduce noise fluctuation and improve error mitigation performance.

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Cite This Study

Kim et al. (2025) studied this question.

synapsesocial.com/papers/68d7cc66eebfec0fc5238aa6https://doi.org/10.1038/s41467-025-62820-9
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