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Surface Code Error Correction with Crosstalk Noise

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arxiv 2503.04642 v2 pith:HEOX73N5 submitted 2025-03-06 quant-ph

classification quant-ph
keywords crosstalknoiseanalyticalcodecodescorrectionerrorhardware
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abstract

The design and performance analysis of quantum error correction (QEC) codes are often based on incoherent and independent noise models since it is easy to simulate. However, these models fail to capture realistic hardware noise sources, such as correlated errors (crosstalk), which can significantly impact QEC code performance, especially when they occur between data and ancillary qubits. In this paper, we systematically study various types of crosstalk noise and quantify their effects on surface codes through memory and stability experiments. Based on our findings, we introduce crosstalk-robust implementations of QEC via flag qubit designs and redundant stabilizer checks. We perform both numerical and analytical studies to demonstrate the efficacy of these strategies. In addition, we analyze logical crosstalk in an $[[n,k>1,d]]$ code block and establish analytical conditions under which physical crosstalk does not lead to logical crosstalk. Together, our analytical and numerical results shed light on designing QEC codes that are robust against hardware realistic crosstalk noise, paving the way for reliable experimental realization of fault-tolerant quantum computing.

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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. The perfect entangler spectrum as a tool to analyze crosstalk

    quant-ph 2025-06 conditional novelty 7.0 of 10

    A frequency-scanned perfect-entangler-distance spectrum detects and explains crosstalk from spectator qubits during two-qubit gates.

  2. Spectator Leakage Elimination in CZ Gates via Tunable Coupler Interference on a Superconducting Quantum Processor

    quant-ph 2025-07 conditional novelty 6.0 of 10

    A tunable-coupler control scheme block-diagonalizes the effective Hamiltonian, confining CZ gate dynamics to a two-level subspace and suppressing spectator-induced leakage to roughly 10^-4.

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