中文

X-Z Round Scheduling for the Surface Code with Defects under Biased Noise

量子物理 2026-08-06 v1

摘要

Fault-tolerant Quantum Computing (FTQC) relies on Quantum Error Correction (QEC) codes that encode logical qubits across many physical qubits to detect and correct errors. The surface code is among the most widely studied codes due to its high error threshold, the existence of efficient decoders, and hardware-friendly properties: a planar, two-dimensional layout with nearest-neighbor connectivity. In practice, however, the fabrication of solid-state quantum processors introduces hardware defects, resulting in defective qubits and couplers that must be discarded. Adapting the surface code to these defects often requires measuring the XX- and ZZ-type checks in separate rounds rather than simultaneously. In this work, we investigate the optimal XX-to-ZZ checks round-scheduling ratio under biased noise systems. Our results characterize how key architectural parameters, such as noise bias, code distance, and defect rate, impact the logical error rate. We provide insights into how to determine the optimal scheduling ratio directly from device calibration data, enabling manufacturers to maximize performance without extensive simulations. Our approach reduces the logical error rate by up to 4.25×4.25\times at a 1%1\% defect rate and up to 8.46×8.46\times at a 2%2\% defect rate for a distance-1313 surface code under moderately biased noise. Furthermore, we demonstrate that the benefits of round-scheduling extend beyond the defective-hardware setting. In biased-noise architectures subject to CNOT crosstalk, separating XX and ZZ measurement rounds yields up to 4.5×4.5\times reduction in logical error rate.

引用

@article{arxiv.2608.05518,
  title  = {X-Z Round Scheduling for the Surface Code with Defects under Biased Noise},
  author = {Lakshika Rathi and Pau Escofet and Joshua Viszlai and Margaret Martonosi},
  journal= {arXiv preprint arXiv:2608.05518},
  year   = {2026}
}