Improved error correction with leakage reduction units built into qubit measurement in a superconducting quantum processor

  1. Yuejie Xin,
  2. Sean L. M. van der Meer,
  3. Marc Serra-Peralta,
  4. Tim H. F. Vroomans,
  5. Matvey Finkel,
  6. Hendrik M. Veen,
  7. Mark W. Beekman,
  8. and Leonardo DiCarlo
Leakage to non-computational states is a source of correlated errors in both time and space that limits the effectiveness of quantum error correction (QEC) with superconducting circuits. We present and experimentally demonstrate a high-fidelity, leakage reduction unit (LRU) operating concurrently with transmon measurement without incurring time overhead. Adapted from double-drive reset of population (DDROP), the protocol utilizes simultaneous drives on the transmon and its readout resonator, leveraging the dispersive shift to create a directional process that returns the transmon to the computational subspace. The LRU achieves a 98.4% leakage removal fraction without compromising the computational-state assignment fidelity (99.2%). We combine LRU-enhanced measurement and neural-network decoding to successfully suppress logical error rates in both memory and stability QEC experiments without any post-selection.

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