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Fault-tolerant noise guessing decoding of quantum random codes
Author(s) -
Diogo Cruz,
Francisco A. Monteiro,
Andre Roque,
Bruno C. Coutinhol
Publication year - 2025
Publication title -
ieee transactions on quantum engineering
Language(s) - English
Resource type - Magazines
eISSN - 2689-1808
DOI - 10.1109/tqe.2025.3595778
Subject(s) - components, circuits, devices and systems , engineered materials, dielectrics and plasmas
This work addresses the open question of implementing fault-tolerant QRLCs with feasible computational overhead. We present a new decoder for quantum random linear codes (QRLCs) capable of dealing with imperfect decoding operations. A first approach, introduced by Cruz et al., only considered channel errors, and perfect gates at the decoder. Here, we analyze the fault-tolerant characteristics of QRLCs with a new noise guessing decoding technique, when considering preparation, measurement, and gate errors in the syndrome extraction procedure, while also accounting for error degeneracy. Our findings indicate a threshold error rate (pthreshold) of approximately 2×10 -5 in the asymptotic limit, while considering realistic noise levels in the mentioned physical procedures.

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