Q3DE: A fault-tolerant quantum computer architecture for multi-bit burst errors by cosmic rays
Yasunari Suzuki, Takanori Sugiyama, Tomochika Arai, Wang Liao, Koji, Inoue, Teruo Tanimoto

TL;DR
Q3DE is a fault-tolerant quantum computing architecture that effectively detects and mitigates multi-bit burst errors caused by cosmic rays, significantly improving error resilience with moderate overhead.
Contribution
The paper introduces Q3DE, a novel FTQC architecture that enhances multi-bit burst error tolerance through dynamic code deformation and optimized error decoding.
Findings
Reduces MBBE periods by 1000 times
Halves the size of MBBE regions
Significantly relaxes qubit density requirements
Abstract
Demonstrating small error rates by integrating quantum error correction (QEC) into an architecture of quantum computing is the next milestone towards scalable fault-tolerant quantum computing (FTQC). Encoding logical qubits with superconducting qubits and surface codes is considered a promising candidate for FTQC architectures. In this paper, we propose an FTQC architecture, which we call Q3DE, that enhances the tolerance to multi-bit burst errors (MBBEs) by cosmic rays with moderate changes and overhead. There are three core components in Q3DE: in-situ anomaly DEtection, dynamic code DEformation, and optimized error DEcoding. In this architecture, MBBEs are detected only from syndrome values for error correction. The effect of MBBEs is immediately mitigated by dynamically increasing the encoding level of logical qubits and re-estimating probable recovery operation with the rollback of…
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