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
摘要
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 the decoding process. We investigate the performance and overhead of the Q3DE architecture with quantum-error simulators and demonstrate that Q3DE effectively reduces the period of MBBEs by 1000 times and halves the size of their region. Therefore, Q3DE significantly relaxes the requirement of qubit density and qubit chip size to realize FTQC. Our scheme is versatile for mitigating MBBEs, i.e., temporal variations of error properties, on a wide range of physical devices and FTQC architectures since it relies only on the standard features of topological stabilizer codes.
问问这篇 Paper
智能体会读完全文。
Lune 把这篇 Paper 索引到了每一个公式,引用它的顶会 Paper 也一样。你提问,回答直接引用原文。
引用它的顶会 Paper4
- Codesign of quantum error-correcting codes and modular chiplets in the presence of defectsSophia Fuhui Lin, Joshua Viszlai, Kaitlin N. Smith, Gokul Subramanian Ravi 等ASPLOS 2024 · 被引用 17 次
- Surf-Deformer: Mitigating Dynamic Defects on Surface Code via Adaptive DeformationKeyi Yin, Xiang Fang, Travis S. Humble, Ang Li 等MICRO 2024 · 被引用 7 次
- LSQCA: Resource-Efficient Load/Store Architecture for Limited-Scale Fault-Tolerant Quantum ComputingTakumi Kobori, Yasunari Suzuki, Yosuke Ueno, Teruo Tanimoto 等HPCA 2025 · 被引用 4 次
- ARTERY: Fast Quantum Feedback using Branch PredictionWuwei Tian, Liqiang Lu, Siwei Tan, Yun Liang 等ISCA 2025 · 被引用 1 次
它引用的顶会 Paper3
- NISQ+: Boosting quantum computing power by approximating quantum error correctionAdam Holmes, Mohammad Reza Jokar, Ghasem Pasandi, Yongshan Ding 等ISCA 2020 · 被引用 85 次
- Virtualized Logical Qubits: A 2.5D Architecture for Error-Corrected Quantum ComputingCasey Duckering, Jonathan M. Baker, David I. Schuster, Frederic T. ChongMICRO 2020 · 被引用 14 次
- QECOOL: On-Line Quantum Error Correction with a Superconducting Decoder for Surface CodeYosuke Ueno, Masaaki Kondo, Masamitsu Tanaka, Yasunari Suzuki 等DAC 2021 · 被引用 2 次
相关 Paper
- QULATIS: A Quantum Error Correction Methodology toward Lattice SurgeryYosuke Ueno, Masaaki Kondo, Masamitsu Tanaka, Yasunari Suzuki 等HPCA 2022 · 被引用 24 次
- Synchronization for Fault-Tolerant Quantum ComputersSatvik Maurya, Swamit TannuISCA 2025 · 被引用 4 次
- AFS: Accurate, Fast, and Scalable Error-Decoding for Fault-Tolerant Quantum ComputersPoulami Das, Christopher A. Pattison, Srilatha Manne, Douglas M. Carmean 等HPCA 2022 · 被引用 58 次
- A synthesis framework for stitching surface code with superconducting quantum devicesAnbang Wu, Gushu Li, Hezi Zhang, Gian Giacomo Guerreschi 等ISCA 2022 · 被引用 21 次
- On the Efficacy of Surface Codes in Compensating for Radiation Events in Superconducting DevicesMarzio Vallero, Gioele Casagranda, Flavio Vella, Paolo RechSC 2024 · 被引用 3 次
