QULATIS: A Quantum Error Correction Methodology toward Lattice Surgery
Yosuke Ueno, Masaaki Kondo, Masamitsu Tanaka, Yasunari Suzuki, Yutaka Tabuchi
摘要
Due to the high error rate of a qubit, detecting and correcting errors on it is essential for fault-tolerant quantum computing (FTQC). Surface code (SC) associated with its decoding algorithm is one of the most promising quantum error correction (QEC) methods because it has high fidelity and requires only nearest neighbor qubits connectivity. To realize FTQC, we need a decoder circuit capable of not only QEC in a 3-D lattice to deal with errors in measurement on ancillary qubits but also quantum operations on logically constructed qubits. Whereas several methods to perform logical operations on SC, such as lattice surgery (LS), are known, no practical decoders supporting them have been proposed yet.One of the most promising QC implementations today is made up of superconducting qubits that are located in a cryogenic environment. To reduce the hardware complexity of QC and latency of QEC, we are supposed to perform QEC in a cryogenic environment. Hence a power-efficient decoder is required due to the limited power budget inside a dilution refrigerator.In this paper, we propose an online-QEC algorithm that supports LS with a practical decoder circuit, as well as a new FTQC architecture. We design a key building block of the proposed architecture with a hybrid of SFQ- and Cryo-CMOS-based digital circuits and evaluate it with a SPICE-level simulation. Each logic element includes about 2400 Josephson junctions, and power consumption is estimated to be 2.07 μW when operating with a 2 GHz clock frequency. We evaluate the decoder performance by a quantum error simulator for an essential operation of LS with code distances up to 11, and it achieves a 0.6% accuracy threshold. In an LS-based architecture further supporting a magic-state distillation protocol, which is expected to run for near-term universal quantum computing, we evaluate the QEC performance and power consumption of the architecture and show that it is practical to be operated in 4-K temperature region of a dilution refrigerator.
问问这篇 Paper
问问你的智能体。
Lune 读过与它相关的顶会 Paper,每个回答都会注明依据哪几篇。
引用它的顶会 Paper10
- Astrea: Accurate Quantum Error-Decoding via Practical Minimum-Weight Perfect-MatchingSuhas Vittal, Poulami Das, Moinuddin K. QureshiISCA 2023 · 被引用 47 次
- Better Than Worst-Case Decoding for Quantum Error CorrectionGokul Subramanian Ravi, Jonathan M. Baker, Arash Fayyazi, Sophia Fuhui Lin 等ASPLOS 2023 · 被引用 30 次
- Promatch: Extending the Reach of Real-Time Quantum Error Correction with Adaptive PredecodingNarges Alavisamani, Suhas Vittal, Ramin Ayanzadeh, Poulami Das 等ASPLOS 2024 · 被引用 14 次
- Q-BEEP: Quantum Bayesian Error Mitigation Employing Poisson Modeling over the Hamming SpectrumSamuel A. Stein, Nathan Wiebe, Yufei Ding, James Ang 等ISCA 2023 · 被引用 13 次
- ERASER: Towards Adaptive Leakage Suppression for Fault-Tolerant Quantum ComputingSuhas Vittal, Poulami Das, Moinuddin K. QureshiMICRO 2023 · 被引用 12 次
相关 Paper
- 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
- 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
- Pinball: A Cryogenic Predecoder for Quantum Error Correction Decoding Under Circuit-Level NoiseAlexander Knapen, Guanchen Tao, Jacob Mack, Tomas Bruno 等HPCA 2026
- Q3DE: A fault-tolerant quantum computer architecture for multi-bit burst errors by cosmic raysYasunari Suzuki, Takanori Sugiyama, Tomochika Arai, Wang Liao 等MICRO 2022 · 被引用 18 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
