AFS: Accurate, Fast, and Scalable Error-Decoding for Fault-Tolerant Quantum Computers
Poulami Das, Christopher A. Pattison, Srilatha Manne, Douglas M. Carmean, Krysta M. Svore, Moinuddin K. Qureshi, Nicolas Delfosse
摘要
Quantum computers promise computational advantages for many important problems across various application domains. Unfortunately, physical quantum devices are highly susceptible to errors that limit us from running most of these quantum applications. Quantum Error Correction (QEC) codes are required to implement Fault-Tolerant Quantum Computers (FTQC) on which computations can be performed without encountering errors. Error decoding is a critical component of quantum error correction and is responsible for transforming a set of qubit measurements generated by the QEC code, called the syndrome, into error locations and error types. For the feasibility of implementation, error decoders must not only identify errors with high accuracy, but also be fast and scalable to a large number of qubits. Unfortunately, most of the prior works on error decoding have focused primarily only on the accuracy and have relied on software implementations that are too slow to be of practical use. Furthermore, these studies only look at designing a single decoder and do not analyze the challenges involved in scaling the storage and bandwidth requirements when performing error correction in large systems with thousands of qubits.In this paper, we present AFS, an accurate, fast, and scalable decoder architecture that is designed to operate in the context of systems with hundreds of logical qubits. We present the hardware implementation of AFS, which is based on the Union Find decoding algorithm and employs a three-stage pipelined design. AFS provides orders of magnitude higher accuracy compared to recent SFQ-based hardware decoders (logical error rate of 6×10−10for physical error rate of 10−3) and low decoding latency (42ns on average), while being robust to measurement errors introduced while extracting syndromes during the QEC cycles. We also reduce the amount of decoding hardware required to perform QEC simultaneously on all the logical qubits by co-designing the micro-architecture across multiple decoding units. Our proposed Conjoined-Decoder Architecture (CDA) reduces the storage overhead by 70% (10MB to 2.8MB). Finally, we reduce the bandwidth overheads required to transmit syndromes from the qubits to the decoders by exploiting the sparsity in the syndromes and compressing the data. Our proposed Syndrome Compression reduces the bandwidth requirement by 30x, on an average.
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 Paper15
- 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
- HyQSAT: A Hybrid Approach for 3-SAT Problems by Integrating Quantum Annealer with CDCLSiwei Tan, Mingqian Yu, Andre Python, Yongheng Shang 等HPCA 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
它引用的顶会 Paper10
- Software Mitigation of Crosstalk on Noisy Intermediate-Scale Quantum ComputersPrakash Murali, David C. McKay, Margaret Martonosi, Ali Javadi-AbhariASPLOS 2020 · 被引用 253 次
- Optimized Quantum Compilation for Near-Term Algorithms with OpenPulsePranav Gokhale, Ali Javadi-Abhari, Nathan Earnest, Yunong Shi 等MICRO 2020 · 被引用 87 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
- ADAPT: Mitigating Idling Errors in Qubits via Adaptive Dynamical DecouplingPoulami Das, Swamit S. Tannu, Siddharth Dangwal, Moinuddin K. QureshiMICRO 2021 · 被引用 64 次
- Qraft: reverse your Quantum circuit and know the correct program outputTirthak Patel, Devesh TiwariASPLOS 2021 · 被引用 44 次
相关 Paper
- A Case for Elastic Quantum Error Correction DecodersSatvik Maurya, Abtin Molavi, Aws Albarghouthi, Swamit TannuEuroSys 2026
- Coset Ensemble Decoder for Quantum Error Correction with Algorithm-Hardware Co-DesignShuang Liang, Jubo Xu, Giulio Bassanino, Qianzhou Wang 等ISCA 2026 · 被引用 1 次
- LILLIPUT: a lightweight low-latency lookup-table decoder for near-term Quantum error correctionPoulami Das, Aditya Locharla, Cody JonesASPLOS 2022 · 被引用 51 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
- Rethink the Role of Neural Decoders in Quantum Error CorrectionGe Yan, SHANCHUAN LI, Yuxuan DuICML 2026 · 被引用 3 次
