Distributed-HISQ: A Distributed Quantum Control Architecture
Yilun Zhao, Kangding Zhao, Peng Zhou, Dingdong Liu, Tingyu Luo, Yuzhen Zheng, Peng Luo, Shun Hu, Jin Lin, Cheng Guo, Yinhe Han, Ying Wang
摘要
The design of a scalable Quantum Control Architecture (QCA) faces two primary challenges. First, the continuous growth in qubit counts has rendered distributed QCA inevitable, yet the nondeterministic latencies inherent in feedback loops demand cycleaccurate synchronization across multiple controllers. Existing synchronization strategies -whether lock-step or demand-drivenintroduce significant performance penalties. Second, existing quantum instruction set architectures are polarized, being either too abstract or too granular. This lack of a unifying design necessitates recurrent hardware customization for each new control requirement, which limits the system's reconfigurability and impedes the path toward a scalable and unified digital microarchitecture.
Addressing these challenges, we propose Distributed-HISQ, featuring: (i) HISQ, A universal instruction set that redefines quantum control with a hardware-agnostic design. By decoupling from quantum operation semantics, HISQ provides a unified language for control sequences, enabling a single microarchitecture to support various control methods and enhancing system reconfigurability. (ii) BISP, a booking-based synchronization protocol that can potentially achieve zero-cycle synchronization overhead. The feasibility and adaptability of Distributed-HISQ are validated through its implementation on a commercial quantum control system targeting superconducting qubits. We performed a comprehensive evaluation using a customized quantum software stack. Our results show that BISP effectively synchronizes multiple control boards, leading to a 22.8% reduction in average program execution time and a ∼ 5× reduction in infidelity when compared to an existing lock-step synchronization scheme.
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。
它引用的顶会 Paper7
- AutoComm: A Framework for Enabling Efficient Communication in Distributed Quantum ProgramsAnbang Wu, Hezi Zhang, Gushu Li, Alireza Shabani 等MICRO 2022 · 被引用 47 次
- DigiQ: A Scalable Digital Controller for Quantum Computers Using SFQ LogicMohammad Reza Jokar, Richard Rines, Ghasem Pasandi, Haolin Cong 等HPCA 2022 · 被引用 37 次
- XQsim: modeling cross-technology control processors for 10+K qubit quantum computersIlkwon Byun, Junpyo Kim, Dongmoon Min, Ikki Nagaoka 等ISCA 2022 · 被引用 32 次
- A Fault-Tolerant Million Qubit-Scale Distributed Quantum ComputerJunpyo Kim, Dongmoon Min, Jungmin Cho, Hyeonseong Jeong 等ASPLOS 2024 · 被引用 26 次
- QIsim: Architecting 10+K Qubit QC Interfaces Toward Quantum SupremacyDongmoon Min, Junpyo Kim, Junhyuk Choi, Ilkwon Byun 等ISCA 2023 · 被引用 14 次
相关 Paper
- Exploiting Different Levels of Parallelism in the Quantum Control Microarchitecture for Superconducting QubitsMengyu Zhang, Lei Xie, Zhenxing Zhang, Qiaonian Yu 等MICRO 2021 · 被引用 13 次
- Reconfigurable Quantum Instruction Set Computers for High Performance Attainable on HardwareZhaohui Yang, Dawei Ding, Qi Ye, Cupjin Huang 等ASPLOS 2026
- COMPAQT: Compressed Waveform Memory Architecture for Scalable Qubit ControlSatvik Maurya, Swamit S. TannuMICRO 2022 · 被引用 9 次
- One Gate Scheme to Rule Them All: Introducing a Complex Yet Reduced Instruction Set for Quantum ComputingJianxin Chen, Dawei Ding, Weiyuan Gong, Cupjin Huang 等ASPLOS 2024 · 被引用 10 次
- QOS: Quantum Operating SystemEmmanouil Giortamis, Francisco Romão, Nathaniel Tornow, Pramod BhatotiaOSDI 2025
