HiSEP-Q: A Highly Scalable and Efficient Quantum Control Processor for Superconducting Qubits

被引:0
|
作者
Guo, Xiaorang [1 ]
Qin, Kun [1 ]
Schulz, Martin [1 ,2 ]
机构
[1] Tech Univ Munich, Sch Comp Informat & Technol, Munich, Germany
[2] Leibniz Supercomp Ctr, Garching, Germany
关键词
Quantum Computing; Quantum Control Processor; Quantum Instruction Set Architecture;
D O I
10.1109/ICCD58817.2023.00023
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Quantum computing promises an effective way to solve targeted problems that are classically intractable. Among them, quantum computers built with superconducting qubits are considered one of the most advanced technologies, but they suffer from short coherence times. This can get exaggerated when they are controlled directly by general-purpose host machines, which in turn leads to the loss of quantum information. To mitigate this, we need quantum control processors (QCPs) positioned between quantum processing units (QPUs) and host machines to reduce latencies. However, existing QCPs are built on top of designs with no or inefficient scalability, requiring a large number of instructions when scaling to more qubits. In addition, interactions between current QCPs and host machines require frequent data transmissions and offline computations to obtain final results from hundreds of repeated executions, which limits the performance of quantum computers. In this paper, we propose a QCP - called HiSEP-Q featuring a novel quantum instruction set architecture (QISA) and its microarchitecture implementation. For efficient control, we utilize mixed-type addressing modes and mixed-length instructions in HiSEP-Q, which provides an efficient way to concurrently address more than 100 qubits. Further, for efficient read-out and analysis, we develop a novel onboard accumulation and sorting unit, which eliminates the data transmission of raw data between the QCPs and host machines and enables realtime result processing. Compared to the state-of-the-art, our proposed QISA achieves at least 62% and 28% improvements in encoding efficiency with real and synthetic quantum circuits, respectively. We also validate the microarchitecture on a field-programmable gate array (FPGA), which exhibits low power and resource consumption, even as the number of qubits scales to 100. Both hardware and ISA evaluations demonstrate that HiSEP-Q features high scalability and efficiency toward the number of controlled qubits.
引用
收藏
页码:86 / 93
页数:8
相关论文
共 50 条
  • [41] Highly Efficient and Scalable Access Control Mechanism for IoT Devices in Pervasive Environments
    Yu, Alian
    Kang, Jian
    Jiang, Wei
    Lin, Dan
    IEEE TRANSACTIONS ON DEPENDABLE AND SECURE COMPUTING, 2025, 22 (01) : 234 - 245
  • [42] Experimental Demonstration of Scalable Cross-Entropy Benchmarking to Detect Measurement-Induced Phase Transitions on a Superconducting Quantum Processor
    Kamakari, Hirsh
    Sun, Jiace
    Li, Yaodong
    Thio, Jonathan J.
    Gujarati, Tanvi P.
    Fisher, Matthew P. A.
    Motta, Mario
    Minnich, Austin J.
    PHYSICAL REVIEW LETTERS, 2025, 134 (12)
  • [43] A Highly-efficient Lattice-based Post-Quantum Cryptography Processor for IoT Applications
    Ye Z.
    Song R.
    Zhang H.
    Chen D.
    Cheung R.C.-C.
    Huang K.
    IACR Transactions on Cryptographic Hardware and Embedded Systems, 2024, 2024 (02): : 130 - 153
  • [44] Scalable and Efficient Associative Processor Solution to Guarantee Real-Time Requirements for Air Traffic Control Systems
    Yuan, Mike
    Baker, Johnnie W.
    Meilander, Will
    Schaffer, K.
    2012 IEEE 26TH INTERNATIONAL PARALLEL AND DISTRIBUTED PROCESSING SYMPOSIUM WORKSHOPS & PHD FORUM (IPDPSW), 2012, : 1688 - 1695
  • [45] Effective integration of highly-efficient focusing apodized grating and quantum dots on a solid substrate for scalable quantum photonic circuits
    Beimeng Yao
    Rongbin Su
    Shunfa Liu
    Changkun Song
    Ying Yu
    Jin Liu
    Xuehua Wang
    ScienceChina(Physics,Mechanics&Astronomy), 2024, (09) : 103 - 111
  • [46] Effective integration of highly-efficient focusing apodized grating and quantum dots on a solid substrate for scalable quantum photonic circuits
    Yao, Beimeng
    Su, Rongbin
    Liu, Shunfa
    Song, Changkun
    Yu, Ying
    Liu, Jin
    Wang, Xuehua
    SCIENCE CHINA-PHYSICS MECHANICS & ASTRONOMY, 2024, 67 (09)
  • [47] Quantum teleportation over 100 km of fiber using highly efficient superconducting nanowire single-photon detectors
    Takesue, Hiroki
    Dyer, Shellee D.
    Stevens, Martin J.
    Verma, Varun
    Mirin, Richard P.
    Nam, Sae Woo
    OPTICA, 2015, 2 (10): : 832 - 835
  • [48] A Highly Scalable and Energy-Efficient 1T DRAM Embedding a SiGe Quantum Well Structure for Significant Retention Enhancement
    Yu, Eunseon
    Cho, Seongjae
    2018 INTERNATIONAL CONFERENCE ON SIMULATION OF SEMICONDUCTOR PROCESSES AND DEVICES (SISPAD 2018), 2018, : 255 - 257
  • [49] Double deep Q network intelligent adaptive control for highly efficient dynamic magnetic field assisted water electrolysis
    Purnami, Purnami
    Nugroho, Willy Satrio
    Hamidi, Nurkholis
    Winarto, W.
    Schulze, Ajani A.
    Wardana, I. N. G.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 59 : 457 - 464
  • [50] Design and Characterization of a <4-mW/Qubit 28-nm Cryo-CMOS Integrated Circuit for Full Control of a Superconducting Quantum Processor Unit Cell
    Yoo, Juhwan
    Chen, Zijun
    Arute, Frank
    Montazeri, Shirin
    Szalay, Marco
    Erickson, Catherine
    Jeffrey, Evan
    Fatemi, Reza
    Giustina, Marissa
    Ansmann, Markus
    Lucero, Erik
    Kelly, Julian
    Bardin, Joseph C.
    IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2023, 58 (11) : 3044 - 3059