DigiQ: A Scalable Digital Controller for Quantum Computers Using SFQ Logic
Mohammad Reza Jokar, Richard Rines, Ghasem Pasandi, Haolin Cong, Adam Holmes, Yunong Shi, Massoud Pedram, Frederic T. Chong
Abstract
The control of cryogenic qubits in today’s super-conducting quantum computer prototypes presents significant scalability challenges due to the massive costs of generating/routing the analog control signals that need to be sent from a classical controller at room temperature to the quantum chip inside the dilution refrigerator. Thus, researchers in industry and academia have focused on designing in-fridge classical controllers in order to mitigate these challenges. Due to the maturity of CMOS logic, many industrial efforts (Microsoft, Intel) have focused on Cryo-CMOS as a near-term solution to design in-fridge classical controllers. Meanwhile, Supercon-ducting Single Flux Quantum (SFQ) is an alternative, less mature classical logic family proposed for large-scale in-fridge controllers. SFQ logic has the potential to maximize scalability thanks to its ultra-high speed and very low power consumption. However, architecture design for SFQ logic poses challenges due to its unconventional pulse-driven nature and lack of dense memory and logic. Thus, research at the architecture level is essential to guide architects to design SFQ-based classical controllers for large-scale quantum machines.In this paper, we present DigiQ, the first system-level design of a Noisy Intermediate Scale Quantum (NISQ)-friendly SFQ-based classical controller. We perform a design space exploration of SFQ-based controllers and co-design the quantum gate decompositions and SFQ-based implementation of those decompositions to find an optimal SFQ-friendly design point that trades area and power for latency and control while ensuring good quantum algorithmic performance. Our co-design results in a single instruction, multiple data (SIMD) controller architecture, which has high scalability, but imposes new challenges on the calibration of control pulses. We present software-level solutions to address these challenges, which if unaddressed would degrade quantum circuit fidelity given the imperfections of qubit hardware.To validate and characterize DigiQ, we first implement it using hardware description languages and synthesize it using state-of-the-art/validated SFQ synthesis tools. Our synthesis results show that DigiQ can operate within the tight power and area budget of dilution refrigerators at >42,000-qubit scales. Second, we confirm the effectiveness of DigiQ in running quantum algorithms by modeling the execution time and fidelity of a variety of NISQ applications. We hope that the promising results of this paper motivate experimentalists to further explore SFQ-based quantum controllers to realize large-scale quantum machines with maximized scalability.
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Cited by top-tier papers4
- COMPAQT: Compressed Waveform Memory Architecture for Scalable Qubit ControlSatvik Maurya, Swamit S. TannuMICRO 2022 · 9 citations
- QRCC: Evaluating Large Quantum Circuits on Small Quantum Computers through Integrated Qubit Reuse and Circuit CuttingAditya Pawar, Yingheng Li, Zewei Mo, Yanan Guo et al.ASPLOS 2024 · 3 citations
- Distributed-HISQ: A Distributed Quantum Control ArchitectureYilun Zhao, Kangding Zhao, Peng Zhou, Dingdong Liu et al.MICRO 2025 · 2 citations
- Pinball: A Cryogenic Predecoder for Quantum Error Correction Decoding Under Circuit-Level NoiseAlexander Knapen, Guanchen Tao, Jacob Mack, Tomas Bruno et al.HPCA 2026
Builds on5
- Software Mitigation of Crosstalk on Noisy Intermediate-Scale Quantum ComputersPrakash Murali, David C. McKay, Margaret Martonosi, Ali Javadi-AbhariASPLOS 2020 · 253 citations
- Optimized Quantum Compilation for Near-Term Algorithms with OpenPulsePranav Gokhale, Ali Javadi-Abhari, Nathan Earnest, Yunong Shi et al.MICRO 2020 · 87 citations
- NISQ+: Boosting quantum computing power by approximating quantum error correctionAdam Holmes, Mohammad Reza Jokar, Ghasem Pasandi, Yongshan Ding et al.ISCA 2020 · 85 citations
- SuperNPU: An Extremely Fast Neural Processing Unit Using Superconducting Logic DevicesKoki Ishida, Ilkwon Byun, Ikki Nagaoka, Kosuke Fukumitsu et al.MICRO 2020 · 66 citations
- Towards Efficient Superconducting Quantum Processor Architecture DesignGushu Li, Yufei Ding, Yuan XieASPLOS 2020 · 49 citations
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