C3-VQA: Cryogenic Counter-Based Coprocessor for Variational Quantum Algorithms

Yosuke Ueno;Satoshi Imamura;Yuna Tomida;Teruo Tanimoto;Masamitsu Tanaka;Yutaka Tabuchi;Koji Inoue;Hiroshi Nakamura
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Abstract

Cryogenic quantum computers play a leading role in demonstrating quantum advantage. Given the severe constraints on the cooling capacity in cryogenic environments, thermal design is crucial for the scalability of these computers. The sources of heat dissipation include passive inflow via intertemperature wires and the power consumption of components located in the cryostat, such as wire amplifiers and quantum–classical interfaces. Thus, a critical challenge is to reduce the number of wires by reducing the required intertemperature bandwidth while maintaining minimal additional power consumption in the cryostat. One solution to address this challenge is near-data processing using ultralow-power computational logic within the cryostat. Based on the workload analysis and domain-specific system design focused on variational quantum algorithms (VQAs), we propose the cryogenic counter-based coprocessor for VQAs (C3-VQA) to enhance the design scalability of cryogenic quantum computers under the thermal constraint. The C3-VQA utilizes single-flux-quantum logic, which is an ultralow-power superconducting digital circuit that operates at the 4 K environment. The C3-VQA precomputes a part of the expectation value calculations for VQAs and buffers intermediate values using simple bit operation units and counters in the cryostat, thereby reducing the required intertemperature bandwidth with small additional power consumption. Consequently, the C3-VQA reduces the number of wires, leading to a reduction in the total heat dissipation in the cryostat. Our evaluation shows that the C3-VQA reduces the total heat dissipation at the 4 K stage by 30% and 81% under sequential-shot and parallel-shot execution scenarios, respectively. Furthermore, a case study in quantum chemistry shows that the C3-VQA reduces total heat dissipation by 87% with a 10 000-qubit system.
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C3-VQA:变分量子算法的低温计数器协处理器
低温量子计算机在展示量子优势方面发挥着主导作用。考虑到低温环境对冷却能力的严格限制,热设计对这些计算机的可扩展性至关重要。散热的来源包括通过间温导线的被动流入和低温恒温器中元件的功耗,如线放大器和量子经典界面。因此,一个关键的挑战是通过减少所需的温间带宽来减少导线的数量,同时保持低温恒温器中最小的额外功耗。解决这一挑战的一个解决方案是在低温恒温器中使用超低功耗计算逻辑进行近数据处理。基于变分量子算法(VQAs)的工作负载分析和特定领域系统设计,提出了基于低温计数器的变分量子算法协处理器(C3-VQA),以提高低温量子计算机在热约束下的设计可扩展性。C3-VQA采用单通量量子逻辑,这是一种在4k环境下工作的超低功率超导数字电路。C3-VQA预先计算vqa的期望值计算的一部分,并使用简单的位操作单元和低温恒温器中的计数器缓冲中间值,从而以较小的额外功耗减少所需的温间带宽。因此,C3-VQA减少了电线的数量,从而减少了低温恒温器的总散热。我们的评估表明,C3-VQA在4 K阶段的总散热在顺序射击和并行射击的情况下分别减少了30%和81%。此外,量子化学的一个案例研究表明,C3-VQA在10000量子位系统中减少了87%的总散热。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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C3-VQA: Cryogenic Counter-Based Coprocessor for Variational Quantum Algorithms RSFQ All-Digital Programmable Multitone Generator for Quantum Applications IEEE Transactions on Quantum Engineering Publication Information Novel Trade-offs in 5 nm FinFET SRAM Arrays at Extremely Low Temperatures Dissipative Variational Quantum Algorithms for Gibbs State Preparation
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