Will Quantum Computers Scale Without Inter-Chip Comms? A Structured Design Exploration to the Monolithic vs Distributed Architectures Quest

Santiago Rodrigo, S. Abadal, E. Alarcón, C. G. Almudever
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引用次数: 6

Abstract

Being a very promising technology, with impressive advances in the recent years, it is still unclear how quantum computing will scale to satisfy the requirements of its most powerful applications. Although continued progress in the fabrication and control of qubits is required, quantum computing scalability will depend as well on a comprehensive architectural design considering a distributed multi-core approach as an alternative to the traditional monolithic version, hence including a communications perspective. However, this goes beyond introducing mere interconnects. Rather, it implies consolidating the full communications stack in the quantum computer structure. In this paper, we propose a double full-stack architecture encompassing quantum computation and quantum communications, which we use to address the monolithic versus distributed question with a structured design methodology. For that, we revisit the different quantum computing layers to capture and model their essence by highlighting the open design variables and performance metrics. Using behavioral models and actual measurements from existing quantum computers, the results of simulations suggest that multicore architectures may effectively unleash the full quantum computer potential.
没有芯片间通信,量子计算机能扩展吗?对单片与分布式架构探索的结构化设计
作为一项非常有前途的技术,近年来取得了令人印象深刻的进步,量子计算将如何扩展以满足其最强大应用的要求仍不清楚。虽然需要在量子比特的制造和控制方面继续取得进展,但量子计算的可扩展性也将取决于考虑分布式多核方法作为传统单片版本的替代方案的综合架构设计,因此包括通信角度。然而,这不仅仅是引入互连。相反,它意味着在量子计算机结构中整合完整的通信堆栈。在本文中,我们提出了一个包含量子计算和量子通信的双全栈架构,我们使用结构化设计方法来解决单片与分布式的问题。为此,我们重新审视不同的量子计算层,通过突出开放的设计变量和性能指标来捕捉和建模它们的本质。利用行为模型和现有量子计算机的实际测量,模拟结果表明,多核架构可以有效地释放量子计算机的全部潜力。
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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