Revisiting the Mapping of Quantum Circuits: Entering the Multi-Core Era
Abstract
Quantum computing represents a paradigm shift in computation, offering the potential to solve complex problems intractable for classical computers. Although current quantum processors already consist of a few hundred of qubits, their scalability remains a significant challenge. Modular quantum computing architectures have emerged as a promising approach to scale up quantum computing systems. This paper delves into the critical aspects of distributed multi-core quantum computing, focusing on quantum circuit mapping, a fundamental task to successfully execute quantum algorithms across cores while minimizing inter-core communications. We derive the theoretical bounds on the number of non-local communications needed for random quantum circuits and introduce the Hungarian Qubit Assignment (HQA) algorithm, a multi-core mapping algorithm designed to optimize qubit assignments to cores with the aim of reducing inter-core communications. Our exhaustive evaluation of HQA against state-of-the-art circuit mapping algorithms for modular architectures reveals a and improvement in terms of execution time and non-local communications, respectively, compared to the best performing algorithm. HQA emerges as a very promising scalable approach for mapping quantum circuits into multi-core architectures, positioning it as a valuable tool for harnessing the potential of quantum computing at scale.
Cite
@article{arxiv.2403.17205,
title = {Revisiting the Mapping of Quantum Circuits: Entering the Multi-Core Era},
author = {Pau Escofet and Anabel Ovide and Medina Bandic and Luise Prielinger and Hans van Someren and Sebastian Feld and Eduard Alarcón and Sergi Abadal and Carmen G. Almudéver},
journal= {arXiv preprint arXiv:2403.17205},
year = {2025}
}
Comments
Accepted to ACM Transaction in Quantum Computing