A Predictive Approach for Selecting the Best Quantum Solver for an Optimization Problem

Fuente: arXiv
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Autori principali: Volpe, Deborah, Quetschlich, Nils, Graziano, Mariagrazia, Turvani, Giovanna, Wille, Robert
Natura: Preprint
Pubblicazione: 2024
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author Volpe, Deborah
Quetschlich, Nils
Graziano, Mariagrazia
Turvani, Giovanna
Wille, Robert
author_facet Volpe, Deborah
Quetschlich, Nils
Graziano, Mariagrazia
Turvani, Giovanna
Wille, Robert
contents Leveraging quantum computers for optimization problems holds promise across various application domains. Nevertheless, utilizing respective quantum computing solvers requires describing the optimization problem according to the Quadratic Unconstrained Binary Optimization (QUBO) formalism and selecting a proper solver for the application of interest with a reasonable setting. Both demand significant proficiency in quantum computing, QUBO formulation, and quantum solvers, a background that usually cannot be assumed by end users who are domain experts rather than quantum computing specialists. While tools aid in QUBO formulations, support for selecting the best-solving approach remains absent. This becomes even more challenging because selecting the best solver for a problem heavily depends on the problem itself. In this work, we are accepting this challenge and propose a predictive selection approach, which aids end users in this task. To this end, the solver selection task is first formulated as a classification task that is suitable to be solved by supervised machine learning. Based on that, we then propose strategies for adjusting solver parameters based on problem size and characteristics. Experimental evaluations, considering more than 500 different QUBO problems, confirm the benefits of the proposed solution. In fact, we show that in more than 70% of the cases, the best solver is selected, and in about 90% of the problems, a solver in the top two, i.e., the best or its closest suboptimum, is selected. This exploration proves the potential of machine learning in quantum solver selection and lays the foundations for its automation, broadening access to quantum optimization for a wider range of users.
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id arxiv_https___arxiv_org_abs_2408_03613
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Predictive Approach for Selecting the Best Quantum Solver for an Optimization Problem
Volpe, Deborah
Quetschlich, Nils
Graziano, Mariagrazia
Turvani, Giovanna
Wille, Robert
Quantum Physics
Emerging Technologies
Leveraging quantum computers for optimization problems holds promise across various application domains. Nevertheless, utilizing respective quantum computing solvers requires describing the optimization problem according to the Quadratic Unconstrained Binary Optimization (QUBO) formalism and selecting a proper solver for the application of interest with a reasonable setting. Both demand significant proficiency in quantum computing, QUBO formulation, and quantum solvers, a background that usually cannot be assumed by end users who are domain experts rather than quantum computing specialists. While tools aid in QUBO formulations, support for selecting the best-solving approach remains absent. This becomes even more challenging because selecting the best solver for a problem heavily depends on the problem itself. In this work, we are accepting this challenge and propose a predictive selection approach, which aids end users in this task. To this end, the solver selection task is first formulated as a classification task that is suitable to be solved by supervised machine learning. Based on that, we then propose strategies for adjusting solver parameters based on problem size and characteristics. Experimental evaluations, considering more than 500 different QUBO problems, confirm the benefits of the proposed solution. In fact, we show that in more than 70% of the cases, the best solver is selected, and in about 90% of the problems, a solver in the top two, i.e., the best or its closest suboptimum, is selected. This exploration proves the potential of machine learning in quantum solver selection and lays the foundations for its automation, broadening access to quantum optimization for a wider range of users.
title A Predictive Approach for Selecting the Best Quantum Solver for an Optimization Problem
topic Quantum Physics
Emerging Technologies
url https://arxiv.org/abs/2408.03613